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JP2015195833A - Blood purification device and draining method of blood purification device - Google Patents

Blood purification device and draining method of blood purification device Download PDF

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JP2015195833A
JP2015195833A JP2014074072A JP2014074072A JP2015195833A JP 2015195833 A JP2015195833 A JP 2015195833A JP 2014074072 A JP2014074072 A JP 2014074072A JP 2014074072 A JP2014074072 A JP 2014074072A JP 2015195833 A JP2015195833 A JP 2015195833A
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blood
circuit
blood purification
dialysate
supply circuit
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理人 川嶋
Michihito Kawashima
理人 川嶋
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Asahi Kasei Medical Co Ltd
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Asahi Kasei Medical Co Ltd
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Abstract

PROBLEM TO BE SOLVED: To provide a blood purification device capable of draining fluid in a secondary side of a blood purification membrane, besides draining a blood circuit, and automatically performing both processes.SOLUTION: A blood purification apparatus 1 includes: a gas introduction part 12 that is connected to a dialysis fluid supply circuit 80 for introducing gas into the dialysis fluid supply circuit 80; a gas supply circuit 13 that is connected to the dialysis fluid supply circuit 80 and a blood circuit 10 for supplying the gas introduced from the gas introduction part 12 to the dialysis fluid supply circuit 80, to the blood circuit 10 without passing through a blood purification membrane 30 of the blood purifier 20; and pumps 120 and 102 that discharge residual fluid of the blood circuit 10 via the blood purification membrane 30 of the blood purifier 20 to a dialysis fluid discharge circuit 81.

Description

本発明は、血液浄化装置及び血液浄化装置の抜液方法に関する。   The present invention relates to a blood purification device and a method for draining the blood purification device.

例えば血液透析などの血液浄化治療を行う血液浄化装置は、中空糸膜などの血液浄化膜を有する血液浄化器を備えている。血液浄化装置は、血液ポンプにより患者の血液を血液浄化器に送り血液浄化器から患者に戻す血液回路と、透析液を血液浄化器に送り血液浄化器から排出する透析液回路を備えている。この血液浄化装置では、血液回路において血液を体外循環させつつ、透析液回路の透析液を血液浄化器に供給し、血液浄化器において血液を血液浄化膜の一次側を通し透析液を血液浄化膜の二次側を通して、血液浄化膜を介して血液中の老廃物が透析液側に排出され、血液が浄化される。   For example, a blood purification apparatus that performs blood purification treatment such as hemodialysis includes a blood purification device having a blood purification membrane such as a hollow fiber membrane. The blood purification apparatus includes a blood circuit that sends a patient's blood to a blood purification device by a blood pump and returns the blood from the blood purification device to the patient, and a dialysate circuit that sends dialysate to the blood purification device and discharges the blood from the blood purification device. In this blood purification apparatus, while circulating blood in the blood circuit extracorporeally, the dialysate in the dialysate circuit is supplied to the blood purifier, and blood is passed through the primary side of the blood purification membrane in the blood purifier and the dialysate is passed through the blood purification membrane. Through the secondary side, waste products in the blood are discharged to the dialysate side through the blood purification membrane, and the blood is purified.

ところで、この種の血液浄化装置では、血液浄化治療の終了後に回路内に残留する液体を抜液することが望まれている。この抜液の方法として、液置換ラインを手動で液置換ソースから切り離して、その液置換ラインの末端からエアを導入して、血液チューブ(血液回路)内を空にするすることが提案されている(特許文献1参照)。   By the way, in this type of blood purification apparatus, it is desired to drain the liquid remaining in the circuit after the blood purification treatment is completed. As a method of draining, it has been proposed to manually disconnect the liquid replacement line from the liquid replacement source, introduce air from the end of the liquid replacement line, and empty the blood tube (blood circuit). (See Patent Document 1).

特表2010−502321号公報Special table 2010-502321 gazette

しかしながら、上記特許文献1の方法では、手動で液置換ソースを切り離す必要があるので、手間がかかる。また、血液浄化膜の二次側の抜液を行うことができない。   However, in the method of Patent Document 1, it is necessary to manually separate the liquid replacement source, which is troublesome. Moreover, the secondary side of the blood purification membrane cannot be drained.

本出願はかかる点に鑑みてなされたものであり、血液回路に加えて血液浄化膜の二次側の抜液も行うことができ、なおかつそれらを自動で行うことが可能な血液浄化装置及びその抜液方法を提供することをその目的とする。   The present application has been made in view of such a point, and in addition to the blood circuit, a blood purification device that can also perform the drainage of the secondary side of the blood purification membrane and can perform them automatically, and its It is an object of the present invention to provide a draining method.

上記目的を達成するための本発明には、血液浄化膜を備えた血液浄化器と、血液ポンプにより採血部の血液を前記血液浄化器の血液浄化膜の一次側に送り当該血液浄化器の血液浄化膜の一次側から返血部に戻す血液回路と、透析液を前記血液浄化器の血液浄化膜の二次側に供給する透析液供給回路と、透析液を前記血液浄化器の血液浄化膜の二次側から排出する透析液排出回路と、を有する血液浄化装置であって、前記採血部と前記返血部が接続自在に構成され、前記透析液供給回路に接続され、前記透析液供給回路に気体を導入するための気体導入部と、前記透析液供給回路と前記血液回路とを接続し、前記気体導入部から前記透析液供給回路に導入された気体を、前記血液浄化器の血液浄化膜を介さずに前記血液回路に供給するための気体供給回路と、前記血液回路の残留液を前記血液浄化器の血液浄化膜を介して前記透析液排出回路に排出するための圧送装置と、を有する、血液浄化装置が含まれる。   In order to achieve the above object, the present invention includes a blood purifier having a blood purification membrane, and blood in a blood collection unit is sent to a primary side of the blood purification membrane of the blood purification device by a blood pump. A blood circuit for returning from the primary side of the purification membrane to the blood return unit, a dialysate supply circuit for supplying dialysate to the secondary side of the blood purification membrane of the blood purification device, and a blood purification membrane of the blood purification device A dialysis fluid discharge circuit for discharging from the secondary side of the blood purification device, wherein the blood collection unit and the blood return unit are configured to be connectable, connected to the dialysate supply circuit, and supplied with the dialysate A gas introduction part for introducing gas into the circuit, the dialysate supply circuit and the blood circuit are connected, and the gas introduced from the gas introduction part into the dialysate supply circuit is converted into blood of the blood purifier Gas for supplying the blood circuit without going through the purification membrane It has a supply circuit, and a pumping device for discharging the dialysis fluid discharge circuit of the residual liquid through the blood purification membrane of the blood purifier of the blood circuit includes the blood purification apparatus.

