Stacked column assembly assisted assembly device

CN224756103UActive Publication Date: 2026-09-15SHANGHAI LEADGO TECH
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Patent Information

Application Number
CN202522280714.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-28
Publication Date
2026-09-15
Estimated Expiration
2035-10-28

AI Technical Summary

Technical Problem

传统的装配方式往往需要人工手动将堆叠柱组件的各部分拼接对齐,然后再进行粘接组合装配,存在精度低、通用性差等问题

Benefits of technology

[0017]This utility model provides an auxiliary assembly device for stacked column assemblies. It comprises a first support component detachably connected to a first connecting portion of the stacked column assembly, a second support component detachably connected to a second connecting portion of the stacked column assembly, and a third support component detachably connected to a third connecting portion of the stacked column assembly, all mounted on a mounting base. The first support component, the second support component, and the third support component are respectively positioned opposite each other in a first direction, with the center lines of the first, second, and third connecting portions collinear. A pushing component is also provided, configured to allow one of the first and second support components and the third support component to move along the first direction. This allows for efficient assembly of the stacked column assembly. First, the first, second, and third connecting parts of the stacked column assembly are installed on the first, second, and third support components, respectively, ensuring the three connecting parts are supported by the three support components. Simultaneously, the first and second stacked column bodies are placed between adjacent connecting parts. A pushing component drives the first and third support components to move along a first direction, or vice versa, ensuring that multiple connecting parts abut against multiple stacked column bodies, facilitating bonding and assembly. After bonding and assembling the stacked column assembly, the auxiliary assembly device can be adjusted (e.g., resetting support components, removing the bonded stacked components) to facilitate subsequent bonding and assembly. During this bonding and assembly process, manual alignment and splicing of the components is eliminated, improving bonding and assembly accuracy and quality. Furthermore, the assembly process eliminates the need for repeated manual adjustments to the components, increasing assembly efficiency. In addition, since the first or second support component can move in the first direction and the third support component can also move in the first direction, the distance between two adjacent support components is adjustable, thereby enabling the stacked column assembly auxiliary assembly device to be applicable to stacked column assemblies of different models (lengths), thus improving the applicability of the stacked column assembly auxiliary assembly device.

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Abstract

The utility model discloses a kind of stacked column assembly auxiliary assembly devices, and it is related to stacked column assembly technical field.It includes installation matrix;First support component;First connecting portion is detachably installed in first support component;Second support component;Second connecting portion is detachably installed in second support component;Third support component;Third connecting portion is detachably installed in second support component;First support component, second support component respectively with third support component is opposite setting, first connecting portion center line, second connecting portion center line and second connecting portion center line are collinear setting;First support component, second support component one of two and third support component slidingly set in installation matrix, another is fixedly installed in installation matrix;Pushing assembly can make first support component, second support component one of two and third support component move along first direction.The stacked column assembly auxiliary assembly device is used to improve stacked column assembly assembly precision, improve assembly efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of stacked column assembly technology, and in particular to an auxiliary assembly device for stacked column assemblies. Background Technology

[0002] In fields such as machinery and aerospace, it is often necessary to bond and assemble cylindrical composite materials (stacked columns). Traditional assembly methods often require manual alignment of the various parts of the stacked column assembly before bonding and assembling, which suffers from low precision and poor versatility.

[0003] Therefore, there is an urgent need for an auxiliary assembly device for stacked column assemblies to solve the above-mentioned technical problems. Utility Model Content

[0004] The purpose of this invention is to provide an auxiliary assembly device for stacked column assemblies, which improves the assembly accuracy and efficiency of stacked column assemblies.

[0005] To achieve this objective, the present invention adopts the following technical solution:

[0006] This utility model provides an auxiliary assembly device for stacked column assemblies, which is used to assemble stacked column assemblies. The stacked column assembly includes a first connecting portion, a second connecting portion, a third connecting portion, a first stacked column body, and a second stacked column body. The auxiliary assembly device includes: a mounting base for providing an installation position; a first support component mounted on the mounting base; the first connecting portion being detachably mounted on the first support component; a second support component mounted on the mounting base and spaced apart from the first support component in a first direction; the second connecting portion being detachably mounted on the second support component; the first direction being horizontal; and a third support component mounted on the mounting base, wherein the third support component is positioned in the first direction. The component is located between the first support component and the second support component; the third connecting part can be detachably installed on the third support component; in the first direction, the first support component, the second support component and the third support component are respectively arranged opposite to each other, and the axial center lines of the first connecting part, the axial center lines of the second connecting part and the axial center lines of the third connecting part are collinear; one of the third support component and the first support component and the second support component is slidably disposed on the mounting base along the first direction, and the other is fixedly installed on the mounting base; the pushing component can move along the first direction, so that one of the first support component and the second support component and the third support component can move along the first direction.

