Intelligent infusion device for treating hemorrhagic shock

By using an electric motor to drive a lead screw and hydraulic rod in conjunction with a vision detector and various mechanical structures, the system achieves automated clamping of the infusion device and switching of the storage bottle. This solves the problem of low automation in existing technologies, improves the continuity and accuracy of the infusion process, and ensures the efficiency and safety of hemorrhagic shock treatment.

CN120939352APending Publication Date: 2025-11-14CHINESE PEOPLES LIBERATION ARMY ARMY SPECIAL MEDICAL CENTER
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Patent Information

Application Number
CN202511451511.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-11
Publication Date
2025-11-14

AI Technical Summary

Technical Problem

Existing infusion devices have a low degree of automation in the treatment of hemorrhagic shock, and manual operation is time-consuming, making it impossible to form a continuous automated process, which affects the efficiency and effectiveness of treatment.

Method used

By using an electric motor to drive a lead screw and a hydraulic rod in conjunction with a vision detector and various mechanical structures, the system can automatically clamp the infusion tube and automatically switch the storage bottle, forming a fully automated closed loop that reduces manual intervention.

Benefits of technology

It improves the automation level of the infusion process, ensures the continuity and accuracy of infusion, reduces the lag of manual operation, and improves the efficiency and safety of treatment.

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    Figure 096B6320-273A-4853-86C1-9A0346D376D8
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    Figure 2F4EFA20-CBAF-40A6-AC54-3DECC699AF24
Patent Text Reader

Abstract

The invention provides an intelligent infusion device for treating hemorrhagic shock, and relates to the technical field of medical equipment. A fixed cylinder is fixed to the base plate, a movable frame capable of moving up and down is installed in the fixed cylinder, a welding rod is welded and fixed to the movable frame, a plane structure is arranged on the right side of the welding rod, a rail base is installed on the plane structure on the right side of the welding rod, and two connecting plates are fixed between the rail base and the welding rod. A lifting plate capable of moving up and down is mounted on the rail seat, and a lead screw is mounted on the rail seat through a bearing; through a first motor, a lead screw, a first hydraulic rod and other structures, accurate clamping and position adjustment of an infusion tube plug are achieved, manual intervention is reduced, the liquid level is monitored in real time through a visual detector, when liquid medicine is emptied, a system automatically controls a clamping plate to plug and unplug an infusion tube, and automatic switching of liquid storage bottles is completed in cooperation with a second motor, a gearbox and the like; a full-process automatic closed loop is formed, manual dependence is avoided, and the infusion automation degree is greatly improved.
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Description

Technical Field

[0001] This invention relates to the field of medical device technology, and in particular to an intelligent infusion device for the treatment of hemorrhagic shock. Background Technology

[0002] Hemorrhagic shock is a highly dangerous acute and critical condition in clinical practice, often caused by severe trauma, massive bleeding during surgery, and other similar events. Its core pathophysiological change is a rapid and drastic drop in effective circulating blood volume, directly leading to insufficient tissue perfusion and metabolic disorders caused by cellular hypoxia. If timely and effective treatment is not received within the golden timeframe, the patient's life will be rapidly and severely threatened. In the treatment of hemorrhagic shock, rapid and precise fluid resuscitation is a crucial step in improving patient prognosis. Timely fluid replacement effectively restores the patient's effective circulating blood volume, improves tissue perfusion, corrects cellular hypoxia and metabolic disorders, and buys valuable time for subsequent treatment. As a key tool in the fluid resuscitation process, the performance of the infusion device directly affects the efficiency and effectiveness of resuscitation, significantly impacting the success rate of patient treatment. Given the urgency and importance of treating hemorrhagic shock and the crucial role of infusion, developing an intelligent infusion device better suited to this treatment scenario is of great significance for improving treatment levels and ensuring patient safety.

