Drug delivery device cassette and drug delivery device
The cassette-based medication delivery system addresses size and power challenges by using a fluid pressure power source for flexible, portable, and efficient delivery of multiple medications, ensuring drug separation and controlled dosing.
Patent Information
- Application Number
- JP2024572251
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-06-07
- Filing Date
- 2023-06-09
- Publication Date
- 2026-01-07
- Estimated Expiration
- 2043-06-09
AI Technical Summary
Existing motor-driven medication delivery devices face challenges in delivering multiple medications without increasing size, power consumption, and complexity, while ensuring drug compatibility and flexibility in dosing regimens, particularly for high viscosity or variable dose medications.
A cassette for medication delivery devices featuring a reusable body with a fluid pressure power source, a flexible medication container, and a fluid-tight chamber, allowing for pneumatic or hydraulic drug delivery without prior knowledge of drug volume or viscosity, enabling flexible configuration for multiple medications and sequential dosing.
The system provides a lightweight, quiet, and powerful drug delivery solution that can deliver multiple medications in a desired sequence, maintaining drug separation and controlling delivery rates without prior knowledge of drug properties, suitable for portable use.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates generally to cassettes for medication delivery devices, and more particularly to cassettes having a medication container with a flexible portion, the flexible portion coupled to a fluid-tight chamber. [Background technology]
[0002] Medication delivery devices such as manual injector pens or auto-injectors are commonly known for self-administration of medications by patients without formal medical training. For administering high volumes and / or high viscosity medications, or multiple different medications, motor-driven medication delivery devices are desirable.
[0003] Many motor-driven systems exist for delivering drugs, such as in parenteral delivery. For example, peristaltic drives or piston pumps are common in the art. However, motor-driven drug delivery systems have drawbacks in some applications. These drawbacks can become more pronounced when considering devices capable of delivering multiple drugs, such as devices configured to administer sequential dosing regimens without healthcare professional (HCP) intervention during the process. Additionally, in-line pump elements often contain silicone oil as a lubricant, which, while largely inert, can introduce potential drug stability concerns, especially when sensitive drugs are delivered through the in-line pump elements.
[0004] It is difficult to accommodate multiple medications without increasing the size of the drive unit. If the device requires a separate motor for each additional medication, the power requirements, size, complexity, and cost of the device for each application become potentially impractical to manage, especially during the final configuration and assembly (i.e., dispensing) of the device by the pharmacist. Administering multiple medications requires the motor to be driven for a sustained period, e.g., 1 to 6 hours. The required motor may consume a large amount of power and require a larger battery or permanent power source, which increases weight or reduces the mobility of the patient using the device. Furthermore, to provide the required torque or motive power, a powerful motor or large gear train may be required, which increases weight and noise and may be discouraging to the patient. Additionally, such components may add manufacturing complexity and associated costs that are undesirable in a device used at home. Therefore, there is a need for a lightweight delivery device having a drive that is preferably lightweight, quiet, and powerful, preferably external to the medication flow path and preferably independent of the number of medications delivered or the duration of delivery.
[0005] In some cases, multiple drugs must be kept fluidly separated to prevent mixing of the drugs, which could cause unintended or undesired effects (e.g., loss of potency, efficacy, or aggregation), and to prevent potential compatibility issues between the drugs and / or drug formulation components (i.e., excipients). While this need not be the case for a single dispensing device, this is no longer the case when a drug delivery device is intended to deliver two or more drug products.
[0006] Different medications used with the system may each have different volumes and / or viscosities. For example, some medications may be fixed doses, while others may be variable doses specific to each patient. The power requirements of the motor-driven pump may vary based on the desired flow rate and volume delivered for each medication. This may require novel approaches to programming the pump for each medication, which complicates dosing. Therefore, there is a need for improved systems and devices for administration that can deliver a volume of medication at a given viscosity that is not known a priori using separate disposable fluid paths (e.g., reservoirs and tubing sets). Furthermore, there is a need for improved systems and devices for administering multiple medications using a single pump mechanism that does not require a priori knowledge of the number, volume, or viscosity of the medications, and that can be flexibly configured to deliver one or more medications in a desired order governed by a prescribed dosing regimen. Summary of the Invention
[0007] The invention is defined by the appended claims, to which reference should be made below.
[0008]
[0009] Accordingly, there is provided a cassette for a medication delivery device, the medication delivery device comprising a reusable body comprising a fluid pressure power source. The cassette comprises a container carrier and a medication container having a body and a fluid outlet. The body includes a flexible portion. The medication container is at least partially disposed within the container carrier. The container carrier comprises a fluid-tight chamber. The fluid-tight chamber comprises an inlet. The inlet is configured to fluidly connect to an outlet of the fluid pressure power source of the reusable body of the medication delivery device. The fluid-tight chamber is coupled to the flexible portion of the body of the medication container, such that when the inlet receives output fluid from the fluid pressure power source, the output fluid flows into the fluid-tight chamber and medication contained in the medication container is forced out under pressure of the output fluid. The fluid outlet is configured to be connected to a medication delivery member of the medication delivery device when the cassette is attached to the medication delivery device.
[0009] The cassette is configured for use with a medication delivery device.
[0010] Preferably, according to another embodiment, the cassette is adapted for use with a portable medication delivery device.
[0011] Preferably, according to another embodiment, the body of the drug container comprises a flexible bag and / or a flexible tube.
[0012] Preferably, according to another embodiment, the body of the medication container is a flexible bag received within the fluid-tight chamber.
[0013] Preferably, according to another embodiment, the fluid pressure power source is a pneumatic power source or a hydraulic power source. The pneumatic power source is configured to output gas into the cassette and increase the gas pressure around the fluid-tight chamber to thereby expel the medicament contained within the cassette. The hydraulic power source is configured to output liquid into the cassette and increase the liquid pressure around the fluid-tight chamber to thereby expel the medicament contained within the cassette. If the fluid pressure power source is a pneumatic power source, the fluid-tight chamber is airtight. If the fluid pressure power source is a hydraulic power source, the fluid-tight chamber can be either airtight or liquid-tight.
[0014] Thus, a drug delivery device including a cassette as disclosed herein can provide a drive system for a pneumatically or hydraulically driven drug delivery device that can deliver one or more drugs in a desired sequence, each at a desired drug delivery rate. The system does not require prior knowledge of the volume and / or viscosity of each drug. Thus, a reusable body of the drug delivery device can be used with different drugs contained in different disposable cassettes. The drug containers can be filled with drugs by a pharmacy ("fill-at-time-of-use"), for example, in a compounding room at a hospital or infusion center, or by a drug manufacturer ("pre-fill"). During use, a fluid, e.g., a gas or liquid, can be added to the interior of the cassette at a known mass flow rate, collapsing the flexible container within the cassette and delivering its contents to a patient at a known and controllable volumetric flow rate.
[0015] Preferably, according to another embodiment, the cassette is adapted to be attached to a reusable body of a medication delivery device.
[0016] Preferably, according to another embodiment, the cassette comprises a cassette housing.
[0017] Preferably, according to another embodiment, the cassette housing is adapted to be attached to a reusable body of a medication delivery device.
[0018] Preferably, according to another embodiment, the container carrier is arranged within the cassette housing.
[0019] Alternatively, the container carrier is configured to be operably attached to a reusable body of a medication delivery device, in this example the cassette does not require a cassette housing.
[0020] Preferably, according to another embodiment, the cassette is configured to be removably attached to a reusable body of the medication delivery device.
[0021] Preferably, according to another embodiment, the fluid-tight chamber is a secondary flexible bag that completely encloses the drug container. This can be achieved by a multi-layer bag assembly, one port being the fluid outlet for the fluid-tight chamber and the other port being the inlet for the fluid-tight chamber.
[0022] Preferably, according to another embodiment, the body of the medication container includes a delivery tube.
[0023] Preferably, according to another embodiment, the delivery tube is a flexible tube of the body of the drug container.
[0024] Preferably, according to another embodiment, the flexible portion of the body is at least partially housed within a fluid-tight chamber.
[0025] Preferably, according to another embodiment, the fluid-tight chamber comprises a tube inlet and a tube outlet, the flexible delivery tube being configured to be positioned between the tube inlet and the tube outlet.
[0026] Preferably, according to another embodiment, the flexible delivery tube comprises two tube valves, and the fluid-tight chamber is configured to surround a portion of the flexible delivery tube between the two tube valves.
[0027] Preferably, according to another embodiment, the fluid-tight chamber comprises an outlet configured to be connected to a vacuum device, whereby when the pressure in the fluid-tight chamber is reduced, the drug contained in the drug container is sucked into the flexible delivery tube.
[0028] Preferably, according to another embodiment, the inlet of the fluid tight chamber is the outlet of the fluid tight chamber.
[0029] Alternatively, according to another embodiment, the medication container is configured to be attached to a tubing set that includes a delivery tube.
[0030] Preferably, according to another embodiment, the fluid outlet of the medicament container is configured to be connected to the medicament delivery member via a delivery tube, in this example the fluid outlet of the medicament container is configured to be attached to one end of the delivery tube and the medicament delivery member is configured to be attached to the other end of the delivery tube.
[0031] Preferably, according to another embodiment, the tubing set comprises a piercing member configured to pierce a fluid outlet of the drug container to establish fluid communication between the delivery tube and the drug container.
[0032] Preferably, according to another embodiment, the piercing member is a needle cannula.
[0033] Preferably, according to another embodiment, the delivery tube comprises a tube valve.
[0034] Preferably, according to another embodiment, the tube valve is an in-line valve included in the delivery tube.
[0035] Preferably, according to another embodiment, the tube valve of the delivery tube is a one-way valve so that fluid cannot flow through the delivery tube towards the drug container.
[0036] Preferably, according to another embodiment, the tube valve of the delivery tube is an umbrella valve, a Belleville valve, a ball valve, or a pinch valve.
[0037] Preferably, according to another embodiment, the drug delivery device comprises a delivery rate sensor.
[0038] Preferably, according to another embodiment, the delivery flow rate sensor is attached to the fluid outlet of the medication container and / or to the delivery tube of the tubing set.
[0039] Preferably, according to another embodiment, the container carrier comprises a container chamber configured to at least partially accommodate the medicament container.
[0040] Preferably, according to another embodiment, the fluid-tight chamber is expandable, the fluid-tight chamber being adjacent to the flexible portion of the body, and configured such that output fluid from the fluid pressure power source flows into the fluid-tight chamber, causing it to expand and press against the medicament container.
[0041] Preferably, according to another embodiment, the inlet of the fluid-tight chamber is provided with a valve.
[0042] Preferably, according to another embodiment, the valve at the inlet of the fluid tight chamber is a one-way valve such that fluid can only pass through it to enter the fluid tight chamber.
[0043] Preferably, according to another embodiment, the cassette comprises at least two drug containers.
[0044] Preferably, according to another embodiment, the cassette comprises at least two vessel carriers.
[0045] Preferably, according to another embodiment, the at least two containers each contain at least two drug containers.
[0046] Preferably, according to another embodiment, the medication delivery device includes a multi-way valve, e.g., a 2 / 2-way valve, a 3 / 2-way valve, or a 5 / 2-way valve, connected to a fluid pressure power source, wherein one port of the multi-way valve is configured to be attached to a fluid-tight chamber in one of the at least two container carriers and another port of the multi-way valve is configured to be attached to a fluid-tight chamber in another of the at least two container carriers.
[0047] Preferably, according to another embodiment, the cassette comprises one container carrier, the container carrier comprising at least two fluid-tight chambers.
[0048] Preferably, according to another embodiment, the at least two fluid-tight chamber container carriers each house at least two drug containers.
[0049] Preferably, according to another embodiment, each drug container is provided with a fluidly separate connection to the patient so that the separate drugs do not mix during administration unless desired by the patient.
[0050] Preferably, according to another embodiment, a one-way valve is arranged between the at least two fluid-tight chambers.
[0051] Preferably, according to another embodiment, the one-way valve arranged between the at least two fluid-tight chambers is a disposable valve, for example a frangible valve.
[0052] Preferably, according to another embodiment, only one fluid-tight chamber of one of the at least two container carriers comprises an inlet configured to be fluidly connected to a fluid pressure power source.
[0053] Preferably, according to another embodiment, a one-way valve between two fluid-tight chambers is configured to open when a first fluid pressure threshold is reached, and a valve at an inlet of the fluid-tight chamber configured to be fluidly connected to a fluid pressure power source is configured to open when a second fluid pressure threshold is reached, the first fluid pressure threshold being equal to or greater than the second fluid pressure threshold.
[0054] Preferably, according to another embodiment, a valve at the inlet of the fluid-tight chamber configured to be fluidly connected to the fluid pressure power source is configured to open when a second fluid pressure threshold is reached, the predetermined threshold being greater than the second fluid pressure threshold.
[0055] Preferably, according to another embodiment, the predetermined threshold is greater than the first fluid pressure threshold.
[0056] Preferably, according to another embodiment, the fluid tight chamber comprises a release valve configured to release the fluid flowing in the fluid tight chamber out of the fluid tight chamber.
[0057] Preferably, according to another embodiment, the release valve is configured to flow from the fluid pressure power source and release fluid accumulating in the fluid-tight chamber from the fluid-tight chamber into the vicinity of the cassette or a receiving vessel contained in the cassette when the fluid pressure reaches a predetermined threshold.
[0058] Preferably, according to another embodiment, the release valve is connected to an emergency button and is configured, when the emergency button is activated, to release the fluid flowing in the fluid-tight chamber from the fluid-tight chamber to the surroundings of the cassette or a receiving container contained in the cassette, thus stopping the forces that cause the movement of the medicament contained in the container.
[0059] Preferably, according to another embodiment, the emergency button can be pushed, pulled, slid or twisted relative to the container carrier or the reusable body of the medication delivery device to activate the emergency button.
[0060] Alternatively, according to another embodiment, the release valve is configured to slow down the rate of drug delivery.
[0061] Alternatively, according to another embodiment, the discharge valve is connected to a rotatable orifice.
[0062] Preferably, according to another embodiment, the fluid-tight chamber of the container carrier is made at least partly of a rigid material.
[0063] Preferably, according to another embodiment, the fluid-tight chamber of the container carrier is formed by a container frame configured to be attached to the medicament container and an interior chamber of the container carrier, the container frame being configured to surround the medicament container.
[0064] Alternatively or additionally, according to another embodiment, the fluid-tight chamber of the container carrier is formed by a container frame configured to be attached to the medicament container and a cap configured to be attached to the container frame, the container frame configured to surround the medicament container.
[0065] Preferably, according to another embodiment, the cap includes a tubing set.
[0066] Preferably, according to another embodiment, when the cap is attached to the container frame, the delivery tube is fluidly connected to the drug container surrounded by the container frame.
[0067] Preferably, according to another embodiment, the piercing member is configured to pierce the fluid outlet of the medicament container when the cap is attached to the container frame.
[0068] Alternatively, according to another embodiment, when the cap is attached to the container frame, the piercing member is configured to pierce the fluid outlet of the medication container when the piercing trigger is actuated.
[0069] Preferably, according to another embodiment, the fluid-tight chamber comprises a pressure sensor.
[0070] Preferably, according to another embodiment, the fluid-tight chamber is coupled to a fluid-tight measuring chamber configured to be connected to a fluid pressure power source and configured to have the same fluid pressure level as the fluid-tight chamber, the fluid-tight measuring chamber including a piston configured to be operably connected to a position sensor configured to sense the position of the piston within the fluid-tight measuring chamber.
[0071] Preferably, according to another embodiment, the piston position sensor is configured to monitor the pressure level within the fluid-tight chamber by monitoring the position of the piston.
[0072] Preferably, according to another embodiment, the container carrier comprises a position sensor configured to detect the position of the medicament container.
[0073] Preferably, according to another embodiment, the drug container position sensor is configured to monitor the pressure level within the fluid-tight chamber by monitoring the position of the drug container.
[0074] Another aspect of the present invention provides a medication delivery device comprising a cassette.
[0075] Preferably, according to another embodiment, the medication delivery device is portable.
[0076] Preferably, according to another embodiment, the drug delivery device is worn on the body under or over clothing.
[0077] Preferably, according to another embodiment, the drug delivery device is an injection device, for example an infusion device or an on-body syringe.
[0078] Preferably, according to another embodiment, the drug delivery member is an injection or insertion needle having a soft cannula.
[0079] Preferably, according to another embodiment, the drug delivery device comprises a reusable body and a replaceable drug delivery member.
[0080] Preferably, according to another embodiment, the reusable body of the medication delivery device comprises a fluid pressure power source connected to the inlet of the fluid tight chamber of the container carrier, the fluid outlet being operatively connected to the medication delivery member.
[0081] Preferably, according to another embodiment, the medication delivery device comprises a processor electrically connected to the fluid pressure power source, and a power source connected to the processor, wherein the processor and the power source are housed within the reusable body.
[0082] Preferably, according to another embodiment, the fluid tight chamber is adjacent to a fluid pressure power source, the fluid pressure power source being in direct fluid connection with the inlet of the fluid tight chamber.
[0083] Preferably, according to another embodiment, a transmission tube is disposed between the fluid pressure power source and the inlet of the fluid-tight chamber, the fluid pressure power source being fluidly connected to the inlet of the fluid-tight chamber via the transmission tube.
[0084] Preferably, according to another embodiment, the transfer tube is attached to the container frame.
[0085] Preferably, according to another embodiment, the medication delivery device is adapted to be attached to two or more cassettes.
[0086] Preferably, according to another embodiment, two or more cassettes are stacked on top of each other.
[0087] Preferably, according to another embodiment, the medication delivery device is adapted to be attached to a cassette comprising a plurality of medication containers.
[0088] Preferably, according to another embodiment, the medication delivery device comprises a user interface attached to the reusable body.
[0089] Preferably, according to another embodiment, the user interface is electrically connected to the processor.
[0090] Preferably, according to another embodiment, the user interface is a button that protrudes from the exterior surface of the reusable body.
[0091] Preferably, according to another embodiment, the user interface is a screen or touch panel located on the exterior surface of the reusable body.
[0092] Preferably, according to another embodiment, the medication delivery device comprises a display.
[0093] Preferably, according to another embodiment, the medication delivery device comprises an orientation sensor so that the display, screen or touch panel can always be presented with the graphics facing right to the user.
[0094] Preferably, according to another embodiment, the medication delivery device comprises a wireless communication receiver connected to the processor, which may be based on, by way of non-limiting examples, radio frequency identification (RFID), near-field communication (NFC), Bluetooth, Bluetooth low energy (BLE), Ultra wide band (UWB), wireless fidelity (Wi-Fi), cellular communication, and infrared (IR) technologies.
[0095] Preferably, according to another embodiment, the medication delivery device comprises a wireless communication transmitter connected to the processor, which may be based on RFID, NFC, Bluetooth, BLE, UWB, Wi-Fi, cellular communication, and IR technologies, as non-limiting examples.
[0096] Preferably, according to another embodiment, the wireless communication receiver is adapted to receive a wireless signal from a remote device or information tag.
[0097] Preferably, according to another embodiment, the wireless communication transmitter is adapted to transmit a wireless signal to a remote device or information tag.
[0098] Preferably, according to another embodiment, the pressure sensor and / or the position sensor of the piston of the fluid-tight measuring chamber and / or the position sensor of the container carrier are electrically connected to the processor.
[0099] Preferably, according to another embodiment, the processor is configured to control the fluid pressure power source to output fluid into the fluid-tight chamber according to signals from a pressure sensor and / or a position sensor of the piston of the fluid-tight measuring chamber and / or a position sensor of the container carrier.
[0100] Thus, the drug delivery device provides the drug delivery system with real-time control of drug delivery operations. The system can have two control modes for drug dispensing: pressure control and flow control. In pressure-controlled embodiments, a set pressure may be maintained in a fluid-tight chamber, allowing drug outflow to be throttled by pressure on the drug delivery site, e.g., the patient's subcutaneous back pressure, and / or by drug, environmental, or system parameters, e.g., temperature-dependent viscosity, which reduces the drug's hydraulic resistance as the drug warms due to environmental conditions.
[0101] Alternatively, if the fluid pressure power source is a pneumatic power source, the flow rate may be controlled in a closed-loop manner using the ideal gas law and / or its simplifications, i.e., Boyle's law and Charles' law. The system may be configured to calculate (i.e., estimate) the remaining drug. The system may be configured to calculate (i.e., estimate) the remaining dose volume by measuring the pressure of a fixed interior space within the fluid-tight chamber and therefore calculating the void volume within the fluid-tight chamber based on the mass of fluid flowing into the fluid-tight chamber. This is achieved by continuously or periodically monitoring the dispensing of each drug via a processor and at least one of pressure sensor(s), position sensor(s) of the piston of the fluid-tight measuring chamber, and position sensor(s) of the container carrier. Note that in this example, the flow rate refers to the flow rate out of the drug container. The flow rate is not necessarily equal to the delivery rate of the drug contained in the drug container, i.e., the rate at which the user receives the drug from the drug delivery device (drug delivery rate). For example, if other rate control mechanisms are used, such as a pinch valve attached to the flexible tubing, the delivery rate of the contained medication may differ from the flow rate. Alternatively, if no other rate control is used, such as if a flexible bag is attached to the medication delivery member, such as the needle in this example, the flow rate is substantially equal to the delivery rate of the medication contained within the medication container.
[0102] Furthermore, in an example where the fluid pressure power source is a pneumatic power source, the volume of the drug in the drug container can be determined using the ideal gas law and its simplifications, such as Boyle's law and Charles's law. The application of the ideal gas law is important for the operation of the volume measurement system (flow rate control, drug volume sensing). This is because the volume of an abstract geometric shape cannot be directly investigated by known cost-effective detection methods. However, for commercially providing this device, it is unlikely that this system uses a pure ideal gas, and the use of ambient air is very advantageous. Therefore, the ideal gas law PV = nRT is directly applicable to an ideal gas, but it does not fully represent ambient air. By introducing the compressibility factor z into the ideal gas law, a general application PV = znRT to ambient air becomes possible. At predictable system temperatures and pressures (280 - 310 K, 1 - 10 bar), 0.9992 < z < 1.0004, and thus air can be approximated as an ideal gas. Alternatively, to compensate for the inherent sensitivity to environmental variables and improve pump performance in the presence of environmental uncertainties, the drug delivery device may optionally include an atmospheric pressure sensor and / or an ambient temperature sensor, a "compensation block", so that the calculation can be calibrated based on the detection from the compensation block.
[0103] To further simplify the equation, it is clear that the temperature term T does not have a significant effect, since its predictable values are within the narrow range of 280–310 K. Even if the air volume starts at 280 K and rises to 310 K over the course of the volume-sensing operation, the temperature term alone cannot cause a reduction in volume estimation accuracy of more than ±5%. This is a very conservative case, since the control air temperature is likely dominated by the drug container enclosure temperature and indirectly by ambient room temperature. Furthermore, because the container carrier can be vented to ambient air (e.g., via a release valve), the air within the container carrier is approximately room temperature, which would not introduce any temperature-based inaccuracies. Allowing for a ±5% measurement sensitivity in this step is likely clinically acceptable, and is much more sensitive than volume verification methods currently in pharmacy practice, especially since they do not include the capability for empirical evaluation. However, the introduction of a system air temperature sensor or a local container carrier air temperature sensor would eliminate the uncertainty due to the temperature difference between room temperature air and the cassette's internal air. Obviously, injection and infusion are used herein, but the accuracy of the system can be determined on a case-by-case basis given the physiological route of administration and the appropriate clinical parameters therefor.
