Wire coil bundling structure for small animal movement physiological parameter monitor

By designing a wire coil winding structure, the automatic winding of the power cord is achieved through gear meshing and a limiting plate, solving the problem of redundant and messy power cords in small animal physiological parameter monitors, and improving the aesthetics and space utilization during use.

CN224076855UActive Publication Date: 2026-04-03HUANDAO BIOTECHNOLOGY (WUHAN) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The power cord of the small animal physiological parameter monitor is redundant and messy during use, taking up desktop space and affecting the aesthetics.

Method used

A wire winding structure was designed, including a storage box, a rotating tube, a conductive slip ring, a gear system, and a limiting plate. Through gear meshing and the cooperation of the limiting plate, the automatic winding and limiting of the power cord is realized, and the power cord is collected into the storage box.

Benefits of technology

It effectively avoids redundant power cords, keeps the desktop tidy, and improves the aesthetics and space utilization during use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a wire coil binding structure for a small animal exercise physiological parameter monitor, which comprises a storage box, the surface of the storage box is fixedly connected with the monitor, the inner wall of the storage box is rotatably connected with a rotating tube, the inner wall of the storage box is provided with a conductive slip ring and a power connection end, and the power connection end is connected with the rotating tube. The front end of the power connection end is electrically connected with a power supply circuit of the monitor, a power line is wound around the surface of the rotating pipe, and a sliding rail is fixedly connected to the top of the storage box through bolts. The L-shaped block drives the rack to move, so that the gear drives the first bevel gear to rotate through the shaft rod, then the first bevel gear drives the rotating pipe to rotate through the second bevel gear and winds the power line, the power line of the parameter monitor can be properly wound, redundant power lines can be collected into the storage box, and the power line can be conveniently stored. Therefore, power line redundancy of the parameter monitor in actual use is avoided.
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Description

Technical Field

[0001] This utility model belongs to the technical field of small animal movement physiological parameter monitors, and in particular relates to a wire winding structure for a small animal movement physiological parameter monitor. Background Technology

[0002] The small animal physiological parameter monitor is a device specifically designed to measure the vital signs of small animals. It is suitable for both anesthetized and conscious animals that are free to move around. It measures the blood oxygen saturation, pulse rate, respiratory rate, and body temperature of small animals (young mice, mice, rats, etc.) in a non-invasive manner. Except for body temperature, which is measured by a separate sensor, all other indicators are obtained through a single non-invasive sensor.

[0003] The power cords of small animal physiological parameter monitors are often exposed and of a certain length. In actual use, the power cords often have redundant and long extension cords. These excess cords are often scattered messily on the desktop, which is unsightly and takes up desktop space. Therefore, a cord winding and bundling structure is needed for small animal motor physiological parameter monitors. This structure can properly wind up the power cord of the monitor, allowing the excess cord to be collected in a storage box, thereby avoiding the occurrence of redundant power cords during actual use. Utility Model Content

[0004] The purpose of this invention is to provide a coil winding structure for a small animal movement physiological parameter monitor, which can appropriately wind up the power cord of the parameter monitor so that excess power cord can be collected in a storage box, thereby avoiding the occurrence of power cord redundancy in actual use of the parameter monitor, and solving the technical problems mentioned in the background art.

[0005] The technical solution of this utility model to solve the above-mentioned technical problems is as follows: A wire winding structure for a small animal movement physiological parameter monitor includes a storage box: a monitor is fixedly connected to the surface of the storage box, a rotating tube is rotatably connected to the inner wall of the storage box, a conductive slip ring and a power receiving terminal are installed on the inner wall of the storage box, the front end of the power receiving terminal is electrically connected to the power supply line of the monitor, a power cord is wound around the surface of the rotating tube, a slide rail is fixedly connected to the top of the storage box by bolts, a slider is slidably connected to the surface of the slide rail, an L-shaped block is welded to the surface of the slider, the bottom of the L-shaped block penetrates into the inner cavity of the storage box and is fixedly connected to a rack, a shaft is rotatably connected to the inner wall of the storage box, a gear and a bevel gear are fixedly connected to the surface of the shaft, a bevel gear is fixedly installed on the surface of the rotating tube, an internally threaded lug is welded to the surface of the L-shaped block, and a bolt is threadedly connected to the inner wall of the internally threaded lug.

[0006] Preferably, the end of the power cord passes through the inner cavity of the rotating tube and extends to the outer side of the rotating tube, where it is electrically connected to the conductive slip ring.

[0007] Preferably, the surface of the rotating tube is integrally formed with two symmetrically arranged limiting plates.

[0008] Preferably, the rack and the gear mesh, and the second bevel gear meshes with the first bevel gear.

[0009] Preferably, the top of the storage box has a rectangular groove that matches the L-shaped block.

