Needle-free syringe with air bubble detection function

The needle-free injector addresses the challenge of controlling injectate flow by monitoring gas compression within the cartridge and transitioning between delivery profiles, resulting in accurate and efficient delivery of the injectate.

JP7681576B2Active Publication Date: 2025-05-22PORTAL INSTRUMENTS INC
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Patent Information

Application Number
JP2022514496
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-09-05
Filing Date
2020-09-04
Publication Date
2025-05-22
Estimated Expiration
2040-09-04

AI Technical Summary

Technical Problem

Existing needle-free transdermal injection devices lack effective control over the injectate flow to accurately replicate a target injection profile, particularly due to the presence of air bubbles in the injectate cartridge.

Method used

A needle-free injector that monitors the compression of a gas volume within an injectate cartridge during plunger movement, transitioning between delivery profiles based on detected gas compression to control the injectate velocity and ensure accurate delivery.

Benefits of technology

The system effectively controls the injectate flow to accurately replicate a target injection profile, mitigating issues related to air bubble compression and ensuring efficient delivery of the injectate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The needle-free injector includes a housing, a cartridge disposed within the housing, a plunger slidably coupled to the chamber and disposed within the chamber, a motor operatively coupled to the plunger, the motor operable to actuate the plunger within the chamber, and a controller operatively coupled to the motor. The controller is operable to selectively actuate the plunger according to one of a first delivery profile, a second delivery profile, and a third delivery profile. The controller can transition from the first delivery profile to the second delivery profile in response to compression of gas within the chamber by the plunger, for example, upon detecting a spike in a measured current supplied to the motor. The controller can transition from the second delivery profile to the third delivery profile in response to detecting a steady-state condition between the measured current and the velocity of the plunger. Methods of delivering an injectate using a needle-free injector are provided. Methods of facilitating needle-free injection of an injectate using a needle-free injector are provided.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 62 / 896,395, entitled "Needle-Free Syringe With Air Bubble Detection," filed on September 5, 2019, the entire disclosure of which is incorporated herein by reference for all purposes. [Background technology]

[0002] The present disclosure relates to a needle-free transdermal injection device. In the field of modern medicine, medications are often delivered to a patient's bloodstream through the skin. Traditionally, this is accomplished by inserting a needle through the patient's skin to the target area for injection. However, the use of needles presents significant drawbacks, including patient fear and discomfort, as well as safety issues regarding handling of used needles.

[0003] As an alternative to needle-based syringes, needle-free transdermal injection devices have been developed. These devices typically use a high-pressure, thin jet of injectate to penetrate the patient's skin, thus eliminating the need to insert a needle into the patient's skin. However, there is still a need for improvement in needle-free transdermal injection devices. Summary of the Invention

[0004] The needle-free injector monitors compression of a volume of gas within an injectate cartridge during movement of a plunger through a first delivery profile. Once the volume of gas is sufficiently compressed (as measured by a spike in a measurement current supplied to a motor of the needle-free injector), operation of the needle-free injector transitions to operation according to a second delivery profile. Operation according to the second delivery profile generates an injectate velocity sufficient to penetrate a permeability barrier. Once the injectate penetrates the permeability barrier and a steady state condition is reached, operation of the needle-free injector transitions to operation according to a third delivery profile for delivery of the injectate to a subject. Detecting compression of an air bubble prior to delivery of an injectate in this manner allows the flow of the injectate to be controlled to more accurately replicate a target injection profile.

[0005] According to one aspect, a needle-free injector is provided, the needle-free injector comprising a housing, a cartridge disposed within the housing, a plunger slidably coupled to the chamber and disposed within the chamber, and a motor operatively coupled to the plunger, operable to actuate the plunger within the chamber. The plunger can be positioned to expel the volume of injectate through the outlet port when slid within the chamber. The cartridge can include an outlet port and a chamber for holding the volume of injectate. The needle-free syringe can further include a controller operatively coupled to the motor, the controller operable to selectively operate the plunger according to one of a first delivery profile, a second delivery profile, and a third delivery profile, the controller operable to transition from the first delivery profile to the second delivery profile in response to detecting a spike in a measured current supplied to the motor concurrently with compression of gas within the chamber by the plunger, and the controller further operable to transition from the second delivery profile to the third delivery profile in response to detecting a steady state condition between the measured current and a speed of the plunger.

[0006] In some embodiments, an average velocity of the plunger during operation of the first delivery profile may be greater than an average velocity of the plunger during operation of the second delivery profile.

[0007] In some embodiments, the compression of the gas in the chamber is detected based on a drive current supplied to the motor. In some embodiments, the compression of the gas in the chamber is detected based on a position of the motor measured using a rotary encoder of the motor. In some embodiments, the compression of the gas in the chamber is detected based on an increase in force required to maintain a speed of the motor during the first delivery profile based on a comparison of a drive current supplied to the motor and a position of the motor measured using a rotary encoder of the motor.

[0008] The injectable may include an injectable pharmaceutical formulation or a nutraceutical formulation. For example, the injectable pharmaceutical formulation may include a high viscosity biological agent.

[0009] In some embodiments, the plunger speed of the second delivery profile can generate an injectate velocity sufficient to cause the injectate to penetrate a permeability barrier. The permeability barrier can be the skin of a subject. In certain embodiments, the injectate velocity can be from about 150 m / s to about 250 m / s.

[0010] In some embodiments, the first delivery profile can move the plunger at a speed of about 300 m / s to about 500 m / s. In some embodiments, the second delivery profile can move the plunger at a speed of about 60 m / s to about 150 m / s. In some embodiments, the third delivery profile can move the plunger at a speed of about 80 m / s to about 120 m / s.

[0011] According to another aspect, a needle-free injector is provided. The needle-free injector can include a plunger arranged to pressurize fluid and gas in a cartridge having an exit port. The needle-free injector can include a motor operatively coupled to the plunger. The motor can be operable to actuate the plunger in a linear motion along an axis of the cartridge to expel the fluid from the cartridge. The needle-free injector can further include a controller operatively coupled to the motor. The controller can be operable to operate the plunger according to a first delivery profile in response to an injection start signal to compress the gas in the cartridge, and to operate the plunger according to a second delivery profile in response to detecting compression of the gas in the cartridge above a predetermined threshold.

[0012] In some embodiments, detecting the compression of the gas in the cartridge beyond the predetermined threshold can include detecting a deviation in motor current between a free running drive current predicted by a model and the measured current supplied to the motor. In some embodiments, detecting the compression of the gas in the cartridge can include detecting an increase in motor current beyond a predetermined threshold to maintain the velocity of the plunger within the first delivery profile. In some embodiments, detecting the compression of the gas in the cartridge can include detecting a decrease in the velocity of the plunger below a predetermined threshold. In some embodiments, detecting the compression of the gas in the cartridge can include simultaneously detecting a decrease in the velocity of the plunger and an increase in drive current to the motor.

[0013] In some embodiments, the controller may actuate the plunger in response to feedback from an encoder operatively coupled to the motor.

[0014] In some embodiments, the first delivery profile can have a first target speed that is greater than a second target speed of the second delivery profile. In some embodiments, the second profile is a biphasic profile that includes a puncturing phase and a delivery phase. In certain embodiments, the plunger speed in the puncturing phase can be decreased as a function of time.

[0015] According to another aspect, a method of delivering an injectate using a needle-free syringe is provided. The method can include providing a needle-free syringe as described herein. The needle-free syringe can include a housing having a cartridge for holding a chamber, a plunger configured and arranged to deliver an injectate from the chamber, and a motor operatively coupled to the plunger. The method can be operable to, in response to initiating an injection using the needle-free syringe, operate the plunger according to a first delivery profile, monitor a current supplied to the motor during the first delivery profile, transition from the first delivery profile to the second delivery profile in response to detecting compression of gas in the chamber by the plunger based at least in part on a spike in the current supplied to the motor, operate the plunger according to the second delivery profile, transition from the second delivery profile to the third delivery profile in response to detecting a steady state condition between the measured current and the speed of the plunger, and operate the plunger according to the third delivery profile until a predetermined amount of the injectate is delivered from the chamber through the outlet port.

[0016] In some embodiments, transitioning from the first delivery profile to the second delivery profile can include transitioning from the first delivery profile to the second delivery profile upon detecting a spike in a measured current supplied to the motor contemporaneously with compression of the gas. In some embodiments, transitioning from the first delivery profile to the second delivery profile can include decreasing the current supplied to the motor to within a range of 0 A to about 10 A.

[0017] In some embodiments, operating the plunger according to the second delivery profile can include operating the plunger at a speed sufficient to overcome a restoring force on the plunger and deliver the injectate through the permeability barrier. For example, operating the plunger according to the second delivery profile can include operating the plunger while maintaining the compression of the gas in the chamber. In some embodiments, operating the plunger according to the second delivery profile can result in a velocity of the injectate sufficient to penetrate a permeability barrier, such as the skin of a subject.

[0018] In some embodiments, operating the plunger at the third delivery profile can include adjusting the speed of the plunger as the injectate is delivered. For example, operating the plunger at the third delivery profile can include adjusting the speed of the plunger as the injectate is delivered.

[0019] According to another aspect, a method for facilitating needle-free injection of an injectate is provided. The method may include providing a needle-free injector as described herein. The needle-free injector may include a motor operatively coupled to the plunger and a controller. The provided controller may be operable to operate the plunger with a first delivery profile, monitor a current supplied to the motor during the first delivery profile, transition from the first delivery profile to the second delivery profile in response to detecting compression of gas in the chamber by the plunger based at least in part on a spike in the current supplied to the motor, operate the plunger with the second delivery profile, transition from the second delivery profile to the third delivery profile in response to detecting a steady state condition between the measured current and the speed of the plunger, and operate the plunger according to the third delivery profile until a predetermined amount of the injectate is delivered from the chamber via the outlet port.

[0020] In a further embodiment, the method may further include providing instructions to a user for loading the injectate cartridge into the needle-free injector.

[0021] In a further embodiment, the method may further include providing instructions to a user for operating the needle-free injector. [Brief description of the drawings]

[0022] The accompanying drawings are not intended to be drawn to scale. In the drawings, each identical or nearly identical component depicted in the drawings is designated by a like number. For clarity, not every component is labeled with a reference number in every drawing. The drawings are as follows: [Figure 1] FIG. 1 is a schematic diagram of a controllable needle-free transdermal injection device. [Diagram 2] FIG. 2 is a cutaway view of a ball screw actuator. [Diagram 3]FIG. 3 is a block diagram of the controllable needle-free transdermal injection device of FIG. [Figure 4] FIG. 4 is a detailed block diagram of the controllable needle-free transdermal injection device of FIG. [Diagram 5] FIG. 5 is a detailed block diagram of the power supply of the controllable needle-free transdermal injection device of FIG. [Figure 6] FIG. 6 is the target displacement profile. [Figure 7] Figure 7 is the rotational motor speed profile associated with the target displacement profile of Figure 6. [Figure 8] FIG. 8 is an injectate jet velocity profile associated with the target displacement profile of FIG. [Figure 9] FIG. 9 is a flow chart of a method for operating a syringe. [Figure 10] Figure 10 compares the two control techniques. [Figure 11] FIG. 11 is a model of the unloaded operation of a syringe powered by a rotary motor. [Figure 12] FIG. 12 is a time-continuous equation that estimates the operation of the system of FIG. [Figure 13] FIG. 13 illustrates an embodiment of a cartridge and plunger before the start of an injection, according to one embodiment. [Figure 14] FIG. 14 shows the current supplied to the motor, plunger speed, and injectate speed as a function of time for an injection with three delivery profiles, according to one embodiment. [Figure 15] 15A-15C show the plunger speed (FIG. 15A), current supplied to the motor (FIG. 15B), and applied power (FIG. 15C) for an injection with three delivery profiles, according to one embodiment. [Figure 16] 16A-16B show the relationship between injectate velocity and current supplied to the motor (FIG. 16A) and between injectate velocity and plunger velocity (FIG. 16B) for a third delivery profile, according to one embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0023] In the following document, references to singular items are to be understood as including the plural items and vice versa, unless otherwise stated or evident from the context. Grammatical conjunctions are intended to express all disjunctive and conjunctive combinations of joined clauses, sentences, words, and the like, unless otherwise stated or evident from the context. Thus, the term "or" should be understood generally to mean "and / or" and the like.

