Physiotherapy lamp

By using thermal conductivity substrates and parallel spaced heat dissipation fins in the physiotherapy lamp, the problem of large space required for the heat dissipation method in the prior art is solved, and the effect of efficient heat dissipation and reducing the volume of the equipment is achieved.

CN120459549AActive Publication Date: 2025-08-12E SHINE SYST LTD
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Patent Information

Application Number
CN202510969480.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-15
Publication Date
2025-08-12
Estimated Expiration
2045-07-15

AI Technical Summary

Technical Problem

The existing physical therapy lamps require a large space, which leads to an increase in the size of the equipment and limited use.

Method used

The heat-conducting substrate and heat-dissipating fins arranged in parallel space are designed to conduct heat-dissipating fins through the heat-conducting substrate, and form an airflow channel between adjacent fins to improve heat dissipation efficiency and reduce the volume of the equipment.

Benefits of technology

While improving the heat dissipation effect, the volume of the physiotherapy lamp is significantly reduced, the heat dissipation area is increased, and the space utilization of the equipment is improved.

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Abstract

The invention discloses a physiotherapy lamp, and relates to the technical field of optical physiotherapy equipment. The physiotherapy lamp comprises a frame, a lamp bead panel and a heat dissipation assembly. The lamp bead panel is arranged on the frame. The heat dissipation assembly comprises a heat conduction substrate and at least one heat dissipation fin, the heat conduction substrate is arranged on the frame and covers one side of the lamp bead panel, the heat dissipation fins are arranged on the side, away from the lamp bead panel, of the heat conduction substrate, each set of heat dissipation fins comprises a plurality of sub-fins which are arranged in parallel at intervals, and an air flow channel is formed between every two adjacent sub-fins. According to the technical scheme, the size of the physiotherapy lamp is reduced while the heat dissipation effect is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of optical therapy equipment, and in particular to a therapy lamp. Background Art

[0002] Physiotherapy lamps are widely used in fields such as physical therapy, health care, and beauty. They provide light energy through red and infrared light beads, which can promote blood circulation, relieve muscle pain, accelerate wound healing, and improve skin condition, thereby achieving therapeutic effects. In recent years, with the increasing demand for health and beauty, the market demand for physiotherapy lamps has also continued to grow.

[0003] Currently, most therapy lamps utilize fans, heat sinks, or a combination of these to dissipate heat generated by the lamp through conduction and convection. While this cooling method can meet the device's cooling requirements to a certain extent, it often requires a larger space to accommodate the heat sink and fan, increasing the size of the therapy lamp and limiting its usability. Summary of the Invention

[0004] The main purpose of the present invention is to provide a physiotherapy lamp, which aims to improve the heat dissipation effect while reducing the volume of the physiotherapy lamp.

[0005] To achieve the above objectives, the present invention provides a physiotherapy lamp comprising: frame; A lamp bead panel is provided on the frame; and The heat dissipation component includes a heat-conducting substrate and at least one group of heat-dissipating fins. The heat-conducting substrate is arranged on the frame and covers one side of the lamp bead panel. The heat-dissipating fins are arranged on the side of the heat-conducting substrate away from the lamp bead panel. Each group of the heat-dissipating fins includes a plurality of sub-fins arranged in parallel and spaced apart, and an airflow channel is formed between two adjacent sub-fins.

[0006] In one embodiment, each group of the heat dissipation fins further includes a plurality of connecting fins, and the plurality of connecting fins are arranged parallel to and spaced apart from the heat conductive substrate and connect two adjacent sub-fins.

[0007] In one embodiment, the heat dissipation fins are bonded to the heat conductive substrate via thermally conductive silicone.

[0008] In one embodiment, the height of each group of heat dissipation fins is greater than or equal to 20 mm and less than or equal to 30 mm; and The thickness of each sub-fin is greater than or equal to 0.3 mm and less than or equal to 0.5 mm.

[0009] In one embodiment, the heat dissipation assembly includes a plurality of groups of heat dissipation fins, and the plurality of groups of heat dissipation fins are evenly spaced and arranged on the thermally conductive substrate.

