Size adjusting mechanism and embedded all-in-one machine

Through the limiting components and sliding components of the dimension adjustment mechanism, the complexity and uncertainty of the customization of industrial all-in-one machines are solved, and the versatility and stable installation of the equipment are achieved.

CN223078642UActive Publication Date: 2025-07-08GUANGZHOU YUNHUI COMP CO LTD
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Patent Information

Application Number
CN202422314159.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-07-08
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

In the prior art, the customization process of industrial all-in-one machines is complex and has high uncertainty, resulting in long production delivery time and unstable quality, which affects user satisfaction.

Method used

The dimension adjustment mechanism is adopted, including a limiting assembly and a sliding assembly. The opening size of the support device is matched by the driving member and the anti-contact member. The sliding assembly defines the direction of movement to avoid falling off.

Benefits of technology

It realizes the versatility of the equipment to be installed, adapts to the opening sizes of different support devices, and does not require customization, ensuring installation stability and quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a size adjusting mechanism and an embedded all-in-one machine, the size adjusting mechanism comprises a limiting assembly and a sliding assembly, the limiting assembly comprises an abutting part and a driving part, the driving part is used for connecting the abutting part and to-be-installed equipment, and the driving part drives the abutting part to move from the edge of the to-be-installed equipment to the outer side; the opening size of the supporting device is matched; the sliding assembly is used for enabling the abutting part to be in sliding connection with the to-be-installed equipment and located between the abutting part and the to-be-installed equipment. The abutting part is driven by the driving part to increase the size of the to-be-installed equipment, the to-be-installed equipment can adapt to openings of different sizes of the supporting device by combining the size of the limiting assembly, it is guaranteed that the to-be-installed equipment is located on the supporting device, universality is improved, and the to-be-installed equipment does not need to be customized according to different opening sizes; the sliding assembly limits the movement direction of the abutting part, connection between the abutting part and the to-be-installed equipment is kept, and the abutting part is prevented from falling off from the to-be-installed part.
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Description

Technical Field

[0001] The present application relates to the technical field of equipment installation, and in particular to a size adjustment mechanism and an embedded all-in-one machine. Background Art

[0002] Industrial all-in-one machines usually need to be embedded for installation, but there is no unified opening size for installing embedded all-in-one machines in the relevant support devices. When users need to replace all-in-one machines, they can only customize the size of embedded all-in-one machines according to the opening of the relevant support devices that users already have. Customized sizes undoubtedly increase the complexity and uncertainty of all-in-one machine production, resulting in longer delivery times, which may cause users to wait too long, affecting their production progress and business development. At the same time, it is difficult to ensure stable quality during the customization process, and quality problems are prone to occur, affecting user satisfaction and product reputation. Summary of the invention

[0003] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, the present application proposes a size adjustment mechanism, which can adapt the equipment to be installed to the opening sizes of different support devices and improve the versatility.

[0004] The present application also proposes an embedded all-in-one machine having the above-mentioned size adjustment mechanism.

[0005] According to the size adjustment mechanism of the first aspect embodiment of the present application, the size adjustment mechanism includes a limit assembly and a sliding assembly, the limit assembly includes a resistance component and a driving component, the driving component is used to connect the resistance component and the device to be installed, the driving component drives the resistance component to move outward from the edge of the device to be installed to match the opening size of the supporting device; the sliding assembly is used to make the resistance component slidably connected to the device to be installed, and the sliding assembly is located between the resistance component and the device to be installed.

[0006] The size adjustment mechanism according to the embodiment of the present application has at least the following beneficial effects: the interference component increases the size of the device to be installed under the driving action of the driving component, and the size of the device to be installed combined with the limiting component can adapt to the openings of different sizes of the supporting device, thereby ensuring that the device to be installed is positioned on the supporting device, improving versatility, and eliminating the need to customize the device to be installed according to different opening sizes; the sliding component limits the movement direction of the interference component, maintains the connection between the interference component and the device to be installed, and prevents the interference component from falling off the component to be installed.

[0007] According to some embodiments of the present application, the driving component includes an elastic component, a first end of the elastic component is used to connect to the device to be installed, a second end of the elastic component is connected to the resistance component, and the elastic component drives the resistance component to move by elastic force.

[0008] According to some embodiments of the present application, the sliding assembly includes a slider and a slide rail, the slider is arranged on the interference component, the slide rail is arranged on the edge of the device to be installed, the slider is embedded in the slide rail, and slides along the slide rail.

[0009] According to some embodiments of the present application, the limiting assembly further includes a first positioning assembly, and the first positioning assembly is used to position the interference component at an edge of the device to be installed to lock the position of the interference component.

