Sound control device of energy-saving lamp
By designing large-area square heat dissipation covers, multi-fan and turbine blades, circular air circulation components and optimized air outlet structure in the sound control device of energy-saving lamps, the problems of uneven air flow and dust entry are solved, and more efficient heat dissipation effect and equipment stability are achieved.
Patent Information
- Application Number
- CN202421584648.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-07-05
AI Technical Summary
The existing sound control devices of energy-saving lamps cannot ensure uniform air flow distribution, and local overheating is prone to occur, and dust is prone to entering the heat dissipation system.
An energy-saving lamp sound control device is designed, including a plurality of fans and a square heat dissipation cover larger than the sum of the device body and the fan plane area. The fan is equipped with turbine blades near the heat dissipation cover. The surface of the heat dissipation cover is equipped with a circular air circulation component and a water droplet or mesh air outlet. A dust cover with an angle of 45° is installed on the top. The heat dissipation cover is made of aluminum alloy material.
By increasing the area of the heat dissipation cover and improving the design of the fan and air outlet, a more efficient heat dissipation effect is achieved, local overheating and dust entering are avoided, and the stability and life of the equipment are improved.
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Figure CN222978090U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of energy-saving lamp sound control, and specifically relates to an energy-saving lamp sound control device. Background Technique
[0002] The energy-saving lamp sound control device is an intelligent lighting system that realizes the control of lamps through sound induction technology. LEDs (light-emitting diodes), as energy-saving light sources, have the advantages of high efficiency and long life, but a large amount of heat is generated during their operation. If the heat is not dissipated in time, the excessive temperature will affect the light efficiency and service life of the LEDs. Therefore, LED lamps must be equipped with effective heat dissipation components to maintain an appropriate operating temperature. Commonly used heat dissipation materials include aluminum alloy, copper, etc., which have good thermal conductivity. Heat dissipation designs usually include structures such as heat sinks, heat pipes, and fans to increase the heat dissipation area or promote air flow. Aluminum alloy heat sinks are the most common solution because of their light weight, low cost, and good thermal conductivity. To improve the heat dissipation efficiency, the design of the heat sink often adopts a fin structure to increase the air contact area.
[0003] The existing energy-saving lamp sound control devices cannot ensure the uniform distribution of air flow, are prone to local overheating, and dust easily enters the heat dissipation system. Content of the Utility Model
[0004] In view of this, the utility model provides an energy-saving lamp sound control device, which can solve the problems that the existing energy-saving lamp sound control devices cannot ensure the uniform distribution of air flow, are prone to local overheating, and dust easily enters the heat dissipation system.
[0005] The utility model is realized as follows:
[0006] The utility model provides an energy-saving lamp sound control device, which includes an energy-saving lamp sound control device body and a heat dissipation component. The energy-saving lamp sound control device body is used to control the on / off and brightness of the energy-saving lamp through sound signals. The heat dissipation component includes a fan and a heat dissipation cover. There are multiple fans, which are respectively arranged at the side positions of the energy-saving lamp sound control device. The heat dissipation cover is installed at a position close to the housing of the energy-saving lamp sound control device, and the heat dissipation cover is used to realize the air flow between the energy-saving lamp sound control device and the outside.
[0007] On the basis of the above technical solution, the energy-saving lamp sound control device of the utility model can be further improved as follows:
[0008] Wherein, the heat dissipation cover is of a square structure, and its area is larger than the sum of the areas of the planes where the energy-saving lamp sound control device and the multiple fans are located.
[0009] The beneficial effects of adopting the above improvement scheme are as follows: the square structure and area of the heat dissipation cover are increased:
[0010] Effect: The heat dissipation cover with a square structure has a larger coverage area, exceeding the total area of the plane where the energy-saving lamp sound control device and the fan are located. This design can provide more surface area for heat exchange, thereby improving the heat dissipation efficiency. A larger heat dissipation cover also means that more air can come into contact with the device surface, further enhancing the heat dissipation effect.
[0011] Furthermore, turbine blades are arranged at the position where the fan is close to the heat dissipation cover, and the turbine blades are used to generate airflows driven by the fan.
[0012] The beneficial effects of adopting the above improvement scheme are as follows: the setting of the fan and the turbine blades:
[0013] Effect: Multiple fans are evenly distributed at the side position. Combined with the turbine blades, they can generate strong airflows. Driven by the fan, the turbine blades make the air circulate inside and outside the device, accelerating the discharge of heat. This structure ensures that heat does not accumulate inside the device, avoids overheating, and improves the overall operation stability and lifespan.
