Pressure therapeutic apparatus structure

By designing a heat dissipation device of annular metal sleeves, thermally conductive copper tubes, copper plates and refrigeration sheets in the pressure treatment instrument, combined with the noise reduction buffer layer, the problems of poor heat dissipation and noise disturbance of the equipment are solved, and the stability and user experience of the equipment are significantly improved.

CN222968825UActive Publication Date: 2025-06-13SHENZHEN XPENARRAY BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421722086.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2025-06-13
Estimated Expiration
2034-07-19

AI Technical Summary

Technical Problem

The existing pressure therapy device has poor heat dissipation and noise disturbing people during long-term operation, affecting the stability of the equipment and user experience.

Method used

A heat dissipation device including an annular metal sleeve, a thermally conductive copper tube, a copper plate and a refrigeration sheet is designed, and a noise reduction buffer layer is provided on the outside of the air pump and the annular metal sleeve.

Benefits of technology

It effectively improves the heat dissipation performance and noise reduction effect of the equipment, extends the service life of the equipment, improves the safety and stability of the treatment process, and provides users with an efficient, safe and comfortable treatment environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pressure therapeutic instrument structure which comprises a therapeutic instrument body, a heat dissipation device is arranged on the right side of the therapeutic instrument body, an air pump is arranged in the therapeutic instrument body, an annular metal sleeve is sleeved on the outer side of the air pump, and a plurality of heat conduction copper pipes are welded on the right side of the annular metal sleeve. A copper plate is fixedly connected to the inner wall of the right side of the therapeutic apparatus body, the right end of the heat conduction copper pipe is embedded and welded in the copper plate, and a groove is formed in the right side of the copper plate. The annular metal sleeve is arranged outside the air pump, the heat conduction copper pipes are welded to the right side of the annular metal sleeve, and the refrigeration pieces are arranged in the grooves of the copper plates, so that effective conduction and rapid dissipation of heat generated when the air pump works are achieved, temperature control of equipment under high-strength and long-time operation is guaranteed, and the service life of the equipment is prolonged. The service life of equipment is effectively prolonged, meanwhile, potential safety hazards caused by overheating are avoided, and the safety and stability of the treatment process are remarkably improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of therapeutic instruments, and particularly relates to a structure of a pressure therapeutic instrument. Background Art

[0002] As a non-invasive treatment method, pressure treatment has shown remarkable clinical effects in promoting blood circulation, relieving muscle fatigue, accelerating wound healing, etc. In recent years, with the rapid development of biomedical engineering, the design and manufacturing technology of pressure treatment devices have also made great progress. In particular, the integrated application of microelectronics technology, material science, and thermal management technology has greatly improved the performance and user experience of therapeutic instruments. However, there are still some problems to be solved urgently in the existing pressure therapeutic instruments, especially in heat dissipation and noise reduction.

[0003] In the existing technology, most pressure therapeutic instruments use an internal air pump as a power source to achieve pressure regulation of local tissues of patients. However, since a large amount of heat is generated when the air pump works, and the temperature accumulation caused by long-term operation not only affects the stability and service life of the device, but also may cause safety risks due to overheating. In addition, the noise generated when the air pump operates is also an issue that cannot be ignored. It not only reduces the comfort of patients, but also may cause interference to the surrounding environment. Therefore, we propose a structure of a pressure therapeutic instrument. Summary of the Utility Model

[0004] Aiming at the problems existing in the existing technology, the purpose of the utility model is to provide a structure of a pressure therapeutic instrument. By providing a Peltier cooler and a heat-conducting copper tube, the cold energy of the Peltier cooler can be conducted to the annular metal sleeve to dissipate heat from the air pump, and by having a noise reduction buffer layer, it plays a role in buffering and noise reduction.

[0005] The utility model is realized as follows. A structure of a pressure therapeutic instrument includes a therapeutic instrument body. A heat dissipation device is provided on the right side of the therapeutic instrument body. An air pump is provided inside the therapeutic instrument body. An annular metal sleeve is sleeved outside the air pump. A plurality of heat-conducting copper tubes are welded to the right side of the annular metal sleeve. The right inner wall of the therapeutic instrument body is fixedly connected with a copper plate. The right ends of the heat-conducting copper tubes are embedded and welded inside the copper plate. A groove is opened on the right side of the copper plate. A Peltier cooler is provided inside the groove. A noise reduction buffer layer is sleeved outside the annular metal sleeve and the air pump.

[0006] Optionally, the heat dissipation device includes a plurality of heat dissipation aluminum plates. The heat dissipation aluminum plates penetrate and are fixedly connected to the right side wall of the therapeutic instrument body. A fan is fixedly connected to the right side of the heat dissipation aluminum plates.

[0007] Optionally, a connecting aluminum plate is welded to the left side of the heat dissipation aluminum plate. The connecting aluminum plate is connected to the copper plate by bolts.

[0008] Optionally, the noise reduction buffer layer is a rubber layer body, and a plastic shell is sleeved outside the noise reduction buffer layer.

