Peritoneal dialysis system with disinfectant pumping and disinfectant pathway
The integration of reusable components and efficient disinfection in peritoneal dialysis systems addresses the waste and setup challenges of existing systems, providing a cost-effective and user-friendly solution for home dialysis.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BAXTER INT INC
- Filing Date
- 2021-12-28
- Publication Date
- 2026-05-01
AI Technical Summary
Existing automated peritoneal dialysis systems generate significant disposable waste, which is cumbersome, costly, and requires substantial time and effort for setup, posing challenges for home patients.
The system incorporates reusable components for fluid transport, including a dialysate pump, heater, and lines, with a control unit managing disinfection sequences using citric acid, reducing the need for daily disposables and simplifying the setup process.
This approach minimizes waste, lowers costs, and reduces the time and effort required for setup by utilizing reusable components and efficient disinfection methods, enhancing the usability of peritoneal dialysis systems for home use.
Smart Images

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Abstract
Description
Technical Field
[0001] Priority Claim This application claims the priority and benefit of U.S. Provisional Patent Application No. 63 / 131,590, entitled "Peritoneal Dialysis Cycler Using Disinfection," filed on December 29, 2020, the entire content of which is incorporated herein by reference and relied upon.
[0002] Background The present disclosure generally relates to medical fluid treatment, and particularly to dialysate treatment.
Background Art
[0003] The human renal system can malfunction due to various factors. Renal failure causes several physiological disorders. The body can no longer balance water and minerals or excrete the daily metabolic load. Toxic metabolic end products such as urea, creatinine, and uric acid may accumulate in the patient's blood and tissues.
[0004] The decline in kidney function, especially renal failure, is treated by dialysis. Dialysis removes waste products, toxins, and excess water from the body that a normally functioning kidney would remove. Dialysis treatment, which replaces kidney function, is essential for many people because it can save lives.
[0005] One type of renal failure treatment is hemodialysis ("HD"), which generally uses diffusion to remove waste products from the patient's blood. A diffusion gradient is created between the blood and an electrolyte solution called dialysate or dialysis fluid across a semipermeable dialyzer, causing diffusion.
[0006] Hemofiltration ("HF") is another renal replacement therapy that relies on the convective transport of toxins from the patient's blood. HF is performed by adding replacement or replacement fluid to an extracorporeal circuit during the procedure. Throughout the course of the HF procedure, the replacement fluid, and any fluids accumulated in the patient between procedures, are ultrafiltered, providing a convective transport mechanism particularly beneficial for removing medium and large molecules.
[0007] Hemodiafiltration ("HDF") is a treatment method that combines convective and diffusion clearance. Similar to standard hemodialysis, HDF provides diffusion clearance using dialysate flowing through the dialyzer. Furthermore, replacement fluid is supplied directly to the extracorporeal circuit to provide convective clearance.
[0008] Most HD, HF, and HDF treatments are performed in a facility. The current trend toward home hemodialysis ("HHD") exists partly because HHD can be performed daily and offers greater therapeutic benefits than facility-based hemodialysis, which is typically performed two or three times a week. Studies have shown that the more frequently a patient receives treatment, the more toxins and waste products are removed and the less inter-dialysis fluid overload occurs compared to patients who receive treatment less frequently but likely for longer periods. Patients receiving treatment more frequently do not experience as many downcycles (fluid and toxin fluctuations) as facility-based patients who have accumulated two or three days' worth of toxins before treatment. In some areas, the nearest dialysis facility may be miles from a patient's home, causing door-to-door treatment time to take up a significant portion of the day. Even treatments at facilities close to the patient's home can still take up a significant portion of the day. HHD can be performed overnight or during the day, while the patient is relaxed, working, or otherwise productive.
[0009] Another treatment for renal failure is peritoneal dialysis ("PD"), in which a dialysis solution, also called dialysate, is injected into the patient's peritoneal cavity via a catheter. The dialysate comes into contact with the peritoneum of the patient's peritoneal cavity. Waste products, toxins, and excess fluid enter the dialysate from the patient's bloodstream through capillaries in the peritoneum by diffusion and osmosis, thus creating an osmotic gradient across the peritoneum. Osmotic agents in the PD dialysate contribute to this osmotic gradient. Used dialysate or dialysis waste is drained from the patient, removing waste products, toxins, and excess fluid. This cycle is repeated, for example, multiple times.
[0010] Peritoneal dialysis therapy includes various types, including continuous ambulatory peritoneal dialysis ("CAPD"), automated peritoneal dialysis ("APD"), tidal flow dialysis, and continuous infusion peritoneal dialysis ("CFPD"). CAPD is a manual dialysis procedure. In this case, the patient manually connects the implanted catheter to the drain to allow used dialysate or dialysate waste to be drained from the peritoneal cavity. The patient then switches the fluid connection to connect the patient's catheter to a bag of fresh dialysate, allowing the fresh dialysate to be infused into the patient through the catheter. The patient then disconnects the catheter from the bag of fresh dialysate, allowing the dialysate to accumulate in the peritoneal cavity where waste products, toxins, and excess fluid are transferred. After the accumulation period, the patient repeats the manual dialysis procedure, for example, four times per day. Manual peritoneal dialysis requires a considerable amount of time and effort from the patient and leaves ample room for improvement.
[0011] APD is similar to CAPD in that the dialysis procedure involves a cycle of drainage, infusion, and retention. However, APD machines typically perform the cycle automatically while the patient sleeps. APD machines eliminate the need for the patient to manually perform the procedure cycle and the need to transport supplemental materials during the day. The APD machine is fluid-connected to an implanted catheter, a source or bag of fresh dialysate, and a fluid drain. The APD machine pumps fresh dialysate from the dialysate source through the catheter into the patient's peritoneal cavity. The APD machine also allows the dialysate to be stored in a chamber, enabling the transfer of waste products, toxins, and excess fluid. The dialysate source may also include several liters of dialysate with multiple solution bags.
[0012] The APD machine pumps used dialysate or dialysis waste fluid from the patient's peritoneal cavity through a catheter to a drain. Similar to the manual process, several draining, infusion, and retention cycles are performed during dialysis. A "final infusion" may be performed at the end of the APD procedure. The final infusion may remain in the patient's peritoneal cavity until the start of the next procedure, or it may be manually emptied at some point during the day.
[0013] In any of the above treatments that use automated machines, the automated machines typically operate using disposable sets that are discarded after a single use. Depending on the complexity of the disposable sets, the cost of using one set per day can be substantial. Also, daily disposables require storage space, which can be a nuisance for homeowners and businesses. Furthermore, the daily replacement of disposables requires time and effort from the patient or caregiver to set them up each day at home or in the clinic.
[0014] For the reasons stated above, it is desirable to provide APD machines that reduce disposable waste. [Overview of the Initiative] [Means for solving the problem]
[0015] overview Known automated peritoneal dialysis (APD) systems typically consist of a machine or cycler that receives and operates a pumping cassette having a rigid section and a flexible section that can deform to perform pumping and valve operation. The rigid section is attached to a tube that extends to separate bags. The disposable cassettes and associated tubes and bags can be cumbersome for home patients to put on for treatment. The total number of disposable items can also lead to multiple setup procedures requiring patient input, potentially exposing room for error.
[0016] On the other hand, the APD system and related methods of this disclosure replace most of the fluid transport portion of the PD system with reusable components that are disinfected after treatment. The fluid lines within the machine or cycler are reused. The remaining disposable items may include a drainage line leading to a drainage bag or indoor drainpipe, and one or more dialysis fluid containers or bags, such as peritoneal dialysis fluid containers with different dextrose or glucose values, or a final bag container containing, for example, icodextrin. In one embodiment, a disposable filter is placed at the end of the patient-side line to provide a final stage of PD fluid filtration before delivery to the patient.
[0017] The APD system of this disclosure comprises an APD cycler having a housing. At least one, possibly three or more, reusable PD fluid lines extend from the housing. When not connected to a PD fluid container or bag, the reusable PD fluid lines can be connected to disinfection connectors supported and provided by the housing. The reusable PD fluid lines may, for example, extend from the front of the housing and be connected to disinfection connectors also provided on the front of the housing for easy access to the PD fluid lines. The reusable PD fluid lines may be color-coded and / or keyed to match the colored or keyed connectors of the PD fluid container or bag. The container or bag may contain final bags of PD fluid in different formulations, such as dialysis fluids with different dextrose or glucose values, and / or icodextrin, such as 1.36% glucose dialysis fluid, 2.27% glucose dialysis fluid, 3.86% glucose dialysis fluid, etc.
[0018] Inside the housing, reusable tubing extends from each of the reusable dialysate lines to the dialysate inline heater via dialysate line valves for each dialysate line. In one embodiment, each valve of the APD cycler is an electrically operated valve having a reusable valve body, which is either closed (e.g., when no power is supplied) or allows PD fluid to flow through the valve body (e.g., when power is supplied). Alternatively, the valve may be a bistable valve. The dialysate inline heater is also electrically operated in one embodiment and is, for example, a resistance heater having a reusable heater body that receives PD fluid for heating. In one embodiment, the inline heater can heat the PD fluid from room temperature to body temperature, e.g., 37°C, at a flow rate of at least 200 milliliters ("ml") / min. To provide feedback for temperature control, a temperature sensor is located adjacent to the heater, for example, downstream of the heater. For feedforward control, a second temperature sensor may also be located upstream of the heater, thereby stabilizing and accelerating the responsiveness of the heating control. The second sensor may further provide useful information for calculating the disinfectant dose value to be used during disinfection, for example, the A0 value.
[0019] In one embodiment, a reusable tube extends from the outlet of the dialysate inline heater to the air trap. Any tubes within the cycler housing may be metal, such as stainless steel, or plastic, such as polyvinyl chloride ("PVC"), or a non-PVC material such as polyethylene ("PE"), cross-linked polyethylene ("PEX"), polyurethane ("PU"), polyetheretherketone ("PEEK"), or polycarbonate ("PC"). In one embodiment, one or more level sensors are positioned adjacent to the air trap to maintain a desired level or level range of PD fluid within the air trap. In one embodiment, an air trap valve is positioned downstream of the air trap, and the air trap may be closed downstream to inject fluid into the air trap. The air trap may be closed upstream by a dialysate line valve for drainage. A vent valve may be provided at the top of the air trap.
[0020] A reusable dialysate pump is located within the cycler housing, and the dialysate pump has a reusable pump body that receives the PD fluid for pumping. That is, the pump does not require the PD fluid to flow through disposable items such as tubes or cassettes. The PD fluid pump may be an electric piston, gear, membrane, or centrifugal pump and may be inherently accurate in terms of volumetric measurement so as to eliminate the need for a separate PD fluid volume measuring device such as a flow meter, balance chamber, or device using the law of ideal gases. The PD fluid pump can be controlled to pump to and from the patient at or within the pressure limit by controlling the level of current to the PD fluid pump or the speed of the PD fluid pump. The positive pressure limit for the patient may be, for example, 1 to 5 psig (e.g., 2 psig (14 kPa)). The negative pressure limit for the patient may be, for example, -1.0 psig to -3.0 psig (e.g., -1.3 psig (-9 kPa)). As described herein, if a double-lumen patient-side line is provided, the lumen not used for infusion to or drainage from the patient may be used as a static pressure line so that the accurate patient intraperitoneal pressure ("IPP") is recorded in the cycler and used in a pump pressure control algorithm or routine for both positive and negative pressure. The PD fluid pump may be bidirectional or unidirectional, and a single pump may be provided. The PD fluid pump may be continuous. As described herein, the patient-side line is reusable in one embodiment. Thus, the pressure drop through the patient-side line is repeatable for each procedure, which allows for knowing the patient's actual pressure rather than using a different patient-side line for each procedure. Knowing the patient's pressure rather than estimating it allows for preparation for potentially higher flow rates.
[0021] In one embodiment, a conductivity sensor is positioned adjacent to the PD fluid pump. The conductivity sensor may be used to detect the conductivity of fresh PD fluid, confirming that the PD fluid is of a predetermined type, for example, at a predetermined glucose or dextrose level. For example, if an online PD fluid supply source is connected to one of the reusable PD fluid lines instead of a PD fluid container, the conductivity sensor may be used to detect the conductivity of fresh PD fluid, confirming that the PD fluid is properly mixed. The conductivity sensor may also be used to detect the conductivity of used PD fluid to assess the effectiveness of the treatment and / or to look for patient conditions such as peritonitis. A temperature sensor is positioned near the conductivity sensor to allow temperature compensation of conductivity readings.
[0022] In one embodiment, parallel patient-side line valves are positioned between a conductivity sensor and a reusable patient-side line. One of the parallel patient-side line valves allows fresh PD fluid to selectively flow into the fresh PD fluid lumen of the reusable double-lume patient-side line, while the other allows used PD fluid to selectively flow into the used PD fluid lumen of the reusable double-lume patient-side line. One or more pressure sensors are positioned adjacent to the parallel patient-side line valves to enable monitoring and control of the patient's positive and negative pressure. A patient-side line connector extends from the APD cycler housing to receive the reusable double-lume patient-side line during disinfection and normally when the patient is not receiving treatment. A disinfection line, positioned inside the APD cycler housing, extends from the patient-side line connector to at least one disinfection connector. At least one disinfection line valve is positioned along the disinfection line to selectively open the disinfection line and perform the disinfection sequence. The valves of this disclosure may be two-way valves, three-way valves, or a combination thereof.
[0023] In one embodiment, the drain line is disposable and, during treatment, connects to a drain line connector extending from the housing of the APD cycler. After treatment, the drain line is removed and discarded. The drain line connector is configured to close when the drain line is removed or to be closed to the outside. The drain line connector has a dual lumen or dialysate path that allows disinfectant, such as heated used PD fluid, to flow into and out of the drain line connector during disinfection. One lumen or path of the drain line connector is configured to be selectively in fluid communication with the dialysate pump via a first drain line valve. The other lumen or path of the drain line connector is configured to be selectively in fluid communication with the disinfectant line via a second drain line valve.
[0024] In addition to the dialysate container or bag and drainage line, another disposable item is a small, disposable patient-side line filter connected between the reusable patient-side line and the patient transfer set. The disposable patient-side line filter, like the reusable patient-side line, is in one embodiment double-lubricated and comprises a first or fresh disposable line communicating with the fresh PD fluid lumen of the reusable double-lubricated patient-side line, and a second or used disposable line communicating with the used PD fluid lumen of the reusable double-lubricated patient-side line. A final-stage or sterile-grade filter membrane is placed in the first or fresh disposable line to provide the final stage of PD fluid filtration before delivery to the patient. The PD filter membrane may be, for example, a pass-through filter without a rejection line. The pore size of the sterile-grade filter membrane may be less than 1 micron, for example, 0.1 or 0.2 microns. Negative pressure is applied to the used disposable line to remove used dialysate or waste fluid to the drain.
[0025] A reusable single lumen line may be used with a disposable single lumen patient side line filter. The disposable single lumen patient side line filter may be provided with a check valve to ensure that all of the fresh PD fluid is reliably forced through a sterile grade filter.
[0026] In one embodiment, a spool or hose reel is disposed within the housing. The hose reel is configured to automatically draw in the patient side line when the reusable patient side line is connected to the patient side line connector. The spool includes a releasable lock that is actuated, for example, by an actuator or button, and the user releases the lock to enable the spool to wind up the patient side line. Until the lock is released or opened, the patient side line remains unwound from the spool so that the spool does not pull on the reusable patient side line during the procedure.
[0027] Any cycler described herein may be provided with a flow switch (or flow sensor) located on the suction side of the PD fluid pump (from the perspective of infusion to the patient) to detect if the contents of the PD fluid container or bag may be running low. The flow switch is useful as a safety check during the procedure, when finally draining each of the PD fluid containers or bags after the procedure, and when injecting fresh disinfectant PD fluid into the cycler at the beginning of disinfection. An additional pressure sensor may be located on the suction side of the PD fluid pump (from the perspective of infusion to the patient) to detect negative pressure at the pump inlet. The additional pressure sensor is also useful for detecting empty or nearly empty PD fluid containers or bags and may therefore be used instead of or in addition to the flow switch. The output from the additional pressure sensor may also be used to determine the amount of PD fluid pumped in one pump stroke for PD fluid pumps of a type that depends on inflow pressure for accuracy. A leak detection pan may further be provided at the bottom of the cycler housing and may work in conjunction with a leak detection sensor. The leak detection pan is formed to have an angled or funnel shape and collects any type of liquid that leaks from the cycler's reusable tubing due to poor connections, material bursts, or other reasons. The leak detection sensor may be an ultrasonic sensor, an inductive sensor, a volume sensor, an optical sensor, and / or may be in direct contact with the leaking material, for example, by having an electrical contact closure. Upon receiving a liquid leak signal from the leak detection sensor, the cycler's control unit sounds an alarm and performs any specified corrective action.
[0028] The APD cycler of the APD system of the present disclosure includes a control unit having one or more processors and one or more memories that receive signals or outputs from a pressure sensor, a temperature sensor, a conductivity sensor, a flow switch, and a leak detection sensor, and processes the signals or outputs as feedback. The control unit uses the pressure feedback to control the dialysate pump and operates it within a safe patient pressure limit during treatment and within a safe system limit during disinfection. The control unit uses the temperature feedback to control the dialysate heater to heat fresh dialysate, for example, to body temperature, and to heat unused fresh PD solution to the disinfection temperature for the disinfection sequence after treatment. The control unit analyzes fresh and / or used dialysate using temperature-compensated conductivity readings for the reasons described herein.
[0029] The control unit further opens and closes the dialysate valves in combination with the dialysate pump and heater to perform a priming sequence, a filling sequence to the patient, a draining sequence from the patient, and a disinfection sequence after the PD treatment. In the disinfection sequence, each of at least one reusable PD fluid line is connected to one of at least one disinfection connector, and the reusable patient-side line is connected to a reusable patient-side line connector. The disinfection sequence prepares the APD cycler for the next treatment. In one embodiment, the used dialysate is heated after the final drainage and used for disinfection.
[0030] In another embodiment, the cycler stores water in a water tank and the water is used for disinfection instead. The cycler may further include a purification cartridge, such as an adsorbent cartridge, to purify the water after disinfection. The purified water is returned to the water tank for the next treatment. An alternative reusable single lumen line may be used with an alternative disposable single lumen patient-side line filter, which may be provided with a check valve to ensure that all fresh PD solution is forced through a sterilization grade filter.
[0031] Any of the systems described herein may be subject to periodic disinfection with citric acid (with or without heating). Citric acid disinfection helps remove biofilms (concentrated NaCl may be used instead or in addition as a biofilm control measure), endotoxin residues, and precipitates that may have formed during treatment, and inhibits their growth.
[0032] For lubrication, it is also conceivable to provide a flushing flow subsystem for supplying water to an inherently precise dialysate pump. In embodiments of systems having a water tank provided herein, the portion of the dialysate pump requiring lubrication may be arranged to be in fluid communication with an upright water column provided via the water tank, or with a pressurized water recirculation line extending from the water tank and returning to the water tank. In embodiments of systems using dialysate for disinfection provided herein, the flushing flow subsystem in one embodiment comprises a water generation subsystem in which a small portion of the dialysate is distilled in an in-line dialysate heater, for example, at the end of disinfection. Distillation removes glucose or dextrose from the dialysate by heating or boiling to produce distilled water vapor, for example, in an air trap. The remaining glucose or dextrose remains in the dialysate that has not evaporated. The distilled water is cooled, for example, by a fan and / or cooler, a thermoelectric cooler such as a Peltier module. In one embodiment, the thermoelectric cooler is integrated with a reusable air trap provided to the cycler. Alternatively, since only a small amount of water is required, for example a few milliliters, passive cooling such as a thermal fin may be used. The cooled water is collected in a small chamber. Similar to the water tank, the parts of the dialysate pump that require lubrication may be positioned to be in fluid communication with an upright water column provided through the small chamber or with a pressurized water recirculation line extending from the small chamber and returning to the chamber.
[0033] In a first aspect of the disclosure, which can be combined with any other aspect or part thereof, without limiting the disclosure described herein, a peritoneal dialysis ("PD") system comprises a housing; a dialysate pump having a reusable pump body housed by the housing and receiving PD fluid for pumping; a dialysate inline heater having a reusable heater body housed by the housing and receiving PD fluid for heating; at least one reusable PD fluid line extending from the housing; at least one disinfection connector supported by the housing and configured to receive one of the at least one reusable PD fluid lines; and a control unit configured to perform a disinfection sequence after a PD treatment, wherein each of the at least one reusable PD fluid line is connected to one of the at least one disinfection connector, and at least one of the dialysate pump and the dialysate inline heater is activated during the disinfection sequence.
[0034] In a second embodiment of the present disclosure, which can be combined with any other embodiment or part thereof, the control unit is configured to (i) cause the dialysate inline heater to heat the PD fluid to at least 70°C, and (ii) recirculate the heated PD fluid to the dialysate pump during the disinfection sequence.
[0035] In a third aspect of the present disclosure, which can be combined with any other aspect or part thereof, the dialysate pump is a piston, gear, membrane or centrifugal pump, and the reusable pump body of the piston, gear, membrane or centrifugal pump receives the PD fluid for pumping.
[0036] In a fourth aspect of this disclosure, which can be combined with any other aspect or part thereof described herein, the dialysate pump is inherently accurate in terms of volumetric metering.
[0037] In a fifth aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the PD system comprises a pressure sensor located downstream of the dialysate pump, the pressure sensor providing pressure feedback to the control unit, the pressure feedback being used by the control unit to control the pressure of the PD fluid pumped by the dialysate pump.
[0038] In a sixth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit controls the current to the dialysate pump to control the pressure of the PD fluid.
[0039] In a seventh aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a temperature sensor located downstream of the dialysate inline heater, the temperature sensor providing temperature feedback to the control unit, the temperature feedback being used by the control unit to control the temperature of the PD fluid heated by the dialysate inline heater.
[0040] In an eighth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises an air trap located downstream of the dialysate inline heater, the air trap being configured to collect air removed from the dialysate heated by the dialysate inline heater and / or air removed from the PD fluid container.
[0041] In a ninth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one level sensor positioned and arranged to detect dialysate in the air trap, the at least one level sensor providing an output to the control unit, the control unit configured to use the output to control the level of dialysate in the air trap.
[0042] In a tenth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a conductivity sensor in fluid communication with the dialysate pump, the conductivity sensor providing an output to the control unit, the control unit configured to use the output for at least one of (i) ensuring that the fresh PD fluid is of the prescribed type, or (ii) analyzing the used PD fluid in relation to treatment effectiveness and / or the patient's disease.
[0043] In an eleventh aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a plurality of dialysate valves, each dialysate valve comprising a reusable valve body that can be blocked or allow PD fluid to flow through, the plurality of valves comprising at least one of (i) at least one first valve between each of the at least one reusable PD fluid line and the dialysate inline heater, (ii) a second valve between the dialysate inline heater and the dialysate pump, or (iii) at least one third valve provided along a disinfection line in fluid communication with the at least one disinfection connector.
[0044] In a twelfth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one of a reusable patient-side line or a reusable drainage line, and at least one of (i) a patient-side line connector supported by the housing, configured to receive the reusable patient-side line for performing a disinfection sequence, or (ii) a drainage line connector supported by the housing, configured to receive the reusable drainage line for performing a disinfection sequence.
[0045] In a thirteenth aspect of the present disclosure, which can be combined with any other aspect or part thereof, the reusable patient-side line is a double-lumen patient-side line.
[0046] In a 14th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a disposable filter set configured to interface between the reusable patient-side line and the patient transport set, the disposable filter set providing a final stage of PD fluid filtration before delivery to the patient, the final stage of PD fluid filtration being sterile filtration as required.
[0047] In a 15th aspect of the present disclosure, which can be combined with any other aspect or part thereof, (i) the reusable patient-side line forms part of a disinfection loop for a disinfection sequence when inserted into the patient-side line connector, or (ii) the reusable patient-side line is coated with an anti-adhesion coating or a smoothing coating.