前記圧送装置は、前記気体供給回路に設けられたポンプを有していてもよい。   The pumping device may have a pump provided in the gas supply circuit.

前記圧送装置は、前記透析液排出回路に設けられたポンプを有していてもよい。   The pressure feeding device may have a pump provided in the dialysate discharge circuit.

上記血液浄化装置は、前記気体導入部から前記透析液供給回路に導入された気体を前記血液浄化器の血液浄化膜の二次側に送るための圧送装置をさらに有していてもよい。   The blood purification device may further include a pressure feeding device for sending the gas introduced from the gas introduction unit to the dialysate supply circuit to the secondary side of the blood purification membrane of the blood purification device.

上記血液浄化装置は、前記血液浄化膜の一次側又は二次側の少なくともいずれかの圧力を検出可能な圧力センサと、前記圧力センサの検出結果に基づいて、前記血液浄化膜にかかる圧力が所定の範囲に収まるように前記圧送装置の圧送量を調整する制御装置と、をさらに有していてもよい。   The blood purification device includes a pressure sensor capable of detecting a pressure on at least one of the primary side and the secondary side of the blood purification membrane, and a pressure applied to the blood purification membrane based on a detection result of the pressure sensor. And a control device that adjusts the pumping amount of the pumping device so as to fall within the range.

前記血液回路の残留液を前記血液浄化膜を介して前記透析液排出回路に排出する際に、前記血液回路の血液ポンプを駆動させ、前記血液回路の残留液を循環させる制御装置をさらに有していてもよい。   A controller for driving the blood pump of the blood circuit to circulate the residual liquid of the blood circuit when discharging the residual liquid of the blood circuit to the dialysate discharge circuit through the blood purification membrane; It may be.

前記制御装置は、前記血液ポンプを正回転及び逆回転させて、前記血液回路の残留液を循環させてもよい。   The control device may circulate the residual fluid of the blood circuit by rotating the blood pump forward and backward.

別の観点による本発明には、血液浄化装置の抜液を行う方法であって、血液浄化器に接続された血液回路の採血部と返血部を接続し前記血液回路を環状にした状態で、気体導入部から透析液供給回路に気体を導入し、当該透析液供給回路の気体を、前記透析液供給回路と前記血液回路とを接続した気体供給回路を通じて、血液浄化器の血液浄化膜を介さずに前記血液回路に供給し、前記血液回路の残留液を前記血液浄化器の血液浄化膜を介して透析液排出回路に排出する工程を有する、血液浄化装置の抜液方法が含まれる。   According to another aspect of the present invention, there is provided a method of draining a blood purification apparatus, wherein a blood collection part and a blood return part of a blood circuit connected to a blood purification device are connected and the blood circuit is in an annular state. The blood purification membrane of the blood purifier is introduced into the dialysate supply circuit from the gas introduction unit, and the gas in the dialysate supply circuit is passed through the gas supply circuit connecting the dialysate supply circuit and the blood circuit. A method for draining the blood purification apparatus is provided, which includes a step of supplying the blood circuit without intervention and discharging the residual liquid of the blood circuit to the dialysate discharge circuit via the blood purification membrane of the blood purifier.

上記血液浄化装置の抜液方法は、前記気体導入部から前記透析液供給回路に導入された気体を、前記血液浄化器の血液浄化膜の二次側に供給する工程をさらに有していてもよい。   The method for removing blood from the blood purification apparatus may further include a step of supplying the gas introduced from the gas introduction unit to the dialysate supply circuit to the secondary side of the blood purification membrane of the blood purification device. Good.

前記血液回路に設けられた血液ポンプを駆動し、前記血液回路の残留液を循環させながら前記透析液排出回路に排出してもよい。   A blood pump provided in the blood circuit may be driven and discharged to the dialysate discharge circuit while circulating the remaining liquid in the blood circuit.

前記血液ポンプを正回転及び逆回転させて、前記血液回路の残留液を循環させてもよい。   The blood pump may be rotated forward and backward to circulate the residual liquid of the blood circuit.

前記血液浄化膜にかかる圧力が所定の範囲に収まるように、前記血液回路の残留液を前記血液浄化膜を介して前記透析液排出回路に排出してもよい。   The residual fluid of the blood circuit may be discharged to the dialysate discharge circuit through the blood purification membrane so that the pressure applied to the blood purification membrane falls within a predetermined range.

本発明によれば、血液回路に加えて血液浄化膜の二次側の抜液も行うことができ、なおかつそれらを自動で行うことができる。   According to the present invention, in addition to the blood circuit, the secondary side of the blood purification membrane can be drained, and these can be automatically performed.

