Artery puncture pull-out compression device in anesthesia recovery phase
By designing an arterial puncture pull-out compression device, the tensioning assembly, arc-shaped compression assembly and guide rope can be used to achieve rapid recycling of the compression device and precisely control the compression angle, solving the problem of poor single-use and compression effects in the prior art, reducing medical costs and improving compression effects.
Patent Information
- Application Number
- CN202510134652.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2025-05-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Most existing arterial puncture compression devices are used once, resulting in high medical costs and low resource utilization, and difficult to accurately control the compression time and angle, affecting the compression effect.
A compression device for arterial puncture extraction during the anesthesia recovery period is designed, using a tensioning component, an arc-shaped compression component, an arc-shaped placement component and a guide rope. The drive component can achieve rapid reciprocating circulation and adjust the compression angle according to the hand shape, thereby increasing the accuracy of the compression force.
The rapid reciprocating and recycling of the compression device is realized, reducing medical costs and resource waste, and by precisely controlling the compression time and angle, the compression effect is improved and the patient's discomfort is reduced.
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Figure CN119949929A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of arterial puncture compression, in particular to an arterial puncture extraction and compression device during anesthesia recovery period. Background Art
[0002] In clinical practice, the radial artery or femoral artery is usually selected as the arterial puncture site. The patient's puncture site needs to be anesthetized during puncture. After the puncture is completed, the puncture site needs to be compressed to stop bleeding. A 4x4 dressing is placed at the arterial puncture site and compressed. Generally, the radial artery is pressed for 5 minutes after extubation, and the femoral artery is pressed for 10 minutes. In addition, the larger the diameter of the device or sheath, the longer the compression time. Patients with coagulation disorders should extend the compression time after extubation, 10 minutes for the radial artery and 15 to 20 minutes for the femoral artery. The hip should not be flexed for 2 hours after extubation of the femoral artery. The puncture site and distal pulse should be checked again 15 minutes after extubation to assess whether there are signs of hematoma or limb ischemia.
[0003] However, the above technical solutions still have certain defects. Most compression devices are disposable. The compression devices used by patients are directly treated as medical waste, which has an impact on the patient's medical costs and resource utilization. Therefore, an arterial puncture and removal compression device during the anesthesia recovery period is proposed. Summary of the invention
[0004] Based on this, the purpose of the present invention is to provide an arterial puncture extraction and compression device during anesthesia recovery period to solve the technical problems raised in the above background.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an arterial puncture extraction and compression device for anesthesia recovery period, comprising a device base, a tensioning assembly is installed at the top of the device base, an arc-shaped connecting plate is connected to one side of the output end of the tensioning assembly, an elastic assembly is arranged at the bottom end of the arc-shaped connecting plate, an arc-shaped compression assembly is fixedly installed at the bottom end of the elastic assembly, a guide rope is installed at the bottom of the output end of the tensioning assembly, an elastic airbag seat is arranged on the outer wall of the guide rope, a driving assembly is installed at the bottom end of the guide rope, and an arc-shaped placement assembly is connected to the top end of the elastic airbag seat;
[0006] The arc-shaped compression component includes an arc-shaped elastic plate that fits the bottom surface of the elastic component, both sides of the arc-shaped elastic plate are equipped with connecting cloths, and the bottom end of the arc-shaped elastic plate is provided with multiple groups of first adhesive grooves;
[0007] The arc-shaped placement component includes an arc-shaped cushion that fits the elastic airbag seat, a second adhesive groove is provided on the upper surface of the arc-shaped cushion, and connecting shells are installed at both ends of the arc-shaped cushion;
[0008] The interior of the first sticky groove is connected to the dressing gasket via Velcro, and the interior of the second sticky groove is connected to the disinfection gasket via Velcro.
[0009] As a preferred technical solution of the present invention, the base of the device includes an arc-shaped extension arm connected to the bottom of the elastic airbag seat, the bottom of the arc-shaped extension arm is equipped with an anti-slip seat, and storage columns are installed at both ends of the top of the arc-shaped extension arm. The two groups of storage columns are symmetrically arranged along the longitudinal center axis of the arc-shaped extension arm, and the storage columns are hollow inside. The two groups of storage columns are located at the same horizontal position in relative directions and are provided with a first clearance groove, and the first clearance groove is communicated with the hollow position inside the storage column.
