Light collecting lamp

By setting the same size connection structure between the front and rear housings of the light collecting lamps and the radiator, the problems of high cost of use and waste of resources in the existing light collecting lamps are solved, and the function of users to replace the radiator separately as needed is realized, reducing the cost of use and improving the stability and waterproof performance of the equipment.

CN222925461UActive Publication Date: 2025-05-30JIANGSU CHANGZHOU JIABANG ELECTRIC POWER TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421877930.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-05-30
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

There are many ways to dissipate heat from existing light-concentrated lights, but users need to frequently replace the lamps according to different scenarios and damage to the radiator, resulting in high usage costs and waste of resources.

Method used

A light-collection lamp is designed, with the same size connecting structure between the front and rear ends of the radiator of different models and heat dissipation methods, allowing users to replace or maintain the radiator separately.

Benefits of technology

Through this design, users can replace the radiator separately according to the power of the light collecting lamp, reducing usage costs, reducing resource waste, and improving the stability and waterproof performance of the light collecting lamp.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a light collecting lamp which comprises a radiator, a front shell and a rear shell, the front shell and the rear shell are connected to the front end and the rear end of the radiator respectively, and the front shell and the rear shell are detachably connected with the radiator respectively. And connecting structures with the same size are respectively arranged between the front shell and the rear shell and the front and rear ends of the radiators with different models and / or adopting different radiating modes. The connecting structures with the same size are arranged between the front shell, the rear shell and the front ends and the rear ends of the different radiators, so that a user can independently replace the radiators according to the power of the light collecting lamp in the using process, meanwhile, the radiators can be independently maintained and replaced in the using process of the light collecting lamp, and the use cost is reduced. The use cost can be saved for the user, and the resource waste is reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of lighting equipment, and particularly relates to a spotlight. Background Art

[0002] The name of "spotlight" is a newly named term for the application of high-power LED lights in this research. There are many actual market products, such as strong flashlights, fishing lights, laser cannons, photography fill lights, and so on. The main purpose is to meet the application requirements of light brightness, illumination range, lighting distance, and light color in various scenarios.

[0003] In use, the lamp housing of the existing technology has a very high temperature itself, and its heat dissipation mainly occurs through the heat exchange between the surface of the lamp housing and the external air. Tungsten halogen lamps and metal halide lamps can withstand relatively high working temperatures, but LEDs cannot work at high temperatures. Therefore, the LED spotlight must solve the problem of heat dissipation.

[0004] The existing heat dissipation methods are generally as follows:

[0005] 1. Increase the contact area between the housing and the air to improve the heat dissipation efficiency. For example: The Chinese invention patent with the application number CN201910737524.1 discloses a self-cooling LED spotlight, which increases the contact area with the external air by setting heat dissipation fins, thereby enhancing the heat dissipation effect.

[0006] 2. Set a fan inside the lamp housing of the spotlight to accelerate the air convection. For example: The Chinese utility model patent with the application number CN201220230238.X discloses an LED spotlight, which circulates the air inside and outside the radiator by setting a fan in the box-shaped heat dissipation device, thereby enhancing the heat dissipation effect.

[0007] 3. Utilize the coolant to circulate inside the housing to improve the heat dissipation efficiency. For example: The Chinese invention patent with the application number CN201910737536.4 discloses a convection liquid-cooled LED lamp, which uses the coolant to dissipate heat from the lamp.

[0008] Different heat dissipation methods are used to adapt to spotlights with different powers to meet the lighting needs of users in different scenarios. Generally, during use, spotlights with relatively low power adopt the first natural cooling method for heat dissipation, spotlights with relatively high power adopt the second air-cooling heat dissipation method for heat dissipation, and high-power spotlights adopt the third liquid-cooling heat dissipation method for heat dissipation.

[0009] In order to adapt to different usage scenarios, users need to purchase spotlights with different heat dissipation methods, or, when the radiator of the spotlight is damaged, the entire spotlight needs to be replaced. The user's usage cost is high and it is easy to cause waste of resources.

[0010] Therefore, designing a spotlight that can help users save usage costs has become a technical problem that needs to be solved urgently by those skilled in the art.

[0011] In view of this, the present utility model is specifically proposed. Content of the Utility Model

[0012] The present utility model provides a spotlight. By providing connection structures of the same size between the front shell, the rear shell and the front and rear ends of different radiators, during the use process, users can separately replace the radiator according to the power of the spotlight, or when the radiator is damaged, the radiator can be replaced separately, solving the problem of high usage costs of existing spotlights.

[0013] To solve the above technical problems, the basic concept of the technical solution adopted by the present utility model is:

[0014] A spotlight includes a radiator, a front shell and a rear shell respectively connected to the front and rear ends of the radiator. The front shell and the rear shell are detachably connected to the radiator respectively, and connection structures of the same size are respectively provided between the front and rear ends of the front shell and the rear shell and radiators of different models and / or using different heat dissipation methods.

[0015] Further, the connection structure includes:

[0016] Interfaces, provided at the front and rear ends of the radiator;

[0017] Insertion parts, provided at the ends of the front shell and the rear shell, and at least partially inserted into the interfaces;

[0018] Preferably, the front shell and the rear shell are respectively hermetically connected to the radiator.

[0019] Further, there is one interface, and a sealing ring is provided at the overlapping part of the insertion part and the interface; or,

[0020] The interface includes a first interface and a second interface provided on the outer periphery of the first interface. The insertion part includes a first insertion part and a second insertion part corresponding to the first interface and the second interface respectively. A sealing ring is provided at the overlapping part of the first insertion part and the first interface and / or at the overlapping part of the second insertion part and the second interface;

[0021] Preferably, a sealing ring is provided at least between the first interface and the first insertion part.

[0022] Further, the first interface and the second interface are arranged staggeredly in the axial direction of the radiator, and the first interface and the second interface are connected by an extension wall extending along the radial direction of the front shell / rear shell, and the extension wall abuts against the end of the radiator;

[0023] Preferably, the second interface extends outward relative to the first interface; an extension wall extending in a direction approaching the axis of the profile is provided at the end of the second insertion portion, and a first insertion portion extending into the first interface and matingly inserted with the first interface is provided on the extension wall.

[0024] Furthermore, the profile of the radiator includes a first cylindrical portion and a second cylindrical portion arranged coaxially, and the second cylindrical portion is disposed on the outer periphery of the first cylindrical portion;

[0025] The interfaces are provided at the ends of the first cylindrical portion and the second cylindrical portion.

[0026] Furthermore, a mounting plate is provided inside the first cylindrical portion, the mounting plate is arranged along the radial direction of the first cylindrical portion, the front housing and the rear housing are inserted at the front and rear ends of the radiator, and are connected to the mounting plate by screws;

[0027] Preferably, a plurality of screws are provided and arranged uniformly along the circumferential direction of the radiator.

[0028] Furthermore, the diameter of the mounting plate is the same as the inner diameter of the first cylindrical portion, a limiting portion protruding and extending into the first cylindrical portion is provided on the inner wall of the first cylindrical portion, the mounting plate is installed inside the first cylindrical portion and abuts against the limiting portion, and is connected to the front housing and the rear housing by screws.

[0029] Furthermore, the light energy module is installed on the inner periphery of the radiator;

[0030] Preferably, the light energy module is installed on the mounting plate and on the side facing the front housing;

[0031] A lens corresponding to the light energy module is installed at the front end of the front housing.

[0032] Furthermore, an internal power module is provided inside the rear housing and is electrically connected to the light energy module; and / or,

[0033] A power supply module is provided on the rear housing and is electrically connected to the light energy module and / or the internal power module for connection to an external power module outside the rear housing; and / or,

[0034] A control module, electrically connected to the light energy module and electrically connected to the internal power module and / or the power supply module;

[0035] Preferably, the power supply module is connected to an external circuit by a magnetic adsorption power supply method.

[0036] Furthermore, the following are provided on the radiator:

[0037] A base, provided at the bottom of the radiator; and / or,

[0038] A handle, provided at the top of the radiator.

[0039] After adopting the above technical solution, the utility model has the following beneficial effects compared with the prior art:

[0040] 1. By arranging connection structures with the same size between the front shell, the rear shell and the front and rear ends of different radiators, the user can separately replace the radiator according to the power of the spotlight during use. At the same time, during the use of the spotlight, the radiator can be separately maintained and replaced, which is beneficial to saving the use cost for the user and reducing the waste of resources.

[0041] 2. By arranging the front shell, the rear shell to be inserted into the front and rear ends of the radiator and connecting them to the mounting plate inside the radiator through a plurality of screws respectively, the stability of the overall structure of the spotlight can be ensured. At the same time, the screws are hidden inside the spotlight, which can improve the appearance beauty of the spotlight. In addition, it is beneficial to improve the overall waterproof performance.

[0042] The following further describes in detail the specific implementation manners of the utility model with reference to the accompanying drawings. Description of the Drawings

[0043] The accompanying drawings, as a part of the utility model, are used to provide a further understanding of the utility model. The schematic embodiments and descriptions thereof of the utility model are used to explain the utility model, but do not constitute an improper limitation to the utility model. Obviously, the accompanying drawings in the following description are only some embodiments. For those of ordinary skill in the art, other drawings can be obtained according to these drawings without creative efforts. In the drawings:

[0044] Figure 1 is a schematic structural diagram of a spotlight adopting natural heat dissipation in an embodiment of the utility model;

[0045] Figure 2 is a cross-sectional schematic diagram of a spotlight adopting natural heat dissipation in an embodiment of the utility model;

[0046] Figure 3 is an exploded view of a spotlight adopting natural heat dissipation in an embodiment of the utility model;

[0047] Figure 4 is a schematic structural diagram of another spotlight adopting natural heat dissipation in an embodiment of the utility model;

[0048] Figure 5 is a schematic structural diagram of a radiator adopting natural heat dissipation in an embodiment of the utility model;

[0049] Figure 6 is a schematic diagram of the separation of a radiator adopting natural heat dissipation and a light energy module in an embodiment of the utility model;

[0050] Figure 7Schematic cross-sectional view of a spotlight with air-cooled heat dissipation in an embodiment of the present utility model;

[0051] Figure 8 In an embodiment of the present utility model Figure 7 Enlarged schematic view at position A;

[0052] Figure 9 Internal structure schematic view of a radiator with air-cooled heat dissipation in an embodiment of the present utility model;

[0053] Figure 10 Front-end structure schematic view of a radiator with air-cooled heat dissipation in an embodiment of the present utility model;

[0054] Figure 11 Profile structure schematic view of a radiator with air-cooled heat dissipation in an embodiment of the present utility model;

[0055] Figure 12 Structural schematic view of a spotlight with water-cooled heat dissipation in an embodiment of the present utility model;

[0056] Figure 13 Internal structure schematic view of a radiator with water-cooled heat dissipation in an embodiment of the present utility model;

[0057] Figure 14 Profile structure schematic view of a radiator with water-cooled heat dissipation in an embodiment of the present utility model;

[0058] Figure 15 Structural schematic view of the end where the front housing / rear housing is connected to the radiator in an embodiment of the present utility model;

[0059] Figure 16 Exploded view of a spotlight in an embodiment of the present utility model;

[0060] Figure 17 Structural schematic view of the lens mounting in an embodiment of the present utility model;

[0061] Figure 18 In an embodiment of the present utility model Figure 17 Enlarged schematic view at position B;

[0062] Figure 19 Exploded view of the lens mounting structure in an embodiment of the present utility model;

[0063] Figure 20 Structural schematic view of the rear end cover mounting in an embodiment of the present utility model;

[0064] Figure 21 Structural schematic view of an external power module in an embodiment of the present utility model;

[0065] Figure 22Explosion diagram of the end of the external power module in the embodiment of the present utility model;

[0066] Figure 23 Cross-sectional view of the end of the external power module in the embodiment of the present utility model;

[0067] Figure 24 Schematic diagram of the installation structure of the charge and discharge unit in the embodiment of the present utility model;

[0068] Figure 25 Schematic diagram of the structure of the water tank in the embodiment of the present utility model;

[0069] Figure 26 Schematic diagram of the structure of the liquid storage pipe in the embodiment of the present utility model.