[0024] The description of ranges of values ​​herein is not intended to be limiting, but rather refers to each and every value falling within the range individually, unless otherwise specified, and each individual value within the range is incorporated herein as if it were individually set forth herein. When words such as "about," "approximately," and the like are attached to numerical values ​​or physical properties, they are to be interpreted as indicating deviations that would be understood by a person skilled in the art to operate to fulfill the intended purpose. Similarly, approximation words such as "approximately" and "substantially," when used in reference to physical properties, should be understood to contemplate a range of deviations that would be understood by a person skilled in the art to operate to fulfill the corresponding use, function, purpose, and the like. Value ranges and / or numerical values ​​are provided herein only as examples and do not constitute limitations on the scope of the described embodiments, unless expressly stated otherwise. The use of any and all examples or exemplary language (such as, for example, or the like) provided herein is intended merely to make the embodiments more clear, and is not intended to be a limitation on the scope of the embodiments. No language in this specification should be interpreted as indicating any element not recited in the claims as essential to the practice of the embodiments.

[0025] In the following description, it should be understood that terms such as "first," "second," "upper," "lower," "above," and "below" are used for convenience only and are not to be construed as limiting terms.

[0026] Needle-free transdermal injection device 1, a controllable needle-free transdermal injection device 100 for delivering an injectate (e.g., a medication or vaccine in any one of a number of states, such as a liquid or powder state) through a patient's skin includes a needle-free transdermal injector head 104 extending from a housing 102. The injector head 104 includes a chamber 106 for holding the injectate and a nozzle 108 disposed at a distal end 110 of the injector head 104. The nozzle 108 includes a head 112 and an opening 114 through which a jet of injectate is emitted from the chamber 106. In operation, the opening 114 is positioned near or against the skin 115 when the injectate is to be expelled.

[0027] The dimensions of the nozzle 108 can be adapted to control the shape and pressure profile of the injectate flow exiting the nozzle 108. For example, the inner diameter of the opening 114 can range from 50 μm to 300 μm, and a taper along the longitudinal axis 122 toward the opening can be used to shape the outgoing flow of the injectate. It will also be appreciated that the geometry of the chamber 106 relative to the opening 114 can affect how linear motion of a plunger or the like within the chamber 106 translates to an exit velocity or pressure of the injectate through the opening 114. The outer diameter of the head 112 of the nozzle 108 can narrow to the opening 114, remain uniform, or expand to provide a suitable rest surface for the head 112 of the nozzle 108. The nozzle 108 can have a length along the longitudinal axis 122 of about 500 μm to about 5 mm. Similarly, the chamber 106 can have any suitable length along the longitudinal axis to contain the injectate and displace the injectate through the opening 114 in one or more needleless injections.

[0028] The chamber 106 can have a proximal end 116 and a distal end 110. An actuator (i.e., piston or plunger 120) can be slidably disposed within the chamber 106. Movement of the plunger 120 in either direction along a longitudinal axis 122 can affect the pressure within the chamber 106. In some embodiments, the chamber 106 is integral to the device 100. In other embodiments, the chamber 106 can be separately attached to the device 100.

[0029] In some examples, the injection device 100 includes a sensor 107 (e.g., a mechanical or capacitive sensor) for detecting contact of the device with the patient's skin. In some examples, the sensor 107 is configured to detect the angle of the cartridge relative to the patient's skin. In some examples, the sensor 107 is configured to detect the position of the injection opening relative to the patient's skin 115 or body. In some examples, the sensor 107 communicates with the injection controller 100 to prevent an injection from being performed when the device is not in contact with the patient's skin 115 or when the angle or position of the device relative to the patient is incorrect.

[0030] Rotary motor The injection device 100 may include an electromagnetic rotary motor 126 that applies a force to the plunger 120 via a linkage 130 to inject the injectate in the chamber 106 through the skin 115. The linkage may include a ball screw actuator 130, or may additionally or alternatively include any other suitable mechanical coupling for converting the rotational force of the rotary motor 126 into a linear force suitable for displacing the injectate from the chamber 106. For example, the linkage may include one or more of a lead screw, a linear motion bearing, and a worm gear arrangement, or other suitable mechanical components or combinations of mechanical components. As discussed above, linear motion may be usefully inferred from the rotation of a lead screw or the like, and the injection device 100 may be instrumented to monitor the rotation to provide feedback to a controller regarding the position of the plunger 120 during an injection.

[0031] 2, an example of a ball screw actuator 130 includes a screw 332 and a nut 334 (which are coupled to the housing 102 of FIG. 1), each having a matching helical groove 336. The ball screw actuator 130 may include a recirculating ball screw having a number of miniature balls 338 or similar bearings or the like that recirculate through the grooves 336 and provide rolling contact between the nut 334 and the screw 332. The nut 334 may include a return system 333 and a deflector (not shown) that deflects the miniature balls 338 into the return system as the screw 332 or the nut 334 rotates. The balls 338 travel in a continuous path through the return system to the opposite end of the nut 334. The balls 338 then exit the ball return system and enter the grooves 336. In this manner, the balls 338 recirculate continuously in a closed circuit as the screw 332 moves relative to the nut 334.

[0032] In some examples, the rotary motor 126 is of a type selected from a variety of rotary electric motors (e.g., a brushless DC motor). The rotary motor 126 applies a torque (i.e., τ M ) to move the screw 332 of the ball screw actuator back and forth along the longitudinal axis 122. This torque rotates either the screw 332 or the nut 334, thereby generating an input force F proportional to the torque applied by the motor. M (t) will be added to the screw 332.

[0033] Torque τ applied to screw 332 M causes the application of a force to the plunger 120, resulting in movement of the plunger 120 along the longitudinal axis 122. P is determined by the following equation, which represents the ideal relationship between torque and force in a ball screw actuator: TIFF0007681576000001.tif46107

[0034] Here, F P is the force applied to the plunger 120 by the screw 332, τ M is the torque applied to the screw 332 , η is the efficiency of the ball screw actuator 130 , and P is the lead of the screw 332 .

[0035] Control Loop Referring again to FIG. 1, the transdermal injection device 100 may include a displacement sensor 140, an injection controller 135, and a three-phase motor controller 141. In general, the displacement sensor 140 measures the displacement x(t) of the screw 332 and / or the plunger 120 of the ball screw actuator 130. The displacement sensor 140 may measure the incremental displacement of the screw 332, for example, by storing an initial displacement value (i.e., x(0)) and monitoring the deviation from the starting value over time. In other examples, the displacement sensor 140 may measure the absolute displacement of the screw 332 relative to the position of the displacement sensor 140 or other fixed reference point. In another embodiment, the displacement sensor 140 may be coupled to a nut or other component of a ball screw that controls linear motion. In this configuration, the displacement sensor 140 may measure the rotation of the screw slot, which may be converted by calculation to a linear displacement for purposes of controlling the operation of the device 100.

[0036] The displacement x(t) measured by (or calculated using data from) the displacement sensor 140 may be provided as an input to the injection controller 135. As will be described in more detail below, the injection controller 135 processes the displacement x(t) to determine a motor control signal y(t). The motor control signal y(t) is provided to a three-phase motor controller 141, which in conjunction with a power supply 143 drives a rotary motor 126 in accordance with the motor control signal y(t). The motor 126 generates a torque τ M (t) is applied to the screw 332. M(t) causes movement of screw 332 (or any other suitable linear actuator) in a direction along longitudinal axis 122 .

[0037] System diagram Referring to FIG. 3, the schematic of the system of FIG. 1 includes, in step 344, determining the rotational motor torque τ M is applied to the ball screw 130. 1 3. The application of the rotational motor torque at 345 applies a force F to the threads 332 of the ball screw 130. M (t 1 ) is applied, which displaces the screw 332 in step 348.

[0038] The displacement of the thread 332 of the ball screw 130 is measured by a displacement sensor 140 and fed back to the injection controller 135. As will be described in more detail below, the injection controller 135 processes the measured displacement to provide sensor feedback 348 and a motor control signal y(t 1 The three-phase motor controller 141 calculates the motor control signal y(t 1 ) and at time t 2 The motor 126 has a torque τ M (t 2 ) is applied to the screw 332 of the ball screw 130. As described above, the torque τ M The plunger 120 is subjected to a force F P is added, and F P is calculated as follows: TIFF0007681576000002.tif46107

[0039] Here, F P is the force applied to the plunger 120 by the screw 332, τ M is the torque applied to the screw 332 , η is the efficiency of the ball screw actuator 130 , and P is the lead of the screw 332 .

[0040] 4, in some examples, the injection controller 135 includes a target displacement profile 450, a summing block 452, and a motor control signal generator 454. Very generally, the injection controller 135 receives a displacement value x(t) at time t from the displacement sensor 140. The time t is provided to the target displacement profile 450, which represents the target displacement value x(t) at time t. T Find (t).

[0041] In some examples, the target displacement profile 450 includes a mapping between a target displacement value and a number of times associated with an injection cycle (i.e., a range of times that the plunger 120 of the device travels). For example, in the target displacement profile 450 shown in FIG. 4, the displacement is measured at the start of the injection cycle (i.e., at time t 0 ) and changes (e.g., increases) over time as the injection cycle progresses, with each moment of time in the injection cycle being associated with a corresponding displacement value. As described in more detail below, in some examples, the rate of change of the displacement value changes over time, with different time intervals in the injection cycle being associated with different rates of change of the displacement value. Using control of the plunger displacement, for example by the target displacement profile 450, complex injections can be performed. For example, in one embodiment, the plunger 120 displaces relatively quickly in an initial puncture phase to penetrate the skin barrier, and in other time intervals, the plunger 120 displaces relatively slowly to deliver the injectate through the opening formed during the initial puncture phase. In another embodiment, the target displacement profile 450 can control multiple successive injections, each having a biphasic profile with a puncture phase and a drug delivery phase. In practice, the actual displacement profile of the plunger 120 may differ from the ideal target displacement profile due to physical limitations and other constraints of the system.

[0042] Measured quantile x(t) and target quantile x T (t) are both provided to a summing block 452. The summing block 452 sums the target displacement value x T(t) to obtain the error signal x E (t) is obtained. Error signal x E The error signal (t) is provided to a motor control signal generator 454, which converts the error signal into a motor control signal y(t). The motor control signal y(t) is provided to a three-phase motor controller 141, or other suitable drive system, which then drives the motor 126 in accordance with the motor control signal y(t).

[0043] In some examples, the rotary motor 126 may be a three-phase motor having three windings 447 and three Hall sensors 449, with each Hall sensor 449 corresponding to a different one of the three windings 447. Each of the windings 447 is wound around a laminated soft iron core (not shown) such that when a current is applied thereto, they form magnetic poles. Each of the three Hall sensors 449 generates a corresponding output signal 456 in response to the presence (or absence) of a magnetic field in its corresponding winding 447.

