A game environment light controller with a protection structure
By introducing power failure protection, protection, and heat dissipation devices into the game environment lighting controller, the problem of easy damage to the circuit module is solved, the protection and heat dissipation effects of the equipment are achieved, and the stable operation of the equipment is ensured.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XIAMEN KAWAGOE NETWORK TECHNOLOGY CO LTD
- Filing Date
- 2025-09-25
- Publication Date
- 2026-07-21
Smart Images

Figure CN224534235U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of controller technology, and in particular to a game environment lighting controller with a protective structure. Background Technology
[0002] A game environment lighting controller is an intelligent lighting control device / system designed specifically for game scenes. Its core function is to transform dynamic elements in the game (such as screen colors, plot rhythm, sound effects changes, character status, etc.) into lighting effects in the physical space in real time through software and hardware collaboration. This breaks down the boundaries between the "virtual world inside the screen" and the "real environment outside the screen," creating an immersive, multi-sensory gaming experience for players.
[0003] CN216047511U discloses a game environment lighting controller with a protective structure, including a power module and a lighting operation module. The power module has a power input terminal and a power output terminal. The power input terminal is used to connect to an external power source, and the power output terminal is electrically connected to the lighting operation module. The lighting operation module includes a mounting housing, a central processing unit, an operation signal input unit, and a rotating connection unit for power supply. The central processing unit, the operation signal input unit, and the rotating connection unit are mounted on the mounting housing. The central processing unit is electrically connected to the operation signal input unit and the rotating connection unit, and the connection between the lighting lamp and the lighting controller can rotate.
[0004] However, existing lighting controllers cannot protect the circuit modules, resulting in component damage. To address this, a game environment lighting controller with a protective structure is proposed. Utility Model Content
[0005] To address the problem that existing lighting controllers cannot protect circuit modules, thus causing component damage, this application provides a game environment lighting controller with a protective structure.
[0006] The game environment lighting controller with a protective structure provided in this application adopts the following technical solution:
[0007] A game environment lighting controller with a protective structure includes: a controller body;
[0008] The power failure protection device is located inside the controller body and is used to protect the controller body and its components.
[0009] A protective device is located on the front side of the controller body and is used to protect the controller body.
[0010] The first fixing device is provided in two parts, both of which are located on the front side of the protective device and are used for the installation of the protective device.
[0011] The second fixing device is provided in two parts, and the two second fixing devices are respectively set on the front side of the two second fixing devices, which is used to reinforce the protective device.
[0012] A heat dissipation device is located inside the controller body and is used to dissipate heat from the controller body and its components.
[0013] Preferably, the power failure protection device includes a circuit module, a sensor, a charging module, and an intelligent power failure module. The circuit module is installed inside the controller body, and the sensor, charging module, and intelligent power failure module are all installed on the top of the circuit module. The sensor continuously collects key parameters of the circuit module, including input voltage, operating current, internal temperature, etc., and converts the data into electrical signals and transmits them to the intelligent power failure module. The intelligent power failure module has a built-in preset protection threshold. After receiving the sensor signal, it compares it with the threshold. If the parameter is abnormal, the protection power failure function is immediately triggered.
[0014] Preferably, the protective device includes a central control system. A cover plate is embedded on the front side of the controller body, and the central control system is installed on the front side of the cover plate. A first heat dissipation and air distribution plate is fixedly connected to the rear side of the cover plate. A waterproof and breathable membrane is fixedly connected to the rear side of the first heat dissipation and air distribution plate. A rubber seal is fixedly connected to the inner wall of the controller body. The rubber seal fits the gap between the cover plate and the controller body, filling the gap and enhancing the stability of the cover plate after installation. It can also buffer the impact force through its own elasticity when subjected to impact, avoiding damage to the components caused by hard contact. The waterproof and breathable membrane is made of PTFE material and has the characteristics of "waterproof and airtight": it can block external liquids and dust particles from entering the interior through the gap between the cover plate and the body, while allowing internal hot air to be discharged through the micropores of the membrane, thus balancing protection and breathability. At the same time, the first heat dissipation and air distribution plate is made of metal material with densely distributed heat dissipation fins on its surface. Its rear side is in contact with the air inside the controller, which can absorb internal heat and conduct it to the cover plate, and dissipate heat to the outside air through the cover plate.
