An anti-slip gaming mouse with both heating and heat dissipation functions

By designing an anti-slip gaming mouse with heating and cooling functions in the gaming mouse, the fan blades driven by a mini motor generate wind power, solving the slippage caused by hand sweat and improving operational smoothness.

CN115113745BActive Publication Date: 2025-06-24GUANGDONG CHUANDONG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202210795339.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-06-11
Publication Date
2025-06-24
Estimated Expiration
2041-06-11

AI Technical Summary

Technical Problem

When using a gaming mouse for a long time, excessive sweat on the hands leads to slippage, and the mouse lacks a heating structure, which affects the smoothness of the operation.

Method used

An anti-slip gaming mouse with heating and heat dissipation functions was designed. The fan blades driven by a mini motor generate wind power, and the drying and heating of hand sweat was achieved by connecting the hose and the drying area.

Benefits of technology

Effectively prevent slippage caused by hand sweat, and improve the smoothness of operation through heating function, adapting to the use of different temperature conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a non-slip gaming mouse with both heating and heat dissipation functions, including a housing, inside which a micro motor is bolted, and a fan blade is fixedly installed on the output shaft of the micro motor; a movable block, which is movably arranged on the side of the protection box, and a heating wire is installed inside the movable block; a connecting hose, the bottom of which is connected to the top of the movable block, and a fixed cavity is formed in the housing at the top of the connecting hose; a fixed cylinder, which is fixedly arranged at the bottom of the movable block, and the bottom of the fixed cylinder is movably connected to the inner bottom surface of the housing through a movable shaft; a sleeve block, which is sleeved on the outside of the fixed cylinder. This non-slip gaming mouse with both heating and heat dissipation functions can dry the sweat generated by the user's hand fitting with the mouse for a long time, prevent the phenomenon of slipping, and can heat the hand through the mouse according to needs, thereby improving the smoothness of operation.
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Description

[0001] This application is a divisional application of a Chinese invention patent application with the application number 202110656146.1, the application date of June 11, 2021, and the invention title of "An anti-slip gaming mouse with an internal hand sweat drying structure". Technical Field

[0002] The present invention relates to the technical field of gaming mice, and specifically to an anti-slip gaming mouse with both heating and cooling functions. Background Art

[0003] A gaming mouse is a mouse that can enhance the gaming experience compared to an ordinary mouse. To meet the needs of users, it is necessary to improve the functionality of traditional gaming mice. One of them is to set a sweat drying structure inside it. For example, a portable gaming mouse with a backlight design with the publication number CN207718338U includes a main body, a left side plate, a right side plate, and a palm rest... The mouse also has a backlight effect. Such a portable gaming mouse with a backlight design can arbitrarily select a scene mode according to the game and can also conveniently adjust the size, significantly increasing the usability. However, this portable gaming mouse with a backlight design still has the following disadvantages during actual use:

[0004] 1. After a user holds the mouse for a long time, the hand fits tightly with the mouse, so a large amount of sweat will appear on the hand, which will affect the normal operation of the user and also cause the phenomenon of slipping between the mouse and the hand.

[0005] 2. When using the mouse in a relatively low-temperature environment, the hand being exposed for a long time will cause discomfort in the hand and also easily affect normal operation. Therefore, it is necessary to use other heating devices to heat the hand, and the mouse itself lacks a heating structure.

[0006] In view of the above problems, it is urgent to innovate on the basis of the original gaming mouse. Summary of the Invention

[0007] The purpose of the present invention is to provide an anti-slip gaming mouse with both heating and cooling functions to solve the problems in the above background art that after a user holds the mouse for a long time, the hand fits tightly with the mouse, so a large amount of sweat will appear on the hand, and it is necessary to use other heating devices to heat the hand, while the mouse itself lacks a heating structure.