[0010] In one embodiment, the physiotherapy lamp further comprises: a bracket provided on the frame; and The dustproof net is magnetically connected to the bracket and covers a side of the heat dissipation fin facing away from the heat-conducting substrate.

[0011] In one embodiment, the framework comprises: A first frame strip connected to the lamp bead panel and one end of the heat dissipation assembly; A second frame bar is arranged parallel to and spaced apart from the first frame bar and is connected to the lamp bead panel and the other end of the heat dissipation assembly; a blocking cover, which covers one end of the lamp bead panel and the heat dissipation assembly and connects one end of the first frame bar and the second frame bar; and The bottom plate is arranged opposite to the blocking cover and connects the other ends of the first frame bar and the second frame bar.

[0012] In one embodiment, the physiotherapy lamp further comprises: A power supply, provided on the bottom plate; A control panel, arranged on the bottom plate; a cover body, covering the power supply and the control board, the cover body having a mounting groove and a first conductive contact located in the mounting groove, the first conductive contact being electrically connected to the control board and the power supply; and A remote controller is detachably mounted on the mounting slot. The remote controller is provided with a second conductive contact, and the second conductive contact is used to abut against the first conductive contact.

[0013] In one embodiment, the first conductive contact and the second conductive contact are both configured as magnetic conductive contacts, and the magnetic properties of the first conductive contact are different from the magnetic properties of the second conductive contact.

[0014] In one embodiment, the power supply and the base plate are integrated by heat-conductive potting glue.

[0015] The technical solution of the present invention is to provide a therapy lamp with a frame, a lamp panel, and a heat dissipation assembly. The lamp panel is provided on the frame; the heat dissipation assembly includes a heat-conducting substrate and at least one heat dissipation fin. The heat-conducting substrate is provided on the frame and covers one side of the lamp panel. The heat dissipation fin is provided on the side of the heat-conducting substrate facing away from the lamp panel. Each group of heat dissipation fins includes multiple sub-fins arranged in parallel and spaced relation. An airflow channel is formed between two adjacent sub-fins. Compared with the therapy lamps in the prior art that use fans, heat sinks, or a combination thereof, the technical solution of the present application only provides heat dissipation fins and a heat-conducting substrate. The heat-conducting substrate conducts heat to the heat dissipation fins, which can dissipate heat into the surrounding environment to achieve heat dissipation. The multiple sub-fins in each group of heat dissipation fins are arranged in parallel and spaced relation. An airflow channel is formed between two adjacent sub-fins to guide air flow, increase the heat dissipation area of the heat dissipation fins, and improve heat dissipation efficiency. The heat dissipation fins are relatively small in size. The heat-conducting substrate covers the lamp panel, saving space. While improving the heat dissipation effect, the volume of the therapy lamp is reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.

[0017] Figure 1 This is a structural diagram of an embodiment of the physiotherapy lamp provided by the present invention; Figure 2 for Figure 1 An exploded view of an embodiment of the present invention; Figure 3 for Figure 2 A schematic structural diagram of an embodiment of a heat dissipation assembly; Figure 4 for Figure 3 A schematic structural diagram of an embodiment of the heat dissipation fin; Figure 5 for Figure 3 A structural diagram of an embodiment from another perspective; Figure 6 for Figure 1 A structural schematic diagram of an embodiment from another perspective.

[0018] Description of Figure Numbers: 100, frame; 110, first frame bar; 111, limit plate; 120, second frame bar; 121, main body; 130, blocking cover; 140, bottom plate; 150, cover; 151, mounting slot; 161, plug; 162, socket; 200, lamp bead panel; 210, fixing layer; 220, LED lamp; 230, lens; 300, heat dissipation assembly; 310, heat-conducting substrate; 320, heat dissipation fins; 321, sub-fins; 322, connecting fins; 323, fixed fins; 324, air flow channel; 410, dustproof net; 420, bracket; 421, extension portion; 422, support portion; 510 , power supply; 520 , control panel; 530 , first conductive contact; 540 , remote control; 541 , touch screen operation interface.

[0019] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION

[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.

