A medical equipment magnetic induction energy efficiency real-time state acquisition device
Patent Information
- Application Number
- CN202211374597.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-04
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2042-11-04
AI Technical Summary
[0003]目前市场上的磁感应能效实时状态采集装置,不能够在采集能耗的过程中对采集器横置和竖置切换时,对采集装置的放置状态进行同步切换,不能够在横置时保持采集装置可滑动以及在竖置时自动切换至卡合状态,难以适应不同的工作场景使用,适应性不足;现有的采集装置在使用时,不能够对能效采集装置表面的线缆组进行角度微调工作,在不使用时接线孔容易进入灰尘导致后续电能计量不准确,不能够在不使用时对多个位置的接线口的角度进行复位和自动遮挡接线口
[0015]1、通过设置的切换组件、滑块和支撑板,使得装置在将横架横置时,切换组件上的第一弹簧不作用于压块,从而使得挡杆处于收缩状态,此时能效采集终端能够左右滑动,在横架竖置时,通过支撑板对装置整体进行支撑,能效采集设备通过滑块上的连接轴转动,此时在压块和衔接杆自身重力的作用下带动压块向下移动,压块在向下移动时能够作用于推杆和挡杆,从而使得挡杆能够挡住能效采集设备下方的滑块,从而使得滑块能够被支撑在相应的位置,使得装置能够在横置时对能效采集设备进行滑动,在竖置时对能效采集设备进行承托,并且能够在竖置前先对滑块的位置进行调节,进而对竖置后能效采集设备固定的位置进行调节,解决了现有的能效采集装置不能够在横置和竖置切换时对采集装置的放置状态进行同步切换的缺陷,该装置具有适应性更强的优势,能够根据使用场景选择不同安装状态;。
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Figure CN115825612B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of medical equipment technology, specifically to a real-time status acquisition device for magnetic induction energy efficiency of medical equipment. Background Technology
[0002] Medical equipment is equipment used on the human body in hospitals. It consumes electrical energy during operation. In order to measure the electrical energy used, a magnetic induction energy efficiency real-time status acquisition device is needed to collect the power consumption. However, the existing magnetic induction energy efficiency real-time status acquisition device still has some defects in use.
[0003] Current magnetic induction energy efficiency real-time status acquisition devices on the market cannot synchronously switch the placement state of the acquisition device when switching between horizontal and vertical positions during energy consumption acquisition. They also cannot maintain the sliding capability of the acquisition device when horizontal or automatically switch to a locked state when vertical, making them difficult to adapt to different working scenarios and lacking adaptability. When in use, existing acquisition devices cannot perform angle fine-tuning of the cable group on the surface of the energy efficiency acquisition device. When not in use, dust can easily enter the wiring holes, leading to inaccurate subsequent power metering. Furthermore, they cannot reset the angle of multiple wiring ports or automatically block the wiring ports when not in use. Summary of the Invention
[0004] In view of the problems existing in current medical devices, this invention is proposed.
[0005] To solve the above-mentioned technical problems, according to one aspect of the present invention, the present invention provides the following technical solution: a real-time status acquisition device for magnetic induction energy efficiency of medical equipment, comprising a cross frame and an energy efficiency acquisition terminal, wherein a movable groove is provided in the middle of the cross frame, a slider is fitted inside the movable groove, a connecting shaft is fixedly connected to the top of the slider, switching components are installed on both the front and rear sides of the cross frame, a support plate is fixedly connected to the right end of the cross frame, the energy efficiency acquisition terminal is rotatably connected to the top of the connecting shaft, a wire card assembly is installed on the surface of the energy efficiency acquisition terminal, an opening is provided on the energy efficiency acquisition terminal, a cover plate is slidably installed in the opening, a rotating shaft is fixedly installed in the middle of the front side of the cover plate, and a buckle plate is rotatably connected to the outer side of the rotating shaft.