[0010] According to some embodiments of the present application, at least four groups of the limiting components are provided, some of the interference components are used to move on both sides of the length direction of the equipment to be installed to increase the length of the equipment to be installed, and some of the interference components are used to move on both sides of the width direction of the equipment to be installed to increase the width of the equipment to be installed.

[0011] According to some embodiments of the present application, the size adjustment mechanism further includes a locking assembly, which includes a locking part and a rotating shaft. The locking part is rotatably connected to the device to be installed via the rotating shaft and reaches the edge of the opening of the supporting device through rotation.

[0012] According to some embodiments of the present application, the locking assembly further includes a second positioning assembly, and the second positioning assembly is used to position the locking component at an edge of an opening of the supporting device so as to connect the device to be installed to the supporting device.

[0013] According to the embedded all-in-one machine of the second aspect embodiment of the present application, the embedded all-in-one machine includes the above-mentioned size adjustment mechanism.

[0014] The embedded all-in-one machine according to the embodiment of the present application has at least the following beneficial effects: the size adjustment mechanism of the first aspect of the present application is adopted, the size adjustment mechanism includes a limit assembly and a sliding assembly, the interference component of the limit assembly increases the size of the device to be installed under the driving action of the driving component, the size of the device to be installed combined with the limit assembly can adapt to the openings of different sizes of the supporting device, ensure that the device to be installed is positioned on the supporting device, improve versatility, and there is no need to customize the device to be installed according to different opening sizes; the sliding assembly limits the movement direction of the interference component, maintains the connection between the interference component and the device to be installed, and prevents the interference component from falling off the component to be installed.

[0015] According to some embodiments of the present application, the embedded all-in-one machine also includes a frame, and the difference between the length of the frame and the spacing between the interference components on both sides of the length direction of the embedded all-in-one machine is 30 mm; the difference between the width of the frame and the spacing between the interference components on both sides of the width direction of the embedded all-in-one machine is 30 mm.

[0016] According to some embodiments of the present application, the difference between the length of the frame and the length of the opening of the support device is at least 4 mm; the difference between the width of the frame and the width of the opening of the support device is at least 4 mm.

[0017] Additional aspects and advantages of the present application will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The drawings are used to provide a further understanding of the technical solutions disclosed in the present application, and constitute a part of the specification. Together with the embodiments disclosed in the present application, they are used to explain the technical solutions of the present disclosure, and do not constitute a limitation to the technical solutions disclosed in the present application.

[0019] Figure 1 Schematic structural diagram of the size adjustment mechanism of the embodiment of the present application applied to an embedded all-in-one machine;

[0020] Figure 2 Top view of the size adjustment mechanism of the embodiment of the present application applied to an embedded all-in-one machine;

[0021] Figure 3 Schematic structural diagram of the size adjustment mechanism of the embodiment of the present application;

[0022] Figure 4 For the size adjustment mechanism of the embodiment of the present application Figure 3 Partial enlarged view of part A in;

[0023] Figure 5 Schematic structural diagram of the limit component in the size adjustment mechanism of the embodiment of the present application;

[0024] Figure 6 Schematic structural diagram of the locking component in the size adjustment mechanism of the embodiment of the present application.

[0025] Reference numerals:

[0026] Limit component 100; Contact component 101; Elastic component 102; Slide block 103; Slide rail 104; Support device 105;

[0027] First fastener 201;

[0028] Locking component 300; Locking part 301; Rotating shaft 302;

[0029] Second fastener 401;

[0030] Frame 501; First length 502; Second length 503; Third length 504; Fourth length 505. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0031] Embodiments of the present application will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where like or similar reference numerals denote like or similar elements or elements having like or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present application, and should not be construed as a limitation of the present application.

[0032] In the description of the present application, it should be understood that with respect to the orientation description, such as up, down, front, back, left, right, etc., the orientation or positional relationship indicated is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present application.

[0033] In the description of the present application, the meaning of "several" is more than one, the meaning of "multiple" is more than two, and understandings such as "greater than", "less than", "exceeding", etc. do not include the recited number, and understandings such as "above", "below", "within", etc. include the recited number. If there is a description of "first" and "second", it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.

[0034] In the description of the present application, unless otherwise clearly defined, terms such as "set", "installed", "connected", etc. should be understood in a broad sense, and those skilled in the art can reasonably determine the specific meanings of the above terms in the present application in combination with the specific content of the technical solution.