[0021] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture. If the specific posture changes, the directional indications will also change accordingly.

[0022] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or suggesting their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited to "first" and "second" may explicitly or implicitly include at least one of such features. In addition, if "and / or" or "and / or" appears in the full text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or solutions that satisfy both A and B. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of ordinary technicians in this field to implement. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0023] Physiotherapy lamps are widely used in fields such as physical therapy, health care, and beauty. They provide light energy through red and infrared light beads, which can promote blood circulation, relieve muscle pain, accelerate wound healing, and improve skin condition, thereby achieving therapeutic effects. In recent years, with the increasing demand for health and beauty, the market demand for physiotherapy lamps has also continued to grow.

[0024] Currently, most therapy lamps utilize fans, heat sinks, or a combination of these to dissipate heat generated by the lamp through conduction and convection. While this cooling method can meet the device's cooling requirements to a certain extent, it often requires a larger space to accommodate the heat sink and fan, increasing the size of the therapy lamp and limiting its usability.

[0025] The present invention provides a physical therapy lamp, which can improve the heat dissipation effect and reduce the volume of the physical therapy lamp.

[0026] See also Figures 1 to 3 In one embodiment, the therapy lamp includes a frame 100, a lamp panel 200 and a heat dissipation assembly 300, the lamp panel 200 is arranged on the frame 100; the heat dissipation assembly 300 includes a heat-conducting substrate 310 and at least one heat dissipation fin 320, the heat-conducting substrate 310 is arranged on the frame 100 and covers one side of the lamp panel 200, the heat dissipation fin 320 is arranged on the side of the heat-conducting substrate 310 away from the lamp panel 200, each group of heat dissipation fins 320 includes a plurality of sub-fins 321 arranged in parallel and spaced apart, and an airflow channel 324 is formed between two adjacent sub-fins 321.

[0027] The frame 100 provides support and a mounting base for the therapy lamp; the lamp panel 200 is used to emit radiant light to provide therapy to the user. In one embodiment, the frame 100 is arranged around the periphery of the lamp panel 200. The lamp panel 200 includes a fixing layer 210, an LED lamp 220, and a lens 230. The fixing layer 210 is provided with a mounting groove 151. The lens 230 and the LED lamp 220 are both fixed in the mounting groove 151. The lens 230 is arranged on the side of the LED lamp 220 that emits light to amplify or focus the LED lamp 220, thereby increasing the radiance of the LED lamp 220. In one embodiment, the LED lamp 220 is configured as a red light lamp and an infrared lamp. The wavelength of the red light can be configured to 630nm or 660nm, and the wavelength of the infrared light can be configured to 810nm or 850nm, to ensure that the light from the LED lamp 220 has a higher radiation frequency and better penetration. The fixing layer 210 is made of plastic materials such as polycarbonate or polyimide to ensure that the fixing layer 210 has good plasticity and insulation, thereby ensuring the applicability and safety of the therapy lamp.

[0028] The heat dissipation assembly 300 is used to dissipate heat generated during the operation of the lamp bead panel 200. In one embodiment, the heat dissipation fin 320 includes a fixed fin 323 and a plurality of sub-fins 321, and the plurality of sub-fins 321 are arranged in parallel and spaced apart on one side of the fixed fin 323 so that the heat dissipation fin 320 forms a separate module. The extension direction of the sub-fin 321 is perpendicular to the extension direction of the fixed fin 323, and the gap between each two adjacent sub-fins 321 forms a wind channel 324 for air to pass through. The number of sub-fins 321 can be flexibly set according to actual conditions and is not limited here. One side of the thermal conductive substrate 310 is tightly attached to the lamp bead panel 200, and the side of the back ion fin 321 of the fixed fin 323 is tightly attached to the other side of the thermal conductive substrate 310. The thermal conductive substrate 310 and the lamp bead panel 200 can be detachably connected by bolts or snaps to facilitate replacement and maintenance of the heat dissipation assembly 300. Of course, in other embodiments, the thermally conductive substrate 310 and the lamp bead panel 200 can also be fixedly connected by bonding or other means, which is not limited here. In one embodiment, the material of the heat dissipation component 300 is configured as aluminum so that the heat dissipation component 300 has good thermal conductivity. Of course, in other embodiments, the material of the heat dissipation component 300 can also be configured as copper or aluminum alloy, etc., which is not limited here. In one embodiment, the thickness of the thermally conductive substrate 310 is 2 mm, which further reduces the thickness of the therapy lamp. Of course, in other embodiments, the thickness of the thermally conductive substrate 310 can also be flexibly set according to actual conditions, which is not limited here.

