CN120459549A - Therapy lamp - Google Patents
Therapy lampInfo
- Publication number
- CN120459549A CN120459549A CN202510969480.0A CN202510969480A CN120459549A CN 120459549 A CN120459549 A CN 120459549A CN 202510969480 A CN202510969480 A CN 202510969480A CN 120459549 A CN120459549 A CN 120459549A
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- fins
- heat
- heat dissipation
- lamp
- frame
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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, wherein 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 one side of the frame and covers the lamp bead panel, the heat dissipation fins are arranged on one side of the heat conduction substrate, which is away from the lamp bead panel, each group 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. The technical scheme provided by the invention improves the heat dissipation effect and reduces the volume of the physiotherapy lamp.
Description
Technical Field
The invention relates to the technical field of optical physiotherapy equipment, in particular to a physiotherapy lamp.
Background
The physiotherapy lamp is widely applied to the fields of physiotherapy health care, cosmetology and the like, and can promote blood circulation, relieve muscle pain, accelerate wound healing, improve skin state and the like by providing illumination energy through the red light and the infrared light lamp beads, so that physiotherapy effect is realized. In recent years, as the demand for health and beauty increases, the market demand for physiotherapy lamps is also increasing.
The heat dissipation part of the prior physiotherapy lamp mostly adopts the design of a fan, a heat dissipation sheet or a combination thereof, so as to dissipate the heat energy generated by the physiotherapy lamp in a heat conduction and convection mode. Although the heat dissipation mode can meet the heat dissipation requirement of the equipment to a certain extent, the heat dissipation mode often needs a larger space to accommodate the heat dissipation fins and the fan, so that the volume of the physiotherapy lamp is increased, and the use is limited.
Disclosure of Invention
The invention mainly aims to provide a physiotherapy lamp, which aims to improve the heat dissipation effect and reduce the volume of the physiotherapy lamp.
In order to achieve the above object, the present invention provides a physiotherapy lamp, comprising:
a frame;
a bead panel provided on the frame, and
The heat dissipation assembly comprises a heat conduction substrate and at least one group of heat dissipation fins, wherein the heat conduction substrate is arranged on one side of the frame and covered on the lamp bead panel, the heat dissipation fins are arranged on one side of the heat conduction substrate, which is away from the lamp bead panel, each group 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.
In an embodiment, each group of the heat dissipation fins further includes a plurality of connection fins, and the plurality of connection fins are arranged in parallel with the heat conduction substrate at intervals and connect two adjacent sub-fins.
In an embodiment, the heat dissipation fins are adhered to the heat conduction substrate through heat conduction silica gel.
In one embodiment, the height of each group of the radiating fins is more than or equal to 20mm and less than or equal to 30mm, and
The thickness of each sub-fin is more than or equal to 0.3mm and less than or equal to 0.5mm.
In an embodiment, the heat dissipation assembly includes a plurality of groups of heat dissipation fins, and the plurality of groups of heat dissipation fins are uniformly arranged on the heat conduction substrate at intervals.
In an embodiment, the physiotherapy lamp further comprises:
a bracket provided to the frame, and
And the dustproof net is magnetically connected with the bracket and covers one side of the radiating fins, which is away from the heat conducting substrate.
In one embodiment, the frame comprises:
the first frame strip is connected with one end of the lamp bead panel and one end of the heat dissipation assembly;
the second frame strips are arranged in parallel at intervals with the first frame strips and are connected with the lamp bead panel and the other end of the heat dissipation assembly;
A plugging cover, which is arranged at one end of the lamp bead panel and one end of the heat dissipation component and is connected with one end of the first frame strip and one end of the second frame strip, and
The bottom plate is arranged opposite to the plugging cover and is connected with the other ends of the first frame strip and the second frame strip.
In an embodiment, the physiotherapy lamp further comprises:
the power supply is arranged on the bottom plate;
The control panel is arranged on the bottom plate;
the cover body is covered on the power supply and the control board and is provided with a mounting groove and a first conductive contact positioned in the mounting groove, the first conductive contact is electrically connected with the control board and the power supply, and
The remote controller is detachably arranged in the mounting groove and is provided with a second conductive contact, and the second conductive contact is used for being abutted to the first conductive contact.