[0070] Description of the main components in the figure:

[0071] 1. Radiator; 10. Opening; 11. Air inlet; 12. Air outlet; 13. Circulation port; 14. Fan; 15. Liquid inlet; 16. Liquid outlet; 17. Connector; 171. First part; 172. Second part; 18. Pump; 100. Profile; 101. First cylindrical part; 102. Second cylindrical part; 103. Fin; 104. Limiting part; 2. Light energy module; 31. Front shell; 311. Limiting convex; 312. Card slot; 32. Rear shell; 321. Rear end cover; 322. Second limiting cover; 323. Second sealing structure; 33. First plug-in part; 34. Second plug-in part; 35. Extension wall; 36. Embedding groove; 4. Annular channel; 5. Sealing ring; 6. Mounting plate; 7. Built-in power module; 8. Control module; 9. Lens; 91. Annular groove; 92. Threaded groove; 93. First sealing structure; 94. First limiting cover; 941. First axial extension part; 942. First radial extension part; 943. Claw; 901. Outer shell; 902. Translucent sheet; 1-1. Battery case; 1-11. First shell; 1-12. Second shell; 1-121. First plate; 1-122. Second plate; 1-123. Mounting cover; 1-124. Protective cover; 1-125. Mounting groove; 1-126. First groove body; 1-127. Second groove body; 1-128. Limiting plate; 1-2. Charge and discharge unit; 1-21. Circuit board; 1-22. Charge and discharge port; 1-3. Energy storage unit; 1-4. Battery level display unit; 2-1. Frame; 2-2. Liquid storage pipe; 2-3. Heat sink; 2-4. U-shaped bracket.

[0072] It should be noted that these drawings and textual descriptions are not intended to limit the scope of the concept of the present utility model in any way, but to illustrate the concept of the present utility model to those skilled in the art by referring to specific embodiments. Detailed implementation manners

[0073] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the following will clearly and completely describe the technical solutions in the embodiments in conjunction with the accompanying drawings in the embodiments of the present utility model. The following embodiments are used to illustrate the present utility model but are not used to limit the scope of the present utility model.

[0074] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model.

[0075] In the description of the present utility model, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0076] Embodiment 1

[0077] As Figures 1 to 15 shown, in the embodiment of the present utility model, a spotlight is introduced. The spotlight includes a front housing 31, a rear housing 32, and a radiator 1 disposed between the front housing 31 and the rear housing 32.

[0078] In this embodiment, the front housing 31 and the rear housing 32 are respectively detachably connected to the radiator 1, and connection structures of the same size are respectively provided between the front and rear ends of the front housing 31 and the rear housing 32 and the front and rear ends of the radiator 1 of different models and / or using different heat dissipation methods.

[0079] Specifically, the connection structure includes interfaces provided at the front and rear ends of the radiator 1, and the end portions of the front housing 31 and the rear housing 32 are respectively provided with insertion portions adapted to the interfaces at the front and rear ends of the radiator 1, and at least part of the insertion portions of the front housing 31 and the rear housing 32 are inserted into the interfaces for assembly.

[0080] In this embodiment, interfaces with set specifications are provided at the front and rear ends of the radiator 1 of different models and / or with different heat dissipation methods. At one end of the front housing 31 and the rear housing 32 connected to the radiator 1, plug-in parts with set specifications are provided. Thus, during the use by the user, the radiator 1 can be replaced individually according to the power of the spotlight. At the same time, during the use of the spotlight, the radiator 1 can be maintained and replaced individually, which is beneficial to saving the use cost for the user and reducing the waste of resources.

[0081] Preferably, in this embodiment, the front housing 31 and the rear housing 32 are hermetically connected to the radiator 1 respectively.

[0082] In some specific embodiments, the radiator 1 is integrally cylindrical, and the wall of the radiator 1 has a certain thickness in the radial direction.

[0083] The radiator 1 is provided with one interface, and a sealing ring 5 is provided at the overlapping part of the plug-in parts of the front housing 31 and the rear housing 32 and the interface.

[0084] Or, the interface includes a first interface and a second interface arranged on the outer periphery of the first interface. The plug-in part includes a first plug-in part 33 and a second plug-in part 34 corresponding to the first interface and the second interface respectively. A sealing ring 5 is provided at the overlapping part of the first plug-in part 33 and the first interface and / or at the overlapping part of the second plug-in part 34 and the second interface;

[0085] Preferably, a sealing ring 5 is provided at least between the first interface and the first plug-in part 33.

[0086] Specifically, when designing the radiator 1, at least one first interface is provided on the inner periphery at both ends of the radiator 1 respectively. The second interface can be selectively provided. Specifically, the second interface can be selectively provided according to the heat dissipation method adopted by the radiator 1.

[0087] As Figures 1 to 3 shown, in this embodiment, for the radiator 1 with only the first interface provided at both ends respectively, the adapted front housing 31 and rear housing 32 can be provided with only one first plug-in part 33, and a sealing ring 5 is provided between the first plug-in part 33 and the first interface.

[0088] The radiator 1 with only one first interface provided at both ends respectively is only applicable to the natural heat dissipation method.

[0089] In this embodiment, multiple radiators 1 with only one first interface provided at both ends respectively and with the same or different outer diameters can be configured for replacement, or can be purchased separately by the user.

[0090] Preferably, in this embodiment, in order to enable the front housing 31 and the rear housing 32 to be adapted to liquid cooling and air cooling, for the radiator 1 with only the first interface provided at both ends, the first insertion portion 33 and the second insertion portion 34 with a set size can be provided at one end of the front housing 31 and the rear housing 32 that are connected to the radiator 1. Thus, the front housing 31 and the rear housing 32 can be adapted to the radiator 1 with only the first interface provided, and can also be adapted to the radiator 1 with both the first interface and the second interface provided.

[0091] When the first interface and the second interface are provided at the front end and / or the rear end of the radiator 1, a sealing ring 5 is provided at least between the first interface and the first insertion portion 33.

[0092] Preferably, as Figures 4 to 15 shown, in this embodiment, the first interface and the second interface are arranged staggered in the axial direction of the radiator 1, and are connected by an extension wall 35 extending in the radial direction of the front housing 31 / rear housing 32, and the extension wall 35 abuts against the end of the radiator 1. Through this setting, it is convenient to install the front housing 31 and the rear housing 32 on the radiator 1 and can ensure the installation stability.

[0093] Preferably, the second interface extends outward relative to the first interface; an extension wall 35 extending in the direction of approaching the axis of the profile 100 is provided at the end of the second insertion portion 34, and a first insertion portion 33 extending into the first interface and in plug-in fit with the first interface is provided on the extension wall 35.

[0094] Specifically, in this embodiment, the radiator 1 includes a profile 100, the profile 100 includes a first cylindrical portion 101 and a second cylindrical portion 102, the outer diameter of the first cylindrical portion 101 is smaller than the inner diameter of the second cylindrical portion 102, the second cylindrical portion 102 is sleeved on the outer periphery of the first cylindrical portion 101 and is arranged around the first cylindrical portion 101, the outer wall of the first cylindrical portion 101 is spaced from the inner wall of the second cylindrical portion 102, and fin plates 103 are provided between the first cylindrical portion 101 and the second cylindrical portion 102. One side of the fin plate 103 is connected to the first cylindrical portion 101, the other side of the fin plate 103 is connected to the second cylindrical portion 102, and the fin plates 103 extend along the axial direction of the profile 100 and are provided with a plurality of them arranged at intervals in the circumferential direction of the profile 100.

[0095] As Figures 1 to 6 shown, an opening 10 is provided on the profile 100. An annular opening 10 can be provided on the second cylindrical portion 102 to expose the fin plates 103 to increase the contact area between the profile 100 and the external air and achieve natural heat dissipation; or,

[0096] As Figures 7 to 11As shown, an air inlet 11 and an air outlet 12 can be provided on the second cylindrical portion 102, an annular circulation port 13 can be provided on the first cylindrical portion 101, and a fan 14 can be provided on the inner circumference of the first cylindrical portion 101. When the fan 14 operates, air flow circulates inside and outside the profile 100 to achieve air-cooled heat dissipation; or,

[0097] As Figures 12 to 15 shown, a liquid inlet 15 and a liquid outlet 16 can be provided on the second cylindrical portion 102, and a pump 18 can be provided outside the profile 100 to make the coolant circulate inside and outside the profile 100 to achieve liquid-cooled heat dissipation.

[0098] In this embodiment, the interface is provided at the ends of the first cylindrical portion 101 and the second cylindrical portion 102.

[0099] Specifically, the second interface is formed by the end of the second cylindrical portion 102 protruding outward relative to the fin plate 103, and the first interface is the end of the first cylindrical portion 101.

[0100] In this embodiment, at least part of the end of the second cylindrical portion 102 of the profile 100 protrudes outward relative to the end of the fin plate 103. A second insertion portion 34 adapted to the inner diameter of the second cylindrical portion 102 is provided at one end of the front housing 31 or the rear housing 32 that cooperates with the profile 100. An extension wall 35 extending in the direction of approaching the axis of the profile 100 is provided at the end of the second insertion portion 34. When the second insertion portion 34 is inserted into the second cylindrical portion 102, the extension wall 35 abuts against the end of the fin plate 103 and / or the end of the first cylindrical portion 101. A first insertion portion 33 extending into the first cylindrical portion 101 and engaging with the end of the first cylindrical portion 101 is provided on the extension wall 35.

[0101] The first insertion portion 33 and the first interface, and the second insertion portion 34 and the second interface are in sealing cooperation. Moreover, at least part of the end of the fin plate 103 is spaced from the extension wall 35, so as to form an annular channel 4 for air flow or liquid flow to circulate between them.

