Blood purification device and blood purification system

The blood purification device's modular design with shared calibration data between units addresses the time-consuming recalibration issue, enhancing maintainability and setup efficiency.

JP7789028B2Pending Publication Date: 2025-12-19NIKKISO CO LTD
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Patent Information

Application Number
JP2023037402
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-03-10
Publication Date
2025-12-19
Estimated Expiration
2043-03-10

AI Technical Summary

Technical Problem

Existing separate-type blood purification devices require time-consuming recalibration of sensors and actuators during unit replacement, affecting maintainability.

Method used

A blood purification device is configured into multiple units, with at least one unit having a memory to store calibration data, allowing data sharing when connected to another unit, thereby reducing the need for recalibration.

Benefits of technology

This configuration shortens setup time and improves maintainability by enabling data sharing between units, allowing for quicker setup and operation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a separated-type blood purification device that can shorten setup time, and to provide a blood purification system.SOLUTION: A blood purification device 1 is constituted of split units 3, 4. At least unit 3 of the units 3, 4 includes a storage part 7 for storing calibration data 91 of the unit 3 and, when the unit 3 is connected to the other unit 4, can share the calibration data 91 with the other unit 4.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a blood purification device and a blood purification system. [Background technology]

[0002] A known conventional blood purification device for blood purification treatment is an integrated blood purification device that combines a dialysate supply / discharge unit for supplying and discharging dialysate to the blood purifier and an extracorporeal circulation unit for circulating the patient's blood extracorporeally via the blood purifier.

[0003] Prior art document information related to the invention of this application includes Patent Document 1. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Special Publication No. 2016-502911 Summary of the Invention [Problem to be solved by the invention]

[0005] The present inventors have been studying a separate-type blood purification device composed of multiple units to improve maintainability. A blood purification device composed of multiple units allows for swap-type maintenance, in which a unit requiring maintenance is replaced with a maintained one, significantly improving maintainability. However, replacing a unit requires recalibration of sensors and actuators, which poses a problem of time-consuming setup.

[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a separate-type blood purification device that can shorten the setup time. [Means for solving the problem]

[0007] A blood purification device according to one embodiment of the present invention is configured by dividing it into multiple units, and at least one of the multiple units has a memory unit that stores calibration data for that unit, and is configured so that when that unit is connected to another unit, the calibration data can be shared with the other unit.

[0008] A blood purification system according to one embodiment of the present invention comprises a blood purification apparatus divided into multiple units, and a network device configured to be able to communicate with at least one of the multiple units and having a memory unit that stores calibration data for a specific unit, wherein at least one of the units of the blood purification apparatus has a control unit that, when connected to another unit, acquires the calibration data of the other connected unit via the network device. [Effects of the Invention]

[0009] According to the present invention, a separate-type blood purification device and blood purification system that can shorten the setup time can be provided. [Brief explanation of the drawings]

[0010] [Figure 1] 1A and 1B are diagrams showing the appearance of a blood purification device according to an embodiment of the present invention, in which FIG. 1A is a perspective view showing an extracorporeal circulation unit attached to a dialysate supply / drainage unit, and FIG. 1B is a perspective view showing an extracorporeal circulation unit detached from the dialysate supply / drainage unit. [Figure 2] 1 is a schematic diagram illustrating the configuration of a blood purification device according to one embodiment of the present invention. [Figure 3] FIG. 2 is a diagram illustrating details of a control unit and a storage unit of each unit. [Figure 4] FIG. 10 is a flow chart showing the control flow during setup of the blood purification apparatus. [Figure 5] FIG. 10 is a flow chart showing a control flow of a calibration process. [Figure 6] 1 is a schematic configuration diagram of a blood purification system according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] [Embodiment Mode] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings.

[0012] Fig. 1 shows the external appearance of the blood purification device according to this embodiment, where (a) is a perspective view of the extracorporeal circulation unit attached to the dialysate supply / drainage unit, and (b) is a perspective view of the extracorporeal circulation unit detached from the dialysate supply / drainage unit. Fig. 2 is a schematic diagram of the blood purification device according to this embodiment.

[0013] 1 and 2, the blood purification apparatus 1 is an apparatus that performs blood purification therapy via a blood purifier 2 and includes a dialysate supply / discharge unit 3 that supplies dialysate to the blood purifier 2 and discharges effluent from the blood purifier 2, and an extracorporeal circulation unit 4 that includes an extracorporeal circulation section 41 for circulating the patient's blood extracorporeally via the blood purifier 2. That is, the blood purification apparatus 1 according to this embodiment is configured by being divided into multiple units. Here, the case where the blood purification apparatus 1 is divided into two units, the dialysate supply / discharge unit 3 and the extracorporeal circulation unit 4, is described. However, for example, a three-unit configuration may be possible, with a pure water production section 31 (described below) being added as a separate unit, and the number of units is not limited.