[0008] To achieve the above purpose, the present invention provides the following technical solution: An anti-slip gaming mouse with both heating and cooling functions, comprising:

[0009] A housing, inside which a micro motor is bolted. A fan blade is fixedly installed on the output shaft of the micro motor, and a protective box is fixed inside the housing outside the fan blade;

[0010] A movable block, which is movably arranged on the side of the protective box, and a heating wire is installed inside the movable block;

[0011] A connecting hose, whose bottom is connected to the top of the movable block. A fixed cavity is formed inside the housing at the top of the connecting hose. A first drying area is arranged outside the fixed cavity, and a second drying area is reserved inside the first drying area;

[0012] A fixed cylinder, which is fixedly arranged at the bottom of the movable block. The bottom of the fixed cylinder is movably connected to the inner bottom surface of the housing through a movable shaft, and a worm gear is sleeved outside the movable shaft. A worm is movably arranged on the side of the worm gear, and an adjusting rod is fixed at the end of the worm;

[0013] A sleeve block, which is sleeved outside the fixed cylinder. Both ends of the sleeve block are connected with a transmission pipe for transmitting gas. A fixing hole is reserved on the housing at the end of the transmission pipe, and an adjusting block is movably arranged at the disconnection part of the transmission pipe.

[0014] Preferably, an air outlet is formed on one side of the protective box close to the movable block. A first air inlet and a second air inlet are respectively reserved on one side of the movable block close to the protective box. The protective box and the movable block are in a sliding connection in a fitting manner, and both sliding parts are arranged in an arc shape, so that the wind generated when the fan blade rotates can enter the air inlet through the air outlet.

[0015] Preferably, a partition plate is fixed inside the movable block between the first air inlet and the second air inlet, and the cross section of the movable block is in a fan shape. After the wind enters from different air inlets, it can be discharged from different outlets respectively.

[0016] Preferably, one side of the movable block where the heating wire is arranged is communicated with the fixed cavity through a connecting hose. The fixed cavity is in a ring shape, and a grid-shaped first drying area is evenly distributed on the fixed cavity. The hot air can be blown out through the first drying area to heat the hand.

[0017] Preferably, the other side of the movable block where the heating wire is not arranged is communicated with the second drying area through another connecting hose. The second drying area is in a honeycomb shape, and the air without heat can be discharged from the second drying area to dry the sweat on the hand.

[0018] Preferably, through holes are reserved on the surface of the fixed cylinder. The fixed cylinder and the sleeve block are in a rotational connection, and the sleeve block is communicated with the inside of the movable block through the through holes and the fixed cylinder. In this way, when the movable block and the fixed cylinder rotate, it will not affect the gas communication between the transmission pipe and the movable block.

[0019] Preferably, both ends of the transmission pipe are respectively communicated with the sleeve block and the fixing hole, and the fixing hole is arranged obliquely downward and is equally spaced at the corners of the housing. When the wind blows out from the fixing hole, it can blow away the dust adhering to the surface of the mouse pad, ensuring the smooth movement of the mouse.

[0020] Preferably, the adjusting block includes a connecting hole, a support rod, a return spring and a fixing groove.

[0021] The connecting hole is opened inside the adjusting block. A support rod is fixed at the bottom of the adjusting block, and the cross-section of the support rod is an inverted "T" shape. The support rod can support the mouse, and when using the mouse, the support rod can be driven into the fixing groove by pressure.

[0022] Preferably, a return spring is wound around the outer side of the support rod, and a fixing groove is opened in the housing on the outer side of the support rod. The movement distance of the support rod is greater than the aperture of the connecting hole. The movement of the support rod drives the adjusting block to rise and fall, and can adjust the communication and blockage of the transmission pipe.

[0023] Preferably, a phase change material layer is provided on the inner surface of the housing, and the phase change material layer is polyethylene glycol (PEG - 500) with an average molecular weight of 500. Among them, PEG - 500 is an organic solid-solid phase change material, and its phase change temperature will increase with the increase of the degree of polymerization. Therefore, its average relative molecular weight cannot be too high or too low. When it reaches its phase change temperature (20 - 25 °C), a solid-solid phase change will occur, absorbing or releasing heat. Therefore, by providing this phase change material layer on the inner surface of the housing, when the working temperature of the mouse is too high, exceeding the phase change temperature of this phase change material, a solid-solid phase change occurs, absorbing heat and reducing the temperature of the mouse, extending its service life; when the working temperature of the mouse is too low, lower than the phase change temperature of this phase change material, a solid-solid phase change occurs, releasing heat, avoiding the influence of too low temperature on the working performance of the mouse, and can also dry the sweat generated by the user's hand fitting with the mouse for a long time.

