Temporary culture lamp

Through the combined design of the lens plate and the reflector, the temporary maintenance lamp realizes the refraction and concentration of light and the secondary utilization of light, solves the problem of light energy waste in the existing technology, improves the light efficiency and intensity, and realizes the full utilization of light energy.

CN223121257UActive Publication Date: 2025-07-18佛照(海南)科技有限公司
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Patent Information

Application Number
CN202422115725.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-07-18
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

There are problems of light energy waste in structural design and optical design of existing breeding lamps, resulting in low light energy utilization efficiency.

Method used

A temporary maintenance lamp is designed to realize refraction and secondary utilization of light through the combination of the lens plate and the reflector, thereby reducing light energy loss.

Benefits of technology

The light efficiency and light intensity are improved, the light energy waste is reduced, and the full utilization of light energy is achieved.

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Abstract

The utility model relates to the technical field of cultivation lamps, in particular to a temporary cultivation lamp. The temporary culture lamp comprises a bottom cover, a light-emitting assembly, an upper cover and a side cover. The light-emitting assembly comprises a light source fixing plate and a lens plate, the light source fixing plate is connected with the bottom cover, and a plurality of light-emitting parts are installed on the light source fixing plate at intervals. The lens plate is formed with a plurality of lenses, each of which is aligned with one of the light emitting elements. The upper cover and the bottom cover are detachably connected, a cavity is defined by the upper cover and the bottom cover, and the light-emitting assembly is located in the cavity. The light source fixing plate is provided with a light reflecting piece, and the light reflecting piece is arranged in the cavity in a surrounding mode and used for reflecting light reflected to the cavity by the lens back to the lens. The side covers are arranged on the side wall faces of the bottom cover and the upper cover, and the side covers are detachably connected with the bottom cover. According to the temporary culture lamp provided by the utility model, light rays emitted by the light-emitting part can be secondarily utilized while concentrated irradiation can be performed on a specific culture area, so that the loss of light energy is effectively reduced, and the full utilization of the light energy is realized.
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Description

Technical Field

[0001] The utility model relates to the technical field of aquaculture lamps, in particular to a temporary aquaculture lamp. Background Art

[0002] In the aquaculture market, temporary holding lamps (also known as aquaculture heat preservation lamps or special lighting lamps for aquaculture) are usually used to provide the necessary light and temperature conditions for livestock, poultry or aquatic animals to promote the healthy growth and development of aquatic animals. In the existing aquaculture market, most temporary holding lamps use conventional floodlights, mining lamps or bulbs, but the above lamps have defects in structural design and optical design when used in actual aquaculture applications, which easily leads to waste of light energy. Utility Model Content

[0003] In order to solve the defects of the prior art, the utility model provides a temporary breeding lamp, which can centrally illuminate a specific breeding area and at the same time recycle the light emitted by the light-emitting component, effectively reducing light energy loss and achieving full utilization of light energy.

[0004] In order to solve the above technical problems, the utility model provides a temporary maintenance lamp, comprising:

[0005] Bottom cover;

[0006] A light-emitting assembly, comprising a light source fixing plate and a lens plate, wherein the light source fixing plate is connected to the bottom cover at one side thereof facing the bottom cover, and a plurality of light-emitting elements are installed on the light source fixing plate at intervals; the lens plate is located at a side of the light source fixing plate away from the bottom cover, and a plurality of lenses are formed on a side of the lens plate away from the light source fixing plate, and each of the lenses is aligned with one of the light-emitting elements;

[0007] An upper cover is detachably connected to the bottom cover, the upper cover and the bottom cover are arranged to form a cavity, and the light-emitting component is located in the cavity; a reflector is arranged on a side of the light source fixing plate away from the bottom cover, the reflector is arranged to surround the cavity, and the reflector is used to reflect the light reflected by the lens to the cavity back to the lens;

[0008] The side cover is arranged on the side wall surfaces of the bottom cover and the upper cover, and the side cover is detachably connected to the bottom cover.

[0009] Among them, the reflective element is reflective paper, the bottom of the reflective paper is attached to the light source fixing plate, the side of the reflective paper is attached to the inner side of the upper cover, and the back of the lens forms a reflective curved surface, which faces the bottom of the reflective paper.

