Light therapy device for treating soreness

By using a magnetic adsorption structure to connect the wearable main body and the control box in the convenient phototherapy device system, the problem of unstable connection is solved, and higher connection reliability and maintenance convenience are achieved.

CN224540809UActive Publication Date: 2026-07-24SHENZHEN HUA KRYPTON INNOVATION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN HUA KRYPTON INNOVATION TECHNOLOGY CO LTD
Filing Date
2025-04-28
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

In existing portable phototherapy devices, the wearable main unit and control box are connected via a plug-in or snap-fit ​​structure, resulting in unstable connections and increasing the risk of use.

Method used

A magnetic adsorption structure is adopted, with a first adsorption structure set on the side of the light therapy structure facing away from the treatment object, and a second adsorption structure set on the control box, so that the wearable main body and the control box can be detachably and fixedly connected.

Benefits of technology

It improves the reliability and stability of the connection between the wearable device and the control box, reduces usage risks, and facilitates repair, replacement or upgrade, thereby reducing maintenance costs.

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Abstract

The utility model discloses a kind of light therapy instrument convenient systems for treating soreness. Light therapy instrument convenient system for treating soreness includes wearable main body and control box. Wearable main body includes light treatment structure and first adsorption structure. Light treatment structure is used to attach on the surface of treatment object, and the side of light treatment structure away from treatment object is provided with first adsorption structure. Control box includes box body, control circuit board and second adsorption structure. Box body is provided with accommodating cavity, control circuit board is arranged in accommodating cavity, and is connected with light treatment structure. Second adsorption structure is arranged on box body, and is magnetically adsorbed with first adsorption structure, so that wearable main body and control box are detachably fixedly connected.
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Description

Technical Field

[0001] This utility model relates to the technical field of medical devices, and in particular to a convenient phototherapy system for treating aches and pains. Background Technology

[0002] With the progress of the times and the development of technology, phototherapy devices are becoming increasingly popular in the treatment of muscle soreness, joint pain and other aches and pains.

[0003] However, in existing portable phototherapy systems, the wearable main unit and control box are connected together via a plug-in or snap-fit ​​structure, which can easily lead to unstable connection between the wearable main unit and the control box, and increase the risks during use of the portable phototherapy system. Utility Model Content

[0004] In view of this, one objective of this utility model is to provide a convenient phototherapy system for treating aches and pains, in order to solve the technical problem that in existing convenient phototherapy systems, the wearable main body and the control box are connected together by a plug-in structure or a snap-fit ​​structure, which easily leads to unstable connection between the wearable main body and the control box and increases the risk of using the convenient phototherapy system.

[0005] This utility model provides a convenient phototherapy system for treating aches and pains, including a wearable main body and a control box. The wearable main body includes a phototherapy structure and a first adsorption structure. The phototherapy structure is attached to the surface of the treatment object, and the first adsorption structure is disposed on the side of the phototherapy structure facing away from the treatment object. The control box includes a housing, a control circuit board, and a second adsorption structure. The housing has a receiving cavity, and the control circuit board is disposed in the receiving cavity and connected to the phototherapy structure. The second adsorption structure is disposed on the housing and magnetically adsorbed with the first adsorption structure, so that the wearable main body and the control box are detachably and fixedly connected.

[0006] In some implementations, the first adsorption structure is configured as a magnetizable metal element, and the second adsorption structure is configured as a magnetic element; or, the first adsorption structure is configured as a magnetic element, and the second adsorption structure is configured as a magnetizable metal element; or, both the first adsorption structure and the second adsorption structure are configured as magnetic elements, and the magnetic properties of the first adsorption structure and the second adsorption structure are opposite; or, the first adsorption structure is configured as a magnetic element, and the second adsorption structure is configured as an electromagnet.

[0007] In some implementations, the portable phototherapy system for treating aches and pains also includes a connecting cable, one end of which is connected to the phototherapy structure and the other end of which is connected to the control circuit board.

[0008] In some implementations, the wearable main body is configured as an ear-worn structure, and two phototherapy structures are configured as an integrated structure, or as separate structures. The connecting cable includes a first cable and two second cables. One end of the first cable is connected to the control circuit board, and the other end of the first cable is connected to the two second cables. The two phototherapy structures are respectively connected to the two second cables. Alternatively, the connecting cable includes a first cable and a second cable. The two ends of the first cable are respectively connected to the control circuit board and one of the phototherapy structures, and the two ends of the second cable are respectively connected to the two phototherapy structures.