[0048] In a 16th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the disinfection loop further comprises at least one of the following: (i) a first fluid line leading from the at least one reusable PD fluid line to the reusable heater body; (ii) a second fluid line leading from the reusable heater body to the reusable pump body; or (iii) a third fluid line leading from the reusable pump body to the reusable patient-side line.
[0049] In a 17th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one spool located within the housing, the at least one spool configured to automatically retract at least one of the following: (i) the patient-side line when the reusable patient-side line is connected to the patient-side line connector, or (ii) the drainage line when the reusable drainage line is connected to the drainage line connector.
[0050] In an 18th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a double-lubricated connector, the connector enabling the formation of a disinfection loop together with an associated line detached from the connector, the connector optionally being a drain line connector.
[0051] In a 19th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a source of flushing fluid and at least one flushing flow line that transmits the flushing fluid from the source to the dialysate pump, wherein the source of flushing fluid comprises a mechanism for heating the PD fluid to form steam or water vapor and a condenser for condensing the steam or water vapor into the flushing fluid.
[0052] In a 20th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one of a flow switch or pressure sensor positioned between the dialysate pump and the at least one reusable PD fluid line, and the control unit is configured to use at least one output from the at least one flow switch or pressure sensor to detect whether a PD fluid container is empty or non-flowing, having fluid communication with one of the at least one reusable PD fluid lines.
[0053] In a 21st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is further configured to use the output from the pressure sensor when measuring the amount of dialysis fluid delivered by the dialysis fluid pump.
[0054] In a 22nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing; a dialysate pump having a reusable pump body housed by the housing and receiving PD fluid for pumping; a dialysate inline heater having a reusable heater body housed by the housing and receiving PD fluid for heating; a reusable patient-side line extending from the housing; a patient-side line connector supported by the housing and configured to receive the patient-side line for performing a disinfection sequence; and a control unit configured to perform a disinfection sequence after a PD procedure, wherein the reusable patient-side line is connected to the patient-side line connector and the dialysate pump and the dialysate inline heater are activated during the disinfection sequence.
[0055] In a 23rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to (i) cause the dialysate inline heater to heat the PD fluid to at least 70°C, and (ii) recirculate the heated PD fluid to the dialysate pump during the disinfection sequence.
[0056] In a 24th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a disposable filter set configured to interface between the reusable patient-side line and the patient transport set, the disposable patient filter set providing at least one of the following: (i) a final stage of PD fluid filtration, which is sterile filtration as needed, before delivery to the patient, or (ii) a final stage of air removal from the PD fluid, before delivery to the patient.
[0057] In a 25th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the disposable filter set comprises a final stage filter arranged along a first disposable line and a second disposable line operating in parallel with the first disposable line.
[0058] In a 26th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the reusable patient-side line is a double-lubricated patient-side line comprising a first lumen that is in fluid communication with the first disposable line and a second lumen that is in fluid communication with the second disposable line.
[0059] In a 27th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a source of flushing fluid and at least one flushing flow line that transmits the flushing fluid from the source to the dialysate pump.
[0060] In a 28th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD comprises a leak detection sensor and a leak detection pan located at the bottom of the housing, the leak detection pan being configured to collect leaked PD fluid at a location detectable by the leak detection sensor.
[0061] In a 29th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing, a dialysate pump or flushing pump housed by the housing, a dialysate heater housed by the housing, at least one reusable PD line extending from the housing, at least one disinfection connector supported by the housing and configured to accept one of the at least one reusable PD line, a purification cartridge, and a control unit configured to (i) perform a disinfection sequence after a PD procedure, and (ii) perform a water purification sequence before or after the disinfection sequence, wherein in the disinfection sequence, each of the at least one reusable PD line is connected to one of the at least one disinfection connector, the dialysate pump pumps water heated by the dialysate heater during the disinfection sequence, and in the water purification sequence, the dialysate pump or the flushing pump pumps disinfectant water through the purification cartridge for use in a subsequent disinfection sequence.
[0062] In a 30th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the dialysate pump comprises a reusable pump body that receives PD fluid and water for pumping.
[0063] In a 31st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the dialysate heater is an inline heater comprising a reusable heater body that accepts PD fluid and water for heating.
[0064] In a 32nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a water tank for holding disinfectant water for the disinfection sequence.
[0065] In a 33rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one level sensor positioned and arranged to detect the liquid level in the water tank, the at least one level sensor providing an output to the control unit, the control unit configured to use the output to monitor the liquid level of disinfectant water in the water tank.
[0066] In a 34th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the purification cartridge is an adsorbent cartridge that holds at least activated carbon.
[0067] In a 35th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the water purification sequence is configured to pump disinfectant water, which has been used at least once for disinfection, through the purification cartridge for use in a later disinfection sequence.
[0068] In a 36th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing, a dialysate pump or flushing pump housed by the housing, a dialysate heater housed by the housing, a reusable patient-side line extending from the housing, a patient-side line connector supported by the housing and configured to receive the patient-side line for performing a disinfection sequence, a purification cartridge, and a control unit configured to (i) perform a disinfection sequence after a PD procedure, and (ii) perform a water purification sequence before or after the disinfection sequence, wherein in the disinfection sequence, the reusable patient-side line is connected to the patient-side line connector, the dialysate pump pumps water heated by the dialysate heater during the disinfection sequence, and in the water purification sequence, the dialysate pump or flushing pump pumps disinfectant water through the purification cartridge for use in a subsequent disinfection sequence.
[0069] In a 37th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a disposable filter set configured to interface between the reusable patient-side line and the patient transport set, the disposable filter set providing a final stage of PD fluid filtration before delivery to the patient.
[0070] In a 38th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the reusable patient-side line is a single lumen, and the disposable filter set comprises a check valve directed to force fresh dialysate through the sterile-grade filter of the disposable filter set.
[0071] In a 39th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one spool located within the housing, the at least one spool configured to automatically retract (i) a reusable patient-side line when the reusable patient-side line is connected to the patient-side line connector, or (ii) a reusable drainage line when the reusable drainage line is connected to the drainage line connector.
[0072] In a forty-th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing; a dialysate pump housed by the housing; a double-lumen patient-side line extending from the housing; a filter set comprising a filter membrane, a first line, and a second line parallel to the first line, wherein the filter membrane is positioned and arranged to filter fresh PD fluid entering from the first line, the first line is in fluid communication with the first lumen of the double-lumen patient-side line, and the second line is in fluid communication with the second lumen of the double-lumen patient-side line; a pressure sensor disposed within the housing and positioned to detect a static or substantially static PD fluid pressure in the second lumen while fresh PD fluid is being pumped through the first lumen and the filter membrane; and a control unit configured to use the detected static or substantially static PD fluid pressure in a pressure control routine for the dialysate pump.
[0073] In a forty-first aspect of the present disclosure, which can be combined with any other aspect or part thereof, the filter membrane is vented to capture air from the PD liquid and release the captured air into the atmosphere.
[0074] In a 42nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the pressure sensor is a first pressure sensor comprising a second safety pressure sensor positioned to detect a static or substantially static PD fluid pressure in the second lumen while fresh PD fluid is being pumped through the first lumen and the filter membrane.
[0075] In a 43rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the pressure sensor is a first pressure sensor comprising a second pressure sensor positioned to detect the positive pressure of the PD fluid before it enters the first lumen of the patient-side line of the double lumen, and the control unit is configured to use the pressure detected from the second pressure sensor in a pressure control routine for the dialysate pump.
[0076] In a 44th aspect of the present disclosure, which may be combined with any other aspect or part thereof, the second pressure sensor is further used to detect a static or substantially static negative pressure of PD fluid in the first lumen while the used PD fluid is being drawn through the second lumen of the patient-side line of the double lumen.
[0077] In a 45th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to use the detected static or substantially static negative pressure of the PD fluid in the pressure control routine for the dialysate pump.
[0078] In a 46th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the first pressure sensor is further used to detect the negative pressure of the used PD fluid entering the housing from the second lumen of the patient-side line of the double lumen.
[0079] In a 47th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the first and second lines of the filter set converge at a position for fluid communication with the patient's catheter, the static or substantially static PD fluid pressure extends from the position through the second line of the filter set and the second lumen of the patient-side line of the double lumen to at least one closed valve in the housing, and the pressure sensor is located between the at least one closed valve and the second lumen of the patient-side line of the double lumen.
[0080] In a 48th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the first and second lines of the filter set converge at a position for fluid communication with the patient's catheter, and the static or substantially static PD fluid pressure extends from that position through the first line of the filter set and the first lumen of the patient-side line of the double lumen to at least one closed valve in the housing.
[0081] In a 49th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing and a dialysate pump having a reusable pump body housed by the housing and receiving PD fluid for pumping, the dialysate pump having at least one flushing flow port; a dialysate heater for heating PD fluid; a container configured to receive and hold PD fluid; a condenser in fluid communication with the container; a chamber in fluid communication with the condenser; at least one flushing flow line extending from the chamber to the at least one flushing flow port; and a control unit programmed to cause the dialysate heater to heat the PD fluid in the container to form steam or water vapor, the steam or water vapor being condensed into distilled water in the condenser, the distilled water being collected in the chamber and supplied from the chamber to the at least one flushing flow port via the at least one flushing flow line.
[0082] In a 50th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the dialysate heater is an in-line dialysate heater comprising a reusable heater body housed by the housing and receiving PD fluid for heating.
[0083] In a 51st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the container comprises an air trap that can operate with at least one level sensor that outputs to the control unit.
[0084] In a 52nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to ensure that the at least one level sensor detects the PD fluid in the air trap before the dialysate heater heats the PD fluid.
[0085] In a 53rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser comprises a fan and a fluid transport structure for forcing steam or water vapor air to remain in the airflow region of the fan.
[0086] In a 54th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser comprises a thermoelectric cooler configured to condense steam or water vapor in a condensation path.
[0087] In a 55th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condensation path extends through the cooling side of the thermoelectric cooler or is in thermal communication with the cooling side of the thermoelectric cooler.
[0088] In a 56th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a fan positioned and arranged to blow air toward the heating side of the thermoelectric cooler.
[0089] In a 57th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a return line from the chamber, the return line allowing excess distilled water to return to the container.
[0090] In a 58th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the return line extends to a vapor line extending from the vessel to the condenser.
[0091] In a 59th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the return line extends to the container.
[0092] In a 60th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a flow limiter positioned along the return line, the flow limiter initially restricting the flow of distilled water through the flow limiter until at least the chamber is filled.
[0093] In a 61st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser comprises a thermoelectric cooler having a heating side and a cooling side, wherein the heating side of the thermoelectric cooler is positioned to further heat the PD liquid and the cooling side to condense vapor or water vapor.
[0094] In a 62nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the at least one flushing flow line is positioned and arranged to allow distilled water to statically come into contact with a portion of the dialysate pump that requires lubrication, via the at least one flushing flow port.
[0095] In a 63rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a small pump positioned and arranged to pump distilled water through the at least one flushing flow line and the at least one flushing flow port.
[0096] In a 64th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a steam valve positioned between the container and the condenser.
[0097] In a 65th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to keep the steam valve closed during treatment and priming.
[0098] In a 66th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to open the vapor valve before the dialysate heater heats the PD liquid in the container to form vapor, the opened vapor valve allowing residual distilled water to flow from the chamber into the container.
[0099] In a 67th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the control unit is configured to cause the dialysate heater to heat the PD fluid at least at the end of a disinfection sequence for disinfecting the reusable pump body of the dialysate pump.
[0100] In a 68th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the container is provided in at least one of the condenser and the chamber.
[0101] In a 69th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing and a dialysate pump comprising a reusable pump body housed by the housing and receiving PD fluid for pumping, the dialysate pump having at least one flushing flow port; a dialysate heater for heating the PD fluid; a container comprising a primary chamber, a condenser, and a water chamber configured to receive and hold the PD fluid; at least one flushing flow line extending from the water chamber to the at least one flushing flow port; and a control unit programmed to cause the dialysate heater to heat the PD fluid in the container to form steam or water vapor, the steam or water vapor being condensed into distilled water by the condenser, the distilled water being collected in the water chamber and supplied from the water chamber to the at least one flushing flow port via the at least one flushing flow line.
[0102] In a 70th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser comprises a thermoelectric cooler positioned and arranged to condense steam or water vapor.
[0103] In a 71st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser is positioned and arranged at a height above the water chamber when in use.
[0104] In a 72nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the condenser is inclined in use so that condensed water flows along the condenser by gravity.
[0105] In a 73rd aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing, a dialysate pump housed by the housing, a double-lubricated patient-side line extending from the housing, and a filter set comprising a filter membrane, a first line, and a second line parallel to the first line, wherein the filter membrane is positioned and arranged to filter fresh PD fluid entering from the first line, the first line is in fluid communication with the first lumen of the double-lubricated patient-side line, and the second line is in fluid communication with the double-lubricated patient-side line The device comprises a filter set in fluid communication with a second lumen of the first lumen, a pressure sensor positioned within the housing to detect the static or substantially static positive pressure of the PD fluid in the second lumen while fresh PD fluid is being pumped through the first lumen and the filter membrane, and at least one closed valve located within the housing, wherein the static or substantially static positive pressure of the PD fluid extends to the at least one closed valve, and the pressure sensor is positioned between the at least one closed valve and the second lumen of the patient-side line of the double lumen.
[0106] In a 74th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the first and second lines of the filter set converge at a position for fluid communication with the patient's catheter, and the positive pressure of the static or substantially static PD fluid extends from that position through the second line of the filter set and the second lumen of the patient-side line of the double lumen to the at least one closed valve.
[0107] In a 75th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the pressure sensor is a first pressure sensor, the at least one closed valve is a first at least one valve that is closed while fresh PD fluid is being pumped by the dialysate pump, and the second pressure sensor is positioned within the housing to detect a static or substantially static negative pressure of PD fluid in the first lumen while used PD fluid is being pumped through the second lumen.
[0108] In a 76th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises at least one second valve which is closed while the used PD fluid is being pumped, and the second pressure sensor is located between the at least one second closed valve and the first lumen of the patient-side line of the double lumen.
[0109] In a 77th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD system comprises a control unit, wherein at least one of the detected static or substantially static positive pressure of the PD fluid or the detected static or substantially static negative pressure of the PD fluid is used as feedback in a pressure control routine performed by the control unit for the dialysate pump.
[0110] In a 78th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the first and second lines of the filter set converge at a position for fluid communication with the patient's catheter, and the static or substantially static negative pressure extends from the position through the first line of the filter set and the first lumen of the patient-side line of the double lumen to the second or at least one closed valve.
[0111] In a 79th aspect of the present disclosure, which can be combined with any other aspect or part thereof, a peritoneal dialysis ("PD") method includes the steps of: providing a double-lumen patient-side line having a first lumen and a second lumen; providing a filter set comprising a filter membrane, a first line, and a second line parallel to the first line, wherein the filter membrane is positioned and arranged to filter fresh PD fluid entering from the first line, the first line is in fluid communication with the first lumen of the double-lumen patient-side line, and the second line is in fluid communication with the second lumen of the double-lumen patient-side line; positioning a pressure sensor to detect a static or substantially static positive pressure of PD fluid in the second lumen while fresh PD fluid is being pumped through the first lumen and the filter membrane; and configuring a control unit to use the detected static or substantially static positive pressure of PD fluid in a pressure control routine for adjusting the pressure of fresh dialysate.
[0112] In an 80th aspect of the present disclosure, which can be combined with any other aspect or part thereof, the step of positioning the pressure sensor includes positioning the pressure sensor between the second lumen of the patient-side line of the double lumen and at least one closed valve.
[0113] In an 81st aspect of the present disclosure, which can be combined with any other aspect or part thereof, the pressure sensor is a first pressure sensor, and the step of positioning a second pressure sensor to detect a static or substantially static negative pressure of PD fluid in the first lumen while the used PD fluid is being pumped through the second lumen of the patient-side line of the double lumen.
[0114] In an 82nd aspect of the present disclosure, which can be combined with any other aspect or part thereof, the PD method further includes the step of configuring the control unit to use the detected static or substantially static negative pressure of the PD fluid in the pressure control routine for adjusting the pressure of the used dialysate.
[0115] In an 83rd aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, a peritoneal dialysis ("PD") system comprises a housing, a dialysate pump housed by the housing, a patient-side line extending from the housing, and a hose reel located within the housing, the hose reel being configured to wind the patient-side line when disconnected from the patient.
[0116] In an 84th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the patient-side line is a double-lube patient-side line, and the double-lube patient-side line is wrapped around the hose reel during a disinfection sequence for disinfecting the double-lube patient-side line and the dialysate pump.
[0117] In an 85th aspect of the present disclosure, which may be used in conjunction with any other aspect or part thereof, the PD system comprises a patient-side line connector having a lumen, the lumen enabling communication of disinfectant between the first lumen and the second lumen of the double-lumen patient-side line when the patient-side line connector is connected to the double-lumen patient-side line.
[0118] In an 86th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the patient-side line connector is retracted into a docking port provided in the housing when the double-lubricated patient-side line is wound onto the hose reel.
[0119] In an 87th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the PD system comprises a cavity provided in the housing for housing the patient-side line connector when it is removed from the double-lubricated patient-side line.
[0120] In an 88th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the PD system is configured to perform a disinfection sequence, and the hose reel comprises at least one rotary fluid path that, together with the dialysate pump and the patient-side line, forms part of a disinfection circuit.
[0121] In the 89th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the at least one rotary fluid path is in fluid communication with at least one fixed fresh PD fluid line or fixed used PD fluid line via at least one rotary seal, the at least one fixed fresh PD fluid line or fixed used PD fluid line is located within the housing.
[0122] In a 90th aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the patient-side line, when extending from the housing, is held in place by a releasable lock.
[0123] In a 91st aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the PD system includes an actuator configured to be operably operated by a patient or user to release the unlockable lock, thereby allowing the hose reel to wind the patient-side line within the housing.
[0124] In a 92nd aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the actuator is an instantaneous actuator configured such that the patient-side line is wound by the hose reel only when activated by the patient or user.
[0125] In a 93rd aspect of the present disclosure, which can be used in conjunction with any other aspect or part thereof, the hose reel comprises a rotary connector, and one end of the patient-side line is connected to the rotary connector.
[0126] In the 94th aspect of this disclosure, which can be used in conjunction with any other aspect or part thereof, any feature, function, and alternative form described in relation to one or more of the drawings from Figures 1 to 34 can be combined with any feature, function, and alternative form described in relation to any other drawing from Figures 1 to 34.
[0127] Therefore, the advantage of this disclosure is to provide an automated peritoneal dialysis ("APD") cycler that reuses a number of components that could be disposable.
[0128] Another advantage of the present disclosure is to provide a cycler having a fluid handling component that directly accepts peritoneal dialysate ("APD") without the need to operate using disposable items such as tubes or flexible sheets.
[0129] A further advantage of this disclosure is the provision of a cycler that uses unused treatment solution ("APD") during disinfection.
[0130] Another advantage of this disclosure is that it provides an accurate APD cycler in terms of volumetric measurement.
[0131] Another advantage of this disclosure is to provide an APD cycler having hydraulically controlled pumping to and from the patient.
[0132] Another advantage of this disclosure is that it provides a relatively quiet APD cycler.
[0133] A further advantage of this disclosure is that it provides a relatively simple disposable set.
[0134] Furthermore, an advantage of this disclosure is the provision of a double-lumen patient-side line that allows for infusion to be performed to the patient with little to no reverse delivery of used PD solution back into the patient's body initially, and allows for drainage from the patient with little to no delivery of fresh PD solution to the drain initially.
[0135] Further features and advantages are described in the following detailed description and drawings, and will become apparent from those detailed descriptions and drawings. The features and advantages described herein are not exhaustive, and in particular, many further features and advantages will become apparent to those skilled in the art upon examination of the drawings and description. Furthermore, no particular embodiment is required to possess all of the advantages listed herein, and it is clearly intended that individual advantageous embodiments be claimed separately. In addition, it should be noted that the language used herein has been selected primarily for readability and explanatory purposes and is not intended to limit the scope of the subject matter of the invention. This specification also provides, for example, the following: (Item 1) A peritoneal dialysis ("PD") system, Housing and The dialysis fluid pump housed in the aforementioned housing, A patient-side line extending from the aforementioned housing, A hose reel and Equipped with, The PD system is configured such that the hose reel winds the patient-side line when disconnected from the patient. (Item 2) The PD system according to item 1, wherein the patient-side line is a double-lube patient-side line, and the double-lube patient-side line is wrapped around the hose reel during a disinfection sequence for disinfecting the double-lube patient-side line and the dialysate pump. (Item 3) The PD system according to item 2, comprising a patient-side line connector including a lumen, wherein the lumen allows for communication of disinfectant between the first lumen and the second lumen of the double-lumen patient-side line when the patient-side line connector is connected to the double-lumen patient-side line. (Item 4) The PD system according to item 3, wherein the patient-side line connector is drawn into a docking port provided by the housing when the double-lubricated patient-side line is wound by the hose reel. (Item 5) The PD system according to item 3, comprising a cavity provided by the housing for housing the patient-side line connector when the double-lubricated patient-side line is removed from the patient-side line. (Item 6) The PD system according to item 1, configured to perform a disinfection sequence, wherein the hose reel includes at least one rotary fluid path that, together with the dialysate pump and the patient-side line, forms part of a disinfection circuit. (Item 7) The PD system according to item 6, wherein the at least one rotary fluid path is in fluid communication with at least one fixed line for fresh PD fluid or a fixed line for used PD fluid via at least one rotary seal. (Item 8) The PD system according to item 6, wherein the at least one fixed line for fresh PD fluid or a fixed line for used PD fluid is located within the housing. (Item 9) The PD system according to item 1, wherein the patient-side line, when extended from the housing, is held in place by a releaseable lock. (Item 10) The PD system according to item 9, comprising an actuator configured to be operable by the patient or user to release the unlockable lock, thereby allowing the hose reel to wind the patient-side line within the housing. (Item 11) The PD system according to item 10, wherein the actuator is an instantaneous actuator configured such that the patient-side line is wound by the hose reel only when the actuator is activated by the patient or user. (Item 12) The PD system according to item 1, wherein the hose reel includes a rotary connector, and one end of the patient-side line is connected to the rotary connector. (Item 13) The PD system according to item 1, comprising a source of flushing fluid and at least one flushing flow line that transmits the flushing fluid from the source to the dialysate pump, wherein the source of flushing fluid includes a mechanism for heating the PD fluid to form steam or water vapor and a condenser for condensing the steam or water vapor into the flushing fluid. (Item 14) A peritoneal dialysis ("PD") system, Housing and A dialysate pump comprising a reusable pump body housed in the aforementioned housing and receiving PD fluid for pumping, wherein the dialysate pump comprises at least one flushing flow port, A dialysate heater for heating the aforementioned PD solution, A container configured to receive and hold the PD liquid, A condenser that is in fluid communication with the aforementioned container, A chamber that is in fluid communication with the condenser, At least one flushing flow line extending from the chamber to the at least one flushing flow port, The dialysis fluid heater is controlled by a control unit programmed to heat the PD solution in the container to form steam or water vapor. Equipped with, A PD system in which the steam or water vapor is condensed into distilled water in the condenser, the distilled water is collected in the chamber and supplied from the chamber to the at least one flushing flow port via the at least one flushing flow line. (Item 15) The PD system according to item 14, wherein the dialysate heater is an inline dialysate heater comprising a reusable heater body housed in the housing and receiving PD fluid for heating. (Item 16) The PD system according to item 14, wherein the container includes an air trap that can operate together with at least one level sensor that outputs to the control unit. (Item 17) The PD system according to item 16, wherein the control unit is configured to ensure that at least one level sensor detects the PD fluid in the air trap before the dialysis fluid heater heats the PD fluid. (Item 18) The PD system according to item 14, wherein the condenser includes a fan and a fluid transport structure that forces steam or water vapor air to remain in the airflow region of the fan. (Item 19) The PD system according to item 14, wherein the condenser includes a thermoelectric cooler configured to condense steam or water vapor in a condensation path. (Item 20) The PD system according to item 19, wherein the condensation path extends through the cooling side of the thermoelectric cooler or is in thermal communication with the cooling side of the thermoelectric cooler. (Item 21) The PD system according to item 19, comprising a fan positioned and arranged to blow air toward the heating side of the thermoelectric cooler. (Item 22) The PD system according to item 14, comprising a return line from the chamber, the return line enabling excess distilled water to return to the container. (Item 23) The PD system according to item 22, wherein the return line extends from the vessel to the condenser to the steam line. (Item 24) The PD system according to item 22, wherein the return line extends to the container. (Item 25) The PD system according to item 22, comprising a flow limiter positioned along the return line, wherein the flow limiter initially restricts the flow of distilled water through the flow limiter until at least the chamber is filled. (Item 26) The PD system according to item 14, wherein the condenser includes a thermoelectric cooler having a heating side and a cooling side, the thermoelectric cooler being positioned such that the heating side further heats the PD liquid and the cooling side condenses vapor or water vapor. (Item 27) The PD system according to item 14, wherein the at least one flushing flow line is positioned and arranged to allow distilled water to statically come into contact with a part of the dialysate pump that requires lubrication, via the at least one flushing flow port. (Item 28) The PD system according to item 14, comprising a small pump positioned and arranged to pump distilled water through the at least one flushing flow line and the at least one flushing flow port. (Item 29) The PD system according to item 14, comprising a steam valve positioned between the container and the condenser. (Item 30) The PD system according to item 29, wherein the control unit is configured to keep the steam valve closed during treatment and priming. (Item 31) The PD system according to item 29, wherein the control unit is configured to open the steam valve before the dialysate heater heats the PD liquid in the container to form steam, and the opened steam valve allows residual distilled water to flow from the chamber into the container. (Item 32) The PD system according to item 14, wherein the control unit is configured to cause the PD solution to be heated in the dialysis heater at least at the end of a disinfection sequence for disinfecting the reusable pump body of the dialysis solution pump. (Item 33) The PD system according to item 14, wherein at least one of the condenser and the chamber is provided as the vessel. (Item 34) A peritoneal dialysis ("PD") system, Housing and A dialysate pump comprising a reusable pump body housed in the aforementioned housing and receiving PD fluid for pumping, wherein the dialysate pump comprises at least one flushing flow port, A dialysate heater for heating the PD solution, A container comprising a primary chamber configured to receive and hold the PD liquid, wherein the container comprises a condenser and a water chamber, At least one flushing flow line extending from the water chamber to the at least one flushing flow port, The dialysis fluid heater is controlled by a control unit programmed to heat the PD solution in the container to form steam or water vapor. Equipped with, A PD system in which the steam or water vapor is condensed into distilled water by the condenser, the distilled water is collected in the water chamber and supplied from the water chamber to the at least one flushing flow port via the at least one flushing flow line. (Item 35) The PD system according to item 34, wherein the condenser includes a thermoelectric cooler positioned and arranged to condense the steam or water vapor. (Item 36) The PD system according to item 34, wherein the condenser is positioned and placed at a height above the water chamber when in use. (Item 37) The condenser is tilted during use so that the condensed water flows along the condenser by gravity, as described in item 34 of the PD system. [Brief explanation of the drawing]
[0136] [Figure 1] Figure 1 is a perspective view of one embodiment of the automated peritoneal dialysis ("APD") cycler and associated system of the present disclosure.