[0014] (Blood Purifier 2) The blood purifier 2, also called a dialyzer, contains a blood purification membrane (a hollow fiber hemodialysis membrane, or a hemodiafiltration membrane, or a flat membrane hemodialysis membrane, or a hemofiltration membrane). The blood purifier 2 has a blood inlet 2a for introducing blood and a blood outlet 2b for discharging the introduced blood, as well as a dialysate inlet 2c for introducing dialysate and a dialysate outlet 2d for discharging the introduced dialysate. The blood purifier 2 purifies the blood by bringing the blood and the dialysate into contact with each other via the blood purification membrane. In this embodiment, the blood purifier 2 is detachably attached to the extracorporeal circulation unit 4 via a blood purifier fixing jig 21. However, the attachment position of the blood purifier 2 is not limited thereto, and it may be attached to the dialysate supply / drainage unit 3, a dedicated stand, or the like.

[0015] (Dialysis fluid supply / drainage unit 3) The dialysis fluid supply / drainage unit 3 has a pure water production section 31, a dialysis fluid preparation section 32, and a water removal control section 33. The dialysis fluid supply / drainage unit 3 also has a dialysis fluid supply / drainage unit-side piping 30 through which the dialysis fluid and waste fluid flow. The dialysis fluid supply / drainage unit-side piping 30 has a supply-side piping 30a for supplying the dialysis fluid to the blood purifier 2, and a discharge-side piping 30b for discharging the waste fluid from the blood purifier 2.

[0016] The pure water production unit 31 is provided in the supply-side piping 30a, and is configured to produce pure water (RO water) by removing impurities from tap water supplied from the outside via the supply-side piping 30a using a reverse osmosis (RO) membrane. Note that the pure water production unit 31 can be omitted, and the dialysis fluid supply / drainage unit 3 may be configured to receive pure water from the outside.

[0017] The dialysis fluid preparation unit 32 is provided on the supply-side piping 30a and is configured to prepare a dialysis fluid from pure water supplied from the pure water production unit 31 via the supply-side piping 30a and a dialysate consisting of a concentrated solution or powder. The dialysis fluid preparation unit 32 may also be omitted, and the dialysis fluid may be supplied to the dialysis fluid supply / drainage unit 3 from, for example, an external dialysis fluid supply device, a bag, or the like.

[0018] The water removal control unit 33 controls the amount of water removed from the blood and includes a balance control mechanism 331 that sends the dialysis fluid so that the supply and drainage volumes of the dialysis fluid to the blood purifier 2 are equal, and a water removal pump 332. The balance control mechanism 331 is provided across the supply-side piping 30a that runs from the dialysis fluid preparation unit 32 to the blood purifier 2, and the drain-side piping 30b that extends from the blood purifier 2 and is drawn into the dialysis fluid supply / drainage unit 3. The balance control mechanism 331 is, for example, a duplex pump that maintains equal volumes of supply and drainage by reciprocating a plunger between two equal-volume pump chambers.

[0019] The discharge side pipe 30b is provided with a bypass pipe 30c that bypasses the balance control mechanism 331, and a water removal pump 332 is disposed in this bypass pipe 30c. By driving the water removal pump 332, the amount of drained fluid becomes greater than the amount of dialysate supplied to the blood purifier 2, thereby removing water from the blood. The amount of water removed from the blood can be controlled by controlling the driving of the water removal pump 332. Note that the specific structure of the water removal control unit 33 is not limited to that shown in the figure. For example, the bypass pipe 30c and the water removal pump 332 may be omitted, and the flow rates of the dialysate and the drained fluid may be controlled separately by the balance control mechanism 331, and the amount of water removed may be controlled based on the difference between the flow rates of the dialysate and the drained fluid.

[0020] The supply-side piping 30a and the discharge-side piping 30b on the blood purifier 2 side of the water removal control unit 33 are drawn out to the outside of the dialysate supply / drainage unit 3, and the ends of the drawn supply-side piping 30a and the discharge-side piping 30b are connected to the blood purifier 2. More specifically, the end (downstream end) of the supply-side piping 30a is connected to the dialysate inlet 2c of the blood purifier 2, and the end (upstream end) of the discharge-side piping 30b is connected to the dialysate outlet 2d of the blood purifier 2. The discharge-side piping 30b, which extends from the water removal control unit 33 to the opposite side of the blood purifier 2 (downstream side in the flow of effluent), is drawn out to the outside of the dialysate supply / drainage unit 3, and the effluent is discharged to the outside of the dialysate supply / drainage unit 3. However, this is not limiting, and a drainage tank for storing the effluent may be provided in the dialysate supply / drainage unit 3.

[0021] As described above, in this embodiment, the piping through which the dialysate and effluent flow (here, the supply-side piping 30a and the discharge-side piping 30b) are configured to directly connect the dialysate supply / drainage unit 3 and the blood purifier 2 without passing through the extracorporeal circulation unit 4. In other words, the extracorporeal circulation unit 4 is not provided with piping through which the dialysate and effluent flow. This eliminates the need for piping for liquids connecting the dialysate supply / drainage unit 3 and the extracorporeal circulation unit 4, improving ease of handling and achieving cost reduction through simplified structure. Note that, since disposable piping through which the dialysate and effluent flow (dialysis fluid supply / drainage unit-side piping 30) are used results in extremely high running costs, it is desirable to wash and disinfect them as fixed piping and reuse them repeatedly.