[0029] The technical solution of the present invention is to provide a therapy lamp with a frame 100, a lamp panel 200, and a heat dissipation assembly 300. The lamp panel 200 is provided on the frame 100. The heat dissipation assembly 300 includes a heat-conducting substrate 310 and at least one heat dissipation fin 320. The heat-conducting substrate 310 is provided on the frame 100 and covers one side of the lamp panel 200. The heat dissipation fin 320 is provided on the side of the heat-conducting substrate 310 facing away from the lamp panel 200. Each group of heat dissipation fins 320 includes a plurality of sub-fins 321 arranged in parallel and spaced apart, and an air flow channel 324 is formed between two adjacent sub-fins 321. Compared with the therapy lamps in the prior art that use fans, heat sinks, or a combination thereof, the technical solution of the present application only provides heat dissipation fins 320 and a heat-conducting substrate 310. Heat is transferred to the heat dissipation fins 320 through the heat-conducting substrate 310, and the heat dissipation fins 320 can dissipate heat into the surrounding environment to achieve heat dissipation. The multiple sub-fins 321 in each group of heat dissipation fins 320 are arranged in parallel and spaced apart, and an air flow channel 324 is formed between two adjacent sub-fins 321, which can guide the flow of air, increase the heat dissipation area of the heat dissipation fins 320, and improve the heat dissipation efficiency; and the heat dissipation fins 320 are relatively small in size, and the thermal conductive substrate 310 covers the lamp bead panel 200, saving space, and reducing the volume of the therapy lamp while improving the heat dissipation effect.

[0030] See also Figures 3 to 5 In one embodiment, each group of heat dissipation fins 320 further includes a plurality of connecting fins 322 . The plurality of connecting fins 322 are arranged parallel to the heat conductive substrate 310 and spaced apart from each other and connect two adjacent sub-fins 321 .

[0031] In one embodiment, the connecting fin 322 is arranged parallel to the fixed fin 323, and the connecting fin 322 and the fixed fin 323 are located at opposite ends of the sub-fin 321. In one embodiment, a connecting fin 322 is provided between any two adjacent sub-fins 321, and multiple connecting fins 322 are provided at intervals along the length of the sub-fin 321. Of course, in other embodiments, the connecting fin 322 can also be provided in the middle, or only one connecting fin 322 can be provided along the length of the sub-fin 321. This is not a limitation.

[0032] The technical solution of the embodiment of the present invention further increases the heat dissipation area and improves the heat dissipation efficiency by providing the connecting fins 322. In addition, the connecting fins 322 connect adjacent sub-fins 321, which can improve the structural stability of the heat dissipation fins 320, avoid fin deformation, and thus increase the service life of the heat dissipation fins 320.

[0033] In one embodiment, the heat dissipation fins 320 are bonded to the thermally conductive substrate 310 via thermally conductive silicone.

[0034] The heat transferred from the lamp bead panel 200 to the thermally conductive substrate 310 is transferred to the heat dissipating fins 320 through the contact surface between the thermally conductive substrate 310 and the heat dissipating fins 320. Since the thermal conductivity of air is very low, it will hinder the transfer of heat between the contact surfaces. The thermally conductive silicone can fill the gaps in the contact surfaces very well to squeeze the air out of the contact surfaces. Among them, the thermally conductive silicone can be thermally conductive silicone grease or thermally conductive potting glue, etc., which is not limited here. In one embodiment, the fixed fins 323 are bonded to the thermally conductive substrate 310 through thermally conductive silicone. Of course, in other embodiments, multiple sub-fins 321 can also be directly bonded to the thermally conductive substrate 310 through thermally conductive silicone, which is not limited here.

