Display heightening frame structure capable of assisting heat dissipation
By using a miniature motor-driven fan and ventilation hole design in the monitor elevation frame, the overheating problem caused by heat accumulation of the monitor is solved, and the intelligent heat dissipation effect is achieved, and the service life of the monitor is extended.
Patent Information
- Application Number
- CN202422599086.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-28
AI Technical Summary
When the existing elevated frame supports the display, it causes the internal temperature of the display to rise and overheat, affecting the performance of electronic components and shortening the service life of the display.
The micro motor is used to connect two groups of fans to assist in heat dissipation by supporting the monitor, and the micro motor is used to accurately control the fan speed, combining ventilation holes and troughs to accelerate air flow, providing an intelligent heat dissipation solution.
Increases heat dissipation speed on the back and around the monitor, keeps the equipment running within the appropriate temperature range, extends the life of the monitor and reduces the risk of damage or performance degradation.
Smart Images

Figure CN223137494U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of riser structures, in particular to a display riser structure for auxiliary heat dissipation. Background Art
[0002] A computer monitor, commonly known as a display or a monitor, is one of the important components of computer hardware. It is an output device used to display graphics, text, and other visual information generated by a computer. The main function of the display is to convert the digital signal generated by the computer processor into an image that can be seen by the user. When using a display, a riser is needed as an auxiliary device to raise the position of the display. Its main purpose is to improve the viewing angle of the user, reduce neck and eye fatigue, and at the same time increase the available space on the desktop.
[0003] In the process of using the existing riser, usually the support frame is used to support the raised display. Since the display is prone to generate heat and accumulate during long-term use, the internal temperature of the display rises and overheats, which affects the performance of the electronic components of the display and shortens the service life of the display.
[0004] Therefore, for the above-mentioned existing riser, usually the support frame is used to support the raised display. Since the display is prone to generate heat and accumulate during long-term use, the internal temperature of the display rises and overheats, which affects the performance of the electronic components of the display and shortens the service life of the display. A display riser structure for auxiliary heat dissipation can be designed to control the heat dissipation speed on the back and around the display, accelerate air flow, reduce the remaining heat, and keep the device operating within a suitable temperature range. Summary of the Utility Model
[0005] In order to overcome the problem of the existing riser, usually the support frame is used to support the raised display. Since the display is prone to generate heat and accumulate during long-term use, the internal temperature of the display rises and overheats, which affects the performance of the electronic components of the display and shortens the service life of the display.
[0006] The technical solution of the utility model is: a display riser structure for auxiliary heat dissipation, including a support table board and a support heat dissipation component; a support heat dissipation component for adjusting and supporting the display for auxiliary heat dissipation is installed at the lower end of the support table board. The support heat dissipation component includes a connecting frame, a fan, a clamping plate, a micro motor, a column, a telescopic plate, a limit insertion rod, and an anti-slip pad. The connecting frame is located at the lower end of the support table board, and two groups of fans are arranged inside the connecting frame. One end of the fan is provided with a micro motor at the bottom of the connecting frame.
[0007] Preferably, by using a micro-motor to connect two groups of fans, auxiliary heat dissipation is carried out during the process of supporting the display, which improves the heat dissipation speed of the back and around of the display. Moreover, by using the precise control of the micro-motor, the adjustment of the fan speed can be realized to adapt to different heat dissipation requirements, providing a more intelligent heat dissipation solution. By using a clamping plate to fix the connecting frame, it can be quickly disassembled when the fan is not needed, and the configuration of the riser can be flexibly adjusted according to different usage scenarios and requirements, improving the convenience of use. And by disassembling the fan, it is convenient for subsequent maintenance and cleaning to maintain the best heat dissipation effect. Moreover, by using ventilation holes in combination with through grooves, it helps to accelerate the air flow rate of the back and around of the display, reduce the remaining heat, keep the device operating within a suitable temperature range, reduce the overheating of the display caused by long-term work, lower the risk of device damage or performance degradation, and extend the service life of the display.