[0024] Preferably, a graphene heat dissipation layer is provided between the housing and the phase change material layer, and the thermal diffusivity of the graphene heat dissipation layer is 2000mm 2 / s - 2500mm 2 / s, the thermal conductivity of the graphene heat dissipation layer is 3000 W / (m*K) - 3500 W / (m*K); graphene has excellent thermal conductivity and heat dissipation performance, and its thermal conductivity is 10 times stronger than that of silver. By adding a graphene heat dissipation layer, it can quickly conduct the heat absorbed by the phase change material heat dissipation layer, avoiding heat accumulation, and thus the heat dissipation effect is better than that of only setting a phase change material heat dissipation layer. Therefore, through the double heat conduction and dissipation layer setting of the graphene heat dissipation layer + phase change material heat dissipation layer in this application, the heat dissipation effect of the mouse can be greatly improved.

[0025] Preferably, the phase change material layer is arranged around the housing in a circular structure to form a first circular structure, and the graphene heat dissipation layer is arranged around the housing in a circular structure to form a second circular structure that fits with the first circular structure. Moreover, the phase change material layer and the graphene heat dissipation layer have the same thickness and are on the same horizontal plane. Such a setting can reduce the overall thickness of the double-layer stack while not affecting its heat dissipation effect.

[0026] Compared with the prior art, the beneficial effects of the present invention are as follows: This anti-slip gaming mouse with both heating and cooling functions can dry the sweat generated by the user's hand fitting with the mouse for a long time, prevent slipping, and can heat the hand through the mouse according to needs, thereby improving the smoothness of operation.

[0027] 1. When the first air inlet is connected to the air outlet, the wind can enter the second drying area from the connecting hose, realizing the drying of the sweat between the hand and the mouse. When the movable block is rotated to connect the second air inlet to the air outlet, the heated wind can be input into the first drying area through the connecting hose to heat the hand when using the mouse at a low temperature.

[0028] 2. When the mouse is placed on the mouse pad, the support rod can support it, and at this time, the transmission pipe is in a connected state through the connecting hole, so that the wind entering the movable block can enter the sleeve block from the fixed cylinder and finally enter the transmission pipe and blow out from the fixed hole to blow away the dust on the mouse pad and ensure the smooth movement of the mouse.

[0029] 3. When the mouse is in use, the pressure applied to it can drive the support rod to retract into the fixed groove and drive the adjusting block to move at the disconnection of the transmission pipe to block the disconnection, so that the wind will not be transmitted from the transmission pipe, ensuring the high efficiency of hand drying or heating. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 is a schematic top view structure diagram of the present invention;

[0031] Figure 2 is a schematic side sectional structure diagram of the present invention;

[0032] Figure 3 It is a schematic diagram of the top-sectional structure of the present invention;

[0033] Figure 4 It is a schematic diagram of the top-sectional structure of the movable block of the present invention;

[0034] Figure 5 For the present invention Figure 2 Schematic diagram of the cross-section structure at AA in the middle;

[0035] Figure 6 For the present invention Figure 5 Schematic diagram of the cross-section structure at a;

[0036] Figure 7 It is a schematic diagram of the front cross-section structure of the sleeve block of the present invention.

[0037] In the figure: 1. shell; 2. micro motor; 3. fan blade; 4. protective box; 41. air outlet; 5. movable block; 51. first air inlet; 52. second air inlet; 53. partition plate; 6. heating wire; 7. connecting hose; 8. fixed cavity; 9. first drying area; 10. second drying area; 11. fixed cylinder; 111. through hole; 12. movable shaft; 13. worm gear; 14. worm; 15. adjusting rod; 16. sleeve block; 17. transmission pipe; 18. fixing hole; 19. adjusting block; 191. connecting hole; 192. support rod; 193. reset spring; 194. fixing groove. DETAILED DESCRIPTION

[0038] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0039] See also Figures 1-7 The present invention provides an anti-slip gaming mouse with heating and heat dissipation functions, including a housing 1, a micro motor 2, a fan blade 3, a protective box 4, an air outlet 41, a movable block 5, a first air inlet 51, a second air inlet 52, a partition plate 53, a heating wire 6, a connecting hose 7, a fixing cavity 8, a first drying area 9, a second drying area 10, a fixing cylinder 11, a through hole 111, a movable shaft 12, a worm wheel 13, a worm 14, an adjusting rod 15, a sleeve block 16, a transmission tube 17, a fixing hole 18, an adjusting block 19, a connecting hole 191, a supporting rod 192, a reset spring 193 and a fixing groove 194.