[0003] In the current process of intravenous infusion for the treatment of hemorrhagic shock, when the medication in a reservoir bottle is used up, medical staff need to manually insert and remove the infusion tube and replace it with a new reservoir bottle. The whole process is time-consuming and cannot form a continuous automated process. In emergency hemorrhagic shock treatment scenarios, this lag in manual operation may adversely affect the patient's treatment outcome. The low level of automation makes it difficult to meet the needs of efficient and precise treatment. Summary of the Invention

[0004] This invention relates to an intelligent infusion device for the treatment of hemorrhagic shock, in order to solve the technical problems mentioned in the background art.

[0005] In a first aspect, the present invention provides an intelligent infusion device for the treatment of hemorrhagic shock, specifically comprising: a base plate; a fixed cylinder fixed on the base plate, a movable frame that can move up and down installed inside the fixed cylinder, a welding rod welded and fixed on the movable frame, a planar structure provided on the right side of the welding rod, a rail seat installed on the planar structure on the right side of the welding rod, two connecting plates fixed between the rail seat and the welding rod, a movable lifting plate installed on the rail seat, a lead screw installed on the rail seat via bearings, and a first motor installed on the upper end of the rail seat via bolts, the output shaft of the first motor being connected to the upper end of the lead screw via a coupling, and the lead screw being threadedly engaged with the lifting plate, a sliding groove plate installed on the lifting plate, a spacer block installed between the sliding groove plate and the lifting plate, a rotatable turntable installed between the sliding groove plate and the lifting plate, the turntable having an arc-shaped groove array in a ring, the sliding groove plate having a sliding groove array in a ring, and a base rod fixedly installed on the lower end of the rail seat, two arm plates fixed on the base rod, connecting pieces installed on each of the two arm plates via bolts, and a visual detector for visually detecting the medication being installed between the two connecting pieces via bolts.

[0006] Furthermore, a movable wheel is installed at the lower end of the seat plate, a fixed base is fixedly installed on the fixed cylinder, a movable pin plate is installed on the fixed base, and a handle is connected to the pin plate by bolts. A spring is installed on the pin plate, and an insertion hole is provided on the movable frame. The pin plate passes through the fixed cylinder and is inserted into the pin hole on the movable frame.

[0007] Furthermore, a movable plate is installed in the groove of the slide plate, and a clamping plate for clamping the infusion tube plug is installed on the movable plate by bolts. Two movable blocks move in the arc groove on the turntable, and the movable blocks are connected to the movable plate by bolts.

[0008] Furthermore, a cylinder seat is installed on the lifting plate, and a first hydraulic rod is installed on the cylinder seat. The piston rod of the first hydraulic rod is connected to the turntable through a pin.

[0009] Furthermore, a fixing plate is welded and fixed on the movable frame, and a gearbox is bolted to the lower end of the fixing plate. A second motor is installed on the gearbox, and a ratchet and a stop plate are fixed on the output shaft of the gearbox. The stop plate has a ring array of slots, and a disc is fixed to the lower end of the gearbox. The disc has four round holes for placing liquid storage bottles.

[0010] Furthermore, a first fixing rod is fixedly installed at the lower end of the fixing plate, and an mounting plate is installed at the lower end of the first fixing rod. A rotatable clamping plate is installed on the mounting plate, and a tension spring is installed between the clamping plate and the mounting plate. The clamping plate rests on a ratchet.

[0011] Furthermore, a second fixing rod is fixedly installed at the lower end of the fixing plate, and a rotatable hook is installed on the second fixing rod. The hook works in conjunction with the stop plate, and a right-angle seat is installed at the lower end of the fixing plate by bolts. A second hydraulic rod is installed between the right-angle seat and the hook.

[0012] Furthermore, a ring plate is fixedly installed at each of the four circular holes on the disc. The through holes on the ring plate are connected to the circular holes on the disc. Two pillars are fixed on the ring plate, and each pillar is equipped with a gripper that can rotate around the pillar. The gripper is used to hold the liquid storage bottle.

[0013] Furthermore, a buffer plate is installed on both of the grippers, and a contact screw is threaded onto both grippers. A mounting base is fixed on the annular plate, and a movable rod is installed on the mounting base.