[0022] Although not shown, the dialysis fluid supply / discharge unit 3 may further include a mechanism for adjusting the temperature of the dialysis fluid, a mechanism for degassing dissolved oxygen in the dialysis fluid, a filter for removing fine particles (endotoxin, etc.) in the dialysis fluid, a blood leakage detector for detecting blood leakage, and a mechanism for measuring solute concentration and determining dialysis efficiency by irradiating ultraviolet light on the dialysis fluid after passing through the blood purifier 2. The dialysis fluid supply / discharge unit 3 may further include a dialysis fluid regeneration section for regenerating used dialysis fluid. The dialysis fluid regeneration section may include, for example, an adsorber for adsorbing and removing ammonia, and an injector for injecting an injectate for adjusting the components of the dialysis fluid.

[0023] The dialysis fluid supply and drainage unit 3 is heavier than the extracorporeal circulation unit 4, which will be described later. Therefore, in order to facilitate the movement of the dialysis fluid supply and drainage unit 3 and to improve convenience and ease of handling, it is desirable to provide the dialysis fluid supply and drainage unit 3 with a moving mechanism 34 for moving the dialysis fluid supply and drainage unit 3 on the floor. Providing the moving mechanism 34 makes it easier to perform swap-type maintenance, which will be described later, and also makes it possible to further improve maintainability. In this embodiment, casters 341 are provided on the bottom of the dialysis fluid supply and drainage unit 3, and handles 342 are provided on the side of the dialysis fluid supply and drainage unit 3 to be gripped when moving the dialysis fluid supply and drainage unit 3 (see FIGS. 1(a) and 1(b)). Note that the specific structure of the moving mechanism 34 is not limited to this.

[0024] Although not shown, the dialysate supply / drainage unit 3 is supplied with power from an external source. The dialysate supply / drainage unit 3 may be equipped with a backup power source such as a battery, and may be configured to supply power from the backup power source when the external power source is cut off during blood purification therapy. The dialysate supply / drainage unit 3 may also be configured to supply power to the extracorporeal circulation unit 4.

[0025] The dialysis fluid supply / drainage unit 3 is also equipped with a second control unit 62 and a second storage unit 72 for controlling the dialysis fluid supply / drainage unit 3. The second control unit 62 and the second storage unit 72 will be described in detail later. The dialysis fluid supply / drainage unit 3 also has a second alarm device 35 for issuing an alarm when an abnormality is detected. The second alarm device 35 has, for example, a light-emitting device or a buzzer, and issues an alarm by light or sound.

[0026] (Extracorporeal Circulation Unit 4) The extracorporeal circulation unit 4 has an extracorporeal circulation section 41 having a blood pipe (blood circuit) 410 capable of circulating the blood of the patient C extracorporeally.

[0027] The blood piping 410 is composed of, for example, a flexible tube. The blood piping 410 has an arterial blood piping 410a that guides blood collected from the blood vessel of the patient C to the blood inlet 2a of the blood purifier 2, and a venous blood piping 410b that returns blood discharged from the blood outlet 2b of the blood purifier 2 to the patient C. In this embodiment, the blood piping 410 is detachably provided on the extracorporeal circulation unit 4. This allows the blood piping 410 to be disposable, improving maintainability. Note that the blood piping 410 is omitted from FIGS. 1(a) and 1(b).

[0028] The extracorporeal circulation unit 41 is provided in the arterial blood piping 410a and includes a fluid pump 411 for circulating blood. The fluid pump 411 is, for example, a peristaltic pump that squeezes a tube to cause blood to flow toward the blood purifier 2. The extracorporeal circulation unit 41 is also provided in the venous blood piping 410b and includes a venous pressure detector 412 for measuring the pressure of blood flowing through the blood piping 410a, and an air bubble detector 413 for detecting air bubbles in the blood. The air bubble detector 413 is configured with, for example, a pair of ultrasonic vibration elements (oscillating means and receiving means) made of piezoelectric elements. The venous blood piping 410b is also provided with a flow path closing mechanism 414 that closes the venous blood piping 410b and interrupts the extracorporeal circulation of blood when an abnormality occurs, such as when air bubbles are detected by the air bubble detector 413.

[0029] In the blood purification apparatus 1 according to this embodiment, the extracorporeal circulation unit 4 is configured separately from the dialysate supply / drainage unit 3. The extracorporeal circulation unit 4 is equipped with a first control unit 61 and a first memory unit 71 that can control the dialysate supply / drainage unit 3 and the extracorporeal circulation unit 4. The first control unit 61 and the first memory unit 71 will be described in detail later.

[0030] The extracorporeal circulation unit 4 is configured to be detachable from the dialysate supply / drainage unit 3 (see FIGS. 1(a) and 1(b)). This allows for use in a variety of layouts depending on the situation, such as placing only the extracorporeal circulation unit 4 near the patient C and placing the dialysate supply / drainage unit 3 at a distance. Although FIGS. 1(a) and 1(b) show a case where the extracorporeal circulation unit 4 is mounted on top of the dialysate supply / drainage unit 3, the present invention is not limited to this, and both units 3 and 4 may be mounted side by side, for example, side by side or front to back.