[0010] As a preferred technical solution of the present invention, the tensioning assembly includes a first rotating shaft connected to the inside of the storage column through a torsion spring, the outer wall of the first rotating shaft is wrapped with elastic cloth, and a connecting column is installed at one end of the elastic cloth away from the first rotating shaft.
[0011] As a preferred technical solution of the present invention, the elastic component includes a first arc-shaped elastic rod that is fitted with the top of the arc-shaped compression component, the first arc-shaped elastic rod is hollow inside, spiral elastic rods are installed at both ends of the first arc-shaped elastic rod, and a second arc-shaped elastic rod is arranged on one side of the outer wall of the spiral elastic rod, and the second arc-shaped elastic rod and the first arc-shaped elastic rod are distributed in an equidistant array along the extension direction of the spiral elastic rod.
[0012] As a preferred technical solution of the present invention, the arc compression assembly also includes an elastic connector, and the arc elastic plate and the arc connecting plate are connected to the elastic connectors on both sides, and the elastic connectors are distributed in an equidistant array along the length direction of the arc elastic plate. The elastic connector includes a first ball shaft rotatably connected to the arc elastic plate, and the end of the first ball shaft away from the arc elastic plate is connected to a spring, and the end of the spring away from the first ball shaft is connected to a second ball shaft, and the second ball shaft is connected to the inner wall of the arc connecting plate.
[0013] As a preferred technical solution of the present invention, the driving assembly includes a connecting rope fixedly connected to the bottom end of the guide rope, the bottom end of the connecting rope is connected to a first winding member, one end of the first winding member is provided with a limiting member, the end of the limiting member away from the first winding member is installed with a second winding member, the bottom end of the second winding member is connected to a first rack, one end of the first rack is equipped with a limiting block, the other end of the first rack is provided with a locking member, one end of the first rack is located on one side of the limiting block and is connected to a driving rod, and the end of the driving rod away from the first rack is installed with a second rack.
[0014] As a preferred technical solution of the present invention, the first winding member includes a first winding roller fixedly connected to a connecting rope, a conical connecting rod is provided at one end of the first winding roller away from the limiting member, a first gear plate is assembled at one end of the conical connecting rod away from the first winding roller, and a communicating clearance hole is provided inside the first winding roller, the conical connecting rod and the first gear plate.
[0015] As a preferred technical solution of the present invention, the limiting member includes a penetrating rod that is in contact with the inner wall of the first winding roller, the outer diameter of the penetrating rod matches the aperture of the yield hole, a limiting cylinder is provided at one end of the penetrating rod, and both ends of the limiting cylinder are equipped with penetrating rods.
[0016] As a preferred technical solution of the present invention, the second winding member includes a second winding roller sleeved on the outer wall of the penetrating rod, and a second gear plate is installed at one end of the second winding roller away from the limiting cylinder.
[0017] As a preferred technical solution of the present invention, a through hole matching the aperture of the limiting cylinder is provided inside the device base, a limiting slide groove matching the limiting block is provided inside the device base, a yielding slide groove matching the driving rod is provided inside the device base, a guide hole matching the guide rope is provided inside the elastic airbag seat, a connecting hole matching the connecting rope is provided at the top of the device base, the connecting hole matches the guide hole, the first gear plate is rotatably connected to the second rack through a latch tooth, the second gear plate is rotatably connected to the first rack through a latch tooth, and the number of the through rods is There are two groups of guide ropes, and the two groups of connecting ropes are connected to the inner walls of the two groups of connecting shells. A first load-bearing plate slidably connected to the bottom of the second rack is installed inside the connecting shell of one group, and a second load-bearing plate matching the first rack is installed inside the other group of connecting shells, and the connecting shell where the second load-bearing plate is located is provided with a movable groove matching the locking member. There are two groups of guide ropes, and there are two groups of connecting ropes. One group of guide ropes connects the first winding member to the front end of the connecting column through a group of connecting ropes, and the other group of guide ropes connects the second winding member to the rear end of the connecting column through another group of connecting ropes.