[0035] In the description of the present application, descriptions with reference to terms such as "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic descriptions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0036] As Figure 1 and Figure 2 shown, an embodiment of the present application provides a size adjustment mechanism. The size adjustment mechanism includes a limit assembly 100 and a sliding assembly. Since the opening sizes of different support devices 105 for placing the device to be installed are not uniform, the limit assembly 100 is used to increase the size of the device to be installed, so that the overall size formed by the device to be installed and the limit assembly 100 adapts to the opening size of the support device 105, ensuring that the size of the device to be installed matches the opening of the support device 105, and there is no need to customize the size of the device to be installed.

[0037] Furthermore, the limiting component 100 is connected to the device to be installed via a sliding component, and the sliding component limits the movement direction of the limiting component 100 to prevent the interference component 101 from falling off the component to be installed.

[0038] The device to be installed includes a device body and a frame 501. The frame 501 is located at the edge of the device body and extends outward from the edge of the device body for a certain distance. When the device to be installed is placed in the opening of the support device 105, the frame 501 overlaps the edge of the opening of the support device 105 to prevent the device to be installed from falling into the inside of the support device 105.

[0039] Specifically, the thickness of the device body is greater than the thickness of the frame 501 , and when the frame 501 overlaps the opening edge of the supporting device 105 , the device body is embedded in the opening of the supporting device 105 .

[0040] like Figure 2 and Figure 3 As shown, in some examples, the limiting assembly 100 includes a resisting component 101 and a driving component, and the driving component is used to connect the resisting component 101 and the device to be installed. The first end of the driving component is connected to the edge of the device body, and the second end of the driving component is connected to the resisting component 101.

[0041] Furthermore, the driving component provides a driving force for the interference component 101 to move away from the edge of the device body, thereby driving the interference component 101 to move outward. During the movement of the interference component 101, the size of the whole formed by the device to be installed and the limit assembly 100 changes, and the interference component 101 gradually approaches and contacts the inner wall of the opening of the support device 105, thereby matching the opening size of the support device 105.

[0042] like Figure 3 As shown, the device to be installed is connected to the interference component 101 through a driving component on the one hand, and through a sliding component on the other hand. The sliding component is located between the interference component 101 and the frame 501, so that the interference component 101 and the frame 501 form a sliding connection, thereby limiting the moving direction of the interference component 101. In addition, the sliding component can also keep the interference component 101 and the frame 501 in contact with each other, preventing the interference component 101 from being separated from the frame 501.

[0043] like Figure 4 As shown, in some examples, the sliding assembly includes a slider 103 and a slide rail 104, wherein the slider 103 is disposed on a side of the abutting component 101 facing the frame 501. The slide rail 104 is disposed on the frame 501, and is formed into a groove-shaped structure, and the opening direction of the slide rail 104 faces the abutting component 101.

[0044] The slider 103 is embedded in the slide rail 104 and forms a sliding connection with the inner wall of the slide rail 104 . The slider 103 slides along the slide rail 104 , causing the abutment component 101 to also move along the slide rail 104 , thereby limiting the moving direction of the abutment component 101 .

[0045] Meanwhile, the slide rail 104 is formed into a groove-shaped structure with a small opening size and a large inner cavity size, and the shape of the slider 103 matches the slide rail 104 , thereby preventing the slider 103 from detaching from the slide rail 104 , that is, preventing the interference component 101 from detaching from the frame 501 .

[0046] like Figure 5 As shown, in some examples, the driving component includes an elastic component 102, a first end of the elastic component 102 is connected to the edge of the device body, and a second end of the elastic component 102 is connected to the interference component 101. It can be understood that when the elastic component 102 is compressed, the overall size of the device to be installed and the interference component 101 is reduced; when the elastic component 102 is extended, the overall size of the device to be installed and the interference component 101 is increased.

[0047] Furthermore, the elastic component 102 is in the maximum compression state at the initial moment, ensuring that the device to be installed and the interference component 101 have a relatively small size as a whole, so that the device to be installed can be easily inserted into the opening of the support device 105. After the device body of the device to be installed is partially inserted into the opening, the elastic component 102 is released, and the elastic component 102 drives the interference component 101 to move through the elastic force and to contact the inner wall of the opening of the support device 105. Since the elastic component 102 continuously applies elastic force to the interference component 101, the interference component 101 will also apply a certain pre-tightening force to the inner wall of the opening when it contacts the inner wall of the opening, so as to ensure that the position of the device to be installed on the support device 105 is stable.

