Peristaltic module and cryoprecipitate preparation instrument

By integrating the active drive function of the peristaltic module with the siphon process, the problem of low automation in existing cold precipitation preparation instruments is solved, and precise automated control of the fluid transfer stage is achieved, improving the user experience and efficiency of the equipment.

CN121972250APending Publication Date: 2026-05-05QINGDAO HAIER BIOMEDICAL TECH CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QINGDAO HAIER BIOMEDICAL TECH CO LTD
Filing Date
2026-01-30
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In existing cold precipitation preparation instruments, the active driving function of the peristaltic pump is not efficiently and reliably integrated with the siphon process, resulting in low automation, poor user experience, and difficulty in achieving precise and automated control of the entire fluid transfer stage.

Method used

The active drive function of the peristaltic module is integrated with the siphon process. Through the synergistic action of the peristaltic device and the clamping mechanism, the active pumping and siphon flow of liquid are realized. The drive module controls the clamping mechanism to press or release the conduit, and the siphon effect is formed by the external liquid level difference, so as to achieve precise and automated control throughout the process.

Benefits of technology

It improves the automation level and user experience of the equipment, realizes precise automated control of the entire fluid transfer stage, and improves the reliability and efficiency of the preparation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of plasma preparation equipment, and discloses a peristaltic module which is applied to a cryoprecipitation preparation instrument, the cryoprecipitation preparation instrument contains a frozen plasma bag and a transfer bag which are communicated through a guide pipe, and the frozen plasma bag is higher than the transfer bag. The wriggling module comprises a wriggling device, a driving module and a clamping mechanism. The peristaltic device is used for extruding or releasing the catheter to control liquid flow; the clamping mechanism is connected to the output end of the driving module, and the clamping mechanism is used for executing linear motion under the driving of the driving module so as to press the catheter on the peristaltic device or release the catheter from the peristaltic device. By means of the arrangement, the active driving function of the peristaltic module and the siphon process are integrated, the automation degree and operation experience of the equipment are effectively improved, and whole-process accurate and automatic control of the fluid transfer stage in the preparation process can be achieved. Meanwhile, the invention further discloses a cryoprecipitate preparation instrument.
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Description

Technical Field

[0001] This application relates to the field of plasma preparation equipment technology, such as a peristaltic module and a cryoprecipitate preparation instrument. Background Technology

[0002] In the field of blood product preparation, cryoprecipitate preparation is one of the key processes. Its core involves thawing fresh frozen plasma in a low-temperature water bath and then separating the cryoprecipitate component rich in clotting factors. In this process, the siphon effect is often used to achieve efficient plasma transfer: by establishing a liquid level difference between the thawing bag and the transfer bag, the thawed plasma automatically flows to the transfer bag under the influence of gravity and pressure difference. This method is gentler than continuous mechanical pumping and helps reduce physical damage to blood components.

[0003] In related technologies, traditional cold precipitation preparation equipment often relies on simple manual operation or separate mechanical components to control the start and stop of the siphon. For example, operators need to manually insert or remove the pipeline into the fixing slot, or control the pipeline opening and closing and pumping through separate clamp valves and peristaltic pumps.

[0004] In the process of implementing the embodiments of this disclosure, at least the following problems were found in the related art: In related technologies, the fluid transfer module in existing cold precipitation preparation instruments fails to efficiently and reliably integrate the active driving function of the peristaltic pump with the automatic pipeline control function of the siphon process, resulting in low automation of the equipment, poor user experience, and difficulty in achieving precise and automated control of the fluid transfer stage throughout the preparation process.

[0005] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this application, and therefore may include information that does not constitute prior art known to those skilled in the art. Summary of the Invention

[0006] To provide a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. This summary is not intended as a general commentary, nor is it intended to identify key / important components or describe the scope of protection of these embodiments, but rather as a prelude to the detailed description that follows.

[0007] This disclosure provides a peristaltic module and a cold precipitation preparation instrument, which integrates the active driving function of the peristaltic module with the siphon process, effectively improving the automation level and user experience of the equipment, and enabling precise and automated control of the fluid transfer stage throughout the preparation process.

[0008] This disclosure provides a peristaltic module applied to a cryoprecipitate preparation apparatus. The cryoprecipitate preparation apparatus contains a frozen plasma bag and a transfer bag connected by a conduit, with the frozen plasma bag being higher than the transfer bag. The peristaltic module includes a peristaltic device, a drive module, and a clamping mechanism. The peristaltic device is used to squeeze or release the conduit to control liquid flow. The clamping mechanism is connected to the output end of the drive module and is used to perform linear motion under the drive of the drive module to press the conduit against the peristaltic device or release the conduit from the peristaltic device. The drive module is used to drive the clamping mechanism to press the conduit, thereby cooperating with the peristaltic device to actively pump the liquid within the conduit; and to drive the clamping mechanism to release the conduit, so that the liquid within the conduit forms a siphon flow under the action of an external liquid level difference.

[0009] In some embodiments, the clamping mechanism includes a first push rod, a second push rod, and a push plate. One end of the first push rod is connected to the output end of the drive module; the push plate is connected to the second push rod and is used to directly contact and clamp the conduit; wherein the first push rod and the second push rod are connected by a floating connection structure, so that the push plate can adaptively clamp the conduit.

[0010] In some embodiments, the peristaltic device includes a drive motor, a peristaltic slider, and a pump frame. The peristaltic slider is connected to the drive motor via a transmission mechanism and performs reciprocating or rotational motion under the drive of the drive motor to periodically squeeze the conduit; the pump frame is used to support the drive motor and the peristaltic slider; wherein, the push plate of the clamping mechanism is configured to press the conduit against the working surface of the peristaltic slider.

[0011] In some embodiments, the transmission mechanism is a synchronous belt transmission mechanism; a driving pulley is provided on the output shaft of the drive motor, the peristaltic slider is coaxially arranged with the driven pulley, and the synchronous belt is tensioned between the driving pulley and the driven pulley; wherein, in the pressing state, the push plate presses the guide tube against the peristaltic slider.

[0012] In some embodiments, the pump body frame and / or push plate are provided with snap-fit ​​grooves corresponding to the conduit, which are used to pre-position the conduit before the drive module is activated.

[0013] This disclosure also provides a cold precipitation preparation apparatus including the above-described peristaltic module.

[0014] In some embodiments, the cryoprecipitate preparation apparatus further includes a preparation module and a control system. The preparation module is used to accommodate a frozen plasma bag and a transfer bag, which are connected to the frozen plasma bag via a conduit, and the height of the transfer bag is lower than that of the frozen plasma bag. The control system is electrically connected to the preparation module and the peristaltic module, respectively. The control system is used to control the peristaltic module to act on the conduit so that the plasma in the frozen plasma bag is transferred to the transfer bag through the conduit.

[0015] In some embodiments, the cryoprecipitate preparation apparatus further includes a weighing component. The weighing component is used to obtain the weight of the frozen plasma bag and the transfer bag, respectively; the control system is also electrically connected to the weighing component to control the operating state of the peristaltic module based on the weight of the frozen plasma bag and the transfer bag.