[0137] [Figure 2] Figure 2 is a schematic diagram showing a first major embodiment of the flow mode of the APD cycler and associated system of this disclosure.
[0138] [Figure 3] Figure 3 is a cross-sectional view and an end view of one embodiment of the drainage line connector of the present disclosure.
[0139] [Figure 4] Figure 4 is a schematic diagram showing one embodiment of a disposable filter set for connecting to a reusable patient-side line of the present disclosure.
[0140] [Figure 5] Figure 5 is a schematic diagram showing the priming sequence of a first major embodiment of the APD cycler and associated system of this disclosure.
[0141] [Figure 6] Figure 6 is a schematic diagram showing the drainage sequence from a patient in a first major embodiment of the APD cycler and associated system of this disclosure.
[0142] [Figure 7] Figure 7 is a schematic diagram showing the injection sequence of a first major embodiment of the APD cycler and associated system of the present disclosure.
[0143] [Figure 8] Figure 8 is a schematic diagram showing the final drainage sequence of a first major embodiment of the APD cycler and associated system of this disclosure.
[0144] [Figure 9] Figure 9 is a schematic diagram showing the disinfection sequence of a first major embodiment of the APD cycler and associated system of this disclosure.
[0145] [Figure 10] Figure 10 is a schematic diagram showing the priming sequence of a second major embodiment of the APD cycler and associated system of the present disclosure.
[0146] [Figure 11] Figure 11 is a schematic diagram showing the drainage sequence from a patient in a second primary embodiment of the APD cycler and associated system of this disclosure.
[0147] [Figure 12] Figure 12 is a schematic diagram showing the injection sequence of a second major embodiment of the APD cycler and associated system of the present disclosure.
[0148] [Figure 13] Figure 13 is a schematic diagram showing the final drainage sequence of a second major embodiment of the APD cycler and associated system of this disclosure.
[0149] [Figure 14] Figure 14 is a schematic diagram showing the disinfection sequence of a second major embodiment of the APD cycler and associated system of this disclosure.
[0150] [Figure 15] Figure 15 is a schematic diagram showing the first portion of an example priming sequence of a third major embodiment of the APD cycler and associated system of the present disclosure.
[0151] [Figure 16] Figure 16 is a schematic diagram showing a second portion of an example priming sequence of a third major embodiment of the APD cycler and associated system of the present disclosure.
[0152] [Figure 17] Figure 17 is a schematic diagram showing a third portion of an example priming sequence of a third major embodiment of the APD cycler and associated system of the present disclosure.
[0153] [Figure 18] Figure 18 is a schematic diagram showing a fourth portion of an example priming sequence of a third major embodiment of the APD cycler and associated system of the present disclosure.
[0154] [Figure 19] Figure 19 is a schematic diagram showing an example of a patient infusion sequence of a third major embodiment of the APD cycler and associated system of this disclosure.
[0155] [Figure 20] Figure 20 is a schematic diagram showing an example of a patient drainage sequence in a third major embodiment of the APD cycler and associated system of this disclosure.
[0156] [Figure 21] Figure 21 is a schematic diagram showing an example of a disinfection sequence for a third major embodiment of the APD cycler and associated system of this disclosure.
[0157] [Figure 22] Figure 22 is a schematic diagram showing an example of a patient infusion sequence of a fourth major embodiment of the APD cycler and associated system of this disclosure.
[0158] [Figure 23] Figure 23 is a schematic diagram showing an example of a patient drainage sequence in a fourth major embodiment of the APD cycler and associated system of this disclosure.
[0159] [Figure 24] Figure 24 is a schematic diagram showing an example of a disinfection sequence for a fourth major embodiment of the APD cycler and associated system of this disclosure.
[0160] [Figure 25] Figure 25 is a schematic diagram showing another embodiment of a disposable filter set for connecting to a reusable patient-side line of the present disclosure.
[0161] [Figure 26] Figure 26 is a schematic diagram showing a possible example of a PD fluid flow path in a reusable patient-side line hose reel of the present disclosure.
[0162] [Figure 27] Figure 27 is a cross-sectional perspective view showing a frontal embodiment of the APD cycler housing of the present disclosure, showing the end of a reusable patient-side line drawn into the housing via a hose reel.
[0163] [Figure 28] Figure 28 is a schematic diagram of another APD cycler and system of this disclosure, which uses water (or other disinfectant) for disinfection and the disinfectant water is purified for subsequent disinfection. [Figure 29] Figure 29 is a schematic diagram of another APD cycler and system of this disclosure, which uses water (or other disinfectant) for disinfection and the disinfectant water is purified for subsequent disinfection.
[0164] [Figure 30]Figure 30 is a cross-sectional elevation view of one embodiment of a piston pump configured to receive a flushing flow and usable with any of the systems described herein.
[0165] [Figure 31] Figure 31 is a schematic diagram of another APD cycler and system in which water is used for disinfection, and the disinfectant water is purified for subsequent disinfection and used for the flushing flow of the PD fluid pump. [Figure 32] Figure 32 is a schematic diagram of another APD cycler and system in which water is used for disinfection, and the disinfectant water is purified for subsequent disinfection and used for the flushing flow of the PD fluid pump.
[0166] [Figure 33] Figure 33 is a schematic diagram of one embodiment of the water generation subsystem of the present disclosure, which is often used to generate flushing water for lubricating the dialysate pump of the present disclosure.
[0167] [Figure 34] Figure 34 is a cross-sectional elevation view of another combination of an air trap and a distilled water collection chamber, which can be used with the water generation subsystem shown in Figure 33. [Modes for carrying out the invention]
[0168] Detailed explanation PD liquid disinfection Referring here to the drawings, particularly Figure 1, the automated peritoneal dialysis ("APD") systems 10a, 10b, 10c, and 210 of the present disclosure and related methods comprise an APD machine or cycler 20. The systems 10a, 10b, 10c, and 210 and the cycler 20 attempt to minimize disposable items and instead provide most of their fluid transport parts as reusable components that are disinfected after treatment. The fluid lines within the machine or cycler are reused. In particular, Figure 1 shows that the cycler 20 comprises a housing 22 from which reusable PD fluid lines 24a-24c extend from an opening 26 defined or provided by the housing. The opening 26 may be fitted with a grommet or otherwise sealed to prevent dust, fluid, and other substances from entering the housing 22 from the environment. Figure 1 further shows that the reusable patient-side line 28 also extends from the housing 22 of the cycler 20, for example, through a sealed opening 26 fitted with a grommet. As will be described in detail below, the reusable patient-side line 28, which is generally longer than the reusable PD fluid lines 24a-24c, may be wound or retracted within the housing by a spool or hose reel 110 when not connected to the patient for treatment. The reusable patient-side line 28 may also be coated with an anti-fouling coating or a smoothing coating to prevent dirt from accumulating on the patient-side line over time.
[0169] When not connected to a PD fluid container or bag, the reusable PD fluid lines 24a-24c and patient-side line 28 can be connected to dedicated connectors supported and provided by the housing. The reusable PD fluid lines and patient-side line may extend from the front of the housing and be connected to connectors similarly provided on the front of the housing to allow easy access to the PD fluid lines and patient-side line. In the illustrated embodiment, the ends 24d of the reusable PD fluid lines 24a-24c are releasably liquid-tightly coupled to disinfection connectors 30a-30c (see Figure 2) provided on the housing 22. The ends 28d of the reusable patient-side line 28 are releasably liquid-tightly coupled to a patient-side line connector 32a (see Figure 2) provided on the housing 22. The disinfection connectors 30a-30c and patient-side line connector 32a are configured to automatically close or shut when the reusable PD fluid lines 24a-24c and reusable patient-side line 28 are not connected to the connectors, respectively.
[0170] Figure 1 further shows that the housing 22 includes a drain line connector 34 which can be removably covered by a movable, for example, rotatable or sliding cover 34c. The drain line connector 34 receives a disposable drain line 36 for treatment, which may extend to a drain container or drain bag or indoor drainpipe. In another embodiment, the drain line 36 is reusable and connects to a disinfection loop as described herein.
[0171] Figure 1 further illustrates that disposable PD fluid containers or solution containers or bags 38a-38c are provided for connection to each of the reusable PD fluid lines 24a-24c. The ends 24d of the reusable PD fluid lines 24a-24c may be color-coded and / or keyed to match the colored or keyed connectors of the dedicated PD fluid containers or bags 38a-38c. The containers or bags may contain final bags of PD fluid with different formulations, such as dialysis solutions with different dextrose or glucose values, and / or icodextrin, for example, 1.36% glucose dialysis solution, 2.27% glucose dialysis solution, 3.86% glucose dialysis solution, etc.
[0172] It should be understood that any number of reusable PD fluid lines and PD fluid containers or bags may be provided, such as a single reusable PD fluid line and PD fluid container, or more than one, such as two, three, or four reusable PD fluid lines and PD fluid containers. In yet another embodiment, the PD fluid containers or bags 38a-38c are replaced by an online PD fluid generating source that connects to and fluidizes a single reusable PD fluid line. In yet another embodiment, any of the systems described herein are configured to operate with either pre-filled PD fluid containers or bags 38a-38c or an online PD fluid generating source. For example, the systems described herein may have additional ports so that a PD machine or cycler can be docked or connected to an online PD fluid generating device. In this case, the PD machine or cycler may be detached or disconnected from the online PD fluid generating source if the patient wishes to move or if the online PD fluid generating source is under repair. The patient is provided with a stock bag of PD fluid and treatment can still be performed.
[0173] In addition to the disposable drainage line 36 (and associated containers, if used) and disposable PD fluid containers or bags 38a-38c, in one embodiment, the only other disposable component of the systems 10a-10d may be a disposable filter set 40 (see Figure 4; system 210 also includes a disposable purification cartridge 240) that is detachably connected by the patient at the end 28d of a reusable patient-side line 28 to provide the final stage of PD fluid filtration before delivery to the patient. In one embodiment, the disposable filter set 40 is coupled between the end 28d of the reusable patient-side line 28 and the patient transport set, which leads to an indwelling PD catheter inserted into the patient.
[0174] The reusable PD fluid lines 24a-24c, the reusable patient-side line 28, the disinfection connectors 30a-30c, the patient-side line connector 32a, the drainage line connector 34, the drainage line 36, the PD fluid container or bag 38a-38c, and the patient-side line filter set 40 may all be made of one or more types of plastic, for example, polyvinyl chloride ("PVC"), or non-PVC materials such as polyethylene ("PE"), polyurethane ("PU"), polyetheretherketone ("PEEK"), or polycarbonate ("PC"). Some of the components, such as the disinfection connectors 30a-30c, may be made of, for example, good quality stainless steel or titanium. First Major Embodiment
[0175] Referring further to Figure 2, the cycler 20 of system 10a is illustrated to show an example of the interior of the housing 22. Figure 2 shows that reusable tubing 52a extends from each reusable PD fluid line 24a-24c to the dialysate inline heater 56 via PD fluid line valves 54a-54c, respectively. In one embodiment, each of the valves of the APD cycler, such as the PD fluid line valves 54a-54c, is an electrically operated valve having a reusable valve body, which either closes (e.g., when power is not supplied for fail-safe operation) or allows PD fluid to flow through the valve body (e.g., when power is supplied). The dialysate inline heater 56 is also electrically operated in one embodiment and is a resistance heater having a reusable heater body that receives PD fluid for treatment and disinfection heating, for example. In one embodiment, the inline heater 56 can heat the PD solution from room temperature or lower (e.g., if the PD solution is stored in a low-temperature environment) to body temperature, e.g., 37°C, at a flow rate of at least 200 ml / min (lower flow rates can also be achieved, e.g., for children or infants). To provide feedback for temperature control, a temperature sensor 58a is located adjacent to the heater 56, e.g., downstream of the heater. If necessary, a second temperature sensor (not shown) may be provided upstream of the heater 56 to allow the inflow temperature of the fresh PD solution to be taken into account for the heating algorithm or routine, i.e., to provide feedforward control to stabilize and accelerate the responsiveness of the overall heating control. The second sensor may further provide useful information for calculating the disinfectant dose value to be used during disinfection, e.g., the A0 value.
[0176] In the illustrated embodiment of Figure 2, a reusable tube 52b extends from the outlet of the dialysate inline heater 56 to the air trap 60. Reusable tubes within the housing of the cycler 20, such as reusable tubes 52a and 52b, may be made of metal, such as stainless steel, or plastic, such as polyvinyl chloride ("PVC"), or a non-PVC material such as polyethylene ("PE"), polyurethane ("PU"), polyetheretherketone ("PEEK"), or polycarbonate ("PC"). In one embodiment, one or more level sensors 62a and 62b are positioned adjacent to the air trap 60 so that a desired level or range of PD fluid is maintained within the air trap 60. If PD fluid needs to be poured into the air trap 60 as detected by level sensor 62b, the control unit 100 may close valves 54a, 54b, and 54c so that the pump 70 can draw pressure in the air trap 60 that is lower than atmospheric pressure. Subsequently, the pump 70 is stopped (and possibly the valve 54d is closed) to contain the pressure upstream of the air trap 60. Next, the control unit 100 opens one of the valves 54a, 54b, and 54c to allow fresh liquid to be drawn into the air trap 60 from one of the containers 38a-38c. Alternatively, the containers 38a-38c may be positioned above the air trap 60 so that the liquid can be poured in by gravity. Another alternative option for injecting fluid into the air trap 60 is for the control unit 100 to operate the pump 70 in reverse, with the air trap valve 54d and the vent valve 54e open and the supply valves 54a, 54b, and 54c closed, to draw PD fluid from the patient-side line 28 (if the procedure is in progress) or the drainage line 36.
[0177] While valve 54d is open to allow drainage from the air trap 60 as needed, as detected by level sensor 62a, the air trap 60 may be closed upstream by PD fluid line valves 54a-54c. A vent valve 54e is provided above the air trap 60 to allow air to be removed from the air trap during injection and to allow air to flow into the air trap during drainage. Although not shown, the vent valve 54e may be equipped with or operate with a vent filter, such as a hydrophobic filter, which prevents dialysis fluid leakage when the vent valve 54e is open and sterilizes and filters the air entering the air trap 60 to avoid contamination. The vent valve 54e may also be opened to allow air to flow into the fluid line, for example, to mix with the PD fluid for disinfection purposes.
[0178] A reusable tube 52c extends between the air trap valve 54d and the dialysate pump 70 located within the housing 22 of the cycler 20. The dialysate pump 70 has a reusable pump body that receives the PD fluid for pumping. That is, the pump 70 does not require the PD fluid to flow through disposable items such as tubes or cassettes. The reusable pump body of the pump 70 itself receives the PD fluid. The dialysate pump 70 is essentially a volumetric metering-accurate kind, and does not require a separate PD fluid volume measuring device such as a balance chamber or a device using the law of ideal gases. The dialysate pump 70 may be an electric piston or membrane pump (and possibly a gear or centrifugal pump). Apparatuses and methods for providing a flushing flow to the dialysate pump 70 are described herein. The dialysate pump 70 can be controlled to pump to and from the patient at or within the pressure limit by controlling the level of current to the PD fluid pump. The patient's positive pressure limit may be, for example, 1 to 5 psig (e.g., 2 psig (14 kPa)). The patient's negative pressure limit may be, for example, -1.0 psig to -3.0 psig (e.g., -1.3 psig (-9 kPa)). The pump 70 can also supply lower pressures as needed, for example, for infants or young children. In one embodiment, the dialysate pump 70 is bidirectional and continuous so that a single pump may be provided. Suitable pumps for the dialysate pump fluid 70 include piston pumps and other inherently precise pumps.
[0179] In the illustrated embodiment of Figure 2, the conductivity sensor 74 is positioned along a reusable line or tube 52d adjacent to the dialysate pump 70. The conductivity sensor 74 is used to detect the conductivity of fresh PD fluid to confirm that the PD fluid is of a predetermined type, for example, at a predetermined glucose or dextrose value. Alternatively or in addition, the conductivity sensor 74 may be used to detect the conductivity of fresh PD fluid to confirm that the PD fluid is properly mixed, for example, if an online PD fluid source is instead connected to one of the reusable PD fluid lines 24a-24c. Alternatively or in addition, the conductivity sensor 74 may be used to detect the conductivity of used PD fluid to assess the effectiveness of the procedure and / or look for patient diseases such as peritonitis. A temperature sensor 58b is positioned near the conductivity sensor 74 so that the conductivity readings from the conductivity sensor 74 can be temperature-compensated.
[0180] Figure 2 further shows that in one embodiment, parallel patient-side line valves 54f and 54g are positioned between the conductivity sensor 74 and the reusable patient-side line 28, along the reusable patient-side tubing or lines 52f and 52g, respectively. The parallel patient-side line infusion valve 54f allows fresh PD fluid to selectively flow through the fresh PD fluid lumen of the reusable double-lume patient-side line 28, and the parallel patient-side line drain valve 54g allows used PD fluid to selectively flow through the used PD fluid lumen of the reusable double-lume patient-side line 28. A first pressure sensor 78a is positioned close to the parallel patient-side line valve 54f (e.g., downstream of valve 54f) to allow monitoring and control of the positive infusion pressure of fresh PD fluid. A second pressure sensor 78b is positioned adjacent to the parallel patient-side line valve 54g (for example, upstream of valve 54g) to enable monitoring and control of the negative drainage pressure of the used PD fluid. The first pressure sensor 78a may also be used to measure the drainage pressure of the used PD fluid, for example, for redundancy and improved accuracy. The difference in drainage pressure measured by pressure sensor 78b compared to pressure sensor 78a will be described later.
[0181] As described above, the patient-side line connector 32a extends from the APD cycler housing and receives a reusable double-lumen patient-side line 28 during disinfection and normally when the patient is not being treated. A disinfection tube or line 52h is located within the housing 22 of the APD cycler 20 and extends from the patient-side line connector 32a to at least one disinfection connector, in this case to disinfection connectors 30a-30c. Disinfection line valves 54h1, 54h2 and 54h3 (valve 54h3 may be omitted in another embodiment) are located along the disinfection tube or line 52h to selectively open the disinfection line and perform the disinfection sequence.
[0182] As described above, in one embodiment, the drain line 36 is disposable and connected to a drain line connector 34 extending from the housing 22 of the APD cycler 20 during treatment. After treatment, the drain line 36 is removed and discarded. Referring now to Figure 3, the drain line connector 34 is shown in more detail. The drain line connector 34 may be made of either metal or plastic, for example, as described herein. The drain line connector 34 includes a drain line port 34a, such as a Luer port, which is releasably connected to the drain line 36. Figure 3 shows a rotatable or sliding cover 34c, as shown in Figure 1, covering the drain line port 34a. The rotatable or sliding cover 34c may be formed as part of the drain line connector 34, or it may be separate from the drain line connector 34 and instead attached to the housing 22 of the APD cycler.
[0183] As shown in Figures 2 and 3, the drain line connector 34 has two internal opposing ports 34b and 34d. Internal port 34b is configured in fluid communication with a reusable tube or line 52i, which has a drain line valve 54i and is in communication with a reusable tube or line 52c. Internal port 34d is configured in fluid communication with a reusable tube or line 52j, which is in fluid communication with a disinfection line valve 54h2 and a reusable disinfection tube or line 52h.
[0184] The side view and cross-sectional end view of Figure 3 show that the drain line connector 34 defines or provides a double-lubricated body 34e, which allows disinfectant flowing into port 34b to flow, for example, all the way through the inner lumen 34i to a rotatable or sliding cover 34c, where the disinfectant is returned through the outer lumen 34o to port 34d and exits from the drain line connector 34. This structure ensures that the entire inner surface of the drain line connector 34 is consistently in contact with and thereby properly disinfected throughout a timed disinfection sequence.
