Auxiliary heat dissipation structure of notebook computer for software development

By introducing a tilting and adjustment mechanism into the auxiliary cooling structure of the laptop, and utilizing the cooperation between the support rod and the wedge block and the friction of the rubber pad, the problem of instability of the laptop after tilting angle adjustment is solved, achieving stable tilting and height adjustment and preventing slippage.

CN224079925UActive Publication Date: 2026-04-03ZHENGZHOU ZHONGKAI LIANSHE ELECTRONIC TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In the prior art, the auxiliary heat dissipation structure of a laptop used for software development cannot maintain stability after the laptop's tilt angle is adjusted, and the elasticity of the spring weakens over time, causing the laptop to be unstable at the tilt angle.

Method used

The device employs a tilting and adjustment mechanism, including components such as a support rod, wedge block, screw, block, and wheel. The support rod and wedge block work together to achieve stable tilt angle adjustment of the laptop, while the screw and wheel adjust the height of the base. Rubber pads are used to increase friction and prevent slippage.

Benefits of technology

It enables the laptop to remain stable after tilting and can adapt to uneven desktops, ensuring that the laptop does not slide or change angle during use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an auxiliary heat dissipation structure of a notebook computer for software development. The auxiliary heat dissipation structure of the notebook computer for software development comprises a base and a support, the support is arranged above the base, and an inclination mechanism is arranged below the support. According to the auxiliary heat dissipation structure of the notebook computer developed by software, the support is supported by the supporting rod, the support and the top plate are rotated, the supporting rod is pulled out from the interior of the first groove, the top plate is in a required inclination angle state, and the top plate drives the notebook computer to adjust the inclination angle; the end of the supporting rod is located in the second groove and attached to the interior of the second groove, at the moment, the end of the supporting rod is located between the two wedge-shaped blocks and makes contact with the wedge-shaped block, close to the right side, of the two wedge-shaped blocks, the top plate is loosened, and the wedge-shaped blocks support the lower end of the supporting rod so that the supporting rod cannot rotate; the support rod supports the support, so that the inclination angle of the support is fixed and cannot rotate.
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Description

Technical Field

[0001] This utility model relates to the field of laptop computer technology, and in particular to an auxiliary heat dissipation structure for a laptop computer used for software development. Background Technology

[0002] Laptops, also known as portable computers, handheld computers, palmtop computers, or lap computers, are computers whose processors need to run multiple programs, keeping them at high speeds. This generates a lot of heat, so auxiliary cooling structures are typically used to provide external cooling to prevent damage to the laptop.

[0003] An existing technology discloses an auxiliary heat dissipation structure for a laptop computer used for software development, including a water tank. A first support plate and a second support plate are fixedly connected to both sides of the top of the water tank. A first water pump delivers coolant, which has a lower temperature, from a first serpentine tube to a second serpentine tube, thereby absorbing heat transferred from the laptop body to the surface of the second serpentine tube through a heat-conducting plate. The coolant then flows back to the first serpentine tube, where water from the water tank cools the coolant. A second fan then rotates, accelerating the airflow rate at the bottom of the heat-conducting plate, thus achieving the purpose of cooling the heat-conducting plate. When adjusting the tilt angle of the laptop, the heat dissipation mechanism uses the elastic force of a spring to drive a guide rod to engage and fix a limiting tooth, ensuring the laptop remains stably in the required tilt position.

[0004] However, after prolonged use, the spring's elasticity will weaken, and it will no longer be able to generate enough force to engage and fix the limiting teeth. This will prevent the laptop from maintaining a stable tilt position after the tilt angle has been adjusted.

[0005] Therefore, it is necessary to provide an auxiliary heat dissipation structure for a laptop computer used in software development to solve the above-mentioned technical problems. Utility Model Content

[0006] In view of the above situation and to overcome the defects of the prior art, this utility model provides an auxiliary heat dissipation structure for a software-developed laptop computer, which enables the laptop computer to be stably in the required tilt state after the tilt angle of the laptop computer is adjusted.