[0102] In this embodiment, a mounting plate 6 is provided in the first cylindrical portion 101. The mounting plate 6 is arranged radially along the first cylindrical portion 101. The front housing 31 and the rear housing 32 are inserted at the front and rear ends of the radiator 1 and are connected to the mounting plate 6 by screws; preferably, a plurality of screws are arranged in a circumferentially uniform manner along the radiator 1. By inserting the front housing 31 and the rear housing 32 at the front and rear ends of the radiator 1 and connecting them to the mounting plate 6 inside the radiator 1 by a plurality of screws respectively, the stability of the overall structure of the spotlight can be ensured. At the same time, the screws are hidden inside the spotlight, which can improve the appearance beauty of the spotlight. In addition, it is beneficial to improve the overall waterproof performance.

[0103] Specifically, the diameter of the mounting plate 6 is the same as the inner diameter of the first cylindrical portion 101. A limiting portion 104 protruding and extending towards the inside of the first cylindrical portion 101 is provided on the inner wall of the first cylindrical portion 101. The mounting plate 6 is mounted inside the first cylindrical portion 101 and abuts against the limiting portion 104, and is connected to the front housing 31 and the rear housing 32 by screws.

[0104] In this embodiment, the extending walls 35 of the front housing 31 and the rear housing 32 are annular. Mounting holes are provided on the inner circumference of the extending walls 35. Threaded holes corresponding to the respective screws are provided on the mounting plate 6. After the screws pass through the mounting holes on the inner circumference of the extending walls 35, they are tightened on the mounting plate 6 to complete the assembly.

[0105] Preferably, in this embodiment, reinforcing ribs are respectively provided on the sides of the extending walls 35 of the front housing 31 and the rear housing 32 away from the radiator 1. The reinforcing ribs extend radially along the extending walls 35, and a plurality of them are arranged at intervals along the circumferential direction of the extending walls 35.

[0106] In this embodiment, the light energy module 2 of the spotlight is installed on the inner circumference of the radiator 1, facing the front housing 31, and corresponds to the lens 9 at the front end of the front housing 31.

[0107] In some specific embodiments, the front housing 31 includes a front housing main body and a lens 9 installed at the front end of the front housing main body. The rear end of the front housing main body is used to be connected to the front end of the radiator 1.

[0108] Preferably, a sealing structure is provided between the lens 9 and the front housing main body.

[0109] Specifically, the light energy module 2 of the spotlight is installed on one side of the mounting plate 6 facing the front housing 31 by screws. An operator can replace the bulb of the light energy module 2.

[0110] The built-in power module 7 of the spotlight can be arranged inside the rear housing 32 or outside the spotlight.

[0111] Specifically, a built-in power module is provided inside the rear housing 32, which is electrically connected to the light energy module 2; and / or, a power supply module is provided on the rear housing 32, which is electrically connected to the light energy module 2 and / or the built-in power module, and is used to connect to an external power module outside the rear housing 32; and / or, a control module 8, which is electrically connected to the light energy module 2 and is electrically connected to the built-in power module and / or the power supply module.

[0112] In some specific embodiments, a circuit board is provided inside the rear housing 32. The control module 8 is integrated on the circuit board. The power supply module, the built-in power module 7, and the light energy module 2 are respectively electrically connected to the circuit board.

[0113] In this embodiment, the circuit board is installed on the inner wall at the rear end of the rear housing 32. The control module 8 includes an operation switch provided on the rear wall of the rear housing 32, and the operation switch is specifically a waterproof button.

[0114] The power module may only include a built-in power module provided in the rear housing 32. When the built-in power module is provided in the rear housing 32, the power supply module can be used to charge the built-in power module or directly supply power to the spotlight.

[0115] When the spotlight is liquid-cooled, the built-in power module is electrically connected to an external pump 18 through the power supply module to supply power to the pump 18.

[0116] The power module may only include an external power module, and the external power module is a separately provided mobile power supply. The external power module can supply power to the light collection module through the power supply module. Of course, the external power module can also be used to supply power to the pump 18 of the radiator 1 using the liquid-cooling method.

[0117] Of course, the spotlight can also be configured with both a built-in power module and an external power module. In this case, the external power module is equivalent to a backup power supply for the spotlight. When long-term use is required, the external power module can be used to supply power to the spotlight. When the radiator 1 of the spotlight is liquid-cooled, the external power module can also supply power to the pump 18 at the same time.

[0118] Preferably, in this embodiment, the power supply module is connected to an external circuit by a magnetic attraction power supply method.

[0119] The external circuit includes a circuit for connecting to a power source, a circuit for connecting to an external power module, and a circuit for connecting to the pump 18.

[0120] In some specific embodiments, a magnetic head is provided at the end of the circuit, and a magnetic slot adapted to the magnetic head is provided at the rear end of the rear housing 32. When the magnetic head is inserted into the magnetic slot, it is attracted to the rear housing 32 and supplies power through induction with the power supply module. Thus, it is convenient for the user to connect the circuit, and at the same time, the waterproof property of the product can be further improved.

[0121] In this embodiment, when the built-in power module is provided in the rear housing 32, the axial length of the rear housing 32 is increased, thereby increasing the accommodation space of the rear housing 32.

[0122] If the built-in power module is not provided in the rear housing 32, the axial dimension of the rear housing 32 can be appropriately shortened to make the spotlight more portable. When the spotlight is in use, it can be powered by an external external power module.

[0123] In some specific embodiments, the rear housing 32 includes a rear housing body and a rear end cover. The rear end cover is disposed at the rear end of the rear housing body, and the front end of the rear housing body is used to connect to the rear end of the radiator 1.

[0124] Preferably, in this embodiment, a sealing structure is provided between the rear end cover and the rear housing body.

[0125] In this embodiment, by providing a sealing structure between the lens 9 and the front housing body, a sealing structure between the rear end cover and the rear housing body, a sealing structure between the front housing body and the radiator 1, and a sealing structure between the rear housing body and the rear end of the radiator 1, and hiding the screws inside the spotlight, the overall sealing performance of the product can be improved to reach the immersion waterproof level.

[0126] Among them, the spotlight using air-cooled heat dissipation can only reach the spray waterproof level because a circulation port 13 is provided on the first cylindrical portion 101.

[0127] Preferably, in this embodiment, the profile 100 of the radiator 1 is an aluminum profile 100, and both the front housing 31 and the rear housing 32 are made of lightweight materials, so that the overall density is low. Even in the case of falling into water, it can float on the water surface for easy searching. The product can be suitable for various usage scenarios.

[0128] Preferably, in this embodiment, a base is further provided on the spotlight. The base is disposed at the bottom of the radiator 1 and is used to support the spotlight to ensure that the spotlight can be stably placed.

[0129] Preferably, in this embodiment, the base can also be set as a structure with an adjustable angle, so that the inclination angle of the spotlight can be changed.

[0130] Preferably, in this embodiment, a handle is further provided on the spotlight. The handle is disposed at the top of the radiator 1, which is convenient for users to move the spotlight.

[0131] Embodiment Two

[0132] Such as Figures 1 to 15As shown in the figure, in the embodiment of the present utility model, a radiator 1 for a spotlight is introduced, which includes a profile 100. The profile 100 includes a first cylindrical portion 101 and a second cylindrical portion 102. The outer diameter of the first cylindrical portion 101 is smaller than the inner diameter of the second cylindrical portion 102. The second cylindrical portion 102 is sleeved on the outer periphery of the first cylindrical portion 101 and is arranged around the first cylindrical portion 101. There is a gap between the outer wall of the first cylindrical portion 101 and the inner wall of the second cylindrical portion 102. A fin 103 is arranged between the first cylindrical portion 101 and the second cylindrical portion 102. One side of the fin 103 is connected to the first cylindrical portion 101, and the other side of the fin 103 is connected to the second cylindrical portion 102. The fin 103 extends along the axial direction of the profile 100, and a plurality of fins 103 are arranged at intervals along the circumferential direction of the profile 100.

[0133] In this embodiment, the first cylindrical portion 101 and the second cylindrical portion 102 can be coaxially arranged or non - coaxially arranged.

[0134] The width direction of the fin 103 can extend along the radial direction of the profile 100 or can be arranged at an angle with respect to the radial direction of the profile 100. When the width direction of the fin 103 is arranged at an angle with respect to the radial direction of the profile 100, each fin 103 inclines towards the same side in the radial direction of the profile 100.

[0135] The length direction of the fin 103 can be along the axial direction of the profile 100 or can be arranged at an angle with respect to the axial direction of the profile 100. When the length direction of the fin 103 is arranged at an angle with respect to the axial direction of the profile 100, the included angles between each fin 103 and the axis of the profile 100 are the same.

[0136] That is, in this embodiment, the extending paths of the sides of each fin 103 close to the axis of the profile 100 on the first cylindrical portion 101 are parallel to each other, and the extending paths of the sides of each fin 103 far from the axis of the profile 100 on the second cylindrical portion 102 are parallel to each other. That is, if the profile 100 is unfolded into a plane, each fin 103 is parallel to each other.

[0137] Preferably, in this embodiment, a plurality of the fins 103 are arranged evenly along the circumferential direction of the profile 100.

[0138] Preferably, in this embodiment, taking the first cylindrical portion 101 and the second cylindrical portion 102 being coaxial, the width direction of the fin 103 extending along the radial direction of the profile 100, and the length direction of the fin 103 extending along the axial direction of the profile 100 as an example for illustration.

[0139] Such as Figure 3 、 4As shown, in this embodiment, the spotlight further includes a housing, which includes a front housing 31 and a rear housing 32. The front housing 31 and the rear housing 32 are respectively connected to the front and rear ends of the profile 100.

[0140] In this embodiment, by providing an opening 10 on the first cylindrical portion 101 and / or the second cylindrical portion 102, the cooling medium circulates between the first cylindrical portion 101 and the second cylindrical portion 102 and / or inside the first cylindrical portion 101 to achieve heat dissipation.

[0141] In this embodiment, the cooling medium includes air flow and coolant.

[0142] Specifically, in this embodiment, the opening 10 is provided on the second cylindrical portion 102, and the cooling medium circulates between the first cylindrical portion 101 and the second cylindrical portion 102 through the opening 10.

[0143] Alternatively, the opening 10 is provided on the first cylindrical portion 101 and the second cylindrical portion 102, and the cooling medium circulates between the first cylindrical portion 101 and the second cylindrical portion 102 and inside the first cylindrical portion 101 through the opening 10.

[0144] In this embodiment, the light energy module 2 is disposed inside the first cylindrical portion 101.

[0145] When the opening 10 is provided on the first cylindrical portion 101, if the cooling medium is air flow, it can directly circulate inside the first cylindrical portion 101; if the cooling medium is coolant, it needs to circulate inside the first cylindrical portion 101 through a pipeline.

[0146] As Figures 1 to 6 shown, in some possible embodiments, the radiator 1 dissipates heat naturally. By cutting the profile 100, the contact area between the profile 100 and the external air is increased, so that the air flow naturally circulates between the inside and the outside of the profile 100 to ensure a high heat dissipation efficiency.

[0147] In this embodiment, the axial length of the opening 10 is less than or equal to the axial length of the second cylindrical portion 102.

[0148] Specifically, in this embodiment, the opening 10 is provided on the second cylindrical portion 102 and extends along the circumferential direction of the second cylindrical portion 102. Thus, the side of the fin 103 away from the axis of the profile 100 is exposed, and the external air can contact the internal fin 103 and the first cylindrical portion 101 through the opening 10, improving the heat dissipation efficiency.