[0018] In summary, the present invention mainly has the following beneficial effects:
[0019] The present invention enables the device to be used in a rapid reciprocating cycle through a tensioning component, an arc-shaped compression component, an arc-shaped placement component and a guide rope. At the same time, the compression device can perform compression according to the patient's hand shape through a driving component. The final compression angle is in an inclined state, thereby increasing the accuracy of the compression force and reducing the patient's discomfort caused by inconsistent pressure applied front and back. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a structural schematic diagram of the present invention;
[0021] Figure 2 It is a schematic diagram of the internal structure of the present invention;
[0022] Figure 3 It is a schematic diagram of the structure of the elastic component and the arc-shaped compression component of the present invention;
[0023] Figure 4 It is a structural schematic diagram of the arc placement component of the present invention;
[0024] Figure 5 It is a schematic diagram of the structure of the driving assembly of the present invention;
[0025] Figure 6 It is a schematic structural diagram of the penetration member of the present invention.
[0026] In the figure: 100, device base; 200, tensioning assembly; 300, arc-shaped connecting plate; 400, elastic assembly; 500, arc-shaped compression assembly; 600, guide rope; 700, elastic airbag seat; 800, arc-shaped placement assembly; 900, driving assembly;
[0027] 110. Anti-slip seat; 120. Arc-shaped extension arm; 130. Storage column;
[0028] 210, elastic fabric; 220, connecting column;
[0029] 410, first arc-shaped elastic rod; 420, spiral elastic rod; 430, second arc-shaped elastic rod;
[0030] 510, arc-shaped elastic plate; 520, connecting cloth; 530, first adhesive groove; 540, elastic connecting piece;
[0031] 810, arc-shaped cushion; 820, second adhesive groove; 830, connecting shell;
[0032] 910, connecting rope; 920, first winding member; 930, limiting member; 940, second winding member; 950, first rack; 960, locking member; 970, limiting block; 980, driving rod; 990, second rack;
[0033] 921, first winding roller; 922, conical connecting rod; 923, first gear plate;
[0034] 931, penetration rod; 932, limiting cylinder;
[0035] 941. The second winding roller; 942. The second gear plate. DETAILED DESCRIPTION
[0036] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and cannot be understood as limiting the present invention.
[0037] The following describes an embodiment of the present invention based on its overall structure.
[0038] An arterial puncture extraction compression device during anesthesia recovery period, such as Figures 1 to 6 As shown, the device comprises a base 100, a tensioning assembly 200 is mounted on the top of the base 100, an arc-shaped connecting plate 300 is connected to one side of the output end of the tensioning assembly 200, an elastic assembly 400 is arranged at the bottom end of the arc-shaped connecting plate 300, an arc-shaped pressing assembly 500 is fixedly mounted at the bottom end of the elastic assembly 400, a guide rope 600 is mounted at the bottom of the output end of the tensioning assembly 200, an elastic airbag seat 700 is arranged on the outer wall of the guide rope 600, a driving assembly 900 is mounted on the bottom end of the guide rope 600, and an arc-shaped placing assembly 800 is connected to the top end of the elastic airbag seat 700;
[0039] The arc-shaped compression component 500 includes an arc-shaped elastic plate 510 that is attached to the bottom surface of the elastic component 400. Both sides of the arc-shaped elastic plate 510 are equipped with connecting cloths 520. The bottom end of the arc-shaped elastic plate 510 is provided with a plurality of first adhesive grooves 530.
[0040] The arc-shaped placement component 800 includes an arc-shaped cushion 810 that fits the elastic airbag seat 700. A second adhesive groove 820 is provided on the upper surface of the arc-shaped cushion 810. A connecting shell 830 is installed at both ends of the arc-shaped cushion 810.