[0044] The three-phase motor controller 141 includes a switch control module 445 and a switching module 448. The switching module 448 includes three pairs of switches 451 (having a total of six switches 451), each pair of switches corresponding to a different one of the windings 447 of the rotary motor 126 and configurable to electrically connect the corresponding winding 447 to the power source 143 (so that the winding is energized) or to ground. The switch control module 445 receives as inputs a motor control signal y(t) from the injection controller 135 and three Hall sensor output signals 456, and processes these inputs to generate six switch control signals 455, each configured to open or close a corresponding switch 451 in the switching module 448.

[0045] The above configuration implements a feedback control approach whereby the combination of the control torque applied by the motor 126 to the screw 332 of the ball screw 130 ensures that the displacement of the plunger tracks the target displacement profile 450 as the screw 332 is displaced.

[0046] power supply Referring to FIG. 5, in some examples, the power source may provide a DC / DC converter 562 (e.g., a boost converter) with a voltage V 1 The DC / DC converter 562 converts the supply voltage V from the battery 560 to a supply voltage V. 1 takes as input and V 1 Output voltage V is greater than 2 In some examples, DC / DC converter 562 is configured to step up the supply voltage by a factor ranging from 5 to 20. Battery 560 may be rechargeable, but battery 560 may also usefully store enough energy to provide multiple injections, such as two or more 1 milliliter injections, from multiple replaceable single dose cartridges or a single multi-dose cartridge.

[0047] Output voltage V 2 can be supplied in parallel to the supercapacitor 564 and the switching module 448 of the three-phase motor controller 141 through a diode 566. In operation, the output voltage V 2 charges the supercapacitor 564 when the transdermal injection device 100 is in an inactive state. When an injection operation is initiated, the switch 451 of the switching module 448 closes (according to the switch control signal 455) and connects the winding 447 of the rotary motor 126 to the supercapacitor 564. This causes the supercapacitor 564 to discharge, causing a current to flow through the winding 447 of the rotary motor 126 and causing the rotary motor 126 to rotate.

[0048] In some examples, the supercapacitor 564 includes multiple supercapacitors coupled together with a switching network. When the transdermal injection device 100 is in an inactive state, the switching network may be configured to connect the multiple supercapacitors in parallel for charging. When an injection is initiated, the switching network may be reconfigured to connect the multiple supercapacitors in series for discharging. In some examples, the supercapacitor 564 is configured to provide 200 watts or more peak power to the ball screw 130 via the rotary motor 126.

[0049] In general, the supercapacitor may be any high-capacity capacitor suitable for accepting and delivering a charge more quickly than a battery or other source of electrical energy. A wide variety of supercapacitor designs are known in the art and may be adapted for use as the supercapacitor 564 contemplated herein, such as double-layer capacitors, pseudocapacitors, and hybrid capacitors. Similarly, the supercapacitor 564 may usefully include any number and arrangement of supercapacitors suitable for providing power in an amount and rate suitable for driving the rotary motor 126 of the injection device 100, as contemplated herein.

[0050] Target Displacement Profile 6, an example target displacement profile includes multiple injection phases, each associated with a corresponding time interval. A first injection phase 670 begins at time t 0 From time t 1 In the first injection phase 670, the target displacement of the plunger 120 is associated with a first time interval spanning a fixed initial position P 0In this phase, the injection device 100 is generally ready to perform an injection operation. Generally, the first injection phase 670 may be preceded by any number of preparatory steps or phases, such as loading the injection device with the injectate (or a cartridge containing the injectate), removing air bubbles from the injectate if necessary or appropriate, measuring environmental conditions, measuring parameters at the injection site, and any other step or combination of steps useful for performing or preparing to perform a needleless injection as contemplated herein.

[0051] In one embodiment, the rotary motor 126 can be mechanically engaged with the ball screw actuator 130 (or any other suitable linear actuator) while the rotary motor 126 is stationary in the first injection phase 670. That is, the rotary motor 126 is pre-engaged with the ball screw actuator 130 and can be preloaded to remove any mechanical slack in the mechanical parts of the system. In this configuration, a mechanical switch or the like can be used to prevent relative movement of the components, and / or a gate or seal can be used at the nozzle outlet to prevent leakage of drug from the chamber 106. In another embodiment, the rotary motor 126 can be kept slightly spaced from engagement with the ball screw actuator 130. In this latter configuration, the rotary motor 126 can be usefully accelerated (unloaded) to engage the ball screw actuator 130 at the end of the first injection phase 670 or the beginning of the second injection phase 672 to facilitate a greater initial velocity of the injectate from the nozzle. This may include, for example, one revolution of the rotational motor 126 from engagement with the ball screw actuator 130, or a small fraction of a revolution suitable for facilitating very high initial rotational acceleration.

[0052] The second injection phase 672 begins at time t 1 From 2 In the second injection phase 672, the movement of the plunger 120 can begin. In this phase, the target displacement of the plunger 120 moves the plunger 120 to the initial position P 0 From the first position P1 Generally, the motion of the plunger 120 during this phase increases at a relatively high first rate to move the injectate from the chamber 106 of the syringe head 104 (through the opening 114) at a first velocity V sufficient to penetrate human tissue to at least a certain subcutaneous depth. 1 In some examples, the second injection phase 672 may span a time interval of less than 100 ms (i.e., t 1 and 2 In some examples, the second injection phase 672 spans a time interval of less than 60 ms (i.e., t 1 and 2 In some examples, the second injection phase 672 spans a time interval of less than 10 ms (i.e., t 1 and 2 The difference between the

[0053] More generally, during this second injection phase 672, the injection device 100 may be configured such that the initial flow of injectate transitions substantially instantaneously, e.g., with the plunger 670 transitioning from a rest position to a target velocity at a velocity sufficient to achieve the puncture velocity without substantial leakage or loss of injectate at the surface. By configuring the linear drive system described above to thus accelerate from a fixed position to the puncture velocity, the injection device 100 may advantageously mitigate loss of injectate. As a further advantage, an injection device having this capability may usefully perform multiple successive injections without requiring any physical re-energization or resetting of the mechanical stored energy system.

[0054] The third injection phase 674 begins at time t 2 From 3 In the third injection phase 674, the target displacement of the plunger is associated with a third time interval spanning a first injection phase P 1 to the second position P 2 In this third injection phase 674, the jet of injectate is increased at substantially the same rate as the first rate to move the jet of injectate to the first velocity V 1A second velocity V that is equal to or greater than 2 The plunger 120 can be moved at a velocity that causes the injectate to be ejected from the chamber 106 of the syringe head 104 at a rate that is consistent with the third injection phase 674. The speed of movement of the plunger 120 and the velocity of the injectate stream can vary during this third injection phase 674, subject to limitations related to, for example, control precision, physical system components, etc., but the plunger 120 should generally be driven at a minimum velocity suitable for penetrating tissue at the target site so as to deliver the injectate to the desired depth. The injectate jet can also have a maximum velocity selected to avoid over-penetration or other undesirable tissue damage.

[0055] The fourth injection phase 676 begins at time t 3 From time t 4 During the fourth injection phase 676, the target displacement of the plunger 120 is increased at a third rate that is relatively slower than the first rate to move the plunger 120 to a third position P 3 From the fourth position P 4 During this fourth injection phase 676, the injection device 100 generally moves a jet of injectate from the chamber 106 of the injector head 104 at a first velocity V 1 The third speed V is lower than 3 In one embodiment, the plunger 120 may be decelerated to eject the injectate at a rate generally consistent with any suitable rate for non-piercing delivery of additional injectate at the current depth of injectate flow within the target tissue.

[0056] The fifth injection phase 678 begins at time t 4 From 5 During the fifth injection phase 678, the target displacement of the plunger 120 is associated with a fifth time interval leading to a fourth position P 4 From the fifth position p 5The rate of travel may continue to increase at a third rate to move the injectate to the subcutaneous depth achieved during the previous puncture phase. In the fifth injection phase 678, the injection device 100 may generally deliver the injectate (typically the majority of the injectate in the chamber 106) to the subcutaneous depth achieved during the previous puncture phase. The rate of travel may generally be constant or may vary such that subcutaneous drug delivery can be maintained without further puncturing the tissue.

[0057] It will be appreciated that the puncturing may continue to some extent during the fifth injection phase 678. This additional puncturing should not affect the efficacy of the transdermal drug delivery, provided that it does not create a pathway below the subcutaneous depth within the target tissue that may result in loss or misdelivery of the therapeutic dose. It will also be appreciated that the total displacement of the plunger 120 controls the amount of drug delivered over the course of the injection, and the duration of the fifth injection phase 678 may correspondingly be selected according to the intended dose.

[0058] Finally, the sixth injection phase begins at time t 5 During the sixth injection phase, the target displacement of the plunger 120 stops increasing, and the plunger 120 is moved to the sixth position p 6 The sixth injection phase is associated with the completion of the injection operation. As noted above, from this position, additional injection cycles can be initiated, provided, of course, that sufficient additional medicament remains within the injection device 100 to complete the additional injection.

[0059] To quickly reach the penetration speed and avoid loss of drug at the surface of the injection site, the second injection phase 672 (where the injectate is accelerated) may be shorter than the penetration phase maintained after the penetration speed is achieved. Thus, in some examples, the time interval associated with the third injection phase 674 ranges from 2 to 20 times the time interval associated with the second injection phase 672. In some examples, the time interval associated with the second injection phase 672 has a duration between 30 and 100 milliseconds, and the time interval associated with the third injection phase 674 has a duration between 100 and 1000 milliseconds.

[0060] More generally, the duration of each phase may depend on the diameter of the injectate stream, the injectate characteristics, the tissue characteristics at the injection site, etc. Thus, an injection profile may usefully be employed for any duration suitable for accelerating to a puncture rate sufficiently rapidly to avoid substantial loss of injectate, maintaining the puncture rate until a target depth (e.g., subcutaneous depth) is achieved, and then maintaining a non-puncture rate to deliver the full dose at the target depth.

[0061] Also, although a single injection cycle is illustrated, it will be understood that the injection device 100 contemplated herein may be usefully configured to perform multiple successive injections. As such, any number of injection cycles may be usefully performed, and any such multiple injection applications are expressly contemplated by this description.

[0062] Rotational Motor Speed 7, in the first injection phase 670, the injection controller 135 controls the plunger 120 to be in the initial position P 0 To ensure that the plunger 120 remains stationary during rotation, the rotary motor 126 is controlled to maintain its speed at substantially 0 revolutions per minute (RPM). This may include actively maintaining the rotary motor 126 in a fixed position, for example by monitoring the position and activating the rotary motor 126 in response to detected movement or drift, or by simply moving the plunger 120 to an initial position P. 0This is accomplished by controlling a magnetic, mechanical, or electromechanical lock that positively engages the rotation motor 126. In another embodiment, this may include passively maintaining the rotation motor 126 in a fixed position by withholding a control or drive signal from the rotation motor 126. It will also be appreciated that combinations of the above may be advantageously employed. For example, the plunger 120 may be secured with a mechanical lock during storage or other periods of non-use, and the rotation motor 126 may then be used to electromechanically and actively secure the position of the plunger 120 when the mechanical lock is released in preparation for an injection. In this manner, power may be conserved during long-term storage, while the position may be positively and controllably secured using the rotation motor 126 for periods immediately prior to injection, for example to prevent leakage of the injectate.