[0031] Furthermore, the blood purification apparatus 1 is provided with a fixing mechanism 5 that fixes the extracorporeal circulation unit 4 and the dialysate supply / drainage unit 3 to each other when the extracorporeal circulation unit 4 is attached to the dialysate supply / drainage unit 3. This prevents the extracorporeal circulation unit 4 from falling off the dialysate supply / drainage unit 3 when the blood purification apparatus 1 is moved or if a person or the like unintentionally bumps into the blood purification apparatus 1. The specific structure of the fixing mechanism 5 is not limited, but for example, a fixing mechanism 5 that can be fixed with one touch using a latch mechanism or the like can be used. Note that the fixing mechanism 5 is omitted in FIGS. 1(a) and 1(b).

[0032] The extracorporeal circulation unit 4 also includes a monitor 42 that displays the dialysis status and an operation unit 43 for performing operations related to blood purification therapy. As shown in FIGS. 1( a) and 1(b), in this embodiment, the monitor 42 is provided so as to protrude from the upper part of the extracorporeal circulation unit 4, but the position and layout of the monitor 42 are not limited to this. For example, a large monitor 42 may be provided so as to cover the entire surface of the extracorporeal circulation unit 4. In this embodiment, the operation units 43 are provided on both sides of the monitor 42, but the position and layout of the operation unit 43 are not limited to this. The monitor 42 may also be configured as a touch panel so that it also serves as the operation unit 43. Providing the monitor 42 and the operation unit 43 on the extracorporeal circulation unit 4, which is relatively lightweight and located near the patient C, makes it easier for the patient C to check the treatment status and perform operations, thereby improving convenience.

[0033] The monitor 42 and the operation unit 43 may be configured separately from the extracorporeal circulation unit 4, and may be configured to communicate with the first control unit 61 of the extracorporeal circulation unit 4 for display and operation. In this case, for example, the monitor 42 and the operation unit 43 may be configured as a dedicated operation terminal, or may be configured as a smartphone, tablet, or the like. The dialysis fluid supply / drainage unit 3 may also be equipped with the monitor 42 and the operation unit 43.

[0034] The extracorporeal circulation unit 4 also has a first alarm device 44 for issuing a warning of the detection of an abnormality. The first alarm device 44 has, for example, a light emitting device or a buzzer, and issues an alarm by light or sound.

[0035] (Control unit 6 and memory unit 7 of each unit 3, 4) As shown in FIG. 3 , in the blood purification apparatus 1 according to this embodiment, at least one unit (here, the dialysate supply / drainage unit 3) among the multiple units 3 and 4 constituting the blood purification apparatus 1 has a memory 7 that stores calibration data 91 and operation data 92 for the unit 3. When the unit 3 is connected to another unit (here, the extracorporeal circulation unit 4), the calibration data 91 and operation data 92 can be shared with the other unit 4. In this embodiment, both units 3 and 4 are equipped with a control unit 6 and a memory 7. Hereinafter, the control unit 6 and the memory 7 equipped in the extracorporeal circulation unit 4 will be referred to as the first control unit 61 and the first memory 71, and the control unit 6 and the memory 7 equipped in the dialysate supply / drainage unit 3 will be referred to as the second control unit 62 and the second memory 72. The control units 61 and 62 are each realized by appropriately combining a processing element such as a CPU, a memory, software, an interface, a communication unit, etc. The memory units 71 and 72 are each realized using a predetermined storage area of ​​a memory or a storage device. In this embodiment, the storage units 71 and 72 are configured using nonvolatile memories.

[0036] The control units 61, 62 of both units 3, 4 each have an operation control unit 81, a calibration processing unit 82, and a connection confirmation unit 83. Hereinafter, the units mounted on the extracorporeal circulation unit 4 will be referred to as a first operation control unit 811, a first calibration processing unit 821, and a first connection confirmation unit 831, and the units mounted on the dialysis fluid supply / drainage unit 3 will be referred to as a second operation control unit 812, a second calibration processing unit 822, and a second connection confirmation unit 832.

[0037] Furthermore, the memories 71, 72 of both units 3, 4 store calibration data 91, operation data 92, a matching database 93, and an identification ID 94 of the respective units. The calibration data 91 is data including information related to the calibration of various sensors, actuators, pumps, etc. included in the respective units. The operation data 92 is data including information about the operation of the respective units, and more specifically, includes various information related to the operation, such as information that a disinfection process has been completed and information about the operation of filling the piping with dialysis fluid. The matching database 93 is a database used to determine whether a connected unit can be connected to the respective units, and stores information such as the models of units connectable to the respective units. The identification ID 94 includes information such as the respective units' individual identification number, model, serial number, software version, types of treatment that can be supported, and whether or not optional devices can be installed. Hereinafter, the data stored in the first memory section 71 of the extracorporeal circulation unit 4 will be referred to as first calibration data 911, first operation data 921, first matching database 931, and first identification ID 941, and the data stored in the second memory section 72 of the dialysis fluid supply / drainage unit 3 will be referred to as second calibration data 912, second operation data 922, second matching database 932, and second identification ID 942.