In an embodiment, the first and second conductive contacts are each configured as a magnetic conductive contact, the magnetic properties of the first conductive contact being different from the magnetic properties of the second conductive contact.
In one embodiment, the power supply and the bottom plate are integrally formed by a heat-conducting pouring sealant.
According to the technical scheme, the physiotherapy lamp is provided with the frame, the lamp bead panel and the 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 one side of the frame and covers the lamp bead panel, the heat dissipation fins are arranged on one side of the heat conduction substrate, which is away from the lamp bead panel, each group 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. Compared with the physiotherapy lamp adopting a fan, a radiating fin or a combination thereof in the prior art, the technical scheme of the application is that only the radiating fins and the heat conducting substrate are arranged, heat is conducted to the radiating fins through the heat conducting substrate, and the radiating fins can radiate the heat to the surrounding environment, so that heat radiation is realized. The plurality of sub-fins in each group of radiating fins are arranged in parallel at intervals, and an air flow channel is formed between two adjacent sub-fins, so that the air flow can be guided, the radiating area of the radiating fins is increased, and the radiating efficiency is improved; and the radiating fins are small in size, and the heat conducting substrate covers the panel of the lamp bead, so that the space is saved, and the size of the physiotherapy lamp is reduced while the radiating effect is improved.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings that are required in the embodiments or the description of the prior art will be briefly described, and it is obvious that the drawings in the following description are only some embodiments of the present invention, and other drawings may be obtained according to the structures shown in these drawings without inventive effort for a person skilled in the art.
FIG. 1 is a schematic diagram of a physical therapy lamp according to an embodiment of the present invention;
FIG. 2 is an exploded view of one embodiment of FIG. 1;
FIG. 3 is a schematic diagram illustrating an embodiment of the heat dissipating assembly of FIG. 2;
fig. 4 is a schematic structural diagram of an embodiment of the heat dissipation fin in fig. 3;
FIG. 5 is a schematic diagram of an embodiment of another view of FIG. 3;
Fig. 6 is a schematic structural diagram of an embodiment of another view angle of fig. 1.
Reference numerals illustrate:
100. The device comprises a frame, 110, a first frame strip, 111, a limiting plate, 120, a second frame strip, 121, a main body, 130, a plugging cover, 140, a bottom plate, 150, a cover body, 151, a mounting groove, 161, a plug, 162 and a socket;
200. a bead panel; 210, a fixed layer, 220, an LED lamp, 230, a lens;
300. The heat dissipation assembly comprises a heat dissipation assembly, a heat conduction substrate, 320, heat dissipation fins, 321, sub fins, 322, connecting fins, 323, fixed fins, 324 and an air flow channel;
410. dust screen 420, bracket 421, extension part 422, support part;
510. The touch screen comprises a power supply, 520, a control panel, 530, a first conductive contact, 540, a remote controller, 541 and a touch screen operation interface.
The achievement of the objects, functional features and advantages of the present invention will be further described with reference to the accompanying drawings, in conjunction with the embodiments.
Detailed Description
The following description of the embodiments of the present invention will be made clearly and fully with reference to the accompanying drawings, in which it is evident that the embodiments described are only some, but not all embodiments of the invention. All other embodiments, which can be made by those skilled in the art based on the embodiments of the invention without making any inventive effort, are intended to be within the scope of the invention.
It should be noted that, if directional indications (such as up, down, left, right, front, and rear are referred to in the embodiments of the present invention), the directional indications are merely used to explain the relative positional relationship, movement conditions, and the like between the components in a specific posture, and if the specific posture is changed, the directional indications are correspondingly changed.
In addition, if there is a description of "first", "second", etc. in the embodiments of the present invention, the description of "first", "second", etc. is for descriptive purposes only and is not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defining "a first" or "a second" may explicitly or implicitly include at least one such feature. In addition, if "and/or" and/or "are used throughout, the meaning includes three parallel schemes, for example," a and/or B "including a scheme, or B scheme, or a scheme where a and B are satisfied simultaneously. In addition, the technical solutions of the embodiments may be combined with each other, but it is necessary to base that the technical solutions can be realized by those skilled in the art, and when the technical solutions are contradictory or cannot be realized, the combination of the technical solutions should be considered to be absent and not within the scope of protection claimed in the present invention.