[0008] Preferably, two groups of clamping plates are provided at the upper end of the connecting frame, and clamping grooves for accommodating the clamping plates are opened at the bottom of the supporting platform plate. The connecting frame is fixedly connected to the supporting platform plate through the clamping plates.
[0009] Preferably, multiple groups of ventilation holes are opened on the surface of the supporting platform plate, and multiple groups of through grooves are opened on the outer wall of the connecting frame.
[0010] Preferably, two groups of columns are provided below the supporting platform plate, and a telescopic plate is provided between the supporting platform plate and the columns. The supporting platform plate is telescopically adjusted along the upper part of the columns through the telescopic plate.
[0011] Preferably, a limiting insertion rod is provided inside the column, and multiple groups of limiting holes for accommodating the limiting insertion rod are opened inside the telescopic plate. The telescopic plate is fixedly connected to the column through the limiting insertion rod.
[0012] Preferably, two groups of anti-slip pads are provided at the bottom of the column.
[0013] Preferably, a cable management groove is opened at the upper end of the supporting platform plate.
[0014] The beneficial effects of the present utility model:
[0015] 1. Compared with the traditional monitor riser structure, by using a micro motor to connect two groups of fans, auxiliary heat dissipation is carried out during the process of supporting the monitor, improving the heat dissipation speed of the back and around the monitor. And by using the precise control of the micro motor, the adjustment of the fan speed can be realized to adapt to different heat dissipation requirements, providing a more intelligent heat dissipation solution. By using a clamping plate to fix the connecting frame, it can be quickly disassembled when the fan is not needed, and the configuration of the riser can be flexibly adjusted according to different usage scenarios and requirements, improving the usability. And by disassembling the fan, it is convenient for subsequent maintenance and cleaning to maintain the best heat dissipation effect. And by using ventilation holes in combination with through grooves, it helps to accelerate the air flow rate on the back and around the monitor, reduce the remaining heat, keep the device running within an appropriate temperature range, reduce the risk of overheating of the monitor due to long-term work, and extend the service life of the monitor. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 The figure shows a schematic diagram of the overall structure of the monitor riser of the present utility model;
[0017] Figure 2 The figure shows a schematic diagram of the fan structure of the monitor riser of the present utility model;
[0018] Figure 3 The figure shows a schematic diagram of the anti-slip pad structure of the monitor riser of the present utility model;
[0019] Figure 4 The figure shows a schematic diagram of the telescopic plate structure of the monitor riser of the present utility model.
[0020] Description of the reference numerals: 1, support platform plate; 201, connecting frame; 202, fan; 203, clamping plate; 204, micro motor; 205, column; 206, telescopic plate; 207, limit insertion rod; 208, anti-slip pad; 209, cable management groove. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] The present utility model will be further described below in conjunction with the drawings and embodiments.
[0022] Please refer to Figures 1-4, the present utility model provides an embodiment: a monitor riser structure for auxiliary heat dissipation, comprising a support platform 1 and a support heat dissipation assembly; a support heat dissipation assembly for adjusting and supporting the monitor for auxiliary heat dissipation is installed at the lower end of the support platform 1, and the support heat dissipation assembly includes a connecting frame 201, a fan 202, a clamping plate 203, a micro motor 204, a column 205, a telescopic plate 206, a limit insertion rod 207, and an anti-slip pad 208. The connecting frame 201 is located at the lower end of the support platform 1, and two groups of fans 202 are provided inside the connecting frame 201. One end of the fan 202 is provided with a micro motor 204 at the bottom of the connecting frame 201.