[0015] Preferably, the first fixing device at the top includes a buckle, the top of the cover plate is fixedly connected to the buckle, and a slot is provided on the front side of the controller body. The buckle engages with the slot. The two first fixing devices are symmetrically distributed with the transverse central axis of the cover plate as the center point. When installing the cover plate, the buckles on both sides are aligned with the slot of the controller body, and vertical pressure is applied to make the buckles elastically deform and embed into the slot. After being released, the buckles return to their original shape. The cover plate is fixed by the friction of the engaging surfaces to prevent it from shifting laterally or falling off, thus providing an installation base for the second fixing device.
[0016] Preferably, the second fixing device at the top includes two fixing bolts and two fixing nuts. The rear ends of the two fixing bolts are fixedly connected to the front side of the controller body. The two fixing bolts pass through the buckle located at the top. The front ends of the two fixing bolts are threadedly connected to the two fixing nuts. The two second fixing devices are symmetrically distributed with the transverse central axis of the cover plate as the center point. When the fixing nuts are screwed into the front ends of the fixing bolts, the axial pressure generated by the thread engagement tightly presses the buckle against the edge of the slot on the front side of the controller body, eliminating the gap between the buckle and the slot.
[0017] Preferably, the heat dissipation device includes two heat dissipation frames, which are installed on the left side of the controller body. A first filter screen is fixedly connected to the inner wall of the left side of each of the two heat dissipation frames. A rotating motor is installed on the inner wall of the right side of each of the two heat dissipation frames. Fan blades are fixedly connected to the output shafts of the two rotating motors. Second heat dissipation flow equalization plates are fixedly connected to the inner walls of both sides of the controller body. Third filters are fixedly connected to multiple through holes in the two second heat dissipation flow equalization plates. Multiple heat dissipation holes are opened on the right side of the controller body. When the internal temperature of the controller body reaches a preset value, the sensor of the power failure protection device monitors and triggers the rotating motors, driving the fan blades to rotate clockwise, creating a negative pressure inside the heat dissipation frames. Under the action of this negative pressure, external cold air enters the controller body through the first filter screen on the left side of the heat dissipation frame. The filter screen blocks large particles of impurities such as dust and hair from the air, preventing them from adhering to components such as circuit modules and rotating motors and affecting heat dissipation. After entering the interior, the cold air first flows through the second heat dissipation and air distribution plates on both sides. The air distribution plates absorb the heat from heat-generating components such as circuit modules and intelligent power-off modules through metal fins. The cold air heats up after contacting the fins. At the same time, the through-hole structure of the air distribution plates "divides" the airflow into multiple small airflows, ensuring that the heat is carried away evenly. When the airflow passes through the through-holes of the second heat dissipation and air distribution plates, the third filter screen performs a second filtration, intercepting tiny particles that were not blocked by the first filter screen, further protecting the internal precision components. The hot air, after absorbing heat, flows to the right side of the controller body under the continuous push of the fan blades, and is finally discharged to the outside through multiple heat dissipation holes, completing one "intake-heat absorption-exhaust" heat dissipation cycle.
[0018] In summary, this application includes at least one of the following beneficial technical effects:
[0019] 1. By blocking external liquids and dust particles from entering the interior through the gap between the cover plate and the main body, while allowing internal hot air to be discharged through the micropores of the membrane, it balances protection and breathability. At the same time, the first heat dissipation plate is made of metal with densely distributed heat dissipation fins on its surface. Its rear side is in contact with the air inside the controller, which can absorb internal heat and conduct it to the cover plate, and dissipate heat to the outside air through the cover plate.
[0020] 2. The key parameters of the circuit module are continuously collected by the sensor, including input voltage, operating current, internal temperature, etc. The data is converted into electrical signals and transmitted to the intelligent power-off module. The intelligent power-off module has a built-in preset protection threshold. After receiving the sensor signal, it compares it with the threshold. If the parameter is abnormal, the protection power-off function is triggered immediately. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure in Embodiment 1 of this application;
[0022] Figure 2 This is a schematic diagram of the protective device structure in Embodiment 1 of this application;
[0023] Figure 3 This is a schematic diagram of the internal structure of the controller body in Embodiment 1 of this application;
[0024] Figure 4 This is a schematic diagram of the connection structure between the controller body and the heat dissipation device in Embodiment 1 of this application;
[0025] Figure 5 This is a schematic diagram of the connection structure of the heat dissipation device in Embodiment 1 of this application.