[0149] In this embodiment, the opening 10 may be provided in the middle of the second cylindrical portion 102 or at the end of the second cylindrical portion 102. The second cylindrical portion 102 may also be integrally cut to form the opening 10, that is, the axial length of the opening 10 is equal to the axial length of the second cylindrical portion 102.

[0150] In this embodiment, the opening 10 may be provided as one, which is provided on the second cylindrical portion 102, and the axial length of the opening 10 is less than or equal to the axial length of the second cylindrical portion 102. The opening 10 may also be provided with a plurality of openings arranged at intervals along the axial direction of the second cylindrical portion 102.

[0151] Specifically, when the opening 10 is provided in the middle of the second cylindrical portion 102, the front housing 31 and the rear housing 32 of the spotlight are connected to the ends of the first cylindrical portion 101 and / or the second cylindrical portion 102. When the opening 10 extends to the end of the second cylindrical portion 102, the front housing 31 and the rear housing 32 of the spotlight are connected to the end of the first cylindrical portion 101.

[0152] Preferably, in this embodiment, when the diameter of the spotlight is relatively large, in order to ensure the assembly effect with the front housing 31 and the rear housing 32, the opening 10 may be provided in the middle of the second cylindrical portion 102, and the front housing 31 and the rear housing 32 are respectively connected to the ends of the first cylindrical portion 101 and the second cylindrical portion 102.

[0153] Alternatively, the opening 10 may be provided both on the second cylindrical portion 102 and on the first cylindrical portion 101.

[0154] Specifically, in this embodiment, at least one opening 10 is respectively provided on the first cylindrical portion 101 and the second cylindrical portion 102, and the opening 10 extends along the circumferential direction of the first cylindrical portion 101 or the second cylindrical portion 102.

[0155] The openings 10 on the first cylindrical portion 101 and the second cylindrical portion 102 are preferably provided in the middle of the first cylindrical portion 101 and the second cylindrical portion 102.

[0156] In this embodiment, when the spotlight has a high requirement for waterproof performance, the opening 10 is only provided on the second cylindrical portion 102 and not on the first cylindrical portion 101. The front housing 31 and the rear housing 32 of the spotlight are respectively and sealingly connected to the front and rear ends of the first cylindrical portion 101 of the profile 100, thereby preventing water from entering the inside of the spotlight. Specifically, the front housing 31 and the rear housing 32 of the spotlight are respectively inserted into the front and rear ends of the first cylindrical portion 101, and a sealing ring 5 is provided at the overlapping portion to ensure the assembly effect and the sealing effect.

[0157] Such as Figures 7 to 11As shown, in some possible embodiments, the radiator 1 is air-cooled. The radiator 1 includes a fan 14. By machining the profile 100, an opening 10 is formed on the second cylindrical portion 102, or openings 10 are formed on the first cylindrical portion 101 and the second cylindrical portion 102, so that air flows circulates between the inside and the outside of the profile 100 to improve the heat dissipation effect.

[0158] In this embodiment, the fan 14 can be arranged inside the profile 100 or outside the profile 100.

[0159] Preferably, in this embodiment, the opening 10 includes an air inlet 11 and an air outlet 12 provided on the second cylindrical portion 102, and a circulation port 13 provided on the first cylindrical portion 101; the fan 14 is arranged on the inner circumference of the first cylindrical portion 101 and is used to drive air to circulate between the first cylindrical portion 101 and the second cylindrical portion 102 and inside the first cylindrical portion 101.

[0160] Specifically, in this embodiment, a mounting plate 6 is arranged inside the first cylindrical portion 101. The mounting plate 6 divides the internal space of the first cylindrical portion 101 into a first circulation chamber and a second circulation chamber. The circulation port 13 corresponds to the first circulation chamber, and the fan 14 is installed in the first circulation chamber.

[0161] In this embodiment, the circulation port 13 extends along the circumferential direction of the first cylindrical portion 101. The outlet end of the fan 14 is arranged opposite to the circulation port 13, and the air outlet 12 on the first cylindrical portion 101 corresponds to the outlet end of the fan 14. During the operation of the fan 14, external air is sucked into the space between the first cylindrical portion 101 and the second cylindrical portion 102 from the air inlet 11, circulates between the first cylindrical portion 101 and the second cylindrical portion 102, in the first circulation chamber and the second circulation chamber, and then is discharged from the air outlet 12.

[0162] Preferably, in this embodiment, the air outlet 12 is arranged as an arc extending along the circumferential direction of the second cylindrical portion 102. The two ends of the air outlet 12 extending along the circumferential direction of the second cylindrical portion 102 correspond to the side of the fin 103 in the first range away from the axis of the profile 100, and the two ends of the outlet end of the fan 14 extending along the circumferential direction of the second cylindrical portion 102 correspond to the side of the fin 103 in the same range close to the axis of the profile 100. The air inlet 11 is arranged on the side of the air outlet 12 close to the second circulation chamber.

[0163] Preferably, in this embodiment, the air inlet 11 and the air outlet 12 are arranged side by side in the axial direction of the second cylindrical portion 102.

[0164] Thus, during the operation of the fan 14, after the air flow enters the space between the first cylindrical part 101 and the second cylindrical part 102 from the air inlet 11, it flows towards the side away from the air outlet 12 between the fin plates 103 in the area covered by the air inlet 11 in the circumferential direction of the profile 100, and then flows into the first circulation cavity through the fin plates 103 in the area not covered by the air inlet 11 in the circumferential direction of the profile 100, and enters the first circulation cavity through the part of the circulation port 13 not covered by the outlet end of the fan 14.

[0165] After the air flow enters the first circulation cavity, it is discharged to the outside of the profile 100 through the fan 14 and the air outlet 12. Thus, the overall profile 100 has a high heat dissipation effect.

[0166] Preferably, in this embodiment, during the discharge process, part of the air flow can flow on both sides of the air outlet 12 between the fin plates 103 in the area covered by the air outlet 12 in the circumferential direction of the profile 100.

[0167] Preferably, in this embodiment, the extension angle of the air inlet 11 in the circumferential direction of the second cylindrical part 102 is less than or equal to 180°, and further preferably, the extension angle of the air inlet 11 in the circumferential direction of the second cylindrical part 102 is less than or equal to 90°.

[0168] Preferably, in this embodiment, the fan 14 is a volute fan 14, and the fan 14 is installed on the mounting plate 6.

[0169] In this embodiment, annular channels 4 are formed between the two ends of the profile 100 and the front housing 31 and the rear housing 32 respectively. The annular channels 4 are correspondingly arranged with the space between the first cylindrical part 101 and the second cylindrical part 102, and the annular channels 4 are used to communicate with the spaces between each adjacent two partition plates.

[0170] The circulating air flow enters the annular channel 4 on one side of the second circulation cavity from the air inlet 11, enters between the fin plates 103 in the area not covered by the air inlet 11 in the circumferential direction of the profile 100 through the annular channel 4, then enters the annular channel 4 on one side of the first circulation cavity, and enters the first circulation cavity through this annular channel 4 and the circulation port 13.

[0171] Preferably, in this embodiment, the air inlet 11 and the air outlet 12 are arranged side by side along the axial direction of the second cylindrical part 102 at the bottom of the second cylindrical part 102. Thus, when the front housing 31 and the rear housing 32 are connected to the front and rear ends of the profile 100 of the radiator 1, the spotlight can achieve spray waterproofing.

[0172] In this embodiment, at least the two ends of the first cylindrical part 101 are inserted into the front housing 31 and the rear housing 32, and a sealing ring 5 is arranged at the insertion position.

[0173] like Figures 12 to 14 As shown, in some possible embodiments, the radiator 1 is liquid-cooled. The radiator 1 includes a pump 18, and the profile 100 is cut to form an opening 10 on the second cylindrical portion 102, or the first cylindrical portion 101 and the second cylindrical portion 102 are formed with openings 10, so that the coolant circulates between the inside and outside of the profile 100 to improve the heat dissipation effect.

[0174] In this embodiment, if the coolant is arranged to circulate inside the first cylindrical portion 101 , a pipeline for the coolant to circulate needs to be arranged inside the profile 100 .

[0175] Preferably, in this embodiment, the coolant does not enter the interior of the first cylindrical portion 101 .

[0176] Specifically, the opening 10 includes a liquid inlet 15 and a liquid outlet 16 arranged on the second cylindrical portion 102, and a liquid storage structure and a pump 18 are arranged outside the profile 100, and the liquid storage structure and the pump 18 are connected in series between the liquid inlet 15 and the liquid outlet 16 through pipelines.

[0177] Preferably, the liquid inlet 15 and the liquid outlet 16 correspond to the spaces between two different adjacent fins 103, respectively, and / or, the liquid inlet 15 and the liquid outlet 16 are arranged close to the top of the profile 100 to ensure that the coolant fills the space between the first cylindrical portion 101 and the second cylindrical portion 102 before circulating to the outside of the profile 100.

[0178] Specifically, an annular channel 4 is provided between the two ends of the profile 100 and the front shell 31 and the rear shell 32 respectively. The annular channel 4 is provided corresponding to the space between the first cylindrical portion 101 and the second cylindrical portion 102. The annular channel 4 is used to communicate with the space between each adjacent partition.

[0179] The pump 18 is arranged between the liquid inlet 15 and the liquid storage structure. The pump 18 sucks the coolant in the liquid storage structure and fills the coolant into the profile 100. After the coolant fills the space between the first cylindrical portion 101 and the second cylindrical portion 102 of the profile 100 through the annular channel 4, it is output from the liquid outlet 16 and discharged into the liquid storage structure.

[0180] Specifically, after the coolant fills the space between the first cylindrical portion 101 and the second cylindrical portion 102 of the profile 100, the coolant circulates in the following manner: it is filled into the annular channel 4 near the liquid inlet 15 from the liquid inlet 15, and then flows into the annular channel 4 near the liquid outlet 16 through the space between the two adjacent fin plates 103 that do not correspond to the liquid inlet 15, and then flows into the space between the two adjacent fin plates 103 corresponding to the liquid outlet 16 through the annular channel 4, and flows out of the profile 100 from the liquid outlet 16.

[0181] In this embodiment, the liquid storage structure can be provided separately by the manufacturer. For example, a water tank fitting adapted to the spotlight can be designed to facilitate the user's carrying. Of course, the liquid storage structure can also be prepared by the user himself. For example, the water storage structure can be a water bucket, a kettle, etc.

[0182] Preferably, in this embodiment, the pump is installed outside the second cylindrical part.

[0183] Preferably, in this embodiment, the liquid inlet 15 and the liquid outlet 16 are arranged side by side along the axial direction of the profile 100 and are correspondingly communicated with the space between the same two adjacent wing plates 103.

[0184] Connectors 17 for connecting pipelines are respectively installed on the liquid inlet 15 and the liquid outlet 16. The connector 17 includes a first part 171 connected to the profile 100 and a second part 172 connected to the first part 171. The end of the second part 172 away from the first part 171 is used to connect to an external pipeline.