[0048] Specifically, the elastic component 102 includes a spring. The edge of the device body and the abutment component 101 are both provided with corresponding mounting holes, and both ends of the spring are respectively embedded in the mounting holes to ensure the connection between the device to be installed, the support device 105 and the elastic component 102.

[0049] like Figure 5 As shown, in some examples, the limiting assembly 100 further includes a first positioning assembly, and when the abutting component 101 is in the initial position closest to the edge of the device body, the elastic component 102 is in the maximum compression state. At this time, the first positioning assembly positions the abutting component 101 on the frame 501 of the device to be installed, preventing the abutting component 101 from moving due to the elastic force of the elastic component 102, so as to facilitate the installation of the device to be installed in the opening of the supporting device 105.

[0050] Further, the first positioning component includes a first fastener 201, a first connection hole, and a second connection hole. The first connection hole penetrates through the device to be installed, and the second connection hole is provided on the frame 501 of the support device 105. The first fastener 201 passes through the first mounting hole and is fastened to the position of the second mounting hole, thereby locking the abutting component 101 in the initial position.

[0051] As Figure 2 shown, in some examples, at least four sets of limit components 100 are provided, that is, there are at least four abutting components 101. A part of the abutting components 101 are on both sides of the length direction of the device body and can move away from the device body, thereby increasing the length dimension of the device body.

[0052] Further, another part of the abutting components 101 are on both sides of the width direction of the device body and can move away from the device body, thereby increasing the width dimension of the device body.

[0053] After adjusting the length dimension and the width dimension, the dimension of the device body matches the opening dimension of the support device 105, so that the device to be installed is fitted into the opening of the support device 105.

[0054] As Figure 6 shown, in some examples, the dimension adjustment mechanism further includes a locking component 300. The locking component 300 includes a locking part 301 and a rotating shaft 302. The rotating shaft 302 passes through the fitting hole of the locking part 301 and is fixedly connected to the device body. It can be understood that the locking part 301 can rotate around the rotating shaft 302.

[0055] Further, the fitting hole of the locking part 301 is located at a position near the end of the locking part 301. In the initial state, the locking part 301 is within the range of the device body by rotation; when the device body is embedded in the opening of the support device 105, the locking part 301 reaches the edge of the opening of the support device 105 by rotation and is connected to the support device 105. Specifically, the locking part 301 is formed as a strip structure, and the rotating shaft 302 includes a fastener.

[0056] As Figure 6 shown, in some examples, the locking component 300 further includes a second positioning component. When the locking part 301 reaches the edge of the opening of the support device 105, the second positioning component connects and positions the locking part 301 on the support device 105, further ensuring the stable connection between the device to be installed and the support device 105.

[0057] Among them, the second positioning component includes a second fastener 401, a third connection hole, and a fourth connection hole. The third connection hole penetrates through the locking member 301, and the fourth connection hole is provided at the opening edge of the support device 105. The second fastener 401 passes through the third mounting hole and is fastened to the position of the fourth mounting hole, thereby connecting the locking member 301 to the support device 105.

[0058] As Figure 1 and Figure 2 shown, an embodiment of the present application provides an embedded all-in-one machine, which includes a device body and a frame 501. Among them, the planar shape of the device body is generally rectangular, and there are four right-angled sides. It can be understood that the opening of the support device 105 also forms a rectangle.

[0059] Furthermore, the embedded all-in-one machine includes the above-mentioned size adjustment mechanism. Four limit components 100 are provided, which are respectively located at the four right-angled sides of the device body. At the same time, each abutting member 101 is formed in a strip structure and is parallel to the corresponding right-angled side of the device body. Each limit component 100 is used to increase the length and width dimensions of the embedded all-in-one machine.

[0060] As Figure 1 and Figure 2 shown, in some examples, the length of the frame 501 is the first length 502; the width of the frame 501 is the third length 504. When each abutting member 101 is in the initial position closest to the edge of the device body, the distance between the abutting members 101 on both sides in the length direction of the device body is the second length 503; the distance between the abutting members 101 on both sides in the width direction of the device body is the fourth length 505.

[0061] Specifically, the difference between the first length 502 and the second length 503 is about 30 mm, and the difference between the third length 504 and the fourth length 505 is about 30 mm, ensuring that each abutting member 101 has enough moving stroke to adapt to the openings of various sizes of the support device 105.