[0014] Furthermore, a wind circulation component is arranged on the surface of the heat dissipation cover. There are multiple wind circulation components, which are arranged at equal intervals in sequence on the heat dissipation cover.
[0015] Furthermore, the wind circulation component has a circular structure and is formed by arranging multiple air outlets in combination, for increasing the heat dissipation area.
[0016] The beneficial effects of adopting the above improvement scheme are as follows: the circular shape and equidistant arrangement of the wind circulation components:
[0017] Effect: The circular wind circulation component is composed of multiple air outlets. These air outlets are arranged at equal intervals on the heat dissipation cover, which can ensure the uniform distribution of air flow. Uniform air flow means that the heat of each part can be taken away in time, avoiding local overheating, and improving the uniformity and effectiveness of heat dissipation.
[0018] Furthermore, the air outlet has a water droplet-shaped structure, and multiple air outlets are arranged in a clockwise rotation around the center point of the air outlet.
[0019] Furthermore, the thickness of the air outlet gradually decreases from the place with the largest inner diameter of the water droplet-shaped structure to the place with the smallest inner diameter.
[0020] Furthermore, the air outlet has a mesh structure.
[0021] The beneficial effects of adopting the above improvement scheme are as follows: the water droplet-shaped and mesh air outlet design:
[0022] Effect:
[0023] Drop-shaped air outlet: This design can guide the air flow to pass through the air outlet more smoothly, reducing the air flow resistance. The structure with gradually decreasing thickness enables the air flow to accelerate when passing through, increasing the air fluidity and effectively taking away more heat.
[0024] Mesh air outlet: The mesh structure can increase the number and arrangement density of the air outlets, further expanding the heat dissipation surface area, allowing more air to pass through the air outlets and enhancing the heat dissipation effect.
[0025] Furthermore, a dust shield is provided at the top of the heat dissipation cover, and the included angle between the dust shield and the heat dissipation cover is 45°.
[0026] The beneficial effects of adopting the above improvement scheme are: The 45° included angle design of the dust shield:
[0027] Effect: The dust shield prevents dust from entering the heat dissipation component, ensuring that the heat dissipation cover and the fan remain clean to maintain the best heat dissipation performance. The 45° included angle design can effectively prevent dust and does not hinder air circulation, taking into account both the protection and heat dissipation requirements.
[0028] Furthermore, the heat dissipation cover is made of aluminum alloy material for enabling the energy-saving lamp sound control device to exchange heat with the outside world.
[0029] The beneficial effects of adopting the above improvement scheme are: The heat dissipation cover made of aluminum alloy material:
[0030] Effect: Aluminum alloy has excellent heat conduction performance, which can quickly transfer the heat from the energy-saving lamp sound control device to the surface of the heat dissipation cover and then take it away through air flow. Aluminum alloy also has good corrosion resistance and lightweight characteristics, ensuring the durability of the heat dissipation component and the convenience of installation.
[0031] Compared with the prior art, the beneficial effects of an energy-saving lamp sound control device provided by the present utility model are:
[0032] Energy-saving lamp sound control device: This is a sound control system for controlling the on / off and brightness of energy-saving lamps.
[0033] Heat dissipation cover: Installed at the position of the energy-saving lamp sound control device close to the housing for promoting the heat exchange between the device and the outside air.
[0034] Fan: Multiple fans are distributed on the side positions of the energy-saving lamp sound control device for enhancing the air flow and heat dissipation effect.
[0035] Heat dissipation cover structure: Improved to a square structure, with an area larger than the total area of the energy-saving lamp sound control device and the positions where multiple fans are located, improving the heat dissipation efficiency.
[0036] Turbine blade: It is arranged near the heat dissipation cover of the fan and is driven by the fan to generate air flow, further enhancing the heat dissipation effect.
[0037] Air circulation component: It has a circular structure, and multiple air outlets are arranged equidistantly on the surface of the heat dissipation cover, effectively increasing the heat dissipation area.
[0038] Air outlet design: It adopts a water droplet-shaped structure. Multiple air outlets are arranged in a clockwise rotation around the center point, and the thickness gradually decreases from the maximum inner diameter to the minimum inner diameter. It is a mesh structure.
