Integrated computer
By adopting a laptop motherboard and an active lens assembly, combined with axial fan cooling, the high cost and long development time of all-in-one computers have been solved, enabling flexible display expansion and efficient heat dissipation to meet various usage needs.
Patent Information
- Application Number
- CN202510671097.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2024-05-28
- Filing Date
- 2025-05-23
- Publication Date
- 2025-11-28
AI Technical Summary
Existing all-in-one computers are expensive to design and develop, have long manufacturing times, lack flexible camera lens configurations and device expansion, and cannot meet the needs of game live streaming, multi-device collaboration and artificial intelligence recognition.
It uses a laptop motherboard as the core of its design, combined with a lens assembly with active configuration, and connects the main screen and the computing host through the first hinge. It is equipped with a heat dissipation module based on a general-purpose motherboard module, increases the display function and viewing angle adjustment, and uses an axial fan for heat dissipation.
Reduce design, development, and manufacturing costs, shorten time to market, meet diverse usage needs, provide additional extended display and viewing angle adjustment, and improve heat dissipation efficiency.
Smart Images

Figure CN121028958A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to a computer, in particular to an all-in-one computer. BACKGROUND
[0002] Among the existing computer types, an all-in-one computer (AIO) that combines a host computer with a display is proposed, which can more conveniently arrange related components in the same space to obtain a compact structural configuration, and also easily obtain the favor of users due to the simple appearance design.
[0003] Generally speaking, an efficient all-in-one computer is usually matched with a specially designed motherboard and a heat dissipation system. Such customized design often requires high development cost and design and manufacturing time, so it cannot shorten the time to market. Moreover, the existing all-in-one computer often lacks flexible camera lens configuration and device expansion use requirements when in use, so it cannot meet the use requirements of related activities required by the existing network generation, such as game live streaming, multi-device collaboration, and artificial intelligence (AI) recognition. SUMMARY
[0004] The present application is directed to an all-in-one computer that uses the motherboard of a notebook computer as the design core, thereby reducing the cost and time required for design development and manufacturing, and matching the lens assembly with flexible configuration to meet various use requirements.
[0005] According to an embodiment of the present application, an all-in-one computer includes a display host, a computing host, and a first pivot. The display host includes a support and a main screen, and the support supports the main screen on a platform. The computing host is electrically connected to the display host, and the computing host includes a computing module and a secondary screen. The main screen and the secondary screen are respectively erected on the platform. The first pivot is connected between the main screen and the computing host, wherein the display area of the main screen is larger than the display area of the secondary screen, and the computing module drives the main screen and the secondary screen to respectively output first display content and second display content.
[0006] According to an embodiment of the present application, an all-in-one computer includes a display host, a computing host, a first pivot, and a heat dissipation module. The display host includes a support and a main screen, and the support supports the main screen on a platform. The computing host is electrically connected to the display host. The first pivot is connected between the main screen and the computing host. The heat dissipation module is arranged in the computing host. The heat dissipation module includes a first fan and a second fan, the first fan provides an intake airflow from an external environment to the inside of the computing host, and the second fan provides at least one exhaust airflow from the inside of the computing host to the external environment.
[0007] Based on the above, the main screen of the display host of the all-in-one computer is erected on the platform through the support, and the operation host of the all-in-one computer is connected to the side of the main screen through the first rotating shaft and is suspended above the platform, wherein the operation host comprises an operation module and a secondary screen, so that the all-in-one computer has the main screen and the secondary screen erected on the platform respectively. In this way, the operation module of the operation host can adopt a general specification motherboard module to be standardized, thereby effectively saving the design and development cost and shortening the time to market. Furthermore, the secondary screen and the main screen of the operation host can respectively input first display content and second display content, thereby providing additional expansion display for the all-in-one computer, and the secondary screen can also be pivoted relative to the main screen through the first rotating shaft to adjust the viewing angle. BRIEF DESCRIPTION OF DRAWINGS
[0008] Figure 1 is a schematic view of an all-in-one computer according to an embodiment of the present application;
[0009] Figure 2 is shown from another perspective Figure 1 of the all-in-one computer;
[0010] Figure 3 shows another state of the all-in-one computer;
[0011] Figure 4 shows a partial component schematic view of the all-in-one computer;
[0012] Figure 5 shows a lens assembly of the all-in-one computer;
[0013] Figure 6 and Figure 7 are different use states of the lens assembly, respectively;
[0014] Figure 8 and Figure 9 show different use states of the all-in-one computer, respectively;
[0015] Figure 10 shows a partial component schematic view of the all-in-one computer;
[0016] Figure 11 shows a partial component schematic view of the all-in-one computer.
