Device and method for airless filling of fluid management systems

The fluid management system uses pressure differentials to remove air bubbles from dialysis machine lines, ensuring complete wetting and disinfection by alternately controlling fluid flow, addressing the challenge of air-filled constrictions in dialysis machines.

JP7726892B2Active Publication Date: 2025-08-20FRESENIUS MEDICAL CARE DEUTSCHLAND GMBH
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Patent Information

Application Number
JP2022544198
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-25
Filing Date
2021-01-22
Publication Date
2025-08-20
Estimated Expiration
2041-01-22

AI Technical Summary

Technical Problem

Modern dialysis machines face challenges in ensuring air-free filling of internal fluid lines due to the presence of air bubbles, particularly at constrictions like connection points for extracorporeal blood circuits, which hinders complete wetting with disinfectant solution and effective disinfection.

Method used

A fluid management system with a locking device and control device that alternately increases and reduces pressure in fluid line portions to dislodge and remove air bubbles, using a recirculation circuit and air separation means to ensure bubble-free filling.

Benefits of technology

The system effectively removes air bubbles by creating pressure differentials, allowing complete wetting and disinfection of fluid lines, including constrictions, thereby ensuring sanitary conditions and efficient disinfection.

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Abstract

The present invention relates to a device and a method for filling and flushing the hydraulic applications of a dialysis machine, which ensures the removal of air bubbles from the hydraulic applications.
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Description

[Technical Field]

[0001] The present invention relates to a device and method for airless filling of hydraulic applications, for example in fluid management systems of dialysis machines. [Background technology]

[0002] Modern dialysis machines for chronic hemodialysis prepare the required dialysate online in an internal machine hydraulic application system that delivers the dialysate into the machine-external extracorporeal blood circulation circuit, from which spent dialysate is received and directed into an outlet.

[0003] To ensure sanitary conditions of the system, periodic disinfection of the machine's internal hydraulic application system is required.

[0004] In particular, when the hydraulic application system is filled with air prior to disinfection, complete removal of air must occur in response to the filling of the hydraulic application to ensure complete wetting of the surfaces with disinfectant solution, and therefore continuous heat transfer to the seal during high temperature disinfection, as well as complete flushing of the disinfectant solution after disinfection.

[0005] In the case of simple filling of a hydraulic application with a uniform flow of irrigation liquid, components of the hydraulic application cannot be filled in an air-free manner, especially if the shape of this hydraulic application prevents the removal of air bubbles through the irrigation liquid. The same applies to chambers and hollow spaces with a shape that results in rising air bubbles being located outside the liquid flow. Constrictions of the flow cross-section of a fluid line within a hydraulic application, for example, connection points for tubing kits of an extracorporeal blood circuit, in particular online ports, are examples of special shapes of this type. Summary of the Invention [Problem to be solved by the invention]

[0006] It is an object of the present invention to provide a fluid management system, in particular a hydraulic application system of a blood treatment machine for renal replacement therapy, and a method for cleaning the fluid management system that ensures bubble-free filling of the machine's internal fluid lines. [Means for solving the problem]

[0007] According to the teaching of the present invention, this object is solved by means of a device according to claim 1 and a method according to claim 14. Specific embodiments are the subject matter of the dependent claims.

[0008] The present invention relates to a fluid management system. For example, the hydraulic application system of a dialysis machine, which serves to generate and / or transport dialysate, can be a fluid management system of this type. The fluid management system has internal machine fluid lines (as machine components) with a fluid input for connection to a supply of cleaning fluid and a fluid output for connection to a line for draining the cleaning fluid.

[0009] Depending on the claims, machine-internal may mean that the fluid line is located completely inside the machine in one embodiment. In another embodiment, machine-internal fluid lines also include fluid lines that are only partially guided within the machine.

[0010] A locking device is disposed in the fluid line that divides the fluid line into first and second fluid line portions.

[0011] The first fluid line portion comprises a first fluid conveying means, which is arranged upstream of the locking device during its operation according to the invention.

[0012] The second fluid line portion has a second fluid conveying means, which is positioned downstream from the locking device during its operation according to the invention.