[0038] The first control unit 61 of the extracorporeal circulation unit 4 serves as the main control unit of the blood purification apparatus 1. The first operation control unit 811 controls the extracorporeal circulation unit 4, communicates with the second control unit 62 of the dialysate supply / discharge unit 3, and controls the dialysate supply / discharge unit 3 via the second control unit 62. The first operation control unit 811 stores its control details (information related to operation) as first operation data 921 in the first storage unit 71. The first operation data 921 is data including the control details (information related to operation) of the extracorporeal circulation unit 4. The first calibration data 911 is data including information related to the calibration of the extracorporeal circulation unit 4.

[0039] The first operation control section 811 acquires second calibration data 912 and second operation data 922 of the dialysate supply and discharge unit 3, and controls the dialysate supply and discharge unit 3 based on the acquired (i.e., shared) second calibration data 912 and second operation data 922. The second operation data 922 is data including the details of control by the second control section 62, i.e., the control details (information related to the operation) of the dialysate supply and discharge unit 3. The second calibration data 912 is data including information related to the calibration of the dialysate supply and discharge unit 3. Sharing the second calibration data 912 eliminates the need to perform calibration every time a new dialysate supply and discharge unit 3 is connected, thereby reducing the setup time. Sharing the second operation data 922 also enables, for example, connecting the dialysate supply and discharge unit 3 to the extracorporeal circulation unit 4 after disinfection and preparation for blood purification treatment have already been performed, and then starting treatment immediately, thereby improving convenience. There are no particular limitations on the timing at which the second calibration data 912 and the second operation data 922 are shared, but for example, the data may be shared automatically when the extracorporeal circulation unit 4 is started up, or the data may be shared when the user performs an operation to share the data.

[0040] The first calibration processing unit 821 performs calibration processing such as calibration of various sensors, actuators, and pumps of the extracorporeal circulation unit 4, and stores the calibration results in the first storage unit 71 as first calibration data 911.

[0041] The first connection confirmation unit 831 identifies the connected dialysis fluid supply and discharge unit 3 and determines whether it is connectable to its own unit. The first connection confirmation unit 831 communicates with the second control unit 62, acquires the second identification ID 942 of the dialysis fluid supply and discharge unit 3, and refers to the first matching database 931 to determine whether the connected dialysis fluid supply and discharge unit 3 is connectable to its own unit. If the first connection confirmation unit 831 determines that the dialysis fluid supply and discharge unit 3 is not a connectable unit, the first connection confirmation unit 831 may, for example, issue an alarm using the first alarm device 44 or display a warning message on the monitor 42. Note that in this embodiment, whether it is connectable to its own unit is determined by referring to the first matching database 931. However, this is not limiting. For example, the second identification ID 942 may include information that can determine the type of unit and the presence or absence of devices that can be attached as options (information that can determine whether it is connectable to its own unit), and the first connection confirmation unit 831 may be configured to determine whether it is connectable to its own unit based on the information included in the second identification ID 942. In this case, the first verification database 931 can be omitted.

[0042] The second control unit 62 of the dialysate supply / discharge unit 3 serves as a sub-control unit. The second operation control unit 812 controls the dialysate supply / discharge unit 3 in response to instructions from the first operation control unit 811. Although it is possible to directly control the dialysate supply / discharge unit 3 using the first control unit of the extracorporeal circulation unit 4, in this case the number of control lines connecting the two units 3, 4 becomes enormous, and the connection structure of the two units 3, 4 becomes very complicated. By also installing a control unit 6 (second control unit 62) on the dialysate supply / discharge unit 3 side, the number of control lines connecting the two units 3, 4 can be reduced, and the connection structure of the two units 3, 4 can be simplified.

[0043] The second operation control section 812 is preferably configured to be operable even when the dialysis fluid supply / drainage unit 3 is alone (even when separated from the extracorporeal circulation unit 4). This enables the dialysis fluid supply / drainage unit 3 to perform operations such as cleaning and disinfection by itself. The second operation control section 812 stores its control content (information related to the operation) in the second storage section 72 as second operation data 922.

[0044] The second calibration processing unit 822 performs calibration processing such as calibration of various sensors, actuators, and pumps of the dialysis fluid supply / drainage unit 3, and stores the calibration results in the second storage unit 72 as second calibration data 912.

[0045] The second connection confirmation unit 832 identifies the connected extracorporeal circulation unit 4 and determines whether it can be connected to its own unit. The second connection confirmation unit 832 communicates with the first control unit 61, acquires the first identification ID 941 of the extracorporeal circulation unit 4, and refers to the second matching database 932 to determine whether the connected extracorporeal circulation unit 4 can be connected to its own unit. If the second connection confirmation unit 832 determines that the extracorporeal circulation unit 4 is not a connectable unit, it issues an alarm using, for example, the second alarm device 35. Note that the first identification ID 941 may include information that can determine the type of unit and the presence or absence of optional devices, etc. (information that can determine whether it can be connected to its own unit), and the second connection confirmation unit 832 may be configured to determine whether it can be connected to its own unit based on the information included in the first identification ID 941. In this case, the second matching database 932 may be omitted.

[0046] In this manner, in this embodiment, both the first control unit 61, which is the main control unit, and the second control unit 62, which is the sub control unit, determine whether the units are connectable, and by performing a double check, connection of an inappropriate combination is suppressed. However, without being limited to this, for example, a configuration may be adopted in which the determination of whether the units are connectable is performed only by the first control unit 61, which is the main control unit.

