Anesthesia room emergency resuscitation auxiliary device connected with medical system

By designing automatic adjustment devices for support frames and movable frames, the problems of high labor intensity and low efficiency during the transfer of patients are solved, and efficient and stable transport without additional power devices are achieved, and wound tearing of patients is avoided.

CN120478067APending Publication Date: 2025-08-15SHANDONG PROVINCIAL HOSPITAL AFFILIATED TO SHANDONG FIRST MEDICAL UNIVERSITY (SHANDONG PROVINCIAL HOSPITAL)
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Patent Information

Application Number
CN202510892061.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-30
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

In the prior art, the labor intensity and efficiency of transferring patients from the operating table to the transfer truck are high, which can easily cause wound tear in patients, and requires multiple people to cooperate, which increases the work burden of medical staff.

Method used

An emergency resuscitation assist device for an anesthesia chamber including a support frame, a movable frame, a slide rod and a motor is designed. Through the cooperation of the slide rod and a motor, the height of the movable frame is automatically adjusted and the patient's ankle is fixed, reducing manual operation, and improving transport efficiency and stability.

Benefits of technology

It realizes automatic adjustment of the height of the movable frame and fixing the patient without additional power devices, reducing labor intensity, improving transportation efficiency, avoiding wound tearing of patients, and enhancing the stability of the transportation process.

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Abstract

The invention discloses an anesthesia room emergency resuscitation auxiliary device connected with a medical system, and mainly relates to the technical field of anesthesia nursing. Comprising a fixed arc-shaped plate and a movable arc-shaped plate, a first wedge-shaped block is arranged on one side of the movable arc-shaped plate, a sliding plate is slidably connected to a movable frame, second wedge-shaped blocks are arranged on the two sides of the sliding plate respectively, and a first inclined face making contact with the first wedge-shaped block is arranged on one side of each second wedge-shaped block; a first spring is arranged between the adjusting plate and the sliding plate, a first sliding rod and a second sliding rod are slidably connected to the bottom frame and the sliding frame correspondingly, the two ends of the first swing arm and the two ends of the second swing arm are rotationally connected with the first sliding rod and the second sliding rod correspondingly, and the first swing arm and the second swing arm are arranged in a crossed mode. The output shaft drives the first sliding rod and the second sliding rod to slide on the bottom frame. The device has the beneficial effects that the problem that the labor intensity of patient transferring is high is solved, and the patient transferring efficiency and effect are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of anesthesia care, in particular to an anesthesia room emergency resuscitation auxiliary device connected with a medical system. Background Art

[0002] Anesthesia is the use of drugs or other methods to temporarily inflict a patient's overall or partial loss of sensation, allowing for painless surgical treatment. After emergency anesthesia is completed and the patient's vital signs are relatively stable, further monitoring and recovery are required. Medical staff will promptly upload the patient's information to the medical system in accordance with standard procedures. The control center will call the appropriate staff to push the transfer cart into the operating room and transfer the patient from the operating table to the transfer cart. At the same time, the system on the transfer cart will detect the patient's condition and upload it to the medical system for real-time monitoring. The patient will then be transferred to the recovery room via a specific channel for subsequent vital sign monitoring, anesthesia recovery, and complication observation.

[0003] However, when transferring the patient from the operating table to the transport vehicle, the anesthesiologist needs to be located on the patient's head side, responsible for protecting the airway and head to prevent the head from shaking or airway displacement during the transfer; the circulating nurse and the anesthesia recovery room nurse are located on both sides of the patient, and the three of them exert force at the same time and move the patient smoothly and evenly to the transport cart according to commands, ensuring that the patient's body is in a horizontal position, avoiding twisting and pulling of the limbs, and properly fixing various tubes to prevent them from falling off. However, the above-mentioned transfer process is relatively cumbersome, which reduces the efficiency of patient transfer to a certain extent, and increases the labor intensity of medical staff. In addition, the patient needs to be moved significantly, which can easily cause tears to the patient's wounds, which is not conducive to the patient's subsequent recovery. Summary of the Invention

[0004] The purpose of the present invention is to provide an emergency resuscitation auxiliary device for an anesthesia room connected to a medical system, so as to solve the problem of high labor intensity in transferring patients and improve the efficiency and effect of transferring patients.

[0005] In order to achieve the above-mentioned purpose, the invention is implemented through the following technical solutions: An anesthesia room emergency resuscitation auxiliary device connected to a medical system includes a transport vehicle provided with a control platform, the transport vehicle includes a base frame, and a support frame arranged on the base frame in a vertically movable manner, a movable frame is connected to the support frame in a transverse sliding manner, a first railing and a second railing are respectively provided on one side of the movable frame and the other side of the support frame, a fixed arc plate and a movable arc plate are symmetrically provided on the support frame, a first wedge block is provided on one side of the movable arc plate, a slide plate is slidably connected to the movable frame, a second wedge block is respectively provided on both sides of the slide plate, and a first inclined plate in contact with the first wedge block is provided on one side of the second wedge block The cam is connected to the sliding panel and the movable panel is connected with the camshaft by the spring, and the camshaft is connected with the first and second movable panels by the spring.

[0006] Furthermore, there are two first swing arms and two second swing arms, which are symmetrically arranged on both sides of the base frame.

[0007] Furthermore, a driven shaft is rotatably connected to the base frame, and the output shaft and the driven shaft are respectively threadedly connected to the two first sliding rods. A connecting shaft is rotatably connected to the base frame, and the ends of the output shaft and the driven shaft are respectively provided with first conical teeth and second conical teeth, and the end of the connecting shaft is provided with a third conical tooth that is rotatably connected to the first conical tooth and the second conical tooth.

[0008] Furthermore, a spline shaft is provided at the end of the connecting shaft, a spline sleeve is rotatably connected to the support frame and is slidably connected to the spline shaft, a transmission shaft is symmetrically rotatably connected to the support frame, the transmission shaft is threadedly connected to the second slide rod, a first runner is provided at the end of the driven shaft, and a second runner is provided at the end of the spline sleeve to simultaneously drive the two first runners to rotate.