[0104] In a preferred system control model, the reduced ideal gas law is: PV ∝ nR, where nR represents the number or mass m of molecules in the system, so the reduction is therefore PV ∝ m; V ∝ mI P. To determine the void volume of the system at any given time, the system must track the mass transferred to the control volume, for example, via a known relationship between the drive parameters and the injected mass, or via a comparison proxy control region of known volume into which air is dispensed, such as a traditional accumulator model. In the volume estimation step, it is important that the unfilled volume of the drug cassette and the internal air volume of the device are known. This is because the volume estimation device is estimating the air volume of the system, and the filled volume of the drug is equal to the difference between the air volume of an unfilled system and the air volume of a filled system.
[0105] The ability to determine the volume of medication in the medication container is particularly advantageous because the system is insensitive to the initial fill and can be determined without knowledge of the initial fill volume based solely on the change in mass (i.e., no programming step is required). Thus, directly calculating the volume of medication in the medication container provides the unique advantage of a blind, third-party verification of the medication contained in the medication container prior to use, thereby determining the initial state of the medication container.
[0106] Furthermore, in another example, the flow rate is not sensed directly. Rather, the system repeatedly calculates the void volume of the system. Given that the only way the void volume can change is due to liquid exiting the drug container, the rate of change of the void volume is equal to the liquid flow rate.
[0107] To avoid the noise observed in liquid flow rate calculations when adjacent void volume measurements are used, the measurements can be filtered to obtain a cleaner signal. One such approach involves a buffer and linear regression. At each controller evaluation, the initial conditions of the vessel carrier (calculated by the ideal gas law and its simplifications) are added to a buffer, and a linear regression is performed on the buffer. The slope of the regression line is the flow rate.
[0108] The system allows for continuous control of flow rate by: determining a target flow rate by continuous fluid delivery into the fluid-tight chamber while monitoring pressure; removing fluid from the fluid-tight chamber while monitoring pressure, entering from a fluid pressure power source; and / or abruptly stopping flow (e.g., during an emergency or systemic infusion reaction) by delivering built-up pressure or venting the fluid-tight chamber, reducing pressure around the cassette or a receiving vessel contained within the cassette, and eliminating the cause of all forward fluid movement. For example, the system can control a release valve to release fluid around the cassette or a receiving vessel contained within the cassette based on detection from one or more connected sensors. The system allows for flow rate changes during drug delivery operations, such as may be required during rate-adjusted regimens common in oncology, allowing each cassette to have a desired flow rate that can be independently configured. Different drug cassettes or container carriers may be combined in any desired order, and each cassette may have any desired fluid volume and may be delivered at a desired flow rate, regardless of viscosity, volume, or other drug, patient, or system configuration (e.g., cannula gauge) parameters.
[0109] Additionally, in another example, the system may include a target maintenance mechanism. In this example, since ideally there is a linear relationship between pressure and liquid flow rate, the target maintenance period simply adjusts the system's pressure target in proportion to the measured flow error. The flow error is interpreted as the ratio between the target liquid flow rate and the measured liquid flow rate, rather than the difference. The pressure target adjustment method can take many forms, but all essentially provide the flow error as an input for response adjustment. Several controllers may be used, such as a Proportional Integral (PI) controller, a Proportional-Integral-Derivative (PID) controller, or a bang-bang controller.
[0110] Furthermore, if the drug delivery member is an injection needle or an insertion needle with a soft cannula, the system may also detect needle withdrawal when a drop in pressure within the fluid-tight chamber is detected.
[0111] Preferably, according to another embodiment, the intentional break point can be located near the needle terminal end, such that if the delivery tube is pulled in a manner that would normally remove the needle from the patient's skin, the tube will instead break at this junction, separating the delivery tube from the needle end.
[0112] This rupture has the effect of eliminating the pressure drop associated with the needle and subcutaneous tissue back pressure, thus reducing the upstream driving pressure for drug delivered at a controlled flow rate.
[0113] In a drive system capable of continuously monitoring the pressure and / or flow rate of the drug exiting the drug container, these sudden changes in flow can be detected and indicate separation of the delivery tube from the terminal needle, presenting an error condition that stops the injection.
[0114] Preferably, according to another embodiment, a fluid pressure power source is connected to the fluid-tight chambers of the two container carriers, and the processor is configured to control the fluid pressure power source to selectively output fluid to at least one of the fluid-tight chambers.
[0115] Preferably, according to another embodiment, the processor is configured to control the fluid pressure power source to selectively output fluid into at least one of the fluid-tight chambers according to signals from a pressure sensor and / or a position sensor of the piston of the fluid-tight measuring chamber and / or a position sensor of the container carrier.
[0116] Preferably, according to another embodiment, the processor is configured to control the fluid pressure power source to output a specific volume of fluid, which may be predetermined or dependent on signals from a pressure sensor and / or a position sensor of the piston of the fluid-tight measuring chamber and / or a position sensor of the container carrier, such that only the specific volume of medicament contained in the medicament container can be forced out through the fluid outlet.
[0117] Preferably, according to another embodiment, the fluid pressure power source comprises a piezoelectric pump configured to output fluid from the fluid pressure power source. Also, it is preferred to use a piezoelectric pump as the pneumatic power source. The use of a piezoelectric pump can be advantageous as it can provide quiet or silent operation and can provide lower power operation compared to motor-driven solutions.
[0118] Preferably, according to another embodiment, the fluid pressure power source comprises a motor-based fluid pump configured to cause fluid to be output from the fluid pressure power source.
[0119] Preferably, according to another embodiment, where lower cost or complexity is desired, the fluid pressure power source comprises a piston pump.
[0120] Preferably, according to another embodiment, when the fluid pressure power source is a pneumatic power source, the pneumatic power source is a well-controlled diaphragm pump when lower cost or complexity is desired.
[0121] Preferably, according to another embodiment, when the fluid pressure power source is a pneumatic power source, the pneumatic power source includes an electronic engine, e.g., a MEMS engine, and a liquid substance, in this example, the engine configured to cause an electrochemical reaction in the liquid substance to produce a propellant gas.
[0122] Preferably, according to another embodiment, the fluid pressure power source is a fluid pump having an inlet fluidly connected to the environment and an inlet filter connected to the inlet of the fluid pump, the inlet filter being connected to the fluid pump so as to prevent contamination from the environment, e.g., dust, from entering the fluid pump.
[0123] Preferably, according to another embodiment, the fluid pressure power source comprises a pump outlet check valve followed by a downstream controllable release valve (vented to atmosphere), a flow sensor, a pressure sensor and an outlet filter connected to the fluid tight chamber.
[0124] Preferably, according to another embodiment, the fluid pressure power source comprises a pressurized fluid canister configured to cause fluid to be output from the fluid pressure power source.
[0125] Preferably, according to another embodiment, when the fluid pressure power source is a pneumatic power source, the pneumatic power source comprises a pressurized gas canister.
[0126] According to another embodiment, the drug delivery device is preferably an infusion device.
[0127] Preferably, according to another embodiment, the fluid pressure power source is a pneumatic power source. In this embodiment, the fluid output from the fluid pressure power source is a gas, such as air or nitrogen.
[0128] Preferably, according to another embodiment, the fluid pressure power source is a hydraulic power source. In this embodiment, the fluid output from the fluid pressure power source is a liquid, such as water or oil.
[0129] Yet another aspect of the present invention provides a method of controlling a medication delivery device, the medication delivery device comprising a fluid pressure power source, which is a pneumatic power source, as set forth in any of the above-described embodiments. The medication delivery device comprises a fluid-tight chamber, as set forth in any of the above-described embodiments, the fluid-tight chamber containing a medication container. The medication container is a flexible bag having a fluid outlet. The flexible bag contains a medication. The method comprises the following steps, in the following order: receiving at least one of a pressure level measurement of fluid pressure within the fluid-tight chamber and a flow rate measurement of the rate at which the medication exits the fluid outlet of the flexible bag; retrieving information from a database using the received measurements; and Providing a signal based on the obtained information to cause one or more electronic components of the medication delivery device to perform an action or to stop a currently executing action of one or more electronic components of the medication delivery device.
[0130] The method is configured to monitor conditions within the fluid-tight chamber and adjust the drug delivery operation accordingly by monitoring the pressure level within the fluid-tight chamber and / or the rate of drug exiting the fluid outlet of the flexible bag. As a result, for example, an overshoot situation of the pneumatic power source and / or the entire drug delivery system can be avoided, thereby protecting the pneumatic power source and the drug delivery device. Furthermore, user behavior, for example, premature drug delivery member removal, can be tracked.
[0131] This method can also be used to calculate the actual delivered drug and / or the remaining drug in the drug container by examining the drug actually filled in the drug container and comparing the initial examination volume of the drug with the examination volume after use of the drug. Note that the calculation of the filled volume of the drug is based on a pressure level measurement of the fluid pressure in the fluid-tight chamber. Therefore, the measurement can be obtained by directly measuring the pressure level in the fluid-tight chamber or can be calculated using the velocity (flow rate measurement) of the drug exiting the fluid outlet of the flexible bag. Furthermore, to calculate the filled volume of the drug, the pressure level measurement of the fluid pressure in the fluid-tight chamber can be a positive pressure level or a negative pressure level. For example, the pneumatic fluid power source can be controlled to input a certain amount of fluid, e.g., gas, air, into the fluid-tight chamber to measure the drug fill volume (a certain amount of fluid will be released from the release valve after calculation of the filled volume of the drug and before the drug delivery operation). Alternatively, the pneumatic fluid power source can be controlled to draw fluid, e.g., gas, air, between the fluid-tight chamber and the flexible bag when a drug fill volume calculation is performed based on vacuum magnitude information.
[0132] Preferably, according to another embodiment, the step of receiving at least one of a pressure level measurement of the fluid pressure in the fluid-tight chamber and a flow rate measurement of the flow rate of the drug exiting the fluid outlet of the flexible bag comprises the step of receiving a pressure level measurement of the fluid pressure in the fluid-tight chamber and a flow rate measurement of the flow rate of the drug exiting the fluid outlet of the flexible bag.
[0133] Preferably, according to another embodiment, the step of retrieving information from the database using the received measurements comprises the following steps in the following order: calculating values based on the received measurements using the ideal gas law and its simplifications; comparing the calculated value with a predetermined value; and A step of generating a comparison result.
[0134] Preferably, according to another embodiment, the step of generating the compared result and retrieving information from the database using the received measurements further comprises the step of providing the retrieved information by matching the compared result with information from the database.
[0135] Preferably, according to another embodiment, after the step of generating the compared result, the step of retrieving information from the database using the received measurements further comprises the step of providing the retrieved information by providing the compared result.
[0136] Preferably, according to another embodiment, the obtained information relates to at least one of the actual filled volume of the drug in the drug container, the volume of drug remaining in the drug container after use, air in the delivery tube, the delivery member being away from the delivery site, and delivery blockage.
[0137] Preferably, according to another embodiment, the predetermined value relates to at least one of the volume of the drug container, the volume of drug contained in the drug container, the target flow rate of the drug out of the fluid outlet of the flexible bag, the target pressure level of the fluid pressure in the fluid-tight chamber, the previously received flow rate of the drug out of the fluid outlet of the flexible bag, the previously received pressure level of the fluid pressure in the fluid-tight chamber, the previously calculated volume of drug contained in the drug container.
[0138] Preferably, according to another embodiment, the predetermined value is received from an information tag on the medication container.
[0139] Preferably, according to another embodiment, the operation of one or more electronic components of the drug delivery device is configured to perform or stop at least one of providing instructions to a user of the drug delivery device, drug delivery operations, transmitting data to a remote server, adjusting the pressure level of the fluid pressure in the fluid-tight chamber, and adjusting the drug release rate from the fluid outlet of the flexible bag, depending on the signal provided.
[0140] Preferably, according to another embodiment, the processor of the medication delivery device as set forth in any one of the above embodiments is configured to perform the method according to any one of the above embodiments.
[0141] Preferably, according to another embodiment, the fluid-tight chamber of the cassette is operably connected to a pressure sensor configured to measure a pressure level measurement of the fluid pressure within the fluid-tight chamber and / or a flow sensor configured to measure the rate at which the drug exits the fluid outlet of the flexible bag.
[0142] Preferably, according to another embodiment, the cassette is operatively connected to a pressure sensor and a flow sensor.
[0143] Preferably, according to another embodiment, the cassette comprises a pressure sensor and a flow sensor.
[0144] Preferably, according to another embodiment, the reusable body of the medication delivery device comprises a processor.
[0145] Preferably, according to another embodiment, the processor is electrically connected to the fluid pressure power source.
[0146] Preferably, according to another embodiment, the processor is electrically connected to the pressure sensor and the flow sensor when the cassette is attached to the reusable body of the medication delivery device.
[0147] Preferably, according to another embodiment, the reusable body of the medication delivery device comprises a communication unit configured to read an information tag on the medication cassette when the cassette is attached to the reusable body of the medication delivery device.
[0148] Preferably, according to another embodiment, the communication unit is electrically connected to the processor.
[0149] Preferably, according to another embodiment, the communication unit is an RFID / NFC reader and / or an RFID / NFC writer.
[0150] The drug delivery devices described herein can be used for the treatment and / or prevention of one or more of many different types of disorders. Exemplary disorders include, but are not limited to, rheumatoid arthritis, inflammatory bowel disease (e.g., Crohn's disease and ulcerative colitis), hypercholesterolemia, diabetes (e.g., type 2 diabetes), psoriasis, migraines, multiple sclerosis, anemia, lupus, atopic dermatitis, asthma, nasal polyps, acute hypoglycemia, obesity, anaphylaxis, and allergies. Exemplary types of drugs that can be included in the drug delivery devices described herein include, but are not limited to, small molecules, hormones, cytokines, blood products, antibodies, antibody-drug conjugates, bispecific antibodies, proteins, fusion proteins, peptibodies, polypeptides, pegylated proteins, protein fragments, protein analogs, protein variants, protein precursors, chimeric antigen receptor T-cell therapy, cell or gene therapy, oncolytic viruses, or immunotherapies and / or protein derivatives.Exemplary drugs that may be included in the drug delivery devices described herein include, but are not limited to (non-limiting examples of associated disorders are shown in parentheses): etanercept (rheumatoid arthritis, inflammatory bowel disease (e.g., Crohn's disease and ulcerative colitis)), evolocumab (hypercholesterolemia), exenatide (type 2 diabetes), secukinumab (psoriasis), erenumab (migraine), alirocumab (rheumatoid arthritis), methotrexate or amethopterin (rheumatoid arthritis), tosiri Zumab (rheumatoid arthritis), interferon beta-1a (multiple sclerosis), sumatriptan (migraine), adalimumab (rheumatoid arthritis), darbepoetin alfa (anemia), belimumab (lupus), peginterferon beta-1a' (multiple sclerosis), sarilumab (rheumatoid arthritis), semaglutide (type 2 diabetes, obesity), dupilumab (atopic dermatitis, asthma, nasal polyps, allergies), glucagon (acute hypoglycemia), epinephrine (anaphtheria) Insulin (diabetes), atropine and vedolizumab (inflammatory bowel disease (e.g., Crohn's disease and ulcerative colitis)), ipilimumab, nivolumab, pembrolizumab, atezolizumab, durvalumab, abelamab, cemiplimab, rituximab, trastuzumab, ado-trastuzumab emtansine, fam-trastuzumab deruxtecan-nxki, pertuzumab, transtuzumab-pertuzumab, alemtuzumab, belantamab-mafodo Pharmaceutical formulations comprising, but not limited to, any of the drugs described herein, for example, a pharmaceutical formulation comprising a drug listed herein (or a pharmaceutically acceptable salt thereof) and a pharmaceutically acceptable carrier, are also contemplated for use in the drug delivery devices described herein.Pharmaceutical formulations containing the drugs listed herein (or pharmaceutically acceptable salts of the drugs) may contain one or more other active ingredients, or may be the only active ingredient present.
[0151] Exemplary drugs that may be included in the drug delivery devices described herein include, but are not limited to, immuno-oncology or bio-oncology agents such as immune checkpoints, cytokines, chemokines, differentiation clusters, interleukins, integrins, growth factors, enzymes, signaling proteins, pro-apoptotic proteins, anti-apoptotic proteins, T cell receptors, B cell receptors, or costimulatory proteins.
[0152] Exemplary drugs that may be included in the drug delivery devices described herein include, but are not limited to, HER-2 receptor modulators, interleukin modulators, interferon modulators, CD38 modulators, CD22 modulators, CCR4 modulators, VEGF modulators, EGFR modulators, CD79b modulators, Trop-2 modulators, CD52 modulators, BCMA modulators, PDGFRA modulators, SLAMF7 modulators, PD-1 / PD-L1 inhibitors / modulators, B lymphocyte antigen CD19 inhibitors, B lymphocyte antigen CD20 modulators, CD3 modulators, CTLA-4 modulators, TIM-3 modulators, and the like. and those that exhibit a proposed mechanism of action, such as modulators, VISTA modulators, INDO inhibitors, LAG3 (CD223) antagonists, CD276 antigen modulators, CD47 antagonists, CD30 modulators, CD73 modulators, CD66 modulators, CDw137 agonists, CD158 modulators, CD27 modulators, CD58 modulators, CD80 modulators, CD33 modulators, APRIL receptor modulators, HLA antigen modulators, EGFR modulators, B lymphocyte cell adhesion molecule modulators, CDw123 modulators, Erbb2 tyrosine kinase receptor modulators, mesothelin modulators, HAVCR2 antagonists, NY-ESO-1 OX40 receptor agonist modulators, adenosine A2 receptors, ICOS modulators, CD40 modulators, TIL therapy, or TCR therapy.
[0153] Exemplary drugs that may be included in the drug delivery devices described herein include AC, high-dose AC, TCH, GT, EC, TAC, TC, TCHP, CMF, FOLFOX, mFOLFOX6, mFOLFOX7, FOLFCIS, CapiOx, FLOT, DCF, FOLFIRI, FOLFIRINOX, FOLFOXIRI, IROX, CHOP, R-CHOP, RCHOP-21, Mini-CHOP, Maxi-CHOP, VR-CAP, high-dose CHOP, EPOCH, dose-adjusted EPOCH, R-EPOCH, CODOX-M, IVAC, HyperCVAD, R-HyperCVAD, SC-EPOCH-RR, DHAP, ESHAP, GDP, ICE, MINE, CEPP, CDOP, GemOx, CEOP, CEPP, CHOEP, CHP, GCVP, DHAX, CALGB 8811, HIDAC, X, CALGB, HIDAC, MOpAd, 7+3, 5+2, 7+4, MEC, CVP, RBAC500, DHA-Cis, DHA-Ca, DHA-Ox, RCVP, RCE PP, RCEOP, CMV, DDMVAC, GemFLP, ITP, VIDE, VDC, VAI, VDC-IE, MAP, PCV, FCR, FR, PCR, HDMP, OFAR, EMA / CO, EMA / EP, EP / EMA, TP / TE, BEP, TIP, VIP, TPEx, ABVD, BEACOPP, AVD, Mini-BEAM, IGEV, C-MOPP, GCD, GEMOX, CAV, DT- Multidrug therapy regimens include PACE, VTD-PACE, DCEP, ATG, VAC, VelP, OFF, GTX, CAV, AD, MAID, AIM, VAC-IE, ADOC, or PE.
[0154] Exemplary drugs that may be included in the drug delivery devices described herein include, but are not limited to, those used in chemotherapy, such as alkylating agents, plant alkaloids, antitumor antibiotics, antimetabolites, or topoisomerase inhibitors, enzymes, retinoids, or corticosteroids. Exemplary chemotherapeutic agents include, by way of example and not limitation, 5-fluorouracil, cisplatin, carboplatin, oxaliplatin, doxorubicin, daunorubicin, idarubicin, epirubicin, paclitaxel, docetaxel, cyclophosphamide, ifosfamide, azacitidine, decitabine, bendamustine, bleomycin, bortezomib, busulfan, cabazitaxel, carmustine, cladribine, cytarabine, dacarbazine, etoposide, fludarabine, gemcitabine, irinotecan, leucovorin, melphalan, methotrexate, pemetrexed, mitomycin, mitoxantrone, temsirolimus, topotecan, valrubicin, vincristine, vinblastine, or vinorelbine.
[0155] Moreover, all terms used in the claims should be interpreted according to their ordinary meaning in the art unless expressly defined otherwise herein. All references to "a / an, the, element, device, member, component, means, etc." should be interpreted broadly as referring to at least one instance of the element, device, member, component, means, etc., unless expressly stated otherwise. [Brief explanation of the drawings]
[0156] Embodiments of the inventive concept will now be described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1] FIG. 1 is a schematic diagram showing a cassette according to the present invention connected to a fluid pressure power source. [Figure 2A] 2A and 2B are schematic diagrams showing the fluid-tight chambers of the cassette of FIG. 1. Arrows in FIG. 2A are used to indicate the fluid transfer path from the fluid pressure power source. Arrows in FIG. 2B are used to indicate the fluid path of the drug from the drug container. [Figure 2B] 2A and 2B are schematic diagrams showing the fluid-tight chambers of the cassette of FIG. 1. Arrows in FIG. 2A are used to indicate the fluid transfer path from the fluid pressure power source. Arrows in FIG. 2B are used to indicate the fluid path of the drug from the drug container. [Figure 3A] 3A and 3B are schematic diagrams illustrating the fluid-tight chamber of the cassette of FIG. 1 in another embodiment. Arrows in FIG. 3A are used to indicate the path of fluid travel from the fluid pressure power source. Arrows in FIG. 3B are used to indicate the path of fluid travel as it is drawn from the fluid-tight chamber by a vacuum device. [Figure 3B] 3A and 3B are schematic diagrams illustrating the fluid-tight chamber of the cassette of FIG. 1 in another embodiment. Arrows in FIG. 3A are used to indicate the path of fluid travel from the fluid pressure power source. Arrows in FIG. 3B are used to indicate the path of fluid travel as it is drawn from the fluid-tight chamber by a vacuum device. [Figure 4] FIG. 2 is a schematic diagram illustrating the cassette of FIG. 1 in another embodiment. [Figure 5] 2 is a schematic diagram illustrating the cassette of FIG. 1 having a container carrier with multiple fluid-tight chambers. [Figure 6] 2 is a schematic diagram illustrating another example of the cassette of FIG. 1 having a container carrier with multiple fluid-tight chambers. [Figure 7] FIG. 2 is a schematic diagram showing the cassette of FIG. 1 connected to a fluid pressure power source via a transmission tube. [Figure 8] 1 is a schematic diagram showing a fluid-tight chamber having a fluid-tight measurement chamber. [Figure 9] 1 is a perspective view showing a drug delivery device including a cassette of the present invention; [Figure 10] FIG. 10 is a perspective view of another medication delivery device comprising a cassette of the present invention. [Figure 11] FIG. 10 is a schematic diagram illustrating the drug delivery device of FIG. 9 in another embodiment. [Figure 12] FIG. 1 is a perspective view of an example fluid-tight chamber. [Figure 13]1 is a schematic diagram illustrating a medication delivery device having multiple fluid-tight chambers, each directly connected to a fluid pressure power source; [Figure 14] 1 is a schematic diagram illustrating a drug delivery device having multiple fluid-tight chambers, one of which is directly connected to a fluid pressure power source and the remaining fluid-tight chambers are indirectly connected to the fluid pressure power source through at least one of the other fluid-tight chambers. [Figure 15] 1 shows a perspective view of a medication delivery device in which the concepts described herein may be implemented.The medication delivery device includes a body and a hinged lid. [Figure 16] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body having a side cavity through which a cassette may be loaded into the reusable body. [Figure 17] Figure 16 is a perspective view of the medication delivery device of Figure 15. The medication delivery device includes a user wearable feature. A possible wearable feature is a strap. [Figure 18] Figure 17 is a perspective view of the medication delivery device of Figure 16. The medication delivery device includes a user-wearable feature. A possible wearable feature is a strap. [Figure 19] Figure 16 is a perspective view of the medication delivery device of Figure 15. The medication delivery device includes a user-wearable feature. A usable wearable feature is a belt clip. [Figure 20] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers and a user-wearable feature attached to the reusable body, the user-wearable feature being a neck strap. [Figure 21]1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers and a user-wearable feature attached to the reusable body, the user-wearable feature being a neck strap. [Figure 22] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers and a user-wearable feature attached to the reusable body, the user-wearable feature being a neck strap. [Figure 23] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers and a user-wearable feature attached to the reusable body, the user-wearable feature being a neck strap. [Figure 24] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers, the reusable body comprising a body and a lid; [Figure 25A] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers, the reusable body comprising a body and a lid; [Figure 25B] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers, the reusable body comprising a body and a lid; [Figure 25C] 1 is a perspective view of a medication delivery device in which the concepts described herein may be implemented, the medication delivery device comprising a reusable body connected to a plurality of fluid-tight chambers, the reusable body comprising a body and a lid; [Figure 26] FIG. 17 is a perspective view of the drug delivery device of FIG. 16. [Figure 27] 1 is a schematic diagram illustrating a fluid pressure power source of the present invention. [Figure 28] 1 is a schematic diagram illustrating a fluid pressure power source of the present invention. [Figure 29] 1 is a schematic diagram illustrating a medication delivery device of the present invention showing a fluid pressure power source and including a multi-port valve. [Figure 30] 1 is a schematic diagram illustrating a medication delivery device of the present invention showing a fluid pressure power source and including a multi-port valve. [Figure 31] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 32] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 33] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 34A] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 34B] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 34C] 10A and 10B are perspective views showing different examples of the cassette of the present invention; [Figure 35] 4 is a control flowchart of the fluid pressure power source of the present invention. [Figure 36] 1 is a graph showing the relationship between pressure and flow rate. [Figure 37A] FIG. 10 is a perspective view showing another example of a drug delivery device of the present invention. [Figure 37B] FIG. 10 is a perspective view showing another example of a drug delivery device of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0157] 1 to 37B show some exemplary cassettes 1;1";1"' of a drug delivery device 2;2;2". The drug delivery device 2;2;2" comprises a reusable body 20;20';20"20"' comprising a fluid pressure power source 21. The fluid pressure power source can be a pneumatic power source or a hydraulic power source. The pneumatic power source is configured to output gas to the cassette to expel the contained drug by increasing the fluid pressure of the gas, and the hydraulic power source is configured to output liquid to the cassette to expel the contained drug by increasing the fluid pressure of the liquid. In a preferred example, the drug delivery device 2 is a portable device. The cassette 1;1";1"' comprises a container carrier 10 and drug containers M;Ma, Mb, Mc, Md;Ma', Mb', Mc', Md'.