[0006] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, the switching component includes an overlapping plate fixedly installed on the top of the cross frame. A first spring is fixedly connected to the front end of the overlapping plate, and a front plate is fixedly connected to the front end of the first spring. An overlapping rod is fixedly provided on the surface of the front plate. A pressure block is fixedly connected to the rear side of the overlapping rod. The pressure block is connected to an adjacent pressure block through a connecting rod. A push rod is provided on the side of the pressure block. A stop rod is fixedly connected to the front end of the push rod. A second spring is sleeved on the outside of the push rod. The two ends of the second spring are respectively connected to the stop rod and the cross frame.
[0007] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, the stop bar is slidably installed inside the cross frame, the position of the stop bar corresponds to the position of the slider, the stop bar forms a sliding structure with the cross frame through the pressure block and the push rod, and the slider forms a first engagement structure with the cross frame through the stop bar.
[0008] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, the energy efficiency acquisition terminal forms a sliding structure with the cross frame through a slider and a moving groove, the height of the upper surface of the slider is greater than the height of the upper surface of the cross frame, and the shape of the slider is a cylinder with a cross-section on the top.
[0009] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, the line card assembly includes a connecting sleeve fixedly installed on the surface of the cross frame, a middle plate rotatably installed on the side of the connecting sleeve, a wiring through hole opened on the surface of the middle plate, and a groove located on the front and rear sides of the connecting sleeve opened on the top of the energy efficiency acquisition terminal. A third spring is fixedly installed inside the groove, and a rubber pressure pad is fixedly connected to the front end of the third spring.
[0010] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, wherein: the rubber pad and the third spring constitute a pressing structure for the connecting sleeve, the middle plate forms a rotating structure with the energy efficiency acquisition terminal through the connecting sleeve, and the wiring through holes are evenly distributed on the surface of the middle plate.
[0011] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, wherein: a first hook and loop fastener is fixedly installed on the top of the buckle plate, and a second hook and loop fastener is fixedly installed on the front end of the energy efficiency acquisition terminal, the position of the second hook and loop fastener corresponds to the position of the first hook and loop fastener, and the energy efficiency acquisition terminal is provided with transverse friction textures located on the left and right sides of the buckle plate, the position of the friction textures corresponding to the position of the opening.
[0012] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, a stop block is attached to the upper rear side of the buckle plate, and the stop block and the energy efficiency acquisition terminal are fixedly connected. The stop block is made of rubber.
[0013] As a preferred embodiment of the real-time status acquisition device for magnetic induction energy efficiency of medical equipment according to the present invention, wherein: a spiral spring is sleeved on the outer side of the rotating shaft, the two ends of the spiral spring are respectively connected to the buckle plate and the rotating shaft, a protrusion is attached to the lower part of the buckle plate, the protrusion and the energy efficiency acquisition terminal are fixedly connected, a top block is slidably installed inside the protrusion, the top block is connected to the protrusion through a fourth spring, the buckle plate forms a rotating structure with the energy efficiency acquisition terminal through the top block and the fourth spring, and the buckle plate forms a second engaging structure with the energy efficiency acquisition terminal through the stop block.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. By using a switching component, slider, and support plate, the first spring on the switching component does not act on the pressure block when the horizontal frame is placed horizontally, thus keeping the stop rod in a retracted state. In this state, the energy efficiency collection terminal can slide left and right. When the horizontal frame is placed vertically, the support plate supports the entire device. The energy efficiency collection device rotates via the connecting shaft on the slider. Under the weight of the pressure block and connecting rod, the pressure block moves downwards. As it moves downwards, it acts on the push rod and stop rod, allowing the stop rod to block the slider below the energy efficiency collection device, thus supporting the slider in the appropriate position. This allows the device to slide horizontally and support the energy efficiency collection device vertically. Furthermore, the position of the slider can be adjusted before vertical placement, thus adjusting the fixed position of the energy efficiency collection device after vertical placement. This solves the problem of existing energy efficiency collection devices not being able to synchronously switch the placement state when switching between horizontal and vertical positions. This device has the advantage of greater adaptability, allowing different installation states to be selected according to the usage scenario.