[0017] BRIEF DESCRIPTION OF DRAWINGS
[0018] 20: platform
[0019] 100: all-in-one computer
[0020] 110: display host
[0021] 111: support
[0022] 111a: Frame
[0023] 111b: Base
[0024] 112: Home Screen
[0025] 120: Computing host
[0026] 121: Computation Module
[0027] 122: Secondary screen
[0028] 123:Ontology
[0029] 123a: Air Inlet Surface Two
[0030] 123b: Air Inlet
[0031] 124: Cover
[0032] 124a: Air Inlet Surface 1
[0033] 124b: Open
[0034] 124c: Air Inlet
[0035] 125: Locking component
[0036] 126: Third pivot
[0037] 130: First pivot
[0038] 140: Lens Assembly
[0039] 141: Lens Module
[0040] 142: Second pivot
[0041] 150: Storage rack
[0042] 151: Fixed Unit
[0043] 151a: Opening
[0044] 152: Moving Unit
[0045] 160: Expansion Accessories
[0046] 170: Heat dissipation module
[0047] 171: First Fan
[0048] 172: Second Fan
[0049] 180: Wireless charging module
[0050] 200:External objects
[0051] 300: File
[0052] 400: Headphones
[0053] AF1: Intake airflow
[0054] AF2: Exhaust airflow
[0055] CN1, CN2, CN3: Electrical connector modules
[0056] F1: First airflow
[0057] F2: Second airflow
[0058] PT1: Component One
[0059] PT2: Component Two
[0060] S1: Front side
[0061] S2: Dorsal side
[0062] XY: Planar coordinates Detailed Implementation
[0063] Reference will now be made in detail to exemplary embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same component reference numerals are used in the drawings and description to denote the same or similar parts.
[0064] Figure 1 This is a schematic diagram of an all-in-one computer according to an embodiment of the present invention. Figure 2 Showing it from another perspective Figure 1 An all-in-one computer. Figure 3 This shows another state of the all-in-one computer. Please also refer to... Figures 1 to 3 The all-in-one computer 100 includes a display host 110, a computing host 120, and a first hinge 130. The display host 110 includes a stand 111 and a main screen 112, with the stand 111 supporting the main screen 112 on a platform 20. The computing host 120 is electrically connected to the display host 110 and includes a computing module 121 and a secondary screen 122. The main screen 112 and the secondary screen 122 are respectively mounted on the platform 20. The first hinge 130 connects the main screen 112 and the computing host 120, allowing the computing host 120 to pivot relative to the main screen 112. The display area of the main screen 112 is larger than the display area of the secondary screen 122, and the computing module 121 drives the main screen 112 and the secondary screen 122 to output first and second display content, respectively.
[0065] In this embodiment, the first hinge 130 is a dual-hinge structure, so the computing host 120 can pivot relative to the display host 110 and be suspended above the platform 20 via the first hinge 130, and can be in a display state (e.g., Figure 1 or Figure 2(as shown) and storage status (e.g.) Figure 3 The main screen 112 and the secondary screen 122 switch between the two. In the display state, the main screen 112 and the secondary screen 122 both face the front side S1 of the display host 110, and in a preferred embodiment, the computing host 120 preferably forms an obtuse angle relative to the display host 110 in the direction facing the front side S1 (e.g., described later). Figure 7 In the stowed state, the computing unit 120 is folded to the back side S2 of the display unit 110, so that the main screen 112 and the secondary screen 122 are facing away from each other. Therefore, the viewing angle of the secondary screen 122 of the computing unit 120 can be adjusted to suit the user's needs via the first hinge 130.