[0023] Please refer to Figures 1-2 , in this embodiment, two groups of clamping plates 203 are provided at the upper end of the connecting frame 201, and a clamping groove for accommodating the clamping plates 203 is opened at the bottom of the support platform 1. The connecting frame 201 is fixedly connected to the support platform 1 through the clamping plates 203. By using the clamping plates 203 to fix the connecting frame 201, it can be quickly disassembled when the fan 202 is not needed, and the configuration of the riser can be flexibly adjusted according to different usage scenarios and requirements, improving the usage convenience. Moreover, by disassembling the fan 202, it is convenient for subsequent maintenance and cleaning to maintain the best heat dissipation effect. A plurality of ventilation holes are opened on the surface of the support platform 1, and a plurality of through grooves are opened on the outer wall of the connecting frame 201. By combining the ventilation holes with the through grooves, it helps to accelerate the air flow rate on the back and around the monitor, reduce the residual heat, keep the device operating within a suitable temperature range, reduce the overheating of the monitor caused by long-term work, reduce the risk of device damage or performance degradation, and extend the service life of the monitor.
[0024] Please refer to Figures 1-3 , in this embodiment, two groups of columns 205 are provided below the support platform 1, and a telescopic plate 206 is provided between the support platform 1 and the columns 205. The support platform 1 is telescopically adjusted along the upper part of the columns 205 through the telescopic plate 206. By using the telescopic plate 206 to telescopically adjust the height of the support platform 1, it can adapt to the needs of different users and different usage scenarios, effectively utilize the desktop space, and adjust the height of the platform according to the user's height and sitting posture habits, enabling a more comfortable viewing angle, reducing neck and shoulder fatigue, and improving the usage comfort. A limit insertion rod 207 is provided inside the column 205, and a plurality of limit holes for accommodating the limit insertion rod 207 are opened inside the telescopic plate 206. The telescopic plate 206 is fixedly connected to the column 205 through the limit insertion rod 207. After the telescopic plate 206 is telescopically adjusted in height, the limit insertion rod 207 is used for plugging and positioning to ensure that the monitor always remains at the height set by the user, preventing the riser from shifting or tilting due to accidental collision or the weight of the monitor itself, and improving the overall stability.
[0025] Please refer to Figures 2-4, in this embodiment, two anti-slip pads 208 are provided at the bottom of the column 205. By using the two anti-slip pads 208 for auxiliary support, additional friction is provided to prevent the heightening stand from sliding or shifting on the tabletop. At the same time, it prevents the heightening stand from directly contacting the tabletop, reducing the wear on the tabletop and the scratches or indentations generated on the tabletop, improving the overall practicality. A cable management groove 209 is provided at the upper end of the support platen 1. By using the cable management groove 209 to guide the transmission line through and straighten it, the power cord and video cable of the monitor are effectively managed, avoiding the mess of the lines and making the tabletop look neater and more orderly.
[0026] When working, first flexibly adjust the configuration of the heightening stand according to different usage scenarios and requirements. Use the clamping plate 203 to fixedly connect the connecting frame 201, which can be quickly disassembled when the fan 202 is not needed, facilitating subsequent maintenance and cleaning to maintain the best heat dissipation effect. After the fan 202 is installed, use the telescopic plate 206 to telescopically move inside the support platen 1 to adjust the height of the support platen 1 to adapt to the needs of different users and different usage scenarios, effectively utilizing the tabletop space. And adjust the height of the platen according to the user's height and sitting posture habits to obtain a more comfortable viewing angle and reduce the fatigue of the neck and shoulders. After the telescopic plate 206 telescopically adjusts the height, use the limit insertion rod 207 to insert into the column 205 to fix the telescopic plate 206, ensuring that the monitor always remains at the height set by the user, preventing the heightening stand from shifting or tilting due to accidental collision or the weight of the monitor itself. And use the two anti-slip pads 208 for auxiliary support, providing additional friction to prevent the heightening stand from sliding or shifting on the tabletop. At the same time, it prevents the heightening stand from directly contacting the tabletop, reducing the wear on the tabletop and the scratches or indentations generated on the tabletop. Place the monitor on the upper end of the support platen 1 and use the cable management groove 209 to guide the transmission line through and straighten it, effectively managing the power cord and video cable of the monitor and avoiding the mess of the lines. When using the monitor, turn on the two micro-motors 204, use the micro-motors 204 to connect the two fans 202, and assist in heat dissipation during the process of supporting the monitor. Through the precise control of the micro-motors 204, the rotation speed of the fans 202 is adjusted to adapt to different heat dissipation requirements. When the fans 202 are running, use the ventilation holes in combination with the through grooves to assist in accelerating the air flow rate on the back and around the monitor, reducing the remaining heat and keeping the device operating within a suitable temperature range.