[0010] Preferably, a sleeve block is fixedly installed on the inner wall of the storage box by bolts, and the sleeve block is rotatably connected to the rotating tube.

[0011] The beneficial effects of this utility model are:

[0012] 1. This utility model uses an L-shaped block to drive the rack to move, so that the gear drives the first bevel gear to rotate through the shaft. Then, the first bevel gear drives the rotating tube to rotate through the second bevel gear and wind up the power cord. This can achieve the purpose of properly winding up the power cord of the parameter monitor, so that the excess power cord can be collected in the storage box, thereby avoiding the redundancy of the power cord when the parameter monitor is used.

[0013] 2. This utility model limits the power cord wound on the surface by setting a limiting plate, thus avoiding the power cord being randomly distributed on the surface of the rotating tube.

[0014] 3. By setting the sleeve block, this utility model limits the rotation of the rotating tube, avoiding the shaking of the rotating tube during rotation, thereby improving the stability of the rotating tube during rotation. Attached Figure Description

[0015] in:

[0016] Figure 1 This is a schematic diagram of the structure of one embodiment of the present utility model;

[0017] Figure 2 This is a three-dimensional schematic diagram of a limiting plate and a slider according to an embodiment of the present invention;

[0018] Figure 3 This is a three-dimensional schematic diagram of a first bevel gear and a second bevel gear according to an embodiment of the present invention;

[0019] Figure 4 This is one embodiment of the present utility model. Figure 3 A magnified view of point A in the middle.

[0020] The attached diagram lists the components represented by each number as follows:

[0021] 1. Storage box, 2. Monitor, 3. Rotary tube, 4. Conductive slip ring, 5. Power terminal, 6. Power cord, 7. Limiting plate, 8. Slide rail, 9. Slider, 10. L-shaped block, 11. Rack, 12. Shaft, 13. Gear, 14. Bevel gear one, 15. Bevel gear two, 16. Sleeve block, 17. Internal threaded lug, 18. Bolt rod. Detailed Implementation

[0022] In the following description, embodiments of the wire winding structure for a small animal movement physiological parameter monitor of the present invention will be described with reference to the accompanying drawings.

[0023] Example 1:

[0024] Figure 1-4 This invention illustrates a wire winding structure for a small animal movement physiological parameter monitor according to an embodiment of the present invention. It includes a storage box 1; a monitor 2 is fixedly connected to the surface of the storage box 1; a rotating tube 3 is rotatably connected to the inner wall of the storage box 1; a conductive slip ring 4 and a power connection terminal 5 are installed on the inner wall of the storage box 1; the front end of the power connection terminal 5 is electrically connected to the power supply line of the monitor 2; a power cord 6 is wound around the surface of the rotating tube 3; the end of the power cord 6 penetrates into the inner cavity of the rotating tube 3 and extends to the outer side of the rotating tube 3, electrically connecting to the conductive slip ring 4; two symmetrically arranged limiting plates 7 are integrally formed on the surface of the rotating tube 3. The limiting plates 7 limit the winding of the power cord 6, preventing the power cord from being wound away. The wires 6 are randomly distributed on the surface of the rotating tube 3. The top of the storage box 1 is fixedly connected to the slide rail 8 by bolts. The slide rail 8 is slidably connected to the slider 9. The surface of the slider 9 is welded with an L-shaped block 10. The bottom of the L-shaped block 10 penetrates into the inner cavity of the storage box 1 and is fixedly connected to the rack 11. The inner wall of the storage box 1 is rotatably connected to the shaft 12. The surface of the shaft 12 is fixedly connected to the gear 13 and the first bevel gear 14. The surface of the rotating tube 3 is fixedly installed with the second bevel gear 15. The rack 11 and the gear 13 mesh with each other. The second bevel gear 15 and the first bevel gear 14 mesh with each other. The surface of the L-shaped block 10 is welded with an internally threaded lug 17. The inner wall of the internally threaded lug 17 is threadedly connected to the bolt rod 18.

[0025] Example 2:

[0026] Figure 1-4This invention illustrates a wire winding structure for a small animal movement physiological parameter monitor according to an embodiment of the present invention. It includes a storage box 1; a monitor 2 is fixedly connected to the surface of the storage box 1; a rotating tube 3 is rotatably connected to the inner wall of the storage box 1; a conductive slip ring 4 and a power terminal 5 are installed on the inner wall of the storage box 1; the front end of the power terminal 5 is electrically connected to the power supply line of the monitor 2; a power cord 6 is wound around the surface of the rotating tube 3; a slide rail 8 is fixedly connected to the top of the storage box 1 by bolts; a slider 9 is slidably connected to the surface of the slide rail 8; an L-shaped block 10 is welded to the surface of the slider 9; the bottom of the L-shaped block 10 penetrates into the inner cavity of the storage box 1 and is fixedly connected to a rack 11; the storage box... The inner wall of the storage box 1 is rotatably connected to a shaft 12. A gear 13 and a bevel gear 14 are fixedly connected to the surface of the shaft 12. A bevel gear 15 is fixedly installed on the surface of the rotating tube 3. An internally threaded lug 17 is welded to the surface of the L-shaped block 10. A bolt rod 18 is threadedly connected to the inner wall of the internally threaded lug 17. A rectangular groove that matches the L-shaped block 10 is opened on the top of the storage box 1. A sleeve 16 is fixedly installed on the inner wall of the storage box 1 by bolts. The sleeve 16 is rotatably connected to the rotating tube 3. The setting of the sleeve 16 limits the rotation of the rotating tube 3, avoiding the shaking of the rotating tube 3 during rotation, thereby improving the stability of the rotating tube 3 during rotation.