血液浄化装置の構成の概略を示す説明図である。It is explanatory drawing which shows the outline of a structure of the blood purification apparatus. 図1の装置の血液浄化処理の様子を示す説明図である。It is explanatory drawing which shows the mode of the blood purification process of the apparatus of FIG. 図1の装置の抜液第1工程の様子を示す説明図である。It is explanatory drawing which shows the mode of the liquid discharge 1st process of the apparatus of FIG. 図1の装置の抜液第2工程の様子を示す説明図である。It is explanatory drawing which shows the mode of the 2nd liquid discharge process of the apparatus of FIG. 排液ポンプのない血液浄化装置の構成を示す説明図である。It is explanatory drawing which shows the structure of the blood purification apparatus without a drainage pump. 透析液供給回路にポンプを有する血液浄化装置の構成を示す説明図である。It is explanatory drawing which shows the structure of the blood purification apparatus which has a pump in a dialysate supply circuit. 他の回路構成を有する血液浄化装置の構成の概略を示す説明図である。It is explanatory drawing which shows the outline of a structure of the blood purification apparatus which has another circuit structure.

以下、図面を参照して、本発明の好ましい実施の形態の一例について説明する。なお、図面の上下左右等の位置関係は、特に断らない限り、図面に示す位置関係に基づくものとする。図面の寸法比率は、図示の比率に限定されるものではない。さらに、以下の実施の形態は、本発明を説明するための例示であり、本発明をその実施の形態のみに限定する趣旨ではない。また、本発明は、その要旨を逸脱しない限り、さまざまな変形が可能である。   Hereinafter, an example of a preferred embodiment of the present invention will be described with reference to the drawings. Note that the positional relationship such as up, down, left, and right in the drawing is based on the positional relationship shown in the drawing unless otherwise specified. The dimensional ratios in the drawings are not limited to the illustrated ratios. Furthermore, the following embodiment is an illustration for explaining the present invention, and is not intended to limit the present invention only to the embodiment. The present invention can be variously modified without departing from the gist thereof.

図1は、本実施の形態に係る血液浄化装置1の構成の概略を示す説明図である。血液浄化装置1は、例えば血液回路10と、透析液回路11と、気体導入部12と、気体供給回路13及び制御装置14を有している。   FIG. 1 is an explanatory diagram showing an outline of the configuration of blood purification apparatus 1 according to the present embodiment. The blood purification apparatus 1 includes, for example, a blood circuit 10, a dialysate circuit 11, a gas introduction unit 12, a gas supply circuit 13, and a control device 14.

血液回路10は、例えば採血部21と血液浄化器20とを接続する採血回路22と、血液浄化器20と返血部23とを接続する返血回路24を有している。   The blood circuit 10 includes, for example, a blood collection circuit 22 that connects the blood collection unit 21 and the blood purifier 20, and a blood return circuit 24 that connects the blood purification unit 20 and the blood return unit 23.

血液浄化器20は、円柱状のモジュール内に中空糸膜などからなる血液浄化膜30を有している。血液浄化器20は、血液浄化膜30の一次側(血液側)に通じる入口部20aと出口部20bと、血液浄化膜30の二次側(透析液側)に通じる入口部20cと出口部20dを有している。血液浄化器20は、例えば出口部20d側が入口部20cよりも下になるように垂直方向に立てて設置されている。   The blood purifier 20 has a blood purification membrane 30 made of a hollow fiber membrane or the like in a cylindrical module. The blood purifier 20 includes an inlet portion 20a and an outlet portion 20b that communicate with the primary side (blood side) of the blood purification membrane 30, and an inlet portion 20c and an outlet portion 20d that communicate with the secondary side (dialysate side) of the blood purification membrane 30. have. The blood purifier 20 is installed upright in the vertical direction so that, for example, the outlet 20d side is below the inlet 20c.

採血回路22は、例えば軟質のチューブで構成され、血液浄化器20の入口部20aに接続されている。採血回路22には、血液ポンプ40が設けられている。血液ポンプ40には、例えば正・逆回転可能なものが用いられている。   The blood collection circuit 22 is composed of, for example, a soft tube, and is connected to the inlet 20a of the blood purifier 20. The blood collection circuit 22 is provided with a blood pump 40. As the blood pump 40, for example, a pump capable of forward / reverse rotation is used.

返血回路24は、例えば軟質のチューブで構成され、血液浄化器20の出口部20bに接続されている。返血回路24には、例えば圧力センサ50が設けられている。   The blood return circuit 24 is composed of, for example, a soft tube, and is connected to the outlet 20b of the blood purifier 20. For example, a pressure sensor 50 is provided in the blood return circuit 24.

採血回路22と返血回路24には、クランプバルブ60、61が設けられ、採血部21と返血部23付近が開閉自在である。また、採血回路22の採血部21と返血回路24の返血部23は接続自在に構成されている。   The blood collection circuit 22 and the blood return circuit 24 are provided with clamp valves 60 and 61, and the vicinity of the blood collection part 21 and the blood return part 23 can be freely opened and closed. Further, the blood collection unit 21 of the blood collection circuit 22 and the blood return unit 23 of the blood return circuit 24 are configured to be connectable.

透析液回路11は、例えば図示しない透析液供給源から血液浄化器20の二次側の入口部20cに通じる透析液供給回路80と、血液浄化器20の二次側の出口部20dから装置外部に通じる透析液排出回路81を有している。これらの透析液供給回路80及び透析液排出回路81は、例えば軟質のチューブにより構成されている。   The dialysate circuit 11 includes, for example, a dialysate supply circuit 80 that leads from a dialysate supply source (not shown) to the secondary side inlet 20c of the blood purifier 20, and a secondary side outlet 20d of the blood purifier 20 from the secondary side. The dialysate discharge circuit 81 leads to. These dialysate supply circuit 80 and dialysate discharge circuit 81 are constituted by, for example, soft tubes.

透析液供給回路80には、例えば開閉バルブ90が設けられている。   The dialysate supply circuit 80 is provided with, for example, an opening / closing valve 90.