[0009] In some implementations, the control box further includes a first communication module disposed on the control circuit board, and the phototherapy structure further includes a second communication module, wherein the first communication module is used to communicate with the second communication module.

[0010] In some implementations, the control box further includes a first communication module disposed on the control circuit board, the first communication module being used for communication connection with external devices.

[0011] In some implementations, the phototherapy structure includes a housing and a light source module. The housing has a mounting cavity, and the light source module is disposed within the mounting cavity. The light source module is configured as at least one of a red light source, a near-infrared light source, and a blue light source. The backlight surface of the light source module is provided with heat dissipation fins. And / or, the housing has a plurality of heat dissipation holes that communicate with the mounting cavity and the outside air.

[0012] In some implementations, the housing includes a shell, a first end cap, and a second end cap. The two ends of the shell are respectively connected to the first end cap and the second end cap and enclose to form the mounting cavity. The first end cap is located on the light source path of the light source module and is configured as a light-transmitting structure. The second end cap is provided with a plurality of heat dissipation holes.

[0013] In some implementations, a heat dissipation channel is formed between the second end cap and the housing, one end of the heat dissipation channel is connected to a plurality of heat dissipation holes, and the other end of the heat dissipation channel is connected to the outside air.

[0014] In some implementations, the control box further includes an energy storage device connected to the control circuit board.

[0015] The portable phototherapy system for treating aches and pains provided in this embodiment of the invention features a first adsorption structure on the side of the phototherapy structure facing away from the treatment object, and a second adsorption structure mounted on the box body and magnetically adsorbed to the first adsorption structure. This allows the wearable main body and the control box to be detachably and fixedly connected. On the one hand, the magnetic adsorption connection improves the reliability and stability of the connection between the wearable main body and the control box, as well as the safety of the portable phototherapy system. On the other hand, the control box, as a detachable component, facilitates maintenance, replacement, or upgrades, reducing maintenance costs and making it easy to disassemble and carry. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the structure of a convenient phototherapy system for treating aches and pains provided in an embodiment of this utility model.

[0018] Figure 2 yes Figure 1 An exploded view of the control box of the portable phototherapy system in the image.

[0019] Figure 3 yes Figure 1 An exploded view of the wearable main body of the phototherapy device's convenient system.

[0020] Figure 4 yes Figure 1 A cross-sectional view along line AA of the adapter plate of the convenient phototherapy system.

[0021] Figure 5 yes Figure 2 An enlarged view of the second end cap of the portable phototherapy device system.

[0022] Key reference numerals: Phototherapy device portable system - 100; Heat dissipation channel - 1001; Wearable main body - 10; Phototherapy structure - 11; Outer shell - 110; Mounting cavity - 1101; Heat dissipation hole - 1102; Housing - 1111; First end cap - 1112; Second end cap - 1113; Light source module - 112; Heat dissipation fins - 114; First adsorption structure - 12; Second communication module - 13; Headband - 15; Hanger - 151; Connecting bracket - 152; Control box - 20; Box body - 21; Receiving cavity - 2101; Limiting device Groove-2102; Base plate-211; Limiting boss-2111; Mounting post-2112; Positioning block-2113; Cover box-212; Mounting hole-2121; Clearance hole-2122; Positioning groove-2123; Locking component-213; Decorative panel-215; Control circuit board-22; Through hole-2201; Second adsorption structure-23; First communication module-24; Energy storage component-25; Prompt structure-26; Function button-27; Expansion interface-28; Connecting cable-30; First cable-31; Second cable-32.

[0023] The following detailed description, in conjunction with the accompanying drawings, will further illustrate this utility model. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.

[0025] It is understood that the terminology in the specification, claims, and accompanying drawings of this utility model is for describing specific embodiments only and is not intended to limit the utility model. The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this utility model are used to distinguish different objects, not to describe a specific order. Unless the context clearly states otherwise, the singular forms "a" and "described" are also intended to include the plural forms. The term "comprising," and any variations thereof, are intended to cover non-exclusive inclusion. Furthermore, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. The purpose of providing the following specific embodiments is to facilitate a clearer and more thorough understanding of the disclosure of this utility model, wherein terms indicating direction such as up, down, left, and right refer only to the position of the illustrated structure in the corresponding drawings. In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "connected," "linked," and "set on" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0026] The following description describes preferred embodiments of the present invention; however, the foregoing description is intended to illustrate the general principles of the present invention and is not intended to limit the scope of the present invention. The scope of protection of the present invention shall be determined by the appended claims.

