Laptop with embedded stand
By embedding the stand within the laptop and utilizing drive components and universal connection components, the support frame can be quickly deployed and stored, solving the problems of inconvenience in carrying traditional stands and adaptability to uneven desktops, thus improving user experience and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGDONG RUIQIN TECH CO LTD
- Filing Date
- 2023-09-22
- Publication Date
- 2026-05-12
AI Technical Summary
Existing laptop stands are inconvenient to carry and cannot adapt to uneven desktops, affecting user experience and stability.
Design a laptop with an embedded stand. By setting a support mechanism inside the computer body, the support stand can be unfolded and retracted using a drive component and a universal connection component. It can adapt to uneven desktops and prevent accidental activation of the controller through a safety mechanism.
It enables rapid adaptation to uneven desktops without affecting the overall flatness of the machine, avoiding inconvenience in carrying and operation, improving ease of use and flexibility, and enhancing safety.
Smart Images

Figure CN117307928B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of laptop computer technology, and more particularly to a laptop computer with an embedded stand. Background Technology
[0002] To achieve a more comfortable user experience and better heat dissipation, people often use laptops on a laptop stand. Currently, laptop stands are typically manufactured with a unibody design and are mostly external stands. These stands not only present inconvenience in use and portability but also may not adapt to uneven desktops, resulting in wobbling during use. This not only affects the user experience but also impacts the stability and security of the laptop, indirectly increasing daily maintenance costs and reducing the laptop's lifespan.
[0003] Therefore, it is necessary to provide a laptop with an embedded stand that avoids the problems of inconvenience in carrying and operation caused by uneven use environment, without affecting the flatness of the whole machine. Summary of the Invention
[0004] The purpose of this invention is to provide a laptop computer with an embedded stand, which avoids the problems of inconvenience in carrying and operation caused by uneven use environment, without affecting the flatness of the whole machine.
[0005] To achieve the above objectives, the present invention provides a laptop computer with an embedded stand, comprising a computer body and a support mechanism. The bottom of the computer body is provided with a first groove, and the side wall of the computer body is provided with a second groove. The support mechanism includes a support frame, a drive component, a universal connector component, and a base. The top of the support frame is disposed in the first groove and hinged to the computer body. The drive component is slidably disposed in the second groove and is fixedly connected to the support frame. One end of the universal connector component is hinged to the bottom of the support frame. One end of the base is rotatably connected to the other end of the universal connector component. By driving the drive component to slide along the second groove, the support frame rotates, causing the universal connector component and the base to rotate and unfold relative to the computer body or be stored in the first groove.
[0006] Preferably, the drive assembly includes a drive shaft, a rocker arm, and a controller. One end of the drive shaft is fixedly connected to the support frame, the other end of the drive shaft is fixedly connected to the top of the rocker arm, the bottom of the rocker arm is connected to the controller, and the controller is slidably disposed in the second groove.
[0007] Preferably, the laptop computer with the embedded stand also includes a safety mechanism, wherein the controller is movably disposed at the bottom of the swing arm, and the safety mechanism is connected to the controller; the safety mechanism locks or releases the controller, so that the controller is stored in the computer body or extends to the outside of the computer body.
[0008] Preferably, the safety mechanism includes a limiter, a reset elastic element, a limit elastic component, and an unlocking component. One side of the limiter is fixedly connected to one side of the controller. The reset elastic element is disposed between the limiter and the computer body along the moving direction of the limiter. One end of the unlocking component is movably inserted into the computer body, and the other end of the unlocking component is located on the outside of the computer body. One end of the limit elastic component is inserted into the limiter, and the other end of the limit elastic component abuts against the unlocking component. The unlocking component blocks the movement of the limiter through the limit elastic component, thereby locking and storing the controller inside the computer body. By driving the unlocking component to move and push the limit elastic component to move, the limiter and the controller are allowed to move under the elastic force of the reset elastic element, thereby allowing the controller to extend to the outside of the computer body.