[0047] (Control Flow) 4 shows a control flow during setup of the blood purification apparatus 1. The first control unit 61 executes the control flow of FIG. 4, for example, when the blood purification apparatus 1 is powered on. As shown in FIG. 4, first, in step S101, the first connection confirmation unit 831 determines whether the dialysate supply / drainage unit 3 is connected. In step S101, for example, whether the dialysate supply / drainage unit 3 is connected can be determined based on whether communication with the second control unit 62 is established. If the determination in step S101 is NO, a warning message is displayed on the monitor 42 in step S115, and then the blood purification apparatus 1 is powered off in step S116, ending the process.

[0048] If the determination in step S101 is YES, then in step S102, the first connection confirmation unit 831 communicates with the second control unit 62 of the dialysate supply / drainage unit 3 to acquire the second identification ID 942 and refers to the first matching database 931 to match whether the connected dialysate supply / drainage unit 3 can be connected to the unit itself. Then, in step S103, it is determined as a result of the matching whether the dialysate supply / drainage unit 3 can be connected to the unit itself. If the determination in step S103 is NO, then in step S115, a warning message is displayed on the monitor 42, and then in step S116, the blood purification apparatus 1 is powered off and the process ends. Note that in step S116, the blood purification apparatus 1 may not be powered off automatically, but the user may be prompted to power off by, for example, displaying a message on the monitor 42 prompting the user to power off.

[0049] If the determination in step S103 is YES, then in step S104, the first operation control section 811 acquires the second calibration data 912 of the dialysate supply / drainage unit 3 and confirms the calibration details of the dialysate supply / drainage unit 3 based on the second calibration data 912. Then, in step S105, it is determined as a result of the confirmation whether calibration has been completed. If the determination in step S105 is YES, the process proceeds to step S109. If the determination in step S105 is NO, then in step S106, an input screen for selecting whether to perform readjustment or remove the device is displayed on the monitor 42, and the user's selection input is accepted. Then, in step S107, it is determined whether readjustment has been input. If the determination in step S107 is NO, i.e., if removal of the device is selected, then in step S115, a warning message is displayed on the monitor 42, and then in step S116, the blood purification device 1 is powered off, and the process ends. If the determination in step S107 is YES, i.e., if readjustment is selected, then calibration processing is performed in step S108.

[0050] In the calibration process of step S108, the second control unit 62 executes the control flow of Fig. 5. First, in step S108a, the second calibration processing unit 822 performs calibration work such as calibration of various sensors, actuators, pumps, etc. of the dialysis fluid supply / drainage unit 3 according to a preset calibration procedure, and in step S108b, stores the results of the calibration work as second calibration data 912 in the second storage unit 72. Thereafter, the process returns and proceeds to step S109 of Fig. 4.

[0051] In step S109, the first operation control section 811 acquires the second operation data 922 of the dialysis fluid supply / drainage unit 3 and confirms the operation details of the dialysis fluid supply / drainage unit 3 based on the second operation data 922. Then, in step S110, an input screen for selecting whether to accept or reject the synchronization destination (whether to synchronize operations) is displayed on the monitor 42, and the user's selection input is accepted. Then, in step S111, it is determined whether acceptance has been entered. If the determination in step S111 is YES, operation data matching (synchronization of operation data) is performed in step S112, and the setup process is terminated. If the determination in step S111 is NO, that is, if rejection is selected, in step S113, an input screen for selecting whether to accept or reject startup in the initial state is displayed on the monitor 42, and the user's selection input is accepted. Then, in step S114, it is determined whether acceptance has been entered. If the determination in step S114 is YES, the operation is not synchronized and the setup process is terminated. If the determination in step S114 is NO, that is, if denial is selected, a warning message is displayed on the monitor 42 in step S115, and then the power to the blood purification apparatus 1 is turned off in step S116, ending the process.

[0052] Here, the blood purification apparatus 1 has been described as being composed of two units, the extracorporeal circulation unit 4 and the dialysate supply / drainage unit 3, but the number of units is not limited to this and may be composed of three or more units. Here, the blood purification apparatus 1 has been described as being composed of the extracorporeal circulation unit 4 as the main unit and the dialysate supply / drainage unit 3 as the sub-unit, but the blood purification apparatus 1 is not limited to this. For example, when the dialysate supply / drainage unit 3 is the main unit, it is preferable that the first calibration data 911, which is information related to the calibration of the extracorporeal circulation unit 4, can be shared with the dialysate supply / drainage unit 3. That is, it is sufficient that at least information related to the calibration of the other units is shared with the main unit.

[0053] (Actions and Effects of the Embodiments) As described above, in the blood purification device 1 according to this embodiment, at least one unit (here, the dialysis fluid supply / discharge unit 3) among the multiple units 3, 4 constituting the blood purification device 1 has a memory section 7 that stores the calibration data 91 and operation data 92 of the unit 3, and is configured so that when the unit 3 is connected to another unit (here, the extracorporeal circulation unit 4), the calibration data 91 and operation data 92 can be shared with the other unit 4.