[0039] Dust shield: It is installed on the top of the heat dissipation cover and forms a 45° angle with the cover plate, used to prevent dust accumulation from affecting the heat dissipation effect.
[0040] Material selection: The heat dissipation cover is made of aluminum alloy material to achieve good heat conduction performance and promote the heat exchange between the energy-saving lamp sound control device and the outside world. Description of the drawings
[0041] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required to be used in the description of the embodiments of the present invention. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0042] Figure 1 It is a schematic structural diagram of an energy-saving lamp sound control device;
[0043] Figure 2 It is a schematic structural diagram of the air outlet;
[0044] In the drawings, the list of components represented by each label is as follows:
[0045] 10. Fan; 20. Heat dissipation cover; 30. Dust shield. Detailed implementation manners
[0046] To make the purpose, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention.
[0047] As Figure 1-2As shown, it is an embodiment of a sound control device for an energy-saving lamp provided by the present utility model. In this embodiment, it includes a sound control device body for an energy-saving lamp and a heat dissipation component. The sound control device body for an energy-saving lamp is used to control the switch and brightness of the energy-saving lamp through sound signals. The heat dissipation component includes a plurality of fans 10, which are respectively arranged at the side positions of the sound control device for the energy-saving lamp. A heat dissipation cover 20 is installed at a position of the sound control device for the energy-saving lamp close to the housing. The heat dissipation cover 20 is used to realize the air flow between the sound control device for the energy-saving lamp and the outside world.
[0048] Among them, in the above technical solution, the heat dissipation cover 20 is of a square structure, and its area is larger than the sum of the areas of the plane where the sound control device for the energy-saving lamp and the plurality of fans 10 are located.
[0049] Furthermore, in the above technical solution, turbine blades are arranged at a position of the fan 10 close to the heat dissipation cover 20. The turbine blades are used to generate air flow driven by the fan 10.
[0050] Furthermore, in the above technical solution, a plurality of air circulation components are arranged on the surface of the heat dissipation cover 20, and they are arranged at equal intervals in sequence on the heat dissipation cover 20.
[0051] Furthermore, in the above technical solution, the air circulation component is of a circular structure, which is formed by arranging a plurality of air outlets in combination, and is used to increase the heat dissipation area.
[0052] Furthermore, in the above technical solution, the air outlet is of a water droplet-shaped structure, and a plurality of air outlets are arranged in a clockwise rotation around the center point of the air outlet.
[0053] Furthermore, in the above technical solution, the thickness of the air outlet gradually decreases from the position with the largest inner diameter of the water droplet-shaped structure to the position with the smallest inner diameter.
[0054] Furthermore, in the above technical solution, the air outlet is of a mesh structure.
[0055] Furthermore, in the above technical solution, a dust shield 30 is arranged at the top of the heat dissipation cover 20, and the included angle between the dust shield 30 and the heat dissipation cover 20 is 45°.
[0056] Furthermore, in the above technical solution, the heat dissipation cover 20 is made of aluminum alloy material, which is used to enable heat exchange between the sound control device for the energy-saving lamp and the outside world.
[0057] Installation preparation:
[0058] Ensure that all necessary components and tools are ready.
[0059] Check whether the heat dissipation component and the lamp sound control device are intact.
[0060] Install the heat dissipation cover:
[0061] Fix the heat dissipation cover at the designated position of the lamp sound control device. Ensure that the heat dissipation cover is in close contact with the lamp sound control device to effectively conduct heat.
[0062] According to the device design, screws or other fixing methods may be required to firmly mount the heat dissipation cover on the device.
[0063] Connect the fan to the power supply:
[0064] Connect the power cord of the fan to the power interface of the sound control device. Ensure the connection is firm and avoid looseness.
[0065] Check whether the fan can operate normally.
[0066] Set the air outlet direction:
[0067] Adjust the direction of the water droplet-shaped and mesh air outlets to maximize the air circulation effect.
[0068] Ensure that the air outlet is not blocked by obstacles to ensure unobstructed air flow.
[0069] Install the dust-proof component:
[0070] Install the 45° angle dust shield on the heat dissipation cover. Ensure they are correctly positioned to prevent dust from entering without affecting air circulation.
[0071] Power on and test:
[0072] After installation, power on the device and conduct tests. Check whether the fan starts and whether the air flow is smooth.