[0007] In some embodiments, the first stacking column body is disposed between the first support component and the third support component; the second stacking column body is disposed between the third support component and the second support component; the first support component is slidably disposed on the mounting base along a first direction, and the second support component is fixedly mounted on the mounting base; the pushing component can move the first support component toward the direction of the second support component so that both ends of the first stacking column body abut against the first connecting portion and the third connecting portion respectively, and further move the third support component toward the direction of the second support component so that both ends of the second stacking column body abut against the third connecting portion and the second connecting portion respectively.

[0008] In some embodiments, the first support component includes a first sliding seat and a first support plate; the first sliding seat is slidably disposed on the mounting base; the first support plate is fixedly disposed on the first sliding seat; and the first connecting portion is detachably connected to the first sliding seat.

[0009] In some embodiments, the second support component includes a mounting base and a second support plate; the mounting base is mounted on the mounting base; the second support plate is fixedly disposed on the mounting base; and the second connecting portion is detachably connected to the mounting base.

[0010] In some embodiments, the third support component includes a second sliding seat; the second sliding seat is slidably disposed on the mounting base; and the third connecting portion is detachably connected to the second sliding seat.

[0011] In some embodiments, the pushing assembly includes: a pushing plate disposed on the side of the first connecting portion opposite to the second connecting portion; a guide rod extending along the first direction and passing through the first support assembly, the pushing plate, and the second support assembly; the pushing plate and the guide rod being slidably connected; a driving screw extending along the first direction and passing through the first support assembly, the pushing plate, and the second support assembly; the driving screw being rotatably connected to the first support assembly and the pushing plate, and threadedly connected to the second support assembly; and a pushing member disposed on the driving screw and located on the side of the pushing plate opposite to the first connecting portion; the driving screw rotating allows it to move along the first direction; the driving screw drives the pushing member to move towards the second connecting portion, enabling the pushing member to push the pushing plate towards the second connecting portion, thereby causing the pushing plate to push the first connecting portion and simultaneously drive the first support assembly towards the second connecting portion.

[0012] In some embodiments, the axis of the drive screw is collinear with the center line of the first connecting portion, the center line of the second connecting portion, and the center line of the second connecting portion.

[0013] In some embodiments, the number of guide rods is multiple; the multiple guide rods are arranged in a centrally symmetrical manner around the drive screw with the axis of the drive screw as the center of symmetry.

[0014] In some embodiments, a pad is further provided between the push plate and the push member in the first direction; the drive screw passes through the pad along the first direction and is rotatably connected to the pad.

[0015] In some embodiments, the first connecting portion facing the third connecting portion, the third connecting portion facing the first connecting portion, the third connecting portion facing the second connecting portion, and the second connecting portion facing the third connecting portion are all provided with slots; the center lines of the four slots are collinear; and the slots are adapted to the ends of the first stacking column body and the second stacking column body.

[0016] The beneficial effects of this utility model are:

[0017] This utility model provides an auxiliary assembly device for stacked column assemblies. It comprises a first support component detachably connected to a first connecting portion of the stacked column assembly, a second support component detachably connected to a second connecting portion of the stacked column assembly, and a third support component detachably connected to a third connecting portion of the stacked column assembly, all mounted on a mounting base. The first support component, the second support component, and the third support component are respectively positioned opposite each other in a first direction, with the center lines of the first, second, and third connecting portions collinear. A pushing component is also provided, configured to allow one of the first and second support components and the third support component to move along the first direction. This allows for efficient assembly of the stacked column assembly. First, the first, second, and third connecting parts of the stacked column assembly are installed on the first, second, and third support components, respectively, ensuring the three connecting parts are supported by the three support components. Simultaneously, the first and second stacked column bodies are placed between adjacent connecting parts. A pushing component drives the first and third support components to move along a first direction, or vice versa, ensuring that multiple connecting parts abut against multiple stacked column bodies, facilitating bonding and assembly. After bonding and assembling the stacked column assembly, the auxiliary assembly device can be adjusted (e.g., resetting support components, removing the bonded stacked components) to facilitate subsequent bonding and assembly. During this bonding and assembly process, manual alignment and splicing of the components is eliminated, improving bonding and assembly accuracy and quality. Furthermore, the assembly process eliminates the need for repeated manual adjustments to the components, increasing assembly efficiency. In addition, since the first or second support component can move in the first direction and the third support component can also move in the first direction, the distance between two adjacent support components is adjustable, thereby enabling the stacked column assembly auxiliary assembly device to be applicable to stacked column assemblies of different models (lengths), thus improving the applicability of the stacked column assembly auxiliary assembly device. Attached Figure Description