[0009] Furthermore, a plurality of columns are provided on one side of the first rotating wheel, a plurality of shift blocks are provided on the side of the second rotating wheel, and a stop block is provided between the two shift blocks. One side of two of the shift blocks on the second rotating wheel contacts the columns corresponding to the two first rotating wheels, and drives the corresponding columns to move to the position of the previous column. The lower sides of two of the stop blocks on the second rotating wheel contact the side surfaces of the corresponding columns on the two first rotating wheels at the same time, and limit the rotation of the first rotating wheel on the support frame.

[0010] Furthermore, an L-shaped block is provided on one side of the first wedge-shaped block, the movable arc plate is rotatably set on the L-shaped block, and the fixed arc plate is rotatably set on the support frame.

[0011] Furthermore, the support frame is provided with a guide rod slidably connected to the L-shaped block, and the guide rod is respectively provided with a first nut and a second nut in contact with the L-shaped block. A second spring is provided between the L-shaped block and the first nut, and one side of the second nut is in contact with the L-shaped block.

[0012] Furthermore, the support frame is rotatably connected to a screw rod, and also includes a first motor arranged on the base frame, and a second motor arranged on the support frame, the movable end of the first motor is connected to the output shaft, and the movable end of the second motor is connected to the screw rod.

[0013] Furthermore, grooves are provided on both sides of the support frame, and a number of rollers in contact with the grooves are rotatably connected on both sides of the movable frame. A second groove connected to the groove is also provided on both sides of the support frame, and a second inclined surface in contact with the roller is provided on one side of the second groove. A number of convex plates are provided on the movable frame, and a third groove is provided on the support frame to engage with the convex plate.

[0014] Furthermore, limit grooves are provided on both sides of the movable frame, and a limit block is slidably connected to the support frame. One side of the limit block is provided with a third inclined surface in contact with the movable frame and the limit groove, and a third spring is provided between the limit block and the support frame. Third wedge blocks are provided on both sides of the movable frame, and one side of the third wedge block is provided with a fifth inclined surface in contact with the third inclined surface. An intercepting block in contact with the movable frame is provided on the support frame, and a fourth spring is provided between the intercepting block and the movable frame.

[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. After the medical staff receives the height of the operating table through the medical system, the control output shaft rotates on the base frame, driving the first slide bar and the second slide bar to slide on the base frame and the support frame respectively. Since the ends of the first swing arm and the second swing arm are rotatably connected to the first slide bar and the second slide bar respectively, the first swing arms are closed or opened with each other, and drive the support frame to slide on the base frame, thereby adjusting the height of the movable frame so that its bottom is flush with the upper part of the operating table, so that the movable frame can be moved to the operating table later, which is convenient for the subsequent transfer of the anesthetized patient and improves the efficiency of transferring the anesthetized patient; 2. When the medical staff knows the width of the patient's ankle, they can adjust the compression of the first spring in the normal state by sliding the adjustment plate on the movable frame in advance. After the ankle of the corresponding width is fixed, the squeezing force applied by the first spring on the ankle is changed, thereby improving the effect of fixing the ankle of different patients; 3. When the transfer cart moves to the operating table, first turn the patient to one side of the operating table, move the transfer cart so that the transfer cart corresponds to the other side of the operating table, then slide the movable frame on the support frame so that the movable frame moves to the other side of the operating table, and then rotate the patient. Since there is no railing on the other side of the movable frame, it will not interfere with the patient, so that the patient can smoothly fall on the pad provided by the movable frame, and at the same time move the patient's ankles so that they move between the two first grooves respectively, and then pull the movable frame back on the support frame, and the first inclined surface provided on one side of the two second wedge blocks contacts the corresponding first wedge blocks, and the component force generated simultaneously drives the two movable arc plates to move on the support frame until the ankle on one side of the movable arc plate contacts. The component force generated after the two contact makes The movable curved plate pushes it to move until the other side of the ankle contacts the fixed curved plate, and then the movable frame continues to move on the support plate until the movable frame is pulled back into place, while further compressing the first spring. The rebound force generated by the compression of the first spring is transmitted to the ankle through the movable curved plate, thereby applying a squeezing force to the ankle, limiting its sliding on the movable frame, preventing the patient from moving the lower limbs in an unconscious state during transportation, and preventing the wounds of the lower limbs from tearing. At the same time, no additional power device is required to drive the movable curved plate to move, further reducing the space required for the installation of the power device and the manufacturing cost. In addition, there is no need to carry the patient from the operating table to the transfer vehicle, further improving the patient's transfer efficiency, and avoiding the patient's wounds from tearing during transportation. 4. Through the cooperation among the first motor, the output shaft, the base frame, the connecting shaft, the third conical gear, the driven shaft, the first conical gear, and the second conical gear, the connecting shaft and the driven shaft are driven to rotate on the base frame at the same time. Since the output shaft and the driven shaft are respectively threadedly connected to the two first sliding rods, the two first sliding rods are driven to slide on the base frame at the same time. Then, through the cooperation among the spline shaft, the connecting shaft, the spline sleeve, the support frame, the second rotating wheel, the shift block, the first rotating wheel, and the column, the second rotating wheel drives the two first rotating wheels to rotate together. At the same time, through the cooperation among the transmission shaft, the second sliding rod, the connecting frame, the first swing arm, and the second swing arm, the support frame can be raised and lowered on the base frame to adapt to operating tables and recovery beds of different heights. In addition, the sliding connection between the spline sleeve and the spline shaft enables the connecting shaft to always drive the second rotating wheel to rotate during the rising or falling process of the support frame, thereby ensuring the stable rising and falling of the support frame on the base frame, improving the stability of transporting patients, and at the same time, there is no need to set up an additional power device to separately drive the movement of the first sliding rod and the second sliding rod, further reducing the space required for installation of the power device and the manufacturing cost. In addition, each time the second rotating wheel drives the first rotating wheel to rotate once, the lower sides of two of the stoppers on the second rotating wheel simultaneously contact the side surfaces of the corresponding posts on the two first rotating wheels, and limit the rotation of the first rotating wheels on the support frame, thereby preventing the first rotating wheels from rotating alone under the action of external force, resulting in inconsistent angles between the first swing arm and the second swing arm and the base frame, causing the support frame to tilt and affecting the stability of subsequent patient transfer; 5. When the movable frame needs to be pulled out and the patient needs to be transferred to the recovery room or the transfer vehicle, the cooperation among the support frame, the movable frame, the intercepting block, the fourth spring, the third wedge block, the limiting block, the fifth inclined surface, the third inclined surface and the third spring allows the limiting block to slide out of the limiting groove and to be a certain distance away from the movable frame. Then, the movable frame is pushed outward on the support frame. Before the third spring drives the limiting block to return to its original position, the movable frame is pushed out a certain distance, so that the limiting block is misaligned with the limiting groove and no longer enters the limiting groove, thereby simplifying the operation steps of releasing the movable frame from the fixed frame and improving the efficiency of transferring the patient. At the same time, no additional power device is required to drive it, further reducing the space required for installing the power device and the manufacturing cost. When the movable frame slides out from the support frame, the friction between the movable frame and the support frame is reduced by the cooperation between the rollers and the grooves, and the sliding of the movable frame on the support frame plays a guiding role, so that the movable frame can slide smoothly on the support frame and move to the operating table. At the same time, the rollers slide on the operating table to bear part of the weight of the movable frame. During the movement of the movable frame, the cooperation between the rollers, the grooves, the limiting grooves, the second inclined surface, the convex plate, the support frame, the movable frame, and the third grooves limits the movement of the movable frame on the support frame, so as to avoid the movable frame moving relative to the support frame when the patient is moved slightly on the movable frame, thereby affecting the stability of the overall structure of the transport vehicle, and also preventing the movable frame from directly sliding out of the support frame. After the patient is placed on the pad, the bottom of the movable frame is lifted up so that the convex plate slides out of the third groove, releasing the restriction relationship between the movable frame and the support frame, and then the movable frame is pushed back laterally. Through the cooperation between the movable frame, the limit block, the third inclined surface and the third spring, the limit block is driven to reset and enter the limit groove. The side of the limit block contacts the limit groove, and the resistance generated by the contact between the limit block and the limit groove limits the movable frame from sliding out on the support frame. At the same time, the movable frame contacts the intercepting block, compressing the fourth spring between the movable frame and the intercepting block, and the rebound force generated by the compression of the fourth spring takes over the lateral external force exerted on the movable frame during the movement, thereby preventing the movable frame from shaking on the support frame during transportation, thereby improving the patient's recovery effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Attachment Figure 1 It is a structural schematic diagram of the movable frame of the present invention.