The physiotherapy lamp is widely applied to the fields of physiotherapy health care, cosmetology and the like, and can promote blood circulation, relieve muscle pain, accelerate wound healing, improve skin state and the like by providing illumination energy through the red light and the infrared light lamp beads, so that physiotherapy effect is realized. In recent years, as the demand for health and beauty increases, the market demand for physiotherapy lamps is also increasing.
The heat dissipation part of the prior physiotherapy lamp mostly adopts the design of a fan, a heat dissipation sheet or a combination thereof, so as to dissipate the heat energy generated by the physiotherapy lamp in a heat conduction and convection mode. Although the heat dissipation mode can meet the heat dissipation requirement of the equipment to a certain extent, the heat dissipation mode often needs a larger space to accommodate the heat dissipation fins and the fan, so that the volume of the physiotherapy lamp is increased, and the use is limited.
The invention provides a physiotherapy lamp, which is used for improving the heat dissipation effect and reducing the volume of the physiotherapy lamp.
Referring to fig. 1 to 3, in an embodiment, the physiotherapy lamp includes a frame 100, a bead panel 200 and a heat dissipation assembly 300, wherein the bead panel 200 is disposed 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 disposed on one side of the frame 100 and covers the bead panel 200, the heat dissipation fins 320 are disposed on one side of the heat conducting substrate 310 facing away from the bead panel 200, each group of heat dissipation fins 320 includes a plurality of sub-fins 321 arranged in parallel at intervals, and an air flow channel 324 is formed between two adjacent sub-fins 321.
The frame 100 provides support and mounting base for the lamps for physiotherapy, and the bead panel 200 is used to emit radiant light for physiotherapy of a user. In an embodiment, the frame 100 is disposed around the periphery of the bead panel 200, the bead 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 clamped in the mounting groove 151, and the lens 230 is disposed on one side of the LED lamp 220 where light is emitted, so as to amplify or condense the LED lamp 220, thereby improving the radiance of the LED lamp 220. In an embodiment, the LED lamp 220 is configured as a red lamp and an infrared lamp, wherein the wavelength of the red lamp may be configured as 630nm or 660nm, and the wavelength of the infrared lamp may be configured as 810nm or 850nm, to ensure a higher radiation frequency and better penetrability of the light of the LED lamp 220. Wherein, the fixing layer 210 is made of plastic materials such as polycarbonate or polyimide, so as to ensure that the fixing layer 210 has better plasticity and insulativity, and ensure the applicability and the use safety of the physiotherapy lamp.
The heat dissipation assembly 300 is used for dissipating heat generated during the operation of the bead panel 200. In an 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 on one side of the fixed fin 323 in parallel and spaced apart, so that the heat dissipation fin 320 forms a single module. The extending direction of the sub-fins 321 is perpendicular to the extending direction of the fixed fins 323, and air flow channels 324 are formed in gaps between every two adjacent sub-fins 321 for air to pass through. The number of the sub-fins 321 may be flexibly set according to practical situations, which is not limited herein. One side of the heat conductive substrate 310 is closely attached to the bead panel 200, and one side of the fixed fin 323 facing away from the sub-fin 321 is closely attached to the other side of the heat conductive substrate 310. The heat conducting substrate 310 and the bead panel 200 may be detachably connected by bolts or buckles, so as to facilitate replacement and maintenance of the heat dissipating assembly 300. Of course, in other embodiments, the heat conductive substrate 310 and the bead panel 200 may be fixedly connected by adhesion, and the like, which is not limited herein. In one embodiment, the materials of the heat dissipating assembly 300 are all configured with aluminum, so that the heat dissipating assembly 300 has better thermal conductivity. Of course, in other embodiments, the material of the heat dissipation assembly 300 may also be configured as copper or aluminum alloy, etc., and is not limited herein. In one embodiment, the thickness of the heat conductive substrate 310 is 2mm, further reducing the thickness of the lamps. Of course, in other embodiments, the thickness of the heat conducting substrate 310 may be flexibly set according to practical situations, which is not limited herein.