[0016] 2. The device utilizes a cable clamp assembly, cover plate, and top block. When the cover plate is retracted, the rotating connecting sleeve of the cable clamp assembly allows for fine-tuning of the cable exit positions at multiple locations. This adapts to cables in different positions, preventing excessive cable bending and avoiding damage to cable ends when connecting the device to cables in different locations. During use, a fourth spring and top block ensure that after the cover plate extends, the top block acts on the latch plate, disengaging the latch plate from the stop block. The cover plate then rotates automatically under the force of the spiral spring. This design allows the first and second hook-and-loop fasteners to adhere to each other, enabling the fastener to automatically pop out after the cover plate extends. This allows the device to automatically lock and secure the cover plate after the cable outlet on the cable clip assembly is blocked, thereby improving the dustproof effect of the cable outlet. Furthermore, during the movement of the cover plate, the lower surface of the cover plate can press against the upper surface of the connector sleeve's wiring port, allowing the connector sleeve to automatically reset. This solves the problem that existing energy efficiency collection devices cannot reset the angle of multiple wiring ports or automatically block wiring ports when not in use. This device has the advantage of being more functional. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and detailed embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein:
[0018] Figure 1 This is a schematic diagram of the connection structure between the cross frame and the energy efficiency acquisition terminal of the present invention;
[0019] Figure 2 yes Figure 1 Schematic diagram of the structure at point A in the middle;
[0020] Figure 3 yes Figure 1 Schematic diagram of the structure at point B;
[0021] Figure 4 This is a schematic diagram of the connection structure between the connecting sleeve and the middle plate of the present invention;
[0022] Figure 5 This is a schematic diagram of the connection structure between the energy efficiency acquisition terminal and the cover plate of the present invention;
[0023] Figure 6 This is a schematic diagram of the connection structure between the energy efficiency data acquisition terminal and the buckle plate of the present invention;
[0024] Figure 7 This is the book Figure 6 Schematic diagram of the structure at point C;
[0025] Figure 8 This is a schematic diagram of the connection structure between the protrusion and the top block of the present invention;
[0026] Figure 9 This is a schematic diagram of the connection structure between the crossbeam and the switching component of the present invention;
[0027] Figure 10 This is a schematic diagram of the cross-sectional structure of the cross frame of the present invention;
[0028] Figure 11 This is a schematic diagram of the connection structure between the slider and the connecting shaft of the present invention.
[0029] The diagram is labeled as follows: 1. Horizontal frame; 2. Slider; 3. Connecting shaft; 4. Switching assembly; 401. Front plate; 402. Overlapping rod; 403. Pressure block; 404. Connecting rod; 405. First spring; 406. Overlapping plate; 407. Push rod; 408. Stop bar; 409. Second spring; 5. Energy efficiency acquisition terminal; 6. Cable clamp assembly; 601. Connecting sleeve; 602. Middle plate; 603. Wiring through hole; 604. Groove; 605. Third spring; 606. Rubber pressure pad; 7. Opening; 8. Cover plate; 9. Friction texture; 10. Buckle plate; 11. Spiral spring; 12. First hook and loop fastener; 13. Second hook and loop fastener; 14. Protrusion; 15. Top block; 16. Fourth spring; 17. Moving groove; 18. Stop block; 19. Rotating shaft; 20. Support plate. Detailed Implementation
[0030] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0031] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.
[0032] Secondly, the present invention is described in detail with reference to the schematic diagrams. When detailing the embodiments of the present invention, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of the present invention. In addition, actual fabrication should include three-dimensional spatial dimensions of length, width, and depth.
[0033] Example
[0034] To make the objectives, technical solutions, and advantages of the present invention clearer, the embodiments of the present invention will be described in further detail below with reference to the accompanying drawings.