[0027] Through the above steps, by using a micro motor 204 to connect two groups of fans 202, auxiliary heat dissipation is carried out during the process of supporting the display, improving the heat dissipation speed of the back and around of the display. Moreover, by using the precise control of the micro motor 204, the rotation speed of the fan 202 can be adjusted to adapt to different heat dissipation requirements, providing a more intelligent heat dissipation solution. By using a clamping plate 203 to fixedly connect the connecting frame 201, it can be quickly disassembled when the fan 202 is not needed, flexibly adjusting the configuration of the riser according to different usage scenarios and requirements, improving the usage convenience. And by disassembling the fan 202, it is convenient for subsequent maintenance and cleaning to maintain the best heat dissipation effect. In addition, by using ventilation holes in combination with through grooves, it helps to accelerate the air flow speed of the back and around of the display, reduce the remaining heat, keep the device operating within a suitable temperature range, reduce the overheating of the display caused by long-term operation, lower the risk of device damage or performance degradation, and extend the service life of the display.
Claims
1. A monitor riser structure for auxiliary heat dissipation, comprising a support platen (1); characterized in that: It also includes a support heat dissipation component; a support heat dissipation component for adjusting the support and heat dissipation of the display is installed at the lower end of the support platen (1). The support heat dissipation component includes a connecting frame (201), a fan (202), a clamping plate (203), a micro motor (204), a column (205), a telescopic plate (206), a limit insertion rod (207), and an anti-slip pad (208). The connecting frame (201) is located at the lower end of the support platen (1), and two groups of fans (202) are arranged inside the connecting frame (201). One end of the fan (202) is provided with a micro motor (204) at the bottom of the connecting frame (201).
2. The structure of a monitor riser for auxiliary heat dissipation according to claim 1, wherein: Two groups of clamping plates (203) are arranged at the upper end of the connecting frame (201), and a clamping groove for accommodating the clamping plate (203) is formed at the bottom of the support platen (1). The connecting frame (201) is fixedly connected with the support platen (1) through the clamping plate (203).
3. The structure of a monitor riser for auxiliary heat dissipation according to claim 2, characterized in that: Multiple ventilation holes are formed on the surface of the support platen (1), and multiple through grooves are formed on the outer wall of the connecting frame (201).
4. The structure of a monitor riser for auxiliary heat dissipation according to claim 3, wherein: Two groups of columns (205) are arranged below the support platen (1), and a telescopic plate (206) is arranged between the support platen (1) and the column (205). The support platen (1) is telescopically adjusted along the upper part of the column (205) through the telescopic plate (206).
5. The structure of a monitor riser for auxiliary heat dissipation according to claim 4, characterized in that: A limit insertion rod (207) is arranged inside the column (205), and multiple limit holes for accommodating the limit insertion rod (207) are formed inside the telescopic plate (206). The telescopic plate (206) is fixedly connected with the column (205) through the limit insertion rod (207).
6. The structure of a monitor riser for auxiliary heat dissipation according to claim 5, characterized in that: Two groups of anti-slip pads (208) are arranged at the bottom of the column (205).
7. The structure of a monitor riser for auxiliary heat dissipation according to claim 1, characterized in that: A wire management groove (209) is formed at the upper end of the support platen (1).