[0009] Preferably, the limiting elastic component includes a limiting spring and a buckle. The limiting device has a receiving groove, one end of the limiting spring is connected to the inner wall of the receiving groove, and one end of the buckle is slidably disposed in the receiving groove and connected to the other end of the limiting spring. The other end of the buckle has a first recessed structure, and the unlocking component has a second recessed structure that matches the first recessed structure. The buckle abuts against the second recessed structure of the unlocking component through the first recessed structure to block the movement of the limiting device. By driving the unlocking component to move, the buckle is pushed to move and the limiting spring is compressed, causing the first recessed structure to disengage from the second recessed structure, thereby allowing the limiting device and the controller to move under the elastic force of the reset elastic element. By driving the controller together with the limiting device to move and compress the reset elastic element, the buckle is moved to a position corresponding to the unlocking component, causing the buckle to move under the elastic force of the limiting spring and causing the first recessed structure to abut against the second recessed structure again.
[0010] Preferably, the unlocking component includes an unlocker and an unlocking lever, the unlocker being fixedly connected to one end of the unlocking lever, the second recessed structure being formed on the unlocker, and the other end of the unlocking lever being movably inserted into the computer body.
[0011] Preferably, the universal joint assembly includes a support shaft and a universal joint, one end of the support shaft is hinged to the bottom of the support frame, the other end of the support shaft is fixedly connected to one end of the universal joint, and the other end of the universal joint is rotatably connected to the base.
[0012] Preferably, the end of the universal joint that connects to the base is a spherical structure, and the base is provided with a spherical groove that matches the spherical structure. The spherical structure and the spherical groove are inserted and fitted together, and the base can rotate omnidirectionally relative to the spherical structure through the spherical groove.
[0013] Preferably, the support mechanism further includes a support elastic element, which is disposed at the hinge point between the support shaft and the support frame.
[0014] Preferably, the support mechanism further includes an anti-slip pad, which is connected to the other end of the base.
[0015] Compared with the prior art, the laptop computer with an embedded stand of the present invention has a support mechanism set in the computer body. By driving the drive component of the support mechanism to slide along the second groove, the support frame can be rotated, and the universal joint component and the base can be rotated and unfolded relative to the computer body. Since the bottom of the support frame is hinged with the universal joint component, when encountering an uneven table, the base can be adjusted by omnidirectional rotation through the universal joint component, thereby adapting to the uneven table. This allows the support mechanism to provide good support for the computer body on uneven surfaces. The opening method of the support mechanism is quicker, eliminating the need to flip the laptop to open the stand. The embedded design of the support mechanism is not only convenient and efficient to use, but also saves space and improves the overall practicality and flexibility. When the bottom of the computer body is not needed for support, the support frame can be rotated in the opposite direction by driving the drive component to slide along the second groove, and the universal joint component and the base can be rotated in the opposite direction relative to the computer body and stored in the first groove. Therefore, the laptop computer with an embedded stand of the present invention can avoid the problems of inconvenience in carrying and operation caused by uneven use environment, without affecting the flatness of the whole machine. Attached Figure Description
[0016] Figure 1 This is a perspective structural diagram of a laptop computer with an embedded support according to the present invention.
[0017] Figure 2 yes Figure 1 Enlarged view of point A in the middle.
[0018] Figure 3 This is a bottom view of the laptop computer with an embedded stand according to the present invention.
[0019] Figure 4 yes Figure 3 Enlarged view of point B in the middle.
[0020] Figure 5 This is a perspective structural diagram of the support mechanism of a laptop computer with an embedded bracket according to the present invention.
[0021] Figure 6 This is an exploded view of the safety mechanism of a laptop computer with an embedded bracket according to the present invention.
[0022] Figure 7 This is a top cross-sectional view of the safety mechanism of a laptop computer with an embedded bracket according to the present invention. Detailed Implementation
[0023] To illustrate the technical content and structural features of the present invention in detail, the following description is provided in conjunction with the embodiments and accompanying drawings.
[0024] Please see Figures 1 to 5 The laptop computer 100 with an embedded stand of the present invention includes a computer body 1 and a support mechanism 2. The bottom of the computer body 1 is provided with a first groove 11, and the side wall of the computer body 1 is provided with a second groove 12. The support mechanism 2 includes a support frame 21, a drive component 22, a universal connector component 23, and a base 24. The top of the support frame 21 is disposed in the first groove 11 and hinged to the computer body 1. The drive component 22 is slidably disposed in the second groove 12 and is fixedly connected to the support frame 21. One end of the universal connector component 23 is hinged to the bottom of the support frame 21. One end of the base 24 is rotatably connected to the other end of the universal connector component 23. By driving the drive component 22 to slide along the second groove 12, the support frame 21 rotates and drives the universal connector component 23 and the base 24 to rotate and unfold relative to the computer body 1 or be stored in the first groove 11. Specifically, the computer body 1 includes a chassis system section 13 and a chassis display section 14. The chassis display section 14 is hinged to the chassis system section 13. A first groove 11 is formed at the bottom of the chassis system section 13, and a second groove 12 is formed on the side of the chassis system section 13. The specific structure and principle of the chassis system section 13 and the chassis display section 14 are well known to those skilled in the art, and therefore will not be described in detail here.