[0158] The medicament containers M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md' are configured to be at least partially contained within the container carriers 10; 10'; 10''; 10''' 10a'', 10b'', 10c'', 10d''. The medicament containers M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md' include bodies M0; M0'; M0''; M0a, M0b; M0a, M0a', M0a'', M0b, M0b'; M0b'' and fluid outlets M1; M1'; Ma1, Mb1, Mc1. The bodies M0; M0'; M0''; M0a, M0b; M0a, M0a', M0a'', M0b, M0b'; M0b'' are configured to contain a medicament. The drug contained within the body M0;M0';M0'';M0a, M0b;M0a, M0a', M0a'', M0b, M0b';M0b'' is configured to move out of the body M0;M0';M0'';M0a, M0b;M0a, M0a', M0a'', M0b, M0b';M0b'' through the fluid outlets M1;M1';M1'';Ma1, Mb1, Mc1.
[0159] Each component of the cassette, including optional components, will be described in detail first, and examples of cassettes containing different combinations of the described components will be described in detail later.
[0160] The bodies M0; M0'; M0"; M0a, M0b; M0a, M0a', M0a", M0b, M0b'; M0b" include flexible portions. In a preferred example, the bodies M0; M0'; M0"; M0a, M0b; M0a, M0a', M0a", M0b, M0b'; M0b" include a flexible bag and / or a flexible tube. Note that in some examples below, when the delivery tube is referred to as being flexible, the terms "delivery tube" and "flexible tube" are used interchangeably. In other words, when the delivery tube is flexible, the delivery tube may be a flexible tube of the body of the drug container. In one example, the body M0 includes a flexible bag M0a configured to contain a drug, as shown in FIGS. 2A-2B . In this example, the flexible portion of the body M0 is defined by the flexible bag. In this example, the fluid outlet M1 can be directly connected to the drug delivery member 23 of the drug delivery device, such as a steel syringe needle, or the fluid outlet M1 is configured to be operably connected to the drug delivery member 23. For example, as shown in FIGS. 32-34C, the fluid outlet M1 is operably connected to one end of a delivery tube 31, the other end of which is connected to the drug delivery member 23, or the main body M0 comprises a rigid delivery tube connected to the main body M0. The rigid delivery tube defines the fluid outlet M1. Alternatively, the main body M0' comprises a delivery tube M0b, which in this example is flexible. In this example, the flexible portion of the main body M0' is defined by a portion of the delivery tube M0b. In this example, the main body M0' can be partially made of a rigid material, such as a glass ampoule, and can be assembled with / integrated with the delivery tube M1'. In this example, the delivery tube M1′ defines a fluid outlet M1, which means that the flexible delivery tube M1′ can be connected to the drug delivery member 23.
[0161] In one preferred example, the body of the medication container comprises a flexible bag received within a fluid-tight chamber.
[0162] In a preferred example, the body of the drug container includes a flexible bag and flexible tubing; or the body of the drug container includes a flexible bag configured to be operably connected to the flexible tubing 31 (not part of the body). In this example, regardless of whether the flexible portion of the body configured to be pressed by fluid from the fluid pressure power source is part of the flexible bag or part of the flexible tubing (if the body includes the flexible tubing), the delivery rate of the drug contained in the drug container can be controlled by manipulating the flexible tubing. For example, a pinch valve can be attached to the flexible tubing, and the delivery rate of the drug contained in the drug container (drug delivery rate) can be adjusted via the pinch valve. Preferably, in this example, a flow meter can be connected to the flexible tubing to measure the delivery rate of the drug contained in the drug container. The flow meter can be a pinwheel sensor, an ultrasonic sensor, and / or a calorimetric sensor. Note that the drug delivery rate may not be equal to the flow rate (flow rate) of drug out of the drug container because the rate control arrangement may be located outside the drug container, e.g., a pinch valve attached to flexible tubing that is not part of the body of the drug container.
[0163] In one example where the main body includes a delivery tube or the main body of the drug container includes a flexible bag configured to be operably connected to the flexible tube 31 (not part of the main body), the delivery tube optionally includes a tube valve M2. Additionally, in a preferred example, the tube valve M2 is a one-way valve that prevents the drug flowing through the delivery tube from flowing back toward the main body of the drug container M. Instead, the drug flowing through the delivery tube can only flow toward the fluid outlets M1; M1'; Ma1, Mb1, and Mc1. Additionally, in a preferred example, the tube valve M2 of the delivery tube is an umbrella valve, a spring-based valve, or a ball valve. It should be noted that the tube valve is a useful safety device. However, it is not necessarily a necessary component for the cassette of the present disclosure. For example, if the drug container is configured to stand upright relative to the ground, i.e., if the fluid outlet is facing the ground, the gravity of the drug within the main body can prevent the drug from flowing back toward the main body during use of a drug delivery device including the cassette of the present disclosure. Alternatively, if the drug container is configured to be subjected to a pressure high enough to expel the drug from the fluid outlet, this pressure may also prevent the drug from flowing back towards the body.
[0164] In one example, the container carriers 10; 10'; 10"; 10'"; 10a", 10b", 10c", 10d" comprise fluid-tight chambers 11; 11'; 11"; 11a'", 11b'", 11c'"; 11a''", 11b''", 11c''", 11d''"; 11'''", 11''"", 11a''""", 11b''""", 11c''""", 11d''"""; 11a''""", 11b''""", 11c''""", 11d''""". In this example, most of the connections between the components are pre-assembled, so that the drug delivery device can be easily used by an end user, who only needs to attach the cassette to the power source 21 and connect the delivery member 23 to the cassette. In one example, the fluid-tight chambers 11a''''''''', 10e'''''; 11a'''''''''', 11b'''''''' of the container carrier formed by container frames 11a'''''''''; 11a'''''''''' are configured to be attached to a drug container M, as shown in FIG. 32 and FIGS. 34A-34C. In one example, as shown in FIG. 32, the fluid-tight chambers 11a'''''''''' and 11b'''''''' of the container carrier are formed by container frame 11a''''''''' and internal chamber 10e'''''' of container carrier 10''''''. Alternatively, or additionally, the fluid-tight chambers 11a'''''''' and 11b'''''''' of the container carrier are formed by container frame 11a'''''''' and cap 11b'''''''' configured to be attached to container frame 11a''''''''.
[0165] The container frame 11a'''''''''; 11a'''''''''' is configured to surround the medication container M. In one example, the container frame 11a'''''''' is configured to surround the outer contour of the medication container M, as shown in FIG. 32. This example is suitable when the medication container is a flexible bag. Because the container frame supports the outer contour of the medication container, the risk of kinking during medication filling can be reduced. In this example, the container frame 11a'''''''' can be formed in a shape that matches the outer contour of the flexible bag. For example, if the flexible bag is approximately rectangular, the container frame can be a approximately rectangular ring configured to closely surround the outer contour of the flexible bag.
[0166] Alternatively or additionally, the container frame 11a'''''''''' is configured to receive a portion of the medication container M, as shown in FIGS. 34A-34C. In this example, the container frame comprises a cavity for at least partially receiving the flexible bag. In this example, more of the outer surface area of the flexible bag is surrounded by the container frame compared to the previous example.
[0167] Preferably, the cap includes a tubing set 3 (described in detail below). In a preferred example, the drug container M includes a fastener M4 configured to engage with one or more corresponding fasteners 30a, 30b of the cap. For example, the fastener M4 is a flange, and the corresponding fasteners 30a, 30b are protrusions. In one example, as shown in FIGS. 34A-34C, the cap includes a first set of corresponding fasteners 30a and a second set of corresponding fasteners 30b positioned closer to the piercing member 32 (described in detail below). In this example, the drug container M is attached to the second set of corresponding fasteners 30b, as shown in FIG. 34B, and is configured to be pressed to engage the first set of corresponding fasteners 30a before use, as shown in FIG. 34C. As a result, a fluid connection is established between the delivery tube 31 and the drug container M. For example, the medication container M may be pre-attached to a corresponding fastener 30b of the second set, as shown in FIG. 34B, so that the user can simply push the medication container to engage with a corresponding fastener 30a of the first set prior to use.
[0168] In one example, as shown in Figures 34A-34C, cap 11b'''''''''' and container frame 11a'''''''''' form a fluid-tight chamber. Alternatively, cap 11b'''''''''', container frame 11a'''''''', and interior chamber 10e'''''' of container carrier 10''''' form a fluid-tight chamber, as shown in Figure 33. Alternatively, as shown in Figure 32, container frame 11a'''' and interior chamber 10e'''''' of container carrier 10''''' form a fluid-tight chamber.
[0169] Pre-attachment can be performed by a care provider or on a production line. The cap is configured to seal to the container frame to form a fluid-tight chamber. In a preferred example, the cap is attached to the container frame via a threaded engagement, a snap-fit engagement, or clamped. In a preferred example, a rubber ring 4 is disposed between the cap 11b'''''''''' and the container frame 11a'''''''''' to enhance the fluid seal depending on the level of fluid seal required for the design. The cap can be dome-shaped with a delivery tube extending through the center of the dome-shaped cap, or the cap can be any suitable shape depending on the design of the container frame and / or container carrier.
[0170] In another example, the container carrier 10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d' does not completely include the fluid-tight chamber 11; 11'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11''''', 11'''''', 11a''''''', 11b''''''', 11c'''''''', 11d''''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''. Instead, the fluid-tight chamber 11;11';11'';11a''',11b''',11c''';11a'''',11b'''',11c'''',11d'''';11''''',11'''''',11a'''''''',11b''''''',11c''''''',11d''''''';11a'''''''''',11b'''''''''',11c'''''''',11d'''''''' is formed by a combination of the container carrier 10;10';10''10''''10a'',10b'',10c'',10d' and a part of the drug delivery device 2 including the cassette, i.e. the container carrier of the cassette is partially formed by the fluid-tight chamber 11;11';11'';11a'' , 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11''''', 11''''', 11a''''', 11b''''', 11c''''', 11d'''''; 11a, 11b, 11c, 11d, and the drug delivery device also partially comprises a fluid-tight chamber 11; 11'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''''; 11'''''', 11'''''', 11a''''''', 11b''''''', 11c''''''', 11d'''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''''', 11b'''''''', 11c'''''''', 11d''''''''.In other words, the fluid-tight chamber 11; 11'; 11"; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11''''', 11'''''', 11a''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d'''''''' is only formed when the cassette is attached to a portion of the drug delivery device, as shown in FIG. 16, for example. In this example, the container carrier 10; 10'; 10"; 10'''; 10a'', 10b'', 10c'', 10d' can be a chamber or a frame (described in detail later). In this example, the drug delivery device can be made compact and material costs can be reduced. Furthermore, the cassette comprises a container carrier 10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d', and multiple connection ports, such as connection ports to multiple delivery members and / or multiple connection ports to a power source 21, may be provided by the container carrier. Thus, an end user can easily connect a power source and / or a delivery member to the medicament container.
[0171] The fluid-tight chamber 11;11';11";11a''',11b''',11c''';11a'''',11b'''',11c'''',11d'''';11''''',11'''''',11a''''''',11b'''''''',11c'''''''',11d'''''''';11a'''''''',11b'''''''',11c'''''''',11d'''''''' comprises an inlet 110;110';110'';110'''';110'''';110a'. The inlet 110;110';110'';110'''';110'''';110'''';110a is configured to fluidly connect to an outlet 210 of a fluid pressure power source 21 of the reusable body of the medication delivery device 2. It should be noted that when the fluid pressure power source is a pneumatic power source, the fluid-tight chamber is airtight, and when the fluid pressure power source is a hydraulic power source, the fluid-tight chamber is airtight or liquid-tight.
[0172] The fluid-tight chamber 11;11';11'';11a''', 11b''', 11c''';11a'''', 11b'''', 11c'''', 11d'''';11''''', 11'''''', 11a'''''''', 11b'''''''', 11c'''''''', 11d'''''''';11a'''''''', 11b'''''''', 11c'''''''', 11d'''''''' are the body of the drug container M, M'; The inlets 110;110' are connected to the flexible portions of M0';M0'';M0a, M0b;M0a, M0a', M0a'', M0b, M0b';M0b'', and therefore, when the inlets 110;110' receive output fluid from the fluid pressure power source 21, the output fluid flows into the fluid-tight chambers 1111';11'';11''' and the drugs contained in the drug containers M;Ma, Mb, Mc, Md;Ma', Mb', Mc', Md' are pushed out under the pressure of the output fluid M1;M1'.
[0173] In one example, the body M0; M0'; M0a, M0b; M0a, M0a', M0a", M0b, M0b'; M0b" is at least partially contained within the fluid-tight chamber 1111'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11'''''', 11'''', 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''. In one example, the entire body M0 can be disposed within the fluid-tight chamber 11'''', as shown in FIGS. 8 and 32. In one example, the fluid outlet M1 extends outside of the fluid-tight chamber 11'''''. Alternatively, the fluid outlet M1''' is fluidly connected to a delivery tube 31'', as shown in FIG. 34C. In these two examples, the body M0 includes a flexible bag. In one example, as shown in FIG. 2A, when the body includes a delivery tube M0b' and the delivery tube M0b' is flexible, the fluid-tight chamber 11' includes a tube inlet 111' and a tube outlet 112'. In this example, the delivery tube is configured to be positioned between the tube inlet 111' and the tube outlet 112'. In a preferred example, the delivery tube M0b includes two tube valves M2, M2'. In a preferred example, the fluid-tight chamber 11' is configured to surround a portion of the delivery tube between the two tube valves M2, M2', as shown in FIGS. 3A-3B.
[0174] Alternatively, as shown in FIG. 4, the fluid-tight chamber 11'' is expandable. The fluid-tight chamber 11'' is adjacent to a flexible portion of the body M0 and is configured so that output fluid from the fluid pressure power source flows into the fluid-tight chamber 11'' and expands the fluid-tight chamber 11'' to press against the drug container M. In one example shown in FIG. 4, the body M0'' comprises a flexible bag, and the fluid-tight chamber 11'' is configured to expand when the output fluid from the fluid pressure power source flows into the fluid-tight chamber 11'', thereby pressing against the flexible bag, thus expelling the drug contained in the flexible bag. In this example, the flexible bag can be directly connected to the drug delivery member, or the flexible bag can comprise a flexible tube extending from the fluid-tight chamber 11'' and / or the container carrier. Alternatively, if the body comprises a flexible tube, the fluid-tight chamber 11'' is configured to expand when the output fluid from the fluid pressure power source flows into the fluid-tight chamber 11'', thereby pressing against the flexible tube. In a preferred example, the fluid-tight chamber is also a tube. In this example, the fluid-tight chamber is attached to one or more flexible tubes of the drug container body. In this example, a multi-lumen drug delivery tube is formed by at least one fluid-tight chamber tube and at least one flexible tube of the drug container body. In this example, one lumen of the multi-lumen drug delivery tube is connected to a fluid pressure power source, and another lumen of the multi-lumen tube is connected to the drug container.
[0175] In this example, the container carrier comprises a rigid container chamber, and the flexible portion and fluid-tight chamber of the medication container are at least partially disposed within the rigid container chamber of the container carrier.
[0176] The inlet 110; 110'; 110"; 110'"; 110""; 110a of the fluid-tight chamber is configured to be connected to the fluid pressure power source 21. For example, the outlet 210 of the fluid pressure power source 21 can be directly connected to the inlet 110; 110' of the fluid-tight chamber, or the outlet of the fluid pressure power source 21 can be connected to the inlet of the fluid-tight chamber via a transmission tube 22. In one example, the inlet 110''' of the fluid-tight chamber includes a valve 114; 114'. Alternatively, if the outlet of the fluid pressure power source 21 includes a valve, the inlet of the fluid-tight chamber may not include a valve. The valve may be a multi-way valve 114' (described in more detail below). Alternatively, the valve 114 may be a one-way valve, allowing fluid output from the fluid pressure power source 21 to flow only toward the fluid-tight chamber. In one example, the fluid-tight chamber is at least partially made of a rigid material. In one example where the fluid-tight chamber is made at least partially from a rigid material, the fluid-tight chamber is made from a plastic material that is structurally reinforced to form a wall of the fluid-tight chamber, such as a honeycomb matrix. In other words, the wall of the fluid-tight chamber is not flat; instead, it is provided with a honeycomb matrix or multiple rib protrusions. If the fluid-tight chamber is made from a rigid plastic, the rigid plastic wall may be fragile. For example, rigid plastic easily cracks when the cassette or a drug delivery device containing the cassette is dropped and hits a hard surface, such as a flat, hard surface. A structural reinforcement, such as a honeycomb matrix, can make the plastic wall more flexible and therefore more robust. Alternatively, the fluid-tight chamber is a secondary flexible bag 11'''' that completely encloses the drug container, as shown in FIG. 12. This can be achieved by a multi-layer bag assembly in which one port is the fluid outlet for the fluid-tight chamber and the other port is the fluid inlet for the fluid-tight chamber. Alternatively or additionally, the fluid-tight chamber may be cylindrical, and due to the self-reinforcing nature of the cylinder under internal pressure, the cylindrical fluid-tight chamber can achieve a high degree of structural stability under pressure without the excessive use of plastic.
[0177] In another example, as shown in FIG. 1 , the fluid-tight chamber 11 includes a release valve 115 configured to release fluid flowing into the fluid-tight chamber 11 from the fluid-tight chamber 11. The release valve is an optional safety design configured to immediately stop the drug delivery operation. For example, the release valve 115 can be connected to a user-accessible emergency button, which can be part of either the cassette or the reusable body 20; 20'; 20"; 20'" of the drug delivery device. Thus, when a user needs to stop the drug delivery operation, for example, due to an adverse drug reaction, the user can open the release valve 115 by activating, e.g., pushing / pulling, the emergency button. Thus, the flow of fluid in the fluid-tight chamber can be immediately released, thereby stopping the drug delivery operation. In addition, the release valve 115 can also be designed to release fluid flowing into the fluid-tight chamber from the fluid-tight chamber when the fluid pressure reaches a predetermined threshold. Thus, the pressure in the fluid-tight chamber can be controlled below a safe pressure value, e.g., a pressure value that will not damage the drug delivery device and / or the drug container.
[0178] Additionally, the release valve can be configured to slow the rate of drug delivery. In this example, a partial cassette decompression mechanism can be provided. This effect is intentional and controlled, and has the effect of reducing or (by closing the valve) re-increasing the flow rate of drug out of the drug container. In one preferred example, the release valve is connected to a rotatable orifice.
[0179] Furthermore, in an example where the bodies M0a and M0b include flexible tubing, the fluid-tight chamber 11′ includes an outlet 113′ configured to be connected to a vacuum device, and as shown in FIGS. 2B and 3B, when the pressure in the fluid-tight chamber decreases, the drug contained in the drug container is sucked into the flexible tubing. In this example, the delivered dosage may be more accurate. In this example, as shown in FIGS. 2B and 3B, when the pressure in the fluid-tight chamber 11′ decreases, a certain amount of drug is sucked into the flexible tubing. This certain amount of drug is then expelled out through the fluid outlet when fluid flows into the fluid-tight chamber 11′, as shown in FIGS. 2A and 3A. Preferably, in this example, the flexible tubing includes two tube valves M2 and M3 disposed between the tube inlet and the tube outlet of the fluid-tight chamber 11′. Therefore, any potential leakage of the drug in the fluid-tight chamber 11′, which may affect the accuracy of the dose, can be avoided. In one example, as shown in FIGS. 2A-3B, the fluid-tight chamber 11′ includes an opening as the inlet 110 and another opening as the outlet 113′. Alternatively, the inlet of the fluid-tight chamber is the outlet of the fluid-tight chamber. In this example, the drug delivery device includes a “Y”-shaped tube having a main tube portion connected to the fluid-tight chamber and two split tube portions. One of the split tube portions connects to a vacuum device, and the other connects to a pneumatic fluid source. Two valves can be disposed within the two split tube portions, respectively. It should be noted that the vacuum device and the fluid pressure power source can be two separable devices, such as two independent pumps, or one pump and one ventilator. Alternatively, the vacuum device can be part of the fluid pressure power source. For example, the fluid pressure power source can be a reversible pump.