[0185] As can be seen in Figures 2 and 3, the reusable PD fluid lines 24a-24c, reusable line or tube 52a, reusable body of the dialysate inline heater 56, reusable line or tube 52b, air trap 60, reusable line or tube 52c, reusable pump body of the dialysate pump 70, reusable line or tube 52d with conductivity sensor 74, reusable tubes or lines 52f and 52g, reusable patient-side line 28, patient-side line connector 32a, drain line connector 34 with cap, reusable tubes or lines 52i and 52j, disinfection tube or line 52h and disinfection connectors 30a-30c, end 24d of the reusable PD fluid lines 24a-24c, and end 28d of the reusable patient-side line 28 together form a disinfection loop 50 (see Figure 9), which provides proper disinfection by allowing a disinfectant, such as heated used dialysate, to continuously contact all reusable inner surfaces through a timed disinfection sequence. Patient-side line filter set and IPP
[0186] As described above, in addition to the PD fluid containers or bags 38a-38c and the drainage line 36, another disposable item of system 10a is a small, disposable patient-side line filter set 40 connected between the reusable patient-side line 28 and the patient transfer set. Figure 4 shows the disposable patient-side line filter set 40 in more detail. The disposable patient-side line filter set 40 may be made of, for example, any of the polymer materials described herein. The disposable patient-side line filter set 40, like the reusable patient-side line 28, is in one embodiment a double line lumen and includes a connector 42 connected to the end of the reusable patient-side line 28. The connector 42 includes a fresh PD fluid lumen 42a communicating with the fresh PD fluid lumen 28a at the end of the reusable patient-side line 28. The connector 42 further includes a used PD fluid lumen 42b communicating with the used PD fluid lumen 28b at the end of the reusable patient-side line 28. The disposable patient-side line filter set 40 further comprises (i) a first or fresh disposable line 44a communicating with a lumen 28a for fresh PD fluid of a reusable double-lube patient-side line 28, and (ii) a second or waste disposable line 44b communicating with a lumen 28b for used PD fluid of the reusable double-lube patient-side line 28. A final-stage or sterile-grade filter membrane 46 is positioned within or along the first or fresh disposable line 44a to provide the final stage of PD fluid filtration before delivery to the patient. In one embodiment, the sterile-grade filter membrane 46 itself is sterilized. The PD filter membrane 46 may be, for example, a pass-through filter without a rejection line. The pore size of the sterile-grade filter membrane 46 may be, for example, 0.1 to 0.2 microns. Suitable sterile filters for the filter membrane 46 may be, for example, Pall IV-5 or GVS Speedflow filter membranes, or filter membranes provided by the assignees of this disclosure.
[0187] In the illustrated embodiment, the housing of the sterile-grade filter membrane 46 may be provided with one or more hydrophobic filters or vents, for example, vents 46a and 46b. In one embodiment, the PD fluid filter material of the sterile-grade filter membrane 46 is inherently hydrophilic and therefore, when wet, prevents air from passing through the filter material. Thus, the sterile-grade filter membrane 46 provides a last-chance air removal mechanism just before the fresh PD fluid reaches the patient. Air collects in the housing of the sterile-grade filter membrane 46 upstream of the filter material, and the filter material is vented through the hydrophobic filters or vents 46a and 46b located upstream of the filter material. The hydrophobic filters or vents 46a and 46b filter and remove contaminants from any air that may enter the housing of the sterile-grade filter membrane 46 through the vents.
[0188] The structure of the disposable patient-side line filter set 40 allows for the measurement of the patient's intraperitoneal patient pressure ("IPP") or a pressure very close to it, which can then be used in a pumping control algorithm or routine for the dialysate pump 70. Looking at Figure 4, assuming that fresh PD fluid is delivered to the patient from right to left under positive pressure through the fresh PD fluid lumen 28a, the fresh PD fluid lumen 42a, the sterile-grade filter membrane 46, the disposable line 44a for fresh fluid, and the patient transport set, then the positive pressure at the junction between the disposable line 44a for fresh fluid and the disposable line 44b for used fluid will be the same positive pressure all the way through the used PD fluid lumen 42b of the disposable connector 42, all the way through the used PD fluid lumen 28b of the reusable patient-side line 28, and all the way through the reusable circuit in the cycler (excluding hydrostatic pressure due to the height difference between the filter set 40 and the pressure sensor being measured). This is because the disposable line 44b for used fluid, the lumen 42b for used PD fluid, the lumen 28b for used PD fluid, and the PD fluid in the reusable circuit within the cycler (which may still be at least partially used PD fluid derived from the previous patient's drainage) are stationary and not moving. For example, in the cycler 20 of system 10a, valve 54g is closed to prevent the PD fluid from flowing in the return line during infusion to the patient. Since no pressure drop occurs along the stationary return line, the corresponding pressure sensor 78b measures the patient's positive IPP or a pressure very close to it (e.g., in addition to the IPP, small hydrostatic and dynamic components during flow due to the pressure drop in the line from the junction to the catheter tip of the patient's catheter). The positive IPP measured by pressure sensor 78b may be used in a feedback loop by the control unit of cycler 20 to set the upstream positive pressure to be measured by pressure sensor 78a, and the upstream positive pressure will attempt to achieve the desired or target positive IPP after a pressure drop through the lumen 28a for fresh PD fluid of the reusable patient-side line 28, the lumen 42a for fresh PD fluid of the disposable connector 42, and the disposable line 44a for fresh fluid, where again the positive IPP is measured by pressure sensor 78b.
[0189] In the system 10b for positive pressure infusion shown in Figures 10 to 14, valve 54j1 is closed and a three-way valve 154c is directed to close line 52g, thereby keeping the PD fluid in the disposable line 44b for used PD fluid, lumen 42b for used PD fluid, lumen 28b for used PD fluid, and reusable cycler line 52g still. Pressure sensor 78b also measures positive IPP for the pressure feedback loop of the pressure control routine of the dialysate pump 70, as described above.
[0190] In system 10c of Figures 15 to 21 for positive pressure infusion (Figure 19), the PD fluid in the disposable line 44b for used, the lumen for used PD fluid 42b, the lumen for used PD fluid 28b, and the patient-side line 52g of the reusable cycler is stopped by closing the patient-side valve 54g and the disinfection valve 54h1. Pressure sensors 78b1 and 78b2 (one for control and the other for safety) measure positive IPP for the pressure feedback loop of the pressure control routine of the dialysate pump 70, as described above.
[0191] The structure of the disposable patient-side line filter set 40 further allows for the measurement of the patient's negative IPP or very close to it, which can then be used in a pumping control algorithm or routine for the dialysate pump 70. Looking again at Figure 4, assuming that the used PD fluid is transferred under negative pressure from left to right through the patient transfer set, the disposable line 44b for used, the lumen 42b for used PD fluid in the disposable connector 42, and the lumen 28b for used PD fluid in the reusable circuit in the cycler, then the negative pressure at the junction between the disposable line 44b for used and the disposable line 44a for fresh will be the same negative pressure all the way through the lumen 42a for fresh PD fluid, all the way through the lumen 28a for fresh PD fluid, and into the reusable circuit in the cycler (except for the difference in fluid head height mentioned above). The reason for this is that the PD fluid in the fresh disposable line 44a, the lumen for fresh PD fluid 42a, the lumen for fresh PD fluid 28a, and the reusable circuit in the cycler (which may still contain at least some fresh PD fluid derived from the previous infusion to the patient) is stationary and not moving. For example, in the cycler 20 of system 10a, valve 54f is closed to prevent the PD fluid in the cycler line 52f, the lumen for fresh PD fluid 28a, the lumen for fresh PD fluid 42a, and the fresh disposable line 44a from flowing during drainage from the patient. Since no pressure drop occurs along the stationary line group, the corresponding pressure sensor 78a measures the patient's negative IPP or a pressure very close to it (the difference due to the small hydrostatic and dynamic components during flow resulting from the pressure drop in the line from the junction to the catheter tip). The negative IPP measured by pressure sensor 78a may be used in a feedback loop by the control unit of cycler 20 to set the upstream negative pressure to be measured by pressure sensor 78b, after a pressure drop through the used PD fluid lumen 28b of the reusable patient-side line 28, the used PD fluid lumen 42b of the disposable connector 42, and the disposable line 44b for used fluids, in an attempt to achieve the desired or target negative IPP, here again, where the negative IPP is measured by pressure sensor 78b.
[0192] In the system 10b shown in Figures 10 to 14 for negative pressure drainage, valve 54j1 is closed and a three-way valve 154c is directed to close line 52f, thereby keeping the PD fluid in the disposable fresh line 44a, the lumen for fresh PD fluid 42a, the lumen for fresh PD fluid 28a, and the reusable cycler line 52f still (although at least some of the PD fluid in this pathway may be fresh PD fluid derived from the previous patient infusion). Pressure sensor 78a also measures negative IPP for the pressure feedback loop of the pressure control routine of the dialysate pump 70, as described above.
[0193] In the system 10c of Figures 15 to 21 for negative pressure drainage (Figure 20), the patient-side valve 54f is closed, thereby closing the patient-side line 52f, which brings the PD fluid in the fresh disposable line 44a, the lumen for fresh PD fluid 42a, the lumen for fresh PD fluid 28a, and the reusable cycler line 52f to rest (although at least some of the PD fluid in this pathway may be fresh PD fluid derived from the previous infusion to the patient). A pressure sensor 78a (and possibly a second safety pressure sensor) measures the negative IPP for the pressure feedback loop of the pressure control routine of the dialysate pump 70, as described above.
[0194] Although not shown, a second filter may be placed in or along the disposable line 44b for used fluids. The second filter may be a coarse filter provided for the purpose of removing fibrin, proteins, fats, and other solid particles and liquid impurities from the patient waste fluid before it reaches the reusable patient-side line 28 or other reusable lines and components in the cycler 20. The second filter is discarded after each procedure along with the rest of the disposable patient-side line filter set 40. In one embodiment, the second waste fluid filter is provided in the same housing as the sterile-grade filter membrane 46. Alternatively or additionally, a fibrin trap may be provided.
[0195] The disposable fresh line 44a and the disposable used line 44b converge at a single-lumen line and connector 48 that connects to the patient transfer set. It should be understood that during drainage from the patient, negative pressure is applied only through the disposable used line 44b to prevent used dialysate from coming into contact with the sterile-grade filter membrane 46. Similarly, all fresh PD fluid must pass through the disposable fresh line 44a and filter membrane 46 before reaching the patient.
[0196] It should be understood that the reusable double-lumen patient-side line 28 and the disposable patient-side line filter set 40 are advantageous over single-lumen patient-side lines because they prevent used PD fluid slag present from the previous patient drainage sequence from entering the patient during the next patient infusion sequence. The reusable double-lumen patient-side line 28 and the disposable patient-side line filter set 40 further prevent fresh PD fluid slag present from the previous patient infusion sequence from being discarded into the drain during the next patient drainage sequence.
[0197] Figures 1 and 2 show that the APD cycler 20 of system 10a of the present disclosure comprises a control unit 100 having one or more processors 102 and one or more memories 104 that receive, store, and process signals or outputs from pressure sensors 78a and 78b, temperature sensors 58a and 58b, and conductivity sensor 74. The control unit 100 uses pressure feedback to control the dialysate pump 70 to pump fresh and used PD at safe patient pressure limits and system pressure limits. The control unit 100 uses temperature feedback to control the inline dialysate heater 56 to heat the fresh dialysate to, for example, body temperature. The control unit 100 uses temperature-compensated conductivity readings to analyze the fresh and / or used dialysate for reasons described herein.
[0198] As detailed below, the control unit 100 further opens and closes the dialysate valves 54a-54g, 54h1, 54h2, 54h3 and 54i in cooperation with the operation of the dialysate pump 70 and heater 56 to execute a priming sequence, a sequence of multiple patient infusions, a sequence of multiple patient drainages, and a disinfection sequence after PD treatment. In the disinfection sequence, each reusable PD fluid line 24a-24c is connected to disinfection connectors 30a-30c respectively, the reusable patient-side line 28 is connected to the reusable patient-side line connector 32a, and the drainage line connector 34 is covered by or capped by cover 34c. The disinfection sequence prepares the APD cycler 20 for the next procedure. In one embodiment, used dialysate or waste fluid is heated after the final drainage and used as a disinfectant for disinfection.
[0199] The control unit 100 further includes a video controller 106 that interfaces with a user interface 108, the user interface 108 may include a display screen that operates on one or more electromechanical buttons such as a touchscreen and / or thin-film switches. The user interface 108 may also include one or more speakers for outputting alarms, alerts, and / or voice guidance commands. The user interface 108 may be provided with the cycler 20 as shown in Figure 1, and / or may be a remote user interface operating on the control unit 100. The control unit 100 may further include a transceiver (not shown) and a wired or wireless connection to a network, such as the Internet, for transmitting treatment data to a physician's or clinician's server that interfaces with the physician's or clinician's computer and receiving prescription instructions from the physician's or clinician's server.
[0200] In Figures 5 to 21, the black-filled valves are open at least at some point in the sequence. The arrows indicate one embodiment of the direction of flow of fresh or used dialysate.
[0201] Figure 5 shows one possible priming or priming sequence under the control of a control unit 100 that controls the cycler 20 of system 10a. For the priming sequence, the patient or caregiver connects containers or bags 38a-38c of PD fluid or solution to reusable PD fluid lines 24a-24c, respectively, according to the patient's prescription specifying the type and amount of PD fluid. The PD fluid lines 24a-24c may be dedicated to specific solution containers or bags 38a-38c, and each different bag may contain different glucose or dextrose values and / or different formulations, as described herein. The patient or caregiver further connects a drain line 36 to a drain line connector 34 and passes the end of the drain line to a drain, e.g., a toilet, bathtub, or drain container.
[0202] Next, the patient or caregiver presses "Start Prime" on the user interface 108, for example, via a touchscreen. The control unit 100 opens valves associated with the desired priming fluid containers or bags 38a-38c, for example, valve 54a for container 38a. The control unit 100 also opens the air trap valve 54d, the fresh fluid patient-side line valve 54f, and the disinfection line valve 54h1. The opened disinfection line valve 54h1 allows the priming fluid to flow through the drainage connector line 52j and the drainage line connector 34 to the priming drainage line 36.
[0203] Next, the control unit 100 operates the dialysate pump 70 in the injection direction to pump fresh PD fluid through the opened priming line. If the lower level sensor 62b detects a low level of fresh PD fluid, the control unit 100 stops the dialysate pump 70. The control unit 100 closes valves 54a-54c, opens the vent valve 54e, and reverses the dialysate pump 70 until the upper level sensor 62a detects PD fluid. Reversing the dialysate pump 70 to inject fluid into the air trap 60 may be performed as a step or stage to prevent (or reduce the amount of) used dialysate or air from entering the cycler 20 from the drain line 36. In one embodiment, priming is completed when the control unit, knowing the output of the pump 70, calculates or accumulates that the amount of fresh PD fluid needed to inject into the line up to the drain line connector 34 has been achieved (in addition, a particularly reduced amount of drain line 36 to ensure proper and complete priming; see also the rinsing description below).
[0204] When the first liquid container or bag 38a-38c, for example container 38a, is used up and the next liquid container or bag, for example container 38b or 38c, is about to be used, the control unit 100 opens the associated valve 54b or 54c and operates the dialysate pump 70 in the infusion direction. Air in the associated reusable PD fluid line 24b or 24c is removed via the air trap 60. If a low fluid level is detected by the lower level sensor 62b, the control unit 100 may open the vent valve 54e again and reverse the dialysate pump 70 until the upper level sensor 62a detects PD fluid.
[0205] In one embodiment, the dialysate heater 56 is not operated during priming. Since the patient is not involved in the fluid flow, the output of the pressure sensor 78a may be monitored to pump fresh PD priming fluid at the maximum safe pressure for the system 10a. Further, the control unit 100 monitors the output of the conductivity sensor 74 during priming to (i) ensure that the type of solution from the container or bag 38a is correct according to the patient's prescription and / or (ii) detect an air exchange when the PD fluid reaches the conductivity sensor.
[0206] In various embodiments, the priming described in relation to FIG. 5 is performed after rinsing the disinfection solution resulting from the previous disinfection sequence. The previous disinfection sequence may end with a complete drainage of the disinfection solution and subsequent rinsing of the inner walls of the tubes and components of the cycler 20 that were in contact with the disinfection solution. Alternatively, the previous disinfection sequence may end with only a complete drainage of the disinfection solution and no subsequent rinsing. Further alternatively, the previous disinfection sequence may end without draining or rinsing the disinfection solution. The priming sequence of FIG. 5 detects where the previous disinfection sequence was aborted. If the previous disinfection sequence ended with drainage and rinsing, the priming sequence starts with prime as described in relation to FIG. 5. If the previous disinfection sequence ended with only drainage and no rinsing, the priming sequence starts with rinsing the inner walls of the tubes and components of the cycler 20 that were in contact with the disinfection solution, for example using heated fresh dialysate, before the final prime. If the previous disinfection sequence ended without drainage or rinsing, the priming sequence starts with draining the previously used disinfection solution and subsequent rinsing of the inner walls of the tubes and components of the cycler 20 that were in contact with the disinfection solution, for example using heated fresh dialysate, before the final prime.
[0207] FIG. 6 shows a possible drainage sequence from one patient under the control of a control unit 100 that controls the cycler 20 of the system 10a. Often when a patient starts a new treatment, the patient is full of used PD fluid from the previous treatment. Thus, after priming, the next step is often the first drainage sequence from the patient. The user interface 108 may prompt the patient P to enter whether drainage is necessary, or the system 10a may automatically start with drainage to check whether drainage is necessary. For example, if one or more pressure sensors 78a and 78b indicate that there is no waste liquid to be discharged, the drainage may be terminated immediately. However, it should be understood that the following description applies to all drainage sequences from the patient. In the drainage sequence performed immediately after priming, the patient or caregiver removes the reusable patient-side line 28 from the patient-side line connector 32a provided in the housing 22 of the cycler 20, connects the end 28d of the reusable patient-side line 28 to the disposable patient-side line filter set 40 (see FIG. 4), and then connects the disposable filter set 40 to the patient transfer set. As will be described later, the reusable patient-side line 28 can be unwound from the spool or hose reel 110 and extend to the patient P. Alternatively, the patient P or caregiver may connect the disposable filter set 40 to the patient transfer set before connecting the disposable filter to the reusable patient-side line 28. It should be understood that the above connections are the same for the infusion to the patient performed immediately after priming. In any of the above variations, rinsing can be performed using one or more cycles of injecting rinse liquid and flowing it to the drain.
[0208] Next, the patient or caregiver presses, for example, the "Start Treatment" or "Start Drainage" button on the user interface 108 via a touchscreen. The control unit 100 initiates the treatment, for example, with the first drainage. The control unit 100 closes, or enables the closing, of the patient-side line infusion valve 54f, the disinfection line valves 54h1-54h3, the air trap valve 54d, and the PD fluid line valves 54a-54c. The control unit 100 opens the patient-side line drain valve 54g and the drain line valve 54i, and operates the dialysate pump 70 in the reversed drainage direction to draw in the used PD fluid from patient P through the patient transfer set, through the disposable line 44b for used disposable filter set 40, through the lumen 28b for used PD fluid in the reusable patient-side line 28, and through the patient-side line drain valve 54g, and then pushes the used PD fluid through the drain line valve 54i, through the drain line connector 34, and through the disposable drain line 36 to an indoor drain pipe or drain container.
[0209] In one embodiment, the dialysate heater 56 is not operated during drainage from the patient, but the output of at least one of the pressure sensors 78a or 78b is monitored to ensure that waste fluid or used PD fluid is reliably removed from the patient P at or within the safe drainage pressure limit, for example, -1.0 psig to -3 psig (e.g., -1.3 psig (-9 kPa)). The output of the pressure sensor 78b may also be monitored to detect the end of drainage from the patient, for example, by the control unit 100 looking for a characteristic increase in negative pressure that indicates the patient is empty or nearly empty and terminating drainage from the patient. Alternatively, drainage from the patient may be terminated when a specified amount of waste fluid or used PD fluid, including the patient's ultrafiltration, has been removed from the patient. The control unit 100 may further monitor the output of the conductivity sensor 74 during drainage from the patient to evaluate the effectiveness of the procedure and / or look for the patient's disease. Such information may be stored in one or more memories 104 for storage and analysis in a physician's or clinician's database, and / or transmitted from the cycler 20 via a wired or wireless connection to a network, such as the Internet.
[0210] The filter set 40 presents a priming problem because it is initially filled with air. The drainage sequence described above removes air from the disposable line 44b of the disposable filter set 40, but not from the fresh disposable line 44a of the disposable filter. In that case, the air would be delivered to the patient during subsequent infusion. Therefore, it is conceivable to configure the control unit 100 to execute a sequence before infusion to the patient, pumping a small amount of fresh dialysate (the volume of the fresh disposable line 44a is known), pushing air from the fresh disposable line 44a into the patient transfer set but not into the patient, and then drawing that volume back towards the cycler 20 to draw the air into the disposable line 44b. This pushing and drawing sequence may be executed multiple times so that the air slug is further drawn into the used PD fluid lumen 28b of the double-lumen reusable patient-side line 28.
[0211] Figure 7 shows a possible infusion sequence to a patient under the control of the control unit 100, which controls the cycler 20 of system 10a. If infusion to the patient is performed immediately after priming, the patient or caregiver makes the connection described above in Figure 6 and then presses "Start Infusion" on the user interface 108, for example, via a touchscreen. If infusion to the patient is performed following the initial drainage from the patient, as in this case, when drainage from the patient is completed without requiring input from the patient P or caregiver, the control unit 100 automatically switches to infusion to the patient (which may include pushing and pulling fresh dialysate to remove the air described above from the disposable line 44a for freshness of the disposable filter 40). In this case, the control unit 100 causes or allows some or all of the patient-side line drain valve 54g, drain line valve 54i, disinfection line valves 54h1-54h3, and unused PD fluid line valves 54b and 54c to be closed. The control unit 100 opens the necessary PD fluid line valves 54a, air trap valve 54d and patient-side line infusion valve 54f, and operates the dialysate pump 70 in the forward infusion direction to draw fresh PD fluid from the PD fluid container or bag 38a into the air trap 60, and then pushes the fresh PD fluid to patient P through the conductivity sensor 74, through the patient-side line infusion valve 54f, through the reusable patient-side line 28, through the disposable fresh line 44a, through the sterile-grade filter membrane 46 of the disposable filter set 40, and through the patient transfer set. In one embodiment, the control unit 100 monitors the output of the dialysate pump 70, which is inherently accurate, to measure the precise amount of fresh PD fluid to the patient. Level sensors 62a and 62b are monitored, and if the pump 70 needs to be operated in reverse to infuse the air trap 60 up to the upper level sensor 62a, the control unit 100 takes into account any fluid being removed from the infusion. The infusion to the patient is completed when the prescribed amount of fresh PD solution is delivered to patient P.
[0212] In the illustrated embodiment, an inline dialysate heater 56 is activated during infusion to the patient, and the output from the temperature sensor 58a is used as feedback to control the temperature of the fresh PD fluid to body temperature or 37°C. The control unit 100 also monitors the output of at least one of the pressure sensors 78a or 78b to ensure that the fresh PD fluid is delivered to the patient P at or within the safe infusion pressure limit, for example, 1 to 5 psig (e.g., 2 psig (14 kPa)). The control unit 100 may also continue to monitor the conductivity sensor 74 to ensure that the fresh PD fluid of the specified type or formulation is being used.
[0213] The draining and infusion sequences described above are repeated as prescribed until, for example, the contents of each PD solution container or bag 38a-38c are delivered to the patient. For each infusion, different PD solution line valves 54a-54c may be opened, or, depending on the size of the PD solution containers or bags 38a-38c, a single valve 54a-54c may be opened for multiple infusions. One or more infusions to a patient in a single procedure may draw PD solutions with different glucose values from different containers or bags 38a-38c to form a PD solution with a mixed glucose value for delivery to the patient. For example, an infusion to a patient may draw from a 1.36% glucose container and a 2.27% glucose container to form a PD solution with a glucose value somewhere between 1.36% and 2.27%. Valves 54a-54c may be switched to produce substantially any glucose concentration between the glucose values provided to the PD solution containers or bags 38a-38c. The final PD fluid container or bag 38c may contain, for example, icodextrin, and it is intended that the icodextrin remains in patient P after disconnection from cycler 20 by, for example, disconnecting the reusable patient-side line 28 from the disposable filter set 40 (and allowing the reusable patient-side line 28 to be wound or unwound onto a spool or hose reel 110), disconnecting the disposable filter set 40 from the patient transport set, and reconnecting the reusable patient-side line 28 to the patient-side line connector 32a. In another procedure, system 10a allows the procedure to be completed after drainage from the final patient.