According to the technical scheme, the physiotherapy lamp is provided with a frame 100, a lamp bead panel 200 and a heat dissipation assembly 300, wherein the lamp bead panel 200 is arranged on the frame 100, the heat dissipation assembly 300 comprises a heat conduction substrate 310 and at least one heat dissipation fin 320, the heat conduction substrate 310 is arranged on the frame 100 and covers one side of the lamp bead panel 200, the heat dissipation fins 320 are arranged on one side of the heat conduction substrate 310, which is away from the lamp bead panel 200, each group of heat dissipation fins 320 comprises a plurality of sub fins 321 which are arranged in parallel at intervals, and an air flow channel 324 is formed between every two adjacent sub fins 321. Compared with the physiotherapy lamp adopting a fan, a radiating fin or a combination thereof in the prior art, the technical scheme of the application only sets the radiating fins 320 and the heat conducting substrate 310, and the heat conducting substrate 310 conducts heat to the radiating fins 320, so that the radiating fins 320 can radiate the heat to the surrounding environment to realize heat radiation. The plurality of sub-fins 321 in each group of heat dissipation fins 320 are arranged in parallel at intervals, and the wind flow channel 324 is formed between two adjacent sub-fins 321, so that the flow of air can be guided, the heat dissipation area of the heat dissipation fins 320 is increased, the heat dissipation efficiency is improved, the heat dissipation fins 320 are small in size, the heat conduction substrate 310 is covered on the lamp bead panel 200, the space is saved, the heat dissipation effect is improved, and the size of the physiotherapy lamp is reduced.
Referring to fig. 3 to 5, in an embodiment, each set of heat dissipation fins 320 further includes a plurality of connection fins 322, and each of the plurality of connection fins 322 is disposed parallel to the heat conductive substrate 310 at a distance and connects two adjacent sub-fins 321.
In one embodiment, the connecting fins 322 are disposed parallel to the fixed fins 323, and the connecting fins 322 and the fixed fins 323 are disposed at opposite ends of the sub-fins 321. In an embodiment, a connecting fin 322 is disposed between any two adjacent sub-fins 321, and a plurality of connecting fins 322 are disposed at intervals along the length of the sub-fins 321. Of course, in other embodiments, the connecting fins 322 may be disposed at an intermediate position, and only one connecting fin 322 may be disposed along the length direction of the sub-fins 321, which is not limited herein.
According to the technical scheme provided by the embodiment of the invention, the connecting fins 322 are arranged, so that the heat dissipation area is further increased, and the heat dissipation efficiency is improved. In addition, the connecting fins 322 connect adjacent sub-fins 321, which can improve the structural stability of the heat dissipation fins 320, avoid the deformation of the fins, and further improve the service life of the heat dissipation fins 320.
In one embodiment, the heat sink fins 320 are bonded to the heat conductive substrate 310 by a thermally conductive silicone.
The heat transferred from the bead panel 200 to the heat conductive substrate 310 is transferred to the heat sink fins 320 through the contact surface between the heat conductive substrate 310 and the heat sink fins 320. The heat transfer between the contact surfaces is hindered by the very low thermal conductivity of air. And the heat-conducting silica gel can well fill the gap of the contact surface so as to extrude air out of the contact surface. The heat-conducting silica gel may be heat-conducting silicone grease, heat-conducting pouring sealant, or the like, and is not limited herein. In one embodiment, the fixed fins 323 are bonded to the thermally conductive substrate 310 by thermally conductive silicone. Of course, in other embodiments, the plurality of sub-fins 321 may be directly adhered to the heat conductive substrate 310 by the heat conductive silicone, which is not limited herein.