[0066] Figure 4 A schematic diagram of some components of an all-in-one computer is shown. Figure 5 The camera assembly of the all-in-one computer is shown. Please also refer to... Figure 4 and Figure 5 And compare Figure 2 In this embodiment, the all-in-one computer 100 further includes a detachable lens assembly 140, which includes a lens module 141, an electrical connector module CN2, and a second pivot 142. More specifically, the lens assembly 140 includes a first component PT1 and a second component PT2, wherein the lens module 141 is disposed on the first component PT1, the electrical connector module CN2 is disposed on the second component PT2, and the first component PT1 and the second component PT2 are pivotally connected to each other via the second pivot 142. Accordingly, as... Figure 5 As shown (and compared) Figure 1 To determine their relative positions, the lens assembly 140 is connected (structurally assembled) to the electrical connector module CN3 of the display host 110 via the electrical connector module CN2, thereby being electrically connected to the computing host 120 via the display host 110, thus forming a network camera architecture for the all-in-one computer 100. The lens module 141 can pivot relative to the component PT2 along with component PT1 to form a configuration such as... Figure 1 As shown, the lens module 141 is oriented towards the rear side S2, or as... Figure 4 As shown, after being installed onto the electrical connector module CN3, it faces forward towards S1.
[0067] It should be noted beforehand that, for the purpose of facilitating the explanation of the usage status of the lens assembly 140, the following will be... Figures 6 to 8 The omission will be shown Figure 1 The lines of the air inlet 124c are shown. Figure 6 and Figure 7 These are different usage scenarios for the lens assembly. Please refer to them first. Figure 6 And compare Figure 1In addition to the aforementioned rear S2 of the display host 110, the lens assembly 140 can also form another type of usage state by docking (structural assembly) its electrical connector module CN2 to the electrical connector module CN1 of the computing host 120. For example... Figure 6 As shown, since the computing host 120 can pivot relative to the display host 110 via the first pivot 130, the lens assembly 140 can thus adjust its camera angle relative to the user. At the same time, the camera content of the user can be further (imaged) and reflected on the secondary screen 122 of the computing host 120, thereby constituting a recording mode for the user when conducting live web streaming.
[0068] Also, please refer to Figure 7 The lens assembly 140 shown is also connected to the computing host 120, but the lens module 141 is oriented towards the platform 20 via the second pivot 142 of the lens assembly 140. In this way, it is as follows: Figure 7 As shown, the lens module 141 can capture images of the file 300 placed on the platform 20 and image the captured image data onto the secondary screen 122 of the computing host 120 or the main screen 112 of the display host 110. Here, the former is used as an example, and the first display content of the main screen 112 and the second display content of the secondary screen 122 are different from each other.
[0069] Figure 8 and Figure 9 These diagrams illustrate different usage modes of the all-in-one computer. Please refer to them first. Figure 8 In this embodiment, the all-in-one computer 100 also includes a storage stand 150, which can be folded and stored or unfolded on one side of the main screen 112 opposite to the computing host 120. When the storage stand 150 is unfolded on that side of the main screen 112, an external object 200 (or the earphone 400 described later) is adapted to be supported on the storage stand 150. Here, the external object 200 is, for example, a mobile phone or a tablet computer.
[0070] The storage stand 150 of this embodiment includes a fixed unit 151 and a movable unit 152. The movable unit 152 is movably coupled to this side of the main screen 112 after unfolding and is located on top of the fixed unit 151. An external object 200 is adapted to be placed between the fixed unit 151 and the movable unit 152, and the storage stand 150 can be adapted to external objects 200 of different sizes through the movable unit 152. Here, the external object 200 is a portable mobile device, which is adapted to be wirelessly or wiredly connected to the computing host 120, and the third display content of the portable mobile device is different from the second display content appearing on the secondary screen 122. Taking the electrical connector module CN3 as an example of the aforementioned wired signal connection, one end of the electrical connector module CN3 is electrically connected to the display host 110 or the computing host 120, while the other end passes through the opening 151a of the fixed unit 151 and is electrically connected to and carried on the external object 200 in the storage stand 150. In addition to enabling the external object 200 to be charged and discharged via the electrical connector module CN3 through the display host 110 or the computing host 120, the third display content of the portable mobile device is different from the display content of the secondary screen 122, but it can be consistent with or even identical to the first display content of the main screen 112, so that the display screen of the external object 200 and the main screen 112 of the display host 110 can be each other's extended display desktop or synchronized display desktop.
[0071] Figure 9 Another way to use the storage bracket 150 is shown, which is that after the movable unit 152 is moved to the default position, it can be used as a hanging structure for storing the headphones 400 or other items.