[0027] The basic concepts involved in the embodiments of this utility model are briefly introduced below.

[0028] The term "communication connection" refers to a channel or link established between different devices, systems, or networks for data transmission and exchange.

[0029] The term "energy storage device" refers to a device or equipment that stores energy through a medium or device and releases it when needed.

[0030] The term "portable phototherapy system for treating aches and pains" refers to a portable medical or health electronic device that can be worn directly or indirectly on the body of the patient, and with software support, can sense, record, analyze, regulate, intervene in, or even treat diseases or maintain a healthy state.

[0031] Please refer to the following: Figures 1 to 3 , Figure 1 The diagram shown is a structural schematic of a portable phototherapy system 100 for treating aches and pains provided in an embodiment of this utility model. Figure 2 yes Figure 1Exploded view of the control box 20 of the portable phototherapy system 100; Figure 3 yes Figure 1 An exploded view of the wearable main body 10 of the portable phototherapy system 100. The portable phototherapy system 100 includes the wearable main body 10 and a control box 20. The wearable main body 10 includes a phototherapy structure 11 and a first adsorption structure 12. The phototherapy structure 11 is used to attach to the surface of the treatment object, and the first adsorption structure 12 is provided on the side of the phototherapy structure 11 facing away from the treatment object. The control box 20 includes a box body 21, a control circuit board 22, and a second adsorption structure 23. The box body 21 is provided with a receiving cavity 2101, and the control circuit board 22 is disposed in the receiving cavity 2101 and connected to the phototherapy structure 11. The second adsorption structure 23 is disposed on the box body 21 and magnetically adsorbed with the first adsorption structure 12, so that the wearable main body 10 and the control box 20 are detachably fixedly connected.

[0032] The portable phototherapy system 100 provided in this embodiment of the present invention is based on a first adsorption structure 12 provided on the side of the phototherapy structure 11 facing away from the treatment object, and a second adsorption structure 23 provided on the box body 21 and magnetically adsorbed with the first adsorption structure 12, so that the wearable main body 10 and the control box 20 are detachably and fixedly connected. On the one hand, the magnetic adsorption connection method can improve the reliability and stability of the connection between the wearable main body 10 and the control box 20, and improve the safety of use of the portable phototherapy system 100; on the other hand, the control box 20 is a detachable component, which facilitates maintenance, replacement or upgrade operations, reduces maintenance costs, and is convenient to disassemble and carry.

[0033] The portable phototherapy system 100 can be configured as, but is not limited to, an ear-worn structure, a headband structure, a wristband structure, a wearable medical garment structure, or a patch structure. Understandably, to enable those skilled in the art to better understand the portable phototherapy system 100, an ear-worn structure will be used as an example for detailed explanation. It should be noted that the ear-worn structure of the portable phototherapy system 100 is for illustrative purposes only, and this utility model does not impose specific limitations. For example, the product type of the portable phototherapy system 100 can also be set according to actual needs.

[0034] It should be noted that, Figure 1 The purpose is merely to illustrate the arrangement between the wearable main body 10 and the control box 20, and is not to make specific limitations on the connection positions, connection relationships and specific structures of each component. Figure 1 This illustration merely shows the structure of the portable phototherapy system 100 according to an embodiment of the present invention and does not constitute a specific limitation on the portable phototherapy system 100. In other embodiments of the present invention, the portable phototherapy system 100 may include more than Figure 1The portable light therapy device system 100 may include, but is not limited to, sensors, displays, etc., more or fewer components, or combinations of certain components, or different components. Sensors are used to monitor the operating status of the wearable main unit 10. The displays are used to show data and facilitate user interaction, thereby enhancing the user experience and ease of use of the portable light therapy device system 100.

[0035] In this embodiment, for example, the first adsorption structure 12 is configured as a magnetizable metal component, and the second adsorption structure 23 is configured as a magnetic component. The magnetizable metal component is made of a magnetizable metal material. Magnetizable metal materials include, but are not limited to, iron, cobalt, nickel, cast steel, silicon steel, etc. The magnetic component is made of a magnetic material. Thus, when the control box 20 is mounted on the phototherapy structure 11 such that the second adsorption structure 23 is close to the first adsorption structure 12, the second adsorption structure 23 magnetizes the first adsorption structure 12 and is fixedly connected to the first adsorption structure 12 by magnetic adsorption.