[0018] Figure 1 This is a structural diagram of an auxiliary assembly device for a stacked column assembly provided in a specific embodiment of this utility model;

[0019] Figure 2 yes Figure 1 An enlarged structural diagram of region A in the structure shown;

[0020] Figure 3 yes Figure 1 An enlarged structural diagram of region B in the structure shown.

[0021] In the picture:

[0022] 1. Mounting base; 2. First support assembly; 21. First sliding seat; 22. First support plate; 3. Second support assembly; 31. Mounting seat; 32. Second support plate; 4. Third support assembly; 41. Second sliding seat; 5. Pushing assembly; 51. Pushing plate; 52. Guide rod; 53. Drive screw; 54. Pushing component; 55. Pad; 101. First connecting part; 102. Second connecting part; 1021. Slot; 103. Third connecting part;

[0023] X1, first direction. Detailed Implementation

[0024] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, not the entire structure.

[0025] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0026] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0027] In the description of this embodiment, the terms "upper," "lower," "left," and "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.

[0028] like Figure 1 As shown, this embodiment provides an auxiliary assembly device for stacked column assemblies, used for assembling stacked column assemblies. The stacked column assembly includes a first connecting part 101, a second connecting part 102, a third connecting part 103, a first stacked column body (not shown in the figure), and a second stacked column body (not shown in the figure). The auxiliary assembly device for stacked column assemblies includes: a mounting base 1, a first support component 2, a second support component 3, a third support component 4, and a pushing component 5.

[0029] The aforementioned mounting base 1 is used to provide an installation location. This mounting base 1 may be, for example, a rectangular mounting plate or a mounting bracket with a cubic frame structure.

[0030] The first support component 2 is mounted on the mounting base 1. The first connecting portion 101 is detachably mounted on the first support component 2. The detachable connection between the first connecting portion 101 and the first support component 2 is achieved, for example, by bolts or snap-fit. The second support component 3 is also mounted on the mounting base 1 and is spaced apart from the first support component 2 in the first direction X1. The second connecting portion 102 is detachably mounted on the second support component 3. The first direction X1 is horizontal. The detachable connection between the second connecting portion 102 and the second support component 3 is achieved, for example, by bolts or snap-fit. The third support component 4 is also mounted on the mounting base 1 and is located between the first support component 2 and the second support component 3 in the first direction X1. The third connecting portion 103 is detachably mounted on the second support component 3. The detachable connection between the third connecting portion 103 and the third support component 4 is achieved, for example, by bolts or snap-fit. In the first direction X1, the first support component 2 and the second support component 3 are respectively positioned opposite the third support component 4. In addition, the axial center line of the first connecting part 101, the axial center line of the second connecting part 102, and the axial center line of the second connecting part 102 are collinear.

[0031] The third support component 4 and one of the first support components 2 and the second support component 3 are slidably disposed on the mounting base 1 along the first direction X1, while the other of the first support component 2 and the second support component 3 is fixedly installed on the mounting base 1. In other words, when the first support component 2 and the third support component 4 are slidably disposed on the mounting base 1 along the first direction X1, the second support component 3 is fixedly installed on the mounting base 1; when the second support component 3 and the third support component 4 are slidably disposed on the mounting base 1 along the first direction X1, the first support component 2 is fixedly installed on the mounting base 1.