[0013] The fluid management system has a control device for controlling the locking device, the first fluid transport means, and the second fluid transport means, the control device being configured to control the first fluid transport means for transporting liquid toward the locking device to increase pressure in a first fluid line portion upstream of the locking device, and to control the second fluid transport means for transporting liquid in a direction away from the locking device to reduce pressure in a second fluid line portion of the fluid line system downstream from the locking device, and the control device being configured to open the locking means at least once when the pressure in the first liquid portion increases and when the pressure in the second liquid portion decreases.

[0014] The control device may thereby comprise a processor, a data storage medium, and data lines. Program code, the execution of which causes corresponding signals to be sent to the respective components, may be stored on the storage medium.

[0015] It is also possible to alternately open and close the locking device, for example, 3 to 7 times each. Repeated opening and closing can allow more thorough or complete removal of all air bubbles within the fluid line portion to be achieved.

[0016] The fluid line section can be closed to form a recirculation circuit, thereby reducing the consumption of cleaning liquid. An air separation means can be arranged in the first or, preferably, the second fluid line section to allow air to be removed from the recirculation circuit. The air separation means can be arranged downstream from the locking means. A chamber with an inlet and an outlet and a third opening in the upper region of the chamber can be used as this type of air separation means to expel air from the chamber. The air separation means can also be a connection to the outside and to a pump, and the liquid, together with the air bubbles, is transported out of the fluid section. For example, a water input chamber at the inlet of the fluid management system or a chamber at the outlet of the fluid management system can be used as the air separation chamber. As a result of the recirculation, there is no longer any dependency on a high delivery rate through the water source at higher flow rates.

[0017] The fluid line, in particular the second fluid line section, may have at least one constriction in the through lumen, whereby air bubbles may not be able to pass through the through lumen of the fluid line, in particular upstream of the constriction, or may only pass with difficulty.

[0018] Bottlenecks of this type exist, for example, at the connection points of hydraulic applications for the extracorporeal blood circuit. This type of connection point is used, for example, to deliver dialysate directly into the patient's blood. It is referred to herein as a substitution port. Another connection point, the flushing port, is used as a patient connection in response to filling and flushing the tubing kit before the start of treatment. Effective disinfection is particularly important here because of the direct contact between the hydraulic application and the extracorporeal blood circuit.

[0019] To optimally remove air bubbles at such bottlenecks, the locking means can be positioned upstream of the constriction and the second fluid-transporting means can be positioned downstream from the constriction. With the locking means closed, a negative pressure is generated between the locking means and the second fluid-transporting means in response to actuation of the second fluid-transporting means. This negative pressure initially increases the volume of any air bubbles located in this region. Activating the first fluid-transporting means upstream of the locking device can simultaneously increase the pressure in the fluid line upstream of the locking device.

[0020] After a pressure differential is established between the fluid line portion upstream of the locking device and the fluid line portion downstream of the locking device, pressure compensation generally occurs in response to the opening of the locking device and thus the impact pressure downstream from the locking device, which breaks up the gas bubbles that have grown and become unstable due to the negative pressure into small microbubbles that can more easily pass through bottlenecks in the fluid line portion. Due to the negative pressure and flow peaks in the fluid line portion downstream from the locking device, these small gas bubbles can then be drawn through the constriction, i.e., removed from the fluid line system, before they can regroup to form larger gas bubbles.

[0021] This effect is particularly effective when the compliance of the fluid line between the locking device and the constriction of the through lumen is as small as possible, for example between 0.5 and 50 cm, preferably 10-30 cm.

[0022] To ensure that a sufficient pressure difference exists in response to the opening of the locking device, the fluid management system may comprise pressure measuring means, and the control device may be configured to control the opening or alternating opening and closing of the locking device through a pressure value determined by the pressure measuring means inside the inner fluid line portion, for this purpose the pressure measuring means being arranged in particular in fluid communication with the first fluid line portion and the second pressure measuring means being arranged in fluid communication with the second fluid line portion.

[0023] A sufficient pressure difference is reached, for example, when the difference is between 1000 and 3000 hPa, preferably between 1600 and 2500 hPa.