[0016] In some embodiments, controlling the operating state of the peristaltic module based on the weight of the frozen plasma bag and the transfer bag includes: if an increase in the weight of the transfer bag is detected, determining that liquid in the frozen plasma bag is flowing into the transfer bag, and controlling the drive module to drive the clamping mechanism to release the catheter.

[0017] In some embodiments, after the clamping mechanism releases the catheter, the peristaltic module is controlled to stop so as to maintain fluid flow through the siphon effect formed by the height difference between the frozen plasma bag and the transfer bag.

[0018] In some embodiments, when the weight of the transferred plasma bag is greater than or equal to a preset weight threshold, the control drive module drives the clamping mechanism to press the catheter.

[0019] The peristaltic module and cold precipitation preparation apparatus provided in this disclosure can achieve the following technical effects: This disclosure provides a peristaltic module applied to a cryoprecipitate preparation apparatus. The cryoprecipitate preparation apparatus contains a frozen plasma bag and a transfer bag connected by a conduit, with the frozen plasma bag being higher than the transfer bag. The peristaltic module includes a peristaltic device, a drive module, and a clamping mechanism. The peristaltic device is used to squeeze or release the conduit to control liquid flow. The clamping mechanism is connected to the output end of the drive module and is used to perform linear motion under the drive of the drive module to press the conduit against the peristaltic device or release the conduit from the peristaltic device. The drive module drives the clamping mechanism to press the conduit against the peristaltic device to actively pump the liquid within the conduit; and drives the clamping mechanism to release the conduit so that the liquid within the conduit forms a siphon flow under the action of an external liquid level difference. Thus, during the active pumping phase, the control system coordinates the drive module to drive the clamping mechanism to press the conduit against the peristaltic device, and the peristaltic device squeezes the conduit to push the liquid; when the siphon effect is needed, the control system releases the conduit, releasing the mechanical constraint, allowing the conduit to form a natural siphon flow under the action of an external liquid level difference. This configuration integrates the active drive function of the peristaltic module with the siphon process, effectively improving the automation level and user experience of the equipment, and enabling precise and automated control of the fluid transfer stage throughout the preparation process.

[0020] The above general description and the description below are exemplary and illustrative only and are not intended to limit this application. Attached Figure Description

[0021] One or more embodiments are illustrated by way of example with reference to the accompanying drawings. These illustrations and drawings do not constitute a limitation on the embodiments. Elements having the same reference numerals in the drawings are shown as similar elements. The drawings are not to be scaled. And wherein: Figure 1 This is a schematic diagram of a cold precipitation preparation apparatus provided in an embodiment of this disclosure; Figure 2 This is a schematic diagram of another cold precipitation preparation apparatus provided in an embodiment of this disclosure; Figure 3 This is a schematic diagram of the structure of a preparation module provided in an embodiment of this disclosure; Figure 4 This is a schematic diagram of the structure of a peristaltic module provided in an embodiment of this disclosure; Figure 5 This is a schematic diagram of another peristaltic module provided in an embodiment of this disclosure; Figure 6 This is a schematic diagram of a water supply system provided in an embodiment of this disclosure; Figure 7 This is a schematic diagram of another water supply system provided in an embodiment of this disclosure; Figure 8 This is a schematic diagram of the structure of a blood bag provided in an embodiment of this disclosure.

[0022] Figure label: 11: Chassis; 21: Frozen plasma bag; 22: Transfer bag; 23: Catheter; 30: Preparation module; 31: Water tank; 32: Melting frame; 33: Transfer box; 34: Partition; 40: Water supply system; 411: Cooling water tank; 412: Collection tank; 413: Pressure equalizing tank; 421: Distribution pipeline; 422: Outlet pipe; 423: Overflow pipe; 424: Water supply pipeline; 431: Inlet solenoid valve; 432: Outlet solenoid valve; 433: Water supply solenoid valve; 44: Water pump; 50: Peristaltic module; 51: Peristaltic device; 511: Drive motor; 512: Peristaltic slider; 513: Transmission mechanism; 514: Pump frame; 515: Drive pulley; 516: Driven pulley; 52: Drive module; 53: Clamping mechanism; 531: First push rod; 532: Second push rod; 533: Push plate; 60: Weighing components; 70: Integrated operating platform; 71: Re-weighing component; 72: Barcode scanning module; 73: Heat sealing module; 74: Display device; 75: Disinfection component; 76: Lighting component. Detailed Implementation

[0023] To provide a more detailed understanding of the features and technical content of the embodiments of this disclosure, the implementation of the embodiments of this disclosure will be described in detail below with reference to the accompanying drawings. The accompanying drawings are for illustrative purposes only and are not intended to limit the embodiments of this disclosure. In the following technical description, for ease of explanation, several details are used to provide a full understanding of the disclosed embodiments. However, one or more embodiments may still be implemented without these details. In other cases, well-known structures and devices may be simplified in their depiction to simplify the drawings.

[0024] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of this disclosure described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.

[0025] In this disclosure, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of the embodiments of this disclosure and their implementations, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to require them to be constructed and operated in a specific orientation. Furthermore, some of the aforementioned terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this disclosure according to the specific circumstances.

[0026] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.

[0027] Unless otherwise stated, the term "multiple" means two or more.

[0028] In this embodiment of the disclosure, the character " / " indicates that the objects before and after it are in an "or" relationship. For example, A / B means: A or B.

[0029] The term "and / or" describes an association between objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or A and B.

[0030] It should be noted that, unless otherwise specified, the embodiments and features described in the present disclosure can be combined with each other.

[0031] like Figures 1 to 8 As shown, this embodiment of the present disclosure provides a peristaltic module 50 and a cold precipitation preparation instrument, which integrates the active driving function of the peristaltic module 50 with the siphon process, effectively improving the automation level and operating experience of the equipment, and can realize precise and automated control of the fluid transfer stage in the preparation process.

[0032] like Figures 1 to 8 As shown, this embodiment of the present disclosure provides a peristaltic module 50 applied to a cryoprecipitate preparation apparatus. The cryoprecipitate preparation apparatus contains a frozen plasma bag 21 and a transfer bag 22 connected by a conduit 23, with the frozen plasma bag 21 being higher than the transfer bag 22. The peristaltic module 50 includes: a peristaltic device 51, a drive module 52, and a clamping mechanism 53. The peristaltic device 51 is used to squeeze or release the conduit 23 to control the liquid flow; the clamping mechanism 53 is connected to the output end of the drive module 52, and is used to perform linear motion under the drive of the drive module 52 to press the conduit 23 onto the peristaltic device 51 or release the conduit 23 from the peristaltic device 51. The drive module 52 is used to drive the clamping mechanism 53 to press the conduit 23, thereby cooperating with the peristaltic device 51 to actively pump the liquid within the conduit 23; and to drive the clamping mechanism 53 to release the conduit 23, so that the liquid within the conduit 23 forms a siphon flow under the action of an external liquid level difference.