[0014] Furthermore, the mounting base is threaded with an adjustment knob, the lower end of which is a tapered structure, and the two ends of the movable rod are in contact with the adjustment knob and the contact screw, respectively.

[0015] Compared with the prior art, the present invention has the following beneficial effects: In this invention, a first electric motor drives a lead screw to move a lifting plate up and down, which, combined with a first hydraulic rod, controls the rotation of a turntable. This, along with a linkage between a movable plate and a clamping plate, enables precise clamping and position adjustment of the infusion tube plug, reducing manual intervention. A visual detector can monitor the liquid level in the infusion tube in real time. When the medication in the storage bottle is emptied, the system automatically controls the clamping plate to insert or remove the infusion tube. This, combined with a second electric motor, gearbox, ratchet, stop plate, and other structures, completes the automatic switching of the storage bottle, forming a fully automated closed loop from liquid level monitoring to infusion tube operation and storage bottle replacement. This linkage mechanism not only completely eliminates the reliance on manual monitoring and operation but also significantly improves the automation level of the infusion process.

[0016] Furthermore, in this invention, by adjusting the knob, movable rod, contact screw, and other components, the clamping force of the gripper on the liquid storage bottle can be flexibly adjusted, ensuring the stability of the liquid storage bottle while avoiding damage caused by excessive clamping, thus ensuring the stability of the infusion process.

[0017] Furthermore, in this invention, the clamping plate cooperates with the ratchet, and the hook cooperates with the stop plate to form a double limiting structure, which can effectively prevent the disc from rotating unexpectedly during infusion and ensure the stability of the reservoir bottle position. The buffer plate on the gripper can reduce the hard impact on the reservoir bottle. The use of elastic components such as tension springs and springs also enhances the stability of the connection between the various structures of the device, reduces the risk of failure during operation, and provides a reliable guarantee for the safe treatment of patients. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0019] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0020] In the attached diagram: Figure 1 A schematic diagram of the overall structure of the present invention is shown.

[0021] Figure 2 A schematic diagram of the welding rod portion of the present invention is shown.

[0022] Figure 3 A schematic diagram of the slide plate portion of the present invention is shown.

[0023] Figure 4 The present invention is shown Figure 2 A magnified structural diagram of part A in the middle.

[0024] Figure 5 A schematic diagram of the disk portion of the present invention is shown.

[0025] Figure 6 A schematic diagram of the structure of the lower part of the fixing plate of the present invention is shown.

[0026] Figure 7 A schematic diagram of the mounting plate portion of the present invention is shown.

[0027] Figure 8 A schematic diagram of the ratchet and stop plate portions of the present invention is shown.

[0028] Figure 9 A schematic diagram of the annular plate portion of the present invention is shown.

[0029] Figure 10 A schematic diagram of the fixed cylinder portion of the present invention is shown.

[0030] Figure 11 The present invention is shown Figure 10 A magnified structural diagram of part B.

[0031] List of reference numerals 1. Seat plate; 11. Fixed cylinder; 12. Movable frame; 13. Welding rod; 131. Rail seat; 1311. Connecting plate; 1312. Lead screw; 1313. First motor; 132. Lifting plate; 1321. Slide plate; 1322. Spacer block; 1323. Turntable; 1324. Movable block; 1325. Cylinder seat; 1326. First hydraulic rod; 1327. Movable plate; 1328. Clamping plate; 133. Base rod; 1331. Arm plate; 1332. Connecting piece; 134. Vision detector; 14. Moving wheel; 111. Fixed seat; 112. Pin 1. Plate; 1121. Handle; 1122. Spring; 2. Fixing plate; 21. Gearbox; 211. Second motor; 212. Ratchet; 213. Stop plate; 214. Disc; 22. First fixing rod; 221. Mounting plate; 222. Clamping plate; 223. Tension spring; 23. Second fixing rod; 231. Hook; 232. Right angle seat; 233. Second hydraulic rod; 24. Ring plate; 241. Support column; 242. Gripper; 2421. Contact screw; 2422. Buffer plate; 243. Mounting seat; 2431. Movable rod; 2432. Adjusting knob. Detailed Implementation