[0036] Of course, in some embodiments, the first adsorption structure 12 is configured as a magnetic element and the second adsorption structure 23 is configured as a magnetizable metal element; or, both the first adsorption structure 12 and the second adsorption structure 23 are configured as magnetic elements, and the magnetic properties of the first adsorption structure 12 and the second adsorption structure 23 are opposite.

[0037] In some other embodiments, the first adsorption structure 12 is configured as a magnetic element, and the second adsorption structure 23 is configured as an electromagnet. Specifically, the control box 20 also includes an energy storage element 25 disposed within the accommodating cavity 2101. The second adsorption structure 23 is electrically connected to the energy storage element 25. Thus, the second adsorption structure 23 is always electrically connected to the energy storage element 25, maintaining its magnetism and facilitating the magnetic attraction of the first adsorption structure 12 to the second adsorption structure 23. In some embodiments, the control circuit board 22 is connected to the energy storage element 25 and is used to control the conductive connection or disconnection of the second adsorption structure 23 and the energy storage element 25. When the control box 20 is needed, the second adsorption structure 23 is controlled to be conductively connected to the energy storage element 25 to make the second adsorption structure 23 magnetic, facilitating the adsorption connection between the first adsorption structure 12 and the second adsorption structure 23. When it is necessary to remove the control box 20, the control circuit board 22 controls the second adsorption structure 23 to disconnect from the energy storage component 25, so that the electrical connection between the second adsorption structure 23 and the energy storage component 25 is broken, and the magnetism of the second adsorption structure 23 disappears, thereby making it convenient to remove the control box 20 from the phototherapy structure 11.

[0038] In this embodiment, for example, the energy storage component 25 is connected to the control circuit board 22. The energy storage component 25 provides power to the control circuit board 22 to enable the operation of the functional components of the control box 20. The energy storage component 25 provides power to the electronic equipment. The energy storage component 25 includes, but is not limited to, at least one of a power battery, a fuel cell, or a supercapacitor. The power battery includes, but is not limited to, lithium-ion power batteries and nickel-metal hydride power batteries. The energy storage component 25 can be configured as a disposable energy storage structure or a rechargeable energy storage structure. The arrangement of the energy storage component 25 simplifies the connection wiring of the control box 20, resulting in a simple and compact structure.

[0039] Please refer to the following: Figure 3 and Figure 4 , Figure 4 yes Figure 1 A cross-sectional view along line AA of the adapter plate of the portable phototherapy device system 100. Exemplarily, in this embodiment, the housing 21 includes a base plate 211 and a cover 212. The cover 212 is detachably mounted on the base plate 211 and forms an accommodating cavity 2101 with the base plate 211. The second adsorption structure 23 is fixedly mounted on the base plate 211. Thus, on the one hand, the cover 212 is detachably connected to the base plate 211, facilitating the assembly, maintenance, and other operations of the control circuit board 22 and the second adsorption structure 23; on the other hand, by fixing the second adsorption structure 23 to the base plate 211, the problem of displacement of the second adsorption structure 23 relative to the housing 21 is avoided, improving the stability and reliability of the alignment connection between the second adsorption structure 23 and the first adsorption structure 12.

[0040] In some embodiments, the second adsorption structure 23 is disposed within the housing 21, thereby preventing the second adsorption structure 23 from slipping off the substrate 211 and preventing contamination and damage to the second adsorption structure 23 by the external environment. A limiting protrusion is provided on the side of the housing 21 facing the phototherapy structure 11. The limiting protrusion is provided with a limiting groove 2102 communicating with the accommodating cavity 2101. The limiting groove 2102 contains the second adsorption structure 23. Specifically, the substrate 211 protrudes outward on the side facing the phototherapy structure 11 to form the limiting groove 2102 accommodating the second adsorption structure 23. This improves the accuracy and reliability of the alignment and assembly between the second adsorption structure 23 and the housing 21, optimizes the spatial layout of the housing 21, enhances the overall compactness of the control box 20, and achieves product miniaturization.

[0041] In some other embodiments, the second adsorption structure 23 is at least partially exposed relative to the housing 21. Specifically, a through hole is provided on the substrate 211 at the position corresponding to the second adsorption structure 23, and the second adsorption structure 23 passes through the through hole. This shortens the distance between the second adsorption structure 23 and the first adsorption structure 12, and improves the stability and reliability of the adsorption connection between the first adsorption structure 12 and the second adsorption structure 23.