According to the technical scheme provided by the embodiment of the invention, the heat-conducting silica gel is used, so that the heat-radiating fins 320 can be tightly connected with the heat-conducting substrate 310. On the one hand, the heat-conducting silica gel can fill the gaps, so that the contact surface of the heat-radiating fins 320 and the aluminum substrate can be fully contacted better, and the heat transfer is prevented from being hindered by air. On the other hand, the heat-conducting silica gel has excellent heat conductivity, and can quickly transfer the heat transferred from the bead panel 200 to the heat-conducting substrate 310 to the heat-radiating fins 320, thereby improving the heat-radiating efficiency.
In one embodiment, the height of each set of heat dissipation fins 320 is greater than or equal to 20mm and less than or equal to 30mm, and the thickness of each sub-fin 321 is greater than or equal to 0.3mm and less than or equal to 0.5mm.
The height of the heat radiation fins 320 may affect the overall thickness of the lamps, and the smaller the height of the heat radiation fins 320, the smaller the overall thickness of the lamps, i.e., the smaller the volume of the lamps. In one embodiment, the heights of all the sub-fins 321 within each set of fins 320 are uniform and are all 25mm. Of course, in other embodiments, the heights of all the sub-fins 321 may be different, so long as the heights are ensured to be between 20mm and 30mm, and the heights of the sub-fins 321 may be flexibly set according to practical situations, which is not limited herein.
The thickness of the sub-fins 321 and the spacing between adjacent sub-fins 321 may affect the number of sub-fins 321 that may be disposed within a limited space. In an 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 the sub-fins 321 is 0.4mm, and the spacing between any two adjacent sub-fins 321 is 5mm. Of course, in other embodiments, the thicknesses of all the sub-fins 321 may be different, so long as the thicknesses of the sub-fins 321 are ensured to be between 0.3mm and 0.5mm, the spacing between any two adjacent sub-fins 321 may be different, so long as the spacing between two adjacent sub-fins 321 is ensured to be between 4mm and 6mm, and the heights of the sub-fins 321 and the spacing between two adjacent sub-fins 321 may be flexibly set according to practical situations, so that the method is not limited.
According to the technical scheme, the volume of the physiotherapy lamp can be reduced while the heat dissipation effect is ensured by limiting the height of the heat dissipation fins 320, the thickness of the sub fins 321 can be reduced while the mechanical strength of the sub fins 321 is ensured by limiting the thickness of the sub fins 321, so that more sub fins 321 are arranged in a limited space, the heat dissipation area is further increased, and the heat dissipation area is further increased while the formation of the wind flow channels 324 is ensured by limiting the distance between the adjacent sub fins 321, so that the heat dissipation effect of the physiotherapy lamp is improved.
Referring to fig. 3 to 5, in an embodiment, the heat dissipating assembly 300 includes a plurality of heat dissipating fins 320, and the plurality of heat dissipating fins 320 are uniformly arranged on the heat conducting substrate 310 at intervals.
In an embodiment, the heat dissipating assembly 300 includes six groups of heat dissipating fins 320, and the six groups of heat dissipating fins 320 are uniformly arranged on the same heat conducting substrate 310 at intervals in a two-column and three-row arrangement manner. In an embodiment, the number of the sub-fins 321 of the heat dissipation fins 320 located at the middle portion of the heat conduction substrate 310 is greater than the number of the sub-fins 321 of the heat dissipation fins 320 located at the two ends of the heat conduction substrate 310 to adapt to the heat dissipation requirement. The number of the sub-fins 321 of the heat dissipation fins 320 at different positions can be flexibly set according to actual requirements, which is not limited herein. Of course, in other embodiments, the number of the heat dissipating fins 320 may be four or eight, and the heat dissipating fins 320 may be arranged in two rows, two columns, four rows, two columns, etc., which is not limited herein.
According to the technical scheme provided by the embodiment of the invention, the heat dissipation area of the physiotherapy lamp can be further increased by arranging the plurality of groups of heat dissipation fins 320, so that the heat dissipation effect is improved.
Referring to fig. 2 and 6, in an embodiment, the physiotherapy lamp further includes a bracket 420 and a dust screen 410, the bracket 420 is disposed on the frame 100, and the dust screen 410 is magnetically connected to the bracket 420 and covers a side of the heat dissipation fins 320 facing away from the heat conductive substrate 310.