[0007] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0008] An auxiliary heat dissipation structure for a laptop computer used in software development includes a base and a support. The support is positioned above the base, and a tilting mechanism is located below the support. The tilting mechanism includes a first groove and a second groove. The first groove is located inside the support, and a support rod is rotatably connected to the inside of the first groove via a damping shaft. The second groove is located inside the base, and multiple wedge-shaped blocks are fixedly connected to the inside of the second groove.

[0009] Preferably, the outer wall of the base is provided with an adjustment mechanism, the adjustment mechanism including a support plate, the support plate being fixedly connected to the outer wall of the base, the support plate being threadedly connected to a screw rod, the lower end of the screw rod being fixedly connected to a block, and the upper end of the screw rod being fixedly connected to a wheel.

[0010] Preferably, a first vertical rod and a second vertical rod are fixedly connected to the upper surface of the base. The end of the first vertical rod is rotatably connected to the bracket via a pin. The end of the second vertical rod is in contact with the bracket. A top plate is fixedly connected to the top of the bracket. The top plate has multiple through holes inside.

[0011] Preferably, a padding mechanism is provided above the top plate. The padding mechanism includes pad blocks. Two pad blocks are fixed to the upper surface of the top plate. A rubber pad is fixed to the upper surface of the pad block. A baffle is rotatably connected to the inside of the left pad block through a damping shaft.

[0012] Preferably, the upper surface of the rubber pad is attached to a laptop computer.

[0013] Preferably, a plurality of bent rods are fixedly connected to the lower part of the top plate, and a disc is fixedly connected to the end of each bent rod. A motor is fixedly installed inside the disc, and a fan is fixedly connected to the output shaft of the motor.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] This invention utilizes a support rod to support the stand. By rotating the stand and the top plate, the support rod is pried out from the inside of the first groove, positioning the top plate at the desired tilt angle. The top plate then adjusts the tilt angle of the laptop, bringing the end of the support rod into the inside of the second groove and making it fit against the inside of the second groove. At this point, the end of the support rod is between two wedges and in contact with the rightmost wedge. Releasing the top plate allows the wedges to support the lower end of the support rod, preventing it from rotating. The support rod supports the stand, fixing the tilt angle of the stand and preventing rotation. This allows the laptop to be stably positioned at the desired tilt angle, ensuring that the laptop remains stably tilted after the tilt angle adjustment is complete.

[0016] This utility model adjusts the height of the base by using a support plate, screw, block, and wheel. The wheel drives the screw to rotate, and the vertical height of the screw changes when it rotates inside the support plate. The screw drives the block to move, thus adjusting the vertical height of the block and thereby adjusting the height of the base. When the height of the base changes, the height of the laptop also changes, thus achieving height adjustment of the laptop. Multiple adjustment mechanisms are set separately, so that when the desktop is uneven, multiple blocks are at different heights, which can keep the base in a horizontal state.

[0017] This utility model's baffle shields a laptop computer. In use, as part of a software-developed auxiliary cooling structure for laptops, the baffle is rotated out from the left-side pad, its outer wall fitting against the left-side pad. The laptop is placed on top of the two pads, and the laptop contacts the pads via rubber pads. These rubber pads increase the friction on the upper surface of the pads. When the tilt angle of the top plate changes, the laptop's tilt angle also changes. The outer wall of the baffle remains in contact with the laptop, effectively shielding it and preventing displacement when the laptop is tilted. Attached Figure Description

[0018] Figure 1 A schematic diagram of the auxiliary heat dissipation structure for a laptop computer used for software development according to this utility model;

[0019] Figure 2 A front view schematic diagram of the auxiliary heat dissipation structure for a laptop computer used for software development according to this utility model;

[0020] Figure 3 A schematic diagram of the support, bent rod and motor connection in the auxiliary heat dissipation structure of the laptop computer for software development provided by this utility model;

[0021] Figure 4 A schematic diagram of the connection between the base, the second groove, and the wedge-shaped block in the auxiliary heat dissipation structure of the laptop computer for software development provided by this utility model;

[0022] Figure 5 A schematic diagram of the connection between the pad, rubber pad, and baffle in the auxiliary heat dissipation structure of the laptop computer for software development provided by this utility model.