[0035] like Figures 1-11As shown, a real-time magnetic induction energy efficiency status acquisition device for medical equipment includes a horizontal frame 1 and an energy efficiency acquisition terminal 5. A movable groove 17 is provided in the middle of the horizontal frame 1, and a slider 2 is fitted inside the movable groove 17. A connecting shaft 3 is fixedly connected to the top of the slider 2. Switching components 4 are installed on both the front and rear sides of the horizontal frame 1. A support plate 20 is fixedly connected to the right end of the horizontal frame 1. The energy efficiency acquisition terminal 5 is rotatably connected to the top of the connecting shaft 3. The horizontal frame 1 provides lateral support for the energy efficiency acquisition terminal 5, and the support plate 20 vertically positions the horizontal frame 1 and the energy efficiency acquisition terminal 5. When the energy efficiency acquisition terminal 5 is vertical, the switching components 4 can act on the slider 2, allowing the slider 2 to adjust the left and right positions of the energy efficiency acquisition terminal 5 when it is horizontal. The device allows for adjustment of the angle of the energy efficiency acquisition terminal 5. A cable clamp assembly 6 is installed on the surface of the energy efficiency acquisition terminal 5. The cable clamp assembly 6 can adjust the cable exit angle. An opening 7 is provided on the energy efficiency acquisition terminal 5. A cover plate 8 is slidably installed in the opening 7. The opening 7 can store the cover plate 8. The cover plate 8 can conveniently cover the cable clamp assembly 6 in the future, thereby achieving a dustproof effect. A rotating shaft 19 is fixedly installed in the middle of the front side of the cover plate 8. A buckle plate 10 is rotatably connected to the outside of the rotating shaft 19. After the cover plate 8 is extended, the buckle plate 10 is rotated to keep the cover plate 8 stable, so that the device can cover the wiring port of the energy efficiency acquisition terminal 5 when not in use. The cover plate 8 can also reset the cable clamp assembly 6 when it moves.
[0036] In this example, the switching assembly 4 includes an overlapping plate 406 fixedly installed on the top of the crossbeam 1. A first spring 405 is fixedly connected to the front end of the overlapping plate 406. A front plate 401 is fixedly connected to the front end of the first spring 405. An overlapping rod 402 is fixedly provided on the surface of the front plate 401. A pressure block 403 is fixedly connected to the rear side of the overlapping rod 402. The pressure block 403 is connected to an adjacent pressure block 403 through a connecting rod 404. A push rod 407 is provided on the side of the pressure block 403. A stop rod 408 is fixedly connected to the front end of the push rod 407. A second spring 409 is sleeved on the outer side of the push rod 407. The first and last ends of the spring 409 are connected to the stop rod 408 and the crossbar 1, respectively. The device supports the front plate 401 through the first spring 405, so that when the switching assembly 4 is horizontal, the overlapping rod 402, the pressure block 403 and the connecting rod 404 will not act on the push rod 407 and the stop rod 408. When the switching assembly 4 is vertical, the first spring 405 is compressed under the gravity of the overlapping rod 402, the pressure block 403 and the connecting rod 404. The pressure block 403 acts on the push rod 407 and the stop rod 408, causing the stop rod 408 to extend outward, so as to adjust the installation status of the energy efficiency collector in the future.
[0037] In this example, the stop rod 408 is slidably installed inside the crossbeam 1. The position of the stop rod 408 corresponds to the position of the slider 2. The stop rod 408 forms a sliding structure with the crossbeam 1 through the pressure block 403 and the push rod 407. The slider 2 forms a first engaging structure with the crossbeam 1 through the stop rod 408. Through the first engaging structure on the device, when the device is vertical, the stop rod 408 automatically extends under the pressure of the pressure block 403, thereby supporting the slider 2. This allows the device to keep the slider 2 stably supported and prevent it from moving up and down when vertical. Furthermore, the position of the slider 2 can be pre-adjusted before verticalization so that the slider 2 is in a suitable position after verticalization.
[0038] In this example, the energy efficiency acquisition terminal 5 forms a sliding structure with the crossbeam 1 through the slider 2 and the moving groove 17. The height of the upper surface of the slider 2 is greater than the height of the upper surface of the crossbeam 1. The slider 2 is shaped like a cylinder with a cross-section on the top. The protruding part of the slider 2 allows the device to not only slide the energy efficiency acquisition terminal 5 when it is placed horizontally, but also to adjust the elevation angle of the energy efficiency acquisition terminal 5 so as to observe it from different heights.