In an embodiment, the support 420 is detachably disposed on the frame 100, a first magnetic member is disposed on the support 420, a second magnetic member is disposed on the dust screen 410, and the magnetic properties of the first magnetic member and the second magnetic member are different, and the dust screen 410 is adsorbed on the support 420 through the second magnetic member to achieve fixation. In an embodiment, two brackets 420 are provided, and two brackets 420 are disposed between the heat dissipation assembly 300 and the dust screen 410 and located at two ends of the dust screen 410, each bracket 420 has an extension portion 421 and a support portion 422, and the extension portion 421 is disposed at one side of the support portion 422 and located at a middle position of the support portion 422. The supporting portion 422 is detachably connected to the frame 100, and the extending portion 421 extends between the heat dissipating fins 320 and is provided with a first magnetic member. Gaps are formed between any two groups of heat dissipation fins 320 arranged at intervals along the width direction of the heat conduction substrate 310, so that the extending portion 421 can pass through the gaps, one side of the extending portion 421 is detachably connected with the heat conduction substrate 310, and the other side of the extending portion 421 is detachably connected with the dust screen 410 through the first magnetic piece. Of course, in other embodiments, the dust screen 410 may be further provided with the bracket 420 by means of a buckle or a bolt, or directly provided to the frame 100, which is not limited herein.
According to the technical scheme provided by the embodiment of the invention, the dustproof net 410 is arranged, so that the radiating assembly 300 can be protected while the radiating assembly 300 is ensured to be in contact with the outside air, the problems of scratch and the like of the radiating fins 320 are avoided, and the service life of the radiating assembly 300 is prolonged. By providing the bracket 420, a support and installation base can be provided for the dust screen 410, and rapid assembly and disassembly of the dust screen 410 is realized.
Referring to fig. 2 and 6, in an embodiment, the frame 100 includes a first frame strip 110, a second frame strip 120, a sealing cover 130 and a bottom plate 140, wherein the first frame strip 110 is connected with one ends of the bead panel 200 and the heat dissipation component 300, the second frame strip 120 is arranged parallel to the first frame strip 110 at intervals and is connected with the other ends of the bead panel 200 and the heat dissipation component 300, the sealing cover 130 covers one ends of the bead panel 200 and the heat dissipation component 300 and is connected with one ends of the first frame strip 110 and the second frame strip 120, and the bottom plate 140 is opposite to the sealing cover 130 and is connected with the other ends of the first frame strip 110 and the second frame strip 120.
In an embodiment, the first frame strip 110 and the second frame strip 120 have the same structure, and each of the first frame strip and the second frame strip comprises a main body 121 and a limiting plate 111, the limiting plates 111 protrude out of one side of the main body 121, the bead panel 200 and the heat conducting substrate 310 are both fixed on the main body 121, the bracket 420 is arranged between the two main bodies 121, the dust screen 410 can slide between the two main bodies 121 along the limiting plates 111 to be magnetically attracted with the bracket 420, and one side, away from the bracket 420, of the limiting plates 111 and the dust screen 410 is abutted, so that the dust screen 410 is limited to the frame 100. The plugging cover 130 and the bottom plate 140 are arranged in parallel with the supporting portion 422 of the bracket 420, and the plugging cover 130 and the bottom plate 140 respectively cover two ends of the bead panel 200 and the heat dissipation assembly 300 and one side of the two supporting portions 422 away from the extending portion 421, so that the encapsulation of the physiotherapy lamp is realized. In one embodiment, the main body 121 is hollow, and the plugging cover 130 and the base plate 140 are provided with protrusions, which can be inserted into the main body 121, so as to facilitate quick connection of the plugging cover 130 and the base plate 140 with the main body 121. In one embodiment, the bead panel 200 and the thermally conductive substrate 310 are both detachably connected to the two bodies 121, and the plugging cover 130 and the bottom plate 140 are also both detachably connected to the two bodies 121. The detachable connection mode can be a bolt or a buckle, and the like, and is not limited herein. In an embodiment, the first frame strip 110 and the second frame strip 120 are made of aluminum, so as to ensure that they can provide a supporting effect and have good heat dissipation. In one embodiment, the base plate 140 and the blocking cover 130 are made of plastic, so as to reduce external impact or vibration and provide protection for the physiotherapy lamp. Of course, in other embodiments, the first frame strip 110 and the second frame strip 120 may be made of copper or aluminum alloy, and the bottom plate 140 and the plugging cover 130 may be made of carbon fiber reinforced plastic, which is not limited herein.