[0010] Wherein, at least one circle of waterproof rubber ring is arranged at the bottom of the reflective element, and the waterproof rubber ring is arranged around the plurality of light-emitting elements.

[0011] Among them, it also includes:

[0012] A reflective cup is detachably connected to the bottom cover, an opening is formed on the inner side of the reflective cup, the lens is located in the opening, and the reflective surface of the reflective cup faces the lens.

[0013] Wherein, the bottom cover is provided with a heat sink, the light source fixing plate is detachably connected to a side of the heat sink away from the bottom cover, and the inner wall surface of the side cover is detachably connected to the heat sink.

[0014] Wherein, a heat conducting plate is arranged on one side of the heat sink facing the light emitting element, the heat conducting plate is connected to the light source fixing plate, and the heat conducting plate and the light source fixing plate are both made of heat conducting material;

[0015] A plurality of heat dissipation fins are arranged at intervals on a side of the heat conduction plate away from the light emitting member, a heat dissipation hole is formed on the bottom cover, and the heat dissipation fins face the heat dissipation hole.

[0016] Among them, the heat dissipation fin forms a limiting rib, the limiting rib extends along the length direction of the heat dissipation fin, a connecting part is formed between two adjacent heat dissipation fins through the limiting rib, and the bottom cover forms a connecting buckle, and the connecting buckle is inserted into the connecting part to connect the bottom cover and the radiator.

[0017] Wherein, the inner side wall of the side cover is provided with a connecting boss, the heat conducting plate is provided with a threaded hole, and the connecting boss is threadedly connected to the threaded hole to connect the side cover and the radiator.

[0018] Wherein, it also includes a first bracket and a second bracket, the first bracket is detachably connected to a side of the bottom cover away from the light-emitting component, and the second bracket is detachably connected to the first bracket.

[0019] Wherein, the first bracket is provided with a connecting plate, and the connecting plate is rotatably connected to the second bracket through connecting bolts;

[0020] The connecting plate is formed with an arc-shaped groove, an adjusting bolt is connected in the arc-shaped groove, and the adjusting bolt is connected to the second bracket.

[0021] The implementation of this utility model has the following beneficial effects:

[0022] According to the temporary maintenance lamp provided by the utility model, by aligning each lens on the lens plate with one of the light-emitting parts on the light source fixing plate, the lens can refract and focus the light emitted by the light-emitting part, so that the light emitted by the light-emitting part can be propagated at a specific angle and direction after passing through the lens, and concentrated on a specific area, thereby improving the lighting efficiency of the temporary maintenance lamp and enhancing the lighting intensity.

[0023] Since some light is reflected back into the cavity between the upper cover and the bottom cover when passing through the lens, a reflecting member is provided on the light source fixing plate at this time. The reflecting member reflects the light reflected back into the cavity by the lens back to the lens again, so as to reuse the light reflected by the lens, thereby reducing the reflection loss of light on the lens surface, realizing the full utilization of the light energy generated by the light-emitting member, and effectively reducing the waste of light energy.

[0024] Therefore, for the temporary culture lamp provided in this embodiment, each lens refracts and condenses the light emitted by the corresponding light-emitting member, so that the temporary culture lamp can concentrate the irradiation on a specific culture area; at the same time, the reflecting member reuses the light reflected by the lens, which can effectively reduce the light energy loss and realize the full utilization of the light energy. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is a three-dimensional structural schematic diagram of the temporary culture lamp of the present utility model;

[0026] Figure 2 is an exploded structural schematic diagram of the temporary culture lamp of the present utility model;

[0027] Figure 3 is a cross-sectional structural schematic diagram of the temporary culture lamp of the present utility model;

[0028] Figure 4 is a side view structural schematic diagram of the radiator of the present utility model;

[0029] Figure 5 is a three-dimensional structural schematic diagram of the side cover of the present utility model;

[0030] Figure 6 is a connection structural schematic diagram of the first bracket and the second bracket of the present utility model. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0031] To make the purpose, technical solutions and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings. Just for clarification, the orientation terms such as up, down, left, right, front, back, inside, and outside that appear or will appear in the text of the present utility model are only based on the drawings of the present utility model, and they do not specifically limit the present utility model.

[0032] The temporary culture lamp provided by the present utility model can concentrate the irradiation on a specific culture area, and at the same time reuse the light emitted by the light-emitting member 23, effectively reducing the light energy loss and realizing the full utilization of the light energy.