[0063] In the second injection phase 672, the injection controller 135 controls the rotary motor to increase the rotational motor speed from 0 RPM to the first rotational motor speed S 1 (e.g., 33,000 RPM), and move the plunger 120 to the initial position P 0 From the first position P 1 In the third injection phase 674, the injection controller 135 controls the rotation motor 126 to move the first rotation motor speed S 1 While maintaining the above speed, the plunger 120 is moved to the first position P 1 to the second position P 2 In the fourth injection phase 676, the injection controller 135 controls the rotary motor 126 to move to the first rotary motor speed S 1 The smaller second rotation motor speed S 2 (e.g., 11,000 RPM) and move the plunger 120 to the second position P 2 From the third position P 3 In the fifth injection phase 678, the injection controller 135 may move the second rotation motor speed S 2 3, the rotational motor 126 can be controlled to maintain a constant rotational speed to drive the plunger 120 to the third position P at a substantially consistent rate to deliver the injectate at the target depth for the injection.3 From the fourth position P 4 Move it to.

[0064] In the sixth injection phase, the injection controller 135 controls the rotation motor 126 to increase its speed to a second rotation motor speed S 2 to 0 RPM, and the movement of the plunger 120 is stopped at the fourth position P 4 Although the supercapacitor 564 in the power supply 143 described above may be used during any portion of the injectate delivery, the supercapacitor 564 is preferably used during phases where high mechanical loads are expected, such as during the initial acceleration and puncture phases, and during the fourth position P 4 5. This may be particularly advantageous in situations where it is necessary or useful to quickly slow or stop the plunger 120, such as in the injection phase 672. Thus, the supercapacitor 564 may be particularly used in the second injection phase 672 and the third injection phase 674, and may optionally be particularly used during the fourth injection phase 676 when high power is needed to maintain a target velocity while slowing the injectate down to the drug delivery rate and / or when high power is needed to quickly slow or stop the plunger 120.

[0065] Injectate speed Referring to FIG. 8, in the first injection phase 670, no injectate is ejected from the chamber 106 (i.e., the initial injectate velocity V 0 (V is 0 m / s). During the second injection phase 672, the injectate velocity changes from 0 m / s to a first velocity V sufficient to at least pierce human tissue. 1 In some instances, the first velocity V 1 is at least 200 m / s. If the puncture is not initiated quickly, significant loss or leakage of the drug may occur. Thus, in some embodiments, the rotary motor 126 rotates from a stationary starting point to a first speed V for injection in less than three revolutions, e.g., less than two revolutions or less than one revolution. 1 can be usefully configured to reach

[0066] During the third injection phase 674, the injectant rate is increased to the first rate V 1 A second velocity V that is equal to or greater than 2 The first speed V 1 is the minimum speed to puncture tissue, then the second speed V 2 3. The first velocity V 1 However, it is preferable that the first speed V 1 may instead be a minimum or optimal speed for initiating puncture, in which case the second speed V 2 is advantageously adjusted to a first speed V suitable for continuing to penetrate tissue to a desired target depth. 1 The second speed V can be any speed greater than, equal to, or less than the first speed V. 2 is the second speed V 2 may vary in duration of the third injection phase 674, provided that it remains within a range of useful puncture rates.

[0067] During the fourth injection phase 676, the injectant rate is increased to a third rate V sufficient to deliver a majority of the injectant in the chamber 106 to a constant subcutaneous depth. 3 (Maximum 3rd speed V 3Max and the minimum third velocity V 3Min During the fifth injection phase 678, the injectate rate can be reduced to a third rate V while the majority of the injectate in the chamber 106 is delivered to the subcutaneous depth through the channel formed during the third injection phase 674. 3 During the fifth injection phase 678, the third velocity V 3 It should be understood that may vary between any number of values ​​(typically greater than zero and less than the penetration velocity) that can result in delivery of the injectate at the target depth. Finally, in the sixth injection phase 680, the velocity of the injectate can be reduced to 0 m / s as the injection operation is completed.

[0068] injectable In some examples, the volume of the injectate in the chamber is at least 1 milliliter. Thus, in one embodiment, the injection device 100 can be configured to deliver 1 milliliter of drug subcutaneously in a single dose or as multiple consecutive doses over a period of time, e.g., to different locations or over an extended administration schedule. If multiple consecutive doses are intended, or if larger single doses are intended (e.g., more than 1 milliliter), the chamber can advantageously have a large volume. For multiple dose applications, the contents of the chamber 106 can be conveniently dispensed and used separately using a rotary motor and linear drive system as contemplated herein. In some examples, the volume of the injectate in the chamber is about 0.5 milliliters or less. In some examples, the volume of the injectate in the chamber is about 0.3 milliliters or less. In some examples, the injectate in the chamber is a therapeutic amount of injectate.

[0069] In some examples, the injectate includes a biological agent. In some examples, the injectate has a viscosity of at least 3 centipoise at a temperature between 2 and 20 degrees Celsius. In some examples, the injectate has a viscosity of about 3 to about 200 centipoise at a temperature between 2 and 20 degrees Celsius. Thus, the systems described herein can be usefully used with large molecule therapeutic agents or other agents that have relatively high viscosities.

[0070] others In one embodiment, the injection controller can be configured to cause the needle-free transdermal injection device 100 to perform multiple successive injection operations close in time to one another. The injection device 100 can be usefully instrumented to support this operation by sensing the movement of the injection device 100 and providing tactile, visual, audible or other feedback to assist the user in carefully performing the multiple injection sequence.

[0071] In another embodiment, multiple successive injection actions can be performed without reversing the motion of the rotary motor (i.e., without retracting the plunger). Thus, at the end of an injection cycle, if sufficient additional injectate remains in the injection device 100 for an additional dose, the rotary motor 126 may remain stationary and a second complete injection cycle may begin from this new starting position. In this context, the rotary motor 126 may be manually fixed or electromagnetically maintained in a fixed position to prevent leakage or other loss of therapeutic product.

[0072] In some examples, a linkage (e.g., a ball screw linkage) is bidirectionally coupled to the rotary motor and plunger to allow bidirectional displacement of the contents within the chamber, for example, by moving the plunger toward the outlet nozzle to eject the contents, or by moving the plunger away from the outlet nozzle to load additional medication into the injection device 100.

[0073] In some examples, the transdermal injection device includes a sensor system for detecting when the device is properly positioned to perform an injection operation. In some examples, once the device is properly positioned, the injection controller is configured to initiate the injection operation without any observable latency. That is, the sensor system can monitor the injection device 100 and determine when the injection device 100 is properly positioned and stationary, and then begin the injection. Depending on the duration and feel of the injection, the injection may usefully be preceded by a beep, vibration, or other human-perceptible signal that alerts the user that an injection is about to occur.

[0074] In some examples, one or more conventional capacitors (eg, electrolytic capacitors) may be used in place of or in addition to the supercapacitor.

[0075] In some examples, the injection controller is configured to not perform more than one injection action within a predetermined minimum injection cycle time. Thus, for example, if a dosing regimen specifies a minimum time before injection, or if injections are performed as a series of injections into non-identical but adjacent locations, the injection controller can monitor activation of the injection device 100 to ensure that all rules of the corresponding injection protocol are adhered to.

[0076] In some examples, the needle-free transdermal injector head is formed as a removable cartridge for containing the injectate. The removable cartridge has an opening having a predetermined shape for ejecting the injectate in a stream having a predetermined shape. In some examples, the needle-free transdermal injector includes a movable cartridge door mechanism. A user can interact with the movable cartridge door mechanism to load the cartridge into the needle-free transdermal injector and remove the cartridge from the needle-free transdermal injector.

[0077] It should be noted that while the above description is primarily directed to methods and devices for injecting a therapeutic agent through human tissue to a subcutaneous depth, in some instances the methods and devices are used to inject a therapeutic agent through human tissue to other shallower or deeper depths. For example, the methods and devices may be used to inject a therapeutic agent shallowly into the dermis, or more deeply through the fat and connective tissue of the subcutaneous layer and into the muscle tissue of a patient.

[0078] In one embodiment, a syringe as contemplated herein can be improved by monitoring the compression of air bubbles in the injectate cartridge during the plunger movement in the pre-injection phase. When a cartridge of liquid injectate, such as a therapeutic drug, contains air bubbles, either as a regulatory requirement or as a manufacturing artifact, precise control of the injection can be made more difficult by introducing compressible regions into the otherwise generally incompressible injectate volume. By separating the phase of injection during which the air bubbles are highly compressible (e.g., during compression) from the phase of injection during which the air bubbles are relatively incompressible, the control system can be improved. In general, once the air bubbles are sufficiently compressed (e.g., at or near the equilibrium pressure during the puncture phase), the plunger speed of the needleless syringe is changed to a puncture speed for delivery of the injectate to the target. Detecting the compression of the air bubbles prior to delivery of the injectate in this manner can control the injectate flow to more accurately reproduce the target injection profile. For example, integrator errors in the syringe control model can be mitigated, flow can be optimized / maximized, and overshoot of the syringe response (e.g., flow rate and plunger movement) can be minimized.

[0079] In one embodiment, an open or free-running model is created that models the behavior of the syringe hardware when there is no injectate load. The model provides estimates of the free-running characteristics, such as plunger speed and plunger position, of the system operating to move the plunger linearly without ejecting any injectable fluid. This free-running condition is generally linear in nature, facilitating an analytical solution that can be deployed on a computational platform such as a microcontroller for the medical device.

[0080] A free-running system model can be expressed as a second-order linear ordinary differential equation (referred to as an "ODE").

[0081]

number

[0082] Where: C 1 is the inertia of the entire system seen by the actuator. This is represented as TIFF0007681576000004.tif5140. C 2 is the damping of the entire system as seen by the actuator. This is represented as TIFF0007681576000005.tif3942. θ'(t) is TIFF0007681576000006.tif3942 is the rotation speed, θ''(t) is TIFF0007681576000007.tif3942 is the rotational acceleration, τ is TIFF0007681576000008.tif3942 is the torque applied by the motor.

[0083] The general solution to a second-order inhomogeneous linear equation is:

[0084]

number

[0085] Here, θ c is a co-solution, θ p is a particular solution. To solve the ODE for cosolutions, set equation 1 equal to 0 and assume a general solution of the form TIFF0007681576000010.tif2478TIFF0007681576000011.tif2489TIFF0007681576000012.tif22124

[0086] The characteristic polynomial is:

[0087]

number

[0088] Solving for the characteristic root gives: TIFF0007681576000015.tif3499

[0089] This solution has two distinct real roots, giving the following two solutions: TIFF0007681576000016.tif20144

[0090] The co-solution is of the form:

[0091]

number

[0092] A particular solution requires any function that satisfies a non-homogeneous equation. For equation 1, the form is determined using the method of undetermined coefficients, where: TIFF0007681576000018.tif2382TIFF0007681576000019.tif2582TIFF0007681576000020.tif2582.

[0093] Plugging this into equation 1 gives us: TIFF0007681576000021.tif21146

[0094] Solve for the coefficient A. TIFF0007681576000022.tif3982

[0095] Then we obtain the following particular solution:

[0096]

number

[0097] The general solution is θ c (expressed in Equation 4) and θ p (expressed in Equation 5) into Equation 2.

[0098]

number

[0099] Constant k 1 and k 2 The solution can be found by assuming the following initial conditions: TIFF0007681576000025.tif14166

[0100] This results in the following set of equations from Equation 6: TIFF0007681576000026.tif58147

[0101] k 1 and k 2 Solve for: TIFF0007681576000027.tif61133

[0102] Finally, k 1 and k 2 , can be substituted into Equation 6 to obtain the solution.