[0033] Specifically, the peristaltic device 51 is used to periodically squeeze or release the catheter 23 mechanically. When squeezing occurs, the inner cavity of the catheter 23 is temporarily sealed, pushing the liquid in front of it forward; when releasing, the catheter 23 returns to its original shape, allowing the liquid to fill. By controlling the rhythm and direction of squeezing, the direction and velocity of the liquid flow can be actively controlled. The clamping mechanism 53 is directly connected to the output end of the drive module 52. Driven by the drive module 52, the clamping mechanism 53 can perform precise linear motion. Through its linear motion, the clamping mechanism 53 presses the catheter 23 against the peristaltic device 51 or releases the catheter 23 from the peristaltic device 51. When pressed, the catheter 23 is stably fixed in the working position of the peristaltic device 51; when released, the catheter 23 is released from the forced contact with the peristaltic device 51 and is in a free or relaxed state. When it is necessary to start the device for plasma transfer, the drive module 52 drives the clamping mechanism 53 to move, pressing the catheter 23 against the peristaltic device 51. Subsequently, the peristaltic device 51 actively pumps the thawed plasma from the frozen plasma bag 21 to the transfer bag 22 through regular squeezing actions, providing initial power and ensuring the reliability of the transfer initiation. After the active pumping establishes the initial flow or a certain liquid level difference, in order to carry out subsequent transfers more gently and energy-efficiently, the drive module 52 drives the clamping mechanism 53 to move in the opposite direction, thereby releasing the conduit 23 so that it is no longer forcibly squeezed by the peristaltic device 51. Since the height of the frozen plasma bag 21 is set higher than that of the transfer bag 22, there is a stable external liquid level difference between the two. After the conduit 23 is released, under the action of this liquid level difference, the liquid in the conduit 23 can form a continuous siphon flow, automatically flowing from the higher bag to the lower bag. This setting integrates the active drive function of the peristaltic module 50 with the siphon process, effectively improving the automation level of the equipment and the user experience, and enabling precise and automated control of the fluid transfer stage throughout the preparation process.

[0034] Optionally, the drive module 52 may include an electric cylinder, and the clamping mechanism 53 is connected to the output end of the electric cylinder.

[0035] In some embodiments, the clamping mechanism 53 includes a first push rod 531, a second push rod 532, and a push plate 533. One end of the first push rod 531 is connected to the output end of the electric cylinder; the push plate 533 is connected to the second push rod 532 and is used to directly contact and press the conduit 23; wherein, the first push rod 531 and the second push rod 532 are connected by a floating connection structure, so that the push plate 533 can adaptively press the conduit 23.

[0036] Specifically, one end of the first push rod 531 is fixedly connected to the output end of the electric cylinder, thereby directly transmitting the linear driving force generated by the electric cylinder to the clamping mechanism 53. The second push rod 532 is configured as an intermediate force transmission component connected to the actuator. The push plate 533 is connected to the second push rod 532 and moves linearly under the drive of the second push rod 532, thereby achieving direct contact and clamping of the guide tube 23. The first push rod 531 and the second push rod 532 are not rigidly fixed, but are connected by a floating connection structure, so that the first push rod 531 and the second push rod 532 maintain linkage along the electric cylinder driving direction, while having a certain degree of relative motion freedom or angle adjustment range in a plane perpendicular to this direction. When the electric cylinder transmits driving force through the first push rod 531, thereby pushing the second push rod 532 and the push plate 533 to move towards the guide tube 23, the floating connection structure allows the push plate 533 to make slight adaptive adjustments according to the actual position and contour of the surface of the guide tube 23 at the moment of contact. This configuration ensures that the push plate 533 can press the tube 23 against the peristaltic device 51 with a more fitting and uniform force, avoiding problems such as uneven pressure, incomplete clamping, or uneven clamping of the tube 23 caused by installation tolerances, slight changes in the diameter of the tube 23, or slight misalignment.

[0037] In some embodiments, the peristaltic device 51 includes a drive motor 511, a peristaltic slider 512, and a pump frame 514. The peristaltic slider 512 is connected to the drive motor 511 via a transmission mechanism 513 and performs reciprocating or rotational motion under the drive of the drive motor 511 to periodically squeeze the conduit 23; the pump frame 514 is used to support the drive motor 511 and the peristaltic slider 512; wherein, the push plate 533 of the clamping mechanism 53 is configured to press the conduit 23 against the working surface of the peristaltic slider 512.

[0038] Specifically, the drive motor 511 is the power source for the peristaltic device 51, providing rotational motion output. The peristaltic slider 512 is connected to the drive motor 511 via a transmission mechanism 513. Driven by the drive motor 511, the transmission mechanism 513 converts the motor's rotational motion into specific reciprocating linear motion or rotational motion of the peristaltic slider 512. Regardless of whether the peristaltic slider 512 performs reciprocating or rotational motion, its design purpose is to enable its working surface to periodically contact and flatten the passing conduit 23 segment, thereby forming a forward-propelling liquid column within the conduit 23 to achieve the pumping function; when the slider's working surface leaves, the conduit 23 rebounds, creating a negative pressure inside to draw in subsequent liquid, thus repeating the cycle. The pump body frame 514 is a rigid structural component, used to provide a stable mounting reference and support for the drive motor 511, transmission mechanism 513, and peristaltic slider 512, ensuring that each component maintains the correct relative position and that power transmission is precise and reliable. The push plate 533 is positioned opposite the working surface of the peristaltic slider 512, and the conduit 23 is placed between the working surface of the peristaltic slider 512 and the push plate 533 of the clamping mechanism 53. When active pumping is required, the push plate 533 of the clamping mechanism 53 moves under the drive of the electric cylinder, pressing the conduit 23 against the working surface of the peristaltic slider 512, so that the conduit 23 is pre-positioned and pressed against the effective working area of ​​the slider. Subsequently, the drive motor 511 is started, driving the peristaltic slider 512 to move, performing efficient and regular compression on the conduit 23 that has been pressed in this position, realizing controllable liquid pumping. When it is necessary to switch to siphon mode, the electric cylinder drives the push plate 533 to move in the opposite direction, releasing the conduit 23, causing it to break away from the forced contact with the working surface of the peristaltic slider 512, creating conditions for the conduit 23 to deform freely under the action of liquid level difference and form a siphon.

[0039] In some embodiments, the transmission mechanism 513 is a synchronous belt transmission mechanism 513; the output shaft of the drive motor 511 is provided with a driving belt pulley 515, the peristaltic slider 512 and the driven pulley 516 are coaxially arranged, and the synchronous belt is tensioned between the driving belt pulley 515 and the driven pulley 516; wherein, in the pressing state, the push plate 533 presses the guide tube 23 against the peristaltic slider 512.

[0040] Specifically, the driving pulley 515 is fixedly mounted on the output shaft of the drive motor 511 and rotates together with the motor shaft. The driven pulley 516 is an independent rotating component, and its shaft is coaxial with the peristaltic slider 512. This means that the peristaltic slider 512 is either directly fixed to the shaft of the driven pulley 516 or rigidly connected to it via a coupling, thereby ensuring that the rotational motion of the driven pulley 516 can be directly converted into the motion of the peristaltic slider 512 without deviation. The timing belt is a toothed belt, tensioned between the driving pulley 515 and the driven pulley 516, and the teeth on the inner side of the timing belt mesh with the tooth grooves on the two pulleys. When the drive motor 511 is started, the motor drives the driving pulley 515 to rotate. Through the meshing transmission of the timing belt, the rotational motion is synchronously transmitted to the driven pulley 516. Since the peristaltic slider 512 is coaxial with the driven pulley 516, the peristaltic slider 512 also rotates synchronously. Specifically, before the active pumping begins, the electric cylinder drives the clamping mechanism 53 to move the push plate 533, pressing and positioning the conduit 23 in the working area of ​​the peristaltic slider 512; the drive motor 511 starts and drives the peristaltic slider 512 through the synchronous belt transmission mechanism 513. During the rotation, the protrusions or rollers on the peristaltic slider 512 continuously and regularly squeeze the conduit 23, which has been pressed and fixed on its working surface by the push plate 533, to achieve directional delivery of fluid.