[0039] In this example, the cable clamp assembly 6 includes a connecting sleeve 601 fixedly installed on the surface of the cross frame 1. A middle plate 602 is rotatably installed on the side of the connecting sleeve 601. A wiring through hole 603 is opened on the surface of the middle plate 602. The top of the energy efficiency acquisition terminal 5 has a groove 604 located on the front and rear sides of the connecting sleeve 601. A third spring 605 is fixedly installed inside the groove 604. A rubber pressure pad 606 is fixedly connected to the front end of the third spring 605. By rotating the connecting sleeve 601 on the device, the angle of the wiring through hole 603 can be adjusted, so that the device can adjust the angle of the cable outlet. The third spring 605 can press the rubber pressure pad 606, so that the connecting sleeve 601 remains fixed after rotation.
[0040] In this example, the rubber pressure pad 606 and the third spring 605 constitute a clamping structure for the connecting sleeve 601. The middle plate 602 forms a rotating structure with the energy efficiency acquisition terminal 5 through the connecting sleeve 601. The wiring through holes 603 are evenly distributed on the surface of the middle plate 602. Through the clamping structure and the rotating structure on the device, the device can adjust and fix the angle of the outgoing line to achieve the function of fine adjustment of the outgoing line angle. This avoids damage to the wire ends caused by excessive bending of the cable when the device is connected to cables at different positions, thus improving the safety of the device during use.
[0041] In this example, a first hook and loop fastener 12 is fixedly installed on the top of the buckle plate 10, and a second hook and loop fastener 13 is fixedly installed on the front end of the energy efficiency data acquisition terminal 5. The position of the second hook and loop fastener 13 corresponds to the position of the first hook and loop fastener 12. The energy efficiency data acquisition terminal 5 is provided with transverse friction textures 9 on the left and right sides of the buckle plate 10. The position of the friction textures 9 corresponds to the position of the opening 7. Through the first hook and loop fastener 12 and the second hook and loop fastener 13, the buckle plate 10 can be flipped so that the first hook and loop fastener 12 and the second hook and loop fastener 13 can be stably pasted and fixed, which improves the stability of the device. The transverse friction textures 9 make it more convenient for the staff to move the buckle plate 10 outward.
[0042] In this example, a stop 18 is attached to the upper rear side of the buckle 10. The stop 18 and the energy efficiency acquisition terminal 5 are fixedly connected. The stop 18 is made of rubber. The rubber stop 18 allows the buckle 10 to be covered after it is closed, ensuring that the buckle 10 is in a retracted state and reducing the space occupied.
[0043] In this example, a spiral spring 11 is sleeved on the outer side of the rotating shaft 19. The two ends of the spiral spring 11 are connected to the buckle plate 10 and the rotating shaft 19, respectively. A protrusion 14 is fitted on the lower part of the buckle plate 10. The protrusion 14 and the energy efficiency acquisition terminal 5 are fixedly connected. A top block 15 is slidably installed inside the protrusion 14. The top block 15 is connected to the protrusion 14 through a fourth spring 16. The buckle plate 10 and the energy efficiency acquisition terminal 5 form a rotating structure through the top block 15 and the fourth spring 16. The buckle plate 10 and the energy efficiency acquisition terminal 5 form a second engaging structure through the stop block 18. Through the fourth spring 16 and the spiral spring 11 on the device, after the top block 15 supports the buckle plate 10, the buckle plate 10 rotates automatically under the elastic force of the spiral spring 11, so that the buckle plate 10 can be fixed on the energy efficiency acquisition terminal 5 in the future, thereby sealing the outlet and realizing the dustproof function.