[0032] The aforementioned pushing component 5 extends along the first direction X1. This pushing component 5 is movable along the first direction X1, enabling one of the first support component 2, the second support component 3, and the third support component 4 to move along the first direction X1. That is, when the first support component 2 and the third support component 4 are slidably disposed on the mounting base 1 along the first direction X1, and the second support component 3 is fixedly installed on the mounting base 1, the pushing component 5 enables the first support component 2 and the third support component 4 to move along the first direction X1; when the first support component 2 and the third support component 4 are slidably disposed on the mounting base 1 along the first direction X1, and the second support component 3 is fixedly installed on the mounting base 1, the pushing component 5 enables the second support component 3 and the third support component 4 to move along the first direction X1.

[0033] Therefore, the stacking column assembly auxiliary assembly device provided in this embodiment is provided on the mounting base 1 with a first support component 2 that can be detachably connected to the first connecting part 101 of the stacking column assembly, a second support component 3 that can be detachably connected to the second connecting part 102 of the stacking column assembly, and a third support component 4 that can be detachably connected to the third connecting part 103 of the stacking column assembly. The first support component 2, the second support component 3 and the third support component 4 are respectively arranged facing each other in the first direction X1, and the center lines of the first connecting part 101, the second connecting part 102 and the third supporting component 4 are collinear. A pushing component 5 is provided, which is configured to allow one of the first support component 2, the second support component 3 and the third support component 4 to move along the first direction X1. This allows for convenient assembly of the stacked column assembly. First, the first connecting portion 101, the second connecting portion 102, and the third connecting portion 103 of the stacked column assembly can be installed on the first support component 2, the second support component 3, and the third support component 4, respectively, so that the three connecting portions are supported by the three support components. Simultaneously, the first and second stacked column bodies of the stacked column assembly are placed between adjacent connecting portions. The pushing component 5 drives the first support component 2 and the third support component 4 to move along the first direction X1, or drives the second support component 3 and the third support component 4 to move along the first direction X1. This ensures that multiple connecting portions abut against multiple stacked column bodies, facilitating adhesive assembly. After adhesive assembly of the stacked column assembly is completed, the auxiliary assembly device can be adjusted (e.g., resetting each support component, removing the assembled stacked components, etc.) to facilitate the next adhesive assembly of the stacked column assembly. In the aforementioned bonding and assembly process of the stacked column assembly, there is no need for manual alignment and splicing of the components, improving the bonding and assembly accuracy and quality. Furthermore, the assembly process eliminates the need for repeated manual adjustments to the positions of the components, increasing assembly efficiency. Additionally, since the first support component 2 or the second support component 3 can move in the first direction X1, and the third support component 4 can also move in the first direction X1, the distance between adjacent support components is adjustable. This allows the stacked column assembly auxiliary assembly device to be applied to stacked column assemblies of different models (lengths), improving its applicability.

[0034] In some embodiments, the first stacking column body of the aforementioned stacking column assembly is disposed between the first support component 2 and the third support component 4, and the second stacking column body of the aforementioned stacking column assembly is disposed between the third support component 4 and the second support component 3. The first support component 2 is slidably disposed on the mounting base 1 along a first direction X1. The second support component 3 is fixedly mounted on the mounting base 1.

[0035] For example, such as Figure 1 As shown, the first support assembly 2 includes a first sliding seat 21 and a first support plate 22. The first sliding seat 21 is slidably disposed on the mounting base 1. The first support plate 22 is fixedly disposed on the first sliding seat 21. The first connecting part 101 is detachably connected to the first sliding seat 21. Similarly, the third support assembly 4 includes a second sliding seat 41. The second sliding seat 41 is slidably disposed on the mounting base 1. The third connecting part 103 is detachably connected to the second sliding seat 41. The sliding connection between the first sliding seat 21, the second sliding seat 41, and the mounting base 1 can be achieved, for example, by providing a slide rail or groove at the bottom of the first sliding seat 21 (and the second sliding seat 41), and providing a corresponding slide groove or slide rail at a corresponding position on the top of the mounting base 1. Through the cooperation of the slide groove and slide rail, the sliding connection between the first sliding seat 21, the second sliding seat 41, and the mounting base 1 can be achieved.

[0036] The second support assembly 3 includes a mounting base 31 and a second support plate 32. The mounting base 31 is mounted on the mounting base 1. The second support plate 32 is fixedly mounted on the mounting base 31. The second connecting portion 102 is detachably connected to the mounting base 31.