[0042] For example, in this embodiment, the second adsorption structure 23 is configured as a cylindrical structure. Of course, the second adsorption structure 23 can also be configured as, but is not limited to, a T-shaped structure, a prismatic structure, etc. It should be noted that the structure and configuration of the second adsorption structure 23 can be set according to actual conditions, and this embodiment of the present invention does not impose specific limitations.

[0043] In this embodiment, the housing 21, by way of example, further includes a locking member 213. A plurality of mounting posts 2112 are provided on the substrate 211. The housing 212 is provided with mounting holes 2121. The control circuit board 22 is provided with through holes 2201. The locking member 213 passes sequentially through the mounting holes 2121 and the through holes 2201, and is locked onto the mounting posts 2112, thereby achieving a detachable and fixed connection between the housing 212 and the substrate 211.

[0044] In some embodiments, a positioning block 2113 is further provided on the substrate 211. The positioning block 2113 is used to define the mounting position of the substrate 211 relative to the cover box 212, thereby improving the assembly efficiency and assembly yield of the substrate 211 and the cover box 212.

[0045] In some embodiments, the control box 20 further includes at least one prompting structure 26. Each prompting structure 26 is connected to the control circuit board 22 and is used to indicate the working status and treatment status of the control box 20 and / or the wearable main body 10. For example, the prompting structure 26 is used to indicate the treatment status of the wearable main body 10. The treatment status includes, but is not limited to, treatment mode, treatment intensity, etc. The working status of the control box 20 includes, but is not limited to, battery level, on / off status, etc. In this embodiment, the prompting structure 26 can be configured as an indicator light. In other embodiments, the prompting structure 26 can also be configured as, but is not limited to, a vibration structure or a speaker structure, etc.

[0046] In some embodiments, the control box 20 further includes at least one function button 27. The function button 27 can be, but is not limited to, a power button, a mode setting button, a treatment duration setting button, etc. Therefore, the cover is provided with clearance holes 2122 at the positions corresponding to the prompt structure 26 and the function button 27, thereby enabling the functional operation of the control box 20.

[0047] In some embodiments, the housing 21 further includes a decorative panel 215. The decorative panel 215 is disposed on the side of the housing facing away from the substrate 211 and covers the through hole 2201 and the clearance hole 2122, thereby improving the aesthetic appearance of the control box 20 and preventing external contaminants from entering the accommodating cavity 2101 and damaging the functional devices. A positioning groove 2123 is provided on the side of the housing facing away from the substrate 211. The decorative panel 215 is disposed in the positioning groove 2123. This improves the alignment and assembly efficiency and assembly yield of the decorative panel 215 and the housing. Exemplarily, in this embodiment, the decorative panel 215 is configured as a transparent structure. In some embodiments, the decorative panel 215 may also be configured as a display screen and integrated with the function button 27 and the prompt structure 26 into a single structure.

[0048] For example, in this embodiment, the portable phototherapy system 100 also includes a connecting cable 30. One end of the connecting cable 30 is connected to the phototherapy structure 11, and the other end is connected to the control circuit board 22. Thus, by transmitting data signals between the control box 20 and the wearable main body 10 via a physical cable, the stability, reliability, and efficiency of data signal transmission are improved, as is the security of data signal transmission, preventing remote eavesdropping or interception of signal data, and reducing the energy consumption of the portable phototherapy system 100.

[0049] Specifically, the connecting cable 30 includes a first cable 31 and two second cables 32. One end of the first cable 31 is connected to the control circuit board 22. The other end of the first cable 31 is connected to the two second cables 32. The wearable main body 10 is configured as an ear-worn structure. Two light therapy structures 11 are configured, each connected to one of the two second cables 32. The two light therapy structures 11 can be configured as an integrated structure or as separate structures. Thus, on the one hand, the two light therapy structures 11 can be controlled by a single control box 20, resulting in a simple structure and reduced costs; on the other hand, it facilitates unified maintenance and adjustment of the control box 20, reduces management and repair difficulties, avoids frequent switching of the light therapy device system 100, improves operational efficiency, and ensures the synchronization of the treatment work of the two light therapy structures 11, avoiding effect deviations caused by calibration differences of the independent control box 20 for each light therapy structure 11.