[0103]

number

[0104] This solution is given by the initial position θ 0 , initial rotation speed θ' 0 , the motor torque τ can be used to estimate the free-running plunger position of the injector given a time step t. Taking the time derivative of the position in Equation 7 gives the equation for the velocity:

[0105]

number

[0106] System inertia C 1is derived from the physical system. For the model to accurately simulate the physical system, it is necessary to take into account the inertial loads. Inertia is imparted by all moving parts of the actuator assembly, which include:

[0107] Motor (I m ): Inertia of the internal moving parts of the Maxon ECX 16. This value is given in the motor datasheet. For the ECX16, the datasheet states that the rotor inertia is 1.2 g cm 2 or 1.2e - 7 kg cm 2 It is clearly stated that:

[0108] Gear 1 (I G1 ): This is the first gear attached to the motor output shaft. Inertia can be found in Solidworks or another suitable modeling environment given the gear dimensions and material. I calculated this in Solidworks and found it to be 8.9e - 10 kg cm 2 was obtained.

[0109] Gear 2 (I G2 ): This is the second gear that is attached to the motor output shaft. The gear's dimensions and material were used to calculate its inertia in Solidworks. Its rotational speed is different from the rotational speed of the motor shaft, so we calculate the inertia reflected through the drive chain. The inertia is 5.862e - 7 kg cm before being transformed through the drive train. 2 It was calculated to be. TIFF0007681576000030.tif17170

[0110] Lead screw (I LS ): For the leadscrew, we need to determine how the inertia of the linearly moving mass affects the rotational inertia of the motor. TIFF0007681576000031.tif15170

[0111] This inertia also acts on the gear train, so it is transformed in the same way as gear 2. TIFF0007681576000032.tif16170

[0112] The total rotational inertia load on the motor is given by the sum of the above parts. TIFF0007681576000033.tif9170

[0113] The damping constant of the system, C 2 obtains data from the physical device during injection and minimizes the model error, C 2 In one physical example of a needle-free syringe driven by a rotary motor, typically as described above, the calculated value was 15.0 e-7 (N m s) / rad.

[0114] The above described approach produced a model whose plunger velocity estimate converged to within 50 mm / s of the actual velocity and within 25 mm / s of the actual (measured) velocity during steady free-run when the syringe is in the bubble compression phase. It will be appreciated that the actual error may vary from device to device and may depend on other circumstances such as injection velocity, fluid viscosity, temperature, etc. It will be appreciated that other techniques for estimating the free-running or unloaded plunger velocity may also be employed in addition or alternatively to the above, and any technique that provides an estimate suitable for use in a control system as contemplated herein may also be used in addition or alternatively to provide a velocity estimate without departing from the scope of the present disclosure. It should also be noted that certain other physical characteristics may be taken into account, such as deformation of the plastic cartridge containing the injectate. Although a satisfactory model was produced without taking into account this and other physical characteristics of the system, these aspects may also be modeled using, for example, look-up tables, calibration, additive modeling, or some combination of these. It has been observed that without taking into account these other physical aspects, the physical response lags behind the model response, especially during periods of large change (e.g., high acceleration). This may result in larger than expected measurement errors under certain conditions, especially at times when bubble compression is expected. To account for this, a larger threshold may be used to evaluate the error between the estimated and actual speed to mitigate false positives of bubble compression, either at all times or when the estimated speed varies significantly.

[0115] Typically, during an injection, this model (an estimation of the free-running plunger speed in response to control inputs such as the motor controller output) can be run simultaneously with the collection of real-time measurements from the syringe. During the bubble compression phase, this model should generally match the measured behavior. However, as the bubble approaches full compression, the plunger loading motion that pushes the injectate out of the cartridge will deviate significantly from the free-running model. This error can be exploited to detect when the bubble is substantially fully compressed, at which point the controller can change from the bubble compression speed to a fluid ejection speed intended to push the injectate out of the syringe according to the injection profile.

[0116] It should be understood that "full compression" or "substantially full compression" in this context may refer to a variety of physical states. In general, the compressibility of a gas such as air (or other inert, sterile, or other gas contained in the cartridge with the injectate) is altered by compression or pressurization. Thus, the state of "full compression" as used herein need not refer to a specific degree of physical compression, but may instead generally refer to a state in which the remaining injectate can be controlled, for example, as an incompressible or substantially incompressible fluid with no compressible gas present, to achieve a desired injection rate profile. As a practical matter, this state of full compression may refer to compression of the gas substantially equal to the amount of compression during a steady-state injection operation, or it may refer to compression where the compressibility has fallen below a predetermined threshold, or compression of the gas where a meaningful error signal can be detected between the physical operation and the free-running model, or other quantitative, physical, or other compression states useful for controlling the operation of an injector as contemplated herein.

[0117] FIG. 9 is a flow chart of a method for operating a syringe. More specifically, method 900 can be used to operate a needleless syringe to eject a stream of injectate from a chamber containing the injectate and an air bubble. In general, the model described above can be used to estimate the response of the plunger to a control signal, e.g., the speed at which the plunger should move for a particular control or input signal. During operation, the actual speed can also be measured and compared to the speed estimated from the model. When the actual speed deviates from the estimated speed by a predetermined threshold, e.g., when the error exceeds some minimum amount, the syringe controller can change from a bubble compression speed selected to compress the air bubble in the cartridge to an injection speed selected to eject the fluid from the cartridge at the puncture speed of the needleless syringe.

[0118] Method 900 can begin with preparing a syringe, such as any of the syringes described herein. This can include a needleless syringe having a controller, a cartridge containing the injectate and an air bubble, a plunger, a nozzle or other injection orifice, and a drive system that drives the plunger in response to control signals from the controller. The syringe can also include any number of sensors, etc., for controlling the initiation of the injection and monitoring the operation of the syringe during operation.

[0119] As shown in step 902, the method 900 may include providing a model, such as any of the models described above, that characterizes the free-running response of the injector to a control input. For example, this may model the response of the needleless injector to the operation of the plunger drive system into a chamber with no injectate in the cartridge. As described above, the model may include any suitable control model, such as an analytically developed ODE model that relates inputs, such as a control signal or motor drive signal, to an estimated rotational or linear velocity. The model may also be refined as described above to account for cartridge deformation, motor start-up, or other physical aspects of the system that may affect the response to the control input. In general, the model may be stored in the memory of the injector controller in any manner suitable for execution and use in real time during an injection.

[0120] In another aspect, the model may include generalizations based on the modeled free-running response of the device or empirically observed behavior. For example, the model may be simplified to provide a drive current threshold above which sufficient gas compression is assumed. It should be noted that such a threshold is not generally applied during the initial acceleration of the plunger, e.g., when there is a current spike well before compression to achieve a high acceleration rate. In practice, this current threshold is applied at the stage where a steady speed (either of the plunger or the motor driving the plunger) is maintained. Generally, at steady state, the drive current is expected to remain steady as well. However, as the system transitions from an unloaded state, e.g., when the uncompressed gas is being compressed in response to the advancement of the plunger, but fluid is not being expelled from the syringe, to a loaded or compressed state, the amount of drive current required to maintain a constant speed will increase. Although spikes above the threshold are referred to herein, it will be understood that for purposes of this disclosure, a "spike" may include any increase in drive current to a level between the free-running level and the loaded level. As mentioned above, the free running level used as the lower limit of this threshold may be a modeled or predicted current, a threshold given as a control parameter based on past behavior, or a measurement taken during the current injection, e.g., after the initial current peak and associated acceleration. The upper load level should typically be the current required to drive the motor while ejecting fluid during the injection. The threshold for moving from the compression state to the injection state may be any value between these upper and lower limits, and may be a value or ratio of the drive current (or corresponding control signal) (e.g., to the actual steady state drive current observed upon reaching a steady state speed during the compression phase).

[0121] Typically, the chamber may be, for example, a removable and replaceable cartridge for a needleless injector as described above. The injectate may include an injectable medicament.

[0122] As shown in step 904, the method 900 can include operating a plunger of a syringe. For example, this can include operating the plunger at a first speed using a drive system to move the plunger in a direction that displaces the injectate from the chamber through the nozzle. In general, the first speed can be different from the puncture speed and can be usefully greater than the puncture speed. Operating at a higher speed allows for compression of a maximum amount of air bubbles for a short period of time before the injectate begins to exit the syringe as a coherent or parallel stream. In one embodiment, the first speed can be a maximum speed achievable by the drive system, a speed substantially greater than the puncture speed, or any other speed greater than the puncture speed that readily rapidly compresses the trapped air bubbles to a relatively incompressible state.

[0123] As shown in step 906, the method 900 may include estimating the response of the injector, for example, by applying a control signal or other data indicative of an input to the injector to a model that estimates the response of the injector to the input. In the case of an injector, such as one of the needle-free injectors described herein, this may include estimating the response of the needle-free injector with the model during operation of the drive system, thereby providing an estimated response. As mentioned above, this estimated response may more specifically be a free-running or no-load response, for example, during the movement of the plunger without expelling the injectate from the nozzle. This response may more specifically include the linear velocity (e.g., of the plunger), the rotational velocity (e.g., of the drive motor), or any other response that can be modeled but can also be physically measured during operation of the injector.

[0124] As shown in step 908, the method 900 may include measuring a response of the needle-free injector to an input. For example, this may include measuring a response with a sensor during operation of the drive system, thereby providing a measured response. This may include measuring any response suitable for comparison to an estimate provided by the model. This may include a direct comparison, for example where the model and the sensor both provide a linear velocity. This may also include an indirect comparison, for example where the model provides a linear velocity and the sensor provides a linear position, a rotational position, a rotational velocity, or any other metric that can be used to calculate or measure a characteristic corresponding to the model output, in addition to or instead of the above.

[0125] As shown in step 910, the method may include controlling the syringe based on a comparison of the estimated response (from the model) and the actual response (from the sensor). In particular, this may include inferring an uncompressed state of the bubble and maintaining the movement of the plunger at approximately a first speed while the measured response is within a predetermined threshold of the estimated response, and inferring a compressed state of the bubble and changing the speed of the plunger to a puncture speed when the measured response exceeds a predetermined threshold from the estimated response.

[0126] The first speed may be, for example, greater than the puncture speed and / or may be a variable speed controlled within a predetermined range. In another embodiment, it may include a maximum achievable speed of the plunger or other threshold greater than the puncture speed selected to transition to the puncture / injection phase as quickly as possible. In another embodiment, the puncture speed may be a speed used to expel the injectate from the chamber at a speed sufficient to puncture the skin of a patient receiving an injection from the needleless injector.

[0127] The predetermined threshold of error for the transition to the puncture phase may be any suitable threshold for detecting a physically meaningful deviation between the estimated and actual response of the syringe, including, for example, an empirical threshold obtained by observing physical injections, an analytical threshold determined based on fluid dynamics, syringe dynamics, gas compression, or any other suitable threshold for controlling the operation of the syringe as described herein. Similarly, a compressed state of the bubble may be characterized in multiple ways for purposes of controlling the operation of the syringe as described herein. For example, the compressed state may be a state in which the bubble is compressed to at least the pressure exerted on the chamber when the plunger is operated at the puncture speed for a predetermined period of time. Any other analytic proxy may also be used for the compressed state, in addition to or instead of it. For example, the compression state can be measured in terms of the current compressibility of the gas state (e.g., the bubble has become substantially incompressible in the context of the remainder of the injection process), the change in volume of the bubble, the elasticity of the bubble's response to the movement of the plunger, or any other suitable measurement or surrogate useful for determining when to change from the bubble compression phase of the injection to the liquid ejection phase of the injection, which may additionally or alternatively include measurements that have no clearly defined physical meaning, provided that the measurements can be consistently applied to identify when the bubble has been sufficiently compressed to reduce or eliminate control errors or variability in switching over to the puncture speed.