[0017] Attachment Figure 2It is a structural schematic diagram of a skateboard of the present invention.

[0018] Attachment Figure 3 It is a structural schematic diagram of the chassis of the present invention.

[0019] Attachment Figure 4 It is a structural schematic diagram of the output shaft of the present invention.

[0020] Attachment Figure 5 This invention is attached Figure 4 A partial enlarged view of area A in the middle.

[0021] Attachment Figure 6 It is a structural schematic diagram of the second rotor of the present invention.

[0022] Attachment Figure 7 It is a structural schematic diagram of the convex plate of the present invention.

[0023] Attachment Figure 8 It is a structural schematic diagram of the roller of the present invention.

[0024] Attachment Figure 9 It is a structural schematic diagram of the limit block of the present invention.

[0025] Reference numerals shown in the accompanying drawings: 1. Control platform; 2. Base frame; 3. Support frame; 4. Movable frame; 5. First railing; 6. Second railing; 7. Fixed curved plate; 8. Movable curved plate; 9. First wedge block; 10. Slide plate; 11. Second wedge block; 12. First inclined plane; 13. Adjustment plate; 14. First spring; 15. Pad; 16. First groove; 17. First slide bar; 18. Second slide bar; 19. First swing arm; 20. Second swing arm; 21. Output shaft 22. Driven shaft; 23. Connecting shaft; 24. First conical tooth; 25. Second conical tooth; 26. Third conical tooth; 27. Spline shaft; 28. Spline sleeve; 29. Transmission shaft; 30. First runner; 31. Second runner; 32. Column; 33. Shift block; 34. Stop block; 35. L-shaped block; 36. Guide rod; 37. First nut; 38. Second nut; 39. Second spring; 40. Screw; 41. First motor; 42. Second motor; 43. Groove; 44. Roller; 45. Second groove; 46. Second inclined surface; 47. Protruding plate; 48. Third groove; 49. Limiting groove; 50. Limiting block; 51. Third inclined surface; 52. Third spring; 53. Third wedge block; 54. Fourth inclined surface; 55. Intercepting block; 56. Fourth spring. DETAILED DESCRIPTION

[0026] Below in conjunction with specific embodiment, further set forth the present invention.Should be understood that these embodiments are only used to illustrate the present invention and are not used in limiting the scope of the present invention.In addition, should be understood that after reading the content taught by the present invention, those skilled in the art can make various changes or modifications to the present invention, and these equivalent forms fall within the scope limited by the application equally.