[0026] Reference numerals in the attached diagram: 1. Controller body; 2. Charging module; 3. Intelligent power-off module; 4. Sensor; 5. Heat dissipation hole; 6. Central control system; 7. Fixing bolt; 8. Fixing nut; 9. Buckle; 10. Cover plate; 11. First heat dissipation and flow equalization plate; 12. Waterproof and breathable membrane; 13. Rubber seal; 14. Circuit module; 15. Slot; 16. Heat dissipation frame; 17. First filter screen; 18. Second heat dissipation and flow equalization plate; 19. Rotating motor; 20. Third filter screen; 21. Second filter screen; 22. Fan blade. Detailed Implementation
[0027] Example 1
[0028] The following is in conjunction with the appendix Figures 1-5 The first embodiment of this application will be described in further detail.
[0029] A game environment lighting controller with a protective structure includes: a controller body 1;
[0030] A power failure protection device is located inside the controller body 1 and is used to protect the controller body 1 and its components.
[0031] A protective device is located on the front side of the controller body 1 and is used to protect the controller body 1.
[0032] The first fixing device is provided in two parts, both of which are located on the front side of the protective device and are used for the installation of the protective device.
[0033] The second fixing device is provided in two parts, and the two second fixing devices are respectively set on the front side of the two second fixing devices, which is used to reinforce the protective device.
[0034] A heat dissipation device is located inside the controller body 1 and is used to dissipate heat from the controller body 1 and its components.
[0035] Reference Figures 2-4 The power failure protection device includes a circuit module 14, a sensor 4, a charging module 2, and an intelligent power failure module 3. The circuit module 14 is installed inside the controller body 1. The sensor 4, the charging module 2, and the intelligent power failure module 3 are all installed on the top of the circuit module 14. The sensor 4 continuously collects key parameters of the circuit module 14, including input voltage, operating current, internal temperature, etc., and converts the data into electrical signals and transmits them to the intelligent power failure module 3. The intelligent power failure module 3 has a built-in preset protection threshold. After receiving the signal from the sensor 4, it compares it with the threshold. If the parameter is abnormal, the protection power failure function is immediately triggered.
[0036] The protective device includes a central control system 6. A cover plate 10 is embedded in the front of the controller body 1. The central control system 6 is installed in front of the cover plate 10. A first heat dissipation and flow equalization plate 11 is fixedly connected to the rear of the cover plate 10. A waterproof and breathable membrane 12 is fixedly connected to the rear of the first heat dissipation and flow equalization plate 11. A rubber seal 13 is fixedly connected to the inner wall of the controller body 1. The rubber seal 13 fits the gap between the cover plate 10 and the controller body 1, filling the gap and enhancing the stability of the cover plate 10 after installation. It can also buffer the impact through its own elasticity when subjected to impact. To prevent damage to components caused by hard contact, the waterproof and breathable membrane 12 is made of PTFE material, which has the characteristics of being "waterproof and breathable": it can block external liquids and dust particles from entering the interior through the gap between the cover plate 10 and the main body, while allowing internal hot air to be discharged through the micropores of the membrane, thus balancing protection and breathability. Meanwhile, the first heat dissipation and air distribution plate 11 is made of metal material with densely distributed heat dissipation fins on its surface. Its rear side is in contact with the air inside the controller, which can absorb internal heat and conduct it to the cover plate 10, and dissipate heat to the outside air through the cover plate 10.
[0037] The first fixing device at the top includes a buckle 9. The top of the cover plate 10 is fixedly connected to the buckle 9. The front side of the controller body 1 has a slot 15. The buckle 9 is engaged with the slot 15. The two first fixing devices are symmetrically distributed with the transverse central axis of the cover plate 10 as the center point. When installing the cover plate 10, the buckles 9 on both sides are aligned with the slots 15 of the controller body 1. Vertical pressure is applied to make the buckles 9 elastically deform and embed into the slots 15. After being released, the buckles 9 return to their original shape. The cover plate 10 is fixed by the friction of the engaging surface to prevent it from shifting laterally or falling off, thus providing an installation base for the second fixing device.
[0038] The second fixing device at the top includes two fixing bolts 7 and two fixing nuts 8. The rear ends of the two fixing bolts 7 are fixedly connected to the front side of the controller body 1. The two fixing bolts 7 pass through the buckle 9 located at the top. The front ends of the two fixing bolts 7 are threadedly connected to the two fixing nuts 8. The two second fixing devices are symmetrically distributed with the transverse central axis of the cover plate 10 as the center point. When the fixing nuts 8 are screwed into the front ends of the fixing bolts 7, the axial pressure generated by the thread engagement will press the buckle 9 tightly against the edge of the slot 15 on the front side of the controller body 1, eliminating the gap between the buckle 9 and the slot 15.