透析液排出回路81には、例えば上流側から順に開閉バルブ100、圧力センサ101及び圧送装置としての排液ポンプ102が設けられている。   In the dialysate discharge circuit 81, for example, an on-off valve 100, a pressure sensor 101, and a drain pump 102 as a pressure feeding device are provided in order from the upstream side.

気体導入部12は、例えば透析液供給回路80に接続された気体導入路110と、気体導入路110の先端に設けられたフィルタ111と、透析液供給回路80側の透析液が外部に排出されるのを防止する逆止弁112と、気体導入路110を開閉する開閉バルブ113を備えている。フィルタ111は、大気中の不純物を除去できる。   The gas introduction unit 12 is configured to discharge, for example, a gas introduction path 110 connected to the dialysate supply circuit 80, a filter 111 provided at the tip of the gas introduction path 110, and a dialysate on the dialysate supply circuit 80 side. A check valve 112 that prevents the gas from flowing in, and an open / close valve 113 that opens and closes the gas introduction path 110. The filter 111 can remove impurities in the atmosphere.

気体供給回路13は、例えば透析液供給回路80における気体導入路110の分岐部Aと開閉バルブ90との間の分岐部Bから、血液回路10の返血回路24に接続されている。気体供給回路13には、圧送装置としての気体供給ポンプ120が設けられている。   The gas supply circuit 13 is connected to the blood return circuit 24 of the blood circuit 10 from a branch part B between the branch part A of the gas introduction path 110 and the opening / closing valve 90 in the dialysate supply circuit 80, for example. The gas supply circuit 13 is provided with a gas supply pump 120 as a pressure feeding device.

制御装置14は、例えば血液透析装置1の全体の動作を制御するコンピュータであり、例えばポンプ40、102、120、バルブ90、100、113等の動作を制御して、後述の血液浄化処理や抜液を実行するように血液浄化装置1を作動させることができる。   The control device 14 is, for example, a computer that controls the overall operation of the hemodialysis device 1. For example, the control device 14 controls the operations of the pumps 40, 102, 120, valves 90, 100, 113, etc. The blood purification apparatus 1 can be operated so as to execute the liquid.

次に、以上のように構成された血液浄化装置1の抜液方法を血液浄化治療のプロセスとともに説明する。   Next, a method for draining the blood purification apparatus 1 configured as described above will be described together with a blood purification treatment process.

先ず採血部21と返血部23に図示しない穿刺針が接続され、患者に穿刺される。図2に示すように血液回路10において、血液ポンプ40が正回転(矢印方向)され、患者の血液が採血回路22を通じて血液浄化器20の血液浄化膜30の一次側に送られ、血液浄化膜30の一次側を通過した血液が返血回路24を通じて患者に戻される。   First, a puncture needle (not shown) is connected to the blood collection unit 21 and the blood return unit 23 to puncture the patient. As shown in FIG. 2, in the blood circuit 10, the blood pump 40 is rotated forward (in the direction of the arrow), and the patient's blood is sent to the primary side of the blood purification film 30 of the blood purifier 20 through the blood collection circuit 22. The blood that has passed through the primary side 30 is returned to the patient through the blood return circuit 24.

透析液回路11では、開閉バルブ90と開閉バルブ100が開放され、透析液供給回路80の図示しない透析液供給ポンプや、透析液排出回路81の排液ポンプ102等により透析液が透析液供給回路80を通じて血液浄化器20の血液浄化膜30の二次側に供給され、血液浄化膜30の二次側を通過した透析液が透析液排出回路81を通じて排出される。なお、このとき、気体導入部12の開閉バルブ113は閉鎖されている。   In the dialysate circuit 11, the open / close valve 90 and the open / close valve 100 are opened, and the dialysate is supplied to the dialysate supply circuit by the dialysate supply pump (not shown) of the dialysate supply circuit 80, the drainage pump 102 of the dialysate discharge circuit 81, or the like. The dialysate supplied to the secondary side of the blood purification membrane 30 of the blood purification device 20 through 80 and passed through the secondary side of the blood purification membrane 30 is discharged through the dialysate discharge circuit 81. At this time, the opening / closing valve 113 of the gas introduction unit 12 is closed.

血液浄化器20では、血液浄化膜30の一次側に血液が流れ、二次側に透析液が流れることで、血液浄化膜30を介して血液中の老廃物が透析液側に排出され、血液が浄化される。   In the blood purifier 20, blood flows to the primary side of the blood purification membrane 30 and dialysate flows to the secondary side, so that waste products in the blood are discharged to the dialysate side via the blood purification membrane 30. Is purified.

なお、このとき、気体供給回路13において、適宜気体供給ポンプ120が駆動され、透析液供給回路80の透析液の一部が血液回路10の返血回路24に供給されて、患者に補液を行うようにしてもよい。   At this time, in the gas supply circuit 13, the gas supply pump 120 is appropriately driven, and a part of the dialysate in the dialysate supply circuit 80 is supplied to the blood return circuit 24 in the blood circuit 10 to provide a replacement fluid to the patient. You may do it.

予め設定された所定時間、血液回路10における血液の循環と、透析液回路11における透析液の給排出が行われ、その後血液浄化処理が終了する。   Blood circulation in the blood circuit 10 and supply / discharge of the dialysate in the dialysate circuit 11 are performed for a predetermined time set in advance, and then the blood purification process ends.

血液浄化処理が終了すると、血液回路10内の血液が患者に返血される。その後患者から穿刺針が外される。   When the blood purification process is completed, the blood in the blood circuit 10 is returned to the patient. Thereafter, the puncture needle is removed from the patient.

次に血液浄化装置1の回路内に残留する残留液が抜液される。この抜液では、回路内のすべての残留液が抜液されてもよいし、一部の残留液が抜液されてもよい。   Next, the residual liquid remaining in the circuit of the blood purification apparatus 1 is drained. In this drainage, all the residual liquid in the circuit may be drained, or a part of the residual liquid may be drained.