[0041] In some embodiments, the pump body frame 514 and / or push plate 533 are provided with a snap-fit ​​groove corresponding to the conduit 23, the snap-fit ​​groove being used to pre-position the conduit 23 before the electric cylinder is actuated.

[0042] Specifically, one or more locking slots are provided on the opposite sides of the pump frame 514 and the push plate 533. The locking slots can be V-shaped or U-shaped, as long as they can accommodate the catheter 23. Before starting preparation, the operator manually places the catheter 23 connected to the blood bag into the gap between the pump frame 514 and the push plate 533. At this time, the catheter 23 can fall into or embed into the pre-set locking slots on the pump frame 514 and / or the push plate 533.

[0043] This disclosure also provides a cold precipitation preparation apparatus including the above-described peristaltic module 50.

[0044] Specifically, the cold precipitation preparation instrument using the peristaltic module 50 provided in this application integrates the active driving function of the peristaltic module 50 with the siphon process, effectively improving the automation level and operating experience of the equipment, and enabling precise and automated control of the fluid transfer stage throughout the preparation process.

[0045] In some embodiments, the cryoprecipitate preparation apparatus further includes a preparation module 30 and a control system. The preparation module 30 is used to accommodate a frozen plasma bag 21 and a transfer bag 22, respectively. The transfer bag 22 is connected to the frozen plasma bag 21 via a conduit 23, and the height of the transfer bag 22 is lower than the height of the frozen plasma bag 21. The control system is electrically connected to the preparation module 30 and the peristaltic module 50, respectively. The control system is used to control the peristaltic module 50 to act on the conduit 23 so that the plasma in the frozen plasma bag 21 is transferred to the transfer bag 22 through the conduit 23.

[0046] Specifically, the preparation module 30 has preparation and placement areas adapted to two types of blood bags. One preparation and placement area is used to accommodate the frozen plasma bag 21. This area needs to have a certain height space and the bottom has an anti-slip design to prevent the blood bag from shifting during the preparation process. The other preparation and placement area is used to accommodate the transfer bag 22, and its placement position can be lower than the preparation and placement area of ​​the frozen plasma bag 21. The two ends of the catheter 23 are respectively sealed to the outlet of the frozen plasma bag 21 and the inlet of the transfer bag 22 to eliminate the risk of leakage. A section needs to be reserved in the middle of the catheter 23 to be fixed to the peristaltic module 50. The outer wall of the catheter 23 in this area needs to be smooth and wrinkle-free to ensure that the force of the peristaltic module 50 can be evenly transmitted to the fluid in the tube. When it is necessary to start the peristaltic pump for active drainage, or when it is necessary to actively shut off the pipeline after drainage, the control system first drives the clamping mechanism 53 to move to the predetermined position to clamp the catheter 23. Subsequently, the control system starts or controls the peristaltic device 51. At this time, the peristaltic device 51 and the clamping mechanism 53 work together to reliably control the liquid in the catheter 23. When the device needs to use the liquid level difference between the frozen plasma bag 21 and the transfer bag 22 to form a siphon for passive drainage, the control system will first stop the peristaltic device 51, and then drive the clamping mechanism 53 to move away from the catheter 23 to release the clamping force on the catheter 23.

[0047] In some embodiments, the cryoprecipitate preparation apparatus further includes a weighing component 60. The weighing component 60 is used to obtain the weights of the frozen plasma bag 21 and the transfer bag 22, respectively; the control system is also electrically connected to the weighing component 60 to control the operating state of the peristaltic module 50 according to the weights of the frozen plasma bag 21 and the transfer bag 22.

[0048] Specifically, the weighing component 60 is used to separately and independently acquire the real-time weight of the frozen plasma bag 21 and the transfer bag 22. The control system is electrically connected to the weighing component 60 to receive the two weight signals in real time. The control system is configured to automatically control the cryoprecipitate preparation instrument to run the corresponding preset preparation program based on these two initial weight values. It is understood that traditional single-weighing systems require manual execution of complex operations such as tareing and differential calculation. In this embodiment, by simultaneously acquiring the initial weights of the upper and lower blood bags, the control system can automatically complete the necessary calculation benchmark settings. The operator only needs to place the blood bag in the designated position; the equipment automatically identifies the specifications based on the weight and prepares accordingly, greatly simplifying the operation.

[0049] In some embodiments, controlling the operating state of the peristaltic module 50 based on the weight of the frozen plasma bag 21 and the transfer bag 22 includes: if an increase in the weight of the transfer bag 22 is detected, it is determined that the liquid in the frozen plasma bag 21 flows into the transfer bag 22, and the drive module 52 is controlled to drive the clamping mechanism 53 to release the catheter 23.

[0050] Specifically, the control system continuously or periodically acquires real-time weight data of the transfer bag 22 through the weighing component 60. The control system compares the current weight value with the weight recorded in the previous sampling period to determine whether the weight has increased. If the weight has increased, the control system determines that the liquid in the frozen plasma bag 21 is successfully flowing into the transfer bag 22 through the conduit 23, meaning that the active pumping initiated by the peristaltic device 51 has established an effective initial flow. At this time, the control system controls the drive module 52 of the peristaltic module 50 to drive the clamping mechanism 53 connected to it to perform a reverse linear motion, thereby removing the push plate 533 of the clamping mechanism 53 from the conduit 23, i.e., releasing the conduit 23. Thus, after the preparation program is started, the control system first controls the peristaltic module 50 to enter the active pumping mode; during the active pumping process, the control system synchronously monitors the weight of the transfer bag 22; if it confirms an increase in weight, it controls the clamping mechanism 53 to release the conduit 23, and the peristaltic device 51 then stops. At this time, the conduit 23 is in a clear state, and with the help of the pre-existing height difference between the frozen plasma bag 21 and the transfer bag 22, the liquid continues to flow automatically by means of the siphon effect.

[0051] In some embodiments, after the clamping mechanism 53 releases the catheter 23, the peristaltic module 50 is controlled to stop so as to maintain liquid flow through the siphon effect formed by the height difference between the frozen plasma bag 21 and the transfer bag 22.

[0052] Specifically, after the active pumping state ends, the clamping mechanism 53 releases the catheter 23, so that the catheter 23 is no longer forcibly fixed on the working surface of the peristaltic slider 512; then the drive motor 511 stops, and the peristaltic slider 512 no longer applies any active squeezing action to the catheter 23. The frozen plasma bag 21 is positioned higher than the transfer bag 22, with a stable height difference between the two. When the catheter 23 is released and unobstructed, this height difference creates a pressure gradient within the connected catheter 23, i.e., a siphon effect. Under the action of gravity, the liquid will continuously and automatically flow from the higher frozen plasma bag 21 to the lower transfer bag 22.