[0044] It should be noted that this invention is a real-time status acquisition device for magnetic induction energy efficiency of medical equipment. First, as... Figure 1 , Figure 5 , Figure 9 , Figure 10 and Figure 11As shown, when the device is placed horizontally, the left and right positions of the energy efficiency collection terminal 5 can be adjusted by the slider 2 and the moving groove 17 in the cross frame 1. After adjusting to a suitable position, the entire device can be placed vertically and supported by the support plate 20. At this time, the front plate 401, overlapping rod 402, pressure block 403 and connecting rod 404 on the switching component 4 compress the first spring 405 under their own weight. The pressure block 403 acts on the push rod 407, causing the push rod 407 to drive the stop rod 408 to move to the side. The second spring 409 is stretched. At this time, the stop rod 408 extends from the inside of the cross frame 1 and moves into the inside of the moving groove 17. At this time, the slider 2 can be supported by the stop rod 408. At this time, the energy efficiency collection terminal 5 remains in a fixed state, so that when the device is switched from horizontal to vertical, the energy efficiency collection terminal 5 can be changed from sliding installation to fixed installation to adapt to different scenarios. The connecting shaft 3 is used to adjust the angle of the energy efficiency collection terminal 5 so as to collect the readings of the energy efficiency collection terminal 5 in real time from different positions.
[0045] like Figures 1-8 As shown, the device can adjust the angle of the connecting sleeve 601 in the middle plate 602 by rotating the mounting sleeve 601, thereby adjusting the tilt angle of the wiring through hole 603. This allows the device to adapt to different cable positions and adjust the cable exit angle, preventing excessive cable bending and damage to the cable ends. During use, the third spring 605 in the groove 604 causes the rubber pressure pad 606 to press the angle-adjusted connecting sleeve 601 under the elastic force of the third spring 605, allowing the device to be fixed after the cable exit angle is adjusted. The resistance of the connecting sleeve 601 and the rubber pressure pad 606 can also be used to fine-tune the cable exit angle. When not in use, the device can be adjusted by placing the index and middle fingers into the opening 7 and placing them on the left and right sides of the cover plate 8. The rubbing texture 9 allows the cover plate 8 to move forward. When the cover plate 8 moves to the frontmost position, the lower surface of the buckle plate 10 is held against by the top block 15. Under the elastic force of the fourth spring 16, the buckle plate 10 is pushed open, and the rubber stop block 18 is squeezed and deformed. After the buckle plate 10 is separated from the stop block 18, the spiral spring 11 on the outside of the rotating shaft 19 allows the buckle plate 10 to rotate under the action of the elastic potential energy stored in the spiral spring 11. The first hook and loop fastener 12 and the second hook and loop fastener 13 stick to each other, completing the unfolding and fixing of the cover plate 8. During the unfolding process, the cover plate 8 can also press down on the connecting sleeve 601. The upper surface of the connecting sleeve 601 and the lower surface of the cover plate 8 stick to each other, allowing the connecting sleeve 601 to return to its original position. The cover plate 8 can then be stored in reverse order.