[0027] The present invention provides an anesthesia room emergency resuscitation auxiliary device connected to a medical system, such as Figure 1-3 As shown, it includes a transport vehicle provided with a control platform 1, which is connected to the medical system. The control center transmits the patient's basic information and the height of the operating table to the control platform 1 of the transport vehicle through the medical system, so that the medical staff can know the patient's basic information and the height of the operating table before the transfer in advance, and adjust the height of the transport vehicle and the compression amount of the first spring 14 in the initial state in time, so as to facilitate the subsequent transfer of the patient to the recovery room and improve the efficiency of transporting the patient after anesthesia; the transport vehicle includes a base frame 2, and a support frame 3 vertically movably arranged on the base frame 2, specifically, the base frame 2 is provided with a plurality of universal wheels and a push handle, and the transport vehicle is pushed by the push handle to move it, and a movable frame 4 is connected to the support frame 3 in a transverse sliding manner, and a first railing 5 and a second railing 6 are respectively provided on one side of the movable frame 4 and the other side of the support frame 3 to prevent the patient from falling from the transport vehicle during transportation; The support frame 3 is symmetrically provided with a fixed arc plate 7 and a movable arc plate 8, a first wedge block 9 is provided on one side of the movable arc plate 8, a slide plate 10 is slidably connected to the movable frame 4, and a second wedge block 11 is provided on both sides of the slide plate 10, a first inclined surface 12 is provided on one side of the second wedge block 11 and contacts the first wedge block 9, an adjustment plate 13 is slidably connected to the movable frame 4, a first spring 14 is provided between the adjustment plate 13 and the slide plate 10, the movable frame 4 is pulled back on the support frame 3, and the first inclined surface 12 provided on one side of the two second wedge blocks 11 contacts the corresponding first wedge block 9, and the component force generated simultaneously drives the two movable arc plates 8 to move on the support frame 3 until the ankle on one side of the movable arc plate 8 contacts, and the component force generated after the two contact makes the movable frame 4 move. The curved plate 8 pushes it to move until the other side of the ankle contacts the fixed curved plate 7, and then the movable frame 4 continues to be moved on the support plate until the movable frame 4 is pulled back into place, while further compressing the first spring 14. The rebound force generated by the compression of the first spring 14 is transmitted to the ankle through the movable curved plate 8, thereby applying a squeezing force to the ankle, limiting its sliding on the movable frame 4, and preventing the patient from moving the lower limbs in an unconscious state during transportation, thereby preventing the wounds of the lower limbs from tearing. At the same time, no additional power device is required to drive the movable curved plate 8 to move, further reducing the space required for the installation of the power device and the manufacturing cost. In addition, there is no need to carry the patient from the operating table to the transfer vehicle, further improving the patient's transfer efficiency, and avoiding the patient's wounds from tearing during transportation. The movable frame 4 is provided with a backing plate 15, and the backing plate 15 is provided with a first groove 16 for the fixed arc plate 7 and the movable arc plate 8 to pass through, so as to avoid interference with the movable arc plate 8 and the fixed arc plate 7; The base frame 2 is symmetrically connected to the first slide bar 17 for sliding, and the movable frame 4 is symmetrically connected to the second slide bar 18 for sliding. A first swing arm 19 and a second swing arm 20 are provided between the base frame 2 and the support frame 3. The two ends of the first swing arm 19 and the second swing arm 20 are respectively connected to the first slide bar 17 and the second slide bar 18 for rotation, and the two are cross-arranged. The base frame 2 is rotatably connected to an output shaft 21, and the output shaft 21 drives the first slide bar 17 and the second slide bar 18 to slide on the base frame 2. When medical staff receive the high-pressure surgical table through the medical system, After the degree is reached, the output shaft 21 is controlled to rotate on the base frame 2, driving the first slide bar 17 and the second slide bar 18 to slide on the base frame 2 and the support frame 3 respectively. Since the two ends of the first swing arm 19 and the second swing arm 20 are rotatably connected to the first slide bar 17 and the second slide bar 18 respectively, the first swing arm 19 is closed or opened with each other, and drives the support frame 3 to slide on the base frame 2, thereby adjusting the height of the movable frame 4 so that its bottom is flush with the upper part of the operating table, so that the movable frame 4 can be moved to the operating table later, which is convenient for the subsequent transportation of anesthetized patients and improves the efficiency of transporting anesthetized patients.

[0028] Preferably, Figure 3 As shown, there are two first swing arms 19 and second swing arms 20, which are symmetrically arranged on both sides of the base frame 2, thereby improving the stability of the overall structure of the transport vehicle and the stability of subsequent patient transportation.

[0029] Preferably, Figure 3 and Figure 4 As shown, the chassis 2 is rotatably connected to a driven shaft 22, the output shaft 21 and the driven shaft 22 are respectively threadedly connected to the two first slide bars 17, and the chassis 2 is rotatably connected to a connecting shaft 23, the ends of the output shaft 21 and the driven shaft 22 are respectively provided with a first conical tooth 24 and a second conical tooth 25, and the end of the connecting shaft 23 is provided with a third conical tooth 26 that is rotatably connected to the first conical tooth 24 and the second conical tooth 25. The output shaft 21 rotates on the chassis 2, and due to the third conical tooth 26 provided at the end of the connecting shaft 23 At the same time, they mesh with the first conical teeth 24 and the second conical teeth 25 provided at the ends of the output shaft 21 and the driven shaft 22, so that the torque generated by the rotation of the output shaft 21 simultaneously drives the connecting shaft 23 and the driven shaft 22 to rotate on the base frame 2. Since the output shaft 21 and the driven shaft 22 are respectively threadedly connected to the two first sliding rods 17, the two first sliding rods 17 are simultaneously driven to slide on the base frame 2, and one end of the first swing arm 19 and the second swing arm 20 is driven to move, thereby realizing the lifting and lowering of the support frame 3 on the base frame 2 to adapt to operating tables and recovery beds of different heights.

