A thermostatic control device for the scrotum
Patent Information
- Application Number
- CN202610768039.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-05-30
- Publication Date
- 2026-08-04
AI Technical Summary
该结构存在明显缺陷:由于阴囊部位不同区域(如睾丸对应区域、附睾对应区域)的生理需求和理疗需求存在差异,整体式腔体只能实现整个阴囊区域的统一控温,无法根据不同区域的具体需求调节温度,无法针对性理疗
[0022] 1. Based on the fact that the shell has a penile accommodating cavity and at least two scrotal accommodating cavities, with the two scrotal accommodating cavities located on opposite sides of the penile accommodating cavity, and the penile accommodating cavity and the two scrotal accommodating cavities being separated from each other; this arrangement can achieve physical independent partitioning of the penis and scrotum, and the two scrotums, avoiding mutual temperature interference between different parts, providing a structural basis for partitioned temperature control, and thus achieving targeted physiotherapy. The temperature can be adjusted separately according to the different physiotherapy temperature requirements of the penis and scrotum, and the two scrotums, solving the problems of traditional devices being unable to partition temperature control and having poor physiotherapy targeting, and improving the accuracy and professionalism of physiotherapy.
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Figure CN122498978A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of medical thermostat technology, and more particularly to a thermostat control device for the scrotum. Background Technology
[0002] The scrotum is an important part of the male reproductive system. The testes inside are extremely sensitive to temperature. A suitable temperature environment (usually 34℃-35.5℃) is key to ensuring normal sperm production and development. At the same time, various scrotal conditions (such as epididymitis, postoperative recovery from varicocele) require precise constant temperature physiotherapy to relieve symptoms and promote recovery. The physiotherapy temperature usually needs to be controlled between 38-42℃, and the temperature accuracy should not exceed ±1℃ to ensure safety and efficacy.
[0003] In the prior art, a scrotal thermostat with application number CN202410726060.5 adopts an integral cavity structure, placing the entire scrotum within a single cavity for constant temperature control. This structure has a significant drawback: due to the different physiological and therapeutic needs of different areas of the scrotum (such as the area corresponding to the testes and the area corresponding to the epididymis), the integral cavity can only achieve uniform temperature control for the entire scrotum area, and cannot adjust the temperature according to the specific needs of different areas, thus failing to provide targeted therapy. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art, the purpose of this invention is to provide a constant temperature control device for the scrotum, which can control the temperature in zones to achieve targeted physical therapy.
[0005] The objective of this invention is achieved through the following technical solution:
[0006] A thermostatic control device for the scrotum includes: a housing, multiple heat-conducting films, multiple temperature adjustment mechanisms, multiple temperature sensing modules, and a control module;
[0007] The housing has a penis receiving cavity and at least two scrotum receiving cavities, the two scrotum receiving cavities being located on opposite sides of the penis receiving cavity, and the penis receiving cavity and the two scrotum receiving cavities being separated from each other;
[0008] Each of the aforementioned heat-conducting films covers the inner wall surface of the penile cavity and the scrotum cavity, and forms a uniform temperature cavity with the cavity wall of the corresponding cavity;
[0009] Each of the temperature regulating mechanisms is respectively located in the housing and is connected to one of the temperature equalization chambers;
[0010] Each of the temperature sensing modules is respectively located in the penile cavity and the two scrotal cavities, and is used to sense temperature changes within the corresponding cavity;
[0011] The control module is electrically connected to each of the temperature sensing modules and each of the temperature regulating mechanisms. The control module is used to determine whether it is necessary to control the working state of the temperature regulating mechanism that is connected to the temperature uniform cavity in the cavity corresponding to the temperature sensing module based on the signal from the temperature sensing module.
[0012] Furthermore, the shell is a flexible biomimetic shell that can conform to the physiological curvature of the scrotum.
[0013] Furthermore, the thermostatic control device for the scrotum also includes multiple elastic heat insulation plates, and the penile cavity and the two scrotal cavities are separated by one of the elastic heat insulation plates.
[0014] Furthermore, the temperature regulation mechanism includes a semiconductor cooling block, at least two heat conduction tubes, and at least two exhaust fans; the two heat conduction tubes extend from the external environment of the housing into the same temperature uniform cavity; the semiconductor cooling block is disposed between the two heat conduction tubes, and the cooling end and the heat dissipation end of the semiconductor cooling block are respectively located in one of the heat conduction tubes; the two exhaust fans are respectively disposed in one of the heat conduction tubes and are used to blow the cold air from the cooling end of the semiconductor cooling block in the heat conduction tube into the temperature uniform cavity or blow the hot air from the heat dissipation end into the temperature uniform cavity.