[0041] The interior of the first adhesive groove 530 is connected to the dressing gasket via Velcro, and the interior of the second adhesive groove 820 is connected to the disinfection gasket via Velcro. In some embodiments of the present invention, the positions of the first adhesive groove 530 and the second adhesive groove 820 can be interchanged;
[0042] When in use, the medical staff fixes the dressing gasket inside the first sticking groove 530 through the Velcro, installs the disinfection gasket inside the second sticking groove 820, and operates the driving assembly 900 so that the driving assembly 900 drives the guide rope 600 to move downward, the movement of the guide rope 600 drives the tensioning assembly 200 to move, the downward movement of the tensioning assembly 200 drives the movement of the tensioning assembly 200, the movement of the tensioning assembly 200 drives the arc-shaped connecting plate 300 downward, and the arc-shaped connecting plate 300 moves downward and drives the elastic assembly 400 to move. The movement of the elastic component 400 drives the arc-shaped elastic plate 510 downward. When the arc-shaped elastic plate 510 moves with the dressing pad to contact the patient's wound, the arc-shaped elastic plate 510 continues to be subjected to force, which causes the two sides of the arc-shaped elastic plate 510 to wrap inward along the moving direction of the guide rope 600, thereby achieving a better compression effect. When the compression effect is completed, the medical staff reversely operates the driving component 900 to reset the arc-shaped compression component 500, tear off the dressing pad and the alcohol pad, and throw them into medical waste for next use.
[0043] Please refer to Figure 1 and Figure 2 The device base 100 includes an arc-shaped extension arm 120 connected to the bottom of the elastic airbag seat 700, the bottom of the arc-shaped extension arm 120 is equipped with an anti-slip seat 110, and the top ends of the arc-shaped extension arm 120 are both equipped with storage columns 130;
[0044] The two groups of storage columns 130 are symmetrically arranged along the longitudinal center axis of the arc-shaped extension arm 120. The storage columns 130 are hollow inside. The two groups of storage columns 130 are located at the same horizontal position in the relative direction and are provided with a first clearance groove, which is communicated with the hollow position inside the storage column 130.
[0045] Please refer to Figure 1 and Figure 2 The tensioning assembly 200 includes a first rotating shaft connected to the inside of the storage column 130 through a torsion spring, an elastic cloth 210 is wound around the outer wall of the first rotating shaft, and a connecting column 220 is installed at one end of the elastic cloth 210 away from the first rotating shaft;
[0046] When the connecting column 220 is pulled downward by the guide rope 600, the movement of the connecting column 220 drives the elastic cloth 210 to move, and the movement of the elastic cloth 210 drives the first rotating shaft to rotate, so that the torsion spring is subjected to force. When the guide rope 600 no longer applies downward pulling force to the connecting column 220, the torsion spring resets the connecting column 220 through the elastic cloth 210, thereby driving the arc compression assembly 500 to reset.
[0047] Please refer to Figure 2 and Figure 3The elastic component 400 includes a first arc-shaped elastic rod 410 that is attached to the top of the arc-shaped compression component 500. The first arc-shaped elastic rod 410 is hollow inside, and spiral elastic rods 420 are installed at both ends of the first arc-shaped elastic rod 410. The outer wall of the spiral elastic rod 420 is located on one side of the first arc-shaped elastic rod 410 and a second arc-shaped elastic rod 430 is arranged. The second arc-shaped elastic rod 430 and the first arc-shaped elastic rod 410 are equidistantly arranged in an array along the extension direction of the spiral elastic rod 420.
[0048] The hollow design of the first arc-shaped elastic rod 410 allows the first arc-shaped elastic rod 410 to deform and give way when the arc-shaped pressing assembly 500 is in a tilted state.
[0049] Please refer to Figures 1 to 3 The arc-shaped compression assembly 500 further includes an elastic connecting member 540, and both sides of the arc-shaped elastic plate 510 and the arc-shaped connecting plate 300 are connected with elastic connecting members 540, and the elastic connecting members 540 are distributed in an equidistant array along the length direction of the arc-shaped elastic plate 510;
[0050] The elastic connecting member 540 includes a first ball shaft rotatably connected to the arc elastic plate 510, one end of the first ball shaft away from the arc elastic plate 510 is connected to a spring, one end of the spring away from the first ball shaft is connected to a second ball shaft, and the second ball shaft is connected to the inner wall of the arc connecting plate 300;
[0051] The elastic connection member 540 is used to ensure that when the arc-shaped elastic plate 510 is tilted, the arc-shaped elastic plate 510 can also remain connected to the arc-shaped connecting plate 300 .