[0062] As Figure 1 and Figure 2 shown, in some examples, the difference between the first length 502 and the length of the opening of the support device 105 is at least 4 mm, and the difference between the third length 504 and the width of the opening of the support device 105 is at least 4 mm, preventing the area where the frame 501 overlaps the opening edge of the support device 105 from being too small and avoiding the embedded all-in-one machine from falling into the support device 105. In addition, it also avoids the elastic member 102 providing elastic force for the abutting member 101 with a large length. When the elastic member 102 provides elastic force with a large length, the elastic force will be small, resulting in insufficient pre-tightening force of the abutting member 101, which is not conducive to the positioning of the embedded all-in-one machine on the support device 105.

[0063] In the actual implementation process, each of the abutting components 101 and each of the locking components 301 are in the initial position, so that the device body of the embedded all-in-one machine can be inserted into the opening of the support device 105. After the device body of the embedded all-in-one machine is inserted into the opening of the support device 105, the locking of each of the abutting components 101 by each of the first fasteners 201 is released, and each of the abutting components 101 abuts against the inner wall of the opening of the support device 105 under the driving action of each of the elastic components 102. At the same time, each of the locking components 301 is rotated, and the locking components 301 are connected to the support device 105 through each of the second fasteners 401, and the installation process of the embedded all-in-one machine is completed.

[0064] In some selectable embodiments, the function / operation mentioned in the block diagram may not occur in the order mentioned in the operation diagram. For example, depending on the function / operation involved, the two boxes shown in succession can actually be executed substantially simultaneously or the boxes can sometimes be executed in reverse order. In addition, the embodiment presented and described in the flow chart of the application is provided by way of example, for the purpose of providing a more comprehensive understanding of technology. The disclosed method is not limited to the operation and logic flow presented herein. Selectable embodiments are expected, wherein the order of various operations is changed and the sub-operation of a part described as a larger operation is performed independently.

[0065] The embodiments of the present application are described in detail above in conjunction with the accompanying drawings, but the present application is not limited to the above embodiments. Various changes can be made within the knowledge of ordinary technicians in the relevant technical field without departing from the purpose of the present application. In addition, the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

Claims

1. A size adjustment mechanism, characterized in that, include: A limiting assembly, the limiting assembly comprising a resisting component and a driving component, the driving component being used to connect the resisting component and the device to be installed, and the driving component driving the resisting component to move outward from the edge of the device to be installed to match the opening size of the supporting device; A sliding assembly is used to enable the abutting component to be slidably connected to the device to be installed, and the sliding assembly is located between the abutting component and the device to be installed.

2. The size adjusting mechanism according to claim 1, characterized in that The driving component comprises an elastic component, a first end of the elastic component is used to connect to the device to be installed, a second end of the elastic component is connected to the resisting component, and the elastic component drives the resisting component to move by elastic force.

3. The size adjusting mechanism according to claim 2, characterized in that, The sliding assembly comprises a sliding block and a sliding rail, wherein the sliding block is arranged on the abutting component, the sliding rail is arranged on the edge of the device to be installed, the sliding block is embedded in the sliding rail, and slides along the sliding rail.

4. The size adjustment mechanism according to claim 1 or 2, characterized in that, The limiting assembly further includes a first positioning assembly, and the first positioning assembly is used to position the interference component at an edge of the device to be installed to lock the position of the interference component.

5. The size adjustment mechanism according to claim 1, characterized in that, At least four groups of the limiting components are arranged, and some of the interference components are used to move on both sides of the length direction of the equipment to be installed to increase the length of the equipment to be installed, and some of the interference components are used to move on both sides of the width direction of the equipment to be installed to increase the width of the equipment to be installed.

6. The size adjusting mechanism according to claim 1, wherein The size adjustment mechanism further comprises a locking assembly, which comprises a locking part and a rotating shaft. The locking part is rotatably connected to the device to be installed via the rotating shaft and reaches the edge of the opening of the supporting device through rotation.

7. The size adjusting mechanism according to claim 6, wherein The locking assembly further comprises a second positioning assembly, and the second positioning assembly is used to position the locking component at the edge of the opening of the supporting device so as to connect the device to be installed with the supporting device.

8. An all-in-one embedded machine, characterized in that, Comprising a size adjustment mechanism as claimed in any one of claims 1 to 7.

9. The embedded all-in-one machine according to claim 8, wherein The embedded all-in-one machine also includes a frame, the difference between the length of the frame and the spacing between the interference components on both sides of the length direction of the embedded all-in-one machine is 30 mm; the difference between the width of the frame and the spacing between the interference components on both sides of the width direction of the embedded all-in-one machine is 30 mm.

10. The embedded all-in-one machine according to claim 9, characterized in that, The difference between the length of the frame and the length of the opening of the supporting device is at least 4 mm; the difference between the width of the frame and the width of the opening of the supporting device is at least 4 mm.