[0015] Furthermore, the exhaust fan is a bidirectional exhaust fan.
[0016] Furthermore, the thermostatic control device for the scrotum also includes a power supply module, which supplies power to the temperature sensing module, the temperature regulating mechanism, and the control module.
[0017] Furthermore, the thermostatic control device for the scrotum also includes a wireless communication module, which is electrically connected to the control module, the temperature adjustment mechanism, and the temperature sensing module. The wireless communication module is used to connect to a communication device.
[0018] Furthermore, the temperature sensing module is made using an NTC temperature sensor.
[0019] Furthermore, the thermostatic control device for the scrotum also includes an adjusting strap, the two ends of which are respectively connected to the outer walls of opposite sides of the housing.
[0020] Furthermore, the thermostatic control device for the scrotum also includes at least two connecting mechanisms. Each end of the adjusting strap is detachably connected to the outer wall of the housing via one of the connecting mechanisms. Each connecting mechanism includes a mounting plate and a mounting bolt. The mounting plate is disposed on the outer wall of the housing. Each end of the adjusting strap is provided with a mounting port. The mounting bolt can movably pass through the mounting port and be threaded onto the mounting plate.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0022] 1. Based on the fact that the shell has a penile accommodating cavity and at least two scrotal accommodating cavities, with the two scrotal accommodating cavities located on opposite sides of the penile accommodating cavity, and the penile accommodating cavity and the two scrotal accommodating cavities being separated from each other; this arrangement can achieve physical independent partitioning of the penis and scrotum, and the two scrotums, avoiding mutual temperature interference between different parts, providing a structural basis for partitioned temperature control, and thus achieving targeted physiotherapy. The temperature can be adjusted separately according to the different physiotherapy temperature requirements of the penis and scrotum, and the two scrotums, solving the problems of traditional devices being unable to partition temperature control and having poor physiotherapy targeting, and improving the accuracy and professionalism of physiotherapy.
[0023] 2. The heat-conducting films are respectively applied to the inner walls of the penile and scrotal cavities, forming uniform temperature chambers with the corresponding cavity walls. Each temperature regulating mechanism is located within the housing and connected to one of these uniform temperature chambers. This arrangement ensures uniform temperature distribution within each independent cavity, preventing discomfort caused by excessively high or low temperatures in certain areas. Furthermore, the zoned temperature regulating mechanisms allow for independent temperature control of each cavity, precisely matching the therapeutic temperature requirements of different areas, further enhancing targeted therapeutic effects and improving user comfort.
[0024] 3. Each of the temperature sensing modules is respectively located in the penile cavity and the two scrotal cavities, and is used to sense temperature changes within the corresponding cavity. The control module is electrically connected to each of the temperature sensing modules and each of the temperature regulating mechanisms, and is used to control the working state of the corresponding temperature regulating mechanism according to the signals from the temperature sensing modules. This arrangement enables real-time monitoring and automatic adjustment of the temperature of each cavity. When the temperature of a certain cavity deviates from the preset therapeutic temperature, the control module can quickly respond and adjust the corresponding temperature regulating mechanism to ensure that each part is always at a suitable therapeutic temperature, achieving precise constant temperature control. This not only ensures the effectiveness of targeted therapy but also eliminates the need for manual adjustment, improving the convenience and intelligence of the device. Attached Figure Description
[0025] Figure 1This is a schematic diagram of a constant temperature control device for the scrotum according to the present invention;
[0026] Figure 2 for Figure 1 Enlarged view of point A in the middle;
[0027] Figure 3 This is a cross-sectional structural diagram of the present invention;
[0028] Figure 4 for Figure 3 Enlarged view of point B in the middle;
[0029] Figure 5 for Figure 3 Enlarged view of point C in the middle.
[0030] In the diagram: 1. Shell; 101. Penis cavity; 102. Scrotum cavity; 2. Heat-conducting film; 3. Temperature uniformity cavity; 4. Temperature regulation mechanism; 401. Semiconductor cooling block; 4011. Cooling end; 4012. Heat dissipation end; 402. Heat conduction pipe; 403. Exhaust fan; 5. Temperature sensing module; 6. Control module; 7. Elastic heat insulation plate; 8. Power supply module; 9. Wireless communication module; 10. Adjustable strap; 1001. Mounting port; 11. Connecting mechanism; 1101. Mounting plate; 1102. Mounting bolt. Detailed Implementation
[0031] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.