[0035] The technical solution of the present embodiment, through the use of thermally conductive silicone, achieves a tight connection between the heat sink fins 320 and the thermally conductive substrate 310. On the one hand, the thermally conductive silicone fills the gap, ensuring better and more complete contact between the heat sink fins 320 and the aluminum substrate, preventing air from obstructing heat transfer. On the other hand, the thermally conductive silicone has excellent thermal conductivity, quickly transferring heat from the lamp bead panel 200 to the thermally conductive substrate 310 to the heat sink fins 320, thereby improving heat dissipation efficiency.

[0036] In one embodiment, the height of each group of heat dissipation fins 320 is greater than or equal to 20 mm and less than or equal to 30 mm; the thickness of each sub-fin 321 is greater than or equal to 0.3 mm and less than or equal to 0.5 mm.

[0037] The height of the heat dissipation fins 320 affects the overall thickness of the therapy lamp. The smaller the height of the heat dissipation fins 320, the smaller the overall thickness of the therapy lamp, that is, the smaller the volume of the therapy lamp. In one embodiment, all sub-fins 321 within each group of heat dissipation fins 320 have a uniform height of 25 mm. Of course, in other embodiments, the height of all sub-fins 321 can also vary, as long as the height is between 20 mm and 30 mm. The height of the sub-fins 321 can also be flexibly set according to actual conditions and is not limited here.

[0038] The thickness of the sub-fins 321 and the spacing between adjacent sub-fins 321 will affect the number of sub-fins 321 that can be set in a limited space. In one embodiment, the thickness of each sub-fin 321 is greater than or equal to 0.3mm and less than or equal to 0.5mm, and the gap between any two adjacent sub-fins 321 is greater than or equal to 4mm and less than or equal to 6mm. In one embodiment, the thickness of all sub-fins 321 is 0.4mm, and the spacing between any two adjacent sub-fins 321 is 5mm. Of course, in other embodiments, the thickness of all sub-fins 321 may also be different, as long as the thickness of the sub-fins 321 is set between 0.3mm and 0.5mm; the spacing between any two adjacent sub-fins 321 may also be different, as long as the spacing between any two adjacent sub-fins 321 is between 4mm and 6mm; the height of the sub-fins 321 and the spacing between any two adjacent sub-fins 321 can also be flexibly set according to actual conditions, and there is no restriction here.

[0039] The technical solution of the embodiment of the present invention can reduce the volume of the therapy lamp while ensuring the heat dissipation effect by limiting the height of the heat dissipation fins 320; by limiting the thickness of the sub-fins 321, it can reduce the thickness of the sub-fins 321 while ensuring the mechanical strength of the sub-fins 321, so as to arrange more sub-fins 321 in a limited space, thereby increasing the heat dissipation area; by limiting the spacing between adjacent sub-fins 321, it can ensure the formation of the airflow channel 324 while further increasing the heat dissipation area, thereby improving the heat dissipation effect of the therapy lamp.

[0040] See also Figures 3 to 5 In one embodiment, the heat dissipation assembly 300 includes a plurality of heat dissipation fins 320 , and the plurality of heat dissipation fins 320 are evenly spaced and arranged on the thermal conductive substrate 310 .

[0041] In one embodiment, the heat dissipation assembly 300 includes six groups of heat dissipation fins 320, and the six groups of heat dissipation fins 320 are evenly spaced and arranged in two rows and three columns on the same thermal conductive substrate 310. In one embodiment, the number of sub-fins 321 of the heat dissipation fins 320 located in the middle part of the thermal conductive substrate 310 is greater than the number of sub-fins 321 of the heat dissipation fins 320 located at both ends of the thermal conductive substrate 310 to meet the heat dissipation requirements. Among them, the number of sub-fins 321 of the heat dissipation fins 320 at different positions can be flexibly set according to actual needs, and there is no limitation here. Of course, in other embodiments, the number of heat dissipation fins 320 can also be set to four groups or eight groups, etc., and the heat dissipation fins 320 are arranged in two rows and two columns or four rows and two columns, etc., and there is no limitation here.