[0040] A housing 1 is provided with a micro motor 2 which is bolted inside the housing 1. A fan blade 3 is fixedly mounted on the output shaft of the micro motor 2. A protective box 4 is fixed inside the housing 1 outside the fan blade 3.

[0041] The movable block 5 is movably arranged on the side of the protective box 4, and a heating wire 6 is installed inside the movable block 5;

[0042] The connecting hose 7, its bottom is connected to the top of the movable block 5, a fixing cavity 8 is formed inside the housing 1 at the top of the connecting hose 7, a first drying area 9 is arranged outside the fixing cavity 8, and a second drying area 10 is reserved inside the first drying area 9;

[0043] The fixing cylinder 11 is fixedly arranged at the bottom of the movable block 5, the bottom of the fixing cylinder 11 is movably connected to the inner bottom surface of the housing 1 through a movable shaft 12, a worm gear 13 is sleeved outside the movable shaft 12, a worm 14 is movably arranged on the side of the worm gear 13, and an adjusting rod 15 is fixed at the end of the worm 14;

[0044] The sleeve block 16 is sleeved outside the fixing cylinder 11, both ends of the sleeve block 16 are connected with a transmission pipe 17 for transmitting gas, a fixing hole 18 is reserved on the housing 1 at the end of the transmission pipe 17, and an adjusting block 19 is movably arranged at the disconnected part of the transmission pipe 17.

[0045] An air outlet 41 is formed on one side of the protective box 4 close to the movable block 5, a first air inlet 51 and a second air inlet 52 are respectively reserved on one side of the movable block 5 close to the protective box 4, the protective box 4 and the movable block 5 are in a sliding connection in a fitting manner, and the sliding parts of both are arranged in an arc shape; A partition plate 53 is fixed inside the movable block 5 between the first air inlet 51 and the second air inlet 52, and the cross section of the movable block 5 is a fan-shaped structure; One side of the movable block 5 where the heating wire 6 is arranged is communicated with the fixing cavity 8 through the connecting hose 7, the fixing cavity 8 is in a ring shape, and a grid-shaped first drying area 9 is equally distributed on the fixing cavity 8; One side of the movable block 5 where the heating wire 6 is not arranged is communicated with the second drying area 10 through another connecting hose 7, and the second drying area 10 is in a honeycomb structure;

[0046] Such as Figures 1-4As shown, the wind in the movable block 5 can enter the second drying area 10 through one of the connecting hoses 7, and evenly blow towards the palm in the second drying area 10, playing a role in drying the sweat between the palm and the housing 1, ensuring the comfort of holding and preventing slipping. When using the mouse in a relatively low temperature environment, the worm 14 can be rotated by the adjusting rod 15, and the movable shaft 12 can be driven to rotate by the worm gear 13. Then, the movable block 5 can be driven to rotate by the fixed cylinder 11. When the movable block 5 rotates, it always fits with the protective box 4. When the second air inlet 52 of the movable block 5 coincides with the air outlet 41, the rotation stops. In this way, when the wind blows into the movable block 5, it can contact the heat heated by the heating wire 6. Thus, the wind blown into the fixed cavity 8 through the other connecting hose 7 is hot air. Finally, the hot air blows towards the user's hand from the first drying area 9 to heat the hand when the temperature is relatively low, thereby ensuring the smoothness of operation;

[0047] Through holes 111 are reserved on the surface of the fixed cylinder 11, and the fixed cylinder 11 is rotatably connected to the sleeve block 16. The sleeve block 16 is communicated with the inside of the movable block 5 through the through holes 111 and the fixed cylinder 11. Both ends of the transmission pipe 17 are communicated with the sleeve block 16 and the fixing hole 18 respectively. The fixing hole 18 is arranged obliquely downward, and the fixing holes 18 are evenly distributed at the corners of the housing 1. The adjusting block 19 includes a connecting hole 191, a support rod 192, a return spring 193, and a fixing groove 194. The connecting hole 191 is opened inside the adjusting block 19. The support rod 192 is fixed to the bottom of the adjusting block 19, and the cross-section of the support rod 192 is an inverted "T" shape. The return spring 193 is wound around the outside of the support rod 192, and a fixing groove 194 is opened in the housing 1 outside the support rod 192. The moving distance of the support rod 192 is greater than the diameter of the connecting hole 191;