[0024] Alternatively or additionally, the fluid management system may comprise time measurement means. The control device may then be configured to control the opening or alternating opening and closing of the locking device over a time determined using these time measurement means. When the pump delivery speed is known, reaching a sufficient pressure difference may also be ensured by the duration of the phases before opening the locking device or the duration of the phase before opening the locking device and the duration of the opening of the locking device, respectively.

[0025] The locking means may for example be closed over a period of 1-5 seconds, preferably over a period of 2 seconds.

[0026] The release of the locking means can take place over a period of 2-6 seconds, preferably over a period of 4 seconds.

[0027] In addition, the opening of the valve can be performed so quickly that pressure compensation takes place in time intervals between 20 and 500 ms, preferably between 20 and 60 ms, so that the air bubbles can be transported further in a particularly effective manner.

[0028] Alternatively, the control device may be configured to control the opening or alternating opening and closing of the locking device as a function of a certain number of operating cycles of at least one fluid conveying means, for example when a membrane pump or balance chamber timing is used as the pumping means.

[0029] The locking means may be any means suitable for isolating fluid line sections from each other to provide the required pressure differential. The locking means may preferably be a valve, for example a solenoid valve or a tubing pinch valve.

[0030] To convey the cleaning liquid, the fluid management system may comprise any type of fluid conveying means suitable for creating the required positive pressure or the required negative pressure, respectively, which may preferably be a pump, for example a peristaltic pump, a membrane pump or, particularly preferably, a gear pump.

[0031] The fluid management system can be part of a hydraulic system for a blood treatment device for renal replacement therapy, such as a hemodialysis device. In the hydraulic system of this type of blood treatment device, for example, a degassing pump can be a first fluid transport means for creating positive pressure, and a flow pump can be a second fluid transport means for creating negative pressure. Both pumps can be gear pumps.

[0032] The present invention also relates to a method for bubble-free filling of a fluid management system according to the present invention with a cleaning liquid, the method comprising the step of filling the system with the cleaning liquid by activating the first and / or second fluid transport means. The locking means are open during the filling of the fluid lines. After the filling of the fluid lines, the system can first be cleaned for a certain period of time, for example, 5-60 seconds, by activating the first and / or second fluid transport means. In a next step, the locking device is closed. At least one of the fluid transport means continues to operate to increase the pressure in the first fluid line section and / or to reduce the pressure in the second fluid line section. The fluid transport can also be interrupted. After closing the locking means, at least one of them is then activated to allow a pressure difference to be created. After the pressure difference is created, the locking device is opened.

[0033] Closing and opening of the locking device can be repeated preferably 3 to 9 times.

[0034] For optimal removal of air bubbles, opening of the locking means may be in response to simultaneous actuation of at least a second fluid transport means.

[0035] Further details and advantages of the invention are explained in more detail below on the basis of exemplary embodiments illustrated in the drawings. [Brief explanation of the drawings]

[0036] [Figure 1] 1 is a schematic diagram of a fluid management system according to the present invention; [Figure 2] 1 shows an exemplary embodiment of the method described herein based on a schematic diagram. DETAILED DESCRIPTION OF THE INVENTION

[0037] A portion of the hydraulic application section of a dialysis machine is shown in schematic form in FIG. 1 as an example for a fluid management system.

[0038] A cleaning medium source 14 initially supplies cleaning liquid into the water input chamber 10. To fill the hydraulic application, the cleaning liquid is guided through the degassing pump 1 and degassing chamber 9 into the first fluid portion 15, into the fresh water chamber of the left balancing chamber 8, and into the second fluid portion 16 through the locking device 4 by activating the flow pump 2. There, the cleaning liquid is guided back into the water input chamber 10 through the waste water side of the right balancing chamber 8' using ventilation means 17. A pressure measuring means 5 is arranged in the first fluid portion 15 upstream of the locking device 4. A pressure measuring means 6 is arranged in the second fluid portion 16 downstream of the locking device 4. In addition, a connection point 7 for an extracorporeal blood tubing system is located in the second fluid portion 16.