[0052] Please refer to Figure 5 and Figure 6 The driving assembly 900 includes a connecting rope 910 fixedly connected to the bottom end of the guide rope 600, a guide hole matching the guide rope 600 is provided inside the elastic airbag seat 700, a connecting hole matching the connecting rope 910 is provided at the top of the device base 100, and the connecting hole matches the guide hole, a first winding member 920 is connected to the bottom end of the connecting rope 910, a limiting member 930 is provided at one end of the first winding member 920, and a second winding member 940 is installed at the end of the limiting member 930 away from the first winding member 920;
[0053] There are two groups of guide ropes 600, and two groups of connecting ropes 910. One group of guide ropes 600 connects the first winding member 920 to the front end of the connecting column 220 through a group of connecting ropes 910, and the other group of guide ropes 600 connects the second winding member 940 to the rear end of the connecting column 220 through another group of connecting ropes 910. The bottom end of the second winding member 940 is connected to a first rack 950, and one end of the first rack 950 is equipped with a limiting block 970. A limiting slide groove matching the limiting block 970 is provided inside the device base 100, and a locking member is provided at the other end of the first rack 950. 960, one end of the first rack 950 is located on one side of the limit block 970 and is connected to a driving rod 980, a giving way groove matching the driving rod 980 is provided inside the device base 100, a second rack 990 is installed on the end of the driving rod 980 away from the first rack 950, a first load-bearing plate slidably connected to the bottom of the second rack 990 is installed inside one group of connecting shells 830, a second load-bearing plate matching the first rack 950 is installed inside another group of connecting shells 830, and a moving groove matching the locking member 960 is provided in the connecting shell 830 where the second load-bearing plate is located;
[0054] The medical staff moves the locking member 960, and the movement of the locking member 960 drives the first rack 950 to move. The movement of the first rack 950 causes the driving rod 980 to move. The movement of the driving rod 980 causes the second rack 990 to move synchronously. The first rack 950 and the second rack 990 move synchronously to drive the first winding member 920 and the second winding member 940 to rotate synchronously, thereby winding the connecting rope 910. The connecting rope 910 is wound up by the first winding member 920 and the second winding member 940, driving the guide rope 600 to be wound up as well, thereby driving the tensioning assembly 200 downward.
[0055] See also Figures 1 to 6 The first winding member 920 includes a first winding roller 921 fixedly connected to the connecting rope 910, a conical connecting rod 922 is provided at one end of the first winding roller 921 away from the limiting member 930, a first gear plate 923 is mounted at one end of the conical connecting rod 922 away from the first winding roller 921, and communicating holes are provided inside the first winding roller 921, the conical connecting rod 922 and the first gear plate 923, and the first gear plate 923 is rotatably connected to the second rack 990 through the latching teeth;
[0056] The limiting member 930 includes a through rod 931 that fits the inner wall of the first winding roller 921, the outer diameter of the through rod 931 matches the aperture of the yield hole, a limiting cylinder 932 is arranged at one end of the through rod 931, and both ends of the limiting cylinder 932 are equipped with a through rod 931, two groups of through rods 931 are connected to the inner walls of two groups of connecting shells 830, and a through hole matching the aperture of the limiting cylinder 932 is opened inside the device base 100;
[0057] The second winding member 940 includes a second winding roller 941 sleeved on the outer wall of the through rod 931, and a second gear plate 942 is installed at one end of the second winding roller 941 away from the limiting cylinder 932, and the second gear plate 942 is rotatably connected to the first rack 950 through a latching tooth;
[0058] The first rack 950 moves to drive the second gear plate 942 to rotate, and the rotation of the second gear plate 942 drives the second winding member 940 to rotate, thereby winding the connecting rope 910;
[0059] The second rack 990 moves to drive the first gear plate 923 to rotate, and the rotation of the first gear plate 923 drives the first winding member 920 to rotate, thereby winding up another set of connecting ropes 910;
[0060] Since the first gear plate 923 and the second gear plate 942 are not of the same size and have different gear ratios, the purpose of this design is that the patient's arm artery is overall in the shape of a cone, with the rear end thicker than the front end. Therefore, when the two groups of guide ropes 600 are reeled in, one group should be reeled in more and the other group should be reeled in less, so that they can fit the patient's hand shape and avoid the situation where the pressure applied by the rear end is greater than the pressure applied by the front end during compression, thereby resulting in poor compression effect or patient discomfort.