[0054] By storing the calibration data 91 in the memory section 7 of the unit itself and making it possible to share the data with other units, it becomes possible to omit the calibration work during setup, and shorten the setup time, even when, for example, replacing the dialysate supply / drainage unit 3 with a new one. Furthermore, by sharing the operation data 92, it becomes possible, for example, to prepare for treatment in advance using the dialysate supply / drainage unit 3 alone, and then connect the dialysate supply / drainage unit 3 to the extracorporeal circulation unit 4 to start treatment quickly, thereby improving convenience.

[0055] (Other embodiments) In the above embodiment, the case where the calibration data 91 and operation data 92 are stored in the memory unit 7 of the unit itself has been described, but as shown in Fig. 6, the calibration data 91 and operation data 92 may be stored in an external network device 101 such as a server, and the calibration data 91 and operation data 92 may be shared between units via the network device 101. Hereinafter, the entire system including the blood purification device 1 and the network device 101 will be referred to as a blood purification system 100.

[0056] The network device 101 is configured to be able to communicate with multiple units (extracorporeal circulation unit 4 and dialysis fluid supply / drainage unit 3) constituting the blood purification apparatus 1 via a network 102 such as the Internet. The network device 101 has a third control unit 101a and a third storage unit 101b. The third control unit 63 is realized by appropriately combining a processing element such as a CPU, memory, software, an interface, a communication unit, etc. The third storage unit 73 is realized by using a predetermined storage area of ​​a memory or a storage device.

[0057] The third control unit 63 communicates with the control units 61 and 62 of the units 3 and 4 of the blood purification apparatus 1, and controls the transmission and reception of various data. In the blood purification system 100, the operation control unit 81 and calibration processing unit 82 of each unit 3 and 4 transmit (upload) operation data 92 and calibration data 91 of the unit itself together with an identification ID 93 to the network device 101. The third control unit 63 stores the received operation data 92 and calibration data 91 in the third storage unit 73, linking them to the identification ID 93.

[0058] The operation control unit 81 of each unit 3, 4 then acquires the calibration data 91 and operation data 92 of the other units connected to its own unit via the network device 101. This enables the calibration data 91 and operation data 92 to be shared, thereby shortening the setup time and improving convenience, as in the above embodiment. The connection confirmation unit 83 of each unit 3, 4 may acquire the identification ID 93 of the other units connected to its own unit via the network device 101, or may acquire the ID directly by communicating between the control units 61, 62.

[0059] 6 shows a case where the second calibration data 91 and the second operation data 92 are also stored in the second storage section 72 in the dialysis fluid supply / drainage unit 3, which is a sub-unit, but this is not limiting, and the second calibration data 91 and the second operation data 92 may not be stored in the dialysis fluid supply / drainage unit 3, and may be stored only in the network device 101. The same applies to the extracorporeal circulation unit 4. In other words, the network device 101 may be used as an external storage device for each of the units 3 and 4.

[0060] Furthermore, multiple blood purification devices 1 may be connected to one network device 101. This allows for centralized management of calibration data 91 and the like for multiple blood purification devices 1, thereby reducing the effort required for management.

[0061] Furthermore, the connection confirmation unit 83 may be omitted from each unit 3, 4 of the blood purification apparatus 1, and the network device 101 may have a function to confirm whether the connected units 3, 4 are connectable to each other. In this case, a matching database 93 is installed in the third storage unit 73 of the network device 101, and the third control unit 63 refers to the matching database 93 based on the identification IDs 94 of the connected units 3, 4 to determine whether they are connectable (whether they are an inappropriate combination).

[0062] Furthermore, when the operation data 92 is not shared, the network device 101 may be configured to be able to communicate only with the extracorporeal circulation unit 4, which is the main unit. In this case, the extracorporeal circulation unit 4 acquires the identification ID 93 of the connected dialysate supply / drainage unit 3 and transmits the acquired identification ID 93 to the network device 101. The third storage unit 73 of the network device 101 stores the results of calibration performed in advance, such as at the time of shipment from the factory, as calibration data 91 linked to the identification ID 93. The third control unit 63 transmits the calibration data 91 corresponding to the received identification ID 93 to the extracorporeal circulation unit 4. This allows the calibration data 91 of the dialysate supply / drainage unit 3 to be shared. When the dialysate supply / drainage unit 3 is calibrated again, the extracorporeal circulation unit 4 simply uploads the calibration data 91 obtained by the calibration to the network device 101. In this way, the network device 101 only needs to be configured to be able to communicate with at least one of the multiple units 3 and 4 constituting the blood purification apparatus 1.

[0063] (Variation) Although not mentioned in the above embodiment, each unit 3, 4 of the blood purification apparatus 1 may be configured to store connection history data, which is information on the history of the identification IDs 93 of other units connected to the unit itself. This allows the administrator to refer to the connection history of each unit 3, 4, which can be used as a reference when, for example, investigating the cause of a malfunction.

[0064] Furthermore, each unit 3, 4 of the blood purification apparatus 1 may be configured to store in its own storage unit 7 unit information data, which is information indicating the status of the unit, such as the replacement date and time of consumables contained in the unit, the usage time, the total operating time of the unit, and the operating time since the last maintenance. This makes it easy to determine whether consumables need to be replaced or whether maintenance is required, improving maintainability.