[0180] In another example, the fluid-tight chamber 11 includes a pressure sensor 116, as shown in FIG. 1. Alternatively, the fluid-tight chamber 11''''' is coupled to a fluid-tight measuring chamber 13, as shown in FIG. 8. In this example, the container carrier 10''' includes the fluid-tight measuring chamber 13 and the fluid-tight chamber 11. The fluid-tight measuring chamber 13 is configured to be connected to a fluid pressure power source 21 and configured to be at the same fluid pressure level as the fluid-tight chamber 11''''. The fluid-tight measuring chamber includes a piston 130. The piston 130 is configured to be operably connected to a position sensor configured to sense the position of the piston 130 in the fluid-tight measuring chamber 13. In this example, the position sensor can be either part of the cassette or part of the drug delivery device. In this example, the pressure in the fluid-tight chamber can be measured based on the sensed position of the piston 130 in the fluid-tight measuring chamber 13. Alternatively, the container carrier includes a position sensor configured to detect the position of the drug container. In this example, the pressure in the fluid-tight chamber can be measured based on the sensed position of the drug container. For example, the position sensor may be configured to continuously capture images of the drug container. Thus, the pressure level within the fluid-tight chamber may be calculated, for example, based on image recognition techniques using images of the drug container exhibiting different levels of deformation. Furthermore, the drug cassette optionally includes a flow sensor.
[0181] The cassettes 1;1";1"' are configured to be attached to the reusable body 20;20';20";20'" of the medication delivery device 2. Preferably, the cassettes 1;1';1" are configured to be releasably attached to the reusable body of the medication delivery device 2. In this example, the user can replace it with a new cassette and return the used cassette after use. This example is suitable for users who need to obtain regular medication delivery. Alternatively, the cassettes can be permanently attached (by the user of the medication delivery device) to the reusable body of the medication delivery device. In this example, the user can return the entire medication delivery device after use. This example is suitable for users who need to receive highly regulated medications, for example, toxic or addictive medications. In one example, the cassette can be locked to the reusable body via a magnetic lock that can only be released by a tool, for example, a predetermined magnet array.
[0182] The cassettes 1 ; 1 ′; 1 ″ are attached to a drug delivery device 2 and the fluid outlets M 1 ; M 1 ′; Ma 1 , Mb 1 , Mc 1 are configured to be connected to a drug delivery member 23 of the drug delivery device 2 .
[0183] In one example, the cassette comprises a cassette housing. In this example, the container carrier is disposed within the cassette housing. Alternatively, the container carrier is configured to be operably attached to a reusable body of the medication delivery device. In this example, the cassette does not require a cassette housing. These two examples are suitable for container carriers that comprise a flexible portion, for example, when the fluid-tight chamber is made from a secondary flexible bag.
[0184] In another example, the cassette includes two drug containers. In one example, the cassette includes two container carriers 10a'', 10b'', as shown in Figures 5-6 and 31. The two container carriers 10a'', 10b'', each include two drug containers. The two container carriers 10a'', 10b'', each include at least two fluid-tight chambers 11a'''', 11b'''', and 11c'''. Figures 5 and 31 show an example in which the drug containers include flexible bags Ma, Mb, and Mc disposed in the fluid-tight chambers 11a'''', 11b'''', and 11c'''. In a preferred example, as shown in Figure 31, the two container carriers are stacked on top of each other. In an example without a cassette housing, multiple cassettes are stacked on top of each other. Alternatively or additionally, the cassette includes a cassette housing, and the two container carriers are stacked on top of each other within the cassette housing. FIG. 6 shows an example in which the bodies M0a and M0b of the drug containers include flexible tubes M0b disposed in fluid-tight chambers 11a'''', 11b'''', and 11c''''. Alternatively, the container carrier 10a''; 10''''' includes at least two fluid-tight chambers 11a''', 11b'''; 11a''''''''' and 10e'''''. In this example, the at least two fluid-tight chambers 11a'''', 11b''' are configured to accommodate two flexible portions of at least two bodies of two drug containers Ma and Mb, respectively. In one example, as shown in FIG. 32, the two fluid-tight chambers 11a'''''''''' and 10e'''''' can be formed by the container frame 11a'''''''''' and an internal chamber 10e''''' of the container 10'''''.
[0185] In one example, each drug container is provided with a fluidly separate connection to the patient so that the separate drugs do not mix during administration unless desired by the patient, e.g., each drug container is connected to its own drug delivery member 23a', 23b', 23c', 23d'.
[0186] In a preferred example, the cassette includes three or more drug containers, as shown in Figures 5-6, 13-14, 22, 24, and 32. In a preferred example, the multiple drug containers are housed in a cassette having a combination of multiple container carriers and multiple fluid-tight chambers. For example, the cassette includes three drug containers and two container carriers. In this example, one container carrier includes two fluid-tight chambers configured to house two drug containers each; the other of the container carriers includes one fluid-tight chamber configured to house a third drug container.
[0187] In a preferred example, the one-way valve 101 is disposed between the two fluid-tight chambers 11a'', 11b''. The two fluid-tight chambers 11a'', 11b'' may be part of one single container carrier, or may be contained in two container carriers, respectively, as shown in Figures 5 and 14.
[0188] In another preferred example, only one fluid-tight chamber 11a'' of the two fluid-tight chambers 11a'', 11b'' includes an inlet 110 configured to be fluidly connected to the fluid pressure power source 21. In this example, the drugs in the two drug containers, respectively, can be delivered sequentially to the patient. For example, the two drug containers can be configured to contain two different drugs, and only the first predetermined drug can be delivered completely to the patient while the second predetermined drug is being delivered to the patient.
[0189] For example, the one-way valve 101 between the two fluid-tight chambers 11 a″, 11 b″ is configured to open when a first fluid pressure threshold is reached. The valve 114 at the inlet 110′″ of the fluid-tight chamber, which is configured to be fluidly connected to the fluid pressure power source 21, is configured to open when a second fluid pressure threshold is reached. The first fluid pressure threshold is equal to or greater than the second fluid pressure threshold. Alternatively, the first fluid pressure threshold may be lower than the second fluid pressure threshold but greater than the resistance pressure from the tissue in which the drug delivery member is placed. In this example, the drug delivery member is a syringe needle or a soft cannula. The specific value of the resistance pressure depends on the target tissue, for example, muscle or subcutaneous tissue.
[0190] In one example where the fluid tight chamber includes a release valve 115, the predetermined threshold is greater than the second fluid pressure threshold. In another preferred example, the predetermined threshold is greater than the first fluid pressure threshold.
[0191] In one example where the fluid-tight chambers include an inlet 110' and an outlet 113', two one-way valves are disposed between the two fluid-tight chambers and configured to open in opposite directions. Alternatively, a multi-way valve can be disposed between the two fluid-tight chambers. The multi-way valves can be configured to open in different directions based on different pressure thresholds. The multi-way valves can be, for example, 2 / 2-way valves, 3 / 2-way valves, or 5 / 2-way valves.
[0192] Some examples of different cassettes are described in detail below.
[0193] In a first example, the cassette includes a container carrier 10 having one fluid-tight chamber 11. More specifically, in this example, the container carrier 10 is the fluid-tight chamber 11, as shown in FIG. 1 . In this example, the fluid-tight chamber 11 is made of a rigid material. In the first example, the body M0 of the drug container M is a flexible bag. The flexible bag is partially or completely contained within the fluid-tight chamber 11. When a fluid flows into the fluid-tight chamber 11, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from a fluid outlet M1 of the drug container M. In this example, the fluid outlet M1 of the drug container M is part of the flexible bag, as shown in FIG. 8 , and the fluid outlet M1 is configured to connect to a drug delivery member of the drug delivery device 2, 2, 2″ when the cassette is attached to the drug delivery device 2, 2, 2″. More specifically, the fluid outlet M1 of the drug container M is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber 11 optionally includes a release valve 115, as shown in FIG. 1. Furthermore, in a preferred example, the inlet 110 of the fluid-tight chamber 11 includes a one-way valve 114, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet 110 of the fluid-tight chamber 11 includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber 11 is made of a flexible material, such as a secondary flexible bag 11'''', as shown in FIG.
[0194] In a second example, the cassette includes a container carrier 10 having one fluid-tight chamber. More specifically, in this example, the container carrier 10 is the fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the second example, the body M0a, M0b of the drug container M is a combination of a flexible bag M0a and a flexible tube M0b extending from the flexible bag M0a to a delivery tube outlet, as shown in FIGS. 2A-2B. In this example, the delivery tube M0b is flexible. In this example, the fluid outlet M1' is the delivery tube outlet. The flexible bag M0a is partially or completely contained within the fluid-tight chamber, and when a fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby discharging at least a portion of the contained drug from the fluid outlet M1' of the drug container M. In this example, the fluid outlet M1' of the drug container M is configured to connect to a drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet M1' of the drug container M is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. Additionally, the fluid-tight chamber optionally includes a release valve 115, as shown in FIG. 1 . Additionally, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Additionally, the delivery tube M0b optionally includes a tube valve, which is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, configured to prevent any fluid from flowing back through the delivery tube M0b into the main body M0a of the drug container M, the flexible bag M0a of the M0b. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag M0a11'''', as shown in FIG. 12 .
[0195] In a third example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is the fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the third example, the body of the drug container is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In the third example, the delivery tube is partially contained within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. Thus, when fluid flows into the fluid-tight chamber, the fluid presses against the delivery tube, thereby causing at least a portion of the drug contained therein to be expelled from the fluid outlet of the drug container. It should be noted that the delivery tube can be completely contained within the fluid-tight chamber. In a third example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally includes a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the glass cartridge of the drug container body. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11''''.
[0196] In a fourth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is the fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In this example, the drug container body is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially housed within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In the fourth example, the delivery tube includes two tube valves. The tube valves are one-way valves, such as umbrella valves, Belleville valves, or ball valves, and the tube valves are configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the drug container body. More specifically, one of the two tube valves is adjacent to the tube inlet of the fluid-tight chamber, and the other of the two tube valves is adjacent to the tube outlet of the fluid-tight chamber. Therefore, when fluid flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby forcing at least a portion of the contained medication out of the fluid outlet of the medication container. Note that the delivery tube may be completely contained within the fluid-tight chamber. In this example, the fluid outlet of the medication container is configured to connect to a medication delivery member of a medication delivery device when the cassette is attached to the medication delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. Additionally, the fluid-tight chamber optionally includes a release valve 115. Additionally, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve.Alternatively, in another example, the fluid-tight chamber is made from a flexible material, for example a secondary flexible bag 11''''.
[0197] In a fifth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is a fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the fifth example, the fluid-tight chamber 11' includes an inlet 110' and an outlet 113', as shown in FIGS. 2A-2B. The inlet 110' of the fluid-tight chamber 11' is configured to be fluidly connected to a fluid pressure power source. The outlet 113' of the fluid-tight chamber 11' is configured to be connected to a vacuum device. In this example, the drug container body is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially housed within the fluid-tight chamber. In this example, the fluid-tight chamber 11' includes a tube inlet 111' and a tube outlet 112', as shown in FIGS. 2A-2B. The delivery tube is configured to be positioned between the tube inlet 111' and the tube outlet 112'. In the fifth example, the inlet 110' of the fluid-tight chamber 11' and the outlet 113' of the fluid-tight chamber 11' are positioned between the tube inlet 111' of the fluid-tight chamber 11' and the tube outlet 113' of the fluid-tight chamber 11'. Therefore, when the pressure in the fluid-tight chamber decreases, a certain amount of the drug in the glass cartridge is sucked into a portion of the delivery tube housed in the fluid-tight chamber. Then, when fluid from the fluid pressure power source flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby causing at least a portion of the certain amount of the drug in the delivery tube to be expelled from the fluid outlet of the drug container. Note that the delivery tube can be completely housed within the fluid-tight chamber. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or a soft cannula configured to be placed under the patient's skin.In addition, the fluid-tight chamber optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, for example, an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally comprises a tube valve. The tube valve is a one-way valve, for example, an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the glass cartridge of the body of the drug container. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, for example, a secondary flexible bag 11'''', as shown in FIG. 12.
[0198] In a sixth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is the fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In this sixth example, the fluid-tight chamber includes an inlet and an outlet. In this sixth example, the inlet of the fluid-tight chamber and the inlet of the fluid-tight chamber are the same orifices 110″, 113″ of the fluid-tight chamber, as shown in FIGS. 3A-3B. In this sixth example, the orifices 110″, 113″ of the fluid-tight chamber are connected to a device capable of providing both vacuum and output fluid. In this example, the body of the drug container is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this sixth example, the delivery tube is partially contained within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In this example, the orifices 110″, 113″ of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. Therefore, when the pressure in the fluid-tight chamber decreases, a certain amount of the drug in the glass cartridge is sucked into a portion of the delivery tube contained in the fluid-tight chamber. Then, when the output fluid flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby causing at least a portion of the certain amount of the drug in the delivery tube to be expelled from the fluid outlet of the drug container. Note that the delivery tube can be completely contained within the fluid-tight chamber. In a sixth example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or soft cannula configured to be placed under the patient's skin.In addition, the fluid-tight chamber optionally comprises a release valve 115, as shown in FIG. 1 . In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally comprises a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the glass cartridge of the body of the drug container. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11″″, as shown in FIG. 12 .
[0199] In a seventh example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is the fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the seventh example, the fluid-tight chamber includes an inlet and an outlet. The inlet of the fluid-tight chamber is configured to be fluidly connected to a fluid pressure power source. The outlet of the fluid-tight chamber is configured to be connected to a vacuum device. In this example, the body of the drug container is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially contained within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In the seventh example, the delivery tube includes two tube valves. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the drug container body. More specifically, one of the two tube valves is adjacent to the tube inlet of the fluid-tight chamber, and the other of the two tube valves is adjacent to the tube outlet of the fluid-tight chamber. In the seventh example, the inlet and outlet of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. Therefore, when the pressure in the fluid-tight chamber decreases, a certain amount of drug in the glass cartridge is sucked into a portion of the delivery tube housed in the fluid-tight chamber. Then, when fluid from the fluid pressure power source flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby discharging at least a portion of the certain amount of drug in the delivery tube through the fluid outlet of the drug container. It should be noted that the delivery tube may be completely housed within the fluid-tight chamber.In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115, as shown in FIG. 1. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11"", as shown in FIG. 12.
[0200] In an eighth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is a fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the eighth example, the fluid-tight chamber includes an inlet and an outlet. In this example, the inlet of the fluid-tight chamber and the inlet of the fluid-tight chamber are the same orifices 110″, 113″ of the fluid-tight chamber, as shown in FIGS. 3A-3B. In this example, the orifices 110″, 113″ of the fluid-tight chamber are connected to a device capable of providing both a vacuum and an output fluid. In this example, the body of the drug container is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially housed within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In this example, the orifices 110" and 113" of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. In an eighth example, the delivery tube includes two tube valves. The tube valves are one-way valves, such as umbrella valves, Belleville valves, or ball valves, and are configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the drug container body. More specifically, one of the two tube valves is adjacent to the tube inlet of the fluid-tight chamber, and the other of the two tube valves is adjacent to the tube outlet of the fluid-tight chamber. In this example, the inlet and outlet of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. Therefore, when the pressure in the fluid-tight chamber is reduced, a certain amount of drug in the glass cartridge is sucked into the portion of the delivery tube contained in the fluid-tight chamber.Subsequently, when the output fluid flows into the fluid-tight chamber, the fluid presses against the delivery tube, thereby forcing at least a portion of the quantity of drug in the delivery tube out of the fluid outlet of the drug container. Note that the delivery tube may be completely contained within the fluid-tight chamber. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115, as shown in FIG. 1. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11'''', as shown in FIG. 12.
[0201] In a ninth example, the cassette includes a container carrier having one fluid-tight chamber 11'. More specifically, in this example, the container carrier is the fluid-tight chamber 11'. In this example, the fluid-tight chamber 11' is made of a rigid material. In the ninth example, the drug container body M0a, M0b is a combination of a flexible bag M0a and a delivery tube M0b extending from the flexible bag M0a to a delivery tube outlet, as shown in FIGS. 2A-2B. In this example, the delivery tube M0b is flexible. In this example, the fluid outlet M1' is the delivery tube outlet. In the ninth example, the delivery tube M0b is partially housed within the fluid-tight chamber 11'. In this example, the fluid-tight chamber 11' includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet 111' and the tube outlet 112'. Therefore, when fluid flows into the fluid-tight chamber, the fluid presses against the delivery tube, thereby forcing at least a portion of the contained medication out of the fluid outlet of the medication container. Note that the delivery tube may be completely contained within the fluid-tight chamber. In a ninth example, the fluid outlet of the medication container is configured to connect to a medication delivery member of a medication delivery device when the cassette is attached to the medication delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. In addition, as shown in FIG. 1, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally includes a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the medication container body. Alternatively, the inlet of the fluid-tight chamber is equipped with a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made from a flexible material, for example, a secondary flexible bag 11"", as shown in Figure 12.
[0202] In a tenth example, the cassette includes a container carrier having one fluid-tight chamber 11'. More specifically, in this example, the container carrier is the fluid-tight chamber 11'. In this example, the fluid-tight chamber is made of a rigid material. In this example, the drug container body M0a, M0b is a combination of a flexible bag M0a and a delivery tube M0b extending from the flexible bag M0a to a delivery tube outlet, as shown in FIGS. 2A-2B. In this example, the delivery tube is flexible. In this example, the fluid outlet M1' is the delivery tube outlet. In this example, the delivery tube is partially housed within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet 111' and a tube outlet 112'. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In the tenth example, the delivery tube includes two tube valves M2, M2'. The tube valves M2 and M2' are one-way valves, such as umbrella valves, Belleville valves, or ball valves, configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the drug container body. More specifically, one of the two tube valves M2 and M2' is adjacent to the tube inlet 111' of the fluid-tight chamber 11', and the other of the two tube valves M2 and M2' is adjacent to the tube outlet 112' of the fluid-tight chamber 11'. Therefore, when fluid flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. Note that the delivery tube can be completely contained within the fluid-tight chamber. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. Additionally, the fluid-tight chamber optionally includes a release valve 115, as shown in FIG.Additionally, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made from a flexible material, such as a secondary flexible bag 11'''', as shown in FIG.
[0203] In an eleventh example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is a fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the eleventh example, as shown in FIGS. 2A-2B , the fluid-tight chamber includes an inlet 111′ and an outlet 113′. The inlet 110′ of the fluid-tight chamber 11′ is configured to be fluidly connected to a fluid pressure power source. The outlet 113′ of the fluid-tight chamber 11′ is configured to be connected to a vacuum device. In this example, the drug container body M0a, M0b is a combination of a flexible bag M0a and a delivery tube M0b extending from the flexible bag to a delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet M1′ is the delivery tube outlet. In this example, the delivery tube is partially housed within the fluid-tight chamber. In this example, the fluid-tight chamber 11′ includes a tube inlet 111′ and a tube outlet 112′. The delivery tube M0b is configured to be positioned between the tube inlet 111' and the tube outlet 112'. In the eleventh example, the inlet 110' of the fluid-tight chamber 11' and the outlet 113' of the fluid-tight chamber 11' are positioned between the tube inlet 111' of the fluid-tight chamber 11' and the tube outlet 112' of the fluid-tight chamber 11'. Therefore, when the pressure in the fluid-tight chamber 11' decreases, a certain amount of drug in the flexible bag M0a is sucked into a portion of the delivery tube M0b housed in the fluid-tight chamber 11'. Then, when fluid from the fluid pressure power source flows into the fluid-tight chamber 11', the fluid presses the delivery tube M0b, thereby causing at least a portion of the certain amount of drug in the delivery tube M0b to be expelled from the fluid outlet of the drug container. Note that the delivery tube can be completely housed within the fluid-tight chamber. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin.In addition, the fluid-tight chamber optionally comprises a release valve 115, as shown in FIG. 1 . In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally comprises a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the main body of the drug container. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11″″, as shown in FIG. 12 .
[0204] In a twelfth example, the cassette includes a container carrier having one fluid-tight chamber 11'. More specifically, in this example, the container carrier is the fluid-tight chamber 11'. In this example, the fluid-tight chamber 11' is made of a rigid material. In the twelfth example, as shown in FIGS. 3A-3B, the fluid-tight chamber 11' includes an inlet and an outlet. In the twelfth example, the inlet 110'' of the fluid-tight chamber 11' and the outlet 113'' of the fluid-tight chamber 11' are the same orifice of the fluid-tight chamber 11'. In the twelfth example, the orifices 110'' and 113'' of the fluid-tight chamber 11' are connected to a device capable of providing both vacuum and output fluid. In this example, the body of the drug container is a combination of a flexible bag and a delivery tube extending from the flexible bag to the delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. In the twelfth example, the delivery tube is partially contained within the fluid-tight chamber 11'. In this example, the fluid-tight chamber 11′ includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In this example, the orifices 110″, 113″ of the fluid-tight chamber 11′ are disposed between the tube inlet 110″ of the fluid-tight chamber 11′ and the tube outlet of the fluid-tight chamber 11′. Thus, when the pressure in the fluid-tight chamber 11′ decreases, a certain amount of drug in the flexible bag is sucked into a portion of the delivery tube housed in the fluid-tight chamber 11′. Then, when the output fluid flows into the fluid-tight chamber 11′, the fluid presses the delivery tube, thereby causing at least a portion of the certain amount of drug in the delivery tube to be expelled from the fluid outlet of the drug container. Note that the delivery tube can be completely housed within the fluid-tight chamber 11′. In a twelfth example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin.In addition, the fluid-tight chamber 11 optionally comprises a release valve 115, as shown in FIG. 1 . In addition, the inlet 110″ of the fluid-tight chamber 11′ optionally comprises a one-way tube valve, for example, an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally comprises a tube valve. The tube valve is a one-way valve, for example, an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the main body of the drug container. Alternatively, the inlet 110″ of the fluid-tight chamber 11′ comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber 11 is made of a flexible material, for example, a secondary flexible bag 11″″, as shown in FIG. 12 .
[0205] In a thirteenth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is a fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In this thirteenth example, the fluid-tight chamber includes an inlet and an outlet. The inlet of the fluid-tight chamber is configured to be fluidly connected to a fluid pressure power source. The outlet of the fluid-tight chamber is configured to be connected to a vacuum device. In this example, the body of the drug container is a combination of a flexible bag and a delivery tube extending from the flexible bag to a delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially contained within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In this thirteenth example, the delivery tube includes two tube valves. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and is configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the drug container body. More specifically, one of the two tube valves is adjacent to the tube inlet of the fluid-tight chamber, and the other of the two tube valves is adjacent to the tube outlet of the fluid-tight chamber. In Example 13, the fluid-tight chamber inlet and outlet are positioned between the fluid-tight chamber tube inlet and the fluid-tight chamber tube outlet. Therefore, when the pressure in the fluid-tight chamber decreases, a certain amount of drug in the flexible bag is sucked into a portion of the delivery tube housed in the fluid-tight chamber. Then, when fluid from the fluid pressure power source flows into the fluid-tight chamber, the fluid presses the delivery tube, thereby discharging at least a portion of the certain amount of drug in the delivery tube through the fluid outlet of the drug container. It should be noted that the delivery tube may be completely housed within the fluid-tight chamber.In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11''''.