[0061] The parts not involved in the device are the same as those in the prior art or can be implemented by using the prior art.
[0062] Although an embodiment of the present invention has been shown and described, this specific embodiment is merely an explanation of the present invention and is not a limitation of the invention. The specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions and variations to the embodiments without creative contributions as needed without departing from the principles and purpose of the present invention. However, as long as they are within the scope of the claims of the present invention, they are protected by patent law.
Claims
1. An arterial puncture extraction and compression device for anesthesia recovery period, comprising a device base (100), characterized in that: The top of the device base (100) is equipped with a tensioning assembly (200), one side of the output end of the tensioning assembly (200) is connected to an arc-shaped connecting plate (300), the bottom end of the arc-shaped connecting plate (300) is provided with an elastic assembly (400), the bottom end of the elastic assembly (400) is fixedly installed with an arc-shaped pressing assembly (500), the bottom of the output end of the tensioning assembly (200) is equipped with a guide rope (600), the outer wall of the guide rope (600) is provided with an elastic airbag seat (700), the bottom end of the guide rope (600) is installed with a driving assembly (900), and the top end of the elastic airbag seat (700) is connected to an arc-shaped placement assembly (800); The arc-shaped compression component (500) comprises an arc-shaped elastic plate (510) which is in contact with the bottom surface of the elastic component (400), and connecting cloths (520) are installed on both sides of the arc-shaped elastic plate (510). The bottom end of the arc-shaped elastic plate (510) is provided with a plurality of first adhesive grooves (530); The arc-shaped placement component (800) includes an arc-shaped soft cushion (810) that fits the elastic airbag seat (700), a second adhesive groove (820) is provided on the upper surface of the arc-shaped soft cushion (810), and connecting shells (830) are installed at both ends of the arc-shaped soft cushion (810); The interior of the first adhesive groove (530) is connected to the dressing gasket via Velcro, and the interior of the second adhesive groove (820) is connected to the disinfection gasket via Velcro.
2. The anesthesia recovery period arterial puncture extraction compression device according to claim 1, characterized in that: The device base (100) comprises an arc-shaped extension arm (120) connected to the bottom of the elastic airbag seat (700), the bottom of the arc-shaped extension arm (120) is equipped with an anti-slip seat (110), and the top ends of the arc-shaped extension arm (120) are both equipped with storage columns (130).
3. The anesthesia recovery period arterial puncture extraction compression device according to claim 2, characterized in that: The tensioning assembly (200) comprises a first rotating shaft connected to the inside of the storage column (130) via a torsion spring, an elastic cloth (210) is wound around the outer wall of the first rotating shaft, and a connecting column (220) is installed at one end of the elastic cloth (210) away from the first rotating shaft.
4. The anesthesia recovery period arterial puncture extraction compression device according to claim 1, characterized in that: The elastic component (400) includes a first arc-shaped elastic rod (410) which is fitted with the top of the arc-shaped compression component (500). The first arc-shaped elastic rod (410) is hollow inside. Spiral elastic rods (420) are installed at both ends of the first arc-shaped elastic rod (410). A second arc-shaped elastic rod (430) is arranged on one side of the first arc-shaped elastic rod (410) on the outer wall of the spiral elastic rod (420). The second arc-shaped elastic rod (430) and the first arc-shaped elastic rod (410) are distributed in an equidistant array along the extension direction of the spiral elastic rod (420).