[0039] This connection point 7 is located on the front of the device. After connection to the extracorporeal blood tubing system, direct delivery of dialysate from the hydraulic application section into the extracorporeal blood circuit is thus possible. To provide for complete disinfection of this connection point, the connection point has, for example, a coaxial design with an inner tube and an outer tube arranged coaxially therearound. The inner tube is recessed relative to the outer tube. In the cleaning or disinfection mode, the outer tube is sealed to the outside using a flap. In the cleaning or disinfection mode, the cleaning or disinfection solution, respectively, flows through the inner tube into the outer tube arranged coaxially therearound and from there into the outlet line. The distance between the inner and outer tubes is 6 mm. The connection point 7 is also inclined along its longitudinal axis, so that the liquid outlet is located lower than the discharge of the inner tube to facilitate complete emptying of the liquid port. Therefore, air bubbles can be trapped upstream of the recessed inner tube and cannot easily be carried away into the outlet in the cleaning mode in response to the laminar flow through this narrow gap in the outer tube against buoyancy. In particular, this bottleneck, which forms the connection point to the tubing system and thus to potentially infectious media, would then not be fully accessible to the disinfectant solution. The air-free filling also optimizes heat transfer through the liquid disinfectant solution up to the sealing of the flaps and until complete flushing of the disinfectant solution after disinfection is complete.

[0040] To achieve complete removal of air bubbles, the dialysis machine has a control unit 3 configured to operate the flow pump 2 in continuous flow to fill the fluid portions 15 and 16 and to subsequently circulate them.

[0041] In response to the simultaneous activation of the flow pump 2 and the degassing pump 1, the locking device 7 is then closed. A positive pressure is built up in the first fluid portion 15, and a negative pressure is built up in the second fluid portion 16. Air bubbles that did not pass through the constriction of the through lumen in the second fluid portion 16 during irrigation are first expanded by the negative pressure. As soon as the pressure measuring means 5 and 6 detect a sufficient pressure difference between the first fluid portion 15 and the second fluid portion 16, the locking device 4 is opened, thereby performing pressure compensation. Using the impulse pressure in the second fluid portion 16, the air bubbles are split into smaller bubbles. The latter are then immediately transported through the constriction via the degassing pump and reach the water input chamber 10, where they are then discharged to the atmosphere. When the fluid level in the water input chamber drops below a predetermined value, it is filled with irrigation liquid.

[0042] If degassing is to be avoided during phases with high flow rates, the degassing throttle 9 can be bypassed by opening the valve 12 .

[0043] The process of alternately closing and opening the locking device 7 can be repeated several times, for example seven times.

[0044] The fluid transport means 1 and 2 are then stopped, the system is vented and the valves are closed.

[0045] A flow chart of an embodiment of the method according to the invention is shown in FIG.

[0046] At the start of a dialysis treatment, the outer tubing of the dialyzer's coaxially configured connection point for the extracorporeal blood tubing system and the fluid lines extending away from it are evacuated and therefore filled with air.

[0047] In the first stage 101 of the filling process, the water input chamber 10 shown in FIG. 1 and the compartment of the balancing chamber are in each case filled with water.

[0048] In a second method step 102, the cleaning liquid is circulated in the fluid circuit shown in Figure 1. Valves 4, 11 and 12 are open. This method step lasts approximately 5 seconds.

[0049] In a third method step 103, the binding points are washed with a continuous stream. This method step 103 lasts approximately 5 seconds.

[0050] In a fourth method step 104, valve 4 is closed and a positive pressure of more than 1800 hPa is built up upstream of the valve by activating degassing pump 1. A negative pressure of less than -400 hPa is built up downstream from valve 4 by activating flow pump 2. This method step lasts approximately 2 seconds.

[0051] In a fifth method step 105, the pressure difference is reduced in that valve 4 is opened for approximately 4 seconds.

[0052] To completely remove the air, method steps 104 and 105 are then repeated up to seven times.

[0053] In a sixth method step 106, pumps 1 and 2 are stopped and the system is ventilated.

[0054] In a seventh method step 107, the valves used are closed.