[0032] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0033] Please refer to Figures 1 to 11 Example 1: This invention proposes an intelligent infusion device for the treatment of hemorrhagic shock, comprising: a base plate 1; a fixed cylinder 11 fixed on the base plate 1, a movable frame 12 that can move up and down installed inside the fixed cylinder 11, a welding rod 13 welded and fixed on the movable frame 12, a planar structure provided on the right side of the welding rod 13, a rail seat 131 installed on the planar structure on the right side of the welding rod 13, two connecting plates 1311 fixed between the rail seat 131 and the welding rod 13, a movable lifting plate 132 installed on the rail seat 131, a lead screw 1312 installed on the rail seat 131 via bearings, and a first motor 1313 installed on the upper end of the rail seat 131 via bolts, the output shaft of the first motor 1313 being connected to the lead screw via a coupling. The upper end of 1312 is connected, and the lead screw 1312 is threadedly engaged with the lifting plate 132. A sliding plate 1321 is installed on the lifting plate 132. A spacer block 1322 is installed between the sliding plate 1321 and the lifting plate 132. A rotatable turntable 1323 is installed between the sliding plate 1321 and the lifting plate 132. The turntable 1323 has an arc-shaped groove in a circular array. The sliding plate 1321 has a sliding groove in a circular array. A base rod 133 is fixedly installed at the lower end of the rail seat 131. Two arm plates 1331 are fixed on the base rod 133. A connecting piece 1332 is installed on each of the two arm plates 1331 by bolts. A visual detector 134 for visually inspecting the liquid is installed between the two connecting pieces 1332 by bolts.

[0034] In this embodiment of the invention, a movable wheel 14 is installed at the lower end of the base plate 1, a fixed seat 111 is fixedly installed on the fixed cylinder 11, a movable pin plate 112 is installed on the fixed seat 111, and a handle 1121 is bolted to the pin plate 112. A spring 1122 is installed on the pin plate 112, and an insertion hole is provided on the movable frame 12. The pin plate 112 passes through the fixed cylinder 11 and is inserted into the pin hole on the movable frame 12. Its function is that in the scenario of treating hemorrhagic shock, it is often necessary to adjust the placement of the device in a timely manner according to changes in the patient's position and the treatment environment. The presence of the movable wheel 14 allows medical staff to easily push the device to move without laborious handling, saving adjustment time. The time and manpower required for positioning the device can better meet the needs of rapid transfer of the device during emergency treatment. When the height of the movable frame 12 needs to be adjusted, medical staff can pull the handle 1121 to drive the pin plate 112 to overcome the elastic force of the spring 1122 and pull it out of the pin hole of the movable frame 12. At this time, the movable frame 12 can move up and down in the fixed cylinder 11 to adjust to a suitable height. After the adjustment is completed, the handle 1121 is released. Under the elastic force of the spring 1122, the pin plate 112 will automatically pass through the fixed cylinder 11 and re-insert into the corresponding pin hole of the movable frame 12, thereby fixing the movable frame 12 firmly at the height position and preventing it from sliding accidentally during use.