[0048] As Figures 5-7As shown in the figure, when the mouse is placed on the mouse pad, the support rod 192 can support the housing 1. In this way, the disconnected part of the transmission pipe 17 is in a communicating state through the connection hole 191. Thus, part of the wind force in the movable block 5 can enter the fixed cylinder 11, then enter the sleeve block 16 through the through hole 111, and finally be blown out from the fixed hole 18 through the transmission pipe 17. And the wind force can just blow on the mouse pad near the mouse, playing a role in blowing away the dust on the mouse pad and ensuring the smoothness when it moves. When the mouse is in use, due to the pressure of the hand on the housing 1, the support rod 192 can be driven to be received in the fixed groove 194, and the return spring 193 can be driven to contract. Through the support rod 192, the adjusting block 19 can be pushed upward. In this way, the connection hole 191 and the transmission pipe 17 are in a disconnected state. The adjusting block 19 can block the disconnected part of the transmission pipe 17 to prevent the entry of wind force. In this way, the wind force can all be transmitted through the drying area, playing a role in drying the sweat on the hand or heating the hand. When the movable block 5 rotates, it can drive the fixed cylinder 11 to rotate in the sleeve block 16, so it will not affect the transmission of wind force.

[0049] Working principle: As Figures 1-7 shown in the figure, when it is first necessary to dry the sweat on the hand, the micro motor 2 drives the fan blade 3 to rotate to generate wind force. Then the wind force enters the inner side of the movable block 5 through the air outlet 41 and the first air inlet 51, and is blown into the second drying area 10 through the connecting hose 7, playing a role in drying the sweat on the hand. Or by rotating the movable block 5, the hot air can be blown into the first drying area 9, playing a role in heating the hand. And when the mouse is placed on the mouse pad, the dust on the mouse pad can be blown away through the transmission of wind force.

[0050] As a preferred solution of the present application, a phase change material layer is provided on the inner surface of the housing 1, and the phase change material layer is polyethylene glycol (PEG - 500) with an average molecular weight of 500. Among them, PEG - 500 is an organic solid - solid phase change material (the molecular connection structure changes from a solid - state ordered structure to a solid - state disordered structure), and its phase change temperature will increase with the increase of the degree of polymerization. Therefore, its average relative molecular weight cannot be too high or too low. When it reaches its phase change temperature (20 - 25 °C), a solid - solid phase change will occur, absorbing or releasing heat. Therefore, by providing this phase change material layer on the inner surface of the housing 1, when the working temperature of the mouse is too high, exceeding the phase change temperature of this phase change material, a solid - solid phase change will occur, absorbing heat and reducing the temperature of the mouse, extending its service life; when the working temperature of the mouse is too low, lower than the phase change temperature of this phase change material, a solid - solid phase change will occur, releasing heat, avoiding the influence of too low temperature on the working performance of the mouse, and it can also dry the sweat generated due to the long - term contact between the user's hand and the mouse.

[0051] As a preferred solution of the present application, a graphene heat dissipation layer is provided between the housing 1 and the phase change material layer, and the thermal diffusivity of the graphene heat dissipation layer is 2000 mm 2 / s - 2500 mm 2 / s, and the thermal conductivity of the graphene heat dissipation layer is 3000 W / (m·K) - 3500 W / (m·K); graphene has excellent heat conduction and heat dissipation performance, and its thermal conductivity is 10 times stronger than that of silver. By adding a graphene heat dissipation layer, it can quickly conduct the heat absorbed by the phase change material heat dissipation layer, avoiding heat accumulation, and thus the heat dissipation effect is better than that of only setting a phase change material heat dissipation layer. Therefore, through the double heat conduction and heat dissipation layer setting of the graphene heat dissipation layer + phase change material heat dissipation layer in the present application, the heat dissipation effect of the mouse can be greatly improved.