[0025] When the support mechanism 2 is needed to support the computer body 1, by driving the drive component 22 of the support mechanism 2 to slide along the second groove 12, the support frame 21 can rotate, causing the universal connector 23 and the base 24 to rotate and unfold relative to the computer body 1. Since the bottom of the support frame 21 is hinged with the universal connector 23, when encountering an uneven desktop, the base 24 can be adjusted by omnidirectional rotation through the universal connector 23 to adapt to the uneven surface, allowing the support mechanism 2 to provide good support for the computer body 1 on uneven surfaces. The opening method of the support mechanism 2 is quicker, eliminating the need to flip the laptop to open the stand. The support mechanism 2 has an embedded design, which is not only convenient and efficient to use, but also saves space and improves overall practicality and flexibility. When the bottom of the computer body 1 is not needed, by driving the drive component 22 to slide in the opposite direction along the second groove 12, the support frame 21 can rotate in the opposite direction, causing the universal connector 23 and the base 24 to rotate in the opposite direction relative to the computer body 1 and retract into the first groove 11.
[0026] Please see Figure 4 and Figure 5 In this embodiment, the drive assembly 22 includes a drive shaft 221, a rocker arm 222, and a controller 223. One end of the drive shaft 221 is fixedly connected to the support frame 21, and the other end of the drive shaft 221 is fixedly connected to the top of the rocker arm 222. The bottom of the rocker arm 222 is connected to the controller 223, which is slidably disposed in the second groove 12. By driving the controller 223 to slide along the second groove 12, the support frame 21 is rotated through the rocker arm 222 and the drive shaft 221. However, the structure of the drive assembly 22 is not limited to this. For example, the drive assembly 22 may also consist only of the controller 223 and the controller 223 may be directly connected to the support frame 21.
[0027] Please see Figure 1 and Figure 2 Furthermore, the laptop computer 100 with an embedded stand of the present invention also includes a safety mechanism 3. A controller 223 is movably mounted on the bottom of the swing arm 222, and the safety mechanism 3 is connected to the controller 223. The safety mechanism 3 locks or releases the controller 223, allowing the controller 223 to be stored inside the computer body 1 or extended to the outside of the computer body 1. When the support mechanism 2 is not needed to support the computer body 1, locking the controller 223 and storing it inside the computer body 1 by the safety mechanism 3 prevents accidental activation of the controller 223. When the support mechanism 2 is needed to support the computer body 1, the safety mechanism 3 releases the controller 223, allowing it to extend to the outside of the computer body 1.
[0028] Please see Figure 6 and Figure 7In this embodiment, the safety mechanism 3 includes a limiter 31, a reset elastic element 32, a limit elastic component 33, and an unlocking component 34. One side of the limiter 31 is fixedly connected to one side of the controller 223. The reset elastic element 32 is disposed between the limiter 31 and the computer body 1 along the moving direction of the limiter 31. One end of the unlocking component 34 is movably inserted into the computer body 1, and the other end of the unlocking component 34 is located on the outside of the computer body 1. One end of the limit elastic component 33 is inserted into the limiter 31, and the other end of the limit elastic component 33 abuts against the unlocking component 34. The unlocking component 34 blocks the movement of the limiter 31 through the limit elastic component 33, thereby locking and storing the controller 223 inside the computer body 1. By driving the unlocking component 34 to move and push the limit elastic component 33 to move, the limiter 31 and the controller 223 are allowed to move under the elastic force of the reset elastic element 32, thereby allowing the controller 223 to extend to the outside of the computer body 1.