[0035] In this embodiment of the invention, a movable plate 1327 is installed in the groove of the slide plate 1321. A clamping plate 1328 for clamping the infusion tube plug is installed on the movable plate 1327 by bolts. Two movable blocks 1324 move in the arc-shaped groove of the turntable 1323. The movable blocks 1324 are connected to the movable plate 1327 by bolts. A cylinder seat 1325 is installed on the lifting plate 132. A first hydraulic rod 1326 is installed on the cylinder seat 1325. The piston rod of the first hydraulic rod 1326 is connected to the turntable 1323 by a pin. Next, a fixing plate 2 is welded and fixed to the movable frame 12. A gearbox 21 is bolted to the lower end of the fixing plate 2. A second motor 211 is mounted on the gearbox 21. A ratchet 212 and a stop plate 213 are fixed to the output shaft of the gearbox 21. The stop plate 213 has a ring array of slots. A disc 214 is fixed to the lower end of the gearbox 21. The disc 214 has four round holes for placing liquid storage bottles. A first fixing rod 22 is fixedly installed to the lower end of the fixing plate 2. A mounting plate 221 is installed to the lower end of the first fixing rod 22. A rotatable clamping plate 222 is mounted on the mounting plate 221. A tension spring 223 is installed between the clamping plate 222 and the mounting plate 221. The clamping plate 222 rests against the ratchet 212. Its function is as follows: when the piston rod of the first hydraulic rod 1326 extends or retracts, it drives the turntable 1323 to rotate. The arc-shaped groove on the turntable 1323 drives the movable plate 1327 to move within the groove of the sliding plate 1321 through the movable block 1324. This allows the clamping plate 1328 to accurately clamp or release the infusion tube plug and adjust its position, thus facilitating the insertion and removal of the infusion tube. To ensure stable and reliable operation, the second motor 211 drives the disc 214 to rotate via the gearbox 21. The four circular holes on the disc 214 can hold different liquid storage bottles to meet various infusion needs. During the rotation of the disc 214, the clamping plate 222 is always pressed against the ratchet 212 under the action of the tension spring 223. The one-way tooth structure of the ratchet 212 prevents the disc 214 from rotating in the opposite direction, ensuring the one-wayness and stability of the liquid storage bottle switching process, avoiding the misalignment of the liquid storage bottles due to reverse rotation, and ensuring the continuous and orderly operation of the infusion process.

[0036] In Example 2, based on Example 1, a second fixing rod 23 is fixedly installed on the lower end of the fixing plate 2. A rotatable hook 231 is installed on the second fixing rod 23. The hook 231 works in conjunction with the stop plate 213. A right-angle seat 232 is bolted to the lower end of the fixing plate 2. A second hydraulic rod 233 is installed between the right-angle seat 232 and the hook 231. Its function is: when the disc 214 rotates to the corresponding position of the target liquid storage bottle under the drive of the second motor 211, the second hydraulic rod 233 extends and retracts, which will drive the hook 231 to rotate around the second fixing plate 213. The fixed rod 23 rotates, causing the hook 231 to engage with the corresponding annular groove on the stop plate 213, thereby firmly locking the disc 214 in its current position. This prevents the disc from shifting due to vibration or other factors during infusion, ensuring the accuracy and stability of the connection between the storage bottle and the infusion tube plug. When it is necessary to switch the storage bottle again, the second hydraulic rod 233 drives the hook 231 to disengage from the groove, releasing the lock and allowing the disc 214 to rotate smoothly to the next position. This achieves orderly switching of the storage bottle and further improves the reliability and accuracy of the device in infusion operations.

[0037] In Example 3, based on Examples 1 and 2, a circular ring plate 24 is fixedly installed at each of the four circular holes on the disc 214. The through holes on the circular ring plate 24 are connected to the circular holes on the disc 214. Two support columns 241 are fixed on the circular ring plate 24. Each support column 241 is equipped with a gripper 242 that can rotate around the support column 241. The gripper 242 is used to hold the liquid storage bottle. A buffer plate 2422 is installed on each gripper 242, and a contact screw 2421 is threaded onto each gripper 242. A mounting base 243 is fixed on the circular ring plate 24. A movable rod 2431 is installed on the mounting base 243, and an adjustment knob 2432 is threaded onto the mounting base 243 for adjustment. The lower end of the knob 2432 is designed with a conical structure, and the two ends of the movable rod 2431 are in contact with the adjusting knob 2432 and the contact screw 2421, respectively. Its function is: by rotating the adjusting knob 2432, its conical lower end will push the movable rod 2431 to move, and the movable rod 2431 will in turn push the contact screw 2421, causing the gripper 242 to rotate around the support column 241, thereby adjusting the distance between the two grippers 242. This design can be flexibly adjusted according to the diameter of different specifications of liquid storage bottles, enhancing the adaptability of the device to different liquid storage bottles, ensuring that various liquid storage bottles can be stably clamped, ensuring the stability of the liquid storage bottle during infusion, and providing reliable support for the smooth operation of infusion.