[0206] In a fourteenth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the container carrier is a fluid-tight chamber. In this example, the fluid-tight chamber is made of a rigid material. In the fourteenth example, the fluid-tight chamber includes an inlet and an outlet. In this example, the inlet of the fluid-tight chamber and the outlet of the fluid-tight chamber are the same orifices 110'', 113'' of the fluid-tight chamber, as shown in Figures 3A-3B. In this example, the orifices 110'', 113'' of the fluid-tight chamber are connected to a device capable of providing both a vacuum and an output fluid. In this example, the body of the drug container is a combination of a flexible bag and a delivery tube extending from the flexible bag to a delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. In this example, the delivery tube is partially contained within the fluid-tight chamber. In this example, the fluid-tight chamber includes a tube inlet and a tube outlet. The delivery tube is configured to be positioned between the tube inlet and the tube outlet. In this example, the orifices 110″, 113″ of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. In a fourteenth example, the delivery tube includes two tube valves. The tube valves are one-way valves, such as umbrella valves, Belleville valves, or ball valves, and are configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the body of the drug container. More specifically, one of the two tube valves is adjacent to the tube inlet of the fluid-tight chamber, and the other of the two tube valves is adjacent to the tube outlet of the fluid-tight chamber. In this example, the inlet and outlet of the fluid-tight chamber are positioned between the tube inlet and the tube outlet of the fluid-tight chamber. Therefore, when the pressure in the fluid-tight chamber is reduced, a certain amount of drug in the flexible bag is sucked into the portion of the delivery tube contained in the fluid-tight chamber.Subsequently, when the output fluid flows into the fluid-tight chamber, the fluid presses against the delivery tube, thereby forcing at least a portion of the quantity of drug in the delivery tube out of the fluid outlet of the drug container. Note that the delivery tube may be completely contained within the fluid-tight chamber. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. Additionally, the fluid-tight chamber optionally includes a release valve 115. Additionally, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Alternatively, in another example, the fluid-tight chamber is made of a flexible material, such as a secondary flexible bag 11''''.
[0207] In a fifteenth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the fifteenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the fifteenth example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from a fluid outlet of the drug container. In this example, the fluid outlet of at least one drug container of the plurality of drug containers is part of the flexible bag, and the fluid outlet of at least one drug container of the plurality of drug containers is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of at least one of the multiple drug containers is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. Alternatively, each of the multiple drug containers has a fluid outlet that is part of a respective flexible bag, and each of the multiple drug containers is configured to connect to an independent drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, each of the multiple drug containers has a fluid outlet that is connected to an injection needle and / or a soft cannula configured to be placed under the patient's skin. Additionally, at least one of the multiple fluid-tight chambers includes a release valve in this example. Furthermore, in a preferred example, the inlet of at least one of the multiple fluid-tight chambers includes a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of at least one of the multiple fluid-tight chambers includes a multi-way valve.Alternatively, in another example, at least one of the plurality of fluid-tight chambers is made from a flexible material, such as a secondary flexible bag 11''''. In addition, at least one of the plurality of fluid-tight chambers optionally includes a release valve 115.
[0208] In a sixteenth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the sixteenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the sixteenth example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers. In this example, only one of the plurality of fluid-tight chambers includes an inlet configured to be fluidly connected to a fluid pressure power source. In this example, a one-way valve is disposed between each two fluid-tight chambers of the plurality of chambers. Thus, fluid first flows into the fluid-tight chamber with the inlet, and then sequentially flows into each of the remaining chambers of the plurality of fluid-tight chambers via each one-way valve between each two fluid-tight chambers of the plurality of chambers. Thus, the fluid sequentially presses each of the flexible bags in the different fluid-tight chambers, thereby sequentially expelling at least a portion of the contained medication from the fluid outlet of each medication container. In this example, the fluid outlet of at least one medication container among the multiple medication containers is part of the flexible bag, and the fluid outlet of at least one of the multiple medication containers is configured to connect to a medication delivery member of the medication delivery device when the cassette is attached to the medication delivery device. More specifically, the fluid outlet of at least one of the multiple medication containers is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. Alternatively, the fluid outlet of each of the multiple medication containers is part of a respective flexible bag, and the fluid outlet of each of the multiple medication containers is configured to connect to one independent medication delivery member of the medication delivery device when the cassette is attached to the medication delivery device. More specifically, the fluid outlet of each of the multiple medication containers is connected to one injection needle and / or one soft cannula configured to be placed under the patient's skin.In addition, at least one of the plurality of fluid-tight chambers, in this example, is provided with a release valve. Furthermore, in a preferred example, only one inlet of the plurality of fluid-tight chambers is provided with a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, only one inlet of the plurality of fluid-tight chambers is provided with a multi-way valve. Alternatively, in another example, at least one of the plurality of fluid-tight chambers is made from a flexible material, such as secondary flexible bag 11''''. In addition, at least one of the plurality of fluid-tight chambers optionally is provided with a release valve 115.
[0209] In a seventeenth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the seventeenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the seventeenth example, each body of each of the plurality of drug containers is a combination of a flexible bag and a flexible tube extending from the flexible bag to a delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. Each flexible tube is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible tube, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, the fluid outlet of at least one of the drug containers is configured to connect to a drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of at least one of the drug containers is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. Alternatively, the fluid outlet of each of the multiple drug containers is part of a respective flexible bag, and the fluid outlet of each of the multiple drug containers is configured to connect to an independent drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of each of the multiple drug containers is connected to an injection needle and / or a soft cannula configured to be placed under the patient's skin. Additionally, in this example, at least one of the multiple fluid-tight chambers includes a release valve. Furthermore, in a preferred example, the inlet of at least one of the multiple fluid-tight chambers includes a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve.In addition, the delivery tube optionally includes a tube valve, which is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the body of the drug container. Alternatively, the inlet of at least one of the plurality of fluid-tight chambers includes a multi-way valve. Alternatively, in another example, at least one of the plurality of fluid-tight chambers is made from a flexible material, such as the secondary flexible bag 11"". In addition, at least one of the plurality of fluid-tight chambers optionally includes a release valve 115.
[0210] In an eighteenth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the eighteenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the eighteenth example, each body of each of the plurality of drug containers is a combination of a cartridge and a flexible tube extending from the cartridge to a delivery tube outlet. The cartridge is made of glass or plastic. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. Each flexible tube is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible tube, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, the fluid outlet of at least one of the drug containers is configured to connect to a drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of at least one of the drug containers is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. Alternatively, the fluid outlet of each of the multiple drug containers is part of a respective flexible bag, and the fluid outlet of each of the multiple drug containers is configured to connect to an independent drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of each of the multiple drug containers is connected to an injection needle and / or a soft cannula configured to be placed under the patient's skin. Additionally, in this example, at least one of the multiple fluid-tight chambers includes a release valve. Furthermore, in a preferred example, the inlet of at least one of the multiple fluid-tight chambers includes a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve.In addition, the delivery tube optionally includes a tube valve, which is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, configured to prevent any fluid from flowing back through the delivery tube into the cartridge in the body of the drug container. Alternatively, the inlet of at least one of the plurality of fluid-tight chambers includes a multi-way valve. Alternatively, in another example, at least one of the plurality of fluid-tight chambers is made from a flexible material, such as a secondary flexible bag 11''''. In addition, at least one of the plurality of fluid-tight chambers optionally includes a release valve 115.
[0211] In a nineteenth example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the fluid-tight chamber is expandable. In this example, the container carrier is made of a rigid material. In this example, the body of the drug container is a flexible bag. In this example, both the flexible bag and the fluid-tight chamber are housed within the container carrier. The flexible bag is adjacent to the fluid-tight chamber, and when fluid flows into the fluid-tight chamber, the fluid-tight chamber expands, thereby pressing against the flexible bag, thereby discharging at least a portion of the drug contained therein through the fluid outlet of the drug container. In this example, the fluid outlet of the drug container is part of the flexible bag, and the fluid outlet is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the drug container is connected to an injection needle or a soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115. Furthermore, in one preferred example, the inlet of the fluid-tight chamber comprises a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, or alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve.
[0212] In a twentieth example, the cassette includes a container carrier 10' having one fluid-tight chamber 11''. More specifically, in this example, the fluid-tight chamber 11'' is expandable. In this example, the container carrier 10' is made of a rigid material. In this example, the body of the drug container is a combination of a flexible bag and a delivery tube extending from the flexible bag to a delivery tube outlet. In this example, both the flexible bag and the fluid-tight chamber 11'' are housed within the container carrier 10'. The flexible bag is adjacent to the fluid-tight chamber 11'', and when fluid flows into the fluid-tight chamber 11'', the fluid-tight chamber 11'' expands, and therefore the fluid-tight chamber 11'' presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container, as shown in FIG. 4. In this example, the fluid outlet of the drug container is configured to connect to a drug delivery member of a drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber 11" optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber 11" optionally comprises a one-way tube valve, for example, an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally comprises a tube valve, which is a one-way valve, for example, an umbrella valve, a Belleville valve, or a ball valve, configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the medication container body. Alternatively, the inlet of the fluid-tight chamber 11" comprises a multi-way valve.
[0213] In a twenty-first example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the fluid-tight chamber is expandable. In this example, the container carrier is made of a rigid material. In the twenty-first example, the body of the drug container is a combination of a glass cartridge and a delivery tube extending from the glass cartridge to a delivery tube outlet. In this example, the delivery tube is flexible. Alternatively, the cartridge can be made of a rigid plastic material. In this example, the fluid outlet is the delivery tube outlet. In this example, both the flexible tube and the fluid-tight chamber are at least partially contained within the container carrier. The flexible tube is adjacent to the fluid-tight chamber, and when fluid flows into the fluid-tight chamber, the fluid-tight chamber expands, thereby pressing against the flexible tube, thereby discharging at least a portion of the drug contained therein through the fluid outlet of the drug container. In the twenty-first example, the fluid outlet of the drug container is configured to connect to a drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally includes a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the glass cartridge of the medication container body. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve.
[0214] In a twenty-second example, the cassette includes a container carrier having one fluid-tight chamber. More specifically, in this example, the fluid-tight chamber is expandable. In this example, the container carrier is made of a rigid material. In the twenty-second example, the body of the drug container is a combination of a flexible bag and a delivery tube extending from the flexible bag to a delivery tube outlet. In this example, the delivery tube is flexible. In this example, the fluid outlet is the delivery tube outlet. In this example, both the flexible tube and the fluid-tight chamber are at least partially contained within the container carrier. The flexible tube is adjacent to the fluid-tight chamber, and when fluid flows into the fluid-tight chamber, the fluid-tight chamber expands, thereby pressing against the flexible tube, thereby discharging at least a portion of the drug contained therein through the fluid outlet of the drug container. In the twenty-second example, the fluid outlet of the drug container is configured to connect to a drug delivery member of the drug delivery device when the cassette is attached to the drug delivery device. More specifically, the fluid outlet of the medication container is connected to a syringe needle or soft cannula configured to be placed under the patient's skin. In addition, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. In addition, the delivery tube optionally includes a tube valve. The tube valve is a one-way valve, such as an umbrella valve, a Belleville valve, or a ball valve, and the tube valve is configured to prevent any fluid from flowing back through the delivery tube into the flexible bag of the medication container body. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve.
[0215] In a twenty-third example, the cassette comprises a container carrier 10"" having one fluid-tight chamber. In this example, the fluid-tight chamber 11 is made of a rigid material. In this example, the fluid-tight chamber 11 is configured to be disposed within the container carrier 10. In this example, the container carrier 10"" comprises a connection port 17 configured to be releasably attached to either an outlet of a fluid pressure power source of a reusable body of the medication delivery device or another connection port of another container carrier 10"". In this example, the container carriers 10"" are configured to be stacked on top of each other, as shown in FIG. 31. In a preferred example, the body of the medication container is a flexible bag. In a preferred example, the fluid outlet of the medication container M is configured to be fluidly connected to a tubing set 3. Preferably, the medication container is configured to be attached to the tubing set 3. The tubing set 3 comprises a delivery tube 31. Preferably, the fluid outlet of the medication container is configured to be connected to a medication delivery member via the delivery tube. In this example, the fluid outlet of the medication container is configured to be attached to one end of the delivery tube, and the medication delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set comprises a piercing member 32 configured to pierce a fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C. In this example, the drug container can be fully sealed prior to use. In addition, the fluid-tight chamber optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve.
[0216] In a twenty-fourth embodiment, the cassette comprises a container carrier 10'''' having at least two fluid-tight chambers. In this example, the fluid-tight chambers 11a'''''''''', 10e''''' of the container carrier are formed by the container frame 11a'''''''''' and the internal chamber 10e'''''' of the container carrier 10''''''. In this example, the container frame 11a'''''''''' can be made of a rigid or flexible material. Preferably, the interface formed between the container frame 11a'''''''''' and the internal chamber 10e'''''' of the container carrier 10'''''' is airtight. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to the tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 comprises a delivery tube 31. Preferably, the fluid outlet of the drug container is configured to be connected to a drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set includes a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . In addition, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. Preferably, as shown in FIG. 32 , container frames 11a′′′′′′ of the same size can be provided for different amounts of drug.
[0217] In a twenty-fifth example, the cassette comprises a container carrier 10''''' having one fluid-tight chamber. In this example, the fluid-tight chambers 11a'''''''''' and 11b'''''''' of the container carrier are formed by a container frame 11a'''''''''' and a cap 11b'''''''''' configured to be attached to the container frame 11a''''''''''. In this example, the container frame 11a'''''''''' can be made of a rigid material or a flexible material. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to a tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 comprises a delivery tube 31. Preferably, the tubing set 3 is part of the cap 11b''''''''''. Preferably, the fluid outlet of the drug container is configured to be connected to a drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set 3 includes a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . Preferably, the piercing member 32 is configured to pierce the fluid outlet M1''' of the drug container M when the cap 11b'''''''''' is attached to the container frame 11a''''''''''. In addition, the fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. In this example, the container carrier partially receives the drug container and the fluid-tight chamber, as shown in FIG. 33. In a preferred example, different sizes of container carriers can be provided for different amounts of drug, as shown in FIG. 33.
[0218] In a twenty-sixth example, the cassette comprises a container carrier 10''''' having one fluid-tight chamber. In this example, the fluid-tight chambers 11a'''''''''', 11b'''''''' of the container carrier are formed by a container frame 11a'''''''''' and a cap 11b'''''''''' configured to be attached to the container frame 11a''''''''. In this example, the container frame 11a'''''''''' may be made of a rigid material or a flexible material. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to a tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 comprises a delivery tube 31. Preferably, the tubing set 3 is part of the cap 11b''''''''''. Preferably, the fluid outlet of the drug container is configured to be connected to a drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set 3 includes a piercing member 32 configured to penetrate the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . Preferably, the piercing member 32 is configured to pierce the fluid outlet M1″ of the drug container M when the cap 11b″″″″″ is attached to the container frame 11a″″″″′ and a piercing trigger is activated. In one example, the piercing trigger can be a push button connected to the piercing member 32, and can be configured to pierce the fluid outlet M1′″ of the drug container M when the push button is pressed toward the drug container M. Alternatively, the piercing member may be connected to a biasing member and biased towards the drug container M; in this example, a latch is configured to hold the piercing member against the biasing member, and the latch is moved away from the piercing member when the piercing trigger is activated, for example, by mechanical or electrical means; for example, the latch may be a solenoid latch.In addition, the fluid-tight chamber optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. In this example, the container carrier partially receives the drug container and the fluid-tight chamber, as shown in Figure 33. In one preferred example, different sized container carriers can be provided for different amounts of drug, as shown in Figure 33.
[0219] In a 27th example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In this 27th example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the 27th example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, the container carrier includes a connection port configured to be releasably attached to either the outlet of the fluid pressure power source of the reusable body of the drug delivery device or another connection port of another container carrier. In this example, each container carrier is configured to be stacked on top of each other, as shown in FIG. 31 . In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to the tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 includes a delivery tube 31. Preferably, the fluid outlet of the drug container is configured to be connected to the drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set includes a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . In this example, the drug container can be completely sealed before use. In addition, the fluid-tight chamber optionally includes a release valve 115.Additionally, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, for example an umbrella valve, a Belleville valve, or a ball valve, or alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve.
[0220] In a 28th example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In this 28th example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the 28th example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, the fluid-tight chamber of the container carrier is formed by the container frame and the interior chamber of the container carrier. In this example, the container frame can be made of a rigid or flexible material. Preferably, the interface formed between the container frame 11 a''''''''' and the internal chamber of the container carrier is airtight. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to the tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 comprises a delivery tube 31. Preferably, the fluid outlet of the drug container is configured to be connected to a drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set comprises a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . In addition, each fluid-tight chamber optionally comprises a release valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, for example, an umbrella valve, a Belleville valve, or a ball valve.Alternatively, the inlet of the fluid-tight chamber is provided with a multi-way valve.Preferably, as shown in Figure 32, container frames of the same size can be provided for different amounts of drug.
[0221] In a twenty-ninth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the fifteenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In the fifteenth example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, each fluid-tight chamber of the container carrier is formed by a container frame and a cap configured to be attached to the container frame. In this example, the container frame can be made of a rigid or flexible material. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to the tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 includes a delivery tube 31. Preferably, the tubing set 3 is part of the cap. Preferably, the fluid outlet of the drug container is configured to be connected to the drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set 3 includes a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . Preferably, the piercing member 32 is configured to pierce the fluid outlet M1''' of the drug container M when the cap is attached to the container frame. In addition, each fluid-tight chamber optionally includes a release valve 115.Additionally, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve. In this example, the container carrier partially receives the drug container and the fluid-tight chamber, as shown in Figure 33. In one preferred example, different sized container carriers may be provided for different amounts of drug, as shown in Figure 33.
[0222] In a thirtieth example, the cassette includes a container carrier having a plurality of fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In a fifteenth example, the container carrier is configured to accommodate a plurality of drug containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of drug containers is identical. Alternatively, each of the plurality of drug containers has the same shape but different sizes. Alternatively, at least two of the plurality of drug containers are geometrically different from each other. In a fifteenth example, each body of each of the plurality of drug containers is a flexible bag. Each flexible bag is partially or completely contained within one of the plurality of fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained drug to be expelled from the fluid outlet of the drug container. In this example, each fluid-tight chamber of the container carrier is formed by a container frame and a cap configured to be attached to the container frame. In this example, the container frame can be made of a rigid or flexible material. In a preferred example, the body of the drug container is a flexible bag. In a preferred example, the fluid outlet of the drug container M is configured to be fluidly connected to the tubing set 3. Preferably, the drug container is configured to be attached to the tubing set 3. The tubing set 3 includes a delivery tube 31. Preferably, the tubing set 3 is part of the cap. Preferably, the fluid outlet of the drug container is configured to be connected to the drug delivery member via the delivery tube. In this example, the fluid outlet of the drug container is configured to be attached to one end of the delivery tube, and the drug delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set 3 includes a piercing member 32 configured to pierce the fluid outlet of the drug container M to establish fluid communication between the delivery tube 31 and the drug container M, as shown in FIG. 34C . Preferably, the piercing member 32 is configured to pierce the fluid outlet M1''' of the drug container M when the cap is attached to the container frame and a piercing trigger is actuated.In one example, the piercing trigger can be a push button connected to the piercing member 32, and can be configured so that the piercing member 32 pierces the fluid outlet M1″ of the medicament container M when the push button is pressed toward the medicament container M. Alternatively, the piercing member can be connected to a biasing member and biased toward the medicament container M; a latch is configured to hold the piercing member against the biasing member. In this example, the latch is moved away from the piercing member when the piercing trigger is activated, for example, by a mechanical or electrical method; for example, the latch can be a solenoid latch. In addition, each fluid-tight chamber optionally includes a release valve 115. In addition, the inlet of the fluid-tight chamber optionally includes a one-way tube valve, for example, an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber includes a multi-way valve. In this example, the container carrier partially receives the medicament container and the fluid-tight chamber, as shown in FIG. 33. In a preferred example, different sized container carriers can be provided for different amounts of medicament, as shown in FIG. 33.
[0223] In a 31st example, the cassette comprises a cassette housing configured to be releasably attached to a reusable body of a medication delivery device. The cassette comprises a plurality of container carriers, each having one or more fluid-tight chambers. In this example, each fluid-tight chamber is made of a rigid material. In the 31st example, the container carrier is configured to house a plurality of medication containers in the plurality of fluid-tight chambers, respectively. In this example, each of the plurality of medication containers is identical. Alternatively, each of the plurality of medication containers has the same shape but different sizes. Alternatively, at least two of the plurality of medication containers are geometrically different from each other. In a 27th example, each body of each of the plurality of medication containers is a flexible bag. Each flexible bag is partially or completely contained within one of the fluid-tight chambers, and when fluid flows into the fluid-tight chamber, the fluid presses against the flexible bag, thereby causing at least a portion of the contained medication to be expelled from a fluid outlet of the medication container. In this example, the container carrier includes a connection port configured to be releasably attached to either the outlet of the fluid pressure power source of the reusable body of the medication delivery device or another connection port of another container carrier. In this example, each container carrier is configured to be stacked on top of one another within the cassette housing, as shown in FIG. 31 . In a preferred example, the body of the medication container is a flexible bag. In a preferred example, the fluid outlet of the medication container M is configured to be fluidly connected to a tubing set 3. Preferably, the medication container is configured to be attached to the tubing set 3. The tubing set 3 includes a delivery tube 31. Preferably, the fluid outlet of the medication container is configured to be connected to a medication delivery member via the delivery tube. In this example, the fluid outlet of the medication container is configured to be attached to one end of the delivery tube, and the medication delivery member is configured to be attached to the other end of the delivery tube. Preferably, the tubing set includes a piercing member 32 configured to pierce the fluid outlet of the medication container M to establish fluid communication between the delivery tube 31 and the medication container M, as shown in FIG. 34C . In this example, the medication container can be completely sealed prior to use.In addition, the fluid-tight chamber optionally comprises a discharge valve 115. In addition, the inlet of the fluid-tight chamber optionally comprises a one-way tube valve, such as an umbrella valve, a Belleville valve, or a ball valve. Alternatively, the inlet of the fluid-tight chamber comprises a multi-way valve.
[0224] It should be noted that the container carrier can be reusable or disposable, as in the examples described above. In one example where the container carrier is reusable, the container carrier comprises a body and a cover that seals the body. The cover can be completely detachable from the body. Alternatively, instead of the cover, the body comprises a hinged door that movably seals the body. In this example, the user can return the used cassette to a recycling point or a pharmacy. The used drug container can be removed from the container carrier. The container carrier is now ready to be used for another new drug container. In one example where the container carrier is disposable, the container carrier is configured to seal the drug container once the drug container is assembled to the container carrier.
[0225] As mentioned above, it should be noted that if the cassette is configured to be connected to a vacuum device, the cassette does not need to have a discharge valve 115, as the vacuum device can evacuate the fluid in the fluid-tight chamber as a discharge valve.
[0226] Another aspect of the present invention provides a drug delivery device 2;2;2" comprising a cassette as described above. The drug delivery device comprises a reusable body 20;20';20";20'" and replaceable drug delivery members 23;23'a, 23bd, 23c', 23d'. The reusable body 20;20';20'';20''' of the drug delivery device 2;2;2'' comprises a fluid pressure power source 21 connected to the inlet 110;110';110'';110'';110'';110'';110a of the fluid-tight chamber 11;11';11'';11a''',11b''',11c''',11a'''',11b'''',11c'''',11d'''',11'''''',11a'''''''',11b'''''''',11c'''''''',11d''''''''. In a preferred example, the fluid pressure power source is a pneumatic power source, such that the pneumatic power source is capable of outputting a gas, for example air or nitrogen, into the fluid-tight chamber. Alternatively, the fluid pressure power source may be a hydraulic power source, which may output a liquid, for example water or oil, into the fluid-tight chamber.