[0032] It should be noted that when an element is described as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is described as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementations.
[0033] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0034] See Figures 1-5A preferred embodiment of the present invention provides a constant temperature control device for the scrotum, comprising: a housing 1, multiple heat-conducting films 2, multiple temperature adjustment mechanisms 4, multiple temperature sensing modules 5, and a control module 6.
[0035] The housing 1 has a penis receiving cavity 101 and at least two scrotum receiving cavities 102, the two scrotum receiving cavities 102 being located on opposite sides of the penis receiving cavity 101, and the penis receiving cavity 101 and the two scrotum receiving cavities 102 being separated from each other.
[0036] Each of the heat-conducting films 2 covers the inner wall surface of the penis receiving cavity 101 and the scrotum receiving cavity 102, and forms a uniform temperature cavity 3 with the cavity wall of the corresponding cavity;
[0037] Each of the temperature regulating mechanisms 4 is respectively disposed in the housing 1 and is connected to one of the temperature uniform chambers 3;
[0038] Each of the temperature sensing modules 5 is respectively disposed in the penis receiving cavity 101 and the two scrotum receiving cavities 102, and is used to sense the temperature changes in the corresponding receiving cavity;
[0039] The control module 6 is electrically connected to each of the temperature sensing modules 5 and each of the temperature regulating mechanisms 4 respectively. The control module 6 is used to determine whether it is necessary to control the working state of the temperature regulating mechanism 4 that is connected to the temperature uniform cavity 3 in the cavity corresponding to the temperature sensing module 5 based on the signal of the temperature sensing module 5.
[0040] The working principle of this invention is as follows: During operation, the user places the penis and both scrotums into the penis receiving cavity 101 and the two scrotum receiving cavities 102 of the housing 1, respectively. The structure of these three separate cavities provides a basis for zoned temperature control and targeted physiotherapy. The housing 1 provides installation space for each component and also serves a protective function. Each heat-conducting film 2 covers the inner wall of its corresponding cavity, forming a uniform temperature cavity 3 with the cavity wall, which allows for uniform temperature diffusion, ensuring the comfort and effectiveness of the physiotherapy. Each temperature sensing module 5 is located in one of the three receiving cavities, continuously sensing the real-time temperature and transmitting the signal to the control module 6. The control module 6 is electrically connected to each temperature sensing module 5 and the temperature adjustment mechanism 4. After receiving the signal, it compares the real-time temperature with the preset physiotherapy temperature to determine whether adjustment is needed. When the temperature of a certain receiving cavity deviates from the preset value (below 38℃ or above 42℃), the control module 6 controls the temperature adjustment mechanism 4 connected to that uniform temperature cavity 3 to bring the temperature back to the preset range (i.e., between 38-42℃) through heating or cooling; when the temperature reaches the target, the adjustment mechanism is in standby mode. Because each component has its own independent cavity, the control module 6 can achieve independent temperature control for the penis and scrotum, as well as for both sides of the scrotum, to meet the targeted physiotherapy needs of different areas. The components work together to achieve precise temperature control and targeted physiotherapy, making it easy to operate and highly practical.
[0041] Among them, the control module 6 can be a single-chip microcomputer, microcomputer or PLC; the thermal conductive film 2 can be made of graphene thermal conductive material.
[0042] Obviously, based on the fact that the shell 1 has a penis receiving cavity 101 and at least two scrotum receiving cavities 102, with the two scrotum receiving cavities 102 located on opposite sides of the penis receiving cavity 101 and the penis receiving cavity 101 and the two scrotum receiving cavities 102 being separated from each other, this arrangement can achieve physical independent partitioning of the penis and scrotum, and the two sides of the scrotum, avoiding mutual temperature interference between different parts, providing a structural basis for partitioned temperature control, and thus achieving targeted physiotherapy. The temperature can be adjusted separately according to the different physiotherapy temperature requirements of the penis and scrotum, and the two sides of the scrotum, solving the problems of traditional devices being unable to partition temperature control and having poor physiotherapy targeting, and improving the accuracy and professionalism of physiotherapy.