[0185] Specifically, the first part 171 is tubular. One end of the first part 171 is threadedly connected to the liquid inlet 15 or the liquid outlet 16, and the other end protrudes from the outer surface of the profile 100. One end of the second part 172 is sleeved on the other end of the first part 171, and the other end of the second part 172 is inserted into the external pipeline.

[0186] Preferably, in this embodiment, the second parts 172 of the connectors 17 on the liquid inlet 15 and the liquid outlet 16 are connected as a whole and are installed on the second cylindrical part 102 of the profile 100 by screws, so as to ensure the installation stability of the connector 17.

[0187] In this embodiment, a radial protrusion is provided in the middle of the first part 171, and the operator can tighten the first part 171 of the connector 17 on the profile 100 through the radial protrusion.

[0188] Preferably, in this embodiment, a sealing ring 5 is provided at the connection between the radial protrusion and the first part 171. The radial protrusion presses the sealing ring 5 against the profile 100 to ensure the sealing effect at the liquid inlet 15 and the liquid outlet 16.

[0189] Preferably, in this embodiment, the end of the second part 172 away from the first part 171 extends along the axial direction of the profile 100. The ends of the second parts 172 of the connectors 17 at the liquid inlet 15 and the liquid outlet 16 extend in opposite directions. A protective cover is further provided outside the radiator 1 to partially hide the connector 17 inside the protective cover. The external pipeline is connected to the connectors 17 at the liquid inlet 15 and the liquid outlet 16 through the through holes at both ends of the protective cover.

[0190] In this embodiment, the annular channel 4 in the spotlight of the radiator 1 using the air-cooling method and the radiator 1 using the liquid-cooling method is formed by splicing and combining the front housing 31, the rear housing 32 and the profile 100.

[0191] Specifically, the front housing 31 and the rear housing 32 are respectively inserted and matched with the front and rear ends of the profile 100. The front housing 31 and the rear housing 32 are respectively provided with a first insertion part 33 and a second insertion part 34 that are inserted and matched with the ends of the first cylindrical part 101 and the second cylindrical part 102 of the profile 100. The first insertion part 33 and the second insertion part 34 are respectively inserted into the first cylindrical part 101 and the second cylindrical part 102, and sealing rings 5 are arranged between the first insertion part 33 and the first cylindrical part 101, and between the second insertion part 34 and the second cylindrical part 102.

[0192] As Figure 15 shown, the outer diameter of the first insertion part 33 is smaller than the outer diameter of the second insertion part 34. The first insertion part 33 protrudes at least partially from the end face of the second insertion part 34 in the axial direction. The end of the second insertion part 34 and the root of the first insertion part 33 are connected by an extension wall 35 extending in the radial direction. Specifically, the end of the second cylindrical part 102 of the profile 100 protrudes at least partially outward relative to the end of the fin 103. One end of the front housing 31 or the rear housing 32 that is matched with the profile 100 is provided with a second insertion part 34 adapted to the inner diameter of the second cylindrical part 102. The end of the second insertion part 34 is provided with an extension wall 35 extending in the direction close to the axis of the profile 100 in the radial direction. When the second insertion part 34 is inserted into the second cylindrical part 102, the extension wall 35 abuts against the end of the fin 103 and / or the end of the first cylindrical part 101, and the first insertion part 33 that extends into the first cylindrical part 101 and is inserted and matched with the end of the first cylindrical part 101 is arranged on the extension wall 35.

[0193] Preferably, in this embodiment, mounting grooves 36 extending in the circumferential direction of the profile 100 are respectively arranged on the overlapping parts of the first insertion part 33 and the first cylindrical part 101, and on the overlapping parts of the second insertion part 34 and the second cylindrical part 102. The sealing ring 5 is sleeved on the first insertion part 33 and the second insertion part 34 and is limited and installed in the mounting grooves 36 on the first insertion part 33 and the second insertion part 34. When the first insertion part 33, the second insertion part 34 are inserted into the first cylindrical part 101 and the second cylindrical part 102, the sealing ring 5 elastically abuts against the bottom of the mounting groove 36 and the inner walls of the first cylindrical part 101 and the second cylindrical part 102, so as to seal between the first insertion part 33 and the first cylindrical part 101, and between the second insertion part 34 and the second cylindrical part 102.

[0194] Preferably, as Figure 7 、Figure 8 and Figure 13 As shown, in this embodiment, at least a part of the end of the fin plate 103 is spaced from the extension wall 35, so as to form an annular channel 4 between the fin plate 103 and the extension wall 35.

[0195] In some specific embodiments, the end of the first cylindrical portion 101 abuts against the extension wall 35, and at least a part of the end of the fin plate 103 extends obliquely towards the middle of the profile 100.

[0196] Preferably, in this embodiment, at least a part of the two ends of the fin plate 103 extending along the axial direction of the profile 100 extends obliquely towards the middle of the profile 100 in a direction close to or away from the axis of the profile 100.

[0197] Preferably, in this embodiment, the end of the fin plate 103 on the side away from the axis of the profile 100 is flush with the end of the first cylindrical portion 101. When the front housing 31 or the rear housing 32 is inserted into the end of the profile 100, the end of the first cylindrical portion 101 abuts against the extension wall 35, at least a part of the end of the fin plate 103 on the side away from the first cylindrical portion 101 abuts against the extension wall 35, and at least a part of the two ends of the fin plate 103 extends obliquely towards the middle of the profile 100 in a direction close to the axis of the profile 100, forming a gap with the extension wall 35. Thus, not only can the annular channel 4 be formed, but also the installation stability between the front housing 31 or the rear housing 32 and the profile 100 can be improved.

[0198] In some specific embodiments, the radiator 1 with a smaller size using natural heat dissipation is suitable for dissipating heat from a spotlight with a power of 5W to 10W, the radiator 1 with a larger size using natural heat dissipation is suitable for dissipating heat from a spotlight with a power of 10W to 15W, the radiator 1 using air-cooled heat dissipation is suitable for dissipating heat from a spotlight with a power of 15W to 25W, and the radiator 1 using liquid-cooled heat dissipation is suitable for dissipating heat from a spotlight with a power of 25W to 40W.

[0199] In this embodiment, the radiator 1 is made of a profile 100, and the profile 100 includes a first cylindrical portion 101, a second cylindrical portion 102, and a fin 103 connected between the two. This enables production personnel to set openings 10 at different positions on the profile 100, making the profile 100 suitable for different heat dissipation methods. That is, after the profile 100 is obtained by one-time mold opening, different forms of radiators 1 are produced through subsequent machining of the profile 100. Thus, the production cost of the radiator 1 is reduced, and the production efficiency of the radiator 1 is improved. In addition, since the radiator 1 is made of a single profile 100, it can be separately replaced on different spotlight lamps during later use. Users can purchase the radiator 1 separately to combine different power spotlight lamps, which is beneficial for saving the usage cost for users.

[0200] In this embodiment, when the front housing 31 and the rear housing 32 of the spotlight lamp are installed on the profile 100, the front housing 31 and the rear housing 32 are respectively connected to the mounting plate 6 in the middle of the profile 100 through screw structures.

[0201] In some specific embodiments, the diameter of the mounting plate 6 is the same as the inner diameter of the first cylindrical portion 101 of the profile 100. A limiting portion 104 protruding and extending inwardly into the first cylindrical portion 101 is provided on the inner wall of the first cylindrical portion 101. The mounting plate 6 is installed in the first cylindrical portion 101 and abuts against the limiting portion 104, and is connected to the front housing 31 and the rear housing 32 through screws.

[0202] Specifically, in this embodiment, the mounting plate 6 is installed in the first cylindrical portion 101 from the end where the profile 100 is connected to the rear housing 32. First, the front housing 31 is connected to the mounting plate 6 through screws, so that the radiator 1, the mounting plate 6, and the front housing 31 are integrated, and then the rear housing 32 is connected to the mounting plate 6. Alternatively, the mounting plate 6 can also be installed on the rear housing 32 first, then the radiator 1 is sleeved on the rear housing 32, and finally the front housing 31 is installed.

[0203] The installation steps and installation methods can be adjusted according to the specific structures inside the front housing 31 and the rear housing 32. Specifically, the part with a more complex internal structure can be connected to the mounting plate 6 first, and then the screws can be installed from the inside of the other part.

[0204] In this embodiment, the light energy module 2 is installed on the side of the mounting plate 6 facing the front housing 31.

[0205] In this embodiment, a lens 9 is provided on the front housing 31.

[0206] An internal power module 7 is provided inside the rear housing 32; alternatively, no internal power module 7 is provided inside the rear housing 32, and an external power module is provided outside the spotlight, and the light energy module 2 is powered by the external external power module.

[0207] Alternatively, an internal power module is provided inside the rear housing 32, and an external power module is provided outside the spotlight.

[0208] In this embodiment, since the wires, the control module 8, and the internal power module 7 are mainly concentrated on the rear housing 32, the light energy module 2 can be first installed on the mounting plate 6 and connected to the control module 8 and the internal power module 7 on the rear housing 32 through a circuit, and then the mounting plate 6 is installed on the rear housing 32 and fixed by screws to adjust the distance between the rear housing 32 and the mounting plate 6. When installing the radiator 1, the radiator 1 is sleeved on the outer periphery of the mounting plate 6 and fixedly sleeved with the end of the rear housing 32. At this time, the mounting plate 6 abuts against the limiting portion 104 on the inner periphery of the radiator 1. Then, the front housing 31 is inserted into one end of the radiator 1 away from the rear housing 32, and the front housing 31 is fixed to the mounting plate 6 by screws. At this time, the front housing 31, the radiator 1, and the rear housing 32 are integrated. Finally, the lens 9 is installed on the front housing 31.

[0209] Embodiment III

[0210] As Figures 16 to 20 shown, in the embodiment of the present invention, a spotlight is introduced. The spotlight can be used in rainy conditions, or in conditions where the spotlight needs to be immersed in water, and at the same time, it can ensure that the spotlight will not be damaged when the spotlight accidentally falls into the water.

[0211] In this embodiment, the spotlight includes a front housing 31, a rear housing 32, and a radiator 1 connected between the front housing 31 and the rear housing 32, and the front housing 31, the rear housing 32, and the radiator 1 are hermetically connected.

[0212] As Figure 17 shown, in this embodiment, a lens 9 is provided at the front end of the front housing 31, and the lens 9 is disposed opposite to the light energy module 2 inside the radiator 1. Different lenses 9 can be switched and / or the lens 9 can be focused for different usage scenarios.

[0213] In this embodiment, the front housing 31 is provided in a cylindrical shape, at least a part of the lens 9 extends from the front end of the front housing 31 into the front housing 31, and a first sealing structure 93 is provided at the overlapping portion of the lens 9 and the front housing 31.