図3に示すように先ず、採血部21と返血部23が接続され、血液回路10が環状になる。次に気体導入部12の開閉バルブ113と透析液排出回路81の開閉バルブ100が開放され、透析液供給回路80の開閉バルブ90が閉鎖された状態で、気体供給ポンプ120、排液ポンプ102及び血液ポンプ40が駆動する。これにより、外気が気体導入部12のフィルタ111から導入され、気体導入路110を通じて透析液供給回路80に導入され、透析液供給回路80で残留している透析液とともに、気体供給回路13を通じて血液回路10に供給される。血液回路10内の残留液は、血液ポンプ40により血液回路10内を循環しつつ、気体供給ポンプ120の供給圧や排液ポンプ102の吸引圧により血液浄化器20の血液浄化膜30の一次側から二次側に押し出され、透析液排出回路81を通じて装置外部に排出される(抜液第1工程)。このとき、血液回路10内に導入された気体は、血液浄化膜30を通過できないため、血液回路10内の残留液の量が次第に減少し、血液回路10内が気体に置換される。   As shown in FIG. 3, first, the blood collection unit 21 and the blood return unit 23 are connected, and the blood circuit 10 becomes annular. Next, in a state where the opening / closing valve 113 of the gas introduction unit 12 and the opening / closing valve 100 of the dialysate discharge circuit 81 are opened and the opening / closing valve 90 of the dialysate supply circuit 80 is closed, the gas supply pump 120, the drainage pump 102, and Blood pump 40 is driven. As a result, outside air is introduced from the filter 111 of the gas introduction unit 12, introduced into the dialysate supply circuit 80 through the gas introduction path 110, and blood through the gas supply circuit 13 together with the dialysate remaining in the dialysate supply circuit 80. It is supplied to the circuit 10. The residual liquid in the blood circuit 10 circulates in the blood circuit 10 by the blood pump 40, and the primary side of the blood purification film 30 of the blood purifier 20 by the supply pressure of the gas supply pump 120 or the suction pressure of the drainage pump 102. Is pushed out to the secondary side and discharged out of the apparatus through the dialysate discharge circuit 81 (first step of draining). At this time, since the gas introduced into the blood circuit 10 cannot pass through the blood purification film 30, the amount of residual liquid in the blood circuit 10 gradually decreases and the blood circuit 10 is replaced with gas.

なお、血液回路10の残留液を循環させる際に、制御装置14によって、血液ポンプ40を逆回転(血液処理時の回転方向と反対)させてもよい。また、血液ポンプ40の正回転と逆回転を交互に繰り返すようにしてもよい。こうすることにより、残留液を血液浄化膜30に効率的に接触させて残留液の排出を促進させることができる。   When circulating the residual liquid in the blood circuit 10, the blood pump 40 may be reversely rotated (opposite to the rotation direction during blood processing) by the control device 14. Further, the forward rotation and the reverse rotation of the blood pump 40 may be alternately repeated. By doing so, the residual liquid can be efficiently brought into contact with the blood purification film 30 and the discharge of the residual liquid can be promoted.

また、例えば圧力センサ50により血液浄化膜30の一次側の圧力をモニタリングしてもよい。そして、例えば制御装置14が、圧力センサ50による圧力検出結果に基づいて、血液浄化膜30にかかる圧力が所定の範囲に収まるように気体供給ポンプ120と排液ポンプ102の流量を調整してもよい。具体的には、血液浄化膜30の一次側の圧力が例えば300mmHgを上回らないように気体供給ポンプ120と排液ポンプ102の流量をフィードバック制御してもよい。なお、血液浄化膜30の一次側の圧力を検出する圧力センサ50は、血液回路10の他の位置に設置されていてもよい。また、透析液排出回路81の圧力センサ101により血液浄化膜30の二次側の圧力を検出し、その圧力検出結果に基づいて、血液浄化膜30にかかる圧力が所定の範囲に収まるようにポンプ120、102の流量を調整してもよい。さらに、圧力センサ50や圧力センサ101により検出された圧力が所定の範囲を逸脱した状態が所定時間継続した時に血液回路10内の抜液を終了するようにしてもよい。   Further, for example, the pressure on the primary side of the blood purification film 30 may be monitored by the pressure sensor 50. For example, even if the control device 14 adjusts the flow rates of the gas supply pump 120 and the drainage pump 102 based on the pressure detection result by the pressure sensor 50 so that the pressure applied to the blood purification film 30 falls within a predetermined range. Good. Specifically, the flow rates of the gas supply pump 120 and the drainage pump 102 may be feedback controlled so that the pressure on the primary side of the blood purification film 30 does not exceed, for example, 300 mmHg. Note that the pressure sensor 50 that detects the pressure on the primary side of the blood purification film 30 may be installed at another position of the blood circuit 10. Further, the pressure sensor 101 of the dialysate discharge circuit 81 detects the pressure on the secondary side of the blood purification membrane 30, and based on the pressure detection result, the pump is applied so that the pressure applied to the blood purification membrane 30 falls within a predetermined range. The flow rates of 120 and 102 may be adjusted. Further, the drainage of the blood circuit 10 may be terminated when a state in which the pressure detected by the pressure sensor 50 or the pressure sensor 101 deviates from a predetermined range continues for a predetermined time.