[0033] In a specific embodiment of the present utility model, as Figures 1 to 6As shown in the figure, the temporary culture lamp includes a bottom cover 1, a light-emitting component, an upper cover 3, and a side cover 4. The light-emitting component includes a light source fixing plate 21 and a lens plate 22. One side of the light source fixing plate 21 facing the bottom cover 1 is connected to the bottom cover 1, and a plurality of light-emitting elements 23 are installed at intervals on the light source fixing plate 21. The lens plate 22 is located on the side of the light source fixing plate 21 facing away from the bottom cover 1, and a plurality of lenses 24 are formed on the side of the lens plate 22 facing away from the light source fixing plate 21. Each lens 24 is aligned with one of the light-emitting elements 23.

[0034] The upper cover 3 is detachably connected to the bottom cover 1. The upper cover 3 and the bottom cover 1 enclose a cavity, and the light-emitting component is located in the cavity. A reflecting member 25 is provided on the side of the light source fixing plate 21 facing away from the bottom cover 1. The reflecting member 25 surrounds the cavity, and the reflecting member 25 is used to reflect the light reflected by the lens 24 into the cavity back to the lens 24. The side cover 4 is provided on the side wall surfaces of the bottom cover 1 and the upper cover 3, and the side cover 4 is detachably connected to the bottom cover 1.

[0035] According to the temporary culture lamp provided by the present utility model, by aligning each lens 24 on the lens plate 22 with one of the light-emitting elements 23 on the light source fixing plate 21, the lens 24 can refract and condense the light emitted by the light-emitting element 23, so that the light emitted by the light-emitting element 23 can propagate at a specific angle and direction after passing through the lens 24 and be concentrated on a specific area, thereby improving the light illumination efficiency of the temporary culture lamp and enhancing the light intensity.

[0036] Since part of the light will be reflected back into the cavity between the upper cover 3 and the bottom cover 1 by the lens 24 when passing through the lens 24, at this time, by providing a reflecting member 25 on the light source fixing plate 21, the reflecting member 25 is used to reflect the light reflected by the lens 24 back into the cavity back to the lens 24, so as to reuse the light reflected by the lens 24, thereby reducing the reflection loss of the light on the surface of the lens 24, realizing the full utilization of the light energy generated by the light-emitting element 23, and effectively reducing the waste of light energy.

[0037] Therefore, for the temporary culture lamp provided in this embodiment, each lens 24 refracts and condenses the light emitted by the corresponding light-emitting element 23, so that the temporary culture lamp can concentrate the light on a specific aquaculture area; at the same time, by reusing the light reflected by the lens 24 through the reflecting member 25, the light energy loss can be effectively reduced, and the full utilization of the light energy can be realized.

[0038] Preferably, the lens 24 is a convex lens 24, and specifically, the irradiation area of the temporary culture lamp can be adjusted by adjusting the parameters of the convex lens 24. Of course, the lens 24 is not limited to the convex lens 24, and can also be other optical lenses 24 having a converging effect similar to that of the convex lens 24.

[0039] Preferably, the light-emitting component 23 is an LED lamp. The light source fixing plate 21 can be integrated with a circuit board, and the LED lamp is electrically connected to an external power supply through the circuit board therein, so that the LED lamp can convert electrical energy into light energy.

[0040] It should be noted here that, as Figure 2 shown, a square hole 31 is formed at the top of the upper cover 3, and a plurality of lenses 24 pass through the square hole 31 at the top of the upper cover 3, so that the lenses 24 can transmit light externally. The distance between the top of the upper cover 3 and the bottom cover 1 is D1, and the sum of the thicknesses of the light source fixing plate 21 and the lens plate 22 is D2. D1 is preferably greater than or equal to D2, and the length and width of the light source fixing plate 21 and the length and width of the lens plate 22 are greater than the size of the square hole 31, so that the upper cover 3 can completely accommodate the light source fixing plate 21 and the lens plate 22, ensuring the protection of the upper cover 3 for the light source fixing plate 21 and the lens plate 22.