[0029] Specifically, the limiting elastic component 33 includes a limiting spring 331 and a buckle 332. The limiter 31 is provided with a receiving groove 311. One end of the limiting spring 331 is connected to the inner wall of the receiving groove 311. One end of the buckle 332 is slidably disposed in the receiving groove 311 and connected to the other end of the limiting spring 331. The other end of the buckle 332 is provided with a first recessed structure 332a. The unlocking component 34 is provided with a second recessed structure 341a that matches the first recessed structure 332a. The buckle 332 abuts against the second recessed structure 341a of the unlocking component 34 through the first recessed structure 332a to block the limiter. 31. Movement: By driving the unlocking component 34 to move, the latch 332 is pushed and the limiting spring 331 is compressed, causing the first recessed structure 332a to disengage from the second recessed structure 341a, thereby allowing the limiter 31 and the controller 223 to move under the elastic force of the reset elastic member 32; By driving the controller 223 together with the limiter 31 to move and compress the reset elastic member 32, the latch 332 is moved to the position corresponding to the unlocking component 34, so that the latch 332 moves under the elastic force of the limiting spring 331 and the first recessed structure 332a abuts against the second recessed structure 341a again. The direction of movement of the latch 332 is perpendicular to the direction of movement of the unlocking component 34. The first recessed structure 332a is an arc-shaped structure, while the second recessed structure 341a is another arc-shaped structure for engaging with the first recessed structure 332a. However, this is not a limitation. For example, the moving direction of the buckle 332 may intersect with the moving direction of the unlocking component 34, and the first recessed structure 332a and the second recessed structure 341a may be inclined structures.
[0030] When the first recessed structure 332a engages with the second recessed structure 341a, the controller 223 is hidden inside the chassis system section 13 of the computer body 1. The reset elastic member 32 is compressed by the controller 223 and the limiter 31. When it is necessary to drive the controller 223 to slide, the unlocking component 34 can be driven to move, so that the unlocking component 34 pushes the latch 332 to move and compresses the limit spring 331, thereby causing the first recessed structure 332a to disengage from the second recessed structure 341a. Therefore, the controller 223 and the limiter 31 can move under the elastic force of the reset elastic member 32. The controller 223 extends to the outside of the chassis system section 13 of the computer body 1, so that the user can drive the controller 223 to slide along the second groove 12. When it is necessary to hide the controller 223, the controller 223 can be moved and retracted into the body system section 13 of the computer body 1. The limiter 31 moves accordingly to compress and reset the elastic member 32, and drives the buckle 332 to move to the position corresponding to the unlocking component 34. The buckle 332 moves under the elastic force of the limit spring 331, so that the first recessed structure 332a abuts and engages with the second recessed structure 341a again.
[0031] Please continue reading. Figure 6 and Figure 7 In this embodiment, the unlocking component 34 includes an unlocker 341 and an unlocking lever 342. One end of the unlocker 341 and the unlocking lever 342 are fixedly connected. A second recessed structure 341a is formed on the unlocker 341, and the other end of the unlocking lever 342 is movably inserted into the computer body 1. Specifically, the chassis system section 13 of the computer body 1 has a space for the unlocker 341 to move within it. The unlocker 341 can move within this space. At the same time, an opening is provided in this space. Under the elastic force of the limiting spring 331, the latch 332 can move through the opening and enter the space, so that the first recessed structure 332a abuts against and engages with the second recessed structure 341a. As the controller 223 moves and extends to the outside of the chassis system section 13 of the computer body 1 under the elastic force of the reset elastic member 32, the limiter 31 drives the limit spring 331 and the buckle 332 to move together. At the same time, the buckle 332 can be kept in the state of squeezing the limit spring 331 under the action of the inner wall of the chassis system section 13 of the computer body 1.
[0032] Please see Figure 5In this embodiment, the universal joint assembly 23 includes a support shaft 231 and a universal joint 232. One end of the support shaft 231 is hinged to the bottom of the support frame 21, and the other end of the support shaft 231 is fixedly connected to one end of the universal joint 232. The other end of the universal joint 232 is rotatably connected to the base 24. However, this is not a limitation. For example, the universal joint assembly 23 may also be an integral universal joint shaft. Specifically, the end of the universal joint 232 connected to the base 24 has a spherical structure (not shown in the figure). The base 24 is provided with a spherical groove (not shown in the figure) that matches the spherical structure. The spherical structure and the spherical groove are inserted and fitted together, and the base 24 can rotate omnidirectionally relative to the spherical structure through the spherical groove. However, this is not a limitation. For example, in other embodiments, a spherical structure may be provided on the base 24, and a spherical groove may be provided on the universal joint 232. Specifically, the computer body 1 has second grooves 12 on both sides of the chassis system section 13. The second grooves 12 are hollow grooves in the shape of a racetrack with a 110° arc, and the grooves are slidably connected to the side wall of the controller 223. The support frame 21 is a three-dimensional plate structure in the shape of a straight racetrack with circular openings on the inner walls at both ends. The angle between the support frame 21 and the bottom of the chassis is 110°.