例えば血液回路10内の残留液がすべて透析液排出回路81に排出され、血液回路10内が気体に置換されると、気体供給ポンプ120と血液ポンプ40が停止する。次に、図4に示すように開閉バルブ90が開放され、気体が気体導入部12及び透析液供給回路80を通じて血液浄化器20の血液浄化膜30の二次側に送られ、当該血液浄化膜30の二次側から透析液排出回路81に排出される(抜液第2工程)。これにより、血液浄化膜30の二次側の残留液が抜液される。なお、透析液排出回路81がタンクに接続されており、このタンクに残留液が抜液されてもよい。   For example, when all the residual liquid in the blood circuit 10 is discharged to the dialysate discharge circuit 81 and the blood circuit 10 is replaced with gas, the gas supply pump 120 and the blood pump 40 are stopped. Next, as shown in FIG. 4, the opening / closing valve 90 is opened, and the gas is sent to the secondary side of the blood purification membrane 30 of the blood purifier 20 through the gas introduction part 12 and the dialysate supply circuit 80, and the blood purification membrane 30 is discharged to the dialysate discharge circuit 81 from the secondary side (drainage second step). Thereby, the residual liquid on the secondary side of the blood purification film 30 is drained. The dialysate discharge circuit 81 is connected to a tank, and the residual liquid may be drained from this tank.

本実施の形態によれば、気体導入部12から導入された気体が、透析液供給回路80を通って気体供給回路13に入り、気体供給回路13を通って血液回路10に入り、血液回路10の残留液を血液浄化膜30の二次側に通過させて透析液排出回路81から排出するので、血液回路10内の残留液の抜液を自動で行うことができる。   According to the present embodiment, the gas introduced from the gas introduction unit 12 enters the gas supply circuit 13 through the dialysate supply circuit 80, enters the blood circuit 10 through the gas supply circuit 13, and then enters the blood circuit 10. Since the residual liquid is passed through the secondary side of the blood purification membrane 30 and discharged from the dialysate discharge circuit 81, the residual liquid in the blood circuit 10 can be automatically drained.

気体供給回路13に気体供給ポンプ120を設け、透析液排出回路81に排液ポンプ102を設けるので、抜液を自動かつ効率的に行うことができる。   Since the gas supply pump 120 is provided in the gas supply circuit 13 and the drainage pump 102 is provided in the dialysate discharge circuit 81, the drainage can be performed automatically and efficiently.

また、排液ポンプ102の吸引力により、気体導入部12から透析液供給回路80に導入された気体を血液浄化器20の血液浄化膜30の二次側に供給できるので、血液浄化膜30の二次側に残された残留液も抜液できる。   Further, since the gas introduced from the gas introduction unit 12 to the dialysate supply circuit 80 can be supplied to the secondary side of the blood purification film 30 of the blood purifier 20 by the suction force of the drainage pump 102, Residual liquid left on the secondary side can also be drained.

血液ポンプ40により血液回路10の残留液を循環させているので、残留液を血液浄化膜30に接触させ、血液回路10の抜液を促進させることができる。   Since the residual fluid of the blood circuit 10 is circulated by the blood pump 40, the residual fluid can be brought into contact with the blood purification film 30 to facilitate the drainage of the blood circuit 10.

上記実施の形態において図5に示すように排液ポンプ102がなくてもよい。かかる場合、気体供給ポンプ120の駆動により、気体と残留液が気体供給回路13を通じて血液回路10に送られ、その圧力により血液回路10の残留液が血液浄化器20の血液浄化膜30を通じて透析液排出回路81に排出される。そして、血液回路10が気体に置換されると、例えば開閉バルブ90が開放され、落差圧により、気体が血液浄化膜30の二次側に供給され、残留液が透析液排出回路81を通じて排出される。   In the above embodiment, the drainage pump 102 may not be provided as shown in FIG. In this case, by driving the gas supply pump 120, the gas and the residual liquid are sent to the blood circuit 10 through the gas supply circuit 13, and the residual liquid of the blood circuit 10 due to the pressure passes through the blood purification membrane 30 of the blood purifier 20. It is discharged to the discharge circuit 81. When the blood circuit 10 is replaced with gas, for example, the open / close valve 90 is opened, the gas is supplied to the secondary side of the blood purification membrane 30 by the drop pressure, and the residual liquid is discharged through the dialysate discharge circuit 81. The

また、上記実施の形態において、図6に示すように透析液供給回路80における気体導入部12の分岐部Aと開閉バルブ90との間に圧送装置としてのポンプ130を設けてもよい。かかる場合、例えば気体供給ポンプ120が駆動され、気体と残留液が気体供給回路13を通じて血液回路10に送られ、その圧力により血液回路10の残留液が血液浄化器20の血液浄化膜30を通じて透析液排出回路81に排出される。そして、血液回路10が気体に置換されると、例えば開閉バルブ90が開放され、ポンプ130が駆動し、気体が血液浄化膜30の二次側に供給され、残留液が透析液排出回路81を通じて排出される。   Moreover, in the said embodiment, you may provide the pump 130 as a pumping apparatus between the branch part A of the gas introduction part 12 in the dialysate supply circuit 80, and the on-off valve 90, as shown in FIG. In such a case, for example, the gas supply pump 120 is driven, gas and residual liquid are sent to the blood circuit 10 through the gas supply circuit 13, and the residual liquid of the blood circuit 10 is dialyzed through the blood purification membrane 30 of the blood purifier 20 by the pressure. The liquid is discharged to the liquid discharge circuit 81. When the blood circuit 10 is replaced with gas, for example, the open / close valve 90 is opened, the pump 130 is driven, the gas is supplied to the secondary side of the blood purification membrane 30, and the residual liquid passes through the dialysate discharge circuit 81. Discharged.

なお、上記例において、ポンプ130は、透析液供給回路80における気体導入部12の分岐部Aと気体供給回路13の分岐部Bとの間に設けてもよい。   In the above example, the pump 130 may be provided between the branch part A of the gas introduction part 12 and the branch part B of the gas supply circuit 13 in the dialysate supply circuit 80.