[0043] The heat-conducting films 2 are respectively covered on the inner walls of the penile cavity 101 and the scrotum cavity 102, forming a uniform temperature cavity 3 with the cavity walls of the corresponding cavities. Each temperature regulating mechanism 4 is located in the housing 1 and is connected to one of the uniform temperature cavities 3. This arrangement allows the temperature delivered by the temperature regulating mechanism 4 to diffuse evenly through the uniform temperature cavity 3, ensuring a balanced temperature distribution within each independent cavity and preventing discomfort caused by excessively high or low temperatures in certain areas. Furthermore, the zoned temperature regulating mechanisms 4 allow for independent temperature control of each cavity, precisely matching the therapeutic temperature requirements of different areas, further enhancing the targeted therapeutic effect and improving user comfort.
[0044] Each of the temperature sensing modules 5 is respectively located in the penile cavity 101 and the two scrotal cavity 102, and is used to sense temperature changes within the corresponding cavity. The control module 6 is electrically connected to each of the temperature sensing modules 5 and each of the temperature regulating mechanisms 4, and is used to control the working state of the corresponding temperature regulating mechanism 4 according to the signals from the temperature sensing modules 5. This arrangement enables real-time monitoring and automatic control of the temperature of each cavity. When the temperature of a certain cavity deviates from the preset therapeutic temperature, the control module 6 can quickly respond and adjust the corresponding temperature regulating mechanism 4 to ensure that each part is always at a suitable therapeutic temperature, achieving precise constant temperature control. This not only ensures the effectiveness of targeted therapy but also eliminates the need for manual adjustment, improving the convenience and intelligence of the device.
[0045] Preferably, the shell 1 is a flexible bionic shell that can conform to the physiological curvature of the scrotum. The flexibility of the flexible bionic shell 1 can adapt to the different scrotal shapes of different users, avoiding the pressure and discomfort caused by the rigid shell 1, and improving the comfort of wearing the device. Its conforming design to the physiological curvature of the scrotum allows the heat-conducting film 2 to fit more tightly to the scrotal surface, reducing heat conduction gaps, improving temperature transfer efficiency, and ensuring that the constant temperature control effect is quickly applied to the scrotum. At the same time, the conforming design can further ensure the sealing of each cavity, avoid temperature interference between different cavities, better cooperate with the zoned temperature control structure, enhance the effect of targeted physiotherapy, and make the physiotherapy effect more direct and efficient.
[0046] Preferably, the constant temperature control device for the scrotum further includes multiple elastic heat insulation plates 7, with the penile cavity 101 and the two scrotal cavities 102 separated by one of the elastic heat insulation plates 7. The heat insulation properties of the elastic heat insulation plates 7 effectively block heat transfer between the penile cavity 101 and the two scrotal cavities 102, completely preventing temperature interference between the cavities and providing reliable heat insulation for zoned temperature control. This ensures that each cavity maintains an independent preset therapeutic temperature, enhancing the precision of targeted therapy. Its elastic properties can adapt to the deformation of the flexible bionic shell 1, conforming to the physiological shape of different users, avoiding the pressure caused by the separation structure, improving wearing comfort, and buffering minor impacts during wear. This provides a certain degree of protection for each cavity, ensuring the stability of zoned temperature control and further improving the user experience of the device. The elastic heat insulation plates 7 can be made of silicone-based heat insulation composite material or flexible aerogel felt material.