[0214] Specifically, the first sealing structure 93 includes a first sealing ring disposed between the lens 9 and the front housing 31. The inner circumference of the first sealing ring is elastically abutted against the lens 9, and the outer circumference is elastically abutted against the front housing 31. By arranging at least partial overlap between the lens 9 and the front housing 31 and providing a first sealing ring at the overlapping portion of the lens 9 and the front housing 31, it is possible to achieve sealing between the lens 9 and the housing in the radial direction of the spotlight, preventing external water or water vapor from entering the interior of the spotlight through the gap between the lens 9 and the housing, and improving the waterproof performance of the spotlight.

[0215] Preferably, in this embodiment, the lens 9 can axially move relative to the front housing 31, thereby adjusting the distance between the lens 9 and the light energy module 2 to achieve focusing.

[0216] In some specific embodiments, the lens 9 is in threaded engagement with the front housing 31 for adjusting the distance between the lens 9 and the light energy module 2 inside the radiator 1. The user can also focus by screwing the lens 9.

[0217] In this embodiment, an annular groove 91 is provided on the outer peripheral wall of the lens 9. The first sealing ring is embedded in the annular groove 91. The inner diameter of the first sealing ring is smaller than the outer diameter at the bottom of the annular groove 91, and the outer diameter of the first sealing ring is larger than the outer diameter of the lens 9. The annular groove 91 can limit the first sealing ring, enabling the first sealing ring to move with the lens 9, ensuring the sealing effect of the first sealing ring on the gap between the lens 9 and the front housing 31. Additionally, it is possible to maintain or replace the first sealing ring when removing the lens 9, facilitating the disassembly and assembly of the first sealing ring.

[0218] Preferably, in this embodiment, at least two circles of the first sealing rings are arranged at intervals along the axial direction of the lens 9, and annular grooves 91 corresponding to each first sealing ring are provided on the outer peripheral wall of the lens 9.

[0219] In some specific embodiments, a threaded groove 92 is provided on the outer peripheral wall of the lens 9. The threaded groove 92 extends along the circumferential direction of the lens 9 on the outer peripheral wall of the lens 9, and the included angle between the extending direction of the threaded groove 92 and the axis of the lens 9 is less than 90°, that is, the extending direction of the threaded groove 92 is in a thread shape. A limiting protrusion 311 corresponding to the threaded groove 92 is provided on the inner peripheral wall of the front housing 31. The limiting protrusion 311 extends into the threaded groove 92 and cooperates with the threaded groove 92 to achieve the limitation of the lens 9.

[0220] Specifically, the thread groove 92 extends to the rear end of the lens 9. By rotating the lens 9, the limit protrusion 311 can enter the thread groove 92 from the rear end of the lens 9. The shape of the limit protrusion 311 is the same as the internal shape of the thread groove 92, and the limit protrusion 311 abuts against the groove wall of the thread groove 92 to achieve axial limitation of the lens 9.

[0221] Preferably, in some possible embodiments, a plurality of the limit protrusions 311 may be arranged at intervals along the circumferential direction of the front housing 31. The plurality of limit protrusions 311 correspond to the thread groove 92 in spatial positions, that is, the arrangement path of the plurality of limit protrusions 311 is the same as the extension path of the thread groove 92.

[0222] Preferably, in this embodiment, the annular groove 91 is arranged on the front side of the thread groove 92. Thus, interference between the first sealing structure and the limit protrusion 311 can be avoided, ensuring that the lens 9 can be disassembled and assembled smoothly.

[0223] Preferably, in some possible embodiments, a first limit cover 94 for limiting the movement of the lens 9 is arranged at the front end of the front housing 31.

[0224] Specifically, as Figures 17 to 19 shown, the lens 9 includes a first section with an outer diameter the same as the inner diameter of the front housing 31, and a second section arranged at the front end of the first section and having an outer diameter smaller than that of the first section. At least a part of the second section extends from the front end of the front housing 31 to the outside of the front housing 31, and at least a part of the first limit cover 94 is arranged opposite to the front end of the first section.

[0225] In this embodiment, the first section and the second section of the lens 9 are coaxially arranged, and the first sealing structure 93 is arranged between the first section and the front housing 31, that is, the thread groove 92 and the annular groove 91 are both arranged on the first section of the lens 9. Thus, during the focusing process of the spotlight, when the lens 9 moves out of the front housing 31 to a certain position, the front end of the first section of the lens 9 abuts against the first limit cover 94 to achieve limitation of the lens 9, which can avoid the annular groove 91 for accommodating the first sealing ring from moving to the outside of the front housing 31 and ensure the working stability of the product.

[0226] In some specific embodiments, the first limit cover 94 includes a first axially extending portion 941 sleeved on the front end of the front housing 31, and a first radially extending portion 942 extending from the front end of the first axially extending portion 941 towards the direction close to the axis of the front housing 31. The inner diameter of the first radially extending portion 942 is smaller than the inner diameter of the front housing 31, so as to abut against the lens 9.

[0227] Preferably, in this embodiment, the inner diameter of the first radially extending portion 942 is the same as the outer diameter of the first section of the lens 9.

[0228] In some preferred embodiments, a gap is provided between the first radially extending portion 942 and the front end of the front housing 31, and the gap therebetween is smaller than the distance between the annular groove 91 on the side away from the threaded groove 92 and the front end of the first section of the lens 9. Thus, on the premise of ensuring the sealing effect of the first sealing structure 93, the movable range of the lens 9 can be increased, and the user experience can be further improved.

[0229] Preferably, the distance between the first radially extending portion 942 and the front end of the front housing 31 is slightly smaller than the distance between the annular groove 91 on the side away from the threaded groove 92 and the front end of the first section of the lens 9, and it is only necessary to ensure that the first sealing ring in the annular groove 91 does not move outside the front housing 31.

[0230] In some specific embodiments, the first limiting cover 94 is in snap-fit with the front housing 31.

[0231] Specifically, a claw 943 is provided at the rear end of the first axially extending portion 941. The claw 943 extends around the front housing 31 from the rear end of the first axially extending portion 941, and the claw portion of the claw 943 faces the inner circumference of the first limiting cover 94. A clamping groove 312 corresponding to the claw portion of the claw 943 is provided on the outer peripheral wall of the front housing 31. The first axially extending portion 941 is sleeved on the front end of the front housing 31, and the claw 943 of the first axially extending portion 941 is clamped in the clamping groove 312 of the front housing 31 to lock the relative position between the first limiting cover 94 and the front housing 31.

[0232] The front end of the front housing 31 is provided with a stepped section with an outer diameter increasing from front to back. The stepped section is inserted into the first axially extending portion 941, and the inner shape of the first axially extending portion 941 is the same as the outer shape of the front end of the front housing 31. Thus, the installation of the first limiting cover 94 can be facilitated, and after the first limiting cover 94 is installed, the installation stability of the first limiting cover 94 can be ensured.

[0233] Specifically, in this embodiment, the claw 943 includes a neck extending backward from the rear end of the first axially extending portion 941, and a claw portion protruding and extending from the rear end of the neck toward the axis of the front housing 31. When the first limiting cover 94 is installed, the claw portion abuts against the front housing 31 in front of the clamping groove 312, causing elastic deformation of the claw 943. When the claw portion moves to correspond to the clamping groove 312, the claw 943 rebounds and the claw portion is embedded in the clamping groove 312.

[0234] Preferably, in this embodiment, a plurality of the claws 943 are arranged circumferentially, and a gap is provided between adjacent claws 943. Thus, the installation stability between the first limiting cover 94 and the front housing 31 can be improved, and at the same time, the aesthetics of the spotlight can be improved.

[0235] The inner circumference of the rear end of the jaw 943 is provided with an inclined surface that extends obliquely away from the axis of the first limit cover 94 along the installation direction of the first limit cover 94, that is, an inclined surface that extends obliquely away from the axis of the first limit cover 94 from front to back.

[0236] In this embodiment, the rear housing 32 is also provided in a cylindrical shape. The front end of the rear housing 32 is hermetically connected to the radiator 1, and the rear end of the rear housing 32 is provided with a rear end cover 321, and the rear end cover 321 can close the rear end of the rear housing 32.

[0237] Specifically, in this embodiment, at least a part of the rear end cover 321 extends from the rear end of the rear housing 32 into the rear housing 32, and a second sealing structure 323 is provided at the overlapping portion of the rear end cover 321 and the rear housing 32.

[0238] Preferably, the outer diameter of the front end of the rear end cover 321 is greater than the inner diameter of the rear housing 32. The front end of the rear end cover 321 is provided with an insertion section, and the outer diameter of the insertion section is the same as the inner diameter of the rear housing 32. The rear housing 32 is in insertion fit with the rear end of the rear housing 32 through the insertion section, and the second sealing structure 323 is provided between the insertion section and the rear housing 32.

[0239] Preferably, the second sealing structure 323 includes a second sealing ring provided on the insertion section. Specifically, an annular groove 91 is provided on the insertion section, and the second sealing ring is provided in the annular groove 91.

[0240] As Figure 20 shown, in this embodiment, the rear end of the rear housing 32 is provided with a second limit cover 322. The second limit cover 322 is sleeved on the rear end of the rear housing 32 and is snap-connected to the rear housing 32. At least a part of the second limit cover 322 abuts against the rear side of the rear end cover 321 to axially limit the rear end cover 321.

[0241] In this embodiment, the structure of the second limit cover 322 is the same as that of the first limit cover 94. Specifically, the second limit cover 322 includes a second axially extending portion extending along the axis of the rear housing 32, and a second radially extending portion extending from the rear end of the second axially extending portion toward the axis of the rear housing 32.

[0242] The second axially extending portion is sleeved on the rear end of the rear housing 32. The front end of the second axially extending portion is provided with a jaw 943. A card slot 312 corresponding to the claw portion of the jaw 943 is provided on the outer peripheral wall of the rear housing 32. The claw portion of the jaw 943 is snap-connected in the card slot 312, and the edge of the rear end cover 321 is clamped between the second radially extending portion and the rear end of the rear housing 32.

[0243] In this embodiment, the rear end cover 321 is in a groove shape, and at the notch of the rear end cover 321, there is an edge protruding radially outward. The second limiting cover 322 is sleeved on the rear end of the rear end cover 321 and the rear housing 32. The claw 943 on the second limiting cover 322 is engaged with the card slot 312 on the rear housing 32 to realize the installation of the rear end cover 321.

[0244] In this embodiment, a circuit board is arranged on the inner side of the bottom of the groove of the rear end cover 321, and the circuit board is electrically connected to the power module of the spotlight. A power supply module is also installed on the bottom of the groove of the rear end cover 321. The power supply module is electrically connected to the circuit board, and the power supply module is connected to an external circuit in a magnetic adsorption power supply mode.

[0245] A display screen is also arranged on the inner side of the bottom of the groove of the rear end cover 321. The display screen can specifically be a liquid crystal screen. A light-transmitting area is arranged on the bottom of the groove of the rear end cover 321. The light-transmitting area at least corresponds to the display screen. The light-transmitting area can be a glass plate embedded in the rear end cover 321, and a sealing glue can be filled between the two to ensure sealing with the rear end cover 321.

[0246] A waterproof button is also arranged on the bottom of the groove of the rear end cover 321. The waterproof button is electrically connected to the circuit board, and the user can control the spotlight through the waterproof button.