[0214] Figure 8 shows one possible final drainage sequence under the control of the control unit 100 that controls the cycler 20 of system 10a, which takes place, for example, after the final infusion sequence to the patient and after the patient has disconnected from the reusable patient-side line 28 and the patient-side line 28 has been reconnected to the patient-side line connector 32a. As soon as the control unit 100 detects that a reusable patient-side line 28 has been plugged into the patient-side line connector 32a (for example, (i) the pump 70 draws a small vacuum with valve 54h1 closed and one or more patient-side valves 54f or 54g open while the control unit monitors pressure sensors 78a and / or 78b, (ii) via a separate proximity sensor or contact closure), and / or (iii) the pump 70 pumps a small amount of liquid back and forth over one or more of the pressure sensors 78a and 78b to generate a small pressure oscillation (there will be a sudden (or gradual) increase in the amplitude of the detected pressure oscillation when the patient-side line 28 is connected to the connector 32a), the control unit 100 initiates the final drainage sequence. In this case, the patient-side line infusion valve 54f and the disinfection line valve 54h1 are opened, and any PD fluid containers or bags 38a-38c that are not completely empty are emptied. In other words, the control unit 100 knows how much fresh PD fluid has been taken out from each container or bag 38a-38c, and therefore knows which containers need to be emptied. In one embodiment, the PD fluid line valves 54a, 54b and 54c are opened respectively (or sequentially as needed), and the dialysate pump 70 draws the remaining PD fluid into the air trap 60, and pushes the fluid through the reconnected reusable patient-side line 28, through a disinfection tube or part of line 52h, and through the drain connector line 52j, drain line connector 34 and drain line 36 to the drain.
[0215] In one embodiment, the control unit 100 tracks the amount of fresh PD fluid added from the containers or bags 38a-38c and stops the dialysate pump 70 when the cumulative amount meets or falls within a specific percentage of the supply of PD fluid to the container. Alternatively or in addition, a flow switch (not shown) outputting to the control unit 100 may be provided along the tube or line 52a, for example, by energizing a heater 56 to ensure that flow is present, to detect whether any or all of the containers or bags 38a-38c (depending on the state of valves 54a-54c) are empty or substantially empty.
[0216] In one embodiment, when the last connected container or bag 38a-38c is empty, the control unit 100 of the system 10a operates the pump 70 to pump the calculated volume and drain as much liquid as possible from the air trap 60 into the drain. To do this, the air trap valve 54d, the patient-side line infusion valve 54f, and the vent valve 54e are opened, while all PD fluid line valves 54a-54c are closed. The liquid remaining in the air trap 60 may be used for disinfection and injected into the disinfection tube or line 52h. In this case, the containers or bags 38a-38c are emptied at the end of the procedure to reduce the weight the patient has to carry, but the cycler 20 is left full of fresh dialysate for disinfection.
[0217] As shown in Figure 9, at the end of the procedure, the control unit 100 automatically executes the disinfection sequence using the disinfection circuit 50 described above, in which the reusable patient-side line 28 is connected to the patient-side line connector 32a, the drainage line connector 34 is covered or capped by a rotatable or sliding cover 34c, and the PD fluid lines 24a-24c are inserted into the disinfection connectors 30a-30c. The control unit 100 opens all fluid valves 54a-54d and 54f-54h3 and closes the vent valve 54e. The control unit 100 operates the dialysate pump 70 and the heater 56 to continuously pump heated (e.g., to a temperature of 70°C or higher) unused fresh PD fluid, used PD fluid, or a combination of fresh and used PD fluid over the entire disinfection circuit 50 for a set time, such as 120 minutes. The disinfectant described below may, as an alternative or in addition, be water or a dedicated disinfectant using, for example, citric acid. At the beginning of the disinfection sequence, one or both of the pressure sensors 78a and / or 78b may be used by the control unit 100 to check whether the disinfection pressure has been reached, and if not, it may determine that one of the disinfection connections is not being made or is not being made correctly, stop the disinfection, and issue an audible, visual, or audiovisual alarm on the user interface 108. The control unit 100 may reverse the dialysate pump 70 one or more times during the disinfection sequence (the arrow will point in the opposite direction to the arrow shown in the figure), and / or inject a certain amount of air into the partial disinfection circuit 50 (e.g., via the vent valve 54e) during the disinfection sequence to increase turbulence and impact forces inside the lines or tubes forming the disinfection circuit 50. The dialysate pump 70 may also be operated at the maximum safe pressure and flow rate for the system 10a to achieve similarly better disinfection. Disinfection may be performed for, for example, 120 minutes.
[0218] Figure 9 shows that all valves are open during disinfection (except for the vent valve 54e), but it should be understood that instead, some valves may be closed or switched on and off during disinfection. For example, one or more of the dialysate source valves 54a-54c, drain line valve 54i, and / or disinfection line valve 54h2 may be closed or switched on and off during disinfection. Also, as described above, the disinfection sequence described in relation to Figure 9 may end with drainage and rinsing, with drainage only, or with neither drainage nor rinsing (the disinfectant solution remains in the cycler 20 until the next procedure). In one embodiment, drainage and optionally rinsing are performed by connecting the drain line 36 for the next procedure to the drain line connector 34 after disinfection, so that the disinfectant solution and optionally rinsing solution can be pumped into an indoor drain pipe or drain container. The drain line 36 may then be tightened at the end as needed (e.g., when using an indoor drain pipe) to await the next procedure. The rinsing solution may be a special rinsing solution or liquid from one of the PD solution containers 38a to 38c for the next treatment, connected to one of the reusable PD solution lines 24a to 24c. However, in a preferred embodiment, the disinfectant is left to remain in the cycler 20 until the next treatment, with no ports opened and no bacteria allowed to enter the system 10a.
[0219] In the case of system 10a, and any other system described herein that uses a double-lubricated patient-side line, the control unit 100 may monitor pressure sensors 78a and 78b to look for defects in the patient-side line 28 and, optionally, deposits in the double-lubricated tube. The double lumens 28a and 28b may have equal diameters so that the pressure drop is similar in both lumens. Thus, in Figure 9, for example, by alternating between valves 54f and 54g and maintaining a constant flow rate of disinfectant, the control unit 100 may calculate the individual pressure drop in each lumen as the difference between the outputs of pressure sensors 78a and 78b. If one lumen 28a or 28b has a higher pressure drop than the other lumen during disinfection, more disinfection cycle time may be allocated to that lumen, or the cycle times in both lumens may be adjusted to compensate for the different pressure differences. The control unit 100 in Figure 9 can also perform similar pressure checks and pressure check comparisons as performed in previous disinfection sequences to check the overall condition of the reusable circuit and reusable patient-side line 28 of the cycler 20, for example, with respect to grime buildup or other internal deposits (e.g., creating a time-series chart that can be viewed by an inspector or repairer). The control unit 100 may be configured to automatically determine the need to transmit information to a network service portal to indicate that circuit maintenance is likely to be required and to transmit the information to the network service portal. The double-lumen patient-side tube 28 is a good candidate for such pressure checks and analyses because it is relatively long, for example, 7 meters, and therefore provides a good signal-to-noise ratio compared to shorter tubes (or components) where it can be difficult to distinguish grime buildup problems from normal pressure fluctuations. Second main embodiment
[0220] Referring here to Figures 10 to 14, another APD system employing disinfection is shown as system 10b. System 10b has many of the same components as system 10a, which are usually numbered the same, and includes all the structures, functions, and alternative forms described above with respect to system 10a. For example, system 10b comprises a cycler 20 and a control unit 100 having one or more processors 102, one or more memories 104, and a video controller 106. System 10b comprises PD fluid containers or bags 38a to 38c that connect to the ends 24d of reusable PD fluid lines 24a to 24c, respectively. The reusable PD fluid lines 24a to 24c extend from openings 26 defined or provided by the housing 22 of the cycler 20 (see Figure 1). System 10b comprises an inline dialysate heater 56, a reusable line or tube 52b, an air trap 60 that works with upper and lower level sensors 62a and 62b, an air trap valve 54d, a vent valve 54e, a reusable line or tube 52c, a dialysate pump 70, a conductivity sensor 74, temperature sensors 58a and 58b, a reusable line or tube 52d, pressure sensors 78a and 78b, reusable patient-side tubes or lines 52f and 52g, a hose reel 110, a double-lumen reusable patient-side line 28, a reusable tube or line 52i having a drain line valve 54i and communicating with the reusable tube or line 52c, a reusable tube or line 52j, and a drain line connector 34. Figures 10 to 14 also show that system 10b includes and uses a disposable filter set 40 that is in fluid communication with the fresh PD fluid lumen 28a and the used PD fluid lumen 28b of a reusable double-lumen patient-side line 28. Each of the pump 70, heater 56, valve and sensor is controlled by and / or outputs to the control unit 100.
[0221] System 10b differs in one respect by replacing a specific two-way valve of System 10a with a three-way valve under the control of Control Unit 100. In the illustrated embodiment, a first three-way valve 154a communicates with (i) a PD fluid container or bag 38a via a reusable PD fluid line 24a having a terminal 24d, (ii) a reusable tube or line 52a1, and (iii) a disinfection tube or line 52h1. A second three-way valve 154b communicates with (i) a reusable tube or line 52a1, (ii) a reusable tube or line 52a2, and (iii) a disinfection tube or line 52h2. A third three-way valve 154c communicates with (i) a reusable line or tube 52d, (ii) a fresh reusable patient-side tube or line 52f, (iii) a used reusable patient-side tube or line 52g, and (iv) a drainage tube or line 52j.
[0222] The illustrated disinfection tube or line 52h1 is in fluid communication with the drain tube or line 52j between drain valves 54j1 and 54j2, which are under the control of the control unit 100. A second disinfection line or tube 52h2 extends between a second three-way valve 154b and a disinfection connector 30a. A third disinfection line or tube 52l extends between disinfection connectors 30b and 30c and operates together with disinfection valve 54l, which is under the control of the control unit 100.
[0223] System 10b also includes an alternative patient-side line connector 32b. Unlike the patient-side line connector 32a, the patient-side line connector 32b does not close a loop to the internal fluid circuit of the cycler 20. Instead, the patient-side line connector 32b has an internal lumen, for example, a U-shaped lumen, which leads fresh or used dialysate from one PD fluid lumen 28a or 28b of the reusable double-lubricated patient-side line 28 to the other PD fluid lumen 28b or 28a.
[0224] Figure 10 also shows one possible priming sequence of system 10b under the control of control unit 100. For the priming sequence (which may be started after drainage and rinsing or after rinsing, as described with respect to system 10a), the patient or caregiver connects containers or bags 38a-38c of PD fluid or solution to reusable PD fluid lines 24a-24c, respectively, according to the patient's prescription specifying the type and amount of PD fluid, as with system 10a. The patient or caregiver further connects the drainage line 36 to the drainage line connector 34 and passes the end of the drainage line through a drain, e.g., a toilet, bathtub, or drainage container. The patient or caregiver then presses "Start Prime" on the user interface 108, for example, via a touchscreen. As previously mentioned, in Figures 10 to 14, the blacked-out valves are open at least at some point in the sequence, while the arrows indicate one embodiment of the direction of flow of fresh or used dialysate.
[0225] The control unit 100 in Figure 10 also sets or directs a first three-way valve 154a so that fresh dialysate from the PD fluid container or bag 38a can flow through the reusable tube or line 52a1. A second three-way valve 154b is set or directed so that the disinfection line 52h2 is closed. The dialysate container line valves 54b and 54c are also closed, forcing fresh dialysate from the PD fluid container 38a into the reusable tube or line 52a1. The control unit 100 also opens the air trap valve 54d and the drain valves 54j1 and 54j2, and sets or directs the third three-way valve 154c so that the fresh dialysis priming fluid pumped by the pump 70 flows into the patient-side tube or line 52f, through the PD fluid lumen 28a, through the recirculation lumen of the patient-side line connector 32b, through the other PD fluid lumen 28b, through the patient-side tube or line 52g, through the drain tube or line 52j, through the drain line connector 34 and the disposable drain line 36, and to the indoor drain pipe or drain container. The heater 56 does not need to be activated or energized. Level sensors 62a and 62b output to the control unit 100, which controls the pump 70 and the three-way valves 154a-154c to inject fluid into the air trap 60 or empty the air trap 60 as needed. In another phase of priming, valve 54j2 is closed, valve 54e is opened, three-way valves 154a and 154c are reversed, and pump 70 operates in the reverse direction to inject fluid into air trap 60. The output from at least one of pressure sensors 78a and 78b is used to ensure that the priming fluid pressure is within safe system limits.
[0226] Figure 11 shows one possible drainage sequence (initial or subsequent drainage) of system 10b operated by control unit 100. Assuming that the patient is full of used PD fluid from the previous procedure when starting a new procedure, the initial drainage sequence starts after priming. The patient or caregiver disconnects the reusable patient-side line 28 from the patient-side line connector 32b located on the housing 22 of the cycler 20, connects the end 28d of the reusable patient-side line 28 to a disposable filter set 40 (see Figure 4), and then connects the disposable filter set 40 to the patient transport set. As described herein, the reusable patient-side line 28 can be unplugged from a spool or hose reel 110 and extended to the patient P. Alternatively, the patient P or caregiver may connect the disposable filter set 40 to the patient transport set before connecting the disposable filter set 40 to the reusable patient-side line 28. It should be understood that the above connections are also the same for infusion to the patient, which is performed immediately after priming.
[0227] Next, the patient or caregiver presses "Treatment Start" or "Drainage Start" on the user interface 108, for example, via a touch screen. The control unit 100 starts the treatment with the first drainage from the patient P through the used dialysate lumen 28b in this case. The control unit 100 sets or orients the third three-way valve 154c so that the used dialysate can be drawn into the used dialysate lumen 28b by the pump 70 operating in the reverse direction. When the pump 70 operates in the reverse direction, the used dialysate then flows into the reusable line or tube 52d through the used dialysate patient-side tube or line 52g. The drain valve 54i is also opened, and the used dialysate is pushed into the drain line 52i by the pump 70 and is pushed out to the indoor drain pipe or drain container through the drain line connector 34 and the disposable drain line 36. The heater 56 also does not need to be activated or powered on. In one embodiment, the dialysate pump 70 can measure the exact amount of used dialysate from the patient P to the drain, and that amount is recorded by the control unit 100. One or more pressure sensors 78a or 78b output to control the drain pressure, for example, to -1.0 psig to -3.0 psig or within that range (e.g., -1.3 psig (-9 kPa)). The conductivity sensor 74 may be used as described above to evaluate the patient's waste liquid.
[0228] A second air trap or chamber (not shown) may be disposed between the pump 70 and the spool or hose reel 110 to cause the control unit 100 to detect air resulting from a leak in the patient connection or some internal leak. Another air detection technique is for the control unit 100 to monitor the output from the conductivity sensor 74 to detect any detectable-sized air bubbles. Such air detection can sufficiently reduce leaks sufficient to affect the accuracy of the drainage measurement.
[0229] Figure 12 shows one possible infusion sequence of system 10b under the control of control unit 100. If infusion to the patient is performed immediately after priming, the patient or caregiver makes the connection described above in Figure 11 and then presses "Start Infusion" on the user interface 108, for example, via a touchscreen. If infusion to the patient is performed following the initial drainage from the patient, as in this case, the control unit 100 automatically switches to infusion to the patient when drainage from the patient is complete without requiring input from patient P or caregiver. In this case, the control unit 100 sets the first and second three-way valves 154a and 154b (and the other valves described above) to the same state or orientation as described above with respect to priming in Figure 10. When the PD fluid container or bag 38a is empty, valve 54b or 54c is opened, the state of the three-way valve 154a is switched, and the PD fluid container or bag 38b or 38c is used instead.
[0230] The control unit opens the air trap valve 54d and directs the third three-way valve 154c so that fresh dialysate flows to patient P through the fresh dialysate patient-side line 52f and the lumen 28a for fresh PD fluid. The in-line heater 56 is operated to heat the fresh dialysate to the patient's temperature, e.g., 37°C, as confirmed by at least one temperature sensor 58a and 58b. Level sensors 62a and 62b output to the control unit 100, which controls the pump 70 and three-way valves 154a-154c to inject or empty the air trap 60 as needed. Outputs from at least one pressure sensor 78a and 78b are used to ensure that the priming fluid pressure is within a safe positive pressure limit for patient P, e.g., 1-5 psig (e.g., 2 psig (14 kPa)). The output from the conductivity sensor 74 can be used to verify that the correct type of fresh dialysate is being used for the current patient infusion.
[0231] Figure 13 shows one possible final drainage sequence of system 10b under the control of control unit 100, which takes place, for example, after the final infusion sequence to the patient and after the patient has disconnected from the reusable patient-side line 28 and the patient-side line 28 has been reinserted into the patient-side line connector 32b. As soon as control unit 100 detects that the reusable patient-side line 28 has been inserted into the patient-side line connector 32b (for example, via one or more pressure sensors 78a or 78b, or via a separate proximity sensor or contact closure that outputs to control unit 100 as described above), control unit 100 initiates the final drainage sequence. In this case, control unit 100 either directs (three-way valves) or opens (two-way valves) all patient supply valves 154a, 154b, 54b, and 54c at once, or opens these valves sequentially as needed to empty any containers or bags 38a-38c that are not yet empty. The air trap valve 54d and the drain line valves 54j1 and 54j2 are opened, and the three-way valve 154c is set to a state or orientation such that the fresh dialysate pump 70 can pump any remaining fresh dialysate through the reusable patient-side tubing or line 52f, through the lumen 28a for fresh dialysate, through the recirculation lumen 32b for patient-side line connector 32b, through the lumen 28b for used dialysate, through the reusable patient-side tubing or line 52g, through the drain line 52j, and through the drain line connector 34 and drain line 36 to the drain.
[0232] In one embodiment, the control unit 100 knows how much fresh PD fluid has been taken out from each container or bag 38a-38c throughout the course of the procedure, and therefore knows which containers need to be emptied. The control unit 100 tracks the additional amount of fresh PD fluid taken out from the containers or bags 38a-38c, and may stop the dialysate pump 70 when the cumulative amount meets or falls within a certain percentage of the supply of PD fluid for the containers. Alternatively or in addition to this, a separate flow switch (not shown) that outputs to the control unit 100 is provided, for example, along a tube or line 52a.
[0233] In one embodiment, when the last connected container or bag 38a-38c is empty, the control unit 100 of system 10b operates the pump 70 to pump the calculated volume and drain as much liquid as possible from the air trap 60 to the drain. To this end, the three-way valve 154b is switched from the position shown in Figure 13, which allows air to be drawn in through the disinfection connectors 30a-30c, allowing the air trap 60 to be backfilled and emptied. Once the air trap 60 is empty, the control unit 100 then sets the valve 154b to a position that connects lines 52a1 and 52h2 and opens the air trap valve 54d. The control unit 100 then operates the pump 70 in the normal treatment direction to draw air into the cycler 20, allowing the PD fluid to be discharged from the chamber 60 and all lines further downstream of the chamber to the drain line 36. In another embodiment, the liquid remaining in the air trap 60 may be used for disinfection and injected into the disinfection tubes or lines 52h1, 52h2 and 52l. In this case, the containers or bags 38a-38c are emptied at the end of the procedure to reduce the weight the patient has to carry, but the cycler 20 is left full of fresh dialysate for disinfection.
[0234] As shown in Figure 14, at the end of the procedure, in one embodiment, the control unit 100 automatically executes a disinfection sequence using a disinfection circuit 50, in which the reusable patient-side line 28 is connected to the patient-side line connector 32b, the drainage line connector 34 is covered or capped by a rotatable or sliding cover 34c (see Figure 3), and the PD fluid lines 24a-24c are inserted into the disinfection connectors 30a-30c. In one embodiment, the control unit 100 opens all two-way fluid valves 54b-54e, 54i, 54j1, 54j2, and 54l to form the disinfection circuit 50. In another embodiment, certain two-way valves, such as supply valves 54b and 54c, may be closed or switched open during disinfection. The control unit 100 sets the first three-way valve 154a so that the PD fluid line 24a is in fluid communication with the disinfection tube or line 52h1. The second and third three-way valves 154b and 154c are switched on and off by the control unit 100 at some desired frequency so that heated disinfectant, for example, fresh dialysate, comes into contact with both fluid paths controlled by the three-way valves. Similarly, the air trap valve 54d may be switched on and off by the control unit 100 at some desired frequency so that the air trap 60 can be completely filled with heated disinfectant and that the disinfectant can flow into the vent line 52v for disinfection.
[0235] The heated disinfectant solution, for example, unused fresh PD solution, is further pumped through both lumens 28a and 28b of the reusable patient-side line 28, as well as through the recirculation lumen of the patient-side connector 32b. The heated disinfectant solution is similarly pumped through all fluid pathways of the drain line connector 34. Disinfection pathway 52l ensures that disinfection connectors 30b and 30c and their respective associated PD solution lines 24b and 24c are completely disinfected, while disinfection pathway 52h2 does the same for disinfection connector 30a and its associated PD solution line 24a.
[0236] The control unit 100 operates the dialysate pump 70 and the heater 56 to continuously pump heated (e.g., to a temperature of 70°C or higher) fresh PD fluid, used PD fluid, a combination of fresh and used PD fluid, or any other dedicated disinfectant solution over the entire disinfection circuit 50 for a set time, such as 120 minutes. At the beginning of the disinfection sequence, the control unit 100 may use one or both of the pressure sensors 78a and / or 78b to check whether the disinfection pressure has been reached, and if not, it may determine that one of the disinfection connections is not being made or is not being made correctly, stop the disinfection, and issue an audible, visual, or audiovisual alarm on the user interface 108. The control unit 100 may reverse the dialysate pump 70 one or more times during the disinfection sequence (the arrows will point in the opposite direction to the arrows shown in Figure 14), and / or inject a specific amount of air into a portion of the disinfection circuit 50 during the disinfection sequence to increase turbulence and impact forces inside the lines or tubes forming the disinfection circuit 50. The dialysate pump 70 may also be operated at the maximum safe pressure and flow rate for system 10b in order to achieve similarly better disinfection.
[0237] As described above for system 10a, the disinfection sequence described in relation to Figure 14 for system 10b may end with drainage and rinsing, with drainage only, or with neither drainage nor rinsing (the disinfectant solution remains in the cycler 20 until the next treatment). In this case as well, drainage and optionally rinsing may be performed by connecting the drainage line 36 for the next treatment to the drainage line connector 34 after disinfection, so that the disinfectant solution and optionally rinsing solution can be pumped into an indoor drainpipe or drain container. The drainage line 36 may then be closed off as needed (for example, when using an indoor drainpipe) to await the next treatment. The rinsing solution may be a special rinsing solution or liquid from one of the PD solution containers 38a to 38c for the next treatment, connected to one of the reusable PD solution lines 24a to 24c. Third Major Embodiment
[0238] Referring here to Figures 15 to 21, another APD system employing disinfection is shown as system 10c. System 10c has many of the same components as systems 10a and 10b, which are usually numbered the same, and includes all the structures, functions, and alternative forms described above with respect to the above systems. For example, system 10c comprises a cycler 20 and a control unit 100 having one or more processors 102, one or more memories 104, and a video controller 106. System 10c comprises PD fluid containers or bags 38a to 38c (each containing different formulations of PD fluid) that connect to the ends 24d of the reusable PD fluid lines 24a to 24c, respectively. The reusable PD fluid lines 24a to 24c extend from openings 26 defined or provided by the housing 22 of the cycler 20 (see Figure 1). System 10c comprises an inline dialysate heater 56, a reusable line or tube 52b, an air trap 60 that works with upper and lower level sensors 62a and 62b respectively, an air trap valve 54d, a vent valve 54e, a reusable line or tube 52c, a dialysate pump 70, temperature sensors 58a and 58b, a reusable line or tube 52d, pressure sensors 78a, 78b1 and 78b2, reusable patient-side tubes or lines 52f and 52g, a hose reel 110, a double-lumen reusable patient-side line 28, a reusable drain tube or line 52i that extends to a drain line connector 34 and has a drain line valve 54i, and reusable disinfection tubes or lines 52h1 and 52h2 that work with disinfection valves 54h1 and 54h2 respectively. Figures 15 to 21 also show that system 10c includes and uses a disposable filter set 40 that is in fluid communication with the fresh PD fluid lumen 28a and the used PD fluid lumen 28b of a reusable double-lumen patient-side line 28. Each of the pump 70, heater 56, valve and sensor is controlled by and / or outputs to the control unit 100.