[0052] As a preferred solution of the present application, the phase change material layer is arranged in a meandering structure around the housing 1 to form a first meandering structure, the graphene heat dissipation layer is arranged in a meandering structure around the housing 1 to form a second meandering structure that is fitted with the first meandering structure, and the phase change material layer and the graphene heat dissipation layer have the same thickness and are on the same horizontal plane. Such a setting can reduce the overall thickness of the double-layer stacking setting while not affecting its heat dissipation effect.

[0053] In the description of the present invention, unless otherwise specified, the meaning of "a plurality of" is two or more; the orientation or positional relationship indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "backend", "head", "tail", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention 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 cannot be understood as a limitation of the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0054] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "connected" and "connected" 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 invention can be understood according to specific situations.

[0055] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A non-slip gaming mouse with both heating and heat dissipation functions, characterized in that, Including: A housing, inside which a micro-motor is bolted. A fan blade is fixedly installed on the output shaft of the micro-motor, and a protective box is fixed inside the housing outside the fan blade; A movable block, which is movably arranged on the side of the protective box, and a heating wire is installed inside the movable block; A connecting hose, the bottom of which is connected to the top of the movable block. A fixed cavity is opened in the housing at the top of the connecting hose, and a first drying area is arranged outside the fixed cavity, and a second drying area is reserved inside the first drying area; A fixed cylinder, which is fixedly arranged at the bottom of the movable block. The bottom of the fixed cylinder is movably connected to the inner bottom surface of the housing through a movable shaft, and a worm gear is sleeved outside the movable shaft. A worm is movably arranged on the side of the worm gear, and an adjusting rod is fixed at the end of the worm; A sleeve block, which is sleeved outside the fixed cylinder. Both ends of the sleeve block are connected with transmission pipes for transmitting gas. Fixed holes are reserved on the housing at the ends of the transmission pipes, and an adjusting block is movably arranged at the disconnection of the transmission pipes; The adjusting block includes a connecting hole, a support rod, a return spring and a fixed groove. The connecting hole is opened inside the adjusting block. A support rod is fixed at the bottom of the adjusting block, and the cross section of the support rod is an inverted "T" shape structure; A phase change material layer is arranged on the inner surface of the housing, and the phase change material layer is polyethylene glycol with an average molecular weight of 500.

2. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: A graphene heat dissipation layer is provided between the housing and the phase change material layer, and the thermal diffusivity of the graphene heat dissipation layer is 2000 mm 2 / s - 2500 mm 2 / s, and the thermal conductivity of the graphene heat dissipation layer is 3000 W / (m*K) - 3500 W / (m*K).

3. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 2, wherein: The phase change material layer is arranged in a loop structure around the housing to form a first loop structure. The graphene heat dissipation layer is arranged in a loop structure around the housing to form a second loop structure that is fitted with the first loop structure. And the phase change material layer and the graphene heat dissipation layer have the same thickness and are on the same horizontal plane.

4. A non-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: An air outlet is opened on one side of the protective box close to the movable block, and a first air inlet and a second air inlet are respectively reserved on one side of the movable block close to the protective box. And the protective box and the movable block are in a sliding connection in a fitting manner, and the sliding parts of both are arranged in an arc shape.

5. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 4, wherein: A partition plate is fixed inside the movable block between the first air inlet and the second air inlet, and the cross section of the movable block is a fan-shaped structure.

6. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: One side of the movable block where the heating wire is arranged is communicated with the fixed cavity through a connecting hose. The fixed cavity is in a ring structure, and a grid-shaped first drying area is equally distributed on the fixed cavity.

7. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: One side of the movable block where the heating wire is not arranged is communicated with the second drying area through another connecting hose, and the second drying area is in a honeycomb structure.

8. A non-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: Through holes are reserved on the surface of the fixed cylinder, and the fixed cylinder and the sleeve block are in a rotational connection, and the sleeve block is communicated with the inside of the movable block through the through holes and the fixed cylinder.

9. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 1, characterized in that: Both ends of the transmission pipe are communicated with the sleeve block and the fixed holes respectively. The fixed holes are arranged obliquely downward, and the fixed holes are equally spaced at the corners of the housing.

10. The anti-slip gaming mouse with both heating and heat dissipation functions according to claim 1, wherein: A return spring is wound outside the support rod, and a fixed groove is opened in the housing outside the support rod. And the moving distance of the support rod is greater than the aperture of the connecting hole.

Citation Information

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