[0247] In this embodiment, a stepped section with an outer diameter increasing from the rear to the front is arranged at the rear end of the rear housing 32. The stepped section is inserted into the second axially extending portion, and the internal shape of the second axially extending portion is the same as the external shape of the rear end of the rear housing 32. Thus, it is convenient to install the second limiting cover 322.

[0248] Preferably, in this embodiment, a plurality of claws 943 arranged circumferentially are provided on the second axially extending portion, and a gap is arranged between adjacent two claws 943. Thus, the installation stability between the second limiting cover 322 and the front housing 31 can be improved, and at the same time, the aesthetics of the spotlight can be improved.

[0249] The inner circumference of the front end of the claw 943 is set as an inclined surface extending obliquely in a direction away from the axis of the first limiting cover 94 along the installation direction of the second limiting cover 322, that is, an inclined surface extending obliquely in a direction away from the axis of the first limiting cover 94 from the rear to the front.

[0250] Preferably, in this embodiment, the front end of the front housing 31 and the rear end of the rear housing 32 can be set to have the same shape, and the first limiting cover 94 and the second limiting cover 322 can be set to have the same model, so that they can be mutually replaced, further reducing mold opening and saving costs.

[0251] In this embodiment, the lens 9 includes a housing 901 and a light-transmitting sheet 902 installed inside the housing 901. The housing 901 and the light-transmitting sheet 902 of the lens 9 are integrated. Specifically, to ensure the sealing performance, the light-transmitting sheet 902 is injection-molded and embedded in the inner circumference of the housing 901. That is, the light-transmitting sheet 902 adopts the process of thermal assembly or injection-molded insert, and the outer circumference of the light-transmitting sheet 902 is injection-molded and embedded in the inner circumference of the housing 901. This can reduce costs, improve reliability, and at the same time meet the sealing requirements.

[0252] The annular groove 91 and the threaded groove 92 are both provided on the housing 901.

[0253] Preferably, in some possible embodiments, there is a certain distance between the front end of the light-transmitting sheet 902 and the housing 901, so as to facilitate the installation of a lens cover at the front end of the lens 9 to protect the light-transmitting sheet 902 of the lens 9.

[0254] The light-transmitting sheet 902 is a convex lens.

[0255] Embodiment Four

[0256] As Figures 21 to 26 shown, in the embodiment of the present utility model, an accessory for a spotlight is introduced, and users can selectively purchase the accessory according to their needs.

[0257] In this embodiment, the spotlight includes a radiator, and the radiator of the spotlight includes three types: natural cooling, air cooling, and liquid cooling.

[0258] In this embodiment, the accessory for the spotlight includes an external power module and / or a water tank.

[0259] The external power module is a separately provided accessory, which is arranged outside the spotlight and connected to the spotlight through a circuit for supplying power to the spotlight.

[0260] In some specific embodiments, for a spotlight using natural cooling, the external power module is mainly used to supply power to the light energy module of the spotlight; for a spotlight using air cooling, the external power module is mainly used to supply power to the light energy module of the spotlight and the fan of the radiator; for a spotlight using liquid cooling, the external power module is mainly used to supply power to the light energy module of the spotlight and the pump of the radiator.

[0261] As Figures 21 to 24 shown, in this embodiment, the external power module includes a battery case 1-1, a power storage unit 1-3 installed inside the battery case 1-1, and a charge and discharge unit 1-2 provided on the battery case 1-1. The power storage unit 1-3 is used to store electrical energy, and the charge and discharge unit 1-2 is provided on the battery case 1-1 and electrically connected to the power storage unit 1-3 for connecting to an external power source or the spotlight.

[0262] In some specific embodiments, the external power module can charge the power storage unit 1-3 of the external power module by connecting the charge and discharge unit 1-2 to an external power supply, or can supply power to the collected light energy through the power storage unit 1-3 by connecting the charge and discharge unit 1-2 to an external spotlight.

[0263] In this embodiment, the battery case 1-1 includes a first case 1-11 and two second cases 1-12 that are spliced together. The first case 1-11 is cylindrical, and its interior houses the power storage unit 1-3. The second cases 1-12 are disposed at both ends of the first case 1-11 to block both ends of the first case 1-11, and at least one of the second cases 1-12 is provided with the charge and discharge unit 1-2.

[0264] In some specific embodiments, the charge and discharge units 1-2 can be provided on both of the second cases 1-12 at both ends of the first case 1-11, or the charge and discharge unit 1-2 can be provided only on one of the second cases 1-12. Each charge and discharge unit 1-2 can be provided with one charge and discharge port 1-22, or multiple charge and discharge ports 1-22 can be provided on one charge and discharge unit 1-2. The models of the respective charge and discharge ports 1-22 can be the same or different. Thus, the external power module can supply power to multiple spotlights simultaneously, and the external power module can be adapted to connection heads of different types of circuits.

[0265] As Figure 23 shown, in this embodiment, the second case 1-12 includes a first plate 1-121 that extends radially along the first case 1-11, and a second plate 1-122 that extends axially along the first case 1-11 from the end face of the first plate 1-121 and is inserted into the first case 1-11. The diameter of the first plate 1-121 is greater than the inner diameter of the first case 1-11.

[0266] Preferably, steps with an increased inner diameter are provided at both ends of the first case 1-11. The second plate 1-122 is annular, and its outer diameter is the same as the inner diameter at both ends of the first case 1-11. The second plate 1-122 is inserted into the end of the first case 1-11. The first plate 1-121 abuts against both ends of the first case 1-11, and the second plate 1-122 abuts against the steps at both ends of the first case 1-11.

[0267] In this embodiment, the charge and discharge unit 1-2 includes a circuit board 1-21 and a charge and discharge port 1-22 connected to the circuit board 1-21. The circuit board 1-21 of the charge and discharge unit 1-2 is mounted on the first plate 1-121 and is electrically connected to the power storage unit 1-3. The charge and discharge port 1-22 of the charge and discharge unit 1-2 is connected to the circuit board 1-21 for connection to an external circuit.

[0268] As Figures 22 to 24 shown, in some specific embodiments, on the side of the first plate 1-121 away from the first housing 1-11, there are provided an installation groove 1-125 and an installation cover 1-123. The installation groove 1-125 and the installation cover 1-123 are snapped together to form a space for installing the charge and discharge unit 1-2.

[0269] Specifically, the installation groove 1-125 includes a first groove body 1-126 with a circular radial cross-section, and a second groove body 1-127 provided on the side of the first groove body 1-126 and extending radially along the first groove body 1-126. The second groove body 1-127 is used to communicate the inside and outside of the first groove body 1-126. The installation cover 1-123 is in a groove shape, and its shape is adapted to the inner shape of the installation groove 1-125. The groove opening of the groove-shaped installation cover 1-123 is inserted into the installation groove 1-125 facing the groove opening of the installation groove 1-125, and a space for installing the charge and discharge unit 1-2 is formed between it and the installation groove 1-125.

[0270] Preferably, in this embodiment, the installation groove 1-125 is formed on the first plate 1-121, and the groove wall of the installation groove 1-125 protrudes from the first plate 1-121 in a direction away from the first housing 1-11, so as to form the installation groove 1-125 between it and the first plate 1-121. A space for installing the circuit board 1-21 is formed between the groove-shaped installation cover 1-123 and the first groove body 1-126, and a channel for communicating with the outside is formed between the installation cover 1-123 and the second groove body 1-127. The charge and discharge port 1-22 is arranged in the channel formed by the installation cover 1-123 and the second groove body 1-127, facing the outside of the installation groove 1-125, and the user can connect the circuit to the charge and discharge port 1-22 from this channel.

[0271] A limiting plate 1-128 is arranged in the second groove body 1-127. The limiting plate 1-128 is arranged perpendicular to the extending direction of the second groove body 1-127, and a limiting opening is arranged in the middle of the limiting plate 1-128.

[0272] In this embodiment, the circuit board 1-21 of the charge and discharge unit 1-2 is installed on the bottom of the first groove bottom. One end of the charge and discharge port 1-22 is connected to the circuit board 1-21, and the other end of the charge and discharge port 1-22 corresponds to the limiting opening. Preferably, the end of the charge and discharge port 1-22 away from the circuit board 1-21 is embedded at the limiting opening of the limiting plate 1-128.

[0273] In this embodiment, grooves and / or ridges are provided on the groove wall and / or the bottom of the second groove body 1-127 for limiting the edge of the limiting plate 1-128, so that the limiting plate 1-128 is stably installed. Specifically, grooves can be provided on the bottom of the second groove body 1-127, and ridges can be provided on the groove wall of the second groove body 1-127. During installation, the limiting plate 1-128 is inserted into the second groove from the notch of the second groove body 1-127, and the edge of the limiting plate 1-128 is limited by the ridges and grooves.

[0274] In this embodiment, when installing the charge and discharge unit 1-2, the limiting plate 1-128 can be first sleeved on the charge and discharge port 1-22, and then the charge and discharge unit 1-2 together with the limiting plate 1-128 is placed in the installation groove 1-125. After being fixed by screws, the installation cover 1-123 is installed.

[0275] Preferably, the installation cover 1-123 and the first plate 1-121 are connected by screws. Specifically, screw posts are provided on the installation cover 1-123, and the screws pass through the first plate 1-121 and are connected in the screw posts to realize the installation of the installation cover 1-123, which can avoid the exposure of the screws.

[0276] In this embodiment, when assembling the external power module, the charge and discharge unit 1-2 is first installed on the first plate 1-121, then the installation cover 1-123 is installed on the first plate 1-121, and finally the assembled second housing 1-12 is installed on the first housing 1-11.

[0277] In some possible embodiments, positioning posts are provided on the bottom of the installation groove 1-125, and positioning holes are provided on the circuit board 1-21 of the charge and discharge unit 1-2. The positioning holes cooperate with the positioning posts to facilitate the quick positioning and installation of the charge and discharge unit 1-2. A plurality of positioning posts are provided, and the positioning holes correspond to the positioning posts one by one.

[0278] Preferably, in this embodiment, two charge and discharge ports 1-22 are provided on the circuit board 1-21, and channels corresponding to the two charge and discharge ports 1-22 are provided on the second housing 1-12, and the two charge and discharge ports 1-22 form an included angle of 180°.

[0279] Preferably, in this embodiment, a protective cover 1-124 is provided on the installation cover 1-123. The protective cover 1-124 is connected to the installation cover 1-123 through a rotating shaft at the position corresponding to the second groove body 1-127 for opening or closing the charge and discharge port 1-22.

[0280] Specifically, the protective cover 1-124 is used to open or close the channel for accommodating the charge and discharge port 1-22.

[0281] Preferably, a positioning structure for holding the cover 1-124 in the closed position is provided between the cover 1-124 and the wall of the second groove 1-127, and / or a torsion spring for driving the cover 1-124 to rotate to the open position or the closed position is provided at the rotating shaft of the cover 1-124.

[0282] Preferably, in this embodiment, a positioning structure for holding the cover 1-124 in the closed position is provided between the cover 1-124 and the wall of the second groove 1-127, and a torsion spring for driving the cover 1-124 to rotate to the open position is provided at the rotating shaft of the cover 1-124.