[0030] Preferably, Figure 4 and Figure 5As shown, a spline shaft 27 is provided at the end of the connecting shaft 23, and a spline sleeve 28 slidably connected to the spline shaft 27 is rotatably connected to the support frame 3. A transmission shaft 29 is symmetrically rotatably connected to the support frame 3, and the transmission shaft 29 is threadedly connected to the second slide bar 18. The end of the driven shaft 22 is provided with a first runner 30, and the end of the spline sleeve 28 is provided with a second runner 31 that simultaneously drives the two first runners 30 to rotate. When the connecting shaft 23 rotates on the base frame 2, due to the sliding connection between the spline shaft 27 and the spline sleeve 28 provided at the end of the connecting shaft 23, the spline sleeve 28 will be driven to rotate on the support frame 3 together, and the second runner 31 will be driven to rotate on the support frame 3, thereby simultaneously driving the two first runners 30 to rotate on the support frame 3. Since the two transmission shafts 29 are respectively threadedly connected to the corresponding second slide bars 18, the two second slide bars 18 will be driven to rotate on the connecting frame, and the other ends of the first swing arm 19 and the second swing arm 20 will be driven to move together, thereby realizing the lifting and lowering of the support frame 3 on the base frame 2 to adapt to operating tables and recovery beds of different heights; in addition, the sliding connection between the spline sleeve 28 and the spline shaft 27 enables the connecting shaft 23 to always drive the second rotating wheel 31 to rotate during the rising or falling process of the support frame 3, thereby ensuring the stable rising and falling of the support frame 3 on the base frame 2, improving the stability of transporting patients, and at the same time, there is no need to set up an additional power device to separately drive the movement of the first slide bar 17 and the second slide bar 18, further reducing the space required for the installation of the power device and the manufacturing cost.

[0031] Preferably, Figure 5 and Figure 6 As shown, one side of the first rotating wheel 30 is provided with several columns 32, and the side of the second rotating wheel 31 is provided with several shifting blocks 33, and a stopper 34 is provided between the two shifting blocks 33. One side of the shifting block 33 contacts the corresponding column 32 and drives it to move to the position of the previous column 32, so that the second rotating wheel 31 simultaneously drives the two first rotating wheels 30 to rotate together, and then drives the two second sliding bars 18 to slide on the support frame 3, so as to realize the lifting and lowering of the support frame 3 on the base frame 2 to adapt to operating tables and recovery beds of different heights; the lower side of the stopper 34 contacts the side surface of one of the columns 32 and limits the rotation of the first rotating wheel 30 on the support frame 3, avoiding the first rotating wheel 30 from rotating alone under the action of external force, resulting in the first swing arm 19 and the second swing arm 20 having inconsistent angles with the base frame 2, causing the support frame 3 to tilt, affecting the stability of subsequent patient transfer.

[0032] Preferably, Figure 2 and Figure 7As shown, an L-shaped block 35 is provided on one side of the first wedge block 9, the movable arc plate 8 is rotatably set on the L-shaped block 35, and the fixed arc plate 7 is rotatably set on the support frame 3, so that the ankle can swing slightly on the transport bed to avoid hard interference between the ankle and the movable arc plate 8 and the fixed arc plate 7.

[0033] Preferably, Figure 2 As shown, the support frame 3 is provided with a guide rod 36 that is slidably connected to the L-shaped block 35, and the guide rod 36 is respectively provided with a first nut 37 and a second nut 38 that contact the L-shaped block 35. A second spring 39 is provided between the L-shaped block 35 and the first nut 37, and one side of the second nut 38 is in contact with the L-shaped block 35. When the movable frame 4 slides out from the support frame 3, the rebound force generated by the compression of the second spring 39 will drive the L-shaped block 35 to slide on the guide rod 36 until the L-shaped block 35 contacts the second nut 38, thereby automatically stretching the movable arc block, making it convenient to subsequently place the patient's ankle between the movable arc block and the fixed arc block, thereby improving the efficiency of fixing the patient, and no additional power device is required to drive it, further reducing the space required for installation of the power device and the manufacturing cost required.

[0034] Preferably, Figure 2 and Figure 4 As shown, the support frame 3 is rotatably connected with a screw 40, and also includes a first motor 41 arranged on the base frame 2, and a second motor 42 arranged on the support frame 3. The movable end of the first motor 41 is connected to the output shaft 21 to provide power for the support frame 3 to slide on the base frame 2. The movable end of the second motor 42 is connected to the screw 40 to increase the power for adjusting the initial spring rebound force of the first spring 14. At the same time, the rotation of the first motor 41 and the second motor 42 can be automatically controlled by the medical system to adapt to the height of the operating table and the ankle width of the next patient in advance, without the need for manual adjustment by personnel with hidden dangers, thereby improving the efficiency of subsequent patient transfer.

[0035] Preferably, Figure 7 and Figure 8As shown, grooves 43 are provided on both sides of the support frame 3, and a number of rollers 44 in contact with the grooves 43 are rotatably connected on both sides of the movable frame 4. Second grooves 45 connected to the grooves 43 are also provided on both sides of the support frame 3. A second inclined surface 46 in contact with the rollers 44 is provided on one side of the second groove 45. The movable frame 4 is provided with a number of convex plates 47, and the support frame 3 is provided with a third groove 48 engaged with the convex plates 47. When the movable frame 4 slides out of the support frame 3, the friction between the movable frame 4 and the support frame 3 is reduced through the sliding contact between the rollers 44 and the grooves 43, and at the same time, it plays a guiding role in the sliding of the movable frame 4 on the support frame 3, so that the movable frame 4 can slide smoothly on the support frame 3 and move to the operating table. At the same time, it slides on the operating table through the rollers 44 and bears part of the weight of the movable frame 4; in the process of moving the movable frame 4, since there is a roller 44 located on the groove 43 later, when the front roller 44 passes through the limit groove 49 , will not fall into the limit groove 49, and when the last two rollers 44 pass the corresponding limit grooves 49, since there is no subsequent roller 44 support, the roller 44 slides into the limit groove 49 through the second inclined surface 46 until the ends of the several protruding plates 47 provided on the movable frame 4 contact the support frame 3, and then the movable frame 4 is further moved forward, so that the protruding plates 47 move above the third groove 48 and fall into the third groove 48. The resistance generated by the contact between the protruding plates 47 and the third groove 48 limits the movement of the movable frame 4 on the support frame 3, avoiding that when the patient is moved slightly on the movable frame 4, the movable frame 4 moves relative to the support frame 3, affecting the stability of the overall structure of the transport vehicle, and also preventing the movable frame 4 from directly sliding out of the support frame 3; after placing the patient on the pad 15, the bottom of the movable frame 4 is lifted, so that the protruding plates 47 slide out of the third groove 48, releasing the restriction relationship between the movable frame 4 and the support frame 3, and then pushing the movable frame 4 back horizontally until the movable frame 4 returns to its original position.