Referring to fig. 1 and 2, in an embodiment, the physiotherapy lamp further includes a power supply 510, a control board 520, a cover 150, and a remote controller 540, wherein the power supply 510 and the control board 520 are both disposed on the base plate 140, the cover 150 is covered on the power supply 510 and the control board 520, 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 with the control board 520 and the power supply 510, the remote controller 540 is detachably disposed in the mounting groove 151, and the remote controller 540 is provided with a second conductive contact for abutting against the first conductive contact 530.
In an embodiment, the base plate 140 is provided with a mounting position, the power source 510 and the control board 520 are both arranged at the mounting position, and the cover 150 is covered on the power source 510 and the control board 520 and is connected with the base plate 140, so as to realize the packaging of the power source 510. The control board 520 is electrically connected to the power source 510 and the LED lamp 220, and the remote controller 540 is connected to the control board 520 by wireless communication. The remote controller 540 is provided with a touch screen operation interface 541, and the touch screen operation interface 541 also has a display function to control the LED lamp 220 and display parameters such as a wavelength, a time, and the like related to the LED lamp 220. In one embodiment, the control board 520 includes a circuit board, and a microcontroller and a communication chip integrated on the circuit board, the controller is electrically connected with the LED lamp 220, and the communication chip is electrically connected with the first conductive contact 530 and is in wireless communication with the remote controller 540 and is electrically connected with the microcontroller. The remote controller 540 and the communication chip may be in wireless communication connection through infrared communication or radio frequency communication, and the control of the remote controller 540 and the microcontroller on the LED lamp 220 may be realized through a logic algorithm, which is not limited herein. In one embodiment, the side of the base plate 140 facing away from the cover 150 is further provided with a plug 161 and a socket 162 electrically connected to the control board 520 and the power source 510, and the plug 161 and the socket 162 are exposed to facilitate connection of the physiotherapy lamp with external devices.
When the remote controller 540 is placed in the mounting groove 151, the first conductive contact 530 and the second conductive contact are contacted to realize the closing of a circuit, the power supply 510 can charge the remote controller 540, and the control board 520 can realize the transmission of electric signals with the remote controller 540, so that the touch screen operation interface 541 can display relevant parameters of the LED lamp 220. When the remote controller 540 leaves the mounting groove 151, the first conductive contact 530 is separated from the second conductive contact, and the remote controller 540 can be in wireless communication connection with the control board 520 to realize wireless remote control of the LED lamp 220.
In one embodiment, the first conductive contact 530 and the second conductive contact are each configured as a magnetic conductive contact, the magnetic properties of the first conductive contact 530 being different from the magnetic properties of the second conductive contact. When the first conductive contact 530 and the second conductive contact are attracted, the remote controller 540 can be fixed on the mounting groove 151, and the remote controller 540 is taken out, so that the first conductive contact 530 and the second conductive contact are separated, and the remote controller 540 can be detached.
In one embodiment, the power source 510 is integrally formed with the base plate 140 by a thermally conductive potting compound.
The power supply 510 can produce a large amount of heat in the use process, and the heat conduction pouring sealant has good heat conduction performance, and the heat conduction pouring sealant can fill the gap between the bottom plate 140 and the battery, can rapidly and uniformly conduct the heat produced by the power supply 510 onto the bottom plate 140, and the surface area of the bottom plate 140 is large, so that the heat radiating area can be increased, and the heat can be transferred to the heat radiating component 300, so that the heat radiating effect is further improved. In addition, the heat-conducting pouring sealant has good electrical insulation performance, and can prevent short circuit or electric leakage between the power supply 510 and the bottom plate 140.