[0239] System 10c may also include a conductivity sensor 74 that outputs to the control unit 100, although this is not shown, for any of the reasons or applications described herein.
[0240] Similar to systems 10a and 10b, system 10c is equipped with disinfection connectors 30a-30c for connecting to the ends 24d of the reusable PD fluid lines 24a-24c, respectively, during disinfection. A third disinfection tube or line 52h3 extends between disinfection connectors 30a and 30b for use during disinfection. System 10c further employs a patient-side line connector 32b with an internal lumen, e.g., a U-shaped lumen, as described in relation to system 10b, which leads fresh or used dialysate from one PD fluid lumen 28a or 28b of a double-lubricated reusable patient-side line 28 to the other PD fluid lumen 28b or 28a. System 10c further comprises reusable supply tubes or lines 52a1-52a3, each communicating with reusable supply lines 24a-24c and working together with valves 54a-54c to dispense PD fluid from desired PD fluid containers or bags 38a-38c into the cycler 20.
[0241] One key difference in system 10c is that, unlike systems 10a and 10b, the drain line 52i during infusion is fluidly connected downstream of the dialysate pump 70. This prevents used PD fluid from being drawn into the pump 70 if the drain valve 54i malfunctions or leaks in any way during infusion to the patient, as can happen in systems 10a and 10b, and instead pushes fresh PD fluid down into the disposable drain line 36. In system 10c, both valves 54g and 54h2 prevent used dialysate from being drawn into the drain line connector 34 or the drain line during infusion to the patient.
[0242] An addition to system 10c, which can be provided in any of the systems described herein, is the provision of a flow switch 80 that outputs to the control unit 100. The flow switch 80 is set to operate or output at a specified low flow rate, which indicates that one of the containers or bags 38a-38c is empty and can also be used to ensure that fresh PD fluid is flowing through the inline heater 56 when the inline heater 56 is powered for liquid heating. The control unit 100 may be programmed, for example, (i) during the final drainage from all containers at the end of the procedure, and / or (ii) at the beginning of the disinfection sequence, while injecting into the disinfection circuit 50, the output from the flow switch 80 may be used to know when one of the containers 38a-38c is empty and to switch the injection to another container. Alternatively, the flow switch 80 may be a flow sensor with a variable output.
[0243] Another addition to system 10c, which can be provided in any of the systems described herein, is the provision of a leak detection pan 82 located at the bottom of the housing 22 of the cycler 20 and a corresponding leak detection sensor 84 that outputs to the control unit 100. The leak detection pan 82 is made of one of the materials described herein and is inclined or funnel-shaped to have an angle or funnel shape and collects any kind of liquid (fresh or used PD fluid, disinfectant, flushing fluid, RO or distilled water) that falls from the reusable tube of the cycler 20 due to a faulty connection, material burst, or other reason. In one embodiment, the leak detection sensor 84 does not come into direct contact with the leaked liquid and may be any type of sensor described herein for level sensors 62a and 62b, e.g., an ultrasonic sensor, an inductive sensor, a volume sensor, and / or an optical sensor. Alternatively, the leak detection sensor 84 may come into direct contact with the leaked material, for example, via an electrical contact closure sensor. Different types of sensors 84 and combinations of multiple sensors 84 may be provided as needed. When the control unit 100 receives a leak signal from the leak detection sensor 84, it issues an alarm and, if necessary, automatically sends information to the network service portal indicating that a temporary replacement cycler is needed while the leaking cycler is being repaired.
[0244] A further addition to system 10c, which can be provided in any of the systems described herein, is the optional addition of a pressure sensor 78c upstream of the pump 70. Measuring the suction pressure of the pump 70 helps the control unit 100 to determine the pump volume more accurately. For example, the output of a particular piston pump depends on the inlet pressure. Another application of the pressure sensor 78c is to determine whether the currently used containers or bags 38a-38c are empty or nearly empty. In this case as well, the emptying determination may be used (i) during the final drainage from all containers at the end of the procedure, and / or (ii) at the beginning of the disinfection sequence, while injecting the disinfection circuit, so as to know when one container 38a-38c is empty and to switch the injection to use another container. Thus, the pressure sensor 78c can eliminate the need for the flow switch 80 or can be used in addition to the switch.
[0245] A further addition to system 10c, which can be provided in any of the systems described herein, is the provision of redundant pressure sensors 78b1 and 78b2 (and optionally pressure sensor 78a). In this case, one sensor, e.g., sensor 78b1, is used for pump control as described herein, and the other pressure sensor, e.g., sensor 78b2, is a safety or monitoring sensor to verify that the control sensor 78b1 is displaying correctly. Otherwise, the control unit 100 automatically sends information to the network service portal indicating that an alarm is issued and, optionally, that recalibration of the control sensor 78b1 (or both sensors) is required.
[0246] A further addition to system 10c, which can be provided in any of the systems described herein, is the addition of a flow cross, marked with an X in Figures 15 to 21. The flow cross helps reduce the overall amount and volume of reusable tubing inside the cycler 20 of system 10c and can also reduce the number of valves required. The cross also allows for minimizing the portion of the fluid circuit in the cycler 20 that is shared by both fresh and used PD fluid.
[0247] Figures 15 to 18 show separate parts of one embodiment relating to the priming sequence of system 10c. As with the figures relating to systems 10a and 10b, the blacked-out valves are open at least at some point in their sequence portion. The arrows indicate one embodiment relating to the direction of flow of fresh or used dialysate. Also, each patient-side line connector 32b in Figures 15 to 18 is connected to a reusable patient-side line 28. It should be understood that the order of the priming sequence portions in Figures 15 to 18 can be shuffled, reversed, or changed as desired. However, it may be preferable to start with a larger source of fresh PD solution used throughout the course of the procedure, for example, containers 38a and 38b containing 1.36%, 2.27%, or 3.86% glucose PD solution, rather than a smaller container 38c containing icodextrin, for example, which is used only for the final infusion. Alternatively, regardless of the order, the priming using icodextrin may be solely for priming its associated reusable PD fluid line 24c, and fresh PD fluid from one or more other containers may be used to priming the rest of the fluid circuit of the cycler 20.
[0248] In Figure 15, the control unit 100 directs the three-way valve 154 in the treatment direction and opens the two-way supply valve 54c, vent valve 54e, and drain valve 54i so that fresh PD fluid is drawn from the PD fluid container or bag 38c and primes the reusable PD fluid line 24c, supply line 52a3, dialysate line 52b, vent line 52v, dialysate line 52d, and drain line 52i up to the drain line 36. In another embodiment, since the PD fluid container or bag 38c contains icodextrin, the priming in Figure 15 is instead only from the container or bag 38c through the PD fluid line 24c to the three-way valve 154, and valves 54e and 54i may be closed instead.
[0249] In Figure 16, the control unit 100 directs the three-way valve 154 in the treatment direction and opens the two-way supply valve 54b, the vent valve 54e, and the drain valve 54i so that fresh PD fluid is drawn from the PD fluid container or bag 38b and the reusable PD fluid line 24b, supply line 52a2, dialysate line 52b, vent line 52v, dialysate line 52d, and drain line 52i are primed up to the drain line 36.
[0250] In Figure 17, the control unit 100 directs the three-way valve 154 in the treatment direction (although this is not necessary for the flow path), opens the two-way disinfection valve 54h1, the patient-side valve 54g, and the drain valve 52i, so that fresh PD fluid is drawn from the PD fluid container or bag 38a and the reusable PD fluid line 24a, disinfection line 52h1, part of the patient-side line 52g, dialysate line 52d, and drain line 52i are primed up to the drain.
[0251] In Figure 18, the control unit 100 directs the three-way valve 154 in the treatment direction (although this is not necessary for the flow path), opens the two-way supply valve 54a, the patient-side valve 54f, and the disinfection valve 54h2, and switches the drip chamber valve 54d and the vent valve 54e open and closed so that fresh PD fluid is drawn from the PD fluid container or bag 38a, and the reusable PD fluid line 24a, supply line 52a1, dialysate line 52b, and, by the above switching of opening and closing, selectively primes the dialysate line 52c and vent line 52v, dialysate line 52d, part of patient-side line 52f, part of patient-side line 52g, and the disinfection line 52h2 up to the drain.
[0252] Figures 17 and 18 show that the same container 38a can be used to prime different parts of the fluid circuit of the cycler 20. Similarly, container 38a may be used to prime the part of the fluid circuit that was primed in Figure 16, while container 38b in Figure 16 may be used only to prime up to the three-way valve 154. Alternatively, the roles of containers 38a and 38b may be reversed, with container 38b being used to prime most of the fluid circuit, and container 38b being used only to prime up to valves 54a and 54h1.
[0253] Figure 19 shows one embodiment of infusion to a patient using system 10c. Figure 19 shows infusion to a patient sourced from a PD fluid container or bag 38a, but the orientation of the three-way valve 154 and the open two-way PD valve 54d and patient-side valve 54f remain the same for each PD fluid container or bag 38a to 38c. To use PD fluid container or bag 38a, the control unit 100 causes the supply valve 54a to open as shown. To use PD fluid container or bag 38b, the control unit 100 causes the supply valve 54b to open. To use PD fluid container or bag 38c, the control unit 100 causes the supply valve 54c to open. The control unit 100 also uses feedback from at least the temperature sensor 58a, as described herein, to cause the inline heater 56 to heat the fresh PD fluid to body temperature or another desired temperature. The control unit 100 also causes the dialysate pump 70, for example, an essentially volumetrically accurate piston pump, to measure the precise amount of fresh PD fluid to patient P through the PD fluid lines 52b, 52c, 52d, patient-side line 52f, fresh PD lumen 28a, and disposable filter set 40. The pump pressure is controlled to a safe positive pressure in the machine, for example, 1 to 5 psig (e.g., 2 psig (14 kPa)), by feedback from pressure sensors 78a and 78b1 or 78b2 as described herein, using IPP via the return lumen 28b as described above. Note that the disposable filter set 40, shown unused in Figures 15 to 18, is connected and used for infusion to the patient in Figure 19.
[0254] Figure 20 shows one embodiment of drainage from a patient using system 10c. Figure 20 shows all supply valves 54a, 54b and 54c closed, as well as disinfection valve 54h1. The control unit 100 opens the patient-side valve 54g and the drain valve 54i so that the PD fluid pump 70 can pump the used dialysate from patient P through the used PD lumen 28b, patient-side line 52g, PD fluid line 52d, reusable drain line 52i, and disposable drain line 36 to an indoor drainpipe or drain container. As described herein, drainage from patient may be terminated when a precise amount of waste fluid has been removed and / or by detecting a characteristic increase in negative pressure indicating that patient P is empty or nearly empty. The pump pressure is controlled to a safe negative pressure in the machine, for example, -1.0 psig to -3.0 psig (e.g., -1.3 psig (-9 kPa)), by feedback from pressure sensors 78a and 78b1 or 78b2 as described herein, using IPP via the infusion lumen 28a as described above. Note that the disposable filter set 40, shown unused in Figures 15 to 18, is connected and used for draining fluid from the patient in Figure 20. Also, as described herein, if the patient P is full of waste fluid from the previous procedure or intermediate exchange when the procedure is started, draining fluid from the patient (Figure 20) may be performed before infusion to the patient (Figure 19).
[0255] Figure 21 shows one embodiment of a disinfection sequence using system 10c. As shown, the PD fluid containers or bags 38a-38c are removed from the reusable PD fluid lines 24a-24c, respectively, after the final draining of the containers and injection into the reusable cycler tubes or lines for disinfection (unless another disinfectant is used). The ends 24d of the reusable PD fluid lines 24a-24c are connected to the disinfection connectors 30a-30c, respectively. The disposable filter set 40 is removed from the reusable patient-side line 28, which is then connected to the patient-side line connector 32b. Figure 21 shows that the control unit 100 causes certain valves to remain open (fully blacked out), while other valves are switched on and off (shaded) during the disinfection sequence. It should be understood that the valves that are opened and the valves that are switched on and off may be modified from the configuration shown in Figure 21. The three-way valve 154 is likely to be switched on and off between the supply lines 52a2, 52a3 and the disinfection connector line 52a4 in any open-to-off switching configuration of the valve. The control unit 100 may operate the pump 70 in one direction or switch it alternately in two directions one or more times. During the disinfection sequence, the control unit 100 causes the heater 56 to heat the disinfectant solution (e.g., fresh PD solution) to a disinfection temperature, e.g., 70°C or higher. The disinfection sequence continues for a specified period to provide an appropriate disinfection dose A0. Fourth Major Embodiment
[0256] Referring here to Figures 22 to 24, another APD system employing disinfection is shown as system 10d. System 10d has many of the same components as systems 10a to 10c, which are usually numbered the same, and includes all the structures, functions, and alternative forms described above with respect to the above systems. For example, system 10d comprises a cycler 20 and a control unit 100 having one or more processors 102, one or more memories 104, a video controller 106, and a user interface 108. The system 10d comprises an inline dialysate heater 56, reusable lines or tubes 52a and 52b, an air trap 60 that works with upper and lower level sensors 62a and 62b respectively, an air trap valve 54d, a vent valve 54e positioned along the vent line 52e, a reusable line or tube 52c, a dialysate pump 70, temperature sensors 58a and 58b, a reusable line or tube 52d, pressure sensors 78a, 78b1, 78b2 and 78c, reusable patient-side tubes or lines 52f and 52g, a hose reel 110, a double-lumen reusable patient-side line 28, a reusable drain tube or line 52i extending to a drain line connector 34 and having a drain line valve 54i, and reusable recirculation disinfection tubes or lines 52r1 and 52r2 that work with disinfection valves 54r1 and 54r2 respectively. A third recirculation or disinfection tube or line 52r3 extends between disinfection connectors 30a and 30b for use during disinfection. A fourth recirculation or disinfection tube or line 52r4 extends between disinfection connectors 30a and 30b for use during disinfection.
[0257] System 10d may also include a conductivity sensor 74, which outputs to the control unit 100, for any of the reasons or applications described herein, although not shown. Each of the pump 70, heater 56, valve and sensor is controlled by and / or outputs to the control unit 100.
[0258] One key difference with respect to system 10d is that the system includes PD fluid containers or bags 38a-38c, each connected to the end 24d of the reusable PD fluid lines 24a-24c (for example, each containing the same or different formulations of PD fluid). System 10d further includes a fourth PD fluid container or bag 38e connected to the end 24d of the reusable PD fluid line 24e. The fourth PD fluid container or bag 38e may contain the same or different types of PD fluid as the PD fluid containers or bags 38a-38c. In one embodiment, the reusable PD fluid lines 24a-24c and 24e extend from an opening 26 defined or provided by the housing 22 of the cycler 20 (see Figure 1).
[0259] Therefore, system 10d is equipped with four disinfection connectors 30a-30c and 30e for connecting to the ends 24d of the reusable PD fluid lines 24a-24c and 24e, respectively, during disinfection. System 10d further employs a patient-side line connector 32b with an internal lumen, for example, a U-shaped lumen, as described in relation to systems 10b and 10c, which guides fresh or used dialysate from one PD fluid lumen 28a or 28b of a double-lubricated reusable patient-side line 28 to the other PD fluid lumen 28b or 28a. System 10d further comprises reusable supply tubes or lines 52a1-52a4, which communicate with reusable supply lines 24a-24c and 24e, respectively, and operate together with valves 54a-54c and 54e, respectively, to deliver PD fluid from the desired PD fluid containers or bags 38a-38c into the cycler 20. In the illustrated embodiment, the three-way valve 154a allows the control unit 100 to select between (i) 2.27% glucose dialysate from containers or bags 38b or 38e and (ii) icodextrin from containers or bags 38c. In the illustrated embodiment, the icodextrin from containers or bags 38c is connected to the normally closed port of the three-way valve 154a.
[0260] Figures 22 to 24 also show that system 10d comprises and uses a disposable filter set 40 that fluid-connects to the fresh PD fluid lumen 28a and the used PD fluid lumen 28b of a reusable double-lumen patient-side line 28. The disposable filter set 40 comprises a disposable connector 42 that connects to the end 28d of the reusable patient-side line 28. The disposable filter set 40 comprises a connector 48 that connects to the patient transport set. The disposable filter set 40 further comprises a sterile-grade filter membrane 46 for further filtering of the fresh PD fluid.
[0261] Similar to system 10c, system 10d is configured such that the drain line 52i during infusion is fluidly connected downstream of the dialysate pump 70. This prevents used PD fluid from being drawn into the pump 70 if the drain valve 54i malfunctions or leaks in any way during infusion to the patient, as is the case with systems 10a and 10b, and instead pushes fresh PD fluid down into the disposable drain line 36.
[0262] System 10d includes many of the additions and advantages described above with respect to System 10c, and includes all the structures, functions, and alternative forms described for such additions and advantages. For example, System 10d includes a leak detection pan 82 located at the bottom of the housing 22 of the cycler 20, and a corresponding leak detection sensor 84 that outputs to the control unit 100. In another example, System 10d may be provided with an additional pressure sensor 78c located upstream of the dialysate pump 70. In this case as well, measuring the suction pressure of the pump 70 can help the control unit 100 determine the pump volume more accurately. The additional pressure sensor 78c in the illustrated embodiment is located along the vent line 52e, which can be filled with air or a mixture of air and PD fluid, but the air or mixture of air and PD fluid should still be at the same negative pressure as the PD fluid located in the PD fluid line 52c. In a further example, system 10d may include redundant pressure sensors 78b1 and 78b2, the output of one of which is used for pump control as described herein, and the output of the other pressure sensor is a safety or monitoring output to ensure that the control pressure sensor is displaying correctly. In yet another example, system 10d may employ one or more crosses marked with X in Figures 22 to 24, the crosses may (i) reduce the overall amount and volume of reusable tubing inside, (ii) reduce the number of valves required, and (iii) minimize the portion of the fluid circuit shared by both fresh and used PD fluid.
[0263] Another difference with respect to system 10d is that the system includes an acid supply source such as a citric acid container or bag 66. The citric acid container or bag 66 is selectively fluid-communicated with a second three-way valve 154b via a citric acid valve 54m positioned along a citric acid line 52m. In one embodiment, the citric acid line 52m is connected to the normally closed port of the second three-way valve 154b to provide a redundant valve between the citric acid container or bag 66 and the PD fluid circuit during treatment. The redundant valve ensures that citric acid (or other acid) does not reach the treatment fluid line during treatment. Instead, citric acid (or other acid) is used during disinfection. In one embodiment, the control unit 100 entrusts the essentially precise pump 70 to operate in reverse with the citric acid valve 54m open and the second three-way valve 154b biased to open its normally closed port and close its normally open port. The inherently precise pump 70 measures the desired amount of citric acid (or other acid) and supplies it to the disinfection circuit 50.
[0264] Figure 22 shows one embodiment of infusion to a patient using system 10d. Figure 22 shows infusion to a patient sourced from a PD fluid container or bag 38a (see arrow), with the control unit 100 opening the supply valve 54a, although the infusion to the patient may be supplied from any container or bag 38a-38c or 38e. To use a PD fluid container or bag 38b, the control unit 100 instead opens the supply valve 54b and de-energizes the first three-way valve 154a, leaving its normally open port open. To use a PD fluid container or bag 38c (for example, containing icodextrin), the control unit 100 instead energizes the first three-way valve 154a, closing its normally open port and opening its normally closed port. To use the PD fluid container or bag 38e, the control unit 100 instead causes the supply valve 54e to open and the first three-way valve 154a to de-energize, leaving its normally open port open. During fluid injection, the control unit 100 causes all other valves, including the recirculation or disinfection valves 54r1 and 54r2, the vent valve 54e, the patient-side drain valve 54g, and the drain valve 54i, to close.
[0265] During the infusion to the patient in Figure 22, the control unit 100 also uses feedback from at least the temperature sensor 58a, as described herein, to cause the inline heater 56 to heat the fresh PD fluid to body temperature or another desired temperature. The control unit 100 also causes the dialysate pump 70, for example, an essentially volumetrically accurate piston pump, to measure the precise amount of fresh PD fluid to patient P through the PD fluid lines 52b, 52c, 52d, the fresh PD patient-side line 52f, the fresh PD lumen 28a of the double-lubricated patient-side line 28, and the disposable filter set 40 (see arrows). The pump pressure is controlled to a safe positive pressure in the apparatus, between 1 and 5 psig (e.g., 2 psig (14 kPa)), by feedback from one or more pressure sensors 78a, 78b1, or 78b2, as described herein. Since one or more pressure sensors 78b1 or 78b2 are positioned between valves 54g, 54r3 and patient P, pressure sensors 78b1 or 78b2 may be used to detect IPP via the return lumen 28b as described above. Note that the disposable filter set 40, shown unused in Figure 24, is connected and used for infusion to the patient in Figure 22.
[0266] Figure 23 shows one embodiment of drainage from a patient using system 10d. In Figure 20, the control unit 100 closes all supply valves 54a, 54b and 54e, the vent valve 54e, the patient-side infusion valve 54f, and the recirculation or disinfection valves 54r1 and 54r2, and de-energizes the first and second three-way valves 154a and 154b. The control unit 100 opens the patient-side drain valve 54g and the drain valve 54i, allowing the PD fluid pump 70 to pump used dialysate from patient P through the used PD lumen 28b of the double-lube patient-side line 28, the reusable used PD line 52g, the reusable PD fluid lines 52c and 52d, the reusable drain line 52i, and the disposable drain line 36 to an indoor drainpipe or drain container (see arrows). As described herein, drainage from the patient may be terminated when a precise amount of waste fluid has been removed and / or by detecting a characteristic increase in negative pressure indicating that patient P is empty or nearly empty.
[0267] The pump pressure for draining fluid from the patient in Figure 23 is controlled to a safe negative pressure in the machine, between -1.0 psig and -3.0 psig (e.g., -1.3 psig (-9 kPa)), by feedback from at least one pressure sensor 78a, 78b1, 78b2, or 78c, as described herein. For IPP detection using the pressure sensor 78a via the infusion lumen 28a as described above, the pressure sensor 78a may be moved to a position between the patient-side infusion valve 54f and the hose reel 110, so that the patient-side infusion valve 54f is closed when draining fluid from the patient, and the pressure sensor 78a can simultaneously detect the pressure in the patient P via the infusion lumen 28a. Note that the disposable filter set 40, shown unused in Figure 24, is connected and used for draining fluid from the patient in Figure 23. Furthermore, as described herein, if the treatment begins with patient P full of waste fluid from the previous treatment or intermediate exchange, drainage from the patient (Figure 23) may be performed before infusion into the patient (Figure 13).