[0023] The corresponding names of the reference numerals in the attached drawings are as follows: 1-base, 2-support, 3-tilting mechanism, 301-first groove, 302-support rod, 303-second groove, 304-wedge block, 4-adjustment mechanism, 401-support plate, 402-screw, 403-block, 404-rotating wheel, 5-lifting mechanism, 501-pad, 502-rubber pad, 503-baffle, 6-first vertical rod, 7-second vertical rod, 8-top plate, 9-through hole, 10-laptop, 11-bent rod, 12-disc, 13-motor, 14-fan. Detailed Implementation

[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments. The embodiments of the present invention include, but are not limited to, the following embodiments.

[0025] First embodiment:

[0026] like Figure 1-5 As shown, the auxiliary heat dissipation structure for a laptop computer developed by this utility model includes: a base 1 and a support 2. The support 2 is disposed above the base 1, and a tilting mechanism 3 is disposed below the support 2. The tilting mechanism 3 tilts the support 2, thereby tilting the laptop computer 10. The tilting mechanism 3 includes a first groove 301, a support rod 302, a second groove 303, and wedge blocks 304. The first groove 301 is disposed inside the support 2, and the support rod 302 is rotatably connected to the inside of the first groove 301 through a damping shaft. The support rod 302 will not swing arbitrarily under inertia. The second groove 303 is disposed inside the base 1, and multiple wedge blocks 304 are fixedly connected inside the second groove 303. The support rod 302 contacts different wedge blocks 304 to enable the support 2 to be at different tilt angles.

[0027] When the tilt angle of the laptop 10 needs to be adjusted, rotate the bracket 2 and the top plate 8 to pry the support rod 302 out of the first groove 301, and position the top plate 8 at the desired tilt angle. The top plate 8 then moves the laptop 10 to adjust its tilt angle, so that the end of the support rod 302 is inside the second groove 303 and fits against the inside of the second groove 303. At this time, the end of the support rod 302 is between the two wedge blocks 304 and is in contact with the rightmost wedge block 304. Release the top plate 8, and the wedge block 304 supports the lower end of the support rod 302 so that the support rod 302 does not rotate. The support rod 302 supports the bracket 2 so that the tilt angle of the bracket 2 is fixed and does not rotate, thereby allowing the laptop 10 to be stably positioned at the desired tilt angle. After the tilt angle of the laptop 10 is adjusted, the laptop 10 can be stably positioned at the desired tilt angle.

[0028] Second embodiment:

[0029] An adjustment mechanism 4 is provided on the outer wall of the base 1. The adjustment mechanism 4 can adjust the height of the laptop 10 and keep the base 1 in a horizontal state. The adjustment mechanism 4 is provided in multiple sets, including a support plate 401, a screw 402, a block 403 and a wheel 404. The support plate 401 is fixed to the outer wall of the base 1. The screw 402 is threadedly connected to the inside of the support plate 401. When the screw 402 rotates inside the support plate 401, the vertical height of the screw 402 will change. The lower end of the screw 402 is fixed to the block 403, and the screw 402 drives the block 403 to move. The upper end of the screw 402 is fixed to the wheel 404, and the wheel 404 drives the screw 402 to rotate.

[0030] When the height of the laptop 10 needs to be adjusted, the rotating wheel 404 is rotated, which drives the screw 402 to rotate. When the screw 402 rotates inside the support plate 401, its vertical height changes. The screw 402 drives the block 403 to move, thereby adjusting the vertical height of the block 403 and thus adjusting the height of the base 1. When the height of the base 1 changes, the height of the laptop 10 will also change, thus achieving the adjustment of the height of the laptop 10. Multiple adjustment mechanisms 4 are set separately. When the desktop is uneven, multiple blocks 403 are placed at different heights, so that the base 1 can be kept in a horizontal state.