[0050] Exemplarily, in this embodiment, the wearable main body 10 also includes a headband 15, through which the two light therapy structures 11 are connected to form an integrated structure. In one embodiment, the two ends of the headband 15 are respectively connected to the two light therapy structures 11 by a mortise and tenon structure; or, they can be connected by pins. Specifically, the headband 15 includes two connecting brackets 152 and a pendant 151 connecting the two connecting brackets 152. The pendant 151 is configured with an arc-shaped structure to fit the head shape of the treatment subject. Of course, in some embodiments, the connecting brackets 152 can be omitted, that is, the two light therapy structures 11 are respectively connected to the two ends of the pendant 151.

[0051] It should be noted that the connection between the headband 15 and the two light therapy structures 11 can have various variations. As long as the connection is detachable and can securely fix the headband 15 and the two light therapy structures 11 without relative movement, it is acceptable and falls within the protection scope of this utility model. This utility model embodiment will not specify any particular form. In the above embodiments, the light therapy structure 11 on the left is used as an example. The light therapy structure 11 on the right can also adopt the same structure described above. The working principles of the two light therapy structures 11 are the same, and will not be repeated here. Of course, in some embodiments, the two light therapy structures 11 can also have at least some structural configurations that are different; this utility model embodiment will not specify any particular form.

[0052] Of course, in some embodiments, the connecting cable 30 may consist of only a first cable 31 and a second cable 32. The two ends of the first cable 31 are respectively connected to the control circuit board 22 of the control box 20 and one of the phototherapy structures 11. The two phototherapy structures 11 are connected together via the second cable 32. For example, the second cable 32 is threaded through the headband 15, thereby facilitating the wearing of the wearable device 10, reducing the swaying of the physical cable between the two phototherapy structures 11, and thus improving the stability and reliability of the data signal transmission between the two phototherapy structures 11.

[0053] In some embodiments, the control box 20 further includes a first communication module 24 disposed on the control circuit board 22. The phototherapy structure 11 further includes a second communication module 13. The first communication module 24 is used for communication connection with the second communication module 13. Thus, the two phototherapy structures 11 wirelessly transmit data signals through the first communication module 24 and the second communication module 13, thereby eliminating the need for cables between the control box 20 and the wearable main body 10, simplifying the structure, improving the convenience of the phototherapy device portable system 100, reducing the use of physical cables, and enhancing the user experience. The first communication module 24 and the second communication module 13 can each be, but are not limited to, WiFi modules, Bluetooth modules, Zibee modules, 3G modules, 4G modules, 5G modules, radio frequency modules, etc. Exemplarily, in this embodiment, the first communication module 24 and the second communication module 13 are configured as Bluetooth modules.

[0054] In some embodiments, the control box 20 further includes a first communication module 24 disposed on the control circuit board 22. The first communication module 24 is used for communication connection with external devices. This improves the ease of operation of the control box 20. After the control box 20 establishes a wireless communication connection with the external device, the application program of the external device synchronizes with the control box 20 to adjust parameters. This allows the user to control the treatment mode, intensity, and duration of the phototherapy structure 11 of the wearable main body 10 in real time. The operation is simple and intuitive, and the user can flexibly adjust the treatment parameters according to the degree of pain of the patient, enabling each user to receive personalized treatment according to their needs. Furthermore, the application program of the external device synchronizes data with the control box 20 and queries treatment records, allowing the user to understand the treatment status in real time, customize personalized treatment plans, and adjust based on feedback information, improving the accuracy and effectiveness of treatment and realizing intelligent treatment operation of the phototherapy device portable system 100.

[0055] External devices include, but are not limited to, portable devices such as Bluetooth headsets, mobile phones, digital devices, and tablets, as well as large equipment such as central monitoring stations. This utility model embodiment does not limit these devices.

[0056] In some embodiments, the control box 20 further includes an expansion interface 28. The expansion interface 28 is connected to the control circuit board 22. The expansion interface 28 can be used to connect expansion function modules, thereby enriching the functionality of the control box 20, enhancing the flexibility and compatibility of the phototherapy portable system 100, and enabling the customizability of the phototherapy portable system 100. The expansion function modules can be configured as, but are not limited to, sensors, actuators, communication modules, storage modules, etc.