[0053] In some embodiments, when the weight of the transferred plasma bag is greater than or equal to a preset weight threshold, the control drive module 52 drives the clamping mechanism 53 to clamp the catheter 23.

[0054] Specifically, the control system continuously acquires the second real-time weight of the transfer bag 22 through the weighing component 60 and compares the second real-time weight with a preset weight threshold. When the second real-time weight is greater than or equal to the preset weight threshold, the control drive module 52 drives the clamping mechanism 53 to perform linear motion, re-clamping the conduit 23. Specifically, the push plate 533 moves and presses the conduit 23 against the peristaltic device 51, thereby completely blocking the passage within the conduit 23.

[0055] In some embodiments, the cryoprecipitate preparation apparatus further includes a water supply system 40. The water supply system 40 incorporates a refrigeration component and a temperature monitoring component. When the water temperature is higher than a preset temperature, the control system triggers the refrigeration component to start, continuously cooling the water. When the water temperature is lower than the preset temperature, the refrigeration component stops operating, maintaining a stable water temperature within the target range through a "start-stop cycle." This temperature control logic avoids both excessively high water temperatures leading to inactivation of coagulation factors in the plasma and excessively low water temperatures causing slow plasma melting, thus affecting preparation efficiency. The peristaltic module 50 has a groove on its surface that matches the outer diameter of the conduit 23, allowing the conduit 23 to engage with the groove. Simultaneously, the groove length must cover the critical area where the conduit 23 contacts the module; for example, the groove length is 5-8 cm, to ensure even distribution of the force exerted by the module on the conduit 23, preventing excessive local compression that could cause the conduit 23 to rupture. The peristaltic module 50 periodically squeezes and releases this section of the conduit 23 through its internal rollers or pressure blocks, thereby generating a peristaltic pumping action to drive or precisely control the flow of liquid within the conduit 23.

[0056] When cryoprecipitate preparation is required, the operator installs the blood bag into the preparation module 30 and starts the program via the control system. The control system first commands the water supply system 40 to start working, delivering constant-temperature water at a preset temperature to the preparation module 30. The frozen plasma bag 21 in the preparation module 30 begins to thaw gradually under this constant-temperature environment. The control system continuously monitors the process throughout the thawing. When the control system determines that the current state meets the preset drainage conditions, it controls the peristaltic module 50 to start working, applying force to the fixed conduit 23. Driven by the peristaltic pump, the thawed plasma in the frozen plasma bag 21 is pumped through the conduit 23 to the transfer bag 22. The transfer process continues until the control system determines that the transfer is complete, then stops the peristaltic module 50. At this point, the main preparation process is complete, leaving cryoprecipitate in the frozen plasma bag 21. This setup enables automated water supply, thawing, and plasma transfer, ensuring the continuity and efficiency of the preparation process, and guaranteeing the consistency and controllability of preparation conditions between different blood bags.

[0057] In the above embodiments, the preset temperature can be set according to the user's actual needs. Specifically, the preset temperature can be greater than or equal to 0°C and less than or equal to 10°C, for example, the preset temperature can be 0°C, 2°C, 4°C, 6°C, 8°C or 10°C.

[0058] In some embodiments, the preparation module 30 includes: a water tank 31, a melting frame 32, and a transfer box 33. The water tank 31 is connected to a water supply system 40; the melting frame 32 is used to accommodate a frozen plasma bag 21 and is located above the water tank 31; the transfer box 33 is used to accommodate a transfer bag 22; wherein the melting frame 32 is at least partially located within the water tank 31; the control system is used to control the water supply system 40 to provide water at a preset temperature to the preparation module 30, including: the control system is used to control the water supply system 40 to deliver water at a preset temperature to the water tank 31.

[0059] Specifically, the water tank 31 is a container with a cavity for holding a constant-temperature liquid, creating a direct water bath environment for thawing the blood bags. The water tank 31 has an inlet and an outlet, connected to the water supply system 40 via the inlet to receive temperature-controlled water from the system. The thawing frame 32 is used to support and secure the frozen plasma bag 21, which is placed above the water tank 31, and its bottom or sidewalls allow at least partial immersion of the bag in the water below. In this way, the frozen plasma bag 21 is surrounded by constant-temperature water, achieving uniform and controlled thawing. The transfer box 33 is used to support and secure the transfer bag 22, and is independently configured to reliably receive the plasma liquid separated from the frozen plasma bag 21. The water supply system 40 delivers constant temperature water at a preset temperature to the water tank 31; the melting frame 32 containing the frozen plasma bag 21 is partially immersed in the constant temperature water in the water tank 31, causing the blood bag to begin melting; the transfer box 33 containing the transfer bag 22 is placed independently and is connected to the frozen plasma bag 21 through the conduit 23; the control system controls the water supply system 40 to deliver and maintain constant temperature water in the water tank 31, so as to control the water supply system 40 to provide water at a preset temperature to the preparation module 30.

[0060] In some embodiments, the water supply system 40 includes a chilled water tank 411 and a collection water tank 412. The chilled water tank 411 is connected to the inlet of the water tank 31 and is used to provide water at a preset temperature to the water tank 31; the collection water tank 412 is connected to the outlet of the water tank 31 and is used to receive water discharged from the water tank 31.

[0061] Specifically, the chilled water tank 411 is the refrigeration component and water storage unit of the water supply system 40, used to prepare and store chilled water at a preset temperature. The chilled water tank 411 cools the injected room-temperature water, and a temperature sensor and control circuit ensure that the water temperature is accurately maintained within the required range. The chilled water tank 411 includes a compressor and an evaporator, which can cool the incoming room-temperature water to the preset temperature; the temperature sensor uses a high-precision platinum resistance temperature sensor to collect water supply temperature data in real time and feed it back to the control system. The outlet of the chilled water tank 411 is directly connected to the inlet of the water tank 31 via a pipe. When water supply is needed, the low-temperature water in the chilled water tank 411 is pumped or pressurized to the water tank 31 to provide a constant temperature environment for blood bag melting. The collecting water tank 412 is used to receive and temporarily store used water discharged from the water tank 31. The inlet of the collecting water tank 412 is connected to the outlet of the water tank 31 via a pipe. After completing the water bath function, the water in the water tank 31 is discharged into the collection tank 412 by gravity or pump suction.

[0062] In some embodiments, the water tank 31 includes a first water outlet and a second water outlet, with the first water outlet positioned lower than the second water outlet. The water supply system 40 also includes an outlet pipe 422 and an overflow pipe 423. The outlet pipe 422 connects the first water outlet to the collection tank 412; the overflow pipe 423 connects the second water outlet to the collection tank 412.

[0063] Specifically, the water tank 31 is provided with a first outlet and a second outlet, with the first outlet positioned lower than the second outlet. A drain pipe 422 connects the lower-positioned first outlet to the collection tank 412, serving as an active drainage channel. An overflow pipe 423 connects the higher-positioned second outlet to the collection tank 412, serving as a safe overflow channel for the water level in the water tank 31. When the control system controls the water supply system 40 to inject constant-temperature water into the water tank 31, the water level in the water tank 31 begins to rise. Initially, the water level is lower than the higher second outlet, and water is discharged only from the lower-positioned first outlet through the drain pipe 422. If the water injection rate is greater than the drainage rate, the water level will continue to rise. When the water level rises to the same height as the second outlet, excess water will naturally flow out from the overflow pipe 423. At this point, the water level in the water tank 31 will be stably maintained at the height of the second outlet and will not continue to rise, forming a dynamic equilibrium: the injected water volume is equal to the combined water volume discharged from the first and second outlets. In this way, without the need for complex sensors and feedback control, the water level in each tank 31 can be kept constant and consistent during the melting process using only a simple physical structure.