[0128] In one aspect, method 900 may further include switching to a second model regarding the loading operation of the needleless syringe including the syringe-cartridge interaction when the measured response exceeds a predetermined threshold. At this point, the air bubbles are effectively compressed and the syringe can be operated to generate a puncture stream of the injectant from the cartridge or the nozzle of the syringe. The operation of this second phase may be deterministically controlled, for example, by open-loop control of the syringe based on a deterministic control signal, and thus the second model may include an open-loop control model of a desired injection profile. In another aspect, this may include a control model. For example, in this model, during the entire injection cycle, for example, in order to realize a controlled injection profile in real time, a position or other parameter is measured and compared with the target parameter of the injection profile.

[0129] In another aspect, method 900 may include achieving a biphasic injection profile, such as by decelerating the plunger speed from a puncture speed to a drug delivery speed after a predetermined interval. Similar to the second model, this may include open-loop control of the injection profile, feedback control of the injection profile, or some combination thereof. Additionally or alternatively, other injection profiles may be used, such as a slow and uniform decrease in the delivered volume during the fluid delivery process, or a generally steady delivery speed, for example, within a window and / or due to the control limits of the syringe.

[0130] In another aspect, disclosed herein is a method for performing a needleless injection from a chamber, the chamber having a plunger and an injection opening, the chamber containing an injectate and a gas bubble, the method can include initiating a first injection phase by operating a plunger of the chamber at a first speed, monitoring compression of the gas bubble during the first injection phase, and when the gas bubble reaches a predetermined compression state, decelerating the plunger to a second speed sufficient to push the injectate through the opening at a substantially predetermined injectate speed selected to pierce the target surface, operating the plunger at the second speed for a first time, and operating the plunger at a third speed less than the second speed after the first time until a predetermined amount of injectate is expelled from the chamber through the injection opening.

[0131] Operating the plunger at a first speed may include operating the plunger at a maximum speed or operating the plunger at a maximum acceleration until a predetermined compression speed is reached so that the bubble can be compressed as quickly or as practically as possible before the syringe begins to expel the injectate from the orifice. Monitoring the compression may include, for example, monitoring deviations from a control model as generally described above. Monitoring may additionally or alternatively include other techniques for monitoring compression, either directly or through proxies such as plunger back force. In one embodiment, monitoring the compression of the bubble may include monitoring the back force of the plunger. In another embodiment, monitoring the compression of the bubble may include monitoring the flow of injectate from the syringe. In another embodiment, monitoring the compression of the bubble may include estimating a compression time interval of the first injection phase to achieve a predetermined compression state of the bubble and operating at the first speed for the compression time interval before switching to the second speed. For example, this may include estimating the compression time interval by capturing an image of the bubble and calculating the volume of the bubble in order to calculate or otherwise estimate the compression time interval. In another embodiment, video data may be acquired to graphically monitor the actual compression state and used to determine when to change the plunger motion to a puncture speed.

[0132] In another aspect, a device for injectate delivery contemplated herein includes: a cartridge having a chamber containing a volume of injectate and an exit port; a linear actuator coupled to a plunger and configured for delivering the injectate from the exit port of the cartridge by the plunger, the linear actuator including a linkage; a rotary motor mechanically coupled to the linkage; a sensor monitoring the pressure applied to the cartridge by the plunger; and a controller coupled to the rotary motor, the controller configured to control operation of the device to cause the device to: initiate a first injection phase by operating a plunger of the chamber at a first speed; monitor compression of an air bubble with the sensor during the first injection phase; when the air bubble reaches a predetermined compressed state, change the speed of the plunger to a second speed selected to push the injectate through the opening at approximately the predetermined injectate speed; operate the plunger at the second speed for a first time; and operate the plunger at a third speed less than the second speed after the first time until a predetermined amount of injectate is expelled from the chamber through the injection opening.

[0133] The device can be a needle-free injector. The sensor can include a force sensor. The sensor can also or alternatively include a pressure sensor for the chamber. The sensor can also or alternatively include a torque sensor for the rotary motor. In another aspect, the sensor can include a momentary contact force sensor for a linear actuator.

[0134] In another aspect, a needle-free injector contemplated herein includes a cartridge having a chamber containing a volume of injectate and an exit port; a plunger slidably coupled to the chamber, the plunger positioned to hold the volume of injectate in the chamber; a drive system coupled to the plunger, the drive system operable to drive the plunger into the chamber, thereby forcing the injectate out the exit port; a sensor for monitoring pressure exerted on the cartridge by the plunger; a memory storing a model characterizing the response of the needle-free injector to operation of the drive system and plunger in the absence of injectate in the cartridge; and a controller coupled to the drive system, the controller comprising: The system is configured to control operation of the needle-free syringe to cause the needle-free syringe to perform the following steps: moving a plunger at a first speed with a drive system, the first speed being different from a puncture speed of an injectate; estimating a response of the needle-free syringe using a model while the drive system is operating, thereby providing an estimated response; measuring the response of the needle-free syringe with a sensor while the drive system is operating, thereby providing a measured response; inferring an uncompressed state of the bubble and maintaining movement of the plunger at approximately the first speed while the measured response is within a predetermined threshold from the estimated response; and inferring a compressed state of the bubble and changing the speed of the plunger to the puncture speed when the measured response exceeds the predetermined threshold from the estimated response.

[0135] Figure 10 shows a comparison of the two control techniques. Generally, one method does not use air bubble detection and the other method uses air bubble detection as described herein. In Figure 10, it can be seen that the air bubble detection method generally avoids integrator windup errors and the associated undershoots and overshoots that increase the time to reach the target velocity for fluid ejection.

[0136] A model of the unloaded operation of a syringe powered by a rotary motor is shown in Figure 11. Typically, the model runs in parallel with the physical device, e.g., on the device's processor, to estimate the expected motion of the syringe.

[0137] Figure 12 is a time continuous equation that estimates the operation of the system of Figure 11. When a load is imposed on the syringe, such as the physical ejection of a fluid, the actual system behavior will deviate from this continuous estimate in a manner that can be detected with sensors (e.g., for plunger velocity, plunger force, rotational motor speed, or any other detectable variable) and used to determine when an air bubble in a fixed volume ejection becomes compressed.

[0138] While the techniques described above may be advantageously used to improve control of needle-free injectors and the like, it will be appreciated that the insights from this analytical approach (in particular, that before volume or rate can be controlled, any trapped air bubbles or other gas in the syringe chamber should be sufficiently compressed so that linear motion of the plunger is directly and mechanically translated into displacement of the injectate from the device) can also be used in other ways to improve control of needle-free injectors.

[0139] For example, in one embodiment, the syringe can be operated at a higher pre-injection speed until a volume of fluid is detected at the syringe exit orifice that indicates sufficient gas compression to displace the fluid from the chamber. In another embodiment, for example, if the volume of gas forms a discrete visible bubble at a known location in the chamber, an image of the uncompressed bubble can be used to estimate the bubble volume and calculate an appropriate estimated period of initial high speed operation for bubble compression. In another embodiment, the back force of the plunger is expected to increase as the bubble is compressed. This back force may be measured directly or via a proxy such as a reduction in plunger speed (or an increase in drive current required to maintain a target speed) and used to detect the appropriate time to reduce from the gas compression speed to the puncture speed, for example, when the plunger speed has decreased by a predetermined absolute or relative amount or threshold that indicates an appropriate compression state. This threshold may be empirically derived or otherwise estimated, calculated, or measured prior to injection to provide a target value for detection during injection. It will be appreciated that these techniques may be varied according to, for example, the viscosity of the injectate, the diameter of the injection orifice, or other factors that may affect the amount of bubble compression suitable for transitioning to a puncture speed.

[0140] According to one or more embodiments, a needle-free injector is provided that may include a housing, a cartridge disposed within the housing, a plunger slidably coupled to the chamber and disposed within the chamber, and a motor operatively coupled to the plunger to actuate the plunger within the chamber.

[0141] The cartridge may include an outlet port and a chamber for holding a volume of injectate. The plunger may be positioned to expel the volume of injectate through the outlet port when slid within the chamber. The needle-free injector may further include a controller operatively coupled to the motor. The controller may be operable to selectively operate the plunger according to one of a first delivery profile, a second delivery profile, and a third delivery profile.

[0142] One embodiment of a needle-free syringe is shown in FIG. 13. Referring to FIG. 13, and using in part the numbering convention of FIG. 1, the needle-free syringe 100 includes a chamber 106 having an exit port or nozzle 108 at one end with an axis of flow 101 through the chamber illustrated as a dashed arrow. The chamber 106 includes an injectate 150 as described herein and a volume of gas 151. The volume of gas 151 may form bubbles within or adjacent to the injectate 150, or may be distributed throughout the injectate 150 as any number of smaller bubbles, or may be dissolved within the injectate 150, any of which are referred to interchangeably herein as a volume of gas or bubbles, unless a more specific meaning is expressly stated or is otherwise clear from the context. The volume of gas 151 may be introduced during the manufacturing process used to encapsulate the injectate 150 within the chamber 106. This may be, for example, an artifact of the manufacturing process or a volume of gas intentionally included as specified by regulatory or operational requirements of the needle-free injector 100. When the needle-free injector 100 is oriented such that the volume of gas 151 rises to the top of the injectate 150 and adjacent to the plunger 120, the volume of gas 151 can form a headspace above the injectate 150.

[0143] The needle-free injector 100 further includes a plunger 120 disposed within the chamber 106 in front of the volume of gas 151. The needle-free injector 100 further includes a motor (not shown) using a nib 121 operatively coupled to the motor. The nib 121 is disposed adjacent to the plunger 120 and is configured to move along the flow axis 101 when the motor is actuated.

[0144] With continued reference to FIG. 13, prior to injection, the plunger 120 may be spaced from the tip 121 by a gap 121a. The presence of the gap 121a between the plunger 120 and the tip 121 allows the tip 121 to accelerate to a high speed when the motor is actuated, potentially allowing the tip 121 to reach a higher speed before the movement of the plunger 120 begins, moving the plunger 120 along the flow axis 101 within the chamber 106. After the tip 121 impacts the plunger 120 (or immediately upon actuation, for a plunger 120 without the gap 121a), the plunger 120 and the volume of gas 151 within the chamber 106 are compressed, thus pressurizing the injectate 150 within the cartridge 106. Under these conditions, the speed of the plunger 120 can cause rapid compression of the injectate 150 and the volume of gas 151 within the cartridge 106.

[0145] It will be understood that various techniques can be used to measure the plunger speed and the load on plunger 120 and / or the motor. For example, the motor may include a rotary encoder that provides a signal corresponding to the angular position of the motor. This can be provided as an input to a controller that indicates a change in angular position, and the controller can then calculate the change in the linear position of the plunger. At the same time, the controller can supply drive current to the motor, for example, according to the drive profile of the syringe. The drive current supplied by the controller (or in response to a control signal from the controller) can be used to estimate the load on the motor. The encoder position and drive current are useful and readily available control signals, but it will be understood that various other sensors and / or techniques for measuring position and load can be used as described herein. For example, the position can be measured by optical, electronic, acoustic methods, etc. Similarly, the load on the plunger can be measured using a force sensing sensor disposed within the device or by measuring the drive current actually output to the motor (distinguished from the drive current that the controller attempts to supply to the motor).