[0042] The technical solution of the embodiment of the present invention can further increase the heat dissipation area of the therapy lamp by providing multiple groups of heat dissipation fins 320, thereby improving the heat dissipation effect.

[0043] See also Figure 2 and Figure 6 In one embodiment, the therapy lamp further includes a bracket 420 and a dustproof net 410 , wherein the bracket 420 is arranged on the frame 100 ; the dustproof net 410 is magnetically connected to the bracket 420 and covers the side of the heat dissipation fin 320 away from the heat conductive substrate 310 .

[0044] In one embodiment, a bracket 420 is detachably mounted on the frame 100. A first magnetic member is provided on the bracket 420, and a second magnetic member is provided on the dust screen 410. The first and second magnetic members have different magnetic properties, and the dust screen 410 is fixed to the bracket 420 by adsorption via the second magnetic member. In one embodiment, two brackets 420 are provided, each positioned between the heat dissipation assembly 300 and the dust screen 410 and at both ends of the dust screen 410. Each bracket 420 has an extension portion 421 and a support portion 422. The extension portion 421 is positioned on one side of the support portion 422 and in the middle of the support portion 422. The support portion 422 is detachably connected to the frame 100. The extension portion 421 extends between the heat dissipation fins 320 and is provided with a first magnetic member. A gap is provided between any two sets of heat dissipation fins 320 spaced apart along the width of the thermally conductive substrate 310 to allow the extension portion 421 to pass through. One side of the extension portion 421 is detachably connected to the thermally conductive substrate 310, while the other side of the extension portion 421 is detachably connected to the dust screen 410 via a first magnetic member. Of course, in other embodiments, the dust screen 410 can also be attached to the bracket 420 using clips or bolts, or directly attached to the frame 100, and this is not a limitation here.

[0045] The technical solution of the embodiment of the present invention, by providing a dust screen 410, can protect the heat dissipation assembly 300 from contact with the outside air while preventing problems such as scratches on the heat dissipation fins 320, thereby increasing the service life of the heat dissipation assembly 300. The provision of a bracket 420 can provide support and a mounting base for the dust screen 410, enabling quick installation and removal of the dust screen 410.

[0046] See also Figure 2 and Figure 6 In one embodiment, the frame 100 includes a first frame bar 110, a second frame bar 120, a blocking cover 130 and a bottom plate 140. The first frame bar 110 is connected to one end of the lamp bead panel 200 and the heat dissipation assembly 300; the second frame bar 120 is arranged parallel to the first frame bar 110 and spaced apart and connected to the other end of the lamp bead panel 200 and the heat dissipation assembly 300; the blocking cover 130 is covered on one end of the lamp bead panel 200 and the heat dissipation assembly 300 and connects one end of the first frame bar 110 and the second frame bar 120; the bottom plate 140 is arranged opposite to the blocking cover 130 and connects the other end of the first frame bar 110 and the second frame bar 120.

[0047] In one embodiment, the first frame strip 110 and the second frame strip 120 have the same structure and both include a main body 121 and a limiting plate 111. The limiting plate 111 protrudes from one side of the main body 121. The lamp bead panel 200 and the heat conductive substrate 310 are both fixed to the main body 121. The bracket 420 is disposed between the two main bodies 121. The dust screen 410 can slide along the limiting plate 111 between the two main bodies 121 to be magnetically connected to the bracket 420. The limiting plate 111 abuts against the side of the dust screen 410 facing away from the bracket 420 to restrict the dust screen 410 to the frame 100. The blocking cover 130 and the bottom plate 140 are both arranged parallel to the support portion 422 of the bracket 420. The blocking cover 130 and the bottom plate 140 respectively cover the two ends of the lamp bead panel 200 and the heat dissipation assembly 300 and the side of the two support portions 422 facing away from the extension portion 421 to achieve the packaging of the physical therapy lamp. In one embodiment, the main body 121 is hollow, and the blocking cover 130 and the base plate 140 are correspondingly provided with protrusions, which can be inserted into the main body 121 to facilitate the quick connection of the blocking cover 130 and the base plate 140 to the main body 121. In one embodiment, the lamp bead panel 200 and the thermal conductive substrate 310 are both detachably connected to the two main bodies 121, and the blocking cover 130 and the base plate 140 are also detachably connected to the two main bodies 121. The detachable connection method can be a bolt or a snap, etc., which is not limited here. In one embodiment, the first frame bar 110 and the second frame bar 120 are both made of aluminum to ensure that they can provide support and have good heat dissipation. In one embodiment, the base plate 140 and the blocking cover 130 are both made of plastic to reduce external impact or vibration and provide protection for the therapy lamp. Of course, in other embodiments, the first frame bar 110 and the second frame bar 120 may also be made of copper or aluminum alloy, and the bottom plate 140 and the blocking cover 130 may also be made of carbon fiber reinforced plastic, etc., without limitation.