[0268] Figure 24 shows one embodiment of a disinfection sequence using system 10d. As shown, the PD liquid containers or bags 38a-38c and 38e are removed from the reusable PD liquid lines 24a-24c and 24e, respectively, after the final drainage of the containers and injection into the reusable cycler tube or line for disinfection (unless another disinfectant is used). The ends 24d of the reusable PD liquid lines 24a-24c and 24e are connected to disinfection connectors 30a-30c and 30e, respectively. The disposable filter set 40 is removed from the reusable patient-side line 28, which is then connected to the patient-side line connector 32b. The disposable drain line 36 is removed from the drain line connector 34, which is then closed and sealed by a movable, e.g., rotatable or sliding cover 34c. This forms the disinfection circuit 50, as shown in Figure 24.
[0269] During disinfection, as with systems 10a-10c, the control unit 100 keeps certain valves open while other valves are switched during the disinfection sequence. The first and second three-way valves 154a and 154b may be switched between a de-energized state and an energized state. The control unit 100 may operate the pump 70 in one direction or switch it alternately in two directions one or more times. During the disinfection sequence, the control unit 100 causes the heater 56 to heat the disinfectant solution (e.g., fresh PD solution) to a disinfection temperature, e.g., 70°C or higher. The disinfection sequence continues for a specified period to provide an appropriate disinfectant dose A0. Another patient-side line filter set
[0270] Referring here to Figure 25, another disposable patient-side line filter set 140 is disclosed that can be used with any of the systems described herein (described next in system 210). The disposable patient-side line filter set 140 includes a connector 142 that connects to the end of an alternative single-lumen reusable patient-side line 128. The disposable patient-side line filter set 140 may be made of, for example, any of the polymer materials described herein. The disposable patient-side line filter set 140 further includes, like the disposable patient-side line filter set 40, (i) a first or fresh disposable line 144a communicating with the single-lumen reusable patient-side line 128, and (ii) a second or used disposable line 144b communicating with the same single-lumen reusable patient-side line 128. A sterile-grade filter membrane 46, including all of the structures, functions and alternative forms described above, is positioned within or along the first or fresh disposable line 144a to provide the final stage of PD fluid filtration before PD fluid delivery to the patient. The disposable lines 144a for fresh supplies and 144b for used supplies converge into a common line 148 that connects to the patient transport set.
[0271] A check valve or one-way valve 150 is located in the disposable line 144b for used fluid. The check valve 150 is directed to force the fresh PD fluid being pumped to the patient through a sterile-grade filter membrane 46 for final purification and sterilization before delivery to the patient. The orientation of the check valve or one-way valve 150 allows used PD fluid or waste fluid to be drawn in through a second or disposable line 144b for used fluid under negative pressure. In one embodiment, the check valve or one-way valve 150 is configured such that the negative pressure required to draw used PD fluid through the valve 150 is less than the pressure required to draw used PD fluid back through the sterile-grade filter membrane 46. Thus, waste fluid taking the path of least resistance mainly flows through the check valve or one-way valve 150 along the disposable line 144b for used fluid. However, any waste fluid flowing through the sterile-grade filter membrane 46 is not harmful to the filter, and the filter only needs to remain intact for the current procedure. Furthermore, fibrin and other substances trapped on the patient side of the sterile-grade filter membrane 46 are pushed back to the patient during the next infusion, thus cleaning the filter membrane 46. Hose reel
[0272] Figures 2, 5 through 24, 28, 29, 31, and 32 show that any of the systems described herein may be provided with a spool or hose reel 110, respectively, located within the housing 22 or 222 of the APD cycler 20 or 220. The hose reel 110 is configured to automatically reel in the patient-side line when a reusable patient-side line 28 or 128 is connected to the patient-side line connectors 32a, 32b, or 132, or when it is not connected to a patient. Figure 26 schematically shows one embodiment of the fluid-responsive hose reel 110. The hose reel 110 may be made of any of the plastics, polymers, and / or metals described herein. Any part of the hose reel 110 that comes into contact with fresh or used PD fluid is made of medically and physiologically safe materials. In the illustrated embodiment, the hose reel comprises winding reels 112a and 112b, between which a reusable double-lume patient-side line 28 or a single-lume patient-side line 128 is unwound and rewound.
[0273] Rotating seals 114a and 114b extend from the winding reels 112a and 112b, respectively, and may be formed together with the winding reels 112a and 112b. Rotating seal 114a rotatably seals one end of the fixed fresh PD fluid line 52f via a compressible gasket, such as an O-ring gasket made of a medically safe material, such as silicone rubber. Rotating seal 114b rotatably seals one end of the fixed used PD fluid line 52g via a compressible gasket, such as an O-ring gasket made of a medically safe material. The rotating seals 114a and 114b allow the hose reel 110 to rotate liquid-tightly with respect to the fixed fresh and used PD fluid lines 52f and 52g located within the housing 22 of the cycler 20. In the illustrated embodiment, a line 52f for fixed fresh PD fluid and a line 52g for used PD fluid are shown extending from opposite directions onto the winding reels 112a and 112b, respectively. In another embodiment, the lines 52f and 52g for fixed fresh and used PD fluid extend from the same direction onto one of the winding reels 112a and 112b. In this case, the rotary seal 114b may rotate around the rotary seal 114a in a sealed state, or vice versa.
[0274] In the illustrated embodiment, a rotary fresh liquid hose reel path 116a is formed within the rotary winding spool 118. The rotary fresh liquid hose reel path 116a is in fluid communication with a fixed line 52f for fresh PD fluid. A rotary used liquid hose reel path 116b is formed within the rotary winding spool 118. The rotary used liquid hose reel path 116b is in fluid communication with a fixed line 52g for used PD fluid. Winding reels 112a, 112b may be formed together with the rotary winding spool 118 or may be attached to the rotary winding spool 118. The rotary fresh and used liquid hose reel paths 116a, 116b indicate that in each of the systems 10a-10d and 210 described herein, fresh and used PD fluids flow through the hose reel 110. Furthermore, it should be understood that the rotating fresh and used liquid hose reel paths 116a and 116b of the hose reel 110 form part of the disinfection circuits described herein, such as the disinfection circuits 50 and 250.
[0275] A rotary connector 120 for connecting to the double-lume patient-side line 28 is formed with or attached to the winding spool 118. One end of the double-lume patient-side line 28 is sealed and attached to the rotary connector 120. Thus, the double-lume patient-side line 28 extends from the rotary connector 120. The fresh lumen 120a of the rotary connector 120 is in fluid communication with the fresh fluid hose reel route 116a and the fresh PD fluid lumen 28a of the reusable double-lume patient-side line 28. The used lumen 120b of the rotary connector 120 is in fluid communication with the used fluid hose reel route 116b and the used PD fluid lumen 28b of the reusable double-lume patient-side line 28. In another embodiment using an alternative single-lumen patient-side line connector 132 and an alternative single-lumen reusable patient-side line, fresh and used fluid hose reel routes 116a, 116b fluidly merge to form a T-junction before extending to a single lumen provided by a rotary connector 120.
[0276] Referring here to Figure 27, a portion of the cycler housing 22 for any of the systems 10a-10d and 210 described herein is shown. For reference, one embodiment of the user interface 108 is shown. Also shown are two positions of the movable, for example, rotatable or sliding cover 34c of the drain line connector 34, one position in which the cover 34c is rotated upward to allow a disposable drain line 36 to be connected to the drain line connector 34, and the other position in which the cover 34c is rotated downward to seal and cover the drain line connector 34 when the disposable drain line 36 is removed for disinfection.
[0277] Figure 27 also shows a pressable actuator or button 122 that can be operated (e.g., pressed) by a patient or other user, allowing the hose reel 110 to release a releaseable lock so that a reusable patient-side line 28 or 128 can be drawn into and wound into the housing 22. Until the actuator or button 122 is operated (e.g., pressed), the reusable patient-side line 28 or 128 remains unwinded from the spool or hose reel 110, and therefore the spool does not pull the reusable patient-side line during the procedure. In one embodiment, the actuator or button 122 is an instantaneous button that the patient must continuously press while the patient-side line is being drawn into and wound into the hose reel 110. When the patient or user stops pressing the button 122, the drawing stops. Such a configuration of the pressable actuator button 122 has the additional advantage that the patient or user can pull the patient-side line 28 or 128 from the housing 22 to any desired distance, up to the maximum distance, and the patient-side line is held in place at the desired distance by a releaseable lock.
[0278] Figure 27 further illustrates the alternative patient-side line connector 32c. Patient-side line connectors 32a, 32b, and 132 are shown as being provided by or mounted on the housing 22 of the cycler 20, respectively, with the patient-side line 28 or 128 connected to the patient-side line connectors 32a, 32b, and 132 from outside the housing 22. The alternative patient-side line connector 32c is neither provided by nor mounted on the housing 22, and is instead freed from the cycler 20 and the patient-side line 28 or 128. When not needed (when the patient-side line 28 or 128 is connected to the patient), the alternative patient-side line connector 32c is housed in the cavity 124 provided by the housing 22. When the patient disconnects a reusable patient-side line 28 or 128 from the patient-side line filter set 40 or 140, respectively, and the patient-side line connector 32c is required for disinfection, the patient pulls the patient-side line connector 32c out of the cavity 124 and connects the connector 32c to the end of the reusable patient-side line 28 or 128. The patient then presses and holds the actuator or button 122, allowing the hose reel 110 to automatically retract and wind the patient-side line 28 or 128, thereby retracting the patient-side line connector 32c into the docking port 126 and completing the winding.
[0279] In the case of a double-lume patient-side line 28, the patient-side line connector 32c has an internal lumen, for example, a U-shaped or 180-degree lumen, which guides fresh or used dialysate from one PD fluid lumen 28a or 28b of the double-lume reusable patient-side line 28 to the other PD fluid lumen 28b or 28a. During disinfection, disinfectant, for example heated fresh PD fluid, can flow up one lumen 28a or 28b of the double-lume reusable patient-side line 28 and down through the patient-side line connector 32c to the other lumen of the double-lume reusable patient-side line 28.
[0280] The spool or hose reel 110 is useful during thermal disinfection because it helps retain heat from the heated disinfectant (PD solution, water, or other) in the wound patient-side line 28 or 128 by being wound around it (reducing the surface area exposed to the surroundings), and because the winding is located within the housing 22 or 222. If it is determined that holding the patient-side line 28 or 128 wound on the spool or hose reel 110 within the housing 22 or 222 makes the housing too large or cumbersome, the spool or hose reel 110 may be provided separately from the housing 22 or 222 instead. In this case, the separate spool or housing 22 or 222 on which the patient-side line 28 or 128 is wound may be provided within a separate cover or enclosure to help retain heat from the heated disinfectant. Water disinfection using water purification
[0281] Figures 28 and 29 show another disinfection system 210 that uses water for disinfection. System 210 has many of the same components as systems 10a-10d, which are numbered the same and include all the materials, structures, functions, and alternative forms described in relation to systems 10a-10d. In particular, moving generally from right to left, system 210, like systems 10a and 10b, comprises one or more PD liquid containers or bags 38a-38c, in which case the PD liquid container or bag 38a is connected to the end 24d of a reusable PD liquid line 24a, which is releasably connected to a disinfection connector 30a during the disinfection and water purification sequence described below. The PD liquid containers or bags 38a-38c may each contain different types and formulations of fresh PD liquid as described above.
[0282] A disinfection connector 30a, a drainage line connector 34 (which may be releasably covered by a movable, e.g., rotatable or sliding cover 34c), and an alternative single-lumen patient-side line connector 132 extend from the housing 222 of the cycler 220 of the system 210. The housing contains a dialysate inline heater 56, which may be a resistance heater having a reusable heater body that accepts PD fluid for treatment heating and water for disinfection heating. A temperature sensor 58a provides temperature feedback for controlling the dialysate inline heater 56 as described above. Downstream of the dialysate inline heater 56 is an air trap 60, which works together with upper and lower level sensors 62a and 62b.
[0283] System 210 also includes a dialysate pump 70 having a reusable pump body that receives fresh and used PD fluid as well as water for pumping. The dialysate pump 70 is inherently precise and may be a piston, membrane, gear pump (a gear pump may be better suited in this case to work with the flow meter 226) or centrifugal pump. System 210 further includes a flow meter 226 (which may also be provided in systems 10a-10d) to generate flow output for treatment, disinfection, and water purification sequences. A conductivity sensor 74 with temperature compensation via a temperature sensor 58b is also provided for any of the purposes described above. A pressure sensor 78a is provided to output for controlling the patient pressure of fresh PD fluid and patient pressure of used PD fluid as well as the disinfection and water purification sequence pressures.
[0284] In the illustrated embodiment, a single-lumen reusable patient-side line 128 is provided, which operates in conjunction with an alternative disposable patient-side line filter set 140, as described in relation to Figure 25. The single-lumen reusable patient-side line 128 has a terminal 128d that is releasably plugged into an alternative single-lumen patient-side line connector 132 when not in use for treatment, for example during disinfection and water purification sequences.
[0285] System 210 also includes several bidirectional fluid valves 254a-254h, which are electrically operated valves with reusable valve bodies that either close (e.g., when power is not supplied for fail-safe operation) or allow PD fluid or water to flow through the valve body (e.g., when power is supplied). A three-way valve 254i is also provided. The valves include a PD fluid line valve 254a, disinfection line valves 254b and 254c, an air trap valve 254d, a vent valve 254e, a drainage line valve 254f, a patient-side line valve 254g, and water purification valves 254h and 254i (e.g., three-way). The PD fluid line valve 254a allows fresh PD fluid to be pumped to the patient. During disinfection, the end 24d of the reusable PD fluid line 24a is connected to the disinfection connector 30a, thereby allowing disinfectant water to circulate into the PD fluid line upstream of the inline heater 56. Disinfection line valves 254b and 254c, when open, allow water to circulate for disinfection and water purification. The air trap valve 254d allows liquid to be injected into the air trap 60 when closed, and allows fresh PD fluid to flow for treatment when open. The vent valve 254e is opened when liquid is injected into or drained from the air trap 60. The drain valve 254f is opened when draining from the patient. The water purification valve 254h isolates the water tank 230 or allows water to be recirculated for disinfection. In the illustrated configuration, the three-way water tank valve 254i is either (i) in the direction in which the purification cartridge 240 is isolated (Figure 28), or (ii) in the direction in which the purification cartridge 240 becomes part of the working fluid circuit (Figure 29).
[0286] The cycler 220 of system 210 is equipped with a user interface 108, including all the structures, functions, and alternative forms described above, under the control of the video controller 106 of the control unit 100. The control unit 100 is equipped with one or more processors 102 and one or more memories 104 that receive, store, and process signals or outputs from a pressure sensor 78a, temperature sensors 58a and 58b, and conductivity sensor 74. The control unit 100 uses pressure feedback to control the dialysate pump 70 to pump fresh and used PD fluid at safe patient pressure limits for treatment, as well as system limits for disinfection and water purification. The control unit 100 uses temperature feedback to control the inline dialysate heater 56 to heat fresh dialysate to, for example, body temperature, and disinfectant water, for example, reverse osmosis ("RO") water, to disinfection temperature, for example, 70°C or higher. The control unit 100 uses temperature-compensated conductivity readings to analyze fresh and / or used dialysate for the reasons described herein.
[0287] As detailed below, the control unit 100 also opens and closes the dialysate valves 254a to 254i in cooperation with the operation of the dialysate pump and heater 56 to perform the priming sequence (e.g., using fresh PD fluid), the infusion sequence to the patient (using fresh PD fluid), the drainage sequence from the patient (used PD fluid or waste fluid), the disinfection sequence after the PD procedure (using water or other disinfectant contained in the tank 30, such as citric acid solution), and the water purification sequence after the disinfection sequence (using water).
[0288] The cycler 220 of system 210 comprises a water tank 230 containing a desired amount, for example, 2 to 4 liters, or enough to completely fill or at least sufficiently fill, of water (or other disinfectant), and a disinfection and water purification circuit 250, the disinfection and water purification circuit 250 comprising lines associated with each of the fluid valves 254a to 254i, a reusable PD fluid line 24a, and a reusable patient-side line 128. The water tank 230 may be made of any of the materials described herein, for example, and is equipped with a removable and resealable cap 232 accessible from the outside of the housing 222 for filling the water tank 230 when needed.
[0289] Level sensors 234a, 234b, and 234c are provided to detect high, medium, and low liquid levels in the water tank 230, respectively. Any or all of the level sensors 62a, 62b, 234a, 234b, and 234c may be non-invasive ultrasonic sensors, inductive sensors, volumetric sensors, and / or optical sensors that detect whether water (or other disinfectant) is present or absent at a specific level set relative to the air trap 60 or the water tank 230. The level sensors 234a, 234b, and 234c can be output to the control unit 100 and used to ensure that a desired level of water remains in the tank during treatment (e.g., water should be at the high level sensor position), disinfection (e.g., water should be at the medium level sensor position), and water purification (e.g., water should be at the low level sensor position).
[0290] Figures 28 and 29 also show that the purification cartridge 240 is coupled between an adsorbent line or tube 252a leading to a three-way water purification valve 254i and an adsorbent line or tube 252b leading to a water tank 230. Figure 1 also shows that the purification cartridge 240 can be conveniently slid into a slot 224 of the housing 222 of the cycler 220. In Figure 1, sliding the purification cartridge 240 into the slot 224 establishes a first sealed fluid communication with the adsorbent line or tube 252a and a second sealed fluid communication with the adsorbent line or tube 252b. The purification cartridge 240 may be, for example, an adsorbent cartridge containing activated carbon. Disinfection lines or tubes 252c and 252d are arranged to be in sealed fluid communication with the water tank 230. In one embodiment, the control unit 100 monitors the service time or number of procedures performed by the purification cartridge 240 and prompts the patient or caregiver, via the user interface 108, to replace the purification cartridge 240 after a predetermined number of service hours or procedures. As described herein, the control unit 100 may further include a transceiver (not shown) and a wired or wireless connection to a network, such as the Internet, to transmit procedure data, such as service time or number of procedures, relating to the purification cartridge 240, to a physician's or clinician's server that interfaces with the physician's or clinician's computer, and to receive other instructions from the physician's or clinician's server, such as prescription instructions or notifications to replace the purification cartridge 240.
[0291] In one embodiment, the control unit 100 performs a priming sequence by drawing fresh PD fluid from the PD fluid container or bag 38a using the dialysate pump 70 and pushing the fluid through a reusable patient-side line 128 and a disposable drainage line 36 to an indoor drainpipe or drain container. The control unit 100 performs the first drainage sequence by drawing used PD fluid or waste fluid from the patient through a disposable patient-side line filter set 140 and a reusable patient-side line 128 using the dialysate pump 70 and pushing the used PD fluid to an indoor drainpipe or drain container. In one embodiment, the control unit 100 performs a patient infusion sequence by drawing fresh PD fluid from the PD fluid container or bag 38a using the dialysate pump 70 and pushing the fresh PD fluid to the patient through a reusable patient-side line 128, a disposable patient-side line filter set 140, and a patient transfer set. The drainage and infusion sequences are repeated until the procedure is complete.
[0292] After the procedure, it is advisable (though not mandatory) to first drain as much used PD fluid as possible through the drainage line 36 to an indoor drainpipe or drainage container. In this case, the control unit 100 opens the vent valve 254e to allow air to flow into the PD fluid circuit, operates the dialysate pump 70 in the normal procedure direction to draw the used PD fluid out of the chamber 60 and the intervening PD line through the pump, and then passes the fluid through valve 254b and the drainage port 34 to the drain via the drainage line 36. During this stage, valves 254f and 254c are closed. By draining as much used PD fluid as possible, the duration of the disinfectant solution can be extended. Therefore, it is conceivable to add a further three-way valve (not shown) between valve 254a and valve 254h, which can be switched by the control unit 100 to either allow fresh dialysis fluid to enter from the reusable PD fluid line 24a for treatment, or allow air to enter from the disinfection connector 30a to backfill the PD fluid that was drained before treatment. By drawing air in from the disinfection connector 30a, more of the PD circuit can be drained.
[0293] After any embodiment of PD fluid discharge, the end 128d of the reusable patient-side line 128 is then connected to the single-lumen patient-side line connector 132, the disposable drainage line 36 is discarded, the rotatable or sliding cover 34c seals the drainage line connector 34 in a closed state, and the end 24d of the reusable PD fluid line 24a is connected to the disinfection connector 30a (and so on for any further reusable PD fluid lines 24b, 24c, etc.). The control unit 100 then opens all fluid valves except the vent valve 254e (or closes or switches the opening and closing of a specific valve, e.g., one or more of the PD fluid line valves 54a-54c), and sets the three-way valve 254i in Figure 28 so that the purification cartridge 240 is isolated, but the disinfection lines or tubes 252c and 252d are open to form the disinfection circuit 250. Next, the dialysate pump 70 circulates water from the water tank 230 within the disinfection circuit 250, and the heater 56 heats the water to, for example, at least 70°C. The dialysate pump 70 can pump the heated water in the forward and reverse directions, and / or the heated water may contain slag of entrained air to increase turbulence and improve disinfection. In one embodiment, the disinfection sequence is performed for a predetermined period of time.
[0294] In one embodiment, the control unit 100 discharges disinfectant water or other disinfectant solution as the first step in the next procedure, for example, when a new drain line 36 is connected to the drain line connector 34. Figure 29 shows another embodiment in which, instead of discharging the water that has just been used for disinfection, which may contain fats, proteins, fibrin, etc., removed from the inner wall of the disinfection circuit 250, the control unit 100 instead proceeds to a water purification sequence, in which the three-way valve 254i in Figure 29 is switched to close the disinfection line or tube 252c, and the purification cartridge 240 and adsorbent lines or tubes 252a and 252b are brought into fluid communication with the water purification circuit 250, which also includes the disinfection line 252d. With all valves except the vent valve 254e open, the dialysate pump 70 circulates water from the water tank 230 through the water purification circuit 250, which includes the purification cartridge 240 configured to purify the water. The dialysate heater 56 may or may not be energized. In one embodiment, water treatment is performed for a predetermined period of time. Once water purification is complete, the control unit 100 causes the dialysate pump 70 to send as much water as possible back to the water tank 230, where the water is stored for disinfection of the cycler 20 after the next treatment. For this purpose, the vent valve 254e may be opened during the water return to backfill the line with air filtered by a hydrophobic filter provided with the vent valve 254e.
[0295] As shown in Figures 31 and 32, in Figures 28 and 29, an additional pump 350 under the control of the control unit 100 may be added, which is positioned and arranged to independently circulate water from the water tank 230 to the purification cartridge 240 and back to the water tank 230 (for example, along line 252a or line 252c in Figures 28 and 29, where a three-way valve 254i is redirected to allow recirculation). In such pumping, the rest of the PD fluid path is not affected. The disinfectant water or other disinfectant in the PD fluid path after use is then drained or returned to the water tank 230 before the next treatment. If returned to the water tank 230, the water is purified in the next water purification cycle using the purification cartridge 240 and the additional pump under the control of the control unit. In either case, by adding a dedicated purification pump 350, the possibility of bacteria removed in the purification cartridge 240 reaching fresh PD fluid elsewhere in the cycler circuit is prevented. Citric acid disinfection
[0296] For any of systems 10a, 10b, 10c, 10d, and 210, it is conceivable to perform a citric acid disinfection sequence periodically. In this case, a citric acid container or bag 66 may be connected to any of the reusable fluid lines 24a-24c, 24e or to the location shown in relation to system 10d in Figures 22 to 24. The control unit 100 may use the output of a conductivity sensor, such as conductivity sensor 74, to confirm the presence of citric acid, and may enable the dialysate pump 70 to operate only when a reusable patient-side line 28 or 128 is plugged into patient-side line connector 32a, 32b, or 132, or when plugged in by patient-side line connector 32c, as detected as described herein. The citric acid disinfection sequence helps remove and inhibit the growth of biofilms and remove endotoxin residues. Citric acid also helps remove calcium carbonate, which can be a problem when certain PD solutions containing both bicarbonate and calcium are used. Pump flushing flow
[0297] As described above, the dialysate pump 70 is of an inherently precise type and does not require a separate PD fluid volume measuring device such as a balance chamber or a device that uses the law of ideal gases. Similarly, no flow sensor such as a differential flow sensor is required. As shown in Figure 30, in one embodiment, the dialysate pump 70 is an electric piston pump. The piston pump 70 comprises a housing 70h that holds a cylinder 70c, and the piston 70p is actuated by a motor (not shown) that drives a motion coupler 70d coupled to the piston 70p in the cylinder 70c under the control of a control unit 100, the motion coupler 70d converts the rotational motion of the motor into rotational and translational motion of the piston 70p. The housing 70h comprises PD fluid inlet / outlet ports 70e and 70f (bidirectional) and flushing flow ports 70a and 70b (bidirectional or stagnant).