[0038] The working principle of this invention is as follows: The height of the movable frame 12 is adjusted by pulling the handle 1121. After adjusting to a suitable position, the handle 1121 is released, and the pin plate 112, under the action of the spring 1122, inserts into the pin hole of the movable frame 12, thus fixing the movable frame 12. Subsequently, liquid storage bottles of different specifications are placed in the circular hole of the disc 214. The adjustment knob 2432 is rotated, and its conical lower end pushes the movable rod 2431. The movable rod 2431 drives the contact screw 2421, causing the gripper 242 to rotate around the support column 241. The system continues to operate until the buffer plate 2422 on the gripper 242 is tightly fitted to the storage bottle, achieving a stable clamping of the storage bottle. The piston rod of the first hydraulic rod 1326 extends and retracts, driving the turntable 1323 to rotate. The arc-shaped groove on the turntable 1323 drives the movable plate 1327 to move within the groove of the sliding plate 1321 via the movable block 1324, thereby allowing the clamping plate 1328 to accurately clamp the infusion tube plug and adjust it to the position where it aligns with the storage bottle, completing the connection of the infusion tube. When the vision detector 134 detects the current medication in the storage bottle... When the liquid is about to run out, the device initiates the liquid bottle switching procedure. The second hydraulic rod 233 retracts, causing the hook 231 to rotate around the second fixed rod 23, disengaging the hook 231 from the slot of the stop plate 213 and releasing the lock on the disc 214. The first motor 1313 then runs, causing the infusion tube plug to be pulled out of the liquid bottle. Next, the second motor 211 drives the disc 214 to rotate via the gearbox 21. At this time, the clamping plate 222 remains pressed against the ratchet 212 under the action of the tension spring 223, utilizing the ratchet 212... The one-way tooth structure prevents the disc 214 from rotating in the opposite direction, ensuring that the disc 214 rotates smoothly and in a directional manner. When the disc 214 rotates to the next storage bottle aligned with the infusion position, the second motor 211 stops working, and the second hydraulic rod 233 extends to push the hook 231 into the corresponding slot of the stop plate 213, relocking the disc 214. At the same time, by reversing the operation of the first motor 1313, the plug on the infusion tube is inserted into the new storage bottle, realizing the automatic switching of the storage bottle and ensuring the continuous operation of the infusion process.

Claims

1. An intelligent infusion device for the treatment of hemorrhagic shock, comprising: Seat plate (1); characterized in that a fixed cylinder (11) is fixed on the seat plate (1), and a movable frame (12) that can move up and down is installed inside the fixed cylinder (11). A welding rod (13) is welded and fixed on the movable frame (12). A planar structure is provided on the right side of the welding rod (13). A rail seat (131) is installed on the planar structure on the right side of the welding rod (13). Two connecting plates (1311) are fixed between the rail seat (131) and the welding rod (13). A lifting plate (132) that can move up and down is installed on the rail seat (131). A lead screw (1312) is installed on the rail seat (131) through a bearing. A first motor (1313) is installed on the upper end of the rail seat (131) through bolts. The output shaft of the first motor (1313) is connected to the upper end of the lead screw (1312) through a coupling. Connecting the lead screw (1312) and the lifting plate (132), the lifting plate (132) is equipped with a sliding plate (1321), a spacer (1322) is installed between the sliding plate (1321) and the lifting plate (132), a rotatable turntable (1323) is installed between the sliding plate (1321) and the lifting plate (132), the turntable (1323) has an arc-shaped groove in a ring array, the sliding plate (1321) has a sliding groove in a ring array, and a bottom rod (133) is fixedly installed at the lower end of the rail seat (131), two arm plates (1331) are fixed on the bottom rod (133), and connecting pieces (1332) are installed on both arm plates (1331) by bolts, and a visual detector (134) for visual inspection of the liquid is installed between the two connecting pieces (1332) by bolts.