[0031] Third embodiment:

[0032] A first vertical rod 6 and a second vertical rod 7 are fixedly connected to the upper surface of the base 1. The end of the first vertical rod 6 is rotatably connected to the bracket 2 through a pin. The first vertical rod 6 provides support for the bracket 2. The end of the second vertical rod 7 is in contact with the bracket 2. When the bracket 2 is in a horizontal state, the end of the second vertical rod 7 is in contact with the bracket 2 to provide support for the bracket 2. A top plate 8 is fixedly connected to the top of the bracket 2. The bracket 2 and the top plate 8 move together. The top plate 8 has multiple through holes 9 inside, which facilitate airflow to dissipate heat from the laptop 10.

[0033] When the bracket 2 moves, it rotates under the action of the first vertical rod 6. When the bracket 2 is in a horizontal state, the end of the second vertical rod 7 fits against the bracket 2 to support it. The bracket 2 moves together with the top plate 8. The through hole 9 allows air to pass through and dissipate heat from the laptop 10.

[0034] Fourth embodiment:

[0035] A lifting mechanism 5 is provided above the top plate 8. The lifting mechanism 5 lifts the laptop 10 to facilitate the dissipation of heat generated by the laptop 10. The lifting mechanism 5 includes a pad 501, a rubber pad 502, and a baffle 503. Both pads 501 are fixed to the upper surface of the top plate 8. The two pads 501 lift the laptop 10 to facilitate the dissipation of heat generated by the laptop 10. The rubber pad 502 is fixed to the upper surface of the pad 501 to increase the friction of the upper surface of the pad 501. The baffle 503 is rotatably connected to the inside of the left pad 501 through a damping shaft. The baffle 503 blocks the laptop 10 to prevent the laptop 10 from moving.

[0036] In the auxiliary cooling structure of the laptop developed for software, the baffle 503 is rotated out from the left pad 501, and the outer wall of the baffle 503 is attached to the left pad 501. The laptop 10 is placed on top of the two pads 501, and the laptop 10 contacts the pads 501 through the rubber pad 502. The rubber pad 502 increases the friction on the upper surface of the pads 501, reducing the phenomenon of the laptop 10 sliding. When the tilt angle of the top plate 8 changes, the tilt angle of the laptop 10 changes, and the outer wall of the baffle 503 is attached to the laptop 10. The baffle 503 shields the laptop 10 and prevents the laptop 10 from shifting when it is tilted.

[0037] Fifth embodiment:

[0038] The upper surface of the rubber pad 502 is attached to the laptop 10. The laptop 10 contacts the pad 501 through the rubber pad 502. The rubber pad 502 increases the friction on the upper surface of the pad 501. The laptop 10 is a laptop for software development.

[0039] The laptop 10 contacts the pad 501 via a rubber pad 502, which increases the friction on the upper surface of the pad 501.

[0040] Sixth embodiment:

[0041] Multiple bent rods 11 are fixedly connected to the bottom of the top plate 8. A disc 12 is fixedly connected to the end of the bent rod 11. The bent rod 11 supports and positions the disc 12. A motor 13 is fixedly installed inside the disc 12. The disc 12 supports and positions the motor 13. A fan 14 is fixedly connected to the output shaft of the motor 13. The motor 13 drives the fan 14 to rotate. The bracket 2 has a wire hole inside, which is connected to the laptop 10 through a data cable to supply power to the motor 13.

[0042] The bent rod 11 and the disc 12 provide support and positioning for the motor 13. After being powered on, the motor 13 drives the fan 14 to rotate, which dissipates heat from the laptop 10 used for software development.

[0043] Working principle:

[0044] When the auxiliary cooling structure of the laptop 10 is used for auxiliary cooling, the baffle 503 is rotated out from the left pad 501, and the outer wall of the baffle 503 is attached to the left pad 501. The laptop 10 is placed on top of the two pads 501, and the laptop 10 contacts the pads 501 through the rubber pad 502. The rubber pad 502 increases the friction on the upper surface of the pads 501, reducing the phenomenon of the laptop 10 sliding. When the tilt angle of the top plate 8 changes, the tilt angle of the laptop 10 changes, and the outer wall of the baffle 503 is attached to the laptop 10. The baffle 503 provides auxiliary cooling for the laptop. The laptop 10 is shielded to prevent displacement when tilted. When the height of the laptop 10 needs to be adjusted, the rotating wheel 404 is turned, which drives the screw 402 to rotate. As the screw 402 rotates inside the support plate 401, its vertical height changes. The screw 402 drives the block 403 to move, thus adjusting the vertical height of the block 403, thereby adjusting the height of the base 1. The change in the height of the base 1 will also change the height of the laptop 10, achieving height adjustment. Multiple adjustment mechanisms 4 are set separately. When the desktop is uneven... When multiple blocks 403 are at different heights, the base 1 can be kept horizontal. When the tilt angle of the laptop 10 needs to be adjusted, the bracket 2 and the top plate 8 are rotated, and the support rod 302 is pried out from the inside of the first groove 301. The top plate 8 is then positioned at the desired tilt angle, and the top plate 8 causes the laptop 10 to tilt. The end of the support rod 302 is then positioned inside the second groove 303 and in contact with the inside of the second groove 303. At this time, the end of the support rod 302 is between the two wedge blocks 304 and is in contact with the rightmost wedge block 304. The top plate 8 is then released, and the wedge block 304... 04. Supporting the lower end of the support rod 302 prevents it from rotating. The support rod 302 supports the bracket 2, fixing the tilt angle of the bracket 2 and preventing it from rotating. This allows the laptop 10 to be stably tilted at the required angle. After the tilt angle of the laptop 10 is adjusted, it remains stably tilted. When the motor 13 is powered on, it drives the fan 14 to rotate. When the fan 14 rotates, it causes airflow, which is blown onto the laptop 10 through the through hole 9 to assist in heat dissipation. Software developers use the laptop 10 for software development.

[0045] The above embodiments are merely one of the preferred embodiments of this utility model and should not be used to limit the scope of protection of this utility model. Any modifications or refinements made to the main design concept and spirit of this utility model that are not of substantial significance, but solve the same technical problem as this utility model, should be included within the scope of protection of this utility model.

Claims

1. A notebook computer auxiliary heat dissipation structure for software development, characterized by, The utility model relates to a kind of adjustable notebook computer stand, including: Base (1) and support (2), the support (2) is set above base (1), the lower portion of support (2) is provided with tilting mechanism (3), the tilting mechanism (3) includes first recess (301) and second recess (303), the first recess (301) is set inside support (2), the inside of first recess (301) is connected with support rod (302) by damping shaft rotation, the second recess (303) is set inside base (1), the inside of second recess (303) is fixed with multiple wedge blocks (304), the outer wall of base (1) is provided with adjusting mechanism (4), the adjusting mechanism (4) includes support plate (401), the support plate (401) is fixedly connected in the outer wall of base (1), the inside of support plate (401) is threadedly connected with screw rod (402), the lower end of screw rod (402) is fixedly connected with square block (403), the upper end of screw rod (402) is fixedly connected with rotating wheel (404).

2. The software developed notebook computer auxiliary heat dissipation structure according to claim 1, characterized in that, The upper surface of base (1) is fixedly connected with first vertical rod (6) and second vertical rod (7), the end of first vertical rod (6) is rotatably connected with support (2) by pin shaft, the end of second vertical rod (7) is attached to support (2), the upper portion of support (2) is fixedly connected with top plate (8), the inside of top plate (8) is provided with multiple through holes (9).

3. The software developed notebook computer auxiliary heat dissipation structure according to claim 2, characterized in that, The upper portion of top plate (8) is provided with cushioning mechanism (5), the cushioning mechanism (5) includes cushion block (501), two cushion block (501) are fixedly connected on the upper surface of top plate (8), the upper surface of cushion block (501) is fixedly connected with rubber pad (502), the inside of left cushion block (501) is rotatably connected with baffle (503) by damping shaft.

4. The software developed notebook computer auxiliary heat dissipation structure according to claim 3, characterized in that, The upper surface of rubber pad (502) is attached with notebook computer (10).

5. The software developed notebook computer auxiliary heat dissipation structure according to claim 2, characterized in that, The lower portion of top plate (8) is fixedly connected with multiple bent rods (11), the end of bent rod (11) is fixedly connected with disc (12), the inside of disc (12) is fixedly installed with motor (13), the output shaft of motor (13) is fixedly connected with fan (14).