[0048] See also Figure 1 and Figure 2 In one embodiment, the therapy lamp also includes a power supply 510, a control panel 520, a cover 150 and a remote control 540. The power supply 510 and the control panel 520 are both arranged on the base plate 140; the cover 150 covers the power supply 510 and the control panel 520, and the cover 150 is provided with a mounting groove 151 and a first conductive contact 530 located in the mounting groove 151. The first conductive contact 530 is electrically connected to the control panel 520 and the power supply 510; the remote control 540 is detachably arranged in the mounting groove 151, and the remote control 540 is provided with a second conductive contact, which is used to abut against the first conductive contact 530.

[0049] In one embodiment, the base plate 140 is provided with a mounting position, where the power supply 510 and the control board 520 are both located. The cover 150 covers the power supply 510 and the control board 520 and is connected to the base plate 140 to encapsulate the power supply 510. The control board 520 is electrically connected to the power supply 510 and the LED light 220, and the remote control 540 is wirelessly connected to the control board 520. The remote control 540 is provided with a touchscreen operation interface 541, which also has a display function for controlling the LED light 220 and displaying relevant parameters of the LED light 220, such as wavelength and time. In one embodiment, the control board 520 includes a circuit board, a microcontroller, and a communication chip integrated therein. The controller is electrically connected to the LED light 220, and the communication chip is electrically connected to the first conductive contact 530, wirelessly connected to the remote control 540, and electrically connected to the microcontroller. The remote control 540 and the communication chip can achieve wireless communication via infrared or radio frequency communication, and the remote control 540 and the microcontroller can control the LED light 220 via a logic algorithm, which is not limited here. In one embodiment, a plug 161 and a socket 162 electrically connected to the control board 520 and the power supply 510 are further provided on the side of the base plate 140 facing away from the cover 150. The plug 161 and the socket 162 are exposed to facilitate connection of the therapy light to external devices.

[0050] When the remote control 540 is placed in the mounting slot 151, the first conductive contact 530 and the second conductive contact come into contact, completing the circuit. The power supply 510 can charge the remote control 540, and the control board 520 can transmit electrical signals to the remote control 540, allowing the touchscreen interface 541 to display parameters related to the LED light 220. When the remote control 540 leaves the mounting slot 151, the first conductive contact 530 separates from the second conductive contact, and the remote control 540 can establish a wireless communication connection with the control board 520, thereby wirelessly controlling the LED light 220.

[0051] In one embodiment, both the first conductive contact 530 and the second conductive contact are configured as magnetic conductive contacts, and the magnetic properties of the first conductive contact 530 are different from those of the second conductive contact. When the first conductive contact 530 and the second conductive contact are attracted to each other, the remote control 540 can be fixed to the mounting slot 151. The remote control 540 can be removed by removing the first conductive contact 530 from the second conductive contact.

[0052] In one embodiment, the power supply 510 and the base plate 140 are integrated with each other by using a thermally conductive potting compound.

[0053] The power supply 510 generates a significant amount of heat during use. Thermally conductive potting compound has excellent thermal conductivity and can fill the gap between the base plate 140 and the battery, quickly and evenly transferring the heat generated by the power supply 510 to the base plate 140. The large surface area of the base plate 140 increases the heat dissipation area and can also transfer heat to the heat dissipation assembly 300, further improving the heat dissipation effect. Furthermore, the thermally conductive potting compound has excellent electrical insulation properties, preventing short circuits or leakage between the power supply 510 and the base plate 140.