[0072] Figure 10 This diagram shows a partial component of an all-in-one computer. Please refer to it. Figure 10The all-in-one computer 100 in this embodiment also includes an expansion accessory 160, which is mounted on a frame 111a or a base 111b of the bracket 111 and electrically connected to the computing module 121. The frame 111a is connected between the base 111b and the main screen 112. Here, the display host 110 also has an electrical connector module CN4 mounted on the bracket 111. When the expansion accessory 160 is placed on the base 111b of the bracket 111, the expansion accessory 160 can be charged and discharged through the electrical connector module CN4. One end of the aforementioned electrical connector module CN3 can be connected to the electrical connector module CN4. On the other hand, the all-in-one computer 100 of this embodiment also includes a wireless charging module 180, which is disposed on the base 111b of the bracket 111 and electrically connected to the computing host 120 (or electrically connected to the computing host 120 via the display host 110). Therefore, when an expansion accessory 160 capable of wireless charging / discharging is placed on the base 111b, the wireless charging module 180 can be activated to charge / discharge the expansion accessory 160.
[0073] Figure 11 This diagram shows a partial component of an all-in-one computer. Please refer to it. Figure 11 And compare Figure 1 and Figure 2 In this embodiment, the all-in-one computer 100 also includes a heat dissipation module 170, which is configured inside the computing host 120. The heat dissipation module 170 includes a first fan 171 and a second fan 172. The first fan 171 provides an intake airflow AF1 to guide the internal environment of the computing host 120 from the external environment, and the second fan 172 provides at least one exhaust airflow AF2 to guide the internal environment of the computing host 120 to the external environment.
[0074] In detail, the computing host 120 has an air inlet surface 124a and an air inlet surface 123a that are opposite to each other (e.g., Figure 2 As shown), the first fan 171 is located between the first air intake surface 124a and the second air intake surface 123a, so that the airflow AF1 drawn in by the first fan 171 passes through the first air intake surface 124a and the second air intake surface 123a and enters the computing host 120. The computing host 120 includes a body 123, a cover 124, and a locking member 125. The cover 124 is pivotally connected to the body 123 via a third pivot 126, and the pivot point is adjacent to the aforementioned first pivot 130. The locking member 125 is disposed on at least one of the body 123 and the cover 124, so that when the cover 124 pivots relative to the body 123 and is closed on the body 123, the locking member 125 combines and fixes the cover 124 and the body 123 together. The cover 124 has an opening 124b to allow the secondary screen 122 to expose the computing host 120 through the cover 124. Furthermore, please also refer to Figure 1 , Figure 2 and Figure 11The cover 124 has multiple air inlets 124c of different sizes and elongated shape, thereby forming the first air inlet surface 124a. Similarly, the body 123 also has multiple air inlets 123b of different sizes and elongated shape, thereby forming the second air inlet surface 123a.
[0075] Here, the XY plane coordinates are provided as a reference. The main body 123 of the computing host 120 is considered to be located on the XY plane. In this embodiment, the first fan 171 and the second fan 172 are centrifugal fans. They first draw in air from the axial direction of the fan to extract cool air from the external environment, for example, air intake surface 124a and air intake surface 123a (e.g., air intake surface 124a and air intake surface 123a). Figure 2 As shown), and then the exhaust airflow is sent out in a direction perpendicular to the axial direction (as shown). Figure 11 (The first airflow F1 and the second airflow F2 are shown). Furthermore, to effectively provide an optimized heat dissipation mechanism for the computing module 121, the first fan 171 in this embodiment is a single-outlet fan to facilitate the introduction of the intake airflow AF1 from the external environment into the computing host 120, and in particular, to guide the heat pipes of the heat dissipation module 170 and the second fan 172. The second fan 172 is a dual-outlet fan, and its exhaust airflow AF2 includes the first airflow F1 and the second airflow F2. The direction of the second airflow F2 is along the positive X-axis and away from the main screen 112, and the direction of the first airflow F1 is along the positive Y-axis and perpendicular to the direction of the second airflow F2. The second fan 172 is aligned with the first fan 171, and the first airflow F1 is blown out of the computing host 120 in a direction away from the first fan 171. Figure 11 The direction of the airflow is clearly visible. Since the airflow of the first fan 171 is directed toward the second fan 172, the second fan 172, in addition to drawing in cool air from the external environment, further uses the airflow of the first fan 171 as an additional airflow source to increase its airflow and thus improve the heat dissipation effect on the computing module 121.