[0073] Use a temperature sensor or manual touch to detect the temperature change of the heat dissipation cover to ensure good heat dissipation effect.
[0074] Monitor and maintain:
[0075] During the operation of the device, regularly check the working status of the fan and the heat dissipation components.
[0076] Clean the dust and dirt on the heat dissipation cover to maintain good heat dissipation performance. Pay special attention to the cleaning of the dust-proof component to ensure its dust-proof effect is not affected.
[0077] Troubleshooting:
[0078] If it is found that the heat dissipation effect is poor or the fan does not work, the power connection, fan status, and the contact between the heat dissipation cover and the lamp sound control device should be checked in a timely manner.
[0079] Handle any detected faults to ensure the device resumes normal operation.
[0080] Specifically, the principle of the present utility model is as follows:
[0081] Conductive heat dissipation: The heat dissipation cover and other heat dissipation components are made of high thermal conductivity materials (such as aluminum alloy), which can quickly conduct the heat generated by the lamp sound control device to the surface of the heat dissipation cover.
[0082] Convective heat dissipation: The air flow generated by the fan enables air to circulate inside and outside the heat dissipation cover. The setting of multiple fans and the use of turbine blades enhance the fluidity of the air flow and accelerate the discharge of heat.
[0083] Radiative heat dissipation: The surface of the heat dissipation cover releases heat into the air through heat radiation exchange with the surrounding air.
[0084] Increase the heat dissipation surface area: The square structure and increased area of the heat dissipation cover, as well as the circular and equidistant arranged air circulation components, all expand the heat dissipation area and provide more surfaces for heat exchange.
[0085] Optimize the air outlet design: The water droplet-shaped and mesh air outlet designs can reduce air flow resistance, accelerate air flow, and increase the number and arrangement density of air outlets, thus improving the heat dissipation effect.
Claims
1. A sound control device for energy-saving lamps, characterized in that: The invention comprises an energy-saving lamp voice control device body and a heat dissipation component, wherein the energy-saving lamp voice control device body is used to control the switch and brightness of the energy-saving lamp through sound signals; the heat dissipation component comprises a fan (10) and a heat dissipation cover (20), wherein the fan (10) comprises a plurality of fans, which are respectively arranged at the side positions of the energy-saving lamp voice control device; the heat dissipation cover (20) is installed at a position of the energy-saving lamp voice control device close to the housing, and the heat dissipation cover (20) is used to realize air flow between the energy-saving lamp voice control device and the outside.
2. The energy-saving lamp sound control device according to claim 1, characterized in that: The heat dissipation cover (20) is a square structure, and its area is larger than the sum of the areas of the planes where the energy-saving lamp sound control device and the plurality of fans (10) are located.
3. The energy-saving lamp sound control device according to claim 2, characterized in that: The fan (10) is provided with turbine blades at a position close to the heat dissipation cover (20), and the turbine blades are used to generate airflow driven by the fan (10).
4. The energy-saving lamp sound control device according to claim 3, characterized in that: The surface of the heat dissipation cover (20) is provided with an air circulation component, and the air circulation components are multiple and are arranged in sequence and at equal intervals on the heat dissipation cover (20).
5. The energy-saving lamp sound control device according to claim 4, characterized in that: The air circulation component is a circular structure, which is composed of a plurality of air outlets arranged and combined to increase the heat dissipation area.
6. The energy-saving lamp sound control device according to claim 5, characterized in that: The air outlet is a water drop-shaped structure, and a plurality of the air outlets are arranged in a clockwise rotation around a center point of the air outlet.
7. The energy-saving lamp sound control device according to claim 6, characterized in that: The thickness of the air outlet gradually decreases from the point where the inner diameter of the water drop-shaped structure is the largest to the point where the inner diameter is the smallest.
8. The energy-saving lamp sound control device according to claim 7, characterized in that: The air outlet is a mesh structure.
9. The energy-saving lamp sound control device according to claim 8, characterized in that: A dust shield (30) is provided on the top of the heat dissipation cover (20), and the angle between the dust shield (30) and the heat dissipation cover (20) is 45°.
10. The energy-saving lamp sound control device according to claim 9, characterized in that: The heat dissipation cover (20) is made of aluminum alloy material and is used to enable the energy-saving lamp sound control device to exchange heat with the outside world.