[0055] Reference Number List First pump 1 Second Pump 2 Control Device 3 Locking means 4 First pressure measuring means 5 Second pressure measuring means 6 Connection points for extracorporeal blood tubing systems 7 Balance Chamber 8 Degassing Chamber 9 Water Input Chamber 10 Valve 11 Valve 12 Fluid Management Systems 13 Cleaning Media Source 14 First fluid line portion 15 Second fluid line section 16 Ventilation means 17

Claims

1. A fluid management system for disinfection, comprising: a machine internal fluid line connectable to a fluid inlet for supplying a cleaning fluid and to a fluid outlet for discharging said cleaning fluid; a locking device within the machine internal fluid line that divides the machine internal fluid line into a first fluid line portion and a second fluid line portion; a first fluid conveying means in the first fluid line portion disposed upstream of the locking device; a second fluid conveying means in the second fluid line portion located downstream from the locking device; a control device for controlling the locking device, the first fluid transport means, and the second fluid transport means; and the control device is configured to control the first fluid transport means to transport liquid towards the locking device to increase the pressure in the first fluid line portion relative to the pressure in the second fluid line portion, and to control the second fluid transport means to transport liquid away from the locking device to reduce the pressure in the second fluid line portion relative to the pressure in the first fluid line portion downstream from the locking device; the control device is configured to open the locking device at least once when pressure in the first fluid line portion increases and when pressure in the second fluid line portion decreases. A fluid management system characterized by:

2. 2. The fluid management system of claim 1, wherein the control device is configured to repeatedly close the locking device to build a pressure differential between the first and second liquid line portions and open it to compensate for the pressure differential.

3. 3. A fluid management system according to claim 1 or claim 2, wherein the first and second fluid line portions are closed to form a recirculation circuit and include air separation means.

4. 4. A fluid management system according to any one of claims 1 to 3, characterized in that one of the first and second fluid line portions, preferably the second fluid line portion, has at least one constriction in its through lumen, the locking device being arranged upstream of the constriction and the second fluid transport means being arranged downstream from the constriction.

5. 5. The fluid management system of claim 4, wherein the locking device is positioned 0.5 to 50 cm, preferably 10-30 cm, upstream of the constriction in the through lumen.

6. The fluid management system of claim 4, wherein the constriction of the through lumen is located at a connection point for an extracorporeal blood circuit.

7. 7. The fluid management system according to claim 1, wherein the fluid management system comprises pressure measuring means in at least one of the first and second fluid line portions, and the control device is configured to control the opening or alternating opening and closing of the locking device through a pressure value determined by the pressure measuring means.

8. 8. Fluid management system according to claim 7, characterized in that the opening of the locking device takes place when the pressure difference between the upstream and downstream fluid line portions reaches 1000 to 3000 hPa, preferably 1600 to 2500 hPa.

9. 9. A fluid management system according to any one of claims 1 to 8, characterized in that the fluid management system comprises time measurement means, and the control device is configured to control the opening or alternating opening and closing of the locking device over a time determined by the time measurement means.

10. 10. A fluid management system according to any one of the preceding claims, characterized in that the control device is configured to control the opening or alternating opening and closing of the locking device as a function of the operating cycle of at least one of the fluid conveying means.

11. 11. A fluid management system according to any one of claims 1 to 10, wherein the locking device is a valve, for example a solenoid valve or a tubing pinch valve.

12. Fluid management system according to any one of the preceding claims, characterized in that the fluid conveying means is a pump, for example a peristaltic pump or preferably a gear pump.

13. 13. The fluid management system according to any one of claims 1 to 12, wherein the fluid management system is part of a hydraulic system for renal replacement therapy or a blood treatment device.

14. A method for cleaning a fluid management system according to any one of claims 1 to 13, comprising: A) filling the machine-internal fluid lines of the fluid management system with the cleaning fluid by actuating at least one of the first fluid transfer means and the second fluid transfer means while the locking device is open; After that, B) closing the locking device; and C) establishing a pressure differential between the first fluid line portion and the second fluid line portion by actuating at least one of the first fluid conveying means and the second fluid conveying means; D) opening the locking device; A method comprising:

15. 15. The method according to claim 14, wherein the method steps B) to D) are repeated several times, preferably 3-7 times.

16. 16. A method according to any one of claims 14 or 15, wherein at least the second fluid transfer means is actuated in response to opening the locking device.

Citation Information

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