[0039] The heat dissipation device includes two heat dissipation frames 16, which are installed on the left side of the controller body 1. A first filter screen 17 is fixedly connected to the inner wall of the left side of each heat dissipation frame 16. A rotating motor 19 is installed on the inner wall of the right side of each heat dissipation frame 16. Fan blades 22 are fixedly connected to the output shafts of both rotating motors 19. Second heat dissipation flow equalization plates 18 are fixedly connected to the inner walls of both sides of the controller body 1. Third filters 20 are fixedly connected to multiple through holes in the two second heat dissipation flow equalization plates 18. Multiple heat dissipation holes 5 are opened on the right side of the controller body 1. When the internal temperature of the controller body 1 reaches a preset value, the sensor 4 of the power-off protection device monitors and triggers the rotating motor 19, driving the fan blades 22 to rotate clockwise, creating a negative pressure inside the heat dissipation frame 16. Under the action of this negative pressure, external cold air enters the controller through the first filter screen 17 on the left side of the heat dissipation frame 16. The first filter 17 blocks large particles of impurities such as dust and hair in the air, preventing them from adhering to components such as the circuit module 14 and the rotating motor 19 and affecting heat dissipation. After the cold air enters the interior, it first flows through the second heat dissipation equalization plates 18 on both sides. The equalization plates absorb the heat from the heat-generating components such as the circuit module 14 and the intelligent power-off module 3 through metal fins. The cold air heats up after contacting the fins. At the same time, the through-hole structure of the equalization plates "divides" the airflow into multiple small airflows to ensure that the heat is carried away evenly. When the airflow passes through the through-holes of the second heat dissipation equalization plates 18, the third filter 20 performs secondary filtration, intercepting the tiny particles that the first filter 17 did not block, further protecting the internal precision components. The hot air that has absorbed heat flows to the right side of the controller body 1 under the continuous push of the fan blades 22, and is finally discharged to the outside through multiple heat dissipation holes 5, completing a heat dissipation cycle of "air intake-heat absorption-air exhaust".
[0040] The implementation principle of a game environment lighting controller with a protective structure in this application embodiment is as follows: (1) Protection operation: The sensor 4 continuously collects key parameters of the circuit module 14, including input voltage, operating current, internal temperature, etc., and converts the data into electrical signals and transmits them to the intelligent power-off module 3. The intelligent power-off module 3 has a built-in preset protection threshold. After receiving the signal from the sensor 4, it compares it with the threshold. If the parameter is abnormal, the protection power-off function is immediately triggered. The rubber seal 13 fits the gap between the cover plate 10 and the controller body 1, which fills the gap and enhances the stability of the cover plate 10 after installation. It can also cushion the impact force with its own elasticity when it is impacted, avoiding damage to the parts caused by hard contact. The waterproof and breathable membrane 12 is made of PTFE material and has the characteristics of "waterproof and airtight": it can block external liquids and dust particles from entering the interior through the gap between the cover plate 10 and the body, while allowing internal hot air to be discharged through the micropores of the membrane, taking into account both protection and breathability. Meanwhile, the first heat dissipation and air distribution plate 11 is made of metal material with dense heat dissipation fins distributed on the surface. Its rear side is in contact with the air inside the controller, which can absorb internal heat and conduct it to the cover plate 10, and dissipate heat to the outside air through the cover plate 10.
[0041] (2) Disassembly and maintenance work: Align the two side buckles 9 with the slots 15 of the controller body 1, apply vertical pressure to make the buckles 9 elastically deform and embed into the slots 15, and release them to restore the original shape. Fix the cover plate 10 by the friction of the mating surface to prevent it from shifting laterally or falling off, and provide an installation base for the second fixing device. Tighten the fixing nut 8 into the front end of the fixing bolt 7. Through the axial pressure generated by the thread engagement, press the buckle 9 tightly against the edge of the slot 15 on the front side of the controller body 1 to eliminate the gap between the buckle 9 and the slot 15, thereby completing the installation work.