[0036] Preferably, Figure 7-Figure 9As shown, the movable frame 4 is provided with limit grooves 49 on both sides, and the support frame 3 is slidably connected to the limit block 50, and one side of the limit block 50 is provided with a third inclined surface 51 in contact with the movable frame 4 and the limit groove 49, and a third spring 52 is provided between the limit block 50 and the support frame 3, and third wedge blocks 53 are provided on both sides of the movable frame 4, and one side of the third wedge block 53 is provided with a fifth inclined surface in contact with the third inclined surface 51, and an intercepting block 55 in contact with the movable frame 4 is provided on the support frame 3, and a fourth spring 56 is provided between the intercepting block 55 and the movable frame 4. When the movable frame 4 needs to be pulled out and the patient is transferred to the recovery room or the patient is transferred to the transfer vehicle, the movable frame 4 is further pushed inward on the support frame 3 to further compress the fifth spring 56 between the intercepting block 55 and the movable frame 4. The fourth spring 56 makes the third wedge blocks 53 provided on both sides of the movable frame 4 contact with the limit blocks 50, and the component force generated by the contact between the fifth inclined surface and the third inclined surface 51 drives the limit blocks 50 to move to both sides and compresses the third spring 52, so that the limit blocks 50 complete sliding out of the limit grooves 49 and are a certain distance away from the movable frame 4. Then, the movable frame 4 is pushed outward on the support frame 3. Before the third spring 52 drives the limit blocks 50 to return to their original position, the movable frame 4 is pushed out a certain distance, so that the limit blocks 50 are misaligned with the limit grooves 49 and no longer enter the limit grooves 49, thereby simplifying the operation steps of releasing the movable frame 4 from the fixed frame and improving the efficiency of transferring the patient; at the same time, no additional power device is required to drive it, further reducing the space required for installing the power device and the manufacturing cost; When the movable frame 4 needs to be restored, the movable frame 4 is pulled back, and the end of the movable frame 4 contacts the third inclined surface 51 provided on the limit block 50, driving the two limit blocks 50 to move to both sides and compressing the third spring 52 until the limit block 50 moves to the position where the limit groove 49 is located. Under the action of the rebound force of the third spring 52, the limit block 50 is driven to reset and enter the limit groove 49. The side of the limit block 50 contacts the limit groove 49, and the resistance generated limits the movable frame 4 from sliding out on the support frame 3. At the same time, the movable frame 4 contacts the intercepting block 55, compressing the fourth spring 56 between the movable frame 4 and the intercepting block 55, and the rebound force generated by the compression of the fourth spring 56 takes over the lateral external force exerted on the movable frame 4 during the movement, thereby preventing the movable frame 4 from shaking on the support frame 3 during transportation, thereby improving the patient's recovery effect.

[0037] Example 1 The present invention provides an anesthesia room emergency resuscitation auxiliary device connected to a medical system, such as Figure 1-Figure 3As shown, after the medical staff receives the height of the operating table through the medical system, the control output shaft 21 is rotated on the base frame 2, driving the first slide bar 17 and the second slide bar 18 to slide on the base frame 2 and the support frame 3 respectively. Since the two ends of the first swing arm 19 and the second swing arm 20 are rotatably connected to the first slide bar 17 and the second slide bar 18 respectively, the first swing arm 19 is closed or opened with each other, and drives the support frame 3 to slide on the base frame 2, thereby adjusting the height of the movable frame 4 so that its bottom is flush with the upper part of the operating table, so that the movable frame 4 can be moved to the operating table later, which is convenient for the subsequent transportation of the anesthetized patient and improves the efficiency of transporting the anesthetized patient. At the same time, after the medical staff learns the width of the patient's ankle, they slide the adjustment plate 13 on the movable frame 4 in advance to adjust the compression amount of the first spring 14 in the normal state. After the ankle of the corresponding width is fixed, the squeezing force applied by the first spring 14 on the ankle is changed, thereby improving the effect of fixing the ankles of different patients; When the transfer cart moves to the operating table, first turn the patient to one side of the operating table, move the transfer cart so that the transfer cart corresponds to the other side of the operating table, then slide the movable frame 4 on the support frame 3, so that the movable frame 4 moves to the other side of the operating table, and then rotate the patient. Since there is no railing on the other side of the movable frame 4, it will not interfere with the patient, so that the patient can smoothly fall on the pad 15 provided on the movable frame 4, and at the same time move the patient's ankles so that they are moved between the two first grooves 16 respectively. Then, pull the movable frame 4 back on the support frame 3, and the first inclined surface 12 provided on one side of the two second wedge blocks 11 contacts the corresponding first wedge blocks 9. The component force generated simultaneously drives the two movable arc plates 8 to move on the support frame 3 until the ankle on one side of the movable arc plate 8 contacts. The force causes the movable arc plate 8 to push it to move until the other side of the ankle contacts the fixed arc plate 7, and then the movable frame 4 continues to be moved on the support plate until the movable frame 4 is pulled back into place, and the first spring 14 is further compressed. The rebound force generated by the compression of the first spring 14 is transmitted to the ankle through the movable arc plate 8, thereby applying a squeezing force to the ankle, limiting its sliding on the movable frame 4, and preventing the patient from moving the lower limbs in an unconscious state during transportation, thereby preventing the wounds of the lower limbs from being torn. At the same time, no additional power device is required to drive the movable arc plate 8 to move, further reducing the space required for the installation of the power device and the manufacturing cost. In addition, there is no need to carry the patient from the operating table to the transfer vehicle, further improving the patient's transfer efficiency, and avoiding the patient's wounds from being torn during transportation; Similarly, push the transfer cart to the recovery room and transfer the patient to the recovery bed.