[0064] In some embodiments, the water supply system 40 further includes an inlet solenoid valve 431 and an outlet solenoid valve 432. The inlet solenoid valve 431 is disposed at the inlet of the water tank 31; the outlet solenoid valve 432 is disposed at the first outlet of the water tank 31; wherein, the control system is electrically connected to the inlet solenoid valve 431 and the outlet solenoid valve 432 respectively to control the opening and closing of the inlet solenoid valve 431 and the outlet solenoid valve 432.

[0065] Specifically, the inlet solenoid valve 431 is installed at the inlet of the water tank 31, located between the water supply pipe 424 and the inlet of the water tank 31, and is used to control the supply of constant temperature water to the water tank 31. The outlet solenoid valve 432 is installed at the first outlet of the water tank 31, located between the first outlet of the water tank 31 and the outlet pipe 422, and is used to control the active drainage of water in the water tank 31.

[0066] In some embodiments, the control system for controlling the water supply system 40 to deliver water at a preset temperature to the water tank 31 includes: controlling the opening of the inlet solenoid valve 431 and the outlet solenoid valve 432; wherein the opening degree of the outlet solenoid valve 432 is less than or equal to the opening degree of the inlet solenoid valve 431.

[0067] Specifically, by making the opening of the outlet solenoid valve 432 less than or equal to the opening of the inlet solenoid valve 431, the instantaneous inflow of water into the tank 31 can be greater than or equal to the instantaneous outflow. When the inflow exceeds the outflow, the water level in the tank 31 will rise. The rising water level will eventually overflow from the higher-positioned second outlet, thus achieving dynamic equilibrium and stabilizing the water level at the overflow height. Even after water level equilibrium is achieved, because both valves remain open, low-temperature water continues to be injected, and relatively warmer water in the tank continues to be discharged from the first outlet. Excess water overflows from the overflow outlet, creating a continuous, slow water flow renewal and circulation within the tank. This circulation avoids localized temperature increases, thus ensuring consistent melting conditions for the blood bags. Furthermore, compared to passive drainage relying entirely on the overflow pipe, this active valve opening control strategy gives the system stronger regulatory capabilities. For example, during the initial water injection phase, a larger opening difference can be set to quickly establish the water level; during the maintenance phase, the opening can be adjusted to near equality, achieving more energy-efficient micro-circulation. All processes are completed automatically by the control system without human intervention.

[0068] In some embodiments, the cold precipitation preparation apparatus includes a plurality of preparation modules 30 and a plurality of peristaltic modules 50; wherein the plurality of peristaltic modules 50 and the plurality of preparation modules 30 are arranged in a one-to-one correspondence.

[0069] Specifically, each preparation module 30 includes, as described above, a water tank 31, a melting frame 32, a transfer box 33, and matching inlet solenoid valve 431, outlet solenoid valve 432, and piping. Multiple peristaltic modules 50 are configured in a one-to-one correspondence with multiple preparation modules 30. This means that each independent preparation module 30 is equipped with a corresponding peristaltic module 50. Thus, multiple preparation modules 30 allow for the simultaneous placement and processing of multiple blood bags. Each module is an independent working unit, enabling the instrument to prepare multiple samples of cryoprecipitate simultaneously, greatly improving the overall processing efficiency and output capacity of the equipment.

[0070] Optionally, if the cold precipitation preparation apparatus includes multiple preparation modules 30, each preparation module 30's water tank 31 is equipped with an independent set of inlet and outlet solenoid valves 432. This allows the control system to control the water supply and drainage of any one water tank 31 independently without interfering with other modules. For example, the water supply to a certain water tank 31 can be started independently to begin preparation, or a water tank 31 that has completed its task can be emptied independently.

[0071] In some embodiments, the water supply system 40 further includes a pressure equalization tank 413. The pressure equalization tank 413 includes an inlet end and multiple outlet ends, the inlet end being connected to the cooling water tank 411, and the multiple outlet ends being respectively connected to the water tanks 31 of the multiple preparation modules 30.

[0072] Specifically, the equalizing water tank 413 is located downstream of the cooling water tank 411 and upstream of the preparation module 30. In the case where the cryoprecipitation preparation apparatus includes multiple preparation modules 30, the inlet is connected to the cooling water tank 411 via a pipeline to receive constant-temperature chilled water from the cooling water tank 411, and multiple outlets are connected to the inlets of the water tanks 31 in the corresponding preparation modules 30 via independent pipelines. The internal cavities of the equalizing water tank 413 are interconnected. When water from the cooling water tank 411 is pumped into the equalizing water tank 413, the water diffuses freely within the tank and reaches pressure equilibrium. This ensures that the static and dynamic pressures at the source of the water flowing out from each outlet of the equalizing water tank 413 remain essentially consistent, thus providing a balanced water supply pressure basis for each downstream water tank 31. Under the premise of balanced water supply pressure, even if multiple preparation modules 30 start the water injection process simultaneously, the water flow velocity through each parallel branch can remain highly consistent. This ensures that the water injection speed and volume of each water tank 31 are controllable and identical. In addition, when the water supply of some preparation modules 30 stops due to valve closure, it will not cause a severe impact on the pipeline pressure of other modules that are using water. The overall water pressure of the system remains stable, thereby ensuring the stability of the water flow of the remaining working modules.

[0073] In some embodiments, the horizontal height of the connection between the multiple water distribution pipes 421 and the pressure equalization tank 413 is the same to avoid static pressure differences at the inlet ends of the multiple water distribution pipes 421.

[0074] Specifically, the connection points of the multiple water distribution pipes 421 to the equalizing water tank 413, i.e., the inlet ports of each pipe, are set at the same horizontal height. According to the principle of fluid statics, the static pressure is different at different depths in a connected liquid. Therefore, if the inlet heights of the water distribution pipes 421 on the side wall of the equalizing water tank 413 are different, then even if the internal pressure of the equalizing water tank 413 is the same, the water depth at different inlets will produce different static pressure superpositions. The inlets at lower positions will bear greater static water pressure. By making all inlets at the same horizontal height, it is ensured that the water distributed from the equalizing water tank 413 to each water distribution pipe 421 carries a consistent total pressure, thereby eliminating the systematic pressure deviation introduced by differences in structural installation.

[0075] In the above embodiments, the water supply solenoid valve 433 and the water inlet solenoid valve 431 can be a single solenoid valve or two independent solenoid valves.

[0076] In some embodiments, the pre-defined conditions for diversion include: the time for the water supply system 40 to provide water at a preset temperature to the preparation module 30 is greater than or equal to a preset time.