5. The arterial puncture extraction and compression device for anesthesia recovery period according to claim 1, characterized in that: The arc compression assembly (500) also includes an elastic connector (540), and the elastic connectors (540) are connected to both sides of the arc elastic plate (510) and the arc connecting plate (300). The elastic connectors (540) are distributed in an equidistant array along the length direction of the arc elastic plate (510), and the elastic connector (540) includes a first ball shaft rotatably connected to the arc elastic plate (510), and the end of the first ball shaft away from the arc elastic plate (510) is connected to a spring, and the end of the spring away from the first ball shaft is connected to a second ball shaft, and the second ball shaft is connected to the inner wall of the arc connecting plate (300).
6. The anesthesia recovery period arterial puncture extraction compression device according to claim 1, characterized in that: The driving assembly (900) includes a connecting rope (910) fixedly connected to the bottom end of the guide rope (600), the bottom end of the connecting rope (910) is connected to a first winding member (920), one end of the first winding member (920) is provided with a limiting member (930), the end of the limiting member (930) away from the first winding member (920) is installed with a second winding member (940), the bottom end of the second winding member (940) is connected to a first rack (950), one end of the first rack (950) is equipped with a limiting block (970), the other end of the first rack (950) is provided with a locking member (960), one end of the first rack (950) is located on one side of the limiting block (970) and is connected to a driving rod (980), and the end of the driving rod (980) away from the first rack (950) is installed with a second rack (990).
7. The arterial puncture extraction and compression device for anesthesia recovery period according to claim 6, characterized in that: The first winding member (920) includes a first winding roller (921) fixedly connected to the connecting rope (910), a conical connecting rod (922) is provided at one end of the first winding roller (921) away from the limiting member (930), a first gear plate (923) is installed at one end of the conical connecting rod (922) away from the first winding roller (921), and a communicating clearance hole is provided inside the first winding roller (921), the conical connecting rod (922) and the first gear plate (923).
8. The arterial puncture extraction and compression device for anesthesia recovery period according to claim 7, characterized in that: The limiting member (930) includes a penetrating rod (931) that fits the inner wall of the first winding roller (921), the outer diameter of the penetrating rod (931) matches the aperture of the clearance hole, a limiting cylinder (932) is provided at one end of the penetrating rod (931), and the penetrating rod (931) is mounted at both ends of the limiting cylinder (932).
9. The arterial puncture extraction and compression device for anesthesia recovery period according to claim 8, characterized in that: The second winding member (940) comprises a second winding roller (941) sleeved on the outer wall of the penetration rod (931), and a second gear plate (942) is installed at one end of the second winding roller (941) away from the limiting cylinder (932).
10. The arterial puncture extraction and compression device for anesthesia recovery period according to claim 9, characterized in that: The inside of the device base (100) is provided with a through hole matching the aperture of the limiting cylinder (932), the inside of the device base (100) is provided with a limiting slide matching the limiting block (970), the inside of the device base (100) is provided with a yielding slide matching the driving rod (980), the inside of the elastic airbag seat (700) is provided with a guide hole matching the guide rope (600), the top of the device base (100) is provided with a connecting hole matching the connecting rope (910), the connecting hole matches the guide hole, the first gear plate (923) is rotatably connected to the second rack (990) by means of a latching tooth, the second gear plate (942) is rotatably connected to the first rack (950) by means of a latching tooth, the number of the through rods (931) is two groups, and the two groups of the through rods (9 31) is connected to the inner walls of two groups of connecting shells (830), one group of the connecting shells (830) is internally installed with a first load-bearing plate slidably connected to the bottom of the second rack (990), and the other group of the connecting shells (830) is internally installed with a second load-bearing plate matching the first rack (950), and the connecting shell (830) where the second load-bearing plate is located is provided with a movable groove matching the locking member (960), the number of the guide ropes (600) is two groups, the number of the connecting ropes (910) is two groups, one group of the guide ropes (600) connects the first winding member (920) to the front end of the connecting column (220) through a group of connecting ropes (910), and the other group of the guide ropes (600) connects the second winding member (940) to the rear end of the connecting column (220) through another group of connecting ropes (910).