2. The intelligent infusion device for treating hemorrhagic shock according to claim 1, characterized in that, The lower end of the seat plate (1) is equipped with a movable wheel (14), a fixed seat (111) is fixedly installed on the fixed cylinder (11), a movable pin plate (112) is installed on the fixed seat (111), and a handle (1121) is connected to the pin plate (112) by bolts. A spring (1122) is installed on the pin plate (112), and an insertion hole is provided on the movable frame (12). The pin plate (112) passes through the fixed cylinder (11) and is inserted into the pin hole on the movable frame (12).

3. The intelligent infusion device for treating hemorrhagic shock according to claim 1, characterized in that, A movable plate (1327) is installed in the groove of the slide plate (1321). A clamping plate (1328) for clamping the infusion tube plug is installed on the movable plate (1327) by bolts. Two movable blocks (1324) move in the arc groove of the turntable (1323). The movable blocks (1324) are connected to the movable plate (1327) by bolts.

4. The intelligent infusion device for treating hemorrhagic shock according to claim 1, characterized in that, A cylinder seat (1325) is installed on the lifting plate (132), and a first hydraulic rod (1326) is installed on the cylinder seat (1325). The piston rod of the first hydraulic rod (1326) is connected to the turntable (1323) through a pin.

5. The intelligent infusion device for treating hemorrhagic shock according to claim 2, characterized in that, A fixed plate (2) is welded and fixed on the movable frame (12). A gearbox (21) is installed on the lower end of the fixed plate (2) by bolts. A second motor (211) is installed on the gearbox (21). A ratchet (212) and a stop plate (213) are fixed on the output shaft of the gearbox (21). The stop plate (213) has a ring array of slots. A disc (214) is fixed on the lower end of the gearbox (21). The disc (214) has four round holes for placing liquid storage bottles.

6. The intelligent infusion device for treating hemorrhagic shock according to claim 5, characterized in that, The lower end of the fixing plate (2) is fixedly installed with a first fixing rod (22), and the lower end of the first fixing rod (22) is installed with an mounting plate (221). A rotatable clamping plate (222) is installed on the mounting plate (221), and a tension spring (223) is installed between the clamping plate (222) and the mounting plate (221). The clamping plate (222) rests on the ratchet (212).

7. The intelligent infusion device for treating hemorrhagic shock according to claim 6, characterized in that, The lower end of the fixed plate (2) is fixedly installed with a second fixed rod (23), and a rotatable hook (231) is installed on the second fixed rod (23). The hook (231) is used in conjunction with the stop plate (213). The lower end of the fixed plate (2) is installed with a right angle seat (232) by bolts. A second hydraulic rod (233) is installed between the right angle seat (232) and the hook (231).

8. The intelligent infusion device for treating hemorrhagic shock according to claim 5, characterized in that, A ring plate (24) is fixedly installed at each of the four circular holes on the disc (214). The through holes on the ring plate (24) are connected to the circular holes on the disc (214). Two pillars (241) are fixed on the ring plate (24). Each pillar (241) is equipped with a gripper (242) that can rotate around the pillar (241). The gripper (242) is used to hold the liquid storage bottle.

9. The intelligent infusion device for treating hemorrhagic shock according to claim 8, characterized in that, Both grippers (242) are equipped with buffer plates (2422), and both grippers (242) are threaded with contact screws (2421). An mounting base (243) is fixed on the annular plate (24), and a movable rod (2431) is installed on the mounting base (243).

10. The intelligent infusion device for treating hemorrhagic shock according to claim 9, characterized in that, An adjustment knob (2432) is threaded onto the mounting base (243). The lower end of the adjustment knob (2432) is set as a conical structure, and the two ends of the movable rod (2431) are in contact with the adjustment knob (2432) and the contact screw (2421) respectively.