[0033] Please continue reading. Figure 5 In this embodiment, the support mechanism 2 further includes a support elastic element 25, which is disposed at the hinge point between the support shaft 231 and the support frame 21. By providing the support elastic element 25, the stability of the support shaft 231 when rotating relative to the support frame 21 can be improved.
[0034] Please see again Figure 5 In this embodiment, the support mechanism 2 further includes an anti-slip pad 26, which is connected to the other end of the base 24. The anti-slip pad can increase the friction of the base 24 on the table, thus providing an anti-slip function.
[0035] Please see Figure 3 In this embodiment, four sets of support mechanisms 2 are symmetrically arranged at the bottom of the chassis system section 13 of the computer body 1 with the computer body 1 as the center line, and four sets of safety mechanisms 3 are arranged on the inner wall of the four sets of controllers 223 in the four sets of support mechanisms 2. However, the number of support mechanisms 2 and safety mechanisms 3 is not limited to this.
[0036] Combination Figures 1 to 7 The specific working principle of the laptop computer 100 with embedded support of the present invention is as follows:
[0037] When the support mechanism 2 is needed to support the computer body 1, the controller 223 of the drive assembly 22 is driven to slide along the second groove 12, so that the support frame 21 is rotated through the swing arm 222 and the transmission shaft 221. This allows the support frame 21 to rotate and drive the universal joint assembly 23, together with the base 24, to rotate and unfold relative to the computer body 1. Since the bottom of the support frame 21 is hinged with the support shaft 231 and the universal joint 232, the base 24 can be adjusted to adapt to uneven desktops by rotating in all directions through the support shaft 231 and the universal joint 232. When the bottom of the computer body 1 is not needed, the controller 223 of the drive assembly 22 can be driven to slide in the opposite direction along the second groove 12, so that the support frame 21 rotates in the opposite direction and drives the universal joint assembly 23, together with the base 24, to rotate in the opposite direction relative to the computer body 1 and be stored in the first groove 11.
[0038] When the controller 223 needs to be slid, the unlocking component 34 can be moved to push the latch 332 and compress the limiting spring 331, thereby disengaging the first recessed structure 332a from the second recessed structure 341a. Therefore, the controller 223 and the limiter 31 can move under the elastic force of the reset elastic member 32, and the controller 223 extends to the outside of the computer body 1's chassis system section 13, allowing the user to slide the controller 223 along the second groove 12. When the controller 223 needs to be hidden, it can be moved and retracted into the chassis system section 13 of the computer body 1. The limiter 31 then moves to compress the reset elastic member 32 and moves the latch 332 to the position corresponding to the unlocking component 34, causing the latch 332 to move under the elastic force of the limiting spring 331, thus causing the first recessed structure 332a to re-engage with the second recessed structure 341a.
[0039] In summary, the laptop computer 100 with an embedded stand of the present invention, while not affecting the overall flatness of the machine, also avoids the inconvenience of carrying traditional laptop stands and the inconvenience of operation caused by uneven operating environments. The support mechanism 2 of the present invention optimizes the traditional laptop support frame 21. The embedded design not only saves space, but also makes the rotation and opening of the controller 223 on the side wall of the computer body 1 more convenient and quick, thus improving the overall practicality and flexibility. To prevent accidental activation of the controller 223 during laptop use, a safety mechanism 3 is provided. When not in use, the controller 223 can be stored in the inner wall of the computer body 1. The limiter 31 on the inner wall of the controller 223 is provided with a latch 332, which can be inserted into the receiving groove 311 of the limiter 31. When needed, pushing the unlocking lever 342 controls the unlocking device 341 to push out the latch 332. Then, under the push of the reset elastic member 32, the controller 223 pops out. This mechanism ensures the overall safety and stability and prevents accidental activation of the controller 223.