[0009] Optionally, connecting ears are respectively fixedly connected to the left and right sides of the plastic shell, and the connecting ears are connected to the inner bottom of the therapeutic apparatus body through bolts.

[0010] Optionally, the air pump is connected to an air distributor through a connecting pipe, and a pressure wave airbag joint is connected to the left side of the air distributor.

[0011] Optionally, a cover plate is connected to the upper part of the therapeutic apparatus body through bolts, and a handle, a display screen and a switch are arranged on the cover plate.

[0012] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0013] 1. By arranging an annular metal sleeve outside the air pump, welding a plurality of heat-conducting copper pipes on the right side thereof, fixing a copper plate on the right inner wall of the therapeutic apparatus body, and arranging a refrigerating sheet in the groove of the copper plate, effective conduction and rapid dissipation of the heat generated during the operation of the air pump are realized. The combination of the annular metal sleeve and the heat-conducting copper pipes forms a high-efficiency heat conduction path, which quickly transfers the heat generated during the operation of the air pump to the copper plate, and the addition of the refrigerating sheet further accelerates the dissipation of the heat, ensuring the temperature control of the equipment under high-intensity and long-time operation, effectively extending the service life of the equipment, and at the same time avoiding potential safety hazards caused by overheating, and significantly improving the safety and stability of the treatment process.

[0014] 2. By arranging a noise reduction buffer layer outside the air pump and the annular metal sleeve, and using a rubber material for the noise reduction buffer layer, the vibration and noise generated during the operation of the air pump are effectively absorbed, significantly reducing the acoustic pollution during the operation of the equipment, providing a quieter and more comfortable treatment environment for patients, and enhancing the treatment experience of users. In addition, the use of the plastic shell not only enhances the mechanical strength of the overall structure, but also further improves the electrical safety of the equipment through its good insulation performance, providing multiple guarantees for the safe use of users.

[0015] Other features and advantages of the present utility model will become clear through the following detailed description of the exemplary embodiments of the present utility model with reference to the accompanying drawings. Description of the Drawings

[0016] Figure 1 is a schematic structural diagram of the first perspective provided by the present utility model;

[0017] Figure 2 is a schematic diagram of the second perspective provided by the present utility model;

[0018] Figure 3It is the third - perspective schematic diagram provided by the present utility model;

[0019] Figure 4 It is the internal schematic diagram provided by the present utility model;

[0020] Figure 5 It is the schematic diagram of the thermoelectric cooler provided by the present utility model.

[0021] In the figure: 1. Switch; 2. Display screen; 3. Cover plate; 4. Handle; 5. Therapeutic instrument body; 6. Heat dissipation device; 61. Heat dissipation aluminum plate; 62. Fan; 63. Connecting aluminum plate; 7. Pressure wave airbag joint; 8. Air distributor; 9. Air pump; 10. Connecting pipe; 11. Ring - shaped metal sleeve; 12. Noise - reduction buffer layer; 13. Heat - conducting copper pipe; 14. Copper plate; 15. Thermoelectric cooler; 16. Connecting ear; 17. Plastic shell. Detailed implementation manners

[0022] To further understand the content, features and effects of the present utility model, the following embodiments are cited and described in detail with the accompanying drawings as follows.

[0023] As Figures 1 to 5 shown, a pressure therapeutic instrument structure provided by an embodiment of the present utility model.

[0024] It includes a therapeutic instrument body 5. A heat dissipation device 6 is provided on the right side of the therapeutic instrument body 5. An air pump 9 is provided inside the therapeutic instrument body 5. A ring - shaped metal sleeve 11 is sleeved outside the air pump 9. A plurality of heat - conducting copper pipes 13 are welded to the right side of the ring - shaped metal sleeve 11. A copper plate 14 is fixedly connected to the right - hand inner wall of the therapeutic instrument body 5. The right end of the heat - conducting copper pipe 13 is embedded and welded inside the copper plate 14. A groove is formed on the right side of the copper plate 14, and a thermoelectric cooler 15 is provided inside the groove. A noise - reduction buffer layer 12 is sleeved outside the ring - shaped metal sleeve 11 and the air pump 9.

[0025] The heat dissipation device 6 includes a plurality of heat dissipation aluminum plates 61. The heat dissipation aluminum plates 61 penetrate and are fixedly connected to the right - hand side wall of the therapeutic instrument body 5. A fan 62 is fixedly connected to the right side of the heat dissipation aluminum plates 61.

[0026] A connecting aluminum plate 63 is welded to the left side of the heat dissipation aluminum plate 61. The connecting aluminum plate 63 is connected to the copper plate 14 by bolts.

[0027] The noise - reduction buffer layer 12 is a rubber layer body, and a plastic shell 17 is sleeved outside the noise - reduction buffer layer 12.

[0028] Connecting ears 16 are respectively fixedly connected to the left and right sides of the plastic shell 17. The connecting ears 16 are connected to the inner bottom of the therapeutic instrument body 5 by bolts.

[0029] The air pump 9 is connected to an air distributor 8 through a connecting pipe 10. The left side of the air distributor 8 is connected to a pressure wave airbag joint 7.