[0077] Specifically, the control system continuously compares the actual water supply time with a preset time threshold. When the actual water supply time is greater than or equal to the preset time, the control system determines that the drainage preset condition is met. The preset time can be set according to the user's actual needs. Specifically, the preset time is greater than or equal to 2 seconds, meaning that when the water system provides water at a preset temperature to the preparation module 30 for a time greater than or equal to 2 seconds, the control system determines that the drainage preset condition is met. The preset time can be 2 seconds, 4 seconds, 6 seconds, 8 seconds, or 10 seconds. In this way, by forcibly implementing a uniform melting time, the problem of decreased cold precipitation yield or quality caused by premature transfer of plasma due to insufficient melting can be effectively avoided. At the same time, after placing the blood bag, starting the water supply, and stabilizing the water level, the system only needs to wait a fixed time to automatically trigger the next peristaltic pump transfer action, without any manual intervention or visual inspection.

[0078] In the above embodiments, when the cold precipitation preparation instrument includes multiple preparation modules 30, each preparation module 30 can be set with an independent water supply timer. Different modules can start supplying water sequentially and independently trigger the transfer after reaching their preset time, supporting a parallel asynchronous working mode for multiple modules.

[0079] In some embodiments, the preset preparation procedure includes: controlling the preparation module 30 to transfer a preset weight of plasma according to the weight of the frozen plasma bag 21; wherein the weight of the transferred plasma is proportional to the weight of the frozen plasma bag 21.

[0080] Specifically, the control system automatically determines the target plasma transfer weight required for this preparation based on the initial weight of the frozen plasma bag 21 obtained by the weighing component 60. This target weight is the amount of liquid plasma to be transferred from the frozen plasma bag 21 to the transfer bag 22. This target weight is proportional to the initial weight of the frozen plasma bag 21. For example, 100g of plasma corresponds to the preparation of 20g of cryoprecipitate, meaning approximately 80g of liquid plasma needs to be transferred; 150g corresponds to approximately 120g. During the plasma transfer process via the peristaltic module 50, the weighing component 60 operates continuously. The control system monitors this in real time, determining whether the transfer is complete based on the real-time transfer volume calculated from the weighing component 60. When the control system calculates and determines that the actual weight of plasma transferred to the transfer bag 22 has reached the target weight determined by the proportional relationship, i.e., after determining that the plasma weight has reached the preset weight, the peristaltic module 50 stops transferring plasma. This setup ensures that even if there are slight differences in the initial state of each bag of plasma, the final weight of the cryoprecipitate will strictly meet the preset standard, achieving optimization from process control to result control, and significantly improving product consistency and quality reliability.

[0081] In some embodiments, when the weight of the transferred plasma reaches a preset weight, the peristaltic module 50 is controlled to block the catheter 23.

[0082] Specifically, when the real-time feedback data from the weighing component 60 indicates that the cumulative weight of plasma transferred from the frozen plasma bag 21 to the transfer bag 22 has reached the preset target weight, the control system immediately blocks the liquid flow within the catheter 23 in the peristaltic module 50 corresponding to the target preparation module 30. The peristaltic module 50 includes a clamping mechanism driven by an electric cylinder. During normal pumping, this mechanism releases the catheter 23, subjecting it only to the action of the peristaltic rollers. Upon receiving the blocking command, the control system controls the electric cylinder to retract, driving the push rod and push plate 533 forward to firmly press the catheter 23 against a fixed surface of the module, thereby using mechanical force to completely close the flexible catheter 23 wall, forming a non-flowing physical blockage. This setup, compared to simply stopping the peristaltic pump, allows for an immediate and complete halt to any flow within the catheter 23, including any subsequent slow seepage that may occur due to siphon effects or pressure differences. This ensures the final control accuracy of the transferred weight and avoids the loss of cryoprecipitate production due to over-transfer. In addition, physical barriers prevent the risk of accidental leakage or cross-contamination of blood products when they are unattended, such as during automatic operation at night, thus complying with the safety standards for medical devices.

[0083] In some embodiments, the cryoprecipitate preparation apparatus further includes a housing 11 and an integrated operating platform 70. A preparation module 30 is disposed within the housing 11 and is used to accommodate frozen plasma bags 21. The integrated operating platform 70 is also disposed within the housing 11 and integrates a weighing assembly 71, a barcode scanning module 72, and a heat-sealing module 73. A control system is electrically connected to the preparation module 30 and the integrated operating platform 70. The control system controls the preparation module 30 to perform cryoprecipitate preparation on the frozen plasma bags 21 and controls the weighing assembly 71, the barcode scanning module 72, and the heat-sealing module 73 to collaboratively weigh, scan, and heat-seal the frozen plasma bags 21 after cryoprecipitate preparation.

[0084] Specifically, the housing 11 serves as the physical carrier and external structure of the entire device, providing support, protection, and positioning for the various internal functional modules. The preparation module 30 is located inside or on the surface of the housing 11, used to contain and process the frozen plasma bags 21 and complete the preparation of cryoprecipitate. An integrated operating platform 70 is mounted on the housing 11, and the weighing component 71, barcode scanning module 72, and heat-sealing module 73 are integrated onto the integrated operating platform 70. It is understood that the integration of the weighing component 71, barcode scanning module 72, and heat-sealing module 73 is not a simple side-by-side placement, but a structural integration designed to achieve process automation. Specifically, the weighing component 71 is used for weight verification of the plasma bags, the barcode scanning module 72 is used for information collection, and the heat-sealing module 73 is used for tubing sealing. The control system is electrically connected to both the preparation module 30 and the integrated operating platform 70. First, it controls the preparation module 30 to perform a complete cryoprecipitate preparation process on the frozen plasma bag 21. After the preparation process is completed, the control system controls the weighing component 71, barcode scanning module 72, and heat sealing module 73 on the integrated operating platform 70 to work collaboratively to perform weighing verification, barcode scanning, and tubing heat sealing operations on the same prepared frozen plasma bag 21 sequentially or in a logical order. This configuration integrates key post-processing functions, simplifies the operation process, and improves operational safety and efficiency.

[0085] In some embodiments, the weighing assembly 71 includes a weighing placement area provided with a weight sensor, the weight sensor being used to weigh the frozen plasma bags in the weighing placement area.

[0086] Specifically, the weighing assembly 71 includes a weighing placement area, and a weight sensor is installed below or inside the weighing placement area. The weighing assembly 71 is used to accurately verify the weight of the frozen plasma bag 21 containing the final product (i.e., the blood bag that has undergone separation and has residual cryoprecipitate) after the cryoprecipitate preparation process is completed. The weighing placement area can be a fixed platform or recess for stably placing the blood bag to be weighed, ensuring consistent placement posture. The weight sensor is integrated below the weighing placement area or into the supporting structure. When the blood bag is placed in this area, its weight is accurately sensed by the sensor and converted into an electrical signal. The weight sensor can be a high-precision strain gauge sensor or an electromagnetic force sensor. Integrating the weighing function into the integrated operating platform 70 in the form of the weighing assembly 71 means that after preparation, the operator does not need to transfer the blood bag to a separate electronic scale; instead, they only need to move the blood bag to the designated weighing placement area on the same platform to complete the weighing. This eliminates the steps of equipment switching, searching, and moving, simplifying operation and improving efficiency.