[0027] Working principle: When using this utility model, the user moves the L-shaped block 10 to drive the rack 11 to move horizontally. The movement of the L-shaped block 10 is limited by the cooperation of the slide rail 8 and the slider 9, ensuring the stability of the L-shaped block 10 during movement. This causes the rack 11 to drive the gear 13 to rotate, which in turn drives the bevel gear 14 to rotate via the shaft 12. The bevel gear 14 then drives the rotating tube 3 to rotate via the bevel gear 15, thus winding the power cord 6. During this process, the conductive slip ring 4 helps to control the rotation. The power cord 6 is electrically connected to the power terminal 5, which prevents the power cord 6 from being damaged by twisting and deformation at the connection point with the power terminal 5 due to rotation. Then, the rotating bolt rod 18 moves down in the inner cavity of the internal threaded lug 17 and abuts against the top of the storage box 1, so that the L-shaped block 10 is fixed on the surface of the storage box 1, thereby locking the coiled state of the power cord 6. This achieves appropriate coiling of the power cord of the parameter monitor, allowing excess power cord to be collected in the storage box, thus avoiding power cord redundancy during actual use of the parameter monitor.

[0028] In summary, this small animal movement physiological parameter monitor uses a wire winding structure. The L-shaped block 10 drives the rack 11 to move, which in turn causes the gear 13 to drive the bevel gear 14 to rotate via the shaft 12. The bevel gear 14 then drives the rotating tube 3 to rotate via the bevel gear 2 15 and wind up the power cord 6. This achieves proper winding of the power cord of the parameter monitor, allowing excess power cord to be collected in the storage box, thus avoiding power cord redundancy during actual use of the parameter monitor.

Claims

1. A wire winding structure for a small animal movement physiological parameter monitor, characterized in that, The utility model provides a kind of nursing box, including storage box (1): the surface of the storage box (1) is fixedly connected with monitor (2), the inner wall of the storage box (1) is rotatably connected with rotating pipe (3), the inner wall of the storage box (1) is installed with electrically conductive slip ring (4) and electrical terminal (5), the front end of the electrical terminal (5) is electrically connected between the power supply circuit of monitor (2), the surface of the rotating pipe (3) is wound with power cord (6), the top of the storage box (1) is fixedly connected with slide rail (8) by bolt, the surface of the slide rail (8) is slidably connected with sliding block (9), the surface of the sliding block (9) is welded with L-shaped block (10), the bottom of the L-shaped block (10) is fixedly connected with rack (11) and is penetrated to the inner chamber of the storage box (1), the inner wall of the storage box (1) is rotatably connected with shaft rod (12), the surface of the shaft rod (12) is fixedly connected with gear (13) and bevel gear one (14), the surface of the rotating pipe (3) is fixedly installed with bevel gear two (15), the surface of the L-shaped block (10) is welded with internal thread ear block (17), the inner wall of the internal thread ear block (17) is threadedly connected with bolt rod (18).

2. The line winding and bundling structure for a small animal physiologic parameter monitoring instrument according to claim 1, wherein, The end of the power cord (6) is penetrated to the inner chamber of the rotating pipe (3) and extends to the outside of the rotating pipe (3) and is electrically connected between the electrically conductive slip ring (4).

3. The line winding and bundling structure for a small animal physiologic parameter monitoring instrument according to claim 2, wherein, The surface of the rotating pipe (3) is integrally formed with two symmetrical limiting plates (7).

4. The line winding structure for a small animal physiologic parameter monitoring instrument according to claim 3, wherein, The rack (11) and the gear (13) are engaged, and the bevel gear two (15) and the bevel gear one (14) are engaged.

5. The line winding structure for a small animal physiologic parameter monitoring instrument according to claim 4, wherein, A rectangular groove adapted to the L-shaped block (10) is formed in the top of the storage box (1).

6. The line winding structure for a small animal physiologic parameter monitoring instrument according to claim 5, wherein, The inner wall of the storage box (1) is fixedly installed with a sleeve block (16) by bolt, and the sleeve block (16) is rotatably connected with the rotating pipe (3).