以上の実施の形態において、図7に示すように気体供給回路13は、血液回路10の採血回路22に接続されていてもよい。かかる場合、気体導入部12から導入された気体と透析液供給回路80の残留液は、気体供給回路13を通じて血液回路10の採血回路22に供給される。なお、気体供給回路13は、さらに採血回路22と返血回路24の両方に接続されていてもよい。   In the above embodiment, the gas supply circuit 13 may be connected to the blood collection circuit 22 of the blood circuit 10 as shown in FIG. In such a case, the gas introduced from the gas introduction unit 12 and the residual liquid of the dialysate supply circuit 80 are supplied to the blood collection circuit 22 of the blood circuit 10 through the gas supply circuit 13. The gas supply circuit 13 may be further connected to both the blood collection circuit 22 and the blood return circuit 24.

以上、添付図面を参照しながら本発明の好適な実施の形態について説明したが、本発明はかかる例に限定されない。当業者であれば、特許請求の範囲に記載された思想の範疇内において、各種の変更例または修正例に想到し得ることは明らかであり、それらについても当然に本発明の技術的範囲に属するものと了解される。   The preferred embodiments of the present invention have been described above with reference to the accompanying drawings, but the present invention is not limited to such examples. It is obvious for those skilled in the art that various modifications or modifications can be conceived within the scope of the idea described in the claims, and these naturally belong to the technical scope of the present invention. It is understood.

例えば血液浄化装置1の回路構成は、上記実施の形態で記載した構成に限られない。例えば圧送装置の設置位置や種類は適宜変更できる。血液浄化装置1は、血液透析を行う装置のみならず、持続緩除式血液濾過などを行う装置にも適用できる。   For example, the circuit configuration of the blood purification apparatus 1 is not limited to the configuration described in the above embodiment. For example, the installation position and type of the pressure feeding device can be changed as appropriate. The blood purification apparatus 1 can be applied not only to an apparatus that performs hemodialysis, but also to an apparatus that performs continuous loose blood filtration.

本発明は、血液回路に加えて血液浄化膜の二次側の抜液も行い、なおかつそれらを自動で行う際に有用である。   The present invention is useful when the secondary side of the blood purification membrane is drained in addition to the blood circuit and is automatically performed.

1 血液浄化装置
10 血液回路
11 透析液回路
12 気体導入部
13 気体供給回路
14 制御装置
20 血液浄化器
30 血液浄化膜
40 血液ポンプ
80 透析液供給回路
81 透析液排出回路
102 排液ポンプ
120 気体供給ポンプ
DESCRIPTION OF SYMBOLS 1 Blood purification apparatus 10 Blood circuit 11 Dialysate circuit 12 Gas introduction part 13 Gas supply circuit 14 Control apparatus 20 Blood purifier 30 Blood purification membrane 40 Blood pump 80 Dialysate supply circuit 81 Dialysate discharge circuit 102 Drain pump 120 Gas supply pump

Claims (12)