[0087] In the above embodiments, the weighing component 71 is different from the weighing component 60 that may be used for monitoring during the preparation process, but is used to confirm the quality of the final output.

[0088] In some embodiments, the barcode scanning module 72 includes an image acquisition device located above the weighing and weighing area, and the field of view of the image acquisition device covers the weighing and weighing area, so that the weighing and weighing component 71 and the barcode scanning module 72 work together to weigh and scan the frozen plasma bag 21.

[0089] Specifically, the scanning module 72 includes an image acquisition device located directly above or diagonally above the weighing placement area of ​​the weighing assembly 71, with its field of view, i.e., the image capture range, completely covering the entire weighing placement area below. The image acquisition device can be a CCD or CMOS camera, or a one-dimensional or two-dimensional barcode scanner. Thus, when the operator places the prepared frozen plasma bag 21 into the weighing placement area of ​​the weighing assembly 71 for weighing, the barcode on the blood bag automatically enters the effective field of view of the image acquisition device. Therefore, the weighing and scanning actions can be automatically triggered and completed simultaneously or almost simultaneously after the blood bag is placed once.

[0090] In some embodiments, the cold precipitation preparation apparatus includes multiple integrated operating platforms 70, which are arranged opposite each other on both sides of the preparation module 30, and at least one integrated operating platform 70 is located in the middle of the housing 11.

[0091] In some embodiments, the integrated operating platform 70 further includes a display device 74. The display device 74 is provided with a human-machine interface; the control system is also used to control the human-machine interface to display weighing data, barcode scanning results, heat sealing status and equipment operating parameters in real time, and supports control of the cold precipitation preparation instrument via touch operation.

[0092] In some embodiments, the cold precipitation preparation apparatus further includes a disinfection component 75. The disinfection component 75 is disposed corresponding to the integrated operating platform 70; wherein the disinfection component 75 is configured to emit ultraviolet light toward the disinfection area to disinfect the disinfection area, and the disinfection area covers the surface of the integrated operating platform 70.

[0093] In some embodiments, the cold precipitation preparation apparatus further includes an illumination assembly 76. The illumination assembly 76 is disposed above the integrated operating platform 70 and is used to illuminate the integrated operating platform 70.

[0094] The foregoing description and accompanying drawings fully illustrate embodiments of the present disclosure to enable those skilled in the art to practice them. Other embodiments may include structural and other changes. The embodiments represent only possible variations. Individual components and functions are optional unless explicitly required, and the order of operation may vary. Parts and features of some embodiments may be included or substituted for parts and features of other embodiments. Embodiments of the present disclosure are not limited to the structures described above and shown in the accompanying drawings, and various modifications and changes may be made without departing from its scope. The scope of the present disclosure is limited only by the appended claims.

Claims

1. A peristaltic module, characterized in that, It is applied to a cryoprecipitate preparation instrument, which contains a frozen plasma bag (21) and a transfer bag (22) connected by a conduit (23), and the height of the frozen plasma bag (21) is higher than that of the transfer bag (22); The peristaltic module (50) includes: A peristaltic device (51) is used to squeeze or release the conduit (23) to control the flow of liquid; Driver module (52); and, A clamping mechanism (53) is connected to the output end of the drive module (52). The clamping mechanism (53) is used to perform linear motion under the drive of the drive module (52) to press the catheter (23) against the peristaltic device (51) or release the catheter (23) from the peristaltic device (51). The drive module (52) is used to drive the clamping mechanism (53) to press the conduit (23) to cooperate with the peristaltic device (51) to actively pump the liquid in the conduit (23); and to drive the clamping mechanism (53) to release the conduit (23) so that the liquid in the conduit (23) forms a siphon flow under the action of the external liquid level difference.

2. The peristaltic module according to claim 1, characterized in that, The clamping mechanism (53) includes: The first push rod (531) has one end connected to the output end of the drive module (52); Second putter (532); and, A push plate (533) is connected to the second push rod (532) and is used to directly contact and press the conduit (23); The first push rod (531) and the second push rod (532) are connected by a floating connection structure, so that the push plate (533) can adaptively press the conduit (23).

3. The peristaltic module according to claim 2, characterized in that, The peristaltic device (51) includes: Drive motor (511); The peristaltic slider (512), connected to the drive motor (511) via a transmission mechanism (513), reciprocates or rotates under the drive of the drive motor (511) to periodically squeeze the conduit (23); and, A pump body frame (514) is used to support the drive motor (511) and the peristaltic slider (512); The push plate (533) of the clamping mechanism (53) is configured to press the conduit (23) against the working surface of the peristaltic slider (512).

4. The peristaltic module according to claim 3, characterized in that, The transmission mechanism (513) is a synchronous belt transmission mechanism (513); The output shaft of the drive motor (511) is provided with a drive belt pulley (515), the peristaltic slider (512) and the driven pulley (516) are coaxially arranged, and the synchronous belt is tensioned between the drive belt pulley (515) and the driven pulley (516). In the pressed state, the push plate (533) presses the conduit (23) against the peristaltic slider (512).

5. The peristaltic module according to claim 3, characterized in that, The pump body frame (514) and / or the push plate (533) are provided with snap-fit ​​grooves corresponding to the conduit (23), which are used to pre-position the conduit (23) before the drive module (52) is activated.

6. A cold precipitation preparation apparatus, characterized in that, include: The peristaltic module (50) as described in any one of claims 1 to 5.

7. The cold precipitation preparation apparatus according to claim 6, characterized in that, Also includes: The preparation module (30) is used to accommodate the frozen plasma bag (21) and the transfer bag (22) respectively. The transfer bag (22) is connected to the frozen plasma bag (21) through a conduit (23), and the height of the transfer bag (22) is lower than the height of the frozen plasma bag (21). and, The control system is electrically connected to the preparation module (30) and the peristaltic module (50), respectively; The control system is used to control the peristaltic module (50) to act on the catheter (23) so that the plasma in the frozen plasma bag (21) is transferred to the transfer bag (22) through the catheter (23).

8. The cold precipitation preparation apparatus according to claim 7, characterized in that, Also includes: Weighing component (60) for obtaining the weights of the frozen plasma bag (21) and the transfer bag (22) respectively; The control system is also electrically connected to the weighing assembly (60) to control the operating state of the peristaltic module (50) based on the weight of the frozen plasma bag (21) and the transfer bag (22).

9. The cold precipitation preparation apparatus according to claim 8, characterized in that, Controlling the operating state of the peristaltic module (50) based on the weight of the frozen plasma bag (21) and the transfer bag (22) includes: If an increase in the weight of the transfer bag (22) is detected, it is determined that the liquid in the frozen plasma bag (21) flows into the transfer bag (22), and the drive module (52) is controlled to drive the clamping mechanism (53) to release the catheter (23).

10. The cold precipitation preparation apparatus according to claim 9, characterized in that, After the clamping mechanism (53) releases the catheter (23), the peristaltic module (50) is controlled to stop so as to maintain the flow of liquid by the siphon effect formed by the height difference between the frozen plasma bag (21) and the transfer bag (22).

11. The cold precipitation preparation apparatus according to claim 8, characterized in that, If the weight of the transferred plasma bag is greater than or equal to a preset weight threshold, the control drive module (52) drives the clamping mechanism (53) to clamp the catheter (23).