[0076] On the other hand, the computing module 121 of the aforementioned computing host 120 is essentially a motherboard configured within the main body 123, and particularly a standard motherboard for laptops. In other words, the all-in-one computer 100 essentially treats the computing host 120 as the host of a laptop, but redesigns the special airflow configuration of the aforementioned heat dissipation module 170, rather than directly transplanting the airflow configuration of a conventional heat dissipation module on a laptop. Accordingly, the all-in-one computer 100 of the present invention not only achieves commonality but also improves its adaptability, thereby reducing problems such as excessively high costs, long development time, and lack of commonality caused by customization.
[0077] In summary, in the embodiments described above, the main screen of the all-in-one computer's display host is mounted on a platform via a bracket, while the computing host of the all-in-one computer is suspended above the platform by being connected to the main screen via a first hinge. The computing host includes a computing module and a secondary screen, thus the all-in-one computer has a main screen and a secondary screen mounted on the platform. In this way, the computing module of the computing host can adopt a standard motherboard module, effectively saving design and development costs and shortening time to market. Furthermore, the secondary screen and the main screen of the computing host can respectively input first and second display content, providing additional display expansion for the all-in-one computer. The secondary screen can also pivot relative to the main screen via the first hinge to adjust the viewing angle.
[0078] On the other hand, the lens assembly of the all-in-one computer can be docked to the display host or the computer host due to its detachable feature. At the same time, the lens module and the electrical connector module are set in different but pivotally connected components, so the shooting angle can be adjusted according to the needs. In addition, the pivoting feature of the computer host relative to the display host can increase the number of usage states, which is more conducive to cooperation with the display host and the computer host to meet various usage needs.
[0079] Furthermore, to ensure effective heat dissipation for the computing modules housed within the main unit, the all-in-one computer's cooling system includes a first fan and a second fan. These are axial fans that draw cool air from the external environment into the main unit through different air intake surfaces on the main body and cover. The first fan is a single-outlet fan aligned with the second fan to provide additional airflow. The second fan is a dual-outlet fan, serving as the primary cooling structure for the computing modules, effectively dissipating heat from areas of high concentration by exhausting airflow in different directions.
[0080] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. An all-in-one computer, characterized in that, include: The display host includes a bracket and a main screen, wherein the bracket supports the main screen on a platform; A computing host is electrically connected to the display host. The computing host includes a computing module and a secondary screen. The main screen and the secondary screen are respectively placed on the platform. as well as A first rotating shaft is connected between the main screen and the computing host, wherein the display area of the main screen is larger than the display area of the secondary screen, and the computing module drives the main screen and the secondary screen to output a first display content and a second display content, respectively.
2. The all-in-one computer according to claim 1, characterized in that, The computing host pivots relative to the display host via the first pivot to switch between a display state and a storage state. In the display state, the computing host forms an obtuse angle with the display host, and the main screen and the secondary screen face the front of the display host. In the storage state, the computing host is folded behind the display host, so that the main screen and the secondary screen face away from each other.
3. The all-in-one computer according to claim 1, characterized in that, It also includes a lens assembly, which includes a lens module, an electrical connector module and a second pivot. The electrical connector module is detachably assembled to the main screen of the display host or the computing host. During the assembly, the lens module is electrically connected to the computing module through the electrical connector module. The second pivot is connected between the lens module and the electrical connector module so that the lens module can pivot relative to the electrical connector module through the second pivot.
4. The all-in-one computer according to claim 3, characterized in that, The image data obtained by the lens module is the second display content of the secondary screen.
5. The all-in-one computer according to claim 1, characterized in that, It also includes a storage stand that can be folded and stored or unfolded on one side of the main screen opposite the computing host. When the storage stand is unfolded on the side of the main screen, external objects are adapted to be supported on the storage stand.
6. The all-in-one computer according to claim 5, characterized in that, The storage bracket includes a fixed unit and a movable unit. The movable unit is movably coupled to one side of the main screen and located on the fixed unit after being unfolded on the main screen. The external object is adapted to be placed between the fixed unit and the movable unit.
7. The all-in-one computer according to claim 6, characterized in that, The external object is a portable mobile device, which is adapted to be wirelessly or wiredly connected to the computing host, and the third display content of the portable mobile device is different from the second display content.
8. The all-in-one computer according to claim 1, characterized in that, It also includes expansion accessories, which are mounted on the frame or base of the bracket and electrically connected to the computing module, with the frame connected between the base and the main screen.