血液浄化膜を備えた血液浄化器と、
血液ポンプにより採血部の血液を前記血液浄化器の血液浄化膜の一次側に送り当該血液浄化器の血液浄化膜の一次側から返血部に戻す血液回路と、
透析液を前記血液浄化器の血液浄化膜の二次側に供給する透析液供給回路と、
透析液を前記血液浄化器の血液浄化膜の二次側から排出する透析液排出回路と、を有する血液浄化装置であって、
前記採血部と前記返血部が接続自在に構成され、
前記透析液供給回路に接続され、前記透析液供給回路に気体を導入するための気体導入部と、
前記透析液供給回路と前記血液回路とを接続し、前記気体導入部から前記透析液供給回路に導入された気体を、前記血液浄化器の血液浄化膜を介さずに前記血液回路に供給するための気体供給回路と、
前記血液回路の残留液を前記血液浄化器の血液浄化膜を介して前記透析液排出回路に排出するための圧送装置と、を有する、血液浄化装置。
A blood purifier with a blood purification membrane;
A blood circuit that sends blood from a blood collection unit to a primary side of the blood purification membrane of the blood purifier by a blood pump and returns the blood from the primary side of the blood purification membrane of the blood purifier to the blood return unit;
A dialysate supply circuit for supplying dialysate to the secondary side of the blood purification membrane of the blood purifier;
A dialysate discharge circuit for discharging dialysate from the secondary side of the blood purification membrane of the blood purifier,
The blood collection unit and the blood return unit are configured to be connectable,
A gas introduction unit connected to the dialysate supply circuit, for introducing gas into the dialysate supply circuit;
To connect the dialysate supply circuit and the blood circuit, and supply the gas introduced from the gas introduction unit to the dialysate supply circuit to the blood circuit without passing through the blood purification membrane of the blood purifier A gas supply circuit of
A blood purification device, comprising: a pressure feeding device for discharging the residual fluid of the blood circuit to the dialysate discharge circuit through a blood purification membrane of the blood purifier.
前記圧送装置は、前記気体供給回路に設けられたポンプを有する、請求項1に記載の血液浄化装置。   The blood purification apparatus according to claim 1, wherein the pumping device includes a pump provided in the gas supply circuit. 前記圧送装置は、前記透析液排出回路に設けられたポンプを有する、請求項1又は2に記載の血液浄化装置。   The blood purification apparatus according to claim 1 or 2, wherein the pumping device includes a pump provided in the dialysate discharge circuit. 前記気体導入部から前記透析液供給回路に導入された気体を前記血液浄化器の血液浄化膜の二次側に送るための圧送装置をさらに有する、請求項1〜3のいずれかに記載の血液浄化装置。   The blood according to any one of claims 1 to 3, further comprising a pressure feeding device for sending the gas introduced from the gas introduction unit to the dialysate supply circuit to the secondary side of the blood purification membrane of the blood purifier. Purification equipment. 前記血液浄化膜の一次側又は二次側の少なくともいずれかの圧力を検出可能な圧力センサと、
前記圧力センサの検出結果に基づいて、前記血液浄化膜にかかる圧力が所定の範囲に収まるように前記圧送装置の圧送量を調整する制御装置と、をさらに有する、請求項1〜4のいずれかに記載の血液浄化装置。
A pressure sensor capable of detecting the pressure of at least one of the primary side and the secondary side of the blood purification membrane;
5. The control device according to claim 1, further comprising: a control device that adjusts a pumping amount of the pumping device so that a pressure applied to the blood purification membrane falls within a predetermined range based on a detection result of the pressure sensor. The blood purification apparatus according to 1.
前記血液回路の残留液を前記血液浄化膜を介して前記透析液排出回路に排出する際に、前記血液回路の血液ポンプを駆動させ、前記血液回路の残留液を循環させる制御装置をさらに有する、請求項1〜5のいずれかに記載の血液浄化装置。   A controller that drives the blood pump of the blood circuit to circulate the residual liquid of the blood circuit when discharging the residual liquid of the blood circuit to the dialysate discharge circuit through the blood purification membrane; The blood purification apparatus according to any one of claims 1 to 5. 前記制御装置は、前記血液ポンプを正回転及び逆回転させて、前記血液回路の残留液を循環させる、請求項6に記載の血液浄化装置。   The blood purification apparatus according to claim 6, wherein the control device circulates the residual liquid in the blood circuit by rotating the blood pump forward and backward. 血液浄化装置の抜液を行う方法であって、
血液浄化器に接続された血液回路の採血部と返血部を接続し前記血液回路を環状にした状態で、気体導入部から透析液供給回路に気体を導入し、当該透析液供給回路の気体を、前記透析液供給回路と前記血液回路とを接続した気体供給回路を通じて、血液浄化器の血液浄化膜を介さずに前記血液回路に供給し、前記血液回路の残留液を前記血液浄化器の血液浄化膜を介して透析液排出回路に排出する工程を有する、血液浄化装置の抜液方法。
A method of draining a blood purification device,
A gas is introduced from the gas introduction part to the dialysate supply circuit in a state where the blood collection part and the blood return part of the blood circuit connected to the blood purifier are connected and the blood circuit is annular, and the gas of the dialysate supply circuit Is supplied to the blood circuit through the gas supply circuit connecting the dialysate supply circuit and the blood circuit without passing through the blood purification membrane of the blood purifier, and the residual fluid of the blood circuit is supplied to the blood purifier. A method for draining a blood purification apparatus, comprising a step of discharging the blood purification membrane to a dialysate discharge circuit.
前記気体導入部から前記透析液供給回路に導入された気体を、前記血液浄化器の血液浄化膜の二次側に供給する工程をさらに有する、請求項8に記載の血液浄化装置の抜液方法。   The method of draining a blood purification apparatus according to claim 8, further comprising a step of supplying a gas introduced from the gas introduction unit to the dialysate supply circuit to a secondary side of a blood purification membrane of the blood purifier. . 前記血液回路に設けられた血液ポンプを駆動し、前記血液回路の残留液を循環させながら前記透析液排出回路に排出する、請求項8又は9に記載の血液浄化装置の抜液方法。   The method of draining a blood purification apparatus according to claim 8 or 9, wherein a blood pump provided in the blood circuit is driven to discharge the dialysate discharge circuit while circulating the residual liquid of the blood circuit. 前記血液ポンプを正回転及び逆回転させて、前記血液回路の残留液を循環させる、請求項10に記載の血液浄化装置の抜液方法。   The method of draining a blood purification apparatus according to claim 10, wherein the blood pump is rotated forward and backward to circulate the residual liquid of the blood circuit. 前記血液浄化膜にかかる圧力が所定の範囲に収まるように、前記血液回路の残留液を前記血液浄化膜を介して前記透析液排出回路に排出する、請求項8〜11のいずれかに記載の血液浄化装置の抜液方法。   The residual fluid of the blood circuit is discharged to the dialysate discharge circuit through the blood purification membrane so that the pressure applied to the blood purification membrane falls within a predetermined range. A method for draining a blood purification apparatus.
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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2017205494A (en) * 2016-04-15 2017-11-24 ビー.ブラウン アビタム アーゲーB. Braun Avitum Ag Method of draining device for extracorporeal blood treatment
CN111203101A (en) * 2018-11-22 2020-05-29 旭化成医疗株式会社 Body fluid separation system and method for operating a body fluid separation system
JP2021500094A (en) * 2017-10-27 2021-01-07 ガンブロ・ルンディア・エービーGambro Lundia Ab Dialysis equipment and methods
JP7529695B2 (en) 2019-05-23 2024-08-06 ガンブロ・ルンディア・エービー Emptying the blood circuit after extracorporeal blood treatment

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2017205494A (en) * 2016-04-15 2017-11-24 ビー.ブラウン アビタム アーゲーB. Braun Avitum Ag Method of draining device for extracorporeal blood treatment
JP2021500094A (en) * 2017-10-27 2021-01-07 ガンブロ・ルンディア・エービーGambro Lundia Ab Dialysis equipment and methods
JP7422657B2 (en) 2017-10-27 2024-01-26 ガンブロ・ルンディア・エービー Dialysis equipment and methods
US11896752B2 (en) 2017-10-27 2024-02-13 Gambro Lundia Ab Dialysis machine and method
CN111203101A (en) * 2018-11-22 2020-05-29 旭化成医疗株式会社 Body fluid separation system and method for operating a body fluid separation system
CN111203101B (en) * 2018-11-22 2022-01-14 旭化成医疗株式会社 Body fluid separation system and method for operating a body fluid separation system
JP7529695B2 (en) 2019-05-23 2024-08-06 ガンブロ・ルンディア・エービー Emptying the blood circuit after extracorporeal blood treatment

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