[0047] Preferably, the temperature regulating mechanism 4 includes a semiconductor cooling block 401, at least two heat conduction tubes 402, and at least two exhaust fans 403; the two heat conduction tubes 402 extend from the external environment of the housing 1 into the same temperature uniform cavity 3; the semiconductor cooling block 401 is disposed between the two heat conduction tubes 402, and the cooling end 4011 and the heat dissipation end 4012 of the semiconductor cooling block 401 are respectively located in one of the heat conduction tubes 402; the two exhaust fans 403 are respectively disposed in one of the heat conduction tubes 402, and are used to blow the cold air from the cooling end 4011 of the semiconductor cooling block 401 in the heat conduction tube 402 into the temperature uniform cavity 3 or blow the hot air from the heat dissipation end 4012 into the temperature uniform cavity 3. The semiconductor cooling block 401 has dual functions of cooling and heating. With the heat guiding pipes 402 corresponding to its cooling end 4011 and heat dissipation end 4012 respectively, it can achieve bidirectional temperature regulation of the uniform temperature cavity 3. It can meet the heating requirements of scrotum physiotherapy and also achieve cooling regulation, adapting to the temperature requirements of different physiotherapy scenarios. The heat guiding pipes 402 can accurately guide the transmission of cold or hot air, reduce heat loss, and ensure the high efficiency of temperature regulation. At the same time, it isolates the semiconductor cooling block 401 from the physiotherapy area inside the shell 1 to avoid direct contact with the human body and causing discomfort. The exhaust fan 403 can accelerate the delivery speed of cold or hot air, quickly adjust the temperature of the uniform temperature cavity 3, and make the corresponding cavity quickly reach the preset physiotherapy temperature. With the device's zoned temperature control structure, it can achieve independent, fast, and precise temperature control of each cavity, further enhancing the targeted physiotherapy effect. Meanwhile, the semiconductor cooling block 401 is small in size and low in energy consumption, adapting to the overall design of the device and improving the device's practicality and portability. Among them, the semiconductor cooling block 401 can be a flexible thin semiconductor cooling block 401 or a low-power semiconductor cooling block 401 of model TEC1-12703; the heat conduction tube 402 can be an aluminum heat dissipation heat conduction tube, a copper heat conduction tube or a medical-grade silicone heat conduction sleeve.
[0048] Preferably, the exhaust fan 403 is a bidirectional exhaust fan. The bidirectional exhaust fan can achieve forward and reverse bidirectional airflow, eliminating the need for separate exhaust fans 403 for the cooling end 4011 and the heat dissipation end 4012 of the semiconductor cooling block 401. This simplifies the overall structure of the temperature regulation mechanism 4, reduces the number of parts, lowers the manufacturing cost, and reduces the size of the mechanism, making it more compact and easier to wear. Its bidirectional airflow function can precisely match the bidirectional temperature control requirements of the semiconductor cooling block 401. When cooling is needed, the bidirectional exhaust fan rotates forward, quickly blowing the cold air generated by the cooling end 4011 into the temperature uniform chamber 3. The device achieves temperature control; when heating is required, the bidirectional exhaust fan rotates in reverse, efficiently delivering the hot air generated by the heat dissipation end 4012 into the temperature uniform chamber 3, achieving temperature control with a fast response speed, ensuring that the temperature uniform chamber 3 quickly reaches the preset physiotherapy temperature. Simultaneously, the bidirectional exhaust fan can flexibly adjust the blowing force, working in conjunction with the heat conduction tube 402 to reduce heat loss and ensure uniform temperature transfer. Furthermore, combined with the device's zoned temperature control structure, it achieves independent and precise bidirectional temperature adjustment for each chamber, enhancing targeted physiotherapy effects and improving the device's intelligence and practicality. The bidirectional exhaust fan can be an RFA1504U miniature ultra-low power bidirectional exhaust fan, a JC3010B12L-1 miniature silent bidirectional exhaust fan, or a SUNONKD0502PHB2-8 miniature bidirectional exhaust fan.
[0049] Preferably, the thermostatic control device for the scrotum further includes a power supply module 8, which supplies power to the temperature sensing module 5, the temperature regulating mechanism 4, and the control module 6. The power supply module 8 provides stable and continuous power support to each core component of the device, ensuring that the temperature sensing module 5 can accurately sense the temperature of each cavity in real time, the control module 6 can normally receive signals and issue control commands, and the temperature regulating mechanism 4 can stably achieve bidirectional temperature control. This ensures the stable operation of the overall device function and provides reliable power for zoned temperature control and targeted physiotherapy. No external fixed power supply is required, enabling portable use of the device. Users can perform physiotherapy anytime, anywhere, breaking the limitations of usage scenarios and improving the practicality and flexibility of the device.
[0050] Preferably, the constant temperature control device for the scrotum further includes a wireless communication module 9, which is electrically connected to the control module 6, the temperature adjustment mechanism 4, and the temperature sensing module 5. The wireless communication module 9 is used to connect to a communication device. The wireless communication module 9 enables wireless connection between the device and a communication device (mobile phone, tablet, etc.), eliminating the need for manual operation of the device itself. Users can remotely view the real-time temperature data of each cavity through the communication device, clearly understanding the treatment status and improving ease of use. Simultaneously, the working status of the temperature adjustment mechanism 4 and the preset treatment temperature of each cavity can be remotely adjusted through the communication device, accurately matching targeted treatment needs and further optimizing the operation experience of zoned temperature control, avoiding the inconvenience of manual adjustment while wearing the device. Furthermore, the wireless communication module 9 can transmit the temperature data collected by the temperature sensing module 5 and the working parameters of the temperature adjustment mechanism 4 to the communication device in real time, facilitating users to record the treatment process, track the treatment effect, and optimize the treatment plan based on data feedback, enhancing the professionalism of targeted treatment. The wireless communication module 9 can be a Bluetooth BLE module (such as nRF52832), a WiFi module (such as ESP8266), or a near field communication (NFC) module (such as PN532).