[0030] The upper part of the treatment instrument body 5 is connected with a cover plate 3 by bolts, and a handle 4, a display screen 2 and a switch 1 are arranged on the cover plate 3.

[0031] The core innovation of the present utility model lies in its unique heat dissipation and noise reduction structure design, aiming to solve the problems of poor heat dissipation and disturbing noise of existing pressure treatment instruments during long-term operation, thereby improving the stability of the equipment and the user treatment experience. The beneficial effects and uses will be elaborated in detail starting from the key steps below.

[0032] Firstly, the combination of the annular metal sleeve 11 outside the air pump 9 and the heat-conducting copper tube 13 constitutes an efficient heat conduction network. The annular metal sleeve 11 not only increases the contact area between the air pump 9 and the outside world, accelerating heat dissipation, but also further guides the heat to the copper plate 14 through multiple welded heat-conducting copper tubes 13, realizing rapid heat dissipation by utilizing the high heat conductivity of copper. This design significantly improves the heat exchange efficiency compared with the traditional single-material heat conduction method, reduces the temperature in the area of the air pump 9, prevents the equipment from overheating, extends the service life, and also improves the safety during the treatment process.

[0033] Secondly, the ingenious incorporation of the refrigeration sheet 15 is another highlight of the present utility model. The refrigeration sheet 15 placed in the groove of the copper plate 14 converts electrical energy into cold energy, actively reducing the temperature of the copper plate 14, and thus strengthening the heat dissipation capacity of the entire system. This innovative point, different from the traditional passive heat dissipation method, realizes dynamic temperature control, ensures that the treatment instrument can maintain within a suitable working temperature range under various working conditions, avoids the instability of the treatment effect caused by temperature fluctuations, and improves the accuracy and reliability of the treatment.

[0034] Furthermore, the adoption of the noise reduction buffer layer 12 effectively solves the noise problem during the operation of the air pump 9. The noise reduction buffer layer 12 made of rubber can absorb vibration energy and reduce noise transmission, creating a more peaceful treatment environment for patients and improving the comfort during the treatment process. The addition of the plastic shell 17 not only provides additional physical protection, but also further reduces the interference of external noise through its good sound insulation performance, enhancing the overall noise reduction effect of the equipment and reflecting the comprehensiveness and humanization of the design.

[0035] In summary, through the innovative heat management and noise reduction design, the present utility model effectively solves the key technical bottlenecks of existing pressure treatment instruments. It not only significantly improves the heat dissipation performance and noise reduction effect of the equipment, but also enhances the stability and safety of the equipment, providing a user with an efficient, safe and comfortable treatment environment. This series of innovative designs fully reflects the inventor's unique insights and technical wisdom in solving practical problems, brings new breakthroughs to the technical field of pressure treatment instruments, and has important academic value and broad application prospects.

[0036] Although embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A pressure therapy device structure, comprising a therapy device body (5), characterized in that: A heat dissipation device (6) is provided on the right side of the therapeutic device body (5), an air pump (9) is provided inside the therapeutic device body (5), an annular metal sleeve (11) is sleeved on the outer side of the air pump (9), a plurality of heat-conducting copper tubes (13) are welded on the right side of the annular metal sleeve (11), a copper plate (14) is fixedly connected to the inner wall on the right side of the therapeutic device body (5), the right end of the heat-conducting copper tube (13) is embedded and welded inside the copper plate (14), a groove is provided on the right side of the copper plate (14), a cooling plate (15) is provided inside the groove, and a noise reduction buffer layer (12) is sleeved on the outer side of the annular metal sleeve (11) and the air pump (9).

2. A pressure therapy device structure according to claim 1, characterized in that: The heat dissipation device (6) comprises a plurality of heat dissipation aluminum plates (61), the heat dissipation aluminum plates (61) penetrate through and are fixedly connected to the right side wall of the therapeutic device body (5), and a fan (62) is fixedly connected to the right side of the heat dissipation aluminum plates (61).

3. A pressure therapy device structure according to claim 2, characterized in that: A connecting aluminum plate (63) is welded to the left side of the heat dissipation aluminum plate (61), and the connecting aluminum plate (63) is connected to the copper plate (14) via bolts.

4. A pressure therapy device structure according to claim 1, characterized in that: The noise reduction buffer layer (12) is a rubber layer, and the outer side of the noise reduction buffer layer (12) is covered with a plastic shell (17).

5. A pressure therapy device structure according to claim 4, characterized in that: The left and right sides of the plastic shell (17) are respectively fixedly connected with connecting ears (16), and the connecting ears (16) are connected to the inner bottom of the therapeutic device body (5) through bolts.

6. A pressure therapy device structure according to claim 1, characterized in that: The air pump (9) is connected to an air distributor (8) via a connecting pipe (10), and the left side of the air distributor (8) is connected to a pressure wave airbag connector (7).

7. A pressure therapy device structure according to claim 1, characterized in that: The upper part of the therapeutic device body (5) is connected to a cover plate (3) via bolts, and the cover plate (3) is provided with a handle (4), a display screen (2) and a switch (1).