[0040] The above-disclosed examples are merely preferred embodiments of the present invention and should not be construed as limiting the scope of the present invention. Therefore, any equivalent variations made in accordance with the claims of the present invention are within the scope of the present invention.
Claims
1. A laptop computer with an embedded stand, characterized in that, include: The computer body has a first groove at its bottom and a second groove on its side wall. A support mechanism includes a support frame, a drive assembly, a universal joint assembly, and a base. The top of the support frame is disposed within a first groove and hinged to the computer body. The drive assembly is slidably disposed within a second groove and fixedly connected to the support frame. One end of the universal joint assembly is hinged to the bottom of the support frame. One end of the base is rotatably connected to the other end of the universal joint assembly. By driving the drive assembly to slide along the second groove, the support frame rotates, causing the universal joint assembly and the base to rotate relative to the computer body and unfold or retract into the first groove. The drive assembly includes a transmission shaft, a swing arm, and a controller. One end of the transmission shaft is fixedly connected to the support frame, and the other end is fixedly connected to the top of the swing arm. The bottom of the swing arm is connected to the controller, which is slidably disposed within the second groove. By driving the controller to slide along the second groove, the support frame is rotated via the swing arm and the transmission shaft. A safety mechanism is included, wherein the controller is movably mounted on the bottom of the lever, and the safety mechanism is connected to the controller; the safety mechanism locks or releases the controller, allowing the controller to be retracted into the computer body or extended to the outside of the computer body; the safety mechanism includes a limiter, a reset elastic element, a limit elastic component, and an unlocking component; one side of the limiter is fixedly connected to one side of the controller; the reset elastic element is disposed between the limiter and the computer body along the moving direction of the limiter; one end of the unlocking component is movably mounted on the lever. Within the computer body, the other end of the unlocking component is located on the outside of the computer body. One end of the limiting elastic component is inserted into the limiter, and the other end of the limiting elastic component abuts against the unlocking component. The unlocking component blocks the movement of the limiter through the limiting elastic component, thereby locking and storing the controller within the computer body. By driving the unlocking component to move and push the limiting elastic component to move, the limiter and the controller are allowed to move under the elastic force of the reset elastic member, thereby allowing the controller to extend to the outside of the computer body.
2. The laptop computer with an embedded support according to claim 1, characterized in that, The limiting elastic component includes a limiting spring and a buckle. The limiting device has a receiving groove. One end of the limiting spring is connected to the inner wall of the receiving groove. One end of the buckle is slidably disposed in the receiving groove and connected to the other end of the limiting spring. The other end of the buckle has a first recessed structure. The unlocking component has a second recessed structure that matches the first recessed structure. The buckle abuts against the second recessed structure of the unlocking component through the first recessed structure to prevent the limiting device from moving. By driving the unlocking component to move and push the buckle to move and compress the limiting spring, the first recessed structure is disengaged from the second recessed structure, thereby allowing the limiter and the controller to move under the elastic force of the reset elastic member; by driving the controller together with the limiter to move and compress the reset elastic member, the buckle is moved to the position corresponding to the unlocking component, so that the buckle moves under the elastic force of the limiting spring and the first recessed structure abuts against the second recessed structure again.
3. The laptop computer with an embedded support according to claim 2, characterized in that, The unlocking component includes an unlocker and an unlocking rod. The unlocker is fixedly connected to one end of the unlocking rod. The second recessed structure is formed on the unlocker. The other end of the unlocking rod is movably inserted into the computer body.
4. The laptop computer with an embedded support according to claim 1, characterized in that, The universal connection assembly includes a support shaft and a universal joint. One end of the support shaft is hinged to the bottom of the support frame, and the other end of the support shaft is fixedly connected to one end of the universal joint. The other end of the universal joint is rotatably connected to the base.
5. The laptop computer with an embedded support according to claim 4, characterized in that, The end of the universal joint that connects to the base is a spherical structure. The base is provided with a spherical groove that matches the spherical structure. The spherical structure and the spherical groove are inserted and fitted together. The base can rotate omnidirectionally relative to the spherical structure through the spherical groove.
6. The laptop computer with an embedded support according to claim 4, characterized in that, The support mechanism further includes a support elastic element, which is disposed at the hinge joint between the support shaft and the support frame.
7. The laptop computer with an embedded support according to claim 1, characterized in that, The support mechanism also includes an anti-slip pad, which is connected to the other end of the base.