[0042] (3) Heat dissipation operation: The rotating motor 19 starts and drives the fan blades 22 to rotate clockwise, creating a negative pressure inside the heat dissipation frame 16. Under the action of the negative pressure, the external cold air enters the controller through the first filter 17 on the left side of the heat dissipation frame 16. The first filter 17 blocks large particles of impurities such as dust and hair in the air, preventing them from adhering to components such as the circuit module 14 and the rotating motor 19 and affecting heat dissipation. After the cold air enters the interior, it first flows through the second heat dissipation equalization plates 18 on both sides: the equalization plates absorb the heat from the circuit module 14 and the intelligent power-off module through the metal fins. The heat from the heat-generating components is transferred to the fins. The cold air heats up upon contact with the fins, and the through-hole structure of the flow equalization plate divides the airflow into multiple smaller airflows, ensuring that the heat is carried away evenly. When the airflow passes through the through-holes of the second heat dissipation flow equalization plate 18, the third filter 20 performs secondary filtration, intercepting tiny particles that were not blocked by the first filter 17, further protecting the internal precision components. The hot air, after absorbing heat, flows to the right side of the controller body 1 under the continuous push of the fan blades 22, and is finally discharged to the outside through multiple heat dissipation holes 5, completing a heat dissipation cycle of "air intake-heat absorption-air exhaust".
[0043] Example 2
[0044] The difference between this embodiment and Embodiment 1 is that shock-absorbing spring pads are installed on both sides of the controller body 1. These shock-absorbing spring pads buffer the impact force on the controller body and provide protection for it.
[0045] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A game environment lighting controller with a protective structure, comprising: Controller body (1); characterized in that: A power failure protection device is installed inside the controller body (1) to protect the controller body (1) and its components. A protective device is located on the front side of the controller body (1) and is used to protect the controller body (1). The first fixing device is provided in two parts, both of which are located on the front side of the protective device and are used for the installation of the protective device. The second fixing device is provided in two parts, and the two second fixing devices are respectively set on the front side of the two second fixing devices, which is used to reinforce the protective device. A heat dissipation device is located inside the controller body (1) and is used to dissipate heat from the controller body (1) and its components.
2. A game environment lighting controller with a protective structure according to claim 1, characterized in that: The power failure protection device includes a circuit module (14), a sensor (4), a charging module (2), and an intelligent power failure module (3). The circuit module (14) is installed inside the controller body (1), and the sensor (4), the charging module (2), and the intelligent power failure module (3) are all installed on the top of the circuit module (14).
3. A game environment lighting controller with a protective structure according to claim 2, characterized in that: The protective device includes a central control system (6), a cover plate (10) is embedded on the front side of the controller body (1), the central control system (6) is installed on the front side of the cover plate (10), a first heat dissipation and flow equalization plate (11) is fixedly connected to the rear side of the cover plate (10), a waterproof and breathable membrane (12) is fixedly connected to the rear side of the first heat dissipation and flow equalization plate (11), and a rubber seal (13) is fixedly connected to the inner wall of the controller body (1).
4. A game environment lighting controller with a protective structure according to claim 3, characterized in that: The first fixing device at the top includes a buckle (9), the top of the cover plate (10) is fixedly connected to the buckle (9), and the front side of the controller body (1) is provided with a slot (15), the buckle (9) is engaged with the slot (15), and the two first fixing devices are symmetrically distributed with the transverse central axis of the cover plate (10) as the center point.
5. A game environment lighting controller with a protective structure according to claim 4, characterized in that: The second fixing device at the top includes two fixing bolts (7) and two fixing nuts (8). The rear ends of the two fixing bolts (7) are fixedly connected to the front side of the controller body (1). The two fixing bolts (7) pass through the buckle (9) at the top. The front ends of the two fixing bolts (7) are threadedly connected to the two fixing nuts (8). The two second fixing devices are symmetrically distributed with the transverse central axis of the cover plate (10) as the center point.
6. A game environment lighting controller with a protective structure according to claim 5, characterized in that: The heat dissipation device includes two heat dissipation frames (16), which are installed on the left side of the controller body (1). A first filter screen (17) is fixedly connected to the inner wall of the left side of each of the two heat dissipation frames (16). A rotating motor (19) is installed on the inner wall of the right side of each of the two heat dissipation frames (16). A fan blade (22) is fixedly connected to the output shaft of each of the two rotating motors (19). A second heat dissipation flow equalization plate (18) is fixedly connected to the inner walls of both sides of the controller body (1). A third filter screen (20) is fixedly connected to multiple through holes of the two second heat dissipation flow equalization plates (18). Multiple heat dissipation holes (5) are opened on the right side of the controller body (1).