[0065] (Summary of the embodiment) Next, the technical ideas grasped from the above-described embodiments will be described by using the reference numerals and the like in the embodiments. However, the reference numerals and the like in the following description do not limit the components in the claims to the members and the like specifically shown in the embodiments.

[0066] [1] A blood purification device (1) configured by being divided into a plurality of units (3, 4), at least one of the plurality of units (3, 4) having a memory unit (7) for storing calibration data (91) of the unit (3), and configured so that when the unit (3) is connected to another of the units (4), the calibration data (91) can be shared with the other of the units (4).

[0067] [2] The blood purification device (1) according to [1], wherein the memory unit (7) stores operation data (92) including information related to the operation of the unit (3), and the unit (3) having the memory unit (7) is configured to be able to share the operation data (92) with another unit (4) when the unit (3) is connected to the other unit (4).

[0068] [3] The blood purification device (1) described in [2], wherein the unit (3) having the memory unit (7) has a control unit (6) that controls the operation of the unit (3), and the control unit (6) stores its control content in the memory unit (7) as the operation data (92).

[0069] [4] The blood purification device (1) according to any one of [1] to [3], wherein the plurality of units (3, 4) include a dialysate supply / discharge unit (3) that supplies dialysate to a blood purifier (2) and discharges wastewater from the blood purifier (2), and an extracorporeal circulation unit (4) having an extracorporeal circulation section (41) for extracorporeally circulating the patient's blood via the blood purifier (2), and at least the dialysate supply / discharge unit (3) has the memory section (7) that stores the calibration data (91) of its own unit, and is configured so that the calibration data (91) can be shared with the extracorporeal circulation unit (4) when the dialysate supply / discharge unit (3) and the extracorporeal circulation unit (4) are connected.

[0070] [5] A blood purification system (100) comprising: a blood purification apparatus (1) divided into a plurality of units (3, 4); and a network device (101) configured to be able to communicate with at least one unit (4) of the plurality of units (3, 4) and having a memory unit (7) that stores calibration data (91) of a predetermined unit (3), wherein at least one unit (4) of the blood purification apparatus (1) has a control unit (6) that, when the unit (4) is connected to another unit (3), acquires the calibration data (91) of the other connected unit (3) via the network device (101).

[0071] Although the embodiments of the present invention have been described above, the invention according to the claims is not limited to the above-described embodiments. It should be noted that not all of the combinations of features described in the embodiments are necessarily essential to the means for solving the problems of the invention. Furthermore, the present invention can be appropriately modified and implemented within the scope of its spirit. [Explanation of symbols]

[0072] 1. Blood purification device 2. Blood purifier 3...Dialysis fluid supply and drainage unit 4...Extracorporeal circulation unit 41...Extracorporeal circulation section 6...Control unit 61...First control section 62...Second control section 7...Storage section 71...1st memory section 72...Second memory section 81...Motion control unit 82...Calibration processing unit 83...Connection confirmation section 91...Calibration data 92...Operation data 93...Matching database 100...Blood purification system 101...Network equipment

Claims

1. The blood purifier is divided into a plurality of units, including a dialysate supply / discharge unit that supplies dialysate to the blood purifier and discharges wastewater from the blood purifier, and an extracorporeal circulation unit that has an extracorporeal circulation section for circulating the patient's blood extracorporeally via the blood purifier, At least the dialysis fluid supply / drainage unit has a storage unit that stores calibration data of the unit, and is configured to be able to share the calibration data with the extracorporeal circulation unit when the dialysis fluid supply / drainage unit and the extracorporeal circulation unit are connected to each other; The calibration data includes at least information obtained as a result of a calibration process of a sensor, an actuator, and a pump included in the dialysis fluid supply / drainage unit. Blood purification device.

2. the storage unit stores operational data including information related to the operation of the dialysis fluid supply / drainage unit, and the dialysis fluid supply / drainage unit having the storage unit is configured to be able to share the operational data with the extracorporeal circulation unit when the dialysis fluid supply / drainage unit is connected to the extracorporeal circulation unit; The operational data includes at least information that the dialysis fluid supply / drainage unit has completed a disinfection process. The blood purification device according to claim 1 .

3. the dialysis fluid supply / drainage unit having the memory unit has a control unit that controls the operation of the unit, The control unit stores the control content as the operation data in the storage unit. The blood purification device according to claim 2 .

4. A blood purification device divided into multiple units, including a dialysate supply / discharge unit that supplies dialysate to a blood purifier and discharges effluent from the blood purifier, and an extracorporeal circulation unit equipped with an extracorporeal circulation section for circulating the patient's blood extracorporeally via the blood purifier; a network device configured to be able to communicate with at least one of the extracorporeal circulation units and having a storage unit that stores calibration data of the dialysis fluid supply / drainage unit; at least the extracorporeal circulation unit of the blood purification apparatus has a control unit that, when the dialysate supply / drainage unit and the extracorporeal circulation unit are connected, acquires the calibration data of the connected dialysate supply / drainage unit via the network device; The calibration data includes at least information obtained as a result of a calibration process of a sensor, an actuator, and a pump included in the dialysis fluid supply / drainage unit. Blood purification system.

Citation Information

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