[0041] Among them, the reflective member 25 is a reflective paper. The bottom of the reflective paper is attached to the light source fixing plate 21, and the side of the reflective paper is attached to the inner side of the upper cover 3. A reflective curved surface is formed on the back of the lens 24, and the reflective curved surface faces the bottom of the reflective paper. As a retroreflective material that has been made into a film and can be directly applied, by making the reflective curved surface of the lens 24 face the bottom of the reflective paper and using the reflective property of the reflective paper, the light reflected by the lens 24 can be reflected back to the lens 24, ensuring the secondary utilization of the light reflected by the lens 24 to reduce light energy loss.

[0042] In addition, since the bottom of the reflective paper is attached to the light source fixing plate 21 and the side of the reflective paper is attached to the inner side of the upper cover 3, that is, the reflective paper can wrap the cavity between the light-emitting component 23 and the upper cover 3 to reflect the scattered light inside the cavity, ensuring the utilization of the light energy inside the cavity and further ensuring the full utilization of the light energy.

[0043] Preferably, the reflective paper is pasted on the light source fixing plate 21 and the inner side of the upper cover 3 with an adhesive. Of course, in some aspects, a screw fixing or magnetic attraction fixing installation method can also be used, which can be selected according to specific circumstances.

[0044] Among them, as Figure 2 shown, at least one circle of waterproof rubber rings 26 is provided at the bottom of the reflective member 25. The waterproof rubber rings 26 surround a plurality of light-emitting components 23 to provide waterproof and sealing protection for the light-emitting components 23 by using the waterproof rubber rings 26, preventing moisture, humidity or other liquids from penetrating into the light-emitting components 23 and protecting the electronic components and circuits inside the light-emitting components 23 from being damaged.

[0045] Furthermore, as Figures 1 to 3As shown, the temporary culture lamp further includes a reflector cup 27. The reflector cup 27 is detachably connected to the bottom cover 1. An opening 271 is formed inside the reflector cup 27. The lens 24 is located at the opening 271, and the reflecting surface 272 of the reflector cup 27 faces the lens 24. The reflecting action of the reflector cup 27 assists in concentrating light, reducing the loss of light during propagation due to scattering or other optical path phenomena, further reducing the loss of light energy, and improving the utilization rate of light energy. Moreover, the reflector cup 27 can also adjust the edge and vignetting effect of the light, reducing glare and the feeling of being dazzling, and enhancing the visual effect of the temporary culture lamp.

[0046] In the embodiment of the present utility model, while the light-emitting component 23 converts electrical energy into light energy, it also converts electrical energy into heat energy. Therefore, a large amount of heat energy is generated when the light-emitting component 23 emits light. To ensure that the temporary culture lamp can effectively dissipate heat when the light-emitting component 23 is working and ensure a stable light-emitting efficiency, as Figures 2 to 4 shown, the bottom cover 1 is provided with a radiator 11. The light source fixing plate 21 is detachably connected to the side of the radiator 11 facing away from the bottom cover 1, and the inner wall surface of the side cover 4 is detachably connected to the radiator 11. Furthermore, the radiator 11 can be used to conduct and dissipate the heat generated by the light-emitting component 23 in the light source fixing plate 21, so that the light-emitting component 23 and its surrounding environment can maintain a certain temperature, thereby ensuring the light-emitting efficiency and service life of the light-emitting component 23.

[0047] Furthermore, as Figure 4 shown, a heat conducting plate 111 is provided on the side of the radiator 11 facing the light-emitting component 23. The heat conducting plate 111 is connected to the light source fixing plate 21. Both the heat conducting plate 111 and the light source fixing plate 21 are made of heat conducting materials. Specifically, both the heat conducting plate 111 and the light source fixing plate 21 are made of aluminum alloy. A plurality of heat dissipating fins 112 are arranged at intervals on the side of the heat conducting plate 111 facing away from the light-emitting component 23. The bottom cover 1 is formed with heat dissipation holes 12, and the heat dissipating fins 112 face the heat dissipation holes 12.

[0048] Furthermore, when using the radiator 11 for heat dissipation, the heat dissipated by the light-emitting component 23 can be conducted to the heat conducting plate 111 through the light source fixing plate 21, and then the heat can be conducted to the heat dissipating fins 112 through the heat conducting plate 111. The heat dissipating fins 112 can be directly in contact with the external environment through the heat dissipation holes 12 of the bottom cover 1, so as to conduct the heat dissipated by the light-emitting component 23 to the external environment through the heat dissipating fins 112, realizing the conduction and heat dissipation of the heat generated by the light-emitting component 23.