[0283] Preferably, in this embodiment, a handle is provided on the cover 1-124 to facilitate the user to open the cover 1-124.

[0284] Preferably, in this embodiment, when the cover 1-124 is in the closed position, a smooth transition is provided between the outer wall of the cover 1-124 and the outer wall of the installation groove 1-125 to ensure aesthetics.

[0285] Preferably, in this embodiment, the external power module is further provided with a power display unit 1-4, and the power display unit 1-4 is used to display the remaining power of the external power module.

[0286] The power display unit 1-4 is installed in the space for installing the charge and discharge unit 1-2, fixed to the first plate 1-121 by screws, and electrically connected to the circuit board 1-21. Specifically, the display area of the power display unit 1-4 corresponds to the bottom of the groove of the installation cover 1-123, and at least the area corresponding to the display area of the power display unit 1-4 on the bottom of the groove of the installation cover 1-123 is provided as a light-transmitting part.

[0287] In some specific embodiments, the power storage unit 1-3 includes a plurality of battery packs connected in parallel. A lining is provided in the battery case 1-1, and a plurality of pressings protruding inwardly from the inner circumference of the lining and arranged at intervals along the axial direction of the lining are provided on the lining for holding each power storage unit 1-3 between two adjacent pressings. The lining is provided in the first housing 1-11.

[0288] In this embodiment, both ends of the circuit can be connected to the power supply module of the external power module and the spotlight, or can be connected to the external power module and the pump of the spotlight using liquid cooling.

[0289] In some specific embodiments, the charge and discharge unit 1-2 can be configured with a plurality of charge and discharge ports 1-22, and different charge and discharge ports 1-22 can be adapted to the connectors of the same or different models of circuits. Specifically, the model of the charge and discharge port 1-22 can be a Micro USB interface, a Type-C interface, or a Lightning interface.

[0290] In this embodiment, when the user configures an external power module for the spotlight, an internal power module can be configured inside the spotlight, or the internal power module can not be configured.

[0291] Specifically, in this embodiment, the external power module can be configured with multiple types having different capacities, and the user can select and match according to requirements. For example: if long-term lighting is required, a large-capacity external power module accessory can be selected and matched, or multiple small-capacity external power module accessories can be selected and matched; if short-term lighting is required, a small-capacity external power module accessory can be selected and matched, or a spotlight configured with an internal power module can be selected without additionally selecting and matching an external power module accessory; if high-power light energy module lighting is required, an external power module accessory can be selected and matched to increase the lighting duration.

[0292] Such as Figure 25 and Figure 26 As shown in [figures], in this embodiment, the water tank is arranged outside the spotlight and is communicated with the radiator of the spotlight adopting liquid cooling through a pipeline for containing coolant. The water tank includes a frame 2-1 and a liquid storage pipe 2-2 installed on the frame 2-1. Both ends of the liquid storage pipe 2-2 extend outside the frame 2-1 for connecting with the pipeline.

[0293] In this embodiment, the frame 2-1 is in a cuboid shape and includes a set of relatively arranged first side walls, a set of relatively arranged second side walls, and a set of relatively arranged third side walls. The first side walls, the second side walls, and the third side walls are connected to form six faces of the cuboid frame 2-1.

[0294] In this embodiment, the middle part of the first side wall is hollowed out.

[0295] In this embodiment, the edge of the hollowed-out part on the first side wall is arranged close to the edge of the first side wall, exposing the liquid storage pipe 2-2 to improve the heat exchange efficiency.

[0296] Preferably, in this embodiment, both ends of the liquid storage pipe 2-2 are fixed on the second side wall and include multiple sections extending along the length direction of the third side wall and arranged along the length direction of the second side wall. Each section of the liquid storage pipe 2-2 is connected end to end in sequence along the length direction of the second side wall.

[0297] Such as Figure 25 As shown in [figures], in this embodiment, both ends of each section of the liquid storage pipe 2-2 pass through the second side wall and extend outside the frame 2-1, and are communicated with the first end or the second end of the adjacent liquid storage pipe 2-2 pipe section outside the frame 2-1, which can ensure the connection stability between the liquid storage pipe 2-2 and the frame 2-1.

[0298] Preferably, adjacent two sections of the liquid storage pipe 2-2 are connected by an arc-shaped pipe section.

[0299] Preferably, in this embodiment, a U-shaped bracket 2-4 is provided on the outer side of the second side wall of the frame 2-1. The U-shaped bracket 2-4 is arranged facing the outside of the frame 2-1, and the arc-shaped pipe section of the liquid storage pipe 2-2 is arranged in the U-shaped bracket 2-4 to avoid bumping.

[0300] Preferably, in this embodiment, heat dissipation fins 2-3 are provided on the liquid storage pipe 2-2, and a plurality of heat dissipation fins 2-3 are arranged at intervals along the length direction of the liquid storage pipe 2-2.

[0301] The heat dissipation fins 2-3 are provided at least on the liquid storage pipe 2-2 corresponding to the hollowed-out part of the first side wall.

[0302] Preferably, in this embodiment, the second side wall extends along the width direction of the first side wall, the third side wall extends along the length direction of the first side wall, the liquid storage pipe 2-2 is arranged in the middle of the frame 2-1, and the heat dissipation fins 2-3 are arranged as circular sheets coaxial with the liquid storage pipe 2-2.

[0303] In some specific embodiments, heat dissipation fins 2-3 are provided on the pipe section of the liquid storage pipe 2-2 placed in the frame 2-1. The liquid storage pipe 2-2 can be arranged as a metal pipe, and the heat dissipation fins 2-3 are connected to the heat dissipation pipe to improve the heat dissipation efficiency.

[0304] In this embodiment, the outer diameter of the heat dissipation fins 2-3 is less than or equal to the width of the second side wall and the third side wall, so as to avoid the heat dissipation fins 2-3 extending outside the frame 2-1 and reduce the bumping of the heat dissipation fins 2-3.

[0305] In this embodiment, for the spotlight with a selected water tank, when connecting the water tank and the radiator of the spotlight, the radiator of the spotlight can be first filled with coolant, then the water tank is filled with coolant, and then both ends of the liquid storage pipe 2-2 are connected to the pump and the radiator through pipelines. In this embodiment, the spotlight includes a radiator and a light energy module arranged inside the circumference of the radiator.

[0306] The radiator using liquid cooling heat dissipation includes a cavity arranged around the light energy module. The liquid inlet and the liquid outlet of the cavity are sequentially connected to the pump and the water tank through pipelines. When the pump works, the coolant circulates between the cavity and the water tank.

[0307] In this embodiment, the cavity of the radiator is the space between the first cylindrical part and the second cylindrical part of the profile of the radiator.

[0308] Preferably, the coolant is water.

[0309] The above are only the preferred embodiments of the present utility model, and do not impose any form of limitation on the present utility model. Although the present utility model has been disclosed above with the preferred embodiments, it is not intended to limit the present utility model. Any person skilled in the art of this patent, within the scope of the technical solution of the present utility model, can make some changes or modifications using the technical content prompted above to form equivalent embodiments of equivalent changes. The implementation schemes in the above embodiments can be further combined or replaced. However, as long as it does not depart from the technical content of the present utility model, any simple modification, equivalent change and modification made to the above embodiments based on the technical essence of the present utility model still fall within the scope of the present utility model's solution.

Claims

1. A spotlight, comprising a radiator (1), and a front housing (31) and a rear housing (32) respectively connected to the front and rear ends of the radiator (1), characterized in that: The front shell (31) and the rear shell (32) are respectively detachably connected to the radiator (1), and connection structures of the same size are respectively provided between the front shell (31) and the rear shell (32) and the front and rear ends of radiators (1) of different models and / or using different heat dissipation methods.

2. The collecting light according to claim 1, characterized in that: The connection structure includes: Interfaces are arranged at the front and rear ends of the radiator (1); The plug-in portion is arranged at the ends of the front housing (31) and the rear housing (32) and is at least partially plugged into the interface; The front housing (31) and the rear housing (32) are respectively sealedly connected to the radiator (1).

3. The collecting light according to claim 2, characterized in that: The interface is provided with a sealing ring (5) at the overlap between the plug-in portion and the interface; or, The interface comprises a first interface and a second interface arranged on the periphery of the first interface, the plug-in portion comprises a first plug-in portion (33) and a second plug-in portion (34) respectively corresponding to the first interface and the second interface, and a sealing ring (5) is arranged at the overlapping portion of the first plug-in portion (33) and the first interface and / or at the overlapping portion of the second plug-in portion (34) and the second interface.

4. The collecting light according to claim 3, characterized in that: The first interface and the second interface are arranged alternately in the axial direction of the radiator (1), and the first interface and the second interface are connected via an extension wall (35) extending radially along the front shell (31) / the rear shell (32), and the extension wall (35) abuts against the end of the radiator (1).

5. The collecting light according to any one of claims 1 to 4, characterized in that: The profile (100) of the heat sink (1) comprises a first cylindrical portion (101) and a second cylindrical portion (102) which are coaxially arranged, and the second cylindrical portion (102) is arranged on the outer periphery of the first cylindrical portion (101); The interface is arranged at the ends of the first cylindrical portion (101) and the second cylindrical portion (102).

6. The collecting light according to claim 5, characterized in that: A mounting plate (6) is arranged inside the first cylindrical portion (101), and the mounting plate (6) is arranged along the radial direction of the first cylindrical portion (101). The front housing (31) and the rear housing (32) are plugged into the front and rear ends of the radiator (1) and connected to the mounting plate (6) by screws. A plurality of screws are arranged evenly along the circumference of the radiator (1).

7. The collecting lamp according to claim 6, characterized in that: The diameter of the mounting plate (6) is the same as the inner diameter of the first cylindrical portion (101). The inner wall of the first cylindrical portion (101) is provided with a limiting portion (104) protruding and extending toward the interior of the first cylindrical portion (101). The mounting plate (6) is mounted in the first cylindrical portion (101) and abuts against the limiting portion (104), and is connected to the front housing (31) and the rear housing (32) by screws.

8. The collecting light according to any one of claims 1 to 4, characterized in that: The light energy module (2) is mounted on the inner periphery of the heat sink (1); The light energy module (2) is mounted on a side of the mounting plate (6) facing the front housing (31); A lens (9) corresponding to the light energy module (2) is installed at the front end of the front housing (31).

9. The collecting light according to claim 8, characterized in that: A built-in electric energy module is arranged in the rear housing (32) and is electrically connected to the light energy module (2); and / or, A power supply module is provided on the rear housing (32), electrically connected to the light energy module (2) and / or the built-in power module, and used to connect to an external power module outside the rear housing (32); and / or, The control module (8) is electrically connected to the light energy module (2) and to the built-in electric energy module and / or the power supply module.

10. The collecting light according to any one of claims 1 to 4, characterized in that: The radiator (1) is provided with: a base, arranged at the bottom of the radiator (1); and / or, A handle is arranged on the top of the radiator (1).

Citation Information

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