According to the technical scheme, the control panel 520 and the remote controller 540 are arranged, so that the control of the physiotherapy lamp can be realized, the use convenience and the intelligence of the physiotherapy lamp are improved, and the magnetic conductive contacts are arranged, so that the remote controller 540 and the cover body 150 can be detachably connected while the circuit is closed, and the use convenience is improved. The power supply 510 and the bottom plate 140 are integrated through the heat conduction pouring sealant, so that the problem of heat dissipation of the power supply 510 is solved, and the heat dissipation effect and the use safety of the physiotherapy lamp are further improved.
The foregoing description is only exemplary embodiments of the present invention and is not intended to limit the scope of the present invention, and all the equivalent structural changes made by the description of the present invention and the accompanying drawings or the direct/indirect application in other related technical fields are included in the scope of the present invention.
Claims (10)
1. A physiotherapy lamp, comprising:
a frame;
a bead panel provided on the frame, and
The heat dissipation assembly comprises a heat conduction substrate and at least one group of heat dissipation fins, wherein the heat conduction substrate is arranged on one side of the frame and covered on the lamp bead panel, the heat dissipation fins are arranged on one side of the heat conduction substrate, which is away from the lamp bead panel, each group 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.
2. The physiotherapy lamp of claim 1, wherein each set of said heat dissipating fins further comprises a plurality of connecting fins, each of said connecting fins being disposed in parallel spaced relation to said heat conducting base plate and connecting two adjacent said sub-fins.
3. The physiotherapy lamp of claim 1, wherein said heat dissipating fins are bonded to said heat conducting substrate by a heat conducting silicone.
4. The physiotherapy lamp as set forth in claim 1, wherein each set of said heat radiation fins has a height of 20mm or more and 30mm or less, and
The thickness of each sub-fin is more than or equal to 0.3mm and less than or equal to 0.5mm.
5. The physiotherapy lamp of claim 1, wherein the heat dissipating assembly comprises a plurality of groups of heat dissipating fins, and the plurality of groups of heat dissipating fins are uniformly spaced apart from the heat conducting substrate.
6. The physiotherapy lamp of claim 1, the physiotherapy lamp is characterized by further comprising:
a bracket provided to the frame, and
And the dustproof net is magnetically connected with the bracket and covers one side of the radiating fins, which is away from the heat conducting substrate.
7. The physiotherapy light of claim 1, wherein the frame comprises:
the first frame strip is connected with one end of the lamp bead panel and one end of the heat dissipation assembly;
the second frame strips are arranged in parallel at intervals with the first frame strips and are connected with the lamp bead panel and the other end of the heat dissipation assembly;
A plugging cover, which is arranged at one end of the lamp bead panel and one end of the heat dissipation component and is connected with one end of the first frame strip and one end of the second frame strip, and
The bottom plate is arranged opposite to the plugging cover and is connected with the other ends of the first frame strip and the second frame strip.
8. The physiotherapy lamp of claim 7, the physiotherapy lamp is characterized by further comprising:
the power supply is arranged on the bottom plate;
The control panel is arranged on the bottom plate;
the cover body is covered on the power supply and the control board and is provided with a mounting groove and a first conductive contact positioned in the mounting groove, the first conductive contact is electrically connected with the control board and the power supply, and
The remote controller is detachably arranged in the mounting groove and is provided with a second conductive contact, and the second conductive contact is used for being abutted to the first conductive contact.
9. The therapeutic light of claim 8, wherein the first electrically conductive contact and the second electrically conductive contact are each configured as a magnetically conductive contact, the first electrically conductive contact having a magnetic property that is different from the magnetic property of the second electrically conductive contact.
10. The physiotherapy lamp of claim 8, wherein the power source is integrally formed with the base plate by a thermally conductive potting compound.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202510969480.0A CN120459549B (en) | 2025-07-15 | 2025-07-15 | Physiotherapy lamp |
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202510969480.0A CN120459549B (en) | 2025-07-15 | 2025-07-15 | Physiotherapy lamp |
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| CN120459549A true CN120459549A (en) | 2025-08-12 |
| CN120459549B CN120459549B (en) | 2025-10-24 |
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|---|---|
| CN120459549B (en) | 2025-10-24 |
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