[0049] Among them, to connect the radiator 11 to the bottom cover 1, as Figure 4As shown, the heat dissipation fins 112 form limiting ribs 113, which extend along the length direction of the heat dissipation fins 112, and a connecting portion is formed between two adjacent heat dissipation fins 112 through the limiting ribs 113. The bottom cover 1 forms a connecting buckle 13, and the connecting buckle 13 is inserted into the connecting portion, so that the bottom cover 1 and the radiator 11 can be connected by the buckle connection between the connecting buckle 13 and the connecting portion, thereby ensuring the installation stability of the radiator 11 and the bottom cover 1.

[0050] Specifically, in this embodiment, the plurality of heat dissipation fins 112 can be divided into first fins and second fins, wherein the number of first fins is preferably two, and the two first fins are symmetrically arranged on both sides of the heat conducting plate 111 about the center line of the heat conducting plate 111. The limiting rib 113 is formed on the first fin, and the limiting rib 113 extends along the length direction of the first fin. A connection portion is formed between the first fin and the adjacent second fin through the limiting rib 113, so as to provide a limiting boss for the connecting buckle 13, thereby realizing the buckle connection between the bottom cover 1 and the radiator 11.

[0051] In the embodiment of the utility model, the side cover 4 is detachably connected to the radiator 11, such as Figure 5 As shown, the inner side wall of the side cover 4 is provided with a connecting boss 41, and the heat conducting plate 111 is provided with a threaded hole, and the connecting boss 41 is threadedly connected with the threaded hole to connect the side cover 4 and the radiator 11. Specifically, a through hole is formed in the connecting boss 41, and a bolt or one end of the bolt passes through the through hole of the connecting boss 41 and is threadedly connected with the threaded hole of the heat conducting plate 111, so that the side cover 4 and the radiator 11 are threadedly connected.

[0052] It should be noted here that the heat conducting plate 111 is also formed with a connecting hole, and a boss 273 is formed on the side of the reflective cup 27 facing the bottom shell. The boss 273 is inserted into the connecting hole on the heat conducting plate 111, and the bottom surface of the boss 273 is flush with the lower bottom surface of the heat conducting plate 111. An internal thread is provided inside the boss 273. A bolt is installed on the boss 273 and abuts against the lower bottom surface of the heat conducting plate 111 through the nut on the top of the bolt to threadably connect the radiator 11 and the reflective cup 27.

[0053] In the embodiment of the utility model, in order to facilitate the installation of the temporary lamp, Figure 6 As shown, the temporary maintenance lamp also includes a first bracket 51 and a second bracket 52. The first bracket 51 is detachably connected to the side of the bottom cover 1 away from the light-emitting member 23, and the second bracket 52 is detachably connected to the first bracket 51. When the temporary maintenance lamp is used, the first bracket 51 can be used to connect the bottom cover 1, and then the second bracket 52 and the first bracket 51 are connected, so that the first bracket 51 and the second bracket 52 can fix the bottom shell and the structural parts on the bottom shell. When it is necessary to install and fix the temporary maintenance lamp, the second bracket 52 can be directly fixed to achieve the fixation of the temporary maintenance lamp, which effectively improves the convenience of installing the temporary maintenance lamp.

[0054] Specifically, to ensure the stability of the connection between the first bracket 51 and the structural components on the bottom cover 1, the first bracket 51 is directly threadedly connected to the radiator 11. Specifically, as Figure 4 and Figure 6 shown, an installation groove 114 is formed between two adjacent heat dissipation fins 112 of the radiator 11 facing the heat dissipation holes 12. The nut of the connecting bolt 511 is located in the installation groove 114, and the diameter of the nut is larger than the size of the top notch of the installation groove 114. The stud of the connecting bolt 511 passes through the top notch of the installation groove 114 and the first bracket 51 to connect the first bracket 51 to the installation groove 114, so as to ensure the connection stability between the first bracket 51 and the structural components (i.e., the radiator 11) on the bottom cover 1.