[0298] The motion coupler 70d moves the piston 70p in and out of the cylinder 70c to generate positive and negative pump pressures, respectively. The motion coupler 70d also rotates the piston 70p within the cylinder 70c to move the fluid from one of the ports 70e and 70f, which functions as a PD fluid inlet port, to the other of the ports 70e and 70f, which functions as a PD fluid outlet port. The end of the piston 70p is provided with a notch or groove 70g that forms a flat section. The empty area formed by the groove 70g receives the PD fluid at the inlet port 70e or 70f (under negative pressure when the piston 70p is retracted within the cylinder 70c) and then rotates to expel the PD fluid at the outlet port 70e or 70f (under positive pressure when the piston 70p is extended within the cylinder 70c). The groove 70g provides a valve function for the dialysate pump 70 to have different flow directions.
[0299] The translational and rotational motion of the piston 70p within the cylinder 70c generates heat and friction. Therefore, a flushing flow of liquid is supplied to lubricate the translational and rotational motion of the piston 70p within the cylinder 70c. The flushing flow of liquid, such as reverse osmosis water, distilled water, or deionized water, is supplied to the flushing flow ports 70a and 70b so as to come into contact with the piston 70p as it moves translationally and rotationally within the cylinder 70c. The flushing flow of liquid may be circulating or stagnant.
[0300] The system 210 in Figures 28 and 29 includes a water tank 230. A column of water (not shown) extending from the water tank 230 may be provided to contact the required lubrication area or portion of the piston 70p via the flushing flow ports 70a and 70b. Figures 31 and 32 show another embodiment for using the water in the water tank 230 of the system 210 to supply flushing flow to the flushing flow ports 70a and 70b of the piston pump 70. The system 210 in Figures 31 and 32 includes the structure, function, and alternative forms of each of the similarly numbered components of the system 210 in Figures 28 and 29. In particular, the systems 210 in Figures 31 and 32 each include, as described above, a control unit 100, valves 254a to 254h, lines 252a to 252d, a disinfection and water purification circuit 250, a heater 56, an air trap 60, a PD fluid pump 70, a flow meter 226, a conductivity sensor 74, a pressure sensor 78a, a single-lumen patient-side line connector 132 that replaces the housing 222 of the cycler 220, a single-lumen reusable patient-side line 128 having an end 128d, and a drainage line connector 34.
[0301] The system 210 in Figure 31 does not include the tank line 252c or the three-way valve 254i connected to line 252c, as described in relation to Figures 28 and 29, but does include a flushing flow port 70a, line 252a, and a three-way valve 254j that is in fluid communication with an additional line 252f under the control of a control unit 100, the additional line 252f leading to a flushing flow pump 350 (which may be any type of pump described herein, and in one embodiment is a micropump). The system 210 in Figure 32 includes both the corresponding three-way valve 254j and a three-way valve 254i connected to line 252c. Both systems 210 in Figures 31 and 32 include a secondary flushing flow chamber 260 containing any type of liquid that enters the disinfection tank 230, such as a liquid suitable for both disinfection and flushing flows, such as reverse osmosis water, distilled water, or deionized water.
[0302] In both Figures 31 and 32, the system 210 includes a two-way valve 254k positioned between the recirculation / flushing flow pump 350 and the flushing flow chamber 260. A line 252e with the two-way valve 254l extends from the disinfection or water tank 230 to the flushing flow chamber 260. A line 252g extends from the flushing flow chamber 260 to the flushing flow port 70b of the PD fluid pump 70. A line 252h extends from the flushing flow chamber 260 to the disinfection line valve 254c, which leads to the drain line connector 34.
[0303] By providing both three-way valves 254i and 254j in system 210 of Figure 32, a larger volume of water, possibly all of it, can be introduced into the disinfection sequence. In system 210 of Figure 31, a smaller amount, such as a portion of the total water, is disinfected. The smaller amount of disinfectant, though not always the same, ensures that all the water in Figure 31 is disinfected and purified at some point through multiple sequences.
[0304] During infusion into and drainage from the patient, the control unit 100 opens the flushing flow valve 254k and directs the three-way valve 254j so that the flushing flow water is circulated by the pump 350 from the flushing flow port 70a of the pump 70 through line 252f back to the flushing flow tank 260. The water is then pumped from the flushing flow tank 260 through line 252g to the flushing flow port 70b of the pump 70. Valves 254l, 254c, and 254h and their associated lines are closed.
[0305] For disinfection using the system 210 in Figures 31 and 32, the flushing flow described above is supplied while the PD fluid pump 70 is operating. First, the user interface 108 prompts the user to connect the reusable patient-side line 128 to the single-lubricated patient-side line connector 132, and then the control unit 100 may instruct the pump 70 to pump as much used PD fluid as possible into the drain 36, with the drain line connected to the drain line connector 34. In another embodiment, the control unit 100 may also cause any residual PD fluid to be rinsed into the drain in addition to the disinfection (flushing flow) water. In either case, air can be backfilled into the water purification circuit 250 by the vent valve 254e to initially fill the circuit with air. Next, the user interface 108 prompts the user to disconnect the drain line 36 from the drain line connector 34. Next, the control unit 100 opens all two-way valves (including the tank / chamber valve 254l) except for the drain valve 254f, and operates the pump 70 to fill the disinfection circuit 250 with disinfection / flushing water. In this case, the three-way valve 254j (Figure 31) or 254i (Figure 32) is oriented to isolate the disposable purification cartridge 240.
[0306] Subsequently, in one embodiment, with the disinfection circuit 250 filled with disinfection / flushing water, the control unit 100 performs a water purification step, in which all valves except the flushing flow valve 254k and the tank / chamber valve 254l are closed, and the three-way valves 254j and 254i are directed to circulate the water through the purification cartridge 240. The pump 350 is operated to circulate all the water in the water tank 230 a number of times sufficient to purify it completely. The PD liquid pump 70 is not operated and therefore does not require a flushing flow. The reason for performing the water purification step before the heated portion of the disinfection sequence is to avoid mixing the water used for disinfection with the purified water. Also, using a smaller flushing flow chamber 260 as the source of disinfection water reduces the energy used to disinfect the cycler 220 and shortens the disinfection time because the amount of disinfection is smaller.
[0307] After the water purification stage is complete, the control unit 100 closes the tank / chamber valve 254l and redirects the three-way valves 254j and 254i to prevent water from circulating through the purification cartridge 240. The pump 70 and heater 56 are activated and a flushing flow is supplied to disinfect the disinfection circuit 250 according to any of the embodiments described herein.
[0308] As described above, in one embodiment, systems 10a to 10d use dialysate for disinfection and do not require or have a separate water source. However, glucose or dextrose supplied with the dialysate makes the dialysate unsuitable for use as a flushing fluid for the dialysate pump 70. For any or all of systems 10a to 10d, it is clearly conceivable to provide a flushing flow tank 260 containing any type of flushing flow water described herein, a line 252h to the flushing flow port 70b, a line 252f from the flushing flow port 70a, a recirculation / flushing flow pump 350, a flushing flow valve 254k, and optionally a flushing flow drain line 252h. In this case, a water tank 230 is not provided. Instead, the patient or caregiver periodically replenishes the flushing flow tank 260 with flushing flow water to fill it, for example, via a resealable lid. In one embodiment, the control unit 100 of system 210 is programmed to open the flushing flow valve 254k and operate the pump 350 each time the dialysate pump 70 is activated.
[0309] Referring here to Figure 33, various embodiments of an alternative flushing flow solution are shown, which includes a water generation subsystem 310 that can be used with systems 10a-10d, in one embodiment in which peritoneal dialysate is used for disinfection and no separate water source is required. The subsystem 310 in the illustrated embodiment uses a heater 56 that can operate with a temperature sensor 58a, a vessel or air trap 60 that can operate with level sensors 62a and 62b and a vent valve 54e, a vessel or air trap valve 54d, and a dialysate pump 70, including the structure, function and alternative forms of each of those components described herein. The subsystem 310 also includes a steam line 312 that extends from the vessel or air trap 60 through a steam valve 54s to a condenser 320. The steam condenses in the condenser 320 to form distilled water, which flows, for example, by gravity to a collection chamber 340. The collection chamber 340 supplies flushing fluid to the flushing flow ports 70a and 70b of the dialysate pump 70 as needed. The flushing flow ports 70a and 70b are located in areas of the dialysate pump 70 that require lubrication and, if applicable, cooling. Each of the above components, including all electrical components of the condenser 320, is under the control of and / or outputs to the control unit 100 of the cycler 20.
[0310] The condenser 320 may be provided in multiple ways. In one embodiment, the condenser 320 comprises a fan 322 and a fluid transport structure that forces steam to remain in the airflow region of the fan, for example, in a reusable heat-conducting (e.g., stainless steel) coil. In another embodiment, the condenser 320 comprises a thermoelectric cooler 330, which may be a Peltier element or module. The Peltier module 330 can be considered a solid-state active heat pump that transfers heat from one side of the module to the other side of the module through the consumption of electrical energy.
[0311] The thermoelectric performance of the thermoelectric cooler 330 is a function of the ambient temperature, the heat load, the shape of the thermoelectric cooler 330 (e.g., Peltier shape), and the electrical parameters of the thermoelectric cooler 330 (e.g., Peltier electrical parameters). The amount of heat transferred through the thermoelectric cooler 330 is proportional to the current and time supplied to the cooler by the control unit 100. The cooling effect in one embodiment is expressed by Equation 1, where (Q) is the cooling effect in watts [W], (P) is the Peltier coefficient, (I) is the current, and (t) is the time. [ka]
[0312] The Peltier coefficient (P) depends on the temperature and the material from which the Peltier module is made. The Peltier module may consist of two different materials, which are generally semiconductors. The materials may be arranged thermally in parallel and electrically in series, and may be joined by a thermal plate to allow heat to flow from one side of the module to the other when an electric current or electromagnetic field is applied to the module. In the illustrated embodiment, heat is transferred from the cooling side 332 to the heating side 334 of the Peltier module 330.
[0313] In the illustrated embodiment, a condensation path 336 is formed within the cooling side 332 of the Peltier module 330, which receives steam from the steam line 312 and outputs distilled water to the collection chamber 340 via the distilled water line 314. The condensation path 336 may be a meandering path that increases the contact time with the cooling side 332 of the Peltier module 330. Although the condensation path 336 is shown to extend through the cooling side 332 of the Peltier module 330, the condensation path 336 may instead be located on the underside and in thermal contact with the cooling side 332. Therefore, the condensation path 336 may be made of a reusable heat-conducting material such as stainless steel. Figure 33 further shows that the condenser 320 also includes a fan 322 under the control of the control unit 100 on the heating side 334 of the Peltier module 330, which can dissipate heat from the heating side 334 by convection and increase the efficiency of the Peltier module 330. For this purpose, the heating side 334 of the Peltier module 330 may be provided with heat fins (not shown) that can be cooled by a fan 322. Although not shown, the heating side 334 of the Peltier module 330 may be connected to a container or air trap 60 to recover some of the heat generated by the module 330, for example, through thermal contact. Alternatively, a tube or line 52a extending to the heater 56 may pass through or run along the top of the heating side 334 of the Peltier module 330.
[0314] In the illustrated embodiment, distilled water flows freely into the collection chamber 340, filling the chamber with, for example, 10 ml or less of distilled water. The distilled water flows from the collection chamber 340 into either or both of the flushing flow lines 316 and 318, which extend in a sealed manner and connect to the flushing flow ports 70a and 70b of the dialysate pump 70, respectively. Once the chamber 340 and the flushing flow lines 316 and 318 are filled with distilled water, further distilled water flows back from the condenser 320 through the return line 342 to the container or air trap 60. In one embodiment, a flow limiter 344 is positioned along the return line 342 to initially restrict the flow through the limiter until the chamber 340 and the flushing flow lines 316 and 318 are filled with distilled water. The return line 342 is shown connected to a steam line 312 to return the distilled water to the container or air trap 60. In another embodiment, the return line 342 extends directly to the container or air trap 60.
[0315] In the illustrated embodiment relating to the water generation subsystem 310, the arrows on the flushing flow lines 316 and 318 both point towards the respective flushing flow ports 70a and 70b in the dialysate pump 70, indicating that both lines are statically filled with distilled water under hydrostatic pressure from the chamber 340. In this way, any part or area of the dialysate pump 70 requiring lubrication is always in contact with the distilled water. In an alternative, and perhaps preferred, embodiment, a small flushing injection pump 350, such as a micropump, under the control of the control unit 100, is positioned along one of the flushing flow lines 316 or 318 to recirculate distilled water from the chamber 340 to one of the flushing flow ports 70a or 70b and back to the chamber 340 from the other flushing flow port. In this case, the arrows on the return flushing flow lines 316 or 318 instead point to the chamber 340. The flushing injection pump 350 may also be used during the preparation of distilled water to recirculate the distilled water in an attempt to return any residual water from the previous treatment to a container or air trap 60. The flushing water pump 350 may be used further to generate negative pressure during the distillation stage to accelerate vaporization.
[0316] Under normal operation, for example during priming, draining, or infusion, the steam valve 54s is closed and the dialysate pump 70 operates with the flushing flow of distilled water described above. In one embodiment, at the end of disinfection when the disinfectant has already been heated, the steam valve 54s is opened before the heater 56 is energized, allowing residual water from the previous treatment to flow by gravity from the chamber 340 into the container or air trap 60. With the air trap valve 54d closed and the steam valve 54s opened, and the container or air trap 60 filled as indicated by the output from the upper level sensor 62a, the heater 56 is then further energized to heat the already heated disinfectant, for example, dialysate, or generate steam or high-moisture air from it. The steam rising from the heated disinfectant in the container or air trap 60 does not contain glucose or dextrose that was in the dialysate, nor does it contain fibrin, proteins, fats, and other solid particles, as well as liquid impurities, that were in the disinfectant at the end of disinfection. As described above, the steam condenses into distilled purified water via the thermoelectric cooler 330 and collection chamber 340, and the distilled purified water is well suitable for the flushing flow.
[0317] In another embodiment, the control unit 100 operates to open the steam valve 54s during disinfection while energizing the heater 56, allowing residual water from the previous treatment to flow by gravity from the chamber 340 into the container or air trap 60. With the air trap 60 filled, as indicated by the output from the upper level sensor 62a, the liquid in the air trap 60 is further energized to heat the already heated disinfectant solution, such as dialysate, or generate steam or high-moisture air from it. The steam rising from the heated disinfectant solution in the container or air trap 60 also does not contain impurities that were present in the dialysate. The steam condenses into distilled purified water via the thermoelectric cooler 330 and collection chamber 340 as described above, and the distilled purified water is well suitable for a flushing flow.
[0318] Referring here to Figure 34, another configuration of the water generation subsystem 310 is shown, in which a thermoelectric cooler 330 and a collection chamber 340 are coupled with an air trap 60. In the illustrated embodiment, the air trap 60 receives fresh PD liquid from the PD liquid line 52b, and the fresh PD liquid exits the air trap 60 via the PD liquid line 52c. The air trap 60 is vented through a hydrophobic vent by a vent valve 54e. The air trap 60 includes a primary chamber 64 into which fresh PD liquid is heated by a heater 56 to a temperature sufficient to raise steam, water vapor, or air containing a large amount of moisture above the liquid level of the PD liquid (maintained by level sensors 62a and 62b). The thermoelectric cooler 330 (e.g., the Peltier module in Figure 33), under the control of the control unit 100, is mounted above the air trap 60, for example, at an angle, and positioned above the distilled water collection chamber 340. The thermoelectric cooler 330 described above comprises a cooling side 332 and a heating side 334 which is cooled by a fan 322 under the control of the control unit 100 to enhance the effectiveness of the thermoelectric cooler.
[0319] The thermoelectric cooler 330 is mounted to or formed into an opening in the air trap 60 such that the cooling side 332 faces the vapor or high-moisture air condensed by the cooling side 332. Water droplets form on the inclined surface of the cooling side 332 and can flow down the surface by gravity into the distilled water collection chamber 340. Alternatively, or in addition to this, water droplets can fall into the water collection chamber 340 through the air. In the illustrated embodiment, the water collection chamber 340 is separated from the primary chamber 64 of the air trap 60 via an air gap to reduce conductive heat transfer from the heated PD liquid and reheating of the distilled water.
[0320] In the illustrated embodiment, the water collection chamber 340 is provided with ports connected to flushing flow lines 316 and 318. As shown in Figure 33, a flushing flow pump 350 (e.g., a micropump) under the control of the control unit 100 is provided to pump distilled water, for example, by directing it from the water collection chamber 340 through the flushing flow line 318 to the flushing flow ports 70a and 70b of the pump 70 and back to the water collection chamber 340 via line 316, as needed.
[0321] In yet another embodiment, the thermoelectric cooler 330 may be configured such that the heating side 334 acts as a heat pump, helping to heat the PD liquid to form steam. In this case, the heat is used rather than wasted, the fan 322 is not required, and a more energy-efficient water generation subsystem 310 is obtained overall. It should be understood that the cooling side 332 is still positioned to condense the steam as described herein.
[0322] The thermoelectric cooler or Peltier module 330 has been described in relation to the production of distilled water for flushing flow. Alternatively or in addition to that, it is conceivable to heat the dialysate using the thermoelectric cooler or Peltier module 330 instead of the electric or resistance inline heaters considered for the dialysate inline heater 56. The thermoelectric cooler or Peltier module 330 is quiet and does not require fan cooling of its control board. The thermoelectric cooler or Peltier module 330 also has a low-temperature side that can be used to cool the electronics associated with the control unit 100 and extend its lifespan. The thermoelectric cooler or Peltier module 330 also provides built-in safety, as the module loses its ability to transfer energy if the temperature difference becomes too large. Thus, if a problem occurs and the cyclers 10a, 10b or 210 attempt to get stuck and overheat, the Peltier module 330 will stop at its maximum temperature difference.
[0323] It should be understood that other changes and modifications to the currently preferred embodiments described herein are also encompassed by the appended claims. For example, although the drain line is illustrated and described as disposable, the drain line may instead be reusable, and an additional disinfection connector may be provided to connect the drain line to the disinfection loop for a disinfection sequence. Also, although thermal disinfection is disclosed, chemical disinfection, such as citric acid, may be provided instead of or in addition to thermal disinfection. There may be chemical advantages to using used dialysate as a disinfectant. Furthermore, although this disclosure states that a final-stage filter is provided in the disposable line for fresh dialysate, a second filter, such as a coarse filter for removing fibrin or other wastewater artifacts from the disposable line for used dialysate, may be provided. Other types of disinfection, such as ultraviolet light, may also be used. Furthermore, while the systems described herein demonstrate that the patient-side line is reusable and the drainage line is disposable, it is possible to instead make the drainage line reusable (e.g., a single lumen with both ends inserted into the cycler 20, or a double lumen such as the double-lumen patient-side line 28) and make the patient-side line disposable, or to make both the patient-side line and the drainage line reusable.
Claims
1. A peritoneal dialysis ("PD") system, Housing and The dialysis fluid pump housed in the aforementioned housing, A patient-side line extending from the aforementioned housing, A hose reel and Equipped with, The PD system is configured such that the hose reel winds the patient-side line when the patient-side line is disconnected from the patient.
2. The PD system according to claim 1, wherein the patient-side line is a double-lube patient-side line, and the double-lube patient-side line remains wound around the hose reel during a disinfection sequence for disinfecting the double-lube patient-side line and the dialysate pump.
3. The PD system according to claim 2, comprising a patient-side line connector including a lumen, wherein the lumen allows for communication of disinfectant between the first lumen and the second lumen of the double-lumen patient-side line when the patient-side line connector is connected to the double-lumen patient-side line.
4. The PD system according to claim 3, wherein the patient-side line connector is drawn into a docking port provided by the housing when the double-lumen patient-side line is wound by the hose reel.
5. The PD system according to claim 3, further comprising a cavity provided by the housing for housing the patient-side line connector when the double-lubricated patient-side line is removed from the patient-side line.
6. The PD system according to claim 1, configured to perform a disinfection sequence, wherein the hose reel includes at least one rotary fluid path that, together with the dialysate pump and the patient-side line, forms part of a disinfection circuit.
7. The PD system according to claim 6, wherein the at least one rotary fluid path is in fluid communication with at least one fixed line for fresh PD fluid or a fixed line for used PD fluid via at least one rotary seal.
8. The PD system according to claim 7, wherein the at least one fixed line for fresh PD fluid or fixed line for used PD fluid is located within the housing.
9. The PD system according to claim 1, wherein the patient-side line, when extended from the housing, is held in place by a releaseable lock.
10. The PD system according to claim 9, comprising an actuator configured to be operably operated by the patient or user to release the unlockable lock, thereby allowing the hose reel to wind the patient-side line within the housing.
11. The PD system according to claim 10, wherein the actuator is an instantaneous actuator configured such that the patient-side line is wound by the hose reel only when the actuator is activated by the patient or user.
12. The PD system according to claim 1, wherein the hose reel includes a rotary connector, and one end of the patient-side line is connected to the rotary connector.
13. The PD system according to claim 1, comprising a source for supplying flushing fluid and at least one flushing flow line for transmitting the flushing fluid from the source to the dialysate pump, wherein the source for supplying flushing fluid includes a mechanism for heating the PD fluid to form steam or water vapor and a condenser for condensing the steam or water vapor into the flushing fluid.
14. A peritoneal dialysis ("PD") system, Housing and The dialysis fluid pump housed in the aforementioned housing, A liquid line extending from the housing, A hose reel and Equipped with, The hose reel is configured to wind the liquid line when the liquid line is disconnected, in a PD system.
15. The PD system according to claim 14, wherein the liquid line is a double-lube liquid line, and the double-lube liquid line remains wound around the hose reel during a disinfection sequence for disinfecting the double-lube liquid line and the dialysate pump.
16. The PD system according to claim 15, comprising a liquid line connector including a lumen, wherein the lumen allows communication of disinfectant between the first lumen and the second lumen of the liquid line of the double lumen when the liquid line connector is connected to the liquid line of the double lumen.
17. The PD system according to claim 16, wherein the liquid line connector is drawn into a docking port provided by the housing when the double-lubricated liquid line is wound onto the hose reel.
18. The PD system according to claim 16, further comprising a cavity provided by the housing for housing the liquid line connector when it is removed from the liquid line of the double lumen.
19. The PD system according to claim 14, configured to perform a disinfection sequence, wherein the hose reel includes at least one rotary fluid path that, together with the dialysate pump and the fluid line, forms part of a disinfection circuit.
20. The PD system according to claim 19, wherein the at least one rotary fluid path is in fluid communication with at least one fixed line for fresh PD fluid or a fixed line for used PD fluid via at least one rotary seal.
21. The PD system according to claim 20, wherein the at least one fixed line for fresh PD fluid or fixed line for used PD fluid is located within the housing.
22. The PD system according to claim 14, wherein the liquid line, when extending from the housing, is held in place by a releasable lock.
23. The PD system according to claim 22, comprising an actuator configured to be operably operated by a patient or user to release the releaseable lock, thereby allowing the hose reel to wind the fluid line within the housing.
24. The PD system according to claim 23, wherein the actuator is an instantaneous actuator configured such that the fluid line is wound by the hose reel only when the actuator is activated by the patient or the user.
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