[0146] It will also be understood that various pre-injection control profiles can be used, for example, a cartridge of fluid (and gas) is inserted into the syringe and the tip 121 coupled to the motor is moved to engage the plunger 120. In one aspect, the tip 121 may be engaged with the plunger 120 before injection is initiated. In another aspect, the tip 121 is disposed near the plunger 120 but does not mechanically engage the plunger 120. For example, in some embodiments, the distance 121a between the tip 121 and the plunger 120 is from about 1 mm to about 10 mm, such as from about 2 mm to about 8 mm, from about 3 mm to about 7 mm, or about 5 mm, for example, about 1 mm, about 2 mm, about 3 mm, about 4 mm, about 5 mm, about 6 mm, about 7 mm, about 8 mm, about 9 mm, or about 10 mm.

[0147] As disclosed herein, in one embodiment, the needle-free injector may operate according to three or more separate delivery profiles corresponding to multiple phases of the injection delivery process: a first delivery profile (e.g., a gas compression profile) that accelerates the motor before engaging the plunger 120 and initiates the injection by detecting an initial compression of the gas in the cartridge; a second delivery profile (e.g., a puncture profile) that moves rapidly to an initial injection velocity while the injectate is expelled from the cartridge at a velocity sufficient to penetrate the permeability barrier; and a third delivery profile (e.g., a delivery profile) that maintains an injectate velocity sufficient to deliver the injectate to the subject. Transitions between each of the three profiles can be performed using a controller of the needle-free injector. In some embodiments, transitions between each of the first, second, and third delivery profiles may be a function of the load on the motor and / or plunger. In some examples, the load may be measured, for example, by receiving a signal from a circuit that measures the current supplied to the motor. In another embodiment, the load may be inferred, for example, based on the drive current the controller requests or outputs for the motor.

[0148] In the first delivery profile, the plunger is initially accelerated from zero to a first speed (although not necessarily at a high speed greater than the target speed in the puncture profile, e.g., at or near the maximum (rotational) speed of the motor). This initial acceleration should typically be accompanied by an initial spike in current supplied to the motor. Once the first speed is reached, the drive current is reduced to about the steady-state current required to drive the plunger at the first speed. During this phase, the tip coupled to the motor engages the plunger as described above and can begin to advance the plunger in the chamber. However, as the gas in the chamber becomes more compressed, the drive current required to maintain the speed of the plunger increases. For example, as soon as the gas in the chamber is compressed (e.g., to a state where the gas cannot be further compressed during injection or where the compressibility of the gas is approximately equal to the fluid), the load on the motor becomes approximately equal to the load applied by driving the fluid through the opening for injection. As soon as a spike in the drive current occurs indicating that the contents of the chamber are approaching this state (e.g., indicating compression of the gas above a predetermined threshold), the controller may transition to a second delivery profile (while maintaining the plunger velocity) to eject fluid from the syringe.

[0149] In practice, the first delivery profile may use a target speed at or near the maximum speed of the motor, or operate the plunger at maximum acceleration. Once the constant volume of gas is sufficiently compressed in the first delivery profile, the speed of the plunger of the needle-free syringe may be adjusted according to a second delivery profile for delivery of the injectate to the target. That is, while a substantially constant drive current is provided (e.g., during constant speed operation), upon detection of compression of the gas as indicated by a spike in the measured current provided to the motor and / or a decrease in speed, the operation of the plunger may be transitioned from the first delivery profile to the second delivery profile.

[0150] A major advantage is that by measuring the compression state and waiting for sufficient compression before beginning to execute an injection profile, changes in compression state can be prevented from interfering with the control of the injectate rate during injection. Detecting the compression of the fixed volume of gas in this manner prior to delivery of the injectate can be controlled to more closely replicate the target injection profile, and artifacts such as integrator windup and overshoot can be mitigated.

[0151] In some embodiments, operating according to the first delivery profile can cause the plunger to operate at a speed of between about 300 m / s and about 500 m / s. For example, the first delivery profile may move the plunger at about 300 m / s to about 500 m / s, about 320 m / s to about 480 m / s, about 340 m / s to about 460 m / s, about 360 m / s to about 440 m / s, about 380 m / s to about 420 m / s, or about 400 m / s, e.g., about 300 m / s, about 310 m / s, about 320 m / s, about 330 m / s, about 340 m / s, about 350 m / s, about 360 m / s, about 370 m / s, about 380 m / s, about 390 m / s, about 400 m / s, about 410 m / s, about 420 m / s, about 430 m / s, about 440 m / s, about 450 m / s, about 460 m / s, about 470 m / s, or about 480 m / s. The actuator may be operated at a speed of about 480 m / s, about 480 m / s, about 490 m / s, about 500 m / s, or greater than 500 m / s.

[0152] Once the volume of gas has been compressed by the plunger in a detectable manner as described herein, the syringe can transition to a second delivery profile to generate a high velocity flow of injectate. As described herein, the second delivery profile targets a high injectate velocity of short duration sufficient to generate an injectate velocity capable of penetrating a permeability barrier, such as the subject's skin. This can include, for example, rapidly accelerating to a velocity suitable for puncture. One example of the above is shown in FIG. 14, where a high plunger velocity is maintained for a short duration and then decreased as the injectate penetrates the permeability barrier, the decrease in plunger velocity causing an increase in injectate or flow rate. Note that in FIG. 14, the drive current may be momentarily decreased to near zero, to zero, or even negative (to apply a brake or opposing force to the plunger) before accelerating to the target injection velocity. This can advantageously mitigate overshoot of the initial target velocity and prevent large initial swings in the velocity of the fluid ejected from the device.

[0153] Note that the initial target speed and speed range in this second phase may be significantly smaller than during the first phase. For example, injectate velocities generated during operation according to the second delivery profile are from about 150 m / s to about 250 m / s, e.g., from about 150 m / s to about 250 m / s, from about 160 m / s to about 240 m / s, from about 170 m / s to about 230 m / s, from about 180 m / s to about 220 m / s, from about 190 m / s to about 210 m / s, or about 200 m / s, e.g., about 150 m / s, about 160 m / s, about 170 m / s, about 180 m / s, about 190 m / s, about 200 m / s, about 210 m / s, about 220 m / s, about 230 m / s, about 240 m / s, about 250 m / s, or greater than about 250 m / s. More generally, any speed or combination of speeds suitable for delivery of injectate in a needle-free injection may be used in the second and third profiles.

[0154] As part of the transition from operation according to the first delivery profile to operation according to the second delivery profile, one consideration is the control of the current supplied to the motor to avoid overpenetration of the injectate through the permeability barrier. During the second phase, especially at the beginning of the injection when the fluid is puncturing the tissue, to better control the speed, the second delivery profile may start with little or no current supplied to the motor. As shown in FIG. 14 (at about 5 milliseconds along the x-axis), the flow rate can continue to increase even with this momentary decrease in drive current, and as the plunger speed rapidly decreases towards the target initial speed of the second stage, the acceleration of the flow rate can continue to smoothly accelerate. In this configuration, the back pressure received from the compression of the constant volume of gas in the chamber may slow down the speed of the plunger.

[0155] Under such conditions, until both the plunger speed and the current supplied to the motor reach steady state conditions, the current supplied to the motor, and thus the force applied to the plunger, should increase in the opposite direction of the decrease in the plunger speed. That is, when controlling the current and the plunger speed together in the power control mode (illustrated in FIG. 15C, where the product of the plunger speed and the current is used as a substitute for the mechanical power supplied to the plunger), the second delivery profile enables power control to the needleless syringe until the plunger speed, the current applied to the motor, and the power supplied to the needleless syringe reach relatively stable steady state conditions during the duration of the injection. For example, the device can employ an injection speed that slowly and monotonically decreases as the injectate is physically delivered from the device.

[0156] The above is illustrated in Figures 14 and 15A-15C, which show the change in plunger velocity (Figure 15A), measured motor current (Figure 15B), and power measured as the product of plunger velocity and measured motor current (Figure 15C) as the delivery profile changes from a first delivery profile to a second delivery profile and then to a third delivery profile after detecting a steady state condition between the measured current and plunger velocity.

[0157] In some embodiments, the average velocity of the plunger during operation with the first delivery profile is greater than the average velocity of the plunger during operation with the second delivery profile. An example of this is shown in Figure 14. With reference to Figure 14, the velocity of the plunger, represented by the dotted line, is highest in the first delivery profile and decreases shortly after impact with the plunger in the second delivery profile until a steady state plunger velocity is reached during the third delivery profile.

[0158] In some embodiments, operating according to the second delivery profile can cause the plunger to operate at a speed of about 60 m / s to about 150 m / s. For example, the second delivery profile can cause the plunger to operate at a speed of about 60 m / s to about 150 m / s, about 70 m / s to about 140 m / s, about 80 m / s to about 130 m / s, about 90 m / s to about 120 m / s, or about 110 m / s, e.g., about 60 m / s, about 70 m / s, about 80 m / s, about 90 m / s, about 100 m / s, about 100 m / s, about 120 m / s, about 130 m / s, about 140 m / s, 150 m / s, or greater than 150 m / s.

[0159] The transition from the second delivery profile to the third delivery profile may occur in response to detection of a steady state condition between the measured current and the velocity of the plunger until a predetermined amount of infusate is delivered from the chamber through the exit port. One consideration regarding this transition is the decrease in equal deceleration while the infusate velocity remains above the lower velocity limit. That is, after penetrating the permeability barrier during operation with the second delivery profile, the velocity of the plunger, and therefore the velocity of the infusate, must be maintained during operation with the third delivery profile to achieve efficient and complete delivery of an appropriate volume of infusate to the subject's tissue. To achieve control and maintenance of the infusate velocity, the third delivery profile may include control of the plunger velocity, and therefore the deceleration of the plunger by decreasing the current applied to the motor. By performing this deceleration in a slow, monotonically decreasing pattern, the target velocity of the flow may be maintained in direct proportion to the control current supplied. A graphical representation of this control of the plunger is shown in Figures 16A and 16B.

[0160] In some embodiments, operating according to the third delivery profile can operate the plunger at a speed of about 80 m / s to about 120 m / s. For example, the second delivery profile can operate the plunger at a speed of about 80 m / s to about 120 m / s, about 85 m / s to about 115 m / s, about 90 m / s to about 110 m / s, about 90 m / s to about 104 m / s, or at about 100 m / s, e.g., about 80 m / s, about 85 m / s, about 90 m / s, about 95 m / s, about 100 m / s, about 105 m / s, about 110 m / s, about 115 m / s, or about 120 m / s. In one embodiment, the second delivery profile targets a constant velocity (of either the injectate or the plunger) and the third delivery profile targets a slow, monotonically decreasing velocity. In another embodiment, the second delivery profile targets a decreasing rate (eg, a slow monotonically decreasing rate) and no third delivery profile is used.

[0161] According to one or more embodiments, a needle-free syringe is provided. The needle-free syringe may include a plunger arranged to pressurize fluid and gas in a cartridge having an exit port, and a motor operatively coupled to the plunger. As described herein, the plunger may be arranged to contact the gas in the chamber, and the motor may be operable to actuate the plunger in a linear motion along the axis of the cartridge to expel the fluid from the exit port of the cartridge. Actuation of the motor in a first delivery profile may cause the plunger to compress the gas in the chamber and pressurize the injectate in the chamber. In response to detecting compression of the gas in the cartridge above a predetermined threshold, the needle-free syringe may operate in a second delivery profile, such as a biphasic profile including a puncturing phase and a delivery phase. As described herein, the puncturing phase may produce an injectate velocity sufficient to puncture the permeability barrier, but is controlled such that the injectate is not delivered deeper than required into the tissue of the subject. The delivery phase may produce an injectate velocity sufficient to deliver a volume of injectate to the subject. The delivery phase is further controlled, for example, by controlling the current supplied to the motor of the needleless injector to achieve complete delivery of the appropriate volume of injectate into the subject's tissue. In some embodiments, as described herein, the plunger velocity during the penetration phase is decreased as a function of time. This decrease in plunger velocity reduces the resulting injectate velocity to a magnitude that is unlikely to result in over-penetration of the injectate into the subject.