[0054] The technical solution of this embodiment of the present invention, through the provision of a control panel 520 and a remote control 540, enables control of the therapy lamp, improving its ease of use and intelligent functionality. The provision of magnetic conductive contacts allows for a detachable connection between the remote control 540 and the cover 150 while simultaneously closing the circuit, further enhancing ease of use. The integration of the power supply 510 and the base plate 140 using thermally conductive potting compound solves the heat dissipation problem of the power supply 510, further improving the heat dissipation efficiency and operational safety of the therapy lamp.

[0055] The above description is merely an exemplary embodiment of the present invention and does not limit the scope of protection of the present invention. Any equivalent structural transformation made by using the contents of the present invention description and drawings under the technical concept of the present invention, or directly / indirectly applied in other related technical fields, is included in the scope of protection of the present invention.

Claims

1. A physiotherapy lamp, characterized in that: include: frame; A lamp bead panel is provided on the frame; as well as The heat dissipation component includes a heat-conducting substrate and at least one group of heat-dissipating fins. The heat-conducting substrate is arranged on the frame and covers one side of the lamp bead panel. The heat-dissipating fins are arranged on the side of the heat-conducting substrate away from the lamp bead panel. Each group of the heat-dissipating fins includes a plurality of sub-fins arranged in parallel and spaced apart, and an airflow channel is formed between two adjacent sub-fins.

2. The physiotherapy lamp according to claim 1, characterized in that: Each group of the heat dissipation fins further includes a plurality of connecting fins. The plurality of connecting fins are arranged parallel to the heat conductive substrate and spaced apart from each other and connect two adjacent sub-fins.

3. The physiotherapy lamp according to claim 1, characterized in that: The heat dissipation fins are bonded to the heat conductive substrate via heat conductive silica gel.

4. The physiotherapy lamp according to claim 1, characterized in that: The height of each group of heat dissipation fins is greater than or equal to 20 mm and less than or equal to 30 mm; and The thickness of each sub-fin is greater than or equal to 0.3 mm and less than or equal to 0.5 mm.

5. The physiotherapy lamp according to claim 1, characterized in that: The heat dissipation assembly includes a plurality of heat dissipation fins, and the plurality of heat dissipation fins are evenly spaced and arranged on the heat conductive substrate.

6. The physiotherapy lamp according to claim 1, characterized in that: The therapy lamp also includes: a bracket provided on the frame; and The dustproof net is magnetically connected to the bracket and covers a side of the heat dissipation fin facing away from the heat-conducting substrate.

7. The physiotherapy lamp according to claim 1, characterized in that: The framework includes: A first frame strip connected to the lamp bead panel and one end of the heat dissipation assembly; A second frame bar is arranged parallel to and spaced apart from the first frame bar and is connected to the lamp bead panel and the other end of the heat dissipation assembly; a blocking cover, which covers one end of the lamp bead panel and the heat dissipation assembly and connects one end of the first frame bar and the second frame bar; and The bottom plate is arranged opposite to the blocking cover and connects the other ends of the first frame bar and the second frame bar.

8. The physiotherapy lamp according to claim 7, characterized in that: The therapy lamp also includes: A power supply, provided on the bottom plate; A control panel, arranged on the bottom plate; a cover body, covering the power supply and the control board, the cover body having a mounting groove and a first conductive contact located in the mounting groove, the first conductive contact being electrically connected to the control board and the power supply; and A remote controller is detachably mounted on the mounting slot. The remote controller is provided with a second conductive contact, and the second conductive contact is used to abut against the first conductive contact.

9. The physiotherapy lamp according to claim 8, characterized in that: The first conductive contact and the second conductive contact are both configured as magnetic conductive contacts, and the magnetic properties of the first conductive contact are different from the magnetic properties of the second conductive contact.

10. The physiotherapy lamp according to claim 8, characterized in that: The power supply and the base plate are integrated by heat-conducting potting glue.

Citation Information

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