[0055] Furthermore, as Figure 6 shown, the first bracket 51 is convexly provided with a connecting plate 512. The connecting plate 512 is rotatably connected to the second bracket 52 through a connecting bolt 511. An arc-shaped groove 513 is formed in the connecting plate 512, and an adjusting bolt 514 is connected in the arc-shaped groove 513. The adjusting bolt 514 is connected to the second bracket 52. Further, when both the connecting bolt 511 and the adjusting bolt 514 are loosened, the first bracket 51 and the second bracket 52 can be relatively rotated, so as to adjust the installation angle of the temporary culture lamp, so that the temporary culture lamp can meet various installation scenarios through the relative rotation of the first bracket 51 and the second bracket 52, and improve the installation adaptability of the temporary culture lamp.

[0056] The above is the preferred embodiment of the present utility model. It should be noted that for those of ordinary skill in the art of this technology, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements are also regarded as the protection scope of the present utility model.

Claims

1. A temporary rearing lamp, characterized in that, include: Bottom cover; A light-emitting assembly, comprising a light source fixing plate and a lens plate, wherein the light source fixing plate is connected to the bottom cover at one side thereof facing the bottom cover, and a plurality of light-emitting elements are installed on the light source fixing plate at intervals; the lens plate is located at a side of the light source fixing plate away from the bottom cover, and a plurality of lenses are formed on a side of the lens plate away from the light source fixing plate, and each of the lenses is aligned with one of the light-emitting elements; An upper cover is detachably connected to the bottom cover, the upper cover and the bottom cover are arranged to form a cavity, and the light-emitting component is located in the cavity; a reflector is arranged on a side of the light source fixing plate away from the bottom cover, the reflector is arranged to surround the cavity, and the reflector is used to reflect the light reflected by the lens to the cavity back to the lens; The side cover is arranged on the side wall surfaces of the bottom cover and the upper cover, and the side cover is detachably connected to the bottom cover.

2. The temporary rearing lamp according to claim 1, characterized in that, The reflective element is reflective paper, the bottom of which is attached to the light source fixing plate, and the side of which is attached to the inner side of the upper cover. A reflective curved surface is formed on the back of the lens, and the reflective curved surface faces the bottom of the reflective paper.

3. The temporary rearing lamp according to claim 2, characterized in that, At least one circle of waterproof rubber ring is arranged at the bottom of the reflective element, and the waterproof rubber ring is arranged around the plurality of light-emitting elements.

4. The temporary rearing lamp according to claim 2, wherein, Also includes: A reflective cup is detachably connected to the bottom cover, an opening is formed on the inner side of the reflective cup, the lens is located in the opening, and the reflective surface of the reflective cup faces the lens.

5. The temporary rearing lamp according to any one of claims 1 to 4, characterized in that, The bottom cover is provided with a heat sink, the light source fixing plate is detachably connected to a side of the heat sink away from the bottom cover, and the inner wall surface of the side cover is detachably connected to the heat sink.

6. The temporary rearing lamp according to claim 5, wherein, A heat conducting plate is provided on one side of the heat sink facing the light emitting element, the heat conducting plate is connected to the light source fixing plate, and the heat conducting plate and the light source fixing plate are both made of heat conducting material; A plurality of heat dissipation fins are arranged at intervals on a side of the heat conduction plate away from the light emitting member, a heat dissipation hole is formed on the bottom cover, and the heat dissipation fins face the heat dissipation hole.

7. The temporary rearing lamp according to claim 6, characterized in that, The heat dissipation fin forms a limiting rib, and the limiting rib extends along the length direction of the heat dissipation fin. A connecting portion is formed between two adjacent heat dissipation fins through the limiting rib. The bottom cover forms a connecting buckle, and the connecting buckle is inserted into the connecting portion to connect the bottom cover and the radiator.

8. The temporary rearing lamp according to claim 6, wherein The inner side wall of the side cover is provided with a connecting boss, the heat conducting plate is provided with a threaded hole, and the connecting boss is threadedly connected to the threaded hole to connect the side cover and the radiator.

9. The temporary rearing lamp according to any one of claims 1 to 4, characterized in that, It also includes a first bracket and a second bracket, wherein the first bracket is detachably connected to a side of the bottom cover away from the light-emitting element, and the second bracket is detachably connected to the first bracket.

10. The temporary rearing lamp according to claim 9, wherein The first bracket is provided with a connecting plate, and the connecting plate is rotatably connected to the second bracket through connecting bolts; The connecting plate is formed with an arc-shaped groove, an adjusting bolt is connected in the arc-shaped groove, and the adjusting bolt is connected to the second bracket.