[0046] Although the present invention has been described above with reference to embodiments, various modifications can be made and components can be replaced with equivalents without departing from the scope of the invention. In particular, as long as there is no structural conflict, the features in the disclosed embodiments can be combined with each other in any manner. The lack of an exhaustive description of these combinations in this specification is merely for the sake of brevity and resource conservation. Therefore, the present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A real-time status acquisition device for magnetic induction energy efficiency of medical equipment, comprising a crossbeam (1) and an energy efficiency acquisition terminal (5), characterized in that: The cross frame (1) has a moving groove (17) in the middle, and a slider (2) is fitted inside the moving groove (17). A connecting shaft (3) is fixedly connected to the top of the slider (2). Switching components (4) are installed on both the front and rear sides of the cross frame (1). A support plate (20) is fixedly connected to the right end of the cross frame (1). An energy efficiency acquisition terminal (5) is rotatably connected to the top of the connecting shaft (3). A wire card assembly (6) is installed on the surface of the energy efficiency acquisition terminal (5). An opening (7) is opened on the energy efficiency acquisition terminal (5). A cover plate (8) is slidably installed in the opening (7). A rotating shaft (19) is fixedly installed in the middle of the front side of the cover plate (8). A buckle plate (10) is rotatably connected to the outer side of the rotating shaft (19). The switching assembly (4) includes an overlapping plate (406) fixedly installed on the top of the cross frame (1). A first spring (405) is fixedly connected to the front end of the overlapping plate (406). A front plate (401) is fixedly connected to the front end of the first spring (405). An overlapping rod (402) is fixedly provided on the surface of the front plate (401). A pressure block (403) is fixedly connected to the rear side of the overlapping rod (402). The pressure block (403) is connected to the adjacent pressure block (403) through a connecting rod (404). A push rod (407) is provided on the side of the pressure block (403). A stop rod (408) is fixedly connected to the front end of the push rod (407). A second spring (409) is sleeved on the outside of the push rod (407). The two ends of the second spring (409) are connected to the stop rod (408) and the cross frame (1) respectively. The stop bar (408) is slidably installed inside the cross frame (1). The position of the stop bar (408) corresponds to the position of the slider (2). The stop bar (408) forms a sliding structure with the cross frame (1) through the pressure block (403) and the push rod (407). The slider (2) forms a first engaging structure with the cross frame (1) through the stop bar (408). The line card assembly (6) includes a connecting sleeve (601) fixedly installed on the surface of the cross frame (1), a middle plate (602) is rotatably installed on the side of the connecting sleeve (601), a wiring through hole (603) is opened on the surface of the middle plate (602), and a groove (604) located on the front and rear sides of the connecting sleeve (601) is opened on the top of the energy efficiency acquisition terminal (5). A third spring (605) is fixedly installed inside the groove (604), and a rubber pressure pad (606) is fixedly connected to the front end of the third spring (605). The rubber pad (606) and the third spring (605) form a pressing structure for the connecting sleeve (601). The middle plate (602) forms a rotating structure with the energy efficiency acquisition terminal (5) through the connecting sleeve (601). The wiring through holes (603) are evenly distributed on the surface of the middle plate (602).
2. The medical device magnetic induction energy efficiency real-time status acquisition device according to claim 1, characterized in that: The energy efficiency acquisition terminal (5) forms a sliding structure with the cross frame (1) through the slider (2) and the moving groove (17). The height of the upper surface of the slider (2) is greater than the height of the upper surface of the cross frame (1). The slider (2) is a cylinder with a cross-section on the top.
3. The medical device magnetic induction energy efficiency real-time status acquisition device according to claim 1, characterized in that: The top of the buckle plate (10) is fixedly installed with a first hook and loop fastener (12), and the front end of the energy efficiency acquisition terminal (5) is fixedly installed with a second hook and loop fastener (13). The position of the second hook and loop fastener (13) corresponds to the position of the first hook and loop fastener (12). The energy efficiency acquisition terminal (5) is provided with transverse friction textures (9) located on the left and right sides of the buckle plate (10). The position of the friction textures (9) corresponds to the position of the opening (7).
4. The medical device magnetic induction energy efficiency real-time status acquisition device according to claim 3, characterized in that: A stop (18) is attached to the upper rear side of the buckle plate (10). The stop (18) and the energy efficiency acquisition terminal (5) are fixedly connected. The stop (18) is made of rubber.
5. The medical device magnetic induction energy efficiency real-time status acquisition device according to claim 4, characterized in that: A spiral spring (11) is sleeved on the outside of the rotating shaft (19). The two ends of the spiral spring (11) are connected to the buckle plate (10) and the rotating shaft (19) respectively. A protrusion (14) is attached to the bottom of the buckle plate (10). The protrusion (14) and the energy efficiency acquisition terminal (5) are fixedly connected. A top block (15) is slidably installed inside the protrusion (14). The top block (15) is connected to the protrusion (14) through a fourth spring (16). The buckle plate (10) forms a rotating structure with the energy efficiency acquisition terminal (5) through the top block (15) and the fourth spring (16). The buckle plate (10) forms a second engaging structure with the energy efficiency acquisition terminal (5) through the stop block (18).
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