[0037] The pushing component 5 can move the first support component 2 toward the second support component 3 so that the two ends of the first stacked column body abut against the first connecting part 101 and the third connecting part 103 respectively, and further move the third support component 4 toward the second support component 3 so that the two ends of the second stacked column body abut against the third connecting part 103 and the second connecting part 102.

[0038] It is easy to understand that when the second support component 3 is slidably disposed on the mounting base 1 and the first support component 2 is fixedly installed on the mounting base 1, the driving action of the pushing component 5 is opposite. That is, the pushing component 5 can cause the second support component 3 to move toward the first support component 2 so that the two ends of the second stacking column body abut against the second connecting part 102 and the third connecting part 103 respectively, and further cause the third support component 4 to move toward the first support component 2 so that the two ends of the first stacking column body abut against the third connecting part 103 and the first connecting part 101.

[0039] In some embodiments, combined with Figure 1 , Figure 2 As shown, the aforementioned pushing assembly 5 includes: a pushing plate 51, a guide rod 52, a drive screw 53, and a pushing member 54.

[0040] Specifically, such as Figure 1As shown, the push plate 51 is disposed on the side of the first connecting portion 101 opposite to the second connecting portion 102. The guide rod 52 extends along the first direction X1 and passes through the first support assembly 2, the push plate 51, and the second support assembly 3. The push plate 51 is slidably connected to the guide rod 52. The drive screw 53 extends along the first direction X1 and passes through the first support assembly 2, the push plate 51, and the second support assembly 3. The drive screw 53 is rotatably connected to the first support assembly 2 and the push plate 51, and is threadedly connected to the second support assembly 3. For example, through holes are provided on both the first support assembly 2 and the push plate 51, and the inner diameter of the through hole is larger than the outer diameter of the drive screw 53. The inner wall of the through hole is smooth and has no internal thread, so that when the drive screw rotates, it will not have a threaded engagement with the first support assembly 2 and the push plate 51. Since the drive screw 53 is threadedly connected to the second support component 3, and the second support component 3 is fixedly installed on the mounting base 1, when the drive screw 53 is rotated, the drive screw 53 will move along the first direction X1 under the action of the threaded engagement.

[0041] like Figure 2 As shown, the aforementioned pusher 54 is disposed on the drive screw 53 and located on the side of the pusher plate 51 opposite to the first connecting portion 101. The pusher 54 is detachably connected to the drive screw 53, for example, by bolts. There is no threaded engagement between the pusher 54 and the drive screw 53. When the drive screw 53 moves as a whole along the first direction X1, it will drive the pusher 54 to move synchronously.

[0042] The aforementioned drive screw 53 rotates to move itself along the first direction X1. This drive screw 53 drives the pusher 54 to move towards the second connecting portion 102, which in turn causes the pusher 54 to push the pusher plate 51 towards the second connecting portion 102. This, in turn, causes the pusher plate 51 to push the first connecting portion 101 and simultaneously move the first support assembly 2 towards the second connecting portion 102. In other words, the drive screw 53 and the pusher 54 move as a whole towards the second connecting portion 102. The pusher 54 pushes, or rather, the drive screw 53 pulls, the pusher plate 51 towards the second connecting portion 102. Then, the pusher plate 51 pushes against the first connecting portion 101, which is detachably connected to the first support assembly 2. Thus, under the pushing action of the pusher plate 51, the first connecting portion 101, together with the first support assembly 2, moves towards the second connecting portion 102.

[0043] In some embodiments, the axis of the drive screw 53 is collinear with the center line of the first connecting portion 101, the center line of the second connecting portion 102, and the center line of the second connecting portion 102. This arrangement further improves the accuracy of assembly of the various components of the stacked column assembly. It is easy to understand that with this arrangement, when it is necessary to disassemble an assembled stacked column assembly or install an unassembled stacked column assembly, the pusher 54 can be first removed from the drive screw 53, and then the drive screw 53 can be rotated to move the entire drive screw 53 along the first direction X1 until a gap appears between adjacent support components or the drive screw 53 disengages from the support screw. This allows for the disassembly or installation of the stacked column assembly.

[0044] Of course, the aforementioned drive screw 53 can also be configured in other ways. For example, two drive screws 53 can be provided, each positioned on the side of the support assembly. This way, the drive screws 53 will not obstruct adjacent support assemblies, and the stacked column assembly can still be disassembled or installed. Those skilled in the art can flexibly configure the position of the drive screw 53 according to actual usage requirements.