9. The all-in-one computer according to claim 1, characterized in that, It also includes a heat dissipation module, which is configured inside the computing host. The heat dissipation module includes a first fan and a second fan. The first fan provides an intake airflow from the external environment to the interior of the computing host, and the second fan provides at least one exhaust airflow from the interior of the computing host to the external environment.
10. The all-in-one computer according to claim 9, characterized in that, The computing host has an air intake surface one and an air intake surface two that are opposite to each other. The first fan is located between the air intake surface one and the air intake surface two, so that the intake airflow passes through the air intake surface one and the air intake surface two and enters the computing host via the first fan.
11. The all-in-one computer according to claim 9, characterized in that, The exhaust airflow includes a first airflow and a second airflow, wherein the direction of the second airflow is away from the main screen, and the direction of the first airflow is perpendicular to the direction of the second airflow.
12. The all-in-one computer according to claim 11, characterized in that, The second fan is aligned with the first fan, and the first airflow is blown out of the computing host in a direction away from the first fan.
13. The all-in-one computer according to claim 1, characterized in that, The computing host includes a body, a cover, and a locking element. The cover is pivotally connected to the body and the pivot point is adjacent to the first rotating shaft. The locking element is disposed on at least one of the body and the cover, so that when the cover pivots relative to the body and closes to the body, the locking element combines and fixes the cover and the body together.
14. The all-in-one computer according to claim 13, characterized in that, The secondary screen exposes the computing host through the cover.
15. An all-in-one computer, characterized in that, include: The display host includes a bracket and a main screen, wherein the bracket supports the main screen on a platform; The computing host is electrically connected to the display host; The first hinge connects the main screen and the computing host. as well as A heat dissipation module is configured inside the computing host. The heat dissipation module includes a first fan and a second fan. The first fan provides an intake airflow from the external environment to the interior of the computing host, and the second fan provides at least one exhaust airflow from the interior of the computing host to the external environment.
16. The all-in-one computer according to claim 15, characterized in that, The computing host has an air intake surface one and an air intake surface two that are opposite to each other. The first fan is located between the air intake surface one and the air intake surface two, so that the intake airflow passes through the air intake surface one and the air intake surface two and enters the computing host via the first fan.
17. The all-in-one computer according to claim 15, characterized in that, The exhaust airflow includes a first airflow and a second airflow, wherein the direction of the second airflow is away from the main screen, and the direction of the first airflow is perpendicular to the direction of the second airflow.
18. The all-in-one computer according to claim 17, characterized in that, The second fan is aligned with the first fan, and the first airflow is blown out of the computing host in a direction away from the first fan.
19. The all-in-one computer according to claim 15, characterized in that, The computing host includes a body, a cover, and a locking element. The cover is pivotally connected to the body and the pivot point is adjacent to the first rotating shaft. The locking element is disposed on at least one of the body and the cover, so that when the cover pivots relative to the body and closes to the body, the locking element combines and fixes the cover and the body together.
20. The all-in-one computer according to claim 19, characterized in that, The first fan and the second fan are centrifugal fans, respectively located between the body and the cover, and the two axial air inlets of the first fan are located on the cover and the body, respectively.
21. The all-in-one computer according to claim 15, characterized in that, It also includes a lens assembly, which includes a lens module, an electrical connector module, and a second pivot. The electrical connector module is detachably assembled to the main screen of the display host or the computing host. During assembly, the lens module is electrically connected to the computing module of the computing host through the electrical connector module. The second pivot is connected between the lens module and the electrical connector module so that the lens module can pivot relative to the electrical connector module through the second pivot.
22. The all-in-one computer according to claim 15, characterized in that, It also includes a storage stand that can be folded and stored or unfolded on one side of the main screen opposite the computing host. When the storage stand is unfolded on the side of the main screen, external objects are adapted to be supported on the storage stand.
23. The all-in-one computer according to claim 22, characterized in that, The storage bracket includes a fixed unit and a movable unit. The movable unit is movably coupled to one side of the main screen and located on the fixed unit after being unfolded on the main screen. The external object is adapted to be placed between the fixed unit and the movable unit.
24. The all-in-one computer according to claim 23, characterized in that, The external object is a portable mobile device, which is adapted to be wirelessly or wiredly connected to the computing host.
25. The all-in-one computer according to claim 15, characterized in that, It also includes expansion accessories, a computing module that is mounted on the frame or base of the bracket and electrically connected to the computing host, wherein the frame is connected between the base and the main screen.