[0051] Preferably, the temperature sensing module 5 is made of an NTC temperature sensor. The NTC temperature sensor has extremely high temperature sensitivity, accurately capturing minute temperature changes inside the penile cavity 101 and the two scrotal cavity 102, providing real-time, accurate temperature data to the control module 6. This provides precise data support for zoned temperature control, ensuring that the control module 6 can promptly and accurately judge temperature deviations and adjust the corresponding temperature adjustment mechanism 4, guaranteeing the accuracy of targeted physiotherapy temperature. Its small size and simple structure allow for flexible embedding into the narrow spaces of each cavity without occupying excessive installation space. It adapts to the overall compact design of the device and does not affect the adhesion and temperature transmission of the heat-conducting film 2, thus not interfering with the physiotherapy effect. Its fast temperature response speed allows for rapid transmission of the sensed temperature signal to the control module 6, shortening the response time for temperature adjustment and enabling each cavity to quickly return to the preset physiotherapy temperature, further enhancing the timeliness and accuracy of zoned temperature control, and improving the device's intelligence and physiotherapy effect. In addition to using an NTC temperature sensor, the temperature sensing module 5 can also use a thermistor-type PTC temperature sensor or a thermistor-type PTC temperature sensor.
[0052] Preferably, the thermostatic control device for the scrotum further includes an adjusting strap 10, the two ends of which are respectively connected to the outer walls of opposite sides of the housing 1. The adjusting strap 10 enables convenient wearing and stable fixation of the device. Users can flexibly adjust the length of the strap 10 according to their waist circumference and body shape, so that the housing 1 fits tightly against the physiological curvature of the scrotum, preventing the device from shifting or falling off during physiotherapy. This ensures that the heat-conducting film 2 is always in close contact with the scrotal surface, guaranteeing temperature transfer efficiency and thermostatic control effect, and providing a stable wearing basis for zoned temperature control and targeted physiotherapy. The adjusting strap 10 can be made of soft and breathable medical-grade fabric, which is comfortable to wear without pressure, does not affect normal human activities, and does not interfere with the flexible deformation of the housing 1. This ensures both wearing stability and comfort, and also helps to ensure the sealing of each cavity, avoiding temperature interference between different cavities, further enhancing the effect of zoned temperature control and targeted physiotherapy, and improving the practicality and user experience of the device.
[0053] Preferably, the constant temperature control device for the scrotum further includes at least two connecting mechanisms 11. Each end of the adjusting strap 10 is detachably connected to the outer wall of the housing 1 by one of the connecting mechanisms 11. The connecting mechanism 11 includes a mounting plate 1101 and mounting bolts 1102. The mounting plate 1101 is disposed on the outer wall of the housing 1. Each end of the adjusting strap 10 is provided with a mounting port 1001. The exhaust fan 403112 can movably pass through the mounting port 1001 and be threadedly connected to the mounting plate 1101. The connecting mechanism 11 is fixed to the outer wall of the housing 1 via the mounting plate 1101, and the mounting bolt 1102 passes through the mounting port 1001 of the adjusting strap 10 and is threadedly connected to the mounting plate 1101. This structure enables a stable and detachable connection between the adjusting strap 10 and the housing 1, ensuring reliable connection and effectively preventing the adjusting strap 10 from falling off the housing 1 during physiotherapy. This ensures stable wearing of the device and provides a solid guarantee for zoned temperature control and targeted physiotherapy. Its detachable design allows for flexible removal of the adjusting strap 10, facilitating cleaning and replacement of the strap, preventing bacterial growth from long-term use, and ensuring hygiene and safety during physiotherapy. At the same time, adjusting straps 10 of different lengths and materials can be replaced according to usage needs to adapt to different user body shapes and wearing requirements. The cooperation structure between the mounting plate 1101 and the mounting bolt 1102 is simple and easy to install. The installation and removal of the strap can be completed simply by turning the mounting bolt 1102, making the operation easy and improving the convenience of use.