[0045] In some embodiments, such as Figure 1 As shown, there are multiple guide rods 52. These guide rods 52 are arranged symmetrically around the drive screw 53, with the axis of the drive screw 53 as the center of symmetry. This arrangement improves the guiding effect on the push plate 51.

[0046] In some embodiments, such as Figure 2 As shown, in the first direction X1, a pad 55 is also provided between the aforementioned push plate 51 and push member 54. The aforementioned drive screw 53 passes through the pad 55 along the first direction X1 and is rotatably connected to the pad 55. It is easy to understand that the rotatable connection between the two can be achieved by: a through hole is provided in the pad 55, and the inner diameter of the through hole is larger than the outer diameter of the drive screw 53, and the inner wall of the through hole is smooth and without internal threads. In this way, when the drive screw rotates, it will not produce threaded engagement with the pad 55, thus achieving a rotatable connection between the two. With this arrangement, direct contact between the push member 54 and the push plate 51 can be avoided, reducing wear between the push member 54 and the push plate 51. At the same time, the thrust applied by the push member 54 can be evenly distributed, avoiding stress concentration that could damage the push plate 51.

[0047] In some embodiments, combined with Figure 1 , Figure 3As shown, each of the following four sections has a slot 1021: the side of the first connecting portion 101 facing the third connecting portion 103, the side of the third connecting portion 103 facing the first connecting portion 101, the side of the third connecting portion 103 facing the second connecting portion 102, and the side of the second connecting portion 102 facing the third connecting portion 103. The center lines of the four slots 1021 are collinear. The slot 1021 is adapted to the ends of the first stacking column body and the second stacking column body. In other words, the shape and size of the slot 1021 are the same as the shape and size of the ends of the first stacking column body (and the second stacking column body), respectively. For example, the first stacked column body and the second stacked column body have the same structure, both of which are cylindrical. The slot 1021 is an annular groove structure and is adapted to the ends of the two stacked column bodies. The inner diameter and outer diameter of the slot 1021 are the same as the inner diameter and outer diameter of the ends of the two stacked column bodies, respectively, so that the ends of the two stacked column bodies can be inserted into the slot 1021.

[0048] With the above configuration, the first stacking column body and the second stacking column body can be more accurately engaged with the first connecting part 101, the second connecting part 102, and the third connecting part 103, which further improves the assembly accuracy between the components of the stacking column assembly and also improves the reliability of the adhesive assembly between the components of the stacking column assembly.

[0049] Of course, the first and second stacked column bodies can also be engaged with the connecting parts in other ways. For example, the ends of the first and second stacked column bodies that contact the connecting parts can be provided with insertion portions. The outer diameter of the insertion portion is equal to (or slightly smaller than) the inner diameter of the connecting parts, and an abutment protrusion is provided on the inner sidewall of the connecting portion. In this way, the insertion portions of the first and second stacked column bodies can be directly inserted into the interior of the connecting parts and will be limited by the abutment protrusion. Those skilled in the art can specifically configure the way the stacked column bodies are inserted into the connecting parts according to actual usage requirements, and will not be listed exhaustively here.

[0050] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. A stacked column assembly auxiliary assembly device for assembling a stacked column assembly; the stacked column assembly includes a first connecting part (101), a second connecting part (102), a third connecting part (103), a first stacked column body, and a second stacked column body; characterized in that, The auxiliary assembly device for the stacked column assembly includes: Mounting base (1) is used to provide an installation location; The first support component (2) is installed on the mounting base (1); the first connecting part (101) can be detachably installed on the first support component (2). The second support component (3) is installed on the mounting base (1) and is spaced apart from the first support component (2) in the first direction (X1); the second connecting part (102) can be detachably installed on the second support component (3); the first direction (X1) is the horizontal direction; The third support component (4) is installed on the mounting base (1). In the first direction (X1), the third support component (4) is located between the first support component (2) and the second support component (3). The third connecting part (103) can be detachably installed on the third support component (4). In the first direction (X1), the first support component (2) and the second support component (3) are respectively arranged opposite to the third support component (4). The axial center line of the first connecting part (101), the axial center line of the second connecting part (102) and the axial center line of the third connecting part (103) are collinear. One of the third support component (4), the first support component (2), and the second support component (3) is slidably disposed on the mounting base (1) along the first direction (X1), and the other is fixedly installed on the mounting base (1); The pushing component (5) is movable along the first direction (X1), causing one of the first support component (2), the second support component (3), and the third support component (4) to move along the first direction (X1).