[0038] Example 2 On the basis of Example 1, Figure 3-Figure 6As shown, the output shaft 21 is driven to rotate on the base frame 2 by the first motor 41. Since the third conical teeth 26 provided at the end of the connecting shaft 23 are simultaneously engaged with the first conical teeth 24 and the second conical teeth 25 provided at the ends of the output shaft 21 and the driven shaft 22, the torque generated by the rotation of the output shaft 21 simultaneously drives the connecting shaft 23 and the driven shaft 22 to rotate on the base frame 2. Since the output shaft 21 and the driven shaft 22 are respectively threadedly connected to the two first slide bars 17, the two first slide bars 17 are simultaneously driven to slide on the base frame 2. At the same time, the output shaft 21 drives the connecting shaft 23 to rotate on the base frame 2. Since the spline shaft 27 is slidably connected to the spline sleeve 28 provided at the end of the connecting shaft 23, the spline sleeve 28 will be driven to rotate on the support frame 3, and the second runner 31 will be driven to rotate on the support frame 3. Then, one side of two shift blocks 33 on the second runner 31 contacts the corresponding posts 32 of the two first runners 30, and the component force generated drives the corresponding posts 32 to move to the position of the previous post 32, so that the second runner 31 drives the two first runners 30 to rotate together at the same time. Since the two transmission shafts 29 are respectively threadedly connected to the corresponding second slide rods 18, the two The second slide bar 18 rotates on the connecting frame and drives the other ends of the first swing arm 19 and the second swing arm 20 to move together, thereby realizing the lifting and lowering of the support frame 3 on the base frame 2 to adapt to operating tables and recovery beds of different heights; in addition, the sliding connection between the spline sleeve 28 and the spline shaft 27 enables the connecting shaft 23 to always drive the second rotating wheel 31 to rotate during the lifting or lowering process of the support frame 3, thereby ensuring the stable lifting and lowering of the support frame 3 on the base frame 2, improving the stability of transporting patients, and at the same time, no additional power device is required to separately drive the movement of the first slide bar 17 and the second slide bar 18, further reducing the space required for the installation of the power device and the manufacturing cost; In addition, each time the second wheel 31 drives the first wheel 30 to rotate once, the lower sides of two of the blocks 34 on the second wheel 31 simultaneously contact the side surfaces of the corresponding columns 32 on the two first wheels 30, and limit the first wheels 30 from rotating on the support frame 3, thereby avoiding the first wheels 30 from rotating alone under the action of external force, resulting in inconsistent angles between the first swing arm 19 and the second swing arm 20 and the base frame 2, causing the support frame 3 to tilt, affecting the stability of subsequent patient transfer.

[0039] Example 3 On the basis of Example 1, Figure 2 and Figure 4 As shown, the movable curved plate 8 is rotatably mounted on the L-shaped block 35, and the fixed curved plate 7 is rotatably mounted on the support frame 3, so that the ankle can swing slightly on the transport bed, avoiding hard interference between the ankle and the movable curved plate 8 and the fixed curved plate 7; When the movable frame 4 slides out from the support frame 3, the rebound force generated by the compression of the second spring 39 will drive the L-shaped block 35 to slide on the guide rod 36 until the L-shaped block 35 contacts the second nut 38, thereby automatically expanding the movable arc block, making it easier to place the patient's ankle between the movable arc block and the fixed arc block. This improves the efficiency of fixing the patient and eliminates the need for an additional power device, further reducing the space required for the power device installation and the manufacturing cost. The medical system automatically controls the rotation of the first motor 41 and the second motor 42 to adapt to the height of the operating table and the ankle width of the next patient in advance, eliminating the need for manual adjustment by personnel, thereby improving the efficiency of subsequent patient transfer.

[0040] Example 4 On the basis of Example 1, Figure 7-Figure 9 As shown, when the movable frame 4 needs to be pulled out and the patient needs to be transferred to the recovery room or the transfer vehicle, the movable frame 4 is further pushed inward on the support frame 3, and the fourth spring 56 provided between the intercepting block 55 and the movable frame 4 is further compressed, so that the third wedge blocks 53 provided on both sides of the movable frame 4 come into contact with the limit blocks 50, and the component force generated by the contact between the fifth inclined surface and the third inclined surface 51 drives the limit blocks 50 to move toward both sides and compresses the third spring 52, so that the limit blocks 50 complete the sliding out of the limit groove 49 and are a certain distance away from the movable frame 4. After that, the movable frame 4 is pushed outward on the support frame 3, and before the third spring 52 drives the limit block 50 to return to its original position, the movable frame 4 is pushed out a certain distance, so that the limit block 50 is misaligned with the limit groove 49 and no longer enters the limit groove 49, thereby simplifying the operation steps of releasing the movable frame 4 from the fixed frame and improving the efficiency of transferring the patient; at the same time, no additional power device is required to drive it, further reducing the space required for installation of the power device and the manufacturing cost required; When the movable frame 4 slides out from the support frame 3, the roller 44 slides in contact with the groove 43 to reduce the friction between the movable frame 4 and the support frame 3, and at the same time guides the sliding of the movable frame 4 on the support frame 3, so that the movable frame 4 can slide smoothly on the support frame 3 and move to the operating table. At the same time, the roller 44 slides on the operating table to bear part of the weight of the movable frame 4. In the process of moving the movable frame 4, since there is a subsequent roller 44 located on the groove 43, the front roller 44 will not fall into the limiting groove 49 when passing through the limiting groove 49, and when the last two rollers 44 pass through the corresponding limiting grooves 49 , since there is no subsequent support from the roller 44, the roller 44 slides into the limiting groove 49 through the second inclined surface 46 until the ends of the several protruding plates 47 provided on the movable frame 4 contact the support frame 3, and then the movable frame 4 is further moved forward, so that the protruding plates 47 move to the top of the third groove 48 and fall into the third groove 48. The resistance generated by the contact between the protruding plates 47 and the third groove 48 limits the movement of the movable frame 4 on the support frame 3, thereby preventing the movable frame 4 from moving relative to the support frame 3 when the patient is moved slightly on the movable frame 4, thereby affecting the stability of the overall structure of the transport vehicle, and also preventing the movable frame 4 from directly sliding off the support frame 3; The third spring 52 is compressed and the second spring 56 is compressed to absorb the lateral external force exerted on the movable frame 4 during the movement, thereby preventing the movable frame 4 from shaking on the support frame 3 during transportation, thereby improving the recovery effect of the patient.