[0054] In the description of this specification, references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of those different embodiments or examples.
[0055] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.
[0056] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various variations or substitutions within the technical scope disclosed in this application, and these should all be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A constant temperature control device for the scrotum, characterized in that, include: The housing (1) has a penis receiving cavity (101) and at least two scrotum receiving cavities (102), the two scrotum receiving cavities (102) being located on opposite sides of the penis receiving cavity (101), and the penis receiving cavity (101) and the two scrotum receiving cavities (102) being separated from each other; Multiple thermal conductive films (2) are respectively covered on the inner wall surface of the penile cavity (101) and the scrotum cavity (102), and form a uniform temperature cavity (3) with the cavity wall of the corresponding cavity. Multiple temperature regulating mechanisms (4) are provided in the housing (1) and connected to one of the temperature uniform chambers (3). Multiple temperature sensing modules (5) are provided in the penile cavity (101) and the two scrotal cavities (102), respectively, and are used to sense the temperature changes in the corresponding cavity; Control module (6); The control module (6) is electrically connected to each of the temperature sensing modules (5) and each of the temperature regulating mechanisms (4). The control module (6) is used to determine whether it is necessary to control the working state of the temperature regulating mechanism (4) that is connected to the temperature uniform cavity (3) in the cavity corresponding to the temperature sensing module (5) based on the signal of the temperature sensing module (5).
2. The constant temperature control device for the scrotum according to claim 1, characterized in that, The shell (1) is a flexible bionic shell that can conform to the physiological curvature of the scrotum.
3. The constant temperature control device for the scrotum according to claim 1, characterized in that, The thermostatic control device for the scrotum also includes multiple elastic heat insulation plates (7), and the penis cavity (101) and the two scrotum cavities (102) are separated by one of the elastic heat insulation plates (7).
4. A constant temperature control device for the scrotum according to claim 1, characterized in that, The temperature regulation mechanism (4) includes a semiconductor cooling block (401), at least two heat conduction tubes (402), and at least two exhaust fans (403); the two heat conduction tubes (402) are respectively inserted from the external environment of the housing (1) into the same temperature uniform cavity (3); the semiconductor cooling block (401) is disposed between the two heat conduction tubes (402), and the cooling end (4011) and the heat dissipation end (4012) of the semiconductor cooling block (401) are respectively located in one of the heat conduction tubes (402); the two exhaust fans (403) are respectively disposed in one of the heat conduction tubes (402), and are used to blow the cold air from the cooling end (4011) of the semiconductor cooling block (401) in the heat conduction tube (402) into the temperature uniform cavity (3) or blow the hot air from the heat dissipation end (4012) into the temperature uniform cavity (3).
5. A constant temperature control device for the scrotum according to claim 4, characterized in that, The exhaust fan (403) is a bidirectional exhaust fan.
6. A constant temperature control device for the scrotum according to claim 1, characterized in that, The thermostatic control device for the scrotum further includes a power supply module (8), which supplies power to the temperature sensing module (5), the temperature regulating mechanism (4) and the control module (6).
7. A constant temperature control device for the scrotum according to claim 1, characterized in that, The thermostatic control device for the scrotum further includes a wireless communication module (9), which is electrically connected to the control module (6), the temperature adjustment mechanism (4), and the temperature sensing module (5). The wireless communication module (9) is used to connect to a communication device.
8. A constant temperature control device for the scrotum according to claim 1, characterized in that, The temperature sensing module (5) is made of an NTC temperature sensor.
9. A constant temperature control device for the scrotum according to claim 1, characterized in that, The thermostatic control device for the scrotum also includes an adjustment strap (10), the two ends of which are respectively connected to the outer walls of opposite sides of the housing (1).
10. A constant temperature control device for the scrotum according to claim 9, characterized in that, The thermostatic control device for the scrotum further includes at least two connecting mechanisms (11). The two ends of the adjusting strap (10) are respectively connected to one of the connecting mechanisms (11) detachably to the outer wall of the housing (1). The connecting mechanism (11) includes a mounting plate (1101) and a mounting bolt (1102). The mounting plate (1101) is provided on the outer wall of the housing (1). The two ends of the adjusting strap (10) are respectively provided with mounting holes (1001). The mounting bolt (1102) can be movably passed through the mounting hole (1001) and threadedly connected to the mounting plate (1101).