[0227] In one example, as shown in FIG. 27 , the fluid pressure power source 21″; 21′″ comprises a fluid pump 21 a″ having an inlet fluidly connected to the environment, and an inlet filter 21 b″ connected to the inlet of the fluid pump 21 a″ and capable of preventing contaminants from the environment, such as dust, from entering the fluid pump 21 a″. Therefore, the ingress protection of the fluid pressure power source may be IP56 level. In a preferred example, the fluid pressure power source 21″; 21′″ comprises a pump outlet check valve 21 g″ followed by a downstream controllable release valve 21 d″ (vented to the atmosphere), a flow sensor 21 f″, a pressure sensor 21 e″, and an outlet filter 21 c″ configured to be connected to a fluid-tight chamber. The fluid pressure power source 21″; 21′″ is optionally connected to a compensation block 21 h″ and a controller 21 i″. The controller 21 i″ can be a processor within the reusable body of the drug delivery device connected to the fluid pressure power source. Alternatively, the controller 21i" may be incorporated into the fluid pressure power source. Details of the compensation block 21h" will be described later. The flow and pressure sensors are optional for the fluid pressure power source 21"; 21". For example, the example shown in Figures 29-30 does not have a flow sensor. It should be noted that the flow sensor within the fluid pressure power source is configured to measure the fluid flow rate of the fluid pressure power source.
[0228] In another example, as shown in FIG. 28, fluid pressure power source 21''' further comprises one or more multi-way valves 21j''', e.g., a 2 / 2-way valve, a 3 / 2-way valve, or a 5 / 2-way valve. The outlet port of each multi-way valve defines an outlet 210 of fluid pressure power source 21'''. In this example, fluid pressure power source 21''' can be connected to multiple cassettes and / or multiple fluid-tight chambers within a single cassette.
[0229] Alternatively or additionally, the drug delivery device 2" includes a multi-way valve 29 connected to the fluid pressure power source 21". In this example, as shown in Figures 29-30, an outlet 210 of the fluid pressure power source 21" is configured to connect to a port of the multi-way valve 29, and another port 29a of the multi-way valve 28 is configured to be attached to a fluid-tight chamber. In this example, an inlet of the fluid-tight chamber is fluidly connected to the outlet 210 of the fluid pressure power source via the multi-way valve 29. As a result, one fluid pressure power source 21" can be connected to multiple fluid-tight chambers, and therefore, can be connected to multiple drug containers.
[0230] Furthermore, the fluid pump 21a'' can be a piezoelectric pump, a motor-based fluid pump, a piston pump, or a diaphragm pump.
[0231] The drug delivery device comprises exchangeable drug delivery members 2323'a, 23bd, 23c', 23d' configured to connect to fluid outlets M1; M1'; Ma1, Mb1, Mc1 of drug containers M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md'. In a preferred example, the drug delivery device 2 is configured to deliver multiple drugs and / or large amounts of drugs to a patient.
[0232] In one example, the drug delivery device includes a tubing set 3. As described above, the tubing set 3 comprises a delivery tube 31. The fluid outlet M1''' of the drug container M is configured to be attached to one end of the delivery tube 31, and the drug delivery member 23 is configured to be attached to the other end of the delivery tube 31. In this example, both the drug delivery member 23 and the tubing set 3 are replaceable. In a preferred example, the tubing set 3 comprises a piercing member 32 configured to establish a fluid connection between the delivery tube 3 and the drug container M, as described above.
[0233] The drug delivery device 2;2;2" is configured to deliver multiple drugs and / or large amounts of drugs to a patient, and the drug delivery time may be long, for example, two or three hours. Therefore, in a preferred example, the drug delivery device is portable. Therefore, a user can easily carry the drug delivery device 2 for movement and travel, and a patient can easily carry the drug delivery device 2 during drug delivery operations. In a preferred example, the drug delivery device includes a user-wearable function 25;25';25" connected to a reusable main body. Because skin contact with adhesive materials can easily cause skin reactions such as infection, fever, allergens, and / or rashes, the user-wearable function is preferably not adhesively attached to the patient's skin, for example, not attached to the user via an adhesive material. In a preferred example, as shown in Figures 9-10, 17-19, and 20-21, the user-wearable function is a belt, a shoulder strap, a neck strap, a vest, a harness, a belt clip, parts thereof, or a combination thereof.
[0234] Therefore, the user can easily carry the medication delivery device 2;2;2" with them. Furthermore, the patient can easily carry the medication delivery device 2;2;2" during a medication delivery operation. Therefore, the patient's mobility is hardly restricted during a medication delivery operation. In one preferred example, the user-wearable feature is provided with one or more of a persistent antibacterial, antifungal, or antiviral agent. In one preferred example, the user-wearable feature comprises a coating including fibers (e.g., silver fibers) woven into a fabric material, provided through a secondary coating, spraying, or dipping operation, or by selecting an outer fabric layer characterized by persistent antibacterial, antifungal, or antiviral properties.
[0235] In one preferred example, the drug delivery device is an injection device, such as an infusion device or an on-body syringe, in which the drug delivery member is an injection needle or an insertion needle having a soft cannula.
[0236] The fluid pressure power source 21 is configured to generate / discharge a pressurized fluid, such as a liquid or gas, and deliver the pressurized fluid into the fluid-tight chamber. In a preferred example, the fluid pressure power source 21 is configured to generate / discharge a pressurized gas. In one example, the fluid pressure power source may be a pressurized gas canister. In a preferred example, the fluid pressure power source includes a piezoelectric pump. Alternatively, the fluid pressure power source may include a motor-based fluid pump, such as a diaphragm pump or a piston pump, as described above.
[0237] In one example, the fluid-tight chambers are adjacent to the fluid pressure power source. Therefore, the fluid pressure power source is directly fluidly connected to the inlet of the fluid-tight chamber. Alternatively, as shown in FIG. 7, a transmission tube 22 is disposed between the fluid pressure power source 21 and the inlet of the fluid-tight chamber 11. In this example, the fluid pressure power source is fluidly connected to the inlet of the fluid-tight chamber via the transmission tube 22. In one example, the drug delivery device is configured to be attached to at least two drug containers Ma, Mb, Mc, and Md, as shown in FIG. 11. In this example, the fluid pressure power source 21 is connected to one fluid-tight chamber via the transmission tube 22a' and indirectly connected to the other fluid-tight chambers via the other transmission tubes 22b', 22c', and 22d'. The transmission tubes 22a', 22b', 22c', and 22d' are configured to direct the output fluid from the fluid pressure power source to each individual fluid-tight chamber. In an example in which the fluid pressure power source of the medication delivery device is connected to two or more cassettes, the connection disclosed in the embodiment shown in Fig. 11 is also applicable. In the example shown in Fig. 11, the multiple cassettes are configured to be connected to the fluid pressure power source 21 via multiple transmission tubes 22a', 22b', 22c', and 22d'. In this example, the reusable body 20' is configured to house the fluid pressure power source 21 and, optionally, one or more electronic components, such as a piezoelectric pump, processor(s), wireless communication unit(s), touch screen(s), display(s), microphone(s), LED light(s), speaker(s), vibration motor(s), accelerometer(s), gyro sensor(s), memory, temperature sensor(s), temperature adjustment unit(s), battery, etc. In a preferred example, the reusable body 20 is compact and easy to carry.
[0238] In one example, each transmission tube extends between two opposing ends. Each transmission tube has two screw connection heads attached to the two opposing ends of the transmission tube, respectively. In this example, the fluid pressure power source 21′ of the drug delivery device has corresponding screw heads, and a user can screw one transmission tube 22a′ to the cassette and the fluid pressure power source 21′ of the drug delivery device, thereby fluidly connecting the fluid pressure power source 21′ of the drug delivery device to the transmission tube. A user can screw the remaining portion of the transmission tube between the two cassettes. In this example, all transmission tubes can be identical in this embodiment, which can reduce manufacturing costs and is also easy for users to use. In one example, when the cassette includes a cassette housing, two corresponding screw heads are disposed on the wall of the cassette housing. Alternatively, two corresponding screw heads are disposed on the wall of the fluid-tight chamber. Instead of a screw connection, a luer connection or a bayonet connection can be used between the transmission tube, the cassette, and the fluid pressure power source. The cassette is therefore releasably attachable to the medication delivery device.
[0239] Alternatively, as shown in FIGS. 21-23, the reusable body 20'''' comprises a base 20''''. The base 20'''' is configured to house the fluid pressure power source 21. In a preferred example shown in FIGS. 21-23, the user-wearable feature 25' of the reusable body 20'''' comprises a neck strap. In this example, the base 20'''' comprises a front portion configured to be positioned adjacent to the patient's chest and a rear portion configured to be positioned adjacent to the patient's back. In this example, the cassette comprises a plurality of fluid-tight chambers 11a'''''''''', 11b'''''''', 11c'''''''', and 11d'''''''' as shown in FIGS. 13, 14, and 22. As described above, each fluid-tight chamber comprises one of a plurality of drug containers Ma, Mb, Mc, and Md as shown in FIGS. 21 and 23. In this example, the cassette is configured to be releasably attached to the base 20'''' by, for example, a snap fit or a groove-and-ridge connection. In a preferred example, at least two of the plurality of drug containers include fluid outlets Ma1, Mb1, Mc1 that are fluidly isolated from the fluid outlet of any other one of the plurality of drug containers. Therefore, at least two drug containers are provided with fluidly isolated connections to the patient, preventing the separate drugs from mixing during administration unless desired by the patient. It should be noted that the connection between fluid-tight chambers as shown in FIG. 22 can also be used as a connection for connecting multiple different cassettes or multiple different container carriers. Also, as shown in FIG. 21, a transfer tube 22 extends from the rear of the base 20'''' to the front of the base 20'''' so that output fluid from the fluid pressure power source 21 can be transferred to the fluid-tight chambers of the cassettes.
[0240] The over-the-shoulder design, i.e., the design shown in Figures 10 and 20-23, distributes the weight of the device across the patient's back, chest, and shoulders, as seen in Figure 10. When worn over or under clothing, it provides a short path to the abdominal area. As shown in Figure 20, the fluid pressure power source 21 is located at the rear of the base and is a reusable component. The fluid pressure power source 21 accommodates both pneumatic and mechanical drive systems for flexibility. In one preferred embodiment, the fluid pressure power source 21 also includes a battery that can be recharged between device uses. In an alternative embodiment, the fluid pressure power source 21 does not include a battery, and the battery is provided as a removable component (i.e., a module, as described below) on the front or back. The shoulder straps are designed to be comfortable, even when the reusable body contains the largest drug volume. These are used to conceal one or more tubes and / or wires that make electrical, optical, pneumatic, or other connections from front to back. As seen in Figure 21, the cassette(s) are disposable components located at the front of the base and can be arranged according to a desired dosing sequence or regimen. The cassettes may be pre-loaded by a pharmacy, a pharmaceutical manufacturer, or both. The cassettes may be installed sequentially, or alternatively, the cassettes may be connected one at a time by the patient if low weight is desired, although this is not expected to be a preferred commercial embodiment.
[0241] As seen in Figure 22, the large volume and small volume concepts can also be stacked in various configurations for more complex regimens and automated delivery. The cassette comprises a flexible bag (although in preferred embodiments a syringe, cartridge, or other container is also possible) and a cassette with an outer rigidity sized for the volume they contain. When multiple cassettes are used, they may be provided with their own individual in-process or end-of-administration feedback indicators, e.g., lights / LEDs, or feedback may be provided within the top unit (or both the top unit and cassette) using a wired connection.
[0242] The cassettes are filled by the pharmacist or selected from pre-filled options, then securely assembled (slide, click, etc.) and capped in order to complete the preparation steps. Other cassettes may be inserted between them. This forms a single unit that is transported to the patient using typical cold chain transport, such as that used for autoinjectors. The patient receives the assembled cartridges and attaches them to the drive unit umbilical, as shown in FIG. 21. While FIG. 21 shows two lines, any desired number of lines may be connected, or each attachment point may provide more than one connection, as in the case of multiple lumens or multiple conductor sets. One line can optionally be dedicated for emergency drug delivery if required by the patient's regimen. The barbed fitting of FIG. 22 and the removable connection assembly of the barbed tubing and release mechanism of FIG. 21 may be replaced by any suitable connector, ideally designed for secure attachment, easy intentional and difficult unintentional removal, and universal design principles to accommodate a wide variety of user populations. FIG. 21 also shows an optional power button and an illuminated status light on each module. As shown in FIG. 23, the end cap completing the sequence also incorporates a tie-bar-style clip 25″ for securing the reusable body for the active user. This clip 25″ may be located in the center seam of the shirt, or if no seam is present, a magnetic closure may be provided on the other side of the shirt. The FIG. 21 or other similar features may optionally be included to prevent unwanted sagging of the reusable body during infusion, particularly when the user wearing the device leans forward. Here, in FIG. 23, a side view of the modules can also be seen, showing the interlocking mechanism. FIG. 23 also shows optional tubing strain relief; other tubing management features may be available based on the tubing length and diameter, number of tubes, and intended injection site(s).
[0243] 21-23 may also schematically illustrate a drug delivery device comprising a reusable body having multiple sections for receiving multiple cassettes. In this example, each of the multiple fluid-tight chambers 11a'', 11b'', 11c'', and 11d'''''' of FIG. 22 is received within a different section of the reusable body.
[0244] Further, alternatively, instead of a cascade connection between the reusable body 20"" of the medication delivery device 2' and one or more cassettes as shown in Figures 21-23, the reusable body 20; 20'; 20" of the medication delivery device 2' is configured to accommodate one or more cassettes as shown in Figures 9-10 and 17-19. In this example, the reusable body comprises an inner section for accommodating one or more cassettes. The cassettes can be attached to the inner section of the reusable body via a magnetic connection, a releasable snap-fit connection, a screw thread connection, and / or a bayonet connection. Thus, the cassettes can be releasably attached to the medication delivery device.
[0245] In one example, the fluid pressure power source 21 is attached to the inner section of the reusable body 20'', as shown in Figures 15 and 17. In another example, the fluid pressure power source 21 is attached to a cassette, and the cassette is attached to the inner section of the reusable body 20'', as shown in Figures 16 and 18. In one example, the reusable body 20'' has two covers connected to each other via a hinge, as shown in Figures 15 and 17. Alternatively, the reusable body 20''' has a wall around the inner section; in other words, the inner section of the reusable body 20''' is a space having a boundary provided by the wall, as shown in Figures 16 and 18. In this example, the wall around the opening is configured so that the cassette is placed in the inner section through the opening, for example, a user inserts the cassette into the inner section of the reusable body 20'' through the opening. In this example, the cassette can be attached to the inner section of the reusable body 20'' via a groove and ridge connection.
[0246] 16 and 18, the fluid pressure power source can be independently and removably attached to the inner section of the reusable body instead of being attached to the cassette. For example, the fluid pressure power source can be inserted into the inner section of the reusable body, and then the cassette can be inserted into the inner section. In this example, the fluid pressure power source can be reusable or disposable. Furthermore, in an example in which the drug container is a combination of a flexible bag M0a and a delivery tube M0b extending from the flexible bag, as shown in FIG. 16, the flexible bag M0 of the drug container M is disposed within the fluid-tight chamber 11 of the cassette. The delivery tube M0b is wrapped around the frame 15 of the cassette. In this example, the cassette is configured to be partially disposed within the inner section of the reusable body 20''', as shown in FIG. 18. When the cassette is disposed within the reusable body, the frame 15 and the delivery tube M0b are disposed outside the inner section of the reusable body 20'''. Furthermore, in another example, the cassette provides a filter 28 connected to the delivery tube M0b. In one preferred example, filter 28 is configured to expel air bubbles contained in the contained medication so that the air bubbles are not delivered into the user's body.
[0247] Furthermore, instead of including the fluid-tight chamber 11 as part of the cassette as described above, the fluid-tight chamber 11 can be used as part of the cassette and the reusable body. For example, the cassette includes a drug container frame 16 configured to surround a drug container M, as shown in FIG. 16 . In this example, the drug container M is attached to the drug container frame 16 and configured to be inserted into the inner section of the reusable body. When the drug container frame 16 is placed in the inner section of the reusable body, the inner section of the reusable body, together with the drug container frame 16, forms a fluid-tight chamber. In this example, the cassette can be made using less plastic material, thereby reducing the cost of the cassette. In another example, the drug container frame 16 includes a connector, such as a valve, to the fluid pressure power source 21; therefore, the fluid pressure power source can only be activated to release fluid into the fluid-tight chamber when the drug container frame 16 is inserted into the inner section of the reusable body. Furthermore, the reusable body 20′″ includes a connecting track 26. In the example shown in FIG. 16 , the connecting track 26 is formed by two ribs. The connection track 26 allows multiple reusable bodies 20''' to be attached together. For example, a reusable body may include a connection track 26 on one side and a connection protrusion on another side opposite the connection track 26. The connection protrusion is configured to be attached to the connection track 26 by sliding along the connection track 26. In this example, the reusable body includes a communication spot 27 configured to connect to a corresponding communication unit of another reusable body. For example, the communication spot 27 is disposed within the connection track 26, as shown in FIG. 16, and the corresponding communication unit is disposed within the connection protrusion. The communication spot may be a conductive spot configured to contact and electrically connect to the corresponding communication unit. Alternatively, the communication spot 27 may be an RFID / NFC circuit configured to connect to the corresponding communication unit via a contactless connection.In this example, the user interface 24 comprises a corresponding communication unit configured to be connected to the communication spot 27. In a preferred example, the user interface 24 comprises a corresponding communication unit, which can be attached to the reusable body by attaching to the connection track 26. In the example shown in FIG. 26, two reusable bodies 20''', each with two cassettes inserted, are attached to each other. The user interface 24 is attached to one of the two reusable bodies 20'". In this example, the user interface 24 is configured to detect how many cassettes are connected via the connection between the communication spot and the corresponding communication unit and subsequently control the medications in the different cassettes to be delivered.
[0248] In one preferred example where the reusable body is configured to house the cassette, the user-wearable feature 25'' is a belt clip, as shown in FIG.
[0249] In another example, as shown in FIGS. 9, 24-25, and 31, the reusable body 20 of the medication delivery device 2 is configured to accommodate multiple cassettes 1a, 1b. In this example, the reusable body 20 includes an inner section for accommodating more cassettes 1a, 1b. In this example, the reusable body 20 includes a body 20a including the inner section, optionally a frame 20b configured to mount more cassettes 1a, 1b, and a lid 20c configured to seal the body 20a. As in the previous example, the cassettes 1a, 1b can be attached to the inner section of the reusable body via a magnetic connection, a releasable snap-fit connection, a screw thread connection, and / or a bayonet connection. In a preferred example, the cassettes 1a, 1b can be attached to the frame 20b of the reusable body 20 via a magnetic connection, a releasable snap-fit connection, a screw thread connection, and / or a bayonet connection. Thus, when the frame is releasably attached to the body 20a, the cassette can be releasably attached to the medication delivery device. In this example, the reusable body 20b includes one or more medication containers (flexible bags) and a fill port for use in a pharmacy clean room or a medication filling room. In one example, the frame 20b includes one or more tube openings 20bb for connection to one or more tubes and / or medication delivery members, respectively. In a preferred example, the frame 20b has an integrated tubing set and delivery member (e.g., needle). The tubing set and needle are collected in a tube management sleeve (at the bottom of the reusable body) that allows for compact transportation and prevents tangling before use and during needle application. Alternatively, the tubing may optionally terminate in a modular connector, or the tubing set and needle(s) may be separately attached as part of the use process. The reusable body includes a battery, a fluid pressure power source, and a medication container interface, e.g., via the lid 20c. This design is intentionally not affected by orientation or gravity. The form factor has a simple set of usage steps that can be performed multiple times.In this example, the user inserts the cassette into the drug delivery device as seen in Figures 25A-25B, attaches the needle to the injection site, and simply presses the start button to administer the complete treatment regimen. For multiple drug regimens, the device may remind the user when to proceed or reject drugs loaded out of sequence. In one example, the fluid-tight chamber 11 is formed by the reusable body 20 and frame 20b. In this example, the inlet 110 for the fluid-tight chamber 11 is located within the reusable body 20, as shown in Figure 25C. Additionally, multiple inlets 110 for the fluid-tight chamber 11 can be provided, as shown in Figure 25C.
[0250] Alternatively, FIGS. 9, 24-25, and 32 can also schematically illustrate a drug delivery device comprising one cassette having multiple drug containers. In this example, the body 20 and frame 20b, which are also described as parts of the reusable body of the drug delivery device, should be considered as parts of the cassette in this example. In other words, in this example, the reusable body of the drug delivery device only comprises the fluid pressure power source 21, and further comprises the user interface 24 and the user-wearable function 25. In this example, the body (reference number 20 in FIGS. 24-25B) and the frame (reference number 20b in FIGS. 24-25B) are the container carriers of the cassette. In this example, the cassette container carrier is reusable. As described above, the frame is configured to be attached to more drug containers (reference number 1a in FIGS. 24-25B), and the lid (reference number 20c in FIGS. 24-25B) is configured to seal the body of the cassette (reference number 20a in FIGS. 24-25B). As in the previous example, the drug container can be attached to the inner section of the reusable body via a magnetic connection, a releasable snap-fit connection, a screw thread connection, and / or a bayonet connection. In a preferred example, the drug container can be attached to the frame of the reusable body via a magnetic connection, a releasable snap-fit connection, a screw thread connection, and / or a bayonet connection. Thus, when the frame is releasably attached to the body, the drug container can be releasably attached to the cassette. Similarly, in this example, the frame includes one or more tube openings (having reference numeral 20bb in Figures 24-25B) for connection to one or more tubes and / or drug delivery members, respectively. In a preferred example, the frame has an integrated tubing set and needle. The tubing set and needle are collected in a tubing management sleeve (at the bottom of the reusable body), which allows for compact transportation and avoids tangling before use and during needle application. Alternatively, the tubing may optionally terminate in a modular connector, and the tubing set and needle(s) may be attached separately as part of the use process.In this example, the body and lid form a fluid-tight chamber, so that when fluid enters the body, the fluid can push out the drug contained within the drug container and deliver the drug to the patient via the drug delivery member. In this example, the patient simply connects the cassette to the fluid pressure power source 21, attaches the needle to the injection site, and presses the start button to administer the complete treatment regimen, as seen in Figures 25A-25B.
[0251] In another example, the drug delivery device 2;2';2" comprises a processor electrically connected to the fluid pressure power source 21 and a power source, e.g., a battery, connected to the processor. The processor and power source are housed within the reusable body 20;20';20";20'". In this example, the above-mentioned controller 21i" can be the processor of the drug delivery device or is electrically connected to such a processor.
[0252] In another example, the medication delivery device 2;2';2" comprises a user interface 24 attached to the reusable body 20;20';20";20'", as shown in Figures 9 and 18. The user interface 24 is electrically connected to the processor. In one example, the user interface is a button protruding from the outer surface of the reusable body. In another example, the user interface is a touch panel disposed on the outer surface of the reusable body. Furthermore, in another example, the medication delivery device comprises an orientation sensor, for example a gyro sensor, so that the display, screen, or touch panel can always be presented with a right-facing graphic display to the user, as shown in Figures 37A-37B.
[0253] In another example, the medication delivery device includes a wireless communication receiver and / or transmitter connected to the processor. The wireless communication receiver and / or transmitter can be of any suitable long-range or short-range wireless communication technology, such as RF, Bluetooth, Zigbee, 3G, 4G, or 5G. The wireless communication receiver is configured to receive a wireless signal from a remote device and / or an information tag to the processor. The wireless communication transmitter is configured to transmit a wireless signal from the processor to the remote device or write information to the information tag. In this example, instead of a user interface, a user can use a remote device, such as a smartphone, to control and / or monitor the medication delivery operation. In yet another example, the communication transmitter is configured to write used information to an information tag on the cassette. The information can be the remaining medication in the cassette.
[0254] In another example, the pressure sensor and / or position sensor of the piston of the fluid-tight measuring chamber, and / or the position sensor and / or flow sensor of the container carrier, and / or the sensor evaluating the mass flow rate into the fluid-tight chamber(s) are electrically connected to the processor. Optionally, a temperature sensor is electrically connected to the processor. In this example, the temperature sensor is configured to monitor the temperature of the fluid-tight chamber. In this example, the processor is configured to control the fluid pressure power source to output fluid into the fluid-tight chamber according to a signal from the pressure sensor and / or position sensor of the piston of the fluid-tight measuring chamber and / or the position sensor of the container carrier. In one example, if the fluid pressure power source is a pneumatic power source, the processor is configured to control the pneumatic power source 21 to output fluid at a constant pressure level greater than the resistance pressure value of the target tissue until the drug container is emptied or a predetermined amount of the contained drug is delivered. Since the volume of the fluid-tight chamber is known, the remaining drug in the drug container M;M′ can be calculated by monitoring the pressure level in the fluid-tight chamber based on application of the ideal gas law. Similarly, in another example, the processor is configured to control the delivery of the drug contained in the drug container at a constant delivery rate by maintaining a constant pressure level in the fluid-tight chamber during the drug delivery operation. In a preferred example, no other flow control configuration is used. Thus, the flow rate is substantially equal to the delivery rate of the drug contained in the drug container. In this example, the processor controls the fluid pressure power source to deliver more fluid when the detected pressure level decreases, and stops the fluid pressure power source or activates the vacuum device when the detected pressure level increases.
[0255] Furthermore, in one example where the body of the drug container includes a flexible bag and a flexible tube, instead of using a pressure level to control the delivery rate of the drug contained in the drug container as described above, the delivery rate of the drug contained in the drug container of the drug delivery device can be controlled by compressing the flexible tube. For example, the flexible tube can be attached to another fluid-tight tube connected to a fluid pressure power source. In this example, when fluid from the fluid pressure power source flows into the fluid-tight tube, the fluid-tight tube can press against the flexible tube of the drug container, thereby controlling the delivery rate of the drug contained in the drug container of the drug delivery device. Alternatively, as described above, the delivery rate of the drug contained in the drug container can be adjusted by manipulating the flexible tube (e.g., by a pinch valve).
[0256] In one example where the cassette comprises a medication container, the medication container comprises a temperature sensor and / or a timer. The temperature sensor is configured to monitor the temperature of the contained medication, and the timer is configured to record the storage period of the contained medication. In this example, when the cassette is attached to the reusable body, the processor is configured to be electrically connected to the temperature sensor and / or the timer so that the status of the contained medication can be verified by the processor. For example, if the contained medication has been stored for too long or has been exposed to high temperatures that may affect the efficiency of the contained medication, the processor can generate a warning indication to a user and / or send a warning signal to a remote device.
[0257] In another example, the fluid pressure power source 21 is connected to at least two fluid-tight chambers 11a''', 11b''', 11c'''; 11a''''''', 11b''''''', 11c''''''', 11d'''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d'''''''' as shown in FIGS. 5, 13, and 14. For example, the fluid pressure power source 21 is connected to at least two fluid-tight chambers 11a''', 11b''', 11c'''; 11a''''''', 11b''''''', 11c''''''', 11d''''''' via at least two separate fluid paths, such as two independent fluid transmission tubes or dual lumen tubes, as shown in FIGS. 5 and 13. Alternatively, the fluid pressure power source 21 is connected to at least two fluid-tight chambers 11a'''''''', 11b'''''''', 11c'''''''', and 11d'''''''' via a control valve and one main flow path with two split secondary flow paths, as shown in Figure 14. In this example, the processor is configured to control the fluid pressure power source to selectively output fluid into at least one of the fluid-tight chambers 11a''', 11b''', 11c'''; 11a'''''''', 11b'''''', 11c'''''''', 11d''''''''; 11a'''''''', 11b'''''''', 11c'''''''', and 11d''''''''.
[0258] In one example where the pressure sensor and / or position sensor of the fluid-tight measuring chamber and / or the position sensor of the container carrier are electrically connected to the processor, the processor is configured to control the fluid pressure power source to selectively output fluid into at least one fluid-tight chamber according to signals from the pressure sensor and / or position sensor of the fluid-tight measuring chamber, the position sensor of the container carrier, and / or the sensor assessing the mass flow rate into the fluid-tight chamber.
[0259] In yet another example, the processor is configured to control the fluid pressure power source to output a specific amount of fluid, where the specific amount is predetermined or dependent on signals from a pressure sensor and / or a position sensor of the fluid-tight measuring chamber and / or a position sensor of the container carrier, such that only the specific amount of medicament contained within the medicament container can be forced out of the fluid outlet.
[0260] In an example where the medication delivery device 2 includes a wireless communication receiver connected to the processor and the medication delivery device is configured to be attached to a cassette containing multiple medication containers, the wireless communication receiver is an RFID reader configured to read an RFID tag on the cassette, in this example, the RFID tag includes information regarding the flow rate for each individual medication, the delivery sequence between different medications, dosage, emergency stop information, etc.
[0261] In one example, the fluid-tight chamber includes a pressure sensor and a flow sensor. In a preferred example, the drug container is a flexible bag completely received within the fluid-tight chamber. In this example, when a user attaches the cassette 1 to the reusable body 20 of the drug delivery device, the fluid-tight chamber is connected to a fluid pressure power source 21. Before the delivery tube is fluidly connected to the drug container, the processor can control the fluid pressure power source to pressurize the fluid-tight chamber, and thus can measure the initial state of the drug container, for example, the actual fill volume of the drug, by the ideal gas law and / or its simplification as described above. The processor is configured to continuously monitor the pressure and flow rate of the fluid-tight chamber via the pressure sensor and the flow sensor during the drug delivery operation. As a result, as shown in FIG. 36 , when the drug delivery member is prematurely removed 302, and / or the delivery tube contains air 301 (increasing flow rate but not pressure), and / or a delivery occlusion occurs 303 (increasing pressure but not flow rate) compared to the relationship between flow rate and pressure during normal delivery operation 300, the event(s) can be detected by monitoring the pressure level and flow rate, and the processor can then control the fluid pressure power source 21 to stop or slow down. The processor can also control the release valve to open, and the processor can provide feedback to the user. In a preferred example, one or more processors of the drug delivery device can be programmed with a machine learning module, so that the relationship between flow rate and pressure during normal delivery operation 300 and / or the determination of changes 301, 302, 303 made by the one or more processors can self-adjust during use to increase the accuracy of event detection.
[0262] In one example, as shown in FIG. 13, the fluid pressure power source 21 is connected to the cassette 1 via a dual-lumen tube. In this example, one inner tube of the dual-lumen tube is equipped with a first valve 26a, and the other inner tube of the dual-lumen tube is equipped with a second valve 26b. In this example, the fluid pressure power source 21 is connected to a first set of drug containers Ma, Mb, and Mc via the first valve 26a. In this example, each drug container is housed in an independent fluid-tight chamber 11a'''''''', 11b'''''''', 11c'''''''', and 11d''''''''. Each fluid-tight chamber has an inlet and a valve 114a'', 114b'', and 114c'' at the inlet. The fluid pressure power source 21 is also connected to a second drug container Md via a second valve 26b. The second drug container Md is housed in another fluid-tight chamber 11d'''''''' having an inlet and a valve 114d'' at the inlet. In this example, the patient should receive medication from each medication container Ma, Mb, Mc in sequence, and the patient should receive medication from the second medication container M0d only in the event of an emergency, such as an adverse drug reaction. In this example, the processor controls the first valve 26a to open and close the second valve 26b. The valves 114a'', 114b'', 114c'' for each fluid-tight chamber can be designed with different resistances so that they open only when the previous medication container is empty or as controlled by the processor. If an emergency exists (either detected by another sensor or when the user activates the emergency button as described above), the processor can close the first valve 26a and open the second valve 26d, allowing output fluid from the fluid pressure power source to flow into the fluid-tight chamber with the second medication container Md.
[0263] In another example, as shown in FIG. 14 , instead of the first and second valves, a single multi-way valve 114′″ can connect the first set of drug containers Ma, Mb, Mc and the second drug container Md (emergency drug) to the fluid pressure power source 21. In this example, the processor controls the multi-way valve 114′″ to close, open toward the first set of drug containers Ma, Mb, Mc, or open toward the second drug container Md′ (emergency drug). In this example, each of the first set of drug containers Ma, Mb, Mc is contained within a separate fluid-tight chamber 11a′′′′′, 11b′′′′′, 11c′′′′′. In this example, only one of the fluid-tight chambers 11a′′′′′ has an inlet connected to the fluid pressure power source 21. The one-way valve 101 is disposed between the two fluid-tight chambers 11a′′′′′, 11b′′′′′, 11c′′′′′. Therefore, only when the previous drug container is empty can the pressure in the previous fluid-tight chamber be built up to open the one-way valve 101, allowing fluid from the fluid pressure power source 21 to flow into the next fluid-tight chamber.
[0264] In one example, each of the first set of drug containers Ma, Mb, Mc used in the design as shown in Figure 14 comprises a flexible bag. In addition, each of the first set of drug containers Ma, Mb, Mc used in the design as shown in Figure 14 comprises flexible tubing as described above. In this example, the second drug container Md includes a flexible bag. In addition, the second set of drug containers Md used in the design as shown in Figure 14 comprises flexible tubing as described above.
[0265] Alternatively, in another example, each of the first set of drug containers Ma, Mb, Mc used in the design shown in Figure 14 comprises a flexible bag. In addition, each of the first set of drug containers Ma, Mb, Mc used in the design as shown in Figure 14 comprises flexible tubing as described above. In this example, the second drug container Md includes a cartridge made of a rigid material, such as glass or rigid plastic. In addition, the second set of drug containers Md used in the design as shown in Figure 14 comprises flexible tubing as described above.
[0266] 13-14 are merely schematic illustrations of the multiple fluid-tight chambers. In one example, each of the multiple fluid-tight chambers is housed in a single independent cassette. Alternatively, all of the multiple fluid-tight chambers are housed in a single cassette. Alternatively, at least one of the multiple fluid-tight chambers is housed in a single cassette, and the remainder of the multiple fluid-tight chambers are housed in a separate cassette.
[0267] Furthermore, the drug delivery member 23; 23a, 23b, 23c, 23d is an injection needle or an insertion needle with a soft cannula, and the processor can also detect the removal of the drug delivery member 23, 23a, 23b, 23c, 23d when a predetermined pressure drop is detected, because when the drug delivery member 23; 23a, 23b, 23c, 23d is removed from the target tissue, the resistive pressure of the target tissue becomes less significant.
[0268] Additionally, the intentional break point can be located near the drug delivery member 23; 23a, 23b, 23c, 23d. For example, if the delivery tube of the body of the drug container is pulled in a manner that would normally move the drug delivery member 23; 23a, 23b, 23c, 23d away from the patient, the delivery tube of the body of the drug container can instead break at this joint, separating the delivery tube of the body of the drug container from the drug delivery member 23; 23a, 23b, 23c, 23d and avoiding potential damage from the drug delivery member 23; 23a, 23b, 23c, 23d.
[0269] This rupture also has the effect of eliminating the pressure drop associated with the needle and subcutaneous tissue back pressure, thus reducing the upstream driving pressure for drug delivered at a controlled flow rate.
[0270] Thus, when removal of the drug delivery member is detected, the processor may generate a display on the user interface and / or send a warning signal to a remote device. The processor may also stop the fluid pressure power source 21 and open the release valve 115 to stop the drug delivery operation.
[0271] Other events, such as the delivery tube containing air or the occurrence of an occlusion, as shown in FIG. 36, can be detected using any pressure sensor and / or the flow sensor described above.
[0272] As noted above, the term "flow rate" referred to in the following examples is the rate of flow of the drug out of the drug container.
[0273] Furthermore, in one example where fluid pressure power source 21"; 21"' is a pneumatic power source, the volume of the drug in the drug container can be determined using the ideal gas law and its simplifications, such as Boyle's law and Charles' law, as described above in the Overview section of this specification. However, as described above, for commercial provision of this device, it is unlikely that the system will use pure ideal gas, and the use of ambient air is highly advantageous. To compensate for inherent sensitivity to environmental variables and improve pump performance in the presence of environmental uncertainties, the compensation block 21h" described above can be used. The compensation block 21h" includes an atmospheric pressure sensor and / or an ambient temperature sensor so that calculations can be calibrated based on detections from the compensation block 21h". Optionally, the compensation block can include a humidity sensor to compensate for changes in air density. In a preferred example, the flow sensor can be an integrated temperature sensor. It should be noted that the compensation block can be a unit having one or more sensors as described above. Alternatively, the compensation block is a control structure programmed into one or more processors of the drug delivery device, in this example all sensors are located in the cassette, the fluid tight chamber, and / or the pneumatic fluid pressure power source, in this example all sensors are connected to one or more processors of the drug delivery device.
[0274] Furthermore, in another example, the flow rate is not sensed directly. Rather, the system repeatedly calculates the void volume of the system. Given that the only way the void volume can change is due to liquid exiting the drug container, the rate of change of the void volume is equal to the flow rate.
[0275] To avoid the noise observed in liquid flow rate calculations when adjacent void volume measurements are used, the measurements can be filtered to obtain a cleaner signal. One such approach involves a buffer and linear regression. At each controller evaluation, the initial conditions of the vessel carrier (calculated by the ideal gas law and its simplifications) are added to a buffer, and a linear regression is performed on the buffer. The slope of the regression line is the flow rate.
[0276] The system allows for continuous control of flow rate. In one example, a target flow rate can be controlled by continuous fluid delivery into the fluid-tight chamber while monitoring the pressure, by removing fluid from the fluid-tight chamber while monitoring the pressure, and / or by delivering built-up pressure or venting the fluid-tight chamber, by suddenly stopping the flow (e.g., during an emergency or systemic infusion reaction) and reducing the pressure to the environment surrounding the cassette. For example, the system can control a release valve to release fluid to the environment surrounding the cassette based on detection from one or more connected sensors. The system allows for flow rate variations during drug delivery operations, such as may be required during rate-adjusted regimens common in oncology, with each cassette having a desired flow rate that can be independently configured. Different drug cassettes or container carriers can be combined in a desired order, and each cassette can have any desired fluid volume and be delivered at a desired flow rate regardless of viscosity, volume, or other drug, patient, or system configuration (e.g., cannula gauge) parameters.
[0277] Furthermore, in one example where the fluid pressure power source is a pneumatic fluid pressure power source, the system can be controlled using a target maintenance mechanism, as shown in FIG. 35 , and the system (the operation of the fluid pressure power source when connected to the fluid-tight chamber of the cassette) can be configured using target maintenance mechanism 200. In this example, information about the initial state of the cassette is measured by measurement modules 207, 208, and 209. The measurement modules include a flow rate calculation module 209 that calculates the flow rate of the drug exiting the fluid outlet of the flexible bag, an air volume calculation module 208 that calculates the air volume in the fluid-tight chamber, and an initial information input 207. The flow rate information is input to flow error detection module 201, which can adjust the pressure target via adjustment module 203. The adjusted target pressure can be used by air mass module 205, in conjunction with sensor module 206, to adjust the air mass in the fluid-tight chamber to adjust the pressure level in the fluid-tight chamber. In this example, since ideally there is a linear relationship between pressure and liquid flow rate, the target maintenance period simply adjusts the pressure target of the system in proportion to the measured flow rate error. The flow error is interpreted as a ratio between the target liquid flow rate and the measured liquid flow rate, rather than a difference. Pressure target adjustment methods can take many forms, but all essentially provide the flow error as an input for response adjustment. Several controllers can be used, such as a Proportional Integral (PI) controller, a Proportional-Integral-Derivative (PID) controller, or a bang-bang controller. In one example, a target maintenance mechanism can be designed such that the current system pressure and pressure target are evaluated by a PID function, and the output of the PID function (in the form of a fluid pressure power source command) is compared to fluid pressure power source activity limits, such as a limited power operating window and on-time duration rules, to ensure airflow sensing accuracy. If allowed, the fluid pressure power source operates for a calculated amount of time.In a preferred example, a time-based (rather than intensity-based) target maintenance mechanism is used because intermittent high airflow rates are easier to accurately sense with a thermal mass flow sensor than continuous low airflow rates. During each pressure control loop, the PID output is converted to fluid pressure power source on time (% of control cycle). In an example where the fluid-tight chamber includes a release valve, a release control mechanism can be used. The release control mechanism can be designed to compare the pressure target with the current system pressure. If the difference between these pressures is greater than a threshold and negative, a release control mechanism is activated. In a preferred example, the processor of the drug delivery device is configured to suspend the drug delivery operation when the release control mechanism is activated. In one example, the drug delivery operation can be suspended by clamping the delivery tube. In this example, the drug delivery device includes a clamp electrically connected to the processor. For example, the clamp is connected to a solenoid wire. Once the release control mechanism is activated, it begins venting (opening the release valve), and the system records the current void air volume and the injected fluid mass, e.g., air mass, gas mass. Once the pressure drops below the target, the release control mechanism closes the release valve and the system performs a new calculation of the injected fluid mass, e.g., air mass, gas mass, and then provides a signal to the processor to continue the drug delivery operation.
[0278] In one preferred example, the drug delivery device can be controlled by the following method: The drug delivery device comprises a fluid pressure power source, which is a pneumatic power source as described in any of the examples above. The drug delivery device comprises a fluid tight chamber as described in any of the examples above, the fluid tight chamber containing a drug container. The drug container is a flexible bag having a fluid outlet. The flexible bag contains a drug. The method comprises the following steps in the following order: receiving at least one of a pressure level measurement of fluid pressure within the fluid-tight chamber and a flow rate measurement of the rate at which the medication exits the fluid outlet of the flexible bag; retrieving information from a database using the received measurements; and Providing a signal based on the obtained information to cause one or more electronic components of the medication delivery device to perform an action or to stop a currently executing action of one or more electronic components of the medication delivery device.
[0279] Preferably, both a pressure level measurement of the fluid pressure in the fluid-tight chamber and a flow rate measurement of the medicament exiting a fluid outlet of the flexible bag are received. In a preferred example, the method is performed by a processor of the medicament delivery device. In a preferred example, the fluid-tight chamber comprises a pressure sensor and a flow rate sensor. In a preferred example, the step of retrieving information from the database using the received measurements comprises the following steps in the following order: calculating values based on the received measurements using the ideal gas law and its simplifications; comparing the calculated value with a predetermined value; and A step that produces the results of the comparison.
[0280] In a preferred example, the calculation is performed by a processor. Alternatively or additionally, the communication unit of the medication delivery device can transmit the received measurements to a remote server and / or personal computing device to be calculated. In this example, the processor is configured to receive the calculated values and / or compared results (in examples where the comparison is also performed on the remote server and / or personal computing device).
[0281] It should be noted that the predetermined value is received from an information tag on the medication container. Alternatively or additionally, the predetermined value is input from a user interface. Alternatively or additionally, the predetermined value is downloaded from a remote server. Alternatively or additionally, the predetermined value is stored in a processor and / or memory of the medication delivery device. Furthermore, the predetermined value relates to at least one of a volume of the medication container, a volume of medication contained in the medication container, a target flow rate of the medication out of the fluid outlet of the flexible bag, a target pressure level of the fluid pressure in the fluid-tight chamber, a previously received flow rate of the medication out of the fluid outlet of the flexible bag, a previously received pressure level of the fluid pressure in the fluid-tight chamber, and a previously calculated volume of the medication contained in the medication container.
[0282] Furthermore, in one preferred example, after the step of generating a comparison result, the step of retrieving information from a database using the received measurements further comprises the step of providing the information retrieved by matching the comparison result with information from the database. Alternatively or additionally, after the step of generating a comparison result, the step of retrieving information from a database using the received measurements further comprises the step of providing the information retrieved by providing the comparison result.
[0283] The information obtained relates to at least one of the actual filled volume of drug in the drug container, the volume of drug remaining in the drug container after use, air in the delivery tube, the delivery member being away from the delivery site, and a delivery blockage (which may be determined to be an "end of administration" event).
[0284] Further, the operation of one or more electronic components of the drug delivery device is configured to perform or stop at least one of providing instructions to a user of the drug delivery device, drug delivery operations, transmitting data to a remote server, adjusting the pressure level of fluid pressure in the fluid-tight chamber, and adjusting the drug release rate from the fluid outlet of the flexible bag, depending on the signal provided.
[0285] Additionally, the reusable body of the drug delivery device, and / or the cassette housing of the cassette, and / or the container carrier of the cassette, and / or the fluid-tight chamber of the cassette, as described in any example, may comprise (i.e., may be molded into or with) a compound characterized by persistent antibacterial, antifungal, and / or antiviral properties.
[0286] Alternatively, compounds characterized by persistent antibacterial, antifungal, and / or antiviral properties can be applied to molded (i.e., finished) components by a secondary process (e.g., chemical vapor deposition), spraying, or dipping process.
[0287] In one preferred example, the multi-way valves, such as 2 / 2-way valves, 3 / 2-way valves, and 5 / 2-way valves, may be solenoid valves, as described above.
[0288] The inventive concept has been described primarily with reference to a few examples. However, as those skilled in the art will readily appreciate, other embodiments than those disclosed above are equally possible within the scope of the inventive concept as defined by the appended claims.
[0289] Some other aspects of the present invention are disclosed in the following clauses. Clause 1. A cassette (1;1';1'') of a drug delivery device (2;2';2''), the drug delivery device comprising a reusable body (20;20') comprising a fluid pressure power source (21;21'), the cassette (1;1';1'') comprising: vessel carriers (10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d''); a medicament container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md') having a body (M0; M0'; M0''; M0a, M0b; M0a, M0a', M0a'', M0b, M0b'; M0b'') and a fluid outlet (M1; M1'), wherein the body (M0; M0'; M0''; M0a, M0b; M0a, M0a', M0a'', M0b, M0b'; M0b'') includes a flexible portion; the medicament container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md') is at least partially disposed within a container carrier (10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d''); The container carrier (10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d'') comprises a fluid-tight chamber (11; 11'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''''; 11'''''', 11'''''', 11a''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''''', 10e''''''; 11a'''''''''', 11b''''''); c''';11a'''',11b'''',11c'''',11d'''';11''''',11'''''',11a''''''',11b''''''',11c''''''''',11d''''''';11a'''''''''',11b'''''''',11c'''''''',11d'''''''';11a'''''''''',10e''''';11a'''''''''',11b'''''') comprises an inlet (110;110';110'';110'''';110'''';110'''';110a);); the inlet (110,110';110'';110'';110'''';110'''';110'''';110a) is configured to be fluidly connected to an outlet of a fluid pressure power source of the reusable body of the medication delivery device; The fluid-tight chamber (11; 11'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11'''''', 11'''''', 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d'''''' '';11a''''''''''', 10e'''''';11a'''''''''', 11b'''''''''''') are coupled to a flexible portion of the body (M0;M0';M0'';M0a,0b;M0a,M0a',M0a'',M0b,M0b';M0b'') of the drug container (M;Ma,Mb,Mc,Md;Ma',Mb',Mc',Md'), thereby providing an inlet (110;110';110'';1 10'''; 110''''; 110a) receives output fluid from a fluid pressure power source (21; 21'), and the output fluid is passed through a fluid-tight chamber (11; 11'; 11''; 11a'''', 11b'''', 11c''''; 11a'''', 11b'''', 11c'''', 11d'''', 11'''''', 11a'''''''', 11b'''''''', 11c'''''''', 11d ''''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''''', 10e''''''; 11a'''''''''', 11b''''''''''); and at least a portion of the drug contained in the drug container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md') is pushed out under pressure of the output fluid; and the fluid outlet (M1; M1') is configured to be connected to a drug delivery member (23; 23a', 23b', 23c', 23d') of a drug delivery device (2; 2'; 2'') when the cassette (1; 1'; 1'') is attached to the drug delivery device (2; 2'; 2'').
[0290] Clause 2. The cassette of clause 1, wherein the cassette comprises a cassette housing, and the container carrier is disposed within the cassette housing.
[0291] Clause 3. A cassette according to clause 1 or 2, wherein the cassette is configured to be releasably attached to a reusable body of a medication delivery device.
[0292] Clause 4: The cassette according to any one of clauses 1 to 3, wherein the main body of the drug container comprises a flexible bag and / or a flexible tube.
[0293] Clause 5. The cassette of any one of clauses 1 to 4, wherein the body comprises a delivery tube.
[0294] Clause 6. A cassette according to a combination of clauses 4 and 5, wherein the body of the drug container comprises a flexible tube and the delivery tube is the flexible tube of the body.
[0295] Clause 7. The cassette of any one of clauses 1 to 6, wherein the flexible portion of the body is at least partially contained within a fluid-tight chamber.
[0296] Clause 8. The cassette according to the combination of clauses 6 and 7, wherein the fluid-tight chamber comprises a tube inlet and a tube outlet, and wherein the delivery tube is configured to be positioned between the tube inlet and the tube outlet.
[0297] Clause 9. A cassette as described in clause 7 or 8, wherein the fluid-tight chamber comprises an outlet configured to be connected to a vacuum device, whereby when the pressure in the fluid-tight chamber is reduced, the drug contained in the drug container is sucked into the delivery tube.
[0298] Clause 10. The cassette of clause 9, wherein the inlet of the fluid tight chamber is the outlet of the fluid tight chamber.
[0299] Clause 11 A cassette described in any one of clauses 1 to 6, wherein the container carrier comprises a container chamber configured to at least partially accommodate a drug container, the fluid-tight chamber being expandable, the fluid-tight chamber being adjacent to a flexible portion of the body, whereby output fluid from the fluid pressure power source is configured to flow into the fluid-tight chamber and expand the fluid-tight chamber to press against the drug container.
[0300] Clause 12. A cassette according to any one of clauses 1 to 4, wherein the cassette comprises a container carrier having one fluid-tight chamber therein, the container carrier comprising a connection port configured to be releasably attached to either an outlet of a fluid pressure power source of a reusable body of a medication delivery device or another connection port of another container carrier, and the container carriers are configured to be stacked on top of each other.
[0301] Clause 13. A cassette as described in clause 12, wherein the cassette comprises one container carrier having a connection port configured to be releasably attached to either an outlet of a fluid pressure power source of the reusable body of the medication delivery device or another connection port of another container carrier of another cassette, and wherein multiple cassettes are configured to be stacked on top of each other.
[0302] Clause 14. A cassette according to clause 12 dependent on clause 2 or clauses 3-4 dependent on clause 2, wherein the cassette comprises a plurality of container carriers stacked on top of one another within a cassette housing.
[0303] Clause 15. The cassette of any one of clauses 1-4 or clauses 12-13, wherein the fluid-tight chamber is configured to receive a drug container.
[0304] Clause 16. The cassette of clause 14, wherein the fluid-tight chamber is formed by a container frame.
[0305] Clause 17. The cassette of clause 15, wherein the fluid-tight chamber is formed by an interior chamber of the container frame and the container carrier.
[0306] Clause 18. The cassette of clause 15, wherein the fluid-tight chamber is formed by a container frame and a cap configured to attach to the container frame.
[0307] Clause 19. The cassette of clause 17, wherein the cap comprises a tubing set including a delivery tube operably connected to a fluid outlet of a drug container within the fluid-tight chamber.
[0308] Clause 20. The cassette of clause 18, wherein the tubing set comprises a piercing member configured to pierce the fluid outlet of the drug container to establish fluid communication between the delivery tube and the drug container.
[0309] Clause 21. A cassette according to any one of clauses 1 to 20, wherein the inlet to the fluid-tight chamber is provided with a valve.
[0310] Clause 22. A cassette according to clause 21, wherein the valve at the inlet of the fluid-tight chamber is a one-way valve.
[0311] Clause 23. A cassette according to any one of clauses 1 to 22, wherein the cassette comprises at least two fluid-tight chambers, each of the two fluid-tight chambers housing at least two drug containers.
[0312] Clause 24. The cassette of clause 23, wherein a one-way valve is disposed between the two fluid-tight chambers.
[0313] Clause 25. The cassette of clause 24, wherein only one fluid-tight chamber of the at least two fluid-tight chambers comprises an inlet configured to be fluidly connected to a fluid pressure power source.
[0314] Clause 26 A cassette as described in Clause 25 when subject to Clause 21 or Clause 22, wherein the one-way valve between the two fluid-tight chambers is configured to open when a first fluid pressure threshold is reached and the valve at the inlet of the fluid-tight chamber configured to be fluidly connected to the fluid pressure power source is configured to open when a second fluid pressure threshold is reached, the first fluid pressure threshold being greater than or equal to the second fluid pressure threshold.
[0315] Clause 27. A cassette as described in any one of clauses 1 to 26, wherein the fluid-tight chamber is provided with a discharge valve configured to discharge fluid flowing into the fluid-tight chamber, and the fluid can flow out of the fluid-tight chamber through the discharge valve.
[0316] Clause 28: A valve at the inlet of the fluid-tight chamber configured to be fluidly connected to the fluid pressure power source is configured to open when a second fluid pressure threshold is reached, and a discharge valve is configured to discharge fluid entering the fluid-tight chamber out of the fluid-tight chamber when the fluid pressure reaches a predetermined threshold, the predetermined threshold being greater than the second fluid pressure threshold. A cassette as defined in clause 18 when subject to clauses 21 or 22.
[0317] Clause 29. The cassette of clause 28 when dependent on clause 26, wherein the predetermined threshold is greater than the first fluid pressure threshold.
[0318] Clause 30. A cassette according to any one of clauses 1 to 29, wherein the fluid-tight chamber of the vessel carrier is made at least in part from a rigid material.
[0319] Clause 31 A cassette described in any one of clauses 1 to 30, wherein the fluid-tight chamber comprises a pressure sensor, and / or the fluid-tight chamber is coupled to a fluid-tight measuring chamber, the fluid-tight measuring chamber configured to be connected to a fluid pressure power source and configured to have the same fluid pressure level as the fluid-tight chamber, the fluid-tight measuring chamber comprises a piston, the piston configured to be operably connected to a position sensor configured to sense the position of the piston within the fluid-tight measuring chamber, and / or the container carrier comprises a position sensor configured to detect the position of the drug container.
[0320] Clause 32. A cassette according to any one of clauses 1 to 31, wherein the container carrier comprises in part a fluid-tight chamber configured to be formed by a combination of the container carrier and the reusable body of the medication delivery device when the cassette is attached to the reusable body of the medication delivery device.
[0321] Clause 33. A drug delivery device comprising a cassette according to any one of clauses 1 to 32, the drug delivery device comprising a reusable body and a replaceable drug delivery member, the reusable body of the drug delivery device comprising a fluid pressure power source connected to an inlet of the fluid tight chamber of the container carrier, the fluid outlet being operably connected to the drug delivery member.
[0322] Clause 34. A medication delivery device according to clause 33, wherein the fluid-tight chamber is formed by the reservoir carrier and the reusable body of the cassette when the cassette is attached to the reusable body.
[0323] Clause 35. A drug delivery device as described in clause 33 or 34, wherein the drug delivery device comprises a processor electrically connected to the fluid pressure power source and a power source connected to the processor, the processor and power source being housed within a reusable body.
[0324] Clause 36. The medication delivery device of clause 35, wherein a transmission tube is disposed between the fluid pressure power source and the inlet of the fluid-tight chamber, and the fluid pressure power source is fluidly connected to the inlet of the fluid-tight chamber via the transmission tube.
[0325] Clause 37. The medication delivery device of clause 35, wherein the fluid tight chamber is adjacent to a fluid pressure power source, the fluid pressure power source being directly fluidly connected to an inlet of the fluid tight chamber.
[0326] Clause 38 A drug delivery device as described in any one of clauses 35 to 37, wherein the drug delivery device comprises a user interface attached to the reusable body, the user interface being electrically connected to the processor, the user interface being a button protruding from the outer surface of the reusable body, and the user interface being a touch panel disposed on the outer surface of the reusable body.
[0327] Clause 39 A medication delivery device according to any one of clauses 35 to 38 when dependent on clause 31, wherein the pressure sensor and / or position sensor of the fluid-tight measuring chamber and / or the position sensor of the container carrier are electrically connected to the processor.
[0328] Clause 40. A medication delivery device as described in clause 39, wherein the processor is configured to control the fluid pressure power source to output fluid into the fluid-tight chamber according to signals from the pressure sensor and / or position sensor of the fluid-tight measuring chamber and / or the position sensor of the container carrier.
[0329] Clause 41 A drug delivery device as described in any one of clauses 35 to 40 when subject to clause 14, wherein the fluid pressure power source is connected to at least two fluid-tight chambers and the processor is configured to control the fluid pressure power source to selectively output fluid to at least one of the fluid-tight chambers.
[0330] Clause 42 A medication delivery device as described in Clause 41 when subject to Clause 39, wherein the processor is configured to control the fluid pressure power source to selectively output fluid into at least one fluid-tight chamber in accordance with signals from a pressure sensor and / or a position sensor of the fluid-tight measuring chamber and / or a position sensor of the container carrier.
[0331] Clause 43 A drug delivery device as described in clause 39 or 38, wherein the processor is configured to control the fluid pressure power source to output a specific amount of fluid, said specific amount being predetermined or dependent on signals from a pressure sensor and / or a position sensor of the fluid-tight measuring chamber and / or a position sensor of the container carrier, thereby allowing only that specific amount of drug contained in the drug container to be pushed out from the fluid outlet.
[0332] Clause 44. A medication delivery device according to any one of clauses 33 to 43, wherein the fluid pressure power source is a pneumatic power source.
[0333] Clause 45. The medication delivery device of clause 44, wherein the pneumatic power source comprises a piezoelectric pump configured to output fluid from the pneumatic power source.
[0334] Clause 46. A medication delivery device according to clause 44 or 45, wherein the fluid output from the pneumatic power source is a gas.
[0335] Clause 47. A drug delivery device according to any one of clauses 33 to 34, wherein the drug delivery device is an infusion device.
[0336] Clause 48. A medication delivery device according to any one of clauses 33 to 47, wherein the fluid pressure power source comprises a fluid pump having an inlet fluidly connected to the environment, and wherein the inlet filter connected to the inlet of the fluid pump comprises an inlet filter connected to the fluid pump.
[0337] Clause 49. A medication delivery device according to any one of clauses 33 to 48, wherein the fluid pressure power source comprises a multi-way valve, the outlet port of each multi-way valve defining an outlet for the fluid pressure power source.
[0338] Clause 50. A medication delivery device according to any one of clauses 33 to 49, comprising a multi-way valve connected to the outlet of the fluid pressure power source.
[0339] Clause 51. A drug delivery device as described in any one of clauses 33 to 50, comprising a tubing set having a delivery tube and a piercing member, the piercing member configured to establish a fluid connection between the delivery tube and the drug container.
[0340] Clause 52. A method for controlling a medication delivery device having a fluid pressure power source that is a pneumatic power source and a fluid-tight chamber containing a medication container, wherein: an inlet of the fluid-tight chamber is connected to an outlet of the fluid pressure power source, the medication container being a flexible bag having a fluid outlet, the flexible bag containing the medication, the method comprising, in the following order: receiving at least one of a pressure level measurement of fluid pressure within the fluid-tight chamber and a flow rate measurement of the rate at which the medication exits the fluid outlet of the flexible bag; retrieving information from a database using the received measurements; and providing a signal based on the obtained information to cause one or more electronic components of the medication delivery device to perform an action or to stop a currently executing action of one or more electronic components of the medication delivery device; A method comprising:
[0341] Clause 53. The step of receiving at least one of a pressure level measurement of fluid pressure within the fluid tight chamber and a flow rate measurement of the drug at a rate exiting the fluid outlet of the flexible bag, comprising: 53. The method of clause 52, comprising receiving a pressure level measurement of the fluid pressure within the fluid tight chamber and a flow rate measurement of the drug at a rate exiting the fluid outlet of the flexible bag.
[0342] Clause 54 The step of retrieving information from the database using the received measurements comprises the following steps in the following order: calculating a value based on the received measurements using the ideal gas law and its simplifications; comparing the calculated value with a predetermined value; and Steps to generate the comparison results 54. The method of claim 52 or 53, comprising:
[0343] Clause 55 After the step of generating the comparison result, the step of retrieving information from the database using the received measurements comprises: 55. The method of clause 54, further comprising the step of providing the obtained information by matching the results of the comparison with information from a database.
[0344] Clause 56 After the step of generating the comparison result, the step of retrieving information from the database using the received measurements comprises: 56. The method of clause 54 or 55, further comprising the step of providing the obtained information by providing the results of the comparison.
[0345] Clause 57. A method as defined in clause 56 or 57, wherein the obtained information relates to at least one of the actual filled volume of drug in the drug container, the volume of drug remaining in the drug container after use, air in the delivery tube, the delivery member being away from the delivery site, and delivery blockage.
[0346] Clause 58. A method according to any one of clauses 54 to 57, wherein the predetermined value relates to at least one of the volume of the drug container, the volume of drug contained in the drug container, the target flow rate of drug out of the fluid outlet of the flexible bag, the target pressure level of the fluid pressure in the fluid-tight chamber, the previously received flow rate of drug out of the fluid outlet of the flexible bag, the previously received pressure level of the fluid pressure in the fluid-tight chamber, and the previously calculated volume of drug contained in the drug container.
[0347] Clause 59. The method of clause 58, wherein the predetermined value is received from an information tag on the medication container.
[0348] Clause 60. A method according to any one of clauses 52 to 59, wherein the operation of one or more electronic components of the drug delivery device is configured to be performed or stopped in response to the provided signal, and is at least one of providing instructions to a user of the drug delivery device, performing drug delivery operations, transmitting data to a remote server, adjusting the pressure level of fluid pressure in the fluid-tight chamber, and adjusting the rate of drug release from the fluid outlet of the flexible bag.
[0349] Clause 61. A medication delivery device according to clause 35, or, if dependent on clause 35, according to any one of clauses 36 to 51, wherein the processor is configured to carry out a method according to any one of clauses 48 to 56.
[0350] Clause 62. A drug delivery system comprising a drug delivery device comprising a cassette as defined in any one of clauses 1 to 32, the drug delivery device comprising a reusable body and a replaceable drug delivery member, the reusable body of the drug delivery device comprising a fluid pressure power source connected to an inlet of the fluid-tight chamber of the container carrier, the fluid outlet being operably connected to the drug delivery member, and the drug delivery device comprising a processor configured to carry out the method as defined in any one of clauses 48 to 56.
[0351] Clause 63. A drug delivery system as described in clause 62, wherein the fluid-tight chamber of the cassette is operably connected to a pressure sensor configured to measure a pressure level measurement of the fluid pressure within the fluid-tight chamber, and / or a flow sensor configured to measure the rate at which the drug exits the fluid outlet of the flexible bag.
[0352] Clause 64. The medication delivery device of clause 63, wherein the cassette is operatively connected to a pressure sensor and a flow sensor.
[0353] Clause 65. A medication delivery device according to clause 64, wherein the cassette comprises a pressure sensor and a flow sensor.
[0354] Clause 66. A medication delivery device according to any one of clauses 62 to 65, wherein the reusable body of the medication delivery device comprises a processor.
[0355] Clause 67. The medication delivery device of clause 66, wherein the processor is electrically connected to the fluid pressure power source.
[0356] Clause 68. A medication delivery device according to clause 67 in combination with any one of clauses 66 to 67, wherein the processor is electrically connected to the pressure sensor and the flow sensor when the cassette is attached to the reusable body of the medication delivery device.
[0357] Clause 69. A medication delivery device according to any one of clauses 62 to 68, wherein the reusable body of the medication delivery device comprises a communication unit configured to read an information tag on the medication cassette when the cassette is attached to the reusable body of the medication delivery device.
[0358] Clause 70. A medication delivery device according to the combination of clauses 68 and 69, wherein the communication unit is electrically connected to the processor.
[0359] Clause 71. A medication delivery device according to any one of clauses 69 or 70, wherein the communication unit is an RFID / NFC reader and / or an RFID / NFC writer.
[0360] Clause 72. A medication delivery device according to any one of clauses 62 to 71, wherein the pneumatic power source comprises a piezoelectric pump configured to output fluid from the pneumatic power source.
[0361] Clause 73. The medication delivery device of clause 72, wherein the fluid output from the pneumatic power source is a gas.
[0362] Clause 74. A drug delivery device according to any one of clauses 62 to 73, wherein the drug delivery device is an infusion device.
[0363] Clause 75. A medication delivery device according to any one of clauses 62 to 74, wherein the fluid pressure power source comprises a fluid pump having an inlet fluidly connected to the environment, and wherein the inlet filter connected to the inlet of the fluid pump comprises an inlet filter connected to the fluid pump.
[0364] Clause 76. A medication delivery device according to any one of clauses 62 to 75, wherein the fluid pressure power source comprises a multi-way valve, the outlet port of each multi-way valve defining an outlet for the fluid pressure power source.
[0365] Clause 77. A medication delivery device according to any one of clauses 62 to 76, comprising a multi-way valve connected to the outlet of the fluid pressure power source.
[0366] Clause 78. A drug delivery device as described in any one of clauses 62 to 77, comprising a tubing set having a delivery tube and a piercing member, the piercing member configured to establish a fluid connection between the delivery tube and the drug container.
Claims
1. 1. A cassette (1; 1"; 1"') configured for use with a drug delivery device (2; 2'; 2"), said drug delivery device comprising a reusable body (20; 20') comprising a fluid pressure power source (21; 21'), said cassette (1; 1'; 1") comprising: a container carrier (10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d''); a medicament container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md') having a body (M0; M0'; M0"; M0a, M0b; M0a, M0a', M0a", M0b, M0b'; M0b"); and a fluid outlet (M1; M1'); said body (M0; M0'; M0"; M0a, M0b; M0a, M0a', M0a", M0b, M0b'; M0b"); said medicament container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md') being at least partially disposed within said container carrier (10; 10'; 10"; 10'"; 10a", 10b", 10c", 10d"); The container carrier (10; 10'; 10''; 10'''; 10a'', 10b'', 10c'', 10d'') comprises a fluid-tight chamber (11; 11'; 11''; 11a''', 11b''', 11c'''; 11a'''', 11b'''', 11c'''', 11d''''; 11'''''', 11'''''', 11a'''''''', 11b'''''', 11c'''''''', 11d''''''''; 11a'''''''''', 10e''''''; 11a'''''''''', 11b'''''', 11c 11a'''', 11b'''', 11c'''', 11d''''; 11'''''', 11'''''', 11a'''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''''', 11b'''''''', 11c'''''''', 11d''''''''; 11a'''''''''''', 11e''''''; 11a'''''''''', 11b'''''''') comprises an inlet (110, 110', 110'', 110'''', 110a''); said inlet (110, 110'; 110''; 110''; 110''; 110''''; 110a) is configured to be fluidly connected to an outlet (210) of the fluid pressure power source of the reusable body of the medication delivery device; The fluid-tight chamber (11; 11'; 11"; 11a'", 11b'", 11c'"; 11a''", 11b''", 11c''", 11d''"; 11'"", 11""", 11a''""", 11b''""", 11c''""", 11d''""; 11a''""", 11b''""", 11c''""", 11d''""; 1 1a''''''''''', 10e''''''; 11a'''''''''', 11b'''''''''') is connected to the flexible part of the body (M0; M0'; M0''; M0a, M0b; M0a, M0a', M0a'', M0b, M0b'; M0b'') of the drug container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md'); so that the inlet (110; 110'; 110''; 110 11a'''; 110''''; 110a) receives an output fluid from said fluid pressure power source (21; 21'), and said output fluid is passed through said fluid tight chamber (11; 11'; 11''; 11a'''', 11b'''', 11c'''', 11d'''', 11'''''', 11a'''''''', 11b'''''''', 11c'''''''', 11d'' 11a''''''''; 11b''''''''; 11c''''''''; 11d''''''''; 11a''''''''''; 11b''''''''''; 11c''''''''; 11d''''''''; 11a''''''''''; 11b''''''''''); and at least a portion of the drug contained in the drug container (M; Ma, Mb, Mc, Md; Ma', Mb', Mc', Md'); and and the fluid outlet (M1; M1') is configured to be connected to a drug delivery member (23; 23a', 23b', 23c', 23d') of the drug delivery device (2; 2'; 2'') when the cassette (1; 1'; 1'') is attached to the drug delivery device (2; 2'; 2'').
2. The cassette of claim 1 , wherein the body of the drug container comprises a flexible bag received within the fluid-tight chamber.
3. the cassette comprises a container carrier having a fluid-tight chamber therein; 3. The cassette of claim 1, wherein the container carrier has a connection port configured to be releasably attached to either the outlet of the fluid pressure power source of the reusable body of the medication delivery device or another connection port of another container carrier, and the container carriers are configured to be stacked on top of each other.
4. 4. The cassette of claim 3, wherein the cassette comprises a single container carrier having a connection port configured to be releasably attached to either the outlet of the fluid pressure power source of the reusable body of the medication delivery device or another connection port of another container carrier of another cassette, and wherein the multiple cassettes are configured to be stacked on top of each other.
5. The cassette of claim 3 , wherein the cassette comprises a cassette housing configured to be releasably attached to the reusable body of the medication delivery device, and the cassette comprises a plurality of container carriers stacked on top of each other within the cassette housing.
6. The cassette of claim 1 , wherein the fluid-tight chamber is formed by a container frame.
7. 7. The cassette of claim 6, wherein the fluid-tight chamber is formed by the container frame and an interior chamber of the container carrier.
8. The cassette of claim 6 , wherein the fluid-tight chamber is defined by the container frame and a cap configured to be attached to the container frame.
9. 9. The cassette of claim 8, wherein the cap comprises a tubing set comprising a delivery tube operably connected to the fluid outlet of the drug container within the fluid-tight chamber.
10. 10. The cassette of claim 9, wherein the tubing set comprises a piercing member configured to penetrate the fluid outlet of the drug container to establish fluid communication between the delivery tube and the drug container.
11. 2. The cassette of claim 1, wherein the fluid-tight chamber comprises a release valve configured to release fluid entering the fluid-tight chamber, the fluid being able to exit the fluid-tight chamber through the release valve.
12. A drug delivery device comprising the cassette of claim 1, wherein the drug delivery device comprises a reusable body and a replaceable drug delivery member, the reusable body of the drug delivery device comprising the fluid pressure power source connected to the inlet of the fluid-tight chamber of the container carrier, and the fluid outlet operably connected to the drug delivery member.
13. 13. The medication delivery device of claim 12, wherein the fluid pressure power source comprises a multi-way valve, the outlet port of each multi-way valve defining the outlet of the fluid pressure power source.
14. 13. The medication delivery device of claim 12, comprising a multi-way valve connected to the outlet of the fluid pressure power source.
15. The medication delivery device of claim 12 , wherein the fluid pump is a piezoelectric pump.
Citation Information
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