Claims

1. An anesthesia room emergency resuscitation assist device connected to a medical system, comprising a transport vehicle provided with a control platform (1), characterized in that: The transport vehicle comprises a base frame (2), and a support frame (3) arranged on the base frame (2) in a vertically movable manner, a movable frame (4) is connected to the support frame (3) in a transverse sliding manner, a first railing (5) and a second railing (6) are respectively provided on one side of the movable frame (4) and the other side of the support frame (3), a fixed arc plate (7) and a movable arc plate (8) are symmetrically provided on the support frame (3), a first wedge block (9) is provided on one side of the movable arc plate (8), a slide plate (10) is slidably connected to the movable frame (4), a second wedge block (11) is provided on both sides of the slide plate (10), a first inclined surface (12) in contact with the first wedge block (9) is provided on one side of the second wedge block (11), an adjustment plate (13) is slidably connected to the movable frame (4), and the adjustment plate (13) is in contact with the slide plate ( 10), a first spring (14) is provided between the movable frame (4), a pad (15) is provided on the pad (15), a first groove (16) for the fixed arc plate (7) and the movable arc plate (8) to pass through is provided on the pad (15), a first slide bar (17) is symmetrically slidably connected on the base frame (2), a second slide bar (18) is symmetrically slidably connected on the movable frame (4), a first swing arm (19) and a second swing arm (20) are provided between the base frame (2) and the support frame (3), two ends of the first swing arm (19) and the second swing arm (20) are rotatably connected to the first slide bar (17) and the second slide bar (18), and the two are cross-arranged, an output shaft (21) is rotatably connected to the base frame (2), and the output shaft (21) drives the first slide bar (17) and the second slide bar (18) to slide on the base frame (2).

2. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 1, characterized in that: There are two first swing arms (19) and two second swing arms (20), which are symmetrically arranged on both sides of the base frame (2).

3. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 1, characterized in that: A driven shaft (22) is rotatably connected to the base frame (2), the output shaft (21) and the driven shaft (22) are respectively threadedly connected to the two first slide bars (17), a connecting shaft (23) is rotatably connected to the base frame (2), the ends of the output shaft (21) and the driven shaft (22) are respectively provided with a first conical tooth (24) and a second conical tooth (25), and the end of the connecting shaft (23) is provided with a third conical tooth (26) rotatably connected to both the first conical tooth (24) and the second conical tooth (25).

4. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 3, characterized in that: The end of the connecting shaft (23) is provided with a spline shaft (27), the support frame (3) is rotatably connected to a spline sleeve (28) that is slidably connected to the spline shaft (27), the support frame (3) is symmetrically rotatably connected to a transmission shaft (29), the transmission shaft (29) is threadedly connected to the second slide bar (18), the end of the driven shaft (22) is provided with a first rotating wheel (30), and the end of the spline sleeve (28) is provided with a second rotating wheel (31) that simultaneously drives the two first rotating wheels (30) to rotate.

5. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 4, characterized in that: A plurality of columns (32) are provided on one side of the first rotating wheel (30), a plurality of shifting blocks (33) are provided on the side of the second rotating wheel (31), and a stopper (34) is provided between two of the shifting blocks (33). One side of two of the shifting blocks (33) on the second rotating wheel (31) contacts the corresponding columns (32) of the two first rotating wheels (30), and drives the corresponding columns (32) to move to the position where the previous column (32) is located. The lower sides of two of the stoppers (34) on the second rotating wheel (31) simultaneously contact the side surfaces of the corresponding columns (32) on the two first rotating wheels (30), and limit the first rotating wheel (30) from rotating on the support frame (3).

6. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 1, characterized in that: An L-shaped block (35) is provided on one side of the first wedge-shaped block (9), the movable arc plate (8) is rotatably mounted on the L-shaped block (35), and the fixed arc plate (7) is rotatably mounted on the support frame (3).

7. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 6, characterized in that: The support frame (3) is provided with a guide rod (36) slidably connected to the L-shaped block (35), and the guide rod (36) is provided with a first nut (37) and a second nut (38) respectively in contact with the L-shaped block (35). A second spring (39) is provided between the L-shaped block (35) and the first nut (37), and one side of the second nut (38) is in contact with the L-shaped block (35).

8. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 1, characterized in that: The support frame (3) is rotatably connected to a screw rod (40), and further comprises a first motor (41) arranged on the base frame (2), and a second motor (42) arranged on the support frame (3), wherein the movable end of the first motor (41) is connected to the output shaft (21), and the movable end of the second motor (42) is connected to the screw rod (40).

9. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 1, characterized in that: Grooves (43) are provided on both sides of the support frame (3), and a plurality of rollers (44) in contact with the grooves (43) are rotatably connected to both sides of the movable frame (4). Second grooves (45) communicating with the grooves (43) are also provided on both sides of the support frame (3), and a second inclined surface (46) in contact with the rollers (44) is provided on one side of the second groove (45). A plurality of convex plates (47) are provided on the movable frame (4), and a third groove (48) engaged with the convex plate (47) is provided on the support frame (3).

10. The anesthesia room emergency resuscitation assist device connected to a medical system according to claim 9, characterized in that: Limiting grooves (49) are provided on both sides of the movable frame (4), a limiting block (50) is slidably connected to the support frame (3), a third inclined surface (51) in contact with the movable frame (4) and the limiting groove (49) is provided on one side of the limiting block (50), a third spring (52) is provided between the limiting block (50) and the support frame (3), a third wedge block (53) is provided on both sides of the movable frame (4), a fourth inclined surface (54) in contact with the third inclined surface (51) is provided on one side of the third wedge block (53), an intercepting block (55) in contact with the movable frame (4) is provided on the support frame (3), and a fourth spring (56) is provided between the intercepting block (55) and the movable frame (4).