[0057] The phototherapy structure 11 includes a housing 110 and a light source module 112. The housing 110 has a mounting cavity 1101, and the light source module 112 is disposed within the mounting cavity 1101. The light source module 112 is configured as at least one of a red light source, a near-infrared light source, and a blue light source. The backlight surface of the light source module 112 is provided with heat dissipation fins 114; and / or, the housing 110 is provided with multiple heat dissipation holes 1102 communicating with the mounting cavity 1101 and the outside air. Thus, on the one hand, the light emitted by the light source module 112 irradiates the object under test, thereby promoting cell metabolism and reducing inflammation and pain; on the other hand, the heat dissipation fins 114 and heat dissipation holes 1102 can promote the heat exchange efficiency between the heat generated by the light source module 112 and the space, thereby avoiding the problem that the heat generated by the light source module 112 during long-term operation cannot be dissipated in time, which would reduce the working stability of the light source module 112 and affect the user experience, thereby extending the service life of the light source module 112 and improving the treatment stability and reliability of the phototherapy portable system 100.

[0058] For example, in this embodiment, the light source module 112 is configured as a red light source. The red light emitted by the red light source can illuminate the object under test, thereby stimulating the mitochondrial cytochrome C of the object under test, promoting cell metabolism, and reducing inflammation and pain. The backlight surface of the light source module 112 is provided with heat dissipation fins 114, and the outer casing 110 is provided with a plurality of heat dissipation holes 1102 that communicate with the mounting cavity 1101 and the outside air.

[0059] Please refer to the following: Figure 4 and Figure 5 , Figure 5 yes Figure 2An enlarged view of the second end cap 1113 of the portable phototherapy system 100. Specifically, the outer casing 110 includes a housing 1111, a first end cap 1112, and a second end cap 1113. The two ends of the housing 1111 are respectively connected to the first end cap 1112 and the second end cap 1113, forming a mounting cavity 1101. The first end cap 1112 is located on the light source path of the light source module 112 and is configured as a light-transmitting structure. The second end cap 1113 is provided with multiple heat dissipation holes 1102. The first adsorption structure 12 is integrally formed with the second end cap 1113; alternatively, the first adsorption structure 12 and the second end cap 1113 are independently arranged and fixedly connected. Therefore, on the one hand, by setting the first end cap 1112 as a light-transmitting structure, the emissivity of the light emitted by the light source module 112 is improved, thereby enhancing the treatment effect; on the other hand, the second end cap 1113 is provided with heat dissipation holes 1102, thereby preventing the hot air discharged from the heat dissipation holes from acting on the object under test, improving the user experience; furthermore, the second end cap 1113 is integrally formed with the first adsorption structure 12, reducing the number of components, improving assembly efficiency, and reducing processing difficulty. The second end cap 1113 and the first adsorption structure 12 are independent of each other but fixedly connected, facilitating the alignment and assembly of the first adsorption structure 12 and the second structure. The second end cap 1113 can be detachably connected to the housing 1111 or integrally formed.

[0060] In some embodiments, a heat dissipation channel 1001 is formed between the second end cap 1113 and the housing 21. One end of the heat dissipation channel 1001 is connected to a plurality of heat dissipation holes 1102, and the other end of the heat dissipation channel 1001 is connected to the outside air. Thus, when the second adsorption structure 23 is adsorbed and connected to the first adsorption structure 12, it does not affect the heat dissipation of the portable phototherapy system 100, so that the heat generated by the light source module 112 can be quickly discharged to the outside air through the heat dissipation fins 114, the heat dissipation holes 1102 and the heat dissipation channel 1001, thereby improving the heat dissipation effect of the portable phototherapy system 100.

[0061] In some embodiments, the portable phototherapy system 100 further includes a limiting boss 2111, which is fixed to the housing 21 or the shell 1111 and located between the housing 21 and the shell 1111, so that a heat dissipation channel 1001 communicating with the heat dissipation hole 1102 is formed between the second end cap 1113 and the housing 21. Specifically, in this embodiment, the limiting boss 2111 is provided on the side of the substrate 211 facing the phototherapy structure 11, and the limiting boss 2111 abuts against the second end cap 1113, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211.

[0062] In some other embodiments, the substrate 211 has an opening at the position corresponding to the second adsorption structure 23, which communicates with the accommodating cavity 2101. The second adsorption structure 23 extends out of the opening on the substrate 211 and abuts against the second end cap 1113, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211; or, the second end cap 1113 of the housing has a limiting boss 2111 on the side facing the control box 20, which abuts against the substrate 211, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211; or, the second end cap 1113 has an opening at the position corresponding to the first adsorption structure 12, which communicates with the mounting cavity. The first adsorption structure 12 extends out of the opening provided in the second end cap 1113 and abuts against the substrate 211, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211; or, the box body 21 and the shell 1111 are respectively provided with limiting bosses 2111, and the two limiting bosses 2111 abut against each other, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211; or, the first adsorption structure 12 is higher than the second end cap 1113, and the second adsorption structure 23 is higher than the substrate 211 and abuts against the first adsorption structure 12, so that a heat dissipation channel 1001 is formed between the second end cap 1113 and the substrate 211.

