Modular positionable assembly lightweight building wall
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN ZHONGYISHI NEW MATERIAL TECHNOLOGY CO LTD
- Filing Date
- 2024-09-21
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]经检索,专利公告号为CN202320659864.9的专利公开了一种模块化可定位组装的轻质建筑墙体,虽然该装置在使用时通过左端定位卡装组件和右端定位卡装组件可以根达到左右定位卡紧安装效果,利用上端固定卡位组件和下端固定卡位组件能够起到上下定位卡紧拼装作用,但该装置在进行使用时,通过左端定位卡装组件和右端定位卡装组件进行拼接之后,为了确保稳定还是需要在第二安装孔内安装螺丝来确保连接的稳定性,螺丝等额外固定件的采购和使用会增加材料成本,且由于施工步骤的增加,相应的人工成本也会上升,螺丝的松动或损坏需要定期检查和维护,增加了后期维护的难度和成本
[0011] The elasticity of the spring allows the elastic top block to automatically adjust its position when the connecting post is inserted, ensuring alignment between the pin and the pin hole, thus achieving a smooth insertion process. This self-adaptive connection not only improves the accuracy of the connection but also enhances its stability. When the wall is subjected to external forces, the spring can absorb some of the impact force, acting as a buffer and shock absorber to protect the wall structure from damage and extend its service life. The elastic tightening effect of the spring ensures that the elastic top block remains firmly attached to the pin, preventing the pin from accidentally falling off during use, thereby guaranteeing the overall stability and safety of the wall.
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Figure CN224605790U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lightweight building wall technology, specifically to a modular, positionable, and assembleable lightweight building wall. Background Technology
[0002] Modular, positionable, and assembleable lightweight building walls refer to building walls that are quickly and accurately positioned and assembled on-site using pre-designed and manufactured modules, forming lightweight features.
[0003] A search revealed that patent CN202320659864.9 discloses a modular, positionable, and assembleable lightweight building wall. Although the device can achieve left and right positioning and clamping during use through the left and right positioning and clamping components, and the upper and lower fixing and clamping components can achieve upper and lower positioning and clamping during assembly, after the device is assembled through the left and right positioning and clamping components, screws still need to be installed in the second mounting hole to ensure the stability of the connection. The purchase and use of screws and other additional fasteners will increase material costs, and the corresponding labor costs will also increase due to the increased construction steps. Loosening or damage of screws requires regular inspection and maintenance, increasing the difficulty and cost of later maintenance. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides a modular, positionable, and assembleable lightweight building wall, solving the problems mentioned in the background art.
[0005] The solution of this utility model to the above-mentioned technical problems is as follows:
[0006] A modular, positionable, and assembleable lightweight building wall includes wall panels, which are assembled by connecting columns.
[0007] The wall panel has a first insertion slot on both sides, and a second insertion slot is formed below the first insertion slot on the wall panel. The first insertion slot and the second insertion slot are connected by a pin hole, and the bottom of the second insertion slot also has a pin hole. A pin shaft is inserted into the first insertion slot for limiting, and an elastic top block is movably installed in the second insertion slot. A pin block is provided on the connecting column, and a pin hole is formed through the pin block. The connecting column is fixed by limiting the pin shaft through the pin hole after being inserted into the second insertion slot through the pin block.
[0008] Based on the above technical solution, the present invention can be further improved as follows.
[0009] Furthermore, a spring is installed in the second insertion slot, and the elastic top block is elastically installed in the second insertion slot by the spring.
[0010] The beneficial effects of adopting the above-mentioned further solutions are:
[0011] The elasticity of the spring allows the elastic top block to automatically adjust its position when the connecting post is inserted, ensuring alignment between the pin and the pin hole, thus achieving a smooth insertion process. This