2. The auxiliary assembly device for stacked column assemblies according to claim 1, characterized in that, The first stacked column body is disposed between the first support component (2) and the third support component (4); the second stacked column body is disposed between the third support component (4) and the second support component (3); The first support component (2) is slidably disposed on the mounting base (1) along the first direction (X1), and the second support component (3) is fixedly installed on the mounting base (1); the pushing component (5) enables the first support component (2) to move toward the second support component (3) so that the two ends of the first stacking column body abut against the first connecting part (101) and the third connecting part (103) respectively, and further enables the third support component (4) to move toward the second support component (3) so that the two ends of the second stacking column body abut against the third connecting part (103) and the second connecting part (102) respectively.

3. The auxiliary assembly device for stacked column assemblies according to claim 2, characterized in that, The first support assembly (2) includes a first sliding seat (21) and a first support plate (22); the first sliding seat (21) is slidably disposed on the mounting base (1); the first support plate (22) is fixedly disposed on the first sliding seat (21); the first connecting part (101) is detachably connected to the first sliding seat (21).

4. The auxiliary assembly device for stacked column assemblies according to claim 2, characterized in that, The second support component (3) includes a mounting base (31) and a second support plate (32); the mounting base (31) is mounted on the mounting base (1); the second support plate (32) is fixedly disposed on the mounting base (31); and the second connecting part (102) is detachably connected to the mounting base (31).

5. The auxiliary assembly device for stacked column assemblies according to claim 2, characterized in that, The third support component (4) includes a second sliding seat (41); the second sliding seat (41) is slidably disposed on the mounting base (1); the third connecting part (103) is detachably connected to the second sliding seat (41).

6. The auxiliary assembly device for stacked column assemblies according to claim 2, characterized in that, The pushing component (5) includes: A push plate (51) is disposed on the side of the first connecting part (101) opposite to the second connecting part (102); A guide rod (52) extends along the first direction (X1) and passes through the first support assembly (2), the push plate (51), and the second support assembly (3); the push plate (51) is slidably connected to the guide rod (52); A drive screw (53) extends along the first direction (X1) and passes through the first support assembly (2), the push plate (51), and the second support assembly (3); the drive screw (53) is rotatably connected to the first support assembly (2) and the push plate (51), and is threadedly connected to the second support assembly (3); A pusher (54) is disposed on the drive screw (53) and located on the side of the pusher plate (51) away from the first connecting part (101); The drive screw (53) rotates to move itself along the first direction (X1); the drive screw (53) drives the pusher (54) to move toward the second connecting part (102), which in turn causes the pusher (54) to push the pusher plate (51) to move toward the second connecting part (102), thereby causing the pusher plate (51) to push the first connecting part (101) and simultaneously drive the first support assembly (2) to move toward the second connecting part (102).

7. The auxiliary assembly device for stacked column assemblies according to claim 6, characterized in that, The axis of the drive screw (53) is collinear with the center line of the first connecting part (101), the center line of the second connecting part (102), and the center line of the second connecting part (102).

8. The auxiliary assembly device for stacked column assemblies according to claim 7, characterized in that, The number of guide rods (52) is multiple; the multiple guide rods (52) are arranged in a centrally symmetrical manner around the drive screw (53) with the axis of the drive screw (53) as the center of symmetry.

9. The auxiliary assembly device for stacked column assemblies according to claim 6, characterized in that, In the first direction (X1), a pad (55) is also provided between the push plate (51) and the push member (54); the drive screw (53) passes through the pad (55) along the first direction (X1) and is rotatably connected to the pad (55).

10. The auxiliary assembly device for stacked column assemblies according to any one of claims 1 to 9, characterized in that, The first connecting part (101) facing the third connecting part (103), the third connecting part (103) facing the first connecting part (101), the third connecting part (103) facing the second connecting part (102), and the second connecting part (102) facing the third connecting part (103) are all provided with slots (1021); the center lines of the four slots (1021) are arranged collinearly; the slots (1021) are adapted to the ends of the first stacking column body and the second stacking column body.