[0063] Of course, in some embodiments, the second end cap 1113 has multiple heat dissipation holes 1102 in the area outside the housing 21. It should be noted that the number and location of the heat dissipation holes 1102 can be set according to factors such as the product type of the phototherapy device portable system 100, and this embodiment of the present invention does not impose specific limitations. For example, when the phototherapy device portable system 100 is configured as a wristband structure, the heat dissipation holes 1102 can also be set on the side wall of the housing 1111.

[0064] The embodiments of this utility model have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this utility model. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.

Claims

1. A convenient phototherapy system for treating aches and pains, characterized in that, include: A wearable main body includes a phototherapy structure and a first adsorption structure. The phototherapy structure is used to attach to the surface of the treatment object, and the first adsorption structure is provided on the side of the phototherapy structure facing away from the treatment object. The control box includes a box body, a control circuit board, and a second adsorption structure. The box body has a receiving cavity, the control circuit board is disposed in the receiving cavity and connected to the phototherapy structure, and the second adsorption structure is disposed on the box body and magnetically adsorbed with the first adsorption structure, so that the wearable main body is detachably and fixedly connected to the control box.

2. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The first adsorption structure is configured as a magnetizable metal component, and the second adsorption structure is configured as a magnetic component; or, the first adsorption structure is configured as a magnetic component, and the second adsorption structure is configured as a magnetizable metal component; or, both the first adsorption structure and the second adsorption structure are configured as magnetic components, and the magnetic properties of the first adsorption structure and the second adsorption structure are opposite; or, the first adsorption structure is configured as a magnetic component, and the second adsorption structure is configured as an electromagnet.

3. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The convenient phototherapy system for treating aches and pains also includes a connecting cable, one end of which is connected to the phototherapy structure, and the other end of which is connected to the control circuit board.

4. The convenient phototherapy system for treating aches and pains as described in claim 3, characterized in that, The wearable main body is configured as an ear-worn structure, and the phototherapy structure is configured as two, which are either integrated or separate. The connecting cable includes a first cable and two second cables. One end of the first cable is connected to the control circuit board, and the other end of the first cable is connected to the two second cables. The two phototherapy structures are respectively connected to the two second cables; Alternatively, the connecting cable may include a first cable and a second cable, with the two ends of the first cable connected to the control circuit board and one of the phototherapy structures, respectively, and the two ends of the second cable connected to two of the phototherapy structures, respectively.

5. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The control box further includes a first communication module disposed on the control circuit board, and the phototherapy structure further includes a second communication module. The first communication module is used to communicate with the second communication module.

6. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The control box also includes a first communication module disposed on the control circuit board, the first communication module being used for communication connection with external devices.

7. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The phototherapy structure includes a housing and a light source module. The housing has a mounting cavity, and the light source module is disposed within the mounting cavity. The light source module is configured as at least one of a red light source, a near-infrared light source, and a blue light source. The backlight surface of the light source module is provided with heat dissipation fins. And / or, the housing has multiple heat dissipation holes that communicate with the mounting cavity and the outside air.

8. The convenient phototherapy system for treating aches and pains as described in claim 7, characterized in that, The outer casing includes a housing, a first end cap, and a second end cap. The two ends of the housing are respectively connected to the first end cap and the second end cap and enclose to form the mounting cavity. The first end cap is located on the light source path of the light source module and is configured as a light-transmitting structure. The second end cap is provided with a plurality of heat dissipation holes. The first adsorption structure is integrally formed with the second end cap; or, the first adsorption structure and the second end cap are independently set and fixedly connected.

9. The convenient phototherapy system for treating aches and pains as described in claim 8, characterized in that, A heat dissipation channel is formed between the second end cap and the box body. One end of the heat dissipation channel is connected to a plurality of heat dissipation holes, and the other end of the heat dissipation channel is connected to the outside air.

10. The convenient phototherapy system for treating aches and pains as described in claim 1, characterized in that, The control box also includes an energy storage device, which is connected to the control circuit board.