[0162] The needle-free injector may further include a controller operatively coupled to the motor, which may be operable to operate the plunger according to a first delivery profile to compress the gas in the cartridge in response to an injection start signal, and to operate the plunger according to a second delivery profile in response to detecting compression of the gas in the cartridge above a predetermined threshold.

[0163] In some embodiments, detecting compression of gas in the cartridge beyond a predetermined threshold includes detecting a deviation in motor current between a free running drive current predicted by the model and a measured current supplied to the motor. In some embodiments, detecting compression of gas in the cartridge includes detecting an increase in motor current beyond a predetermined threshold to maintain the velocity of the plunger within the first delivery profile. In some embodiments, detecting compression of gas in the cartridge may include detecting a decrease in the velocity of the plunger below a predetermined threshold. In some embodiments, detecting compression of gas in the cartridge includes simultaneously detecting a decrease in the velocity of the plunger and an increase in drive current to the motor. For example, the measured current supplied to the motor may be measured by an encoder operatively coupled to the motor that indicates the rotational position of the motor, and feedback from the encoder can be used by the controller to actuate the plunger.

[0164] According to one or more embodiments, a method of delivering an injectate using a needle-free syringe is provided. The method may include providing a needle-free syringe as described herein. The needle-free syringe may include a housing having a cartridge for holding a chamber, a plunger configured and arranged to deliver an injectate from the chamber, and a motor operatively coupled to the plunger. The method includes, in response to initiating an injection using the needle-free syringe, causing the needle-free syringe to operate the plunger according to a first delivery profile, monitoring a current supplied to the motor during the first delivery profile, transitioning from the first delivery profile to a second delivery profile in response to detecting compression of gas in the chamber by the plunger based at least in part on a spike in the current supplied to the motor, operating the plunger according to the second delivery profile, transitioning from the second delivery profile to a third delivery profile in response to detecting a steady-state condition between the measured current and the speed of the plunger, and operating the plunger according to the third delivery profile until a predetermined amount of injectate is delivered from the chamber through the outlet port.

[0165] In some embodiments of the present methods of delivering an injectate, transitioning from the first delivery profile to the second delivery profile may include transitioning from the first delivery profile to the second delivery profile upon detecting a spike in a measured current supplied to the motor concurrent with compression of the gas. In some embodiments of the present methods of delivering an injectate, transitioning from the first delivery profile to the second delivery profile may include decreasing the current supplied to the motor to within a range of 0 A to about 10 A.

[0166] In some embodiments of the present methods of delivering an injectate, operating the plunger according to the second delivery profile may include operating the plunger while maintaining compression of the gas in the chamber. In some embodiments of the present methods of delivering an injectate, operating the plunger according to the second delivery profile may result in the velocity of the injectate being sufficient to penetrate a permeability barrier. For example, as described herein, the permeability barrier may be the skin of the subject.

[0167] In some embodiments of the present methods of delivering an injectate, operating the plunger with the third delivery profile may include adjusting the velocity of the plunger as the injectate is delivered. For example, during delivery of the injectate, the third delivery profile may be configured to decrease the velocity of the plunger to decrease the velocity of the injectate.

[0168] According to one or more embodiments, a method for facilitating needle-free injection of an injectate is provided. The method can include providing a needle-free injector as described herein, such as a needle-free injector including a motor operatively coupled to a plunger and a controller. The controller provided with the needle-free injector can be a controller as described herein, which can operate the plunger in a first delivery profile, monitor a current supplied to the motor during the first delivery profile, transition from the first delivery profile to a second delivery profile in response to detecting compression of gas in the chamber by the plunger based at least in part on a spike in the current supplied to the motor, operate the plunger in the second delivery profile, transition from the second delivery profile to a third delivery profile in response to detecting a steady state condition between the measured current and the velocity of the plunger, and operate the plunger according to the third delivery profile until a predetermined amount of injectate is delivered from the chamber via the outlet port.

[0169] In some embodiments of the present facilitating methods, the method may further include providing instructions to a user for loading the cartridge of injectate into the needle-free injector.In some embodiments of the present facilitating methods, the method may further include providing instructions to a user for operating the needle-free injector.

[0170] The above-mentioned systems, devices, methods, processes, etc. may be implemented in hardware, software, or a combination thereof suitable for a particular application. The hardware may include a general-purpose computer and / or a special-purpose computing device. This includes implementation in one or more microprocessors, microcontrollers, embedded microcontrollers, programmable digital signal processors or other programmable devices or processing circuits, together with internal and / or external memory. Additionally or alternatively, this may include one or more application-specific ICs, programmable gate arrays, programmable array logic circuits, or any other device that can be configured to process electronic signals. It will be further understood that the implementation of the above-mentioned processes or devices may include computer executable code created using a structured programming language such as C, an object-oriented programming language such as C++, or any other high-level or low-level programming language (including assembly language, hardware description language, database programming language and techniques) that can be stored, compiled, or interpreted to run on any of the above-mentioned devices, or on heterogeneous combinations of processors and processor architectures, or on different hardware and software combinations. In another aspect, the methods may be embodied in the system that performs the steps, or may be distributed in some manner among multiple devices. At the same time, the processing may be distributed across multiple devices, such as the various systems described above, or all of the functionality may be integrated into a dedicated stand-alone device or other hardware. In alternative embodiments, the means for performing the steps associated with the processing described above may include any of the hardware and / or software described above. All such permutations and combinations are intended to fall within the scope of the present disclosure.

[0171] The embodiments disclosed herein may include a computer program product including computer executable or computer usable code that performs any and / or all of its steps when executed on one or more computing devices. The code may be stored in a non-transitory manner in computer memory, be it the memory in which the program is executed (such as a random access memory associated with a processor) or a storage device such as a disk drive, flash memory, or any other optical, electromagnetic, magnetic, infrared, etc. device or combination of devices. In another aspect, any of the above-described systems and methods may be embodied in any suitable transmission or propagation medium that carries the computer executable code and / or any input or output therefrom.

[0172] The elements described and illustrated herein, including the flowcharts and block diagrams in the figures, imply logical boundaries between the elements. However, according to software or hardware engineering implementations, the illustrated elements and their functions may be implemented as a monolithic software structure, as a stand-alone software module, or as a module using external routines, codes, services, etc., or any combination thereof, through a computer-executable medium on a machine having a processor capable of executing stored program instructions, and all such implementations may be within the scope of the present disclosure. Examples of such machines may include, but are not limited to, personal digital assistants, laptops, personal computers, mobile phones, other handheld computing devices, medical equipment, wired or wireless communication devices, transducers, chips, calculators, satellites, tablet PCs, e-books, gadgets, electronic devices, devices with artificial intelligence, computing devices, networking devices, servers, routers, etc. Furthermore, the elements illustrated in the flowcharts and block diagrams, or other logical components, may be implemented on a machine capable of executing program instructions.

[0173] Thus, while the figures and description above illustrate functional aspects of the disclosed system, the specific configuration of software for implementing these functional aspects should not be inferred from these descriptions unless expressly described or clear from the context. Similarly, it will be understood that the various steps identified and described above may be varied and the order of these steps may be adapted to a particular application of the techniques disclosed herein. All such variations and modifications are intended to fall within the scope of the present disclosure. Thus, the illustration and / or description of the order of the various steps should not be understood as dictating that a particular order of performance of these steps is essential unless required by a particular application or unless expressly described or clear from the context. Unless expressly indicated to the contrary, the disclosed steps may be modified, supplemented, omitted, and / or reordered without departing from the scope of the present disclosure.

[0174] The method steps of the implementations described herein are intended to include any suitable manner of causing such method steps to be performed, consistent with the patentability of the claims that follow, unless a different meaning is expressly stated or is clear from the context. Thus, for example, performing step X includes any suitable manner of causing another party, such as a remote user, a remote processing resource (e.g., a server or cloud computer), or a machine, to perform step X. Similarly, performing steps X, Y, and Z may include any manner of directing or controlling any combination of such other individuals or resources to perform steps X, Y, and Z to obtain the benefit of such steps X, Y, and Z. Thus, the method steps of the implementations described herein are intended to include any suitable manner of causing one or more other parties or entities to perform those steps, consistent with the patentability of the claims that follow, unless a different meaning is expressly stated or is clear from the context. Such parties or entities need not be under the direction or control of the other parties or entities, nor need they be located within any particular jurisdiction.

[0175] It will be understood that the above-described method and system are described by way of example and not by way of limitation. Numerous variations, additions, omissions, and other modifications will be apparent to those skilled in the art. Moreover, the order or presentation of the method steps in the above description and drawings is not intended to require an order for performing the described steps, unless a particular order is expressly required or is otherwise apparent from the context. Thus, while specific embodiments have been shown and described, it will be apparent to those skilled in the art that various changes and modifications in form and detail can be made without departing from the spirit and scope of the disclosure, which are intended to form a part of the invention as defined by the following claims.

Claims

1. 1. A needleless injector comprising: Housing; a cartridge disposed within the housing, the cartridge including an outlet port and a chamber for holding a volume of injectate; a plunger slidably coupled to and disposed within the chamber, the plunger being configured to pressurize the injectate and gas within the cartridge when slid within the chamber and operable to expel the volume of injectate through the outlet port; a motor operatively coupled to the plunger, the motor operable to actuate the plunger within the chamber; and a controller operatively coupled to the motor, the controller being operable to operate the plunger according to a first delivery profile to compress the gas in the cartridge in response to an injection start signal, and to operate the plunger with a second delivery profile in response to detecting compression of the gas in the cartridge exceeding a predetermined threshold, wherein detecting the compression of the gas in the cartridge comprises detecting a deviation between a measured behavior of the plunger and an estimated behavior of the plunger obtained from a free-running system model of characteristics of the plunger.

2. 2. The needle-free injector of claim 1, wherein an average velocity of the plunger during operation of the first delivery profile is greater than an average velocity of the plunger during operation of the second delivery profile.

3. The needleless syringe of claim 1, wherein the estimated behavior of the plunger obtained from the free-running system model includes at least one of the position of the plunger and the velocity of the plunger.

4. 10. The needle-free injector of claim 1, wherein the characteristic of the plunger is detected based on a position of the motor measured using a rotary encoder of the motor.

5. The needle-free syringe of claim 1 , wherein the free-running system model is expressed by a second-order linear ordinary differential equation.

6. 10. The needle-free injector of claim 1, wherein the injectate comprises an injectable pharmaceutical or dietary supplement formulation.

7. 7. The needle-free injector of claim 6, wherein the injectable pharmaceutical formulation comprises a high viscosity biological product.

8. 10. The needle-free injector of claim 1, wherein the plunger speed of the second delivery profile generates an injectate velocity sufficient to cause the injectate to penetrate a permeability barrier.

9. 9. The needle-free injector of claim 8, wherein the permeability barrier comprises the skin of a subject.

10. 2. The needle-free injector of claim 1, wherein the free-running system model provides an estimate of free-running characteristics including plunger speed and plunger position of the needle-free injector when operated to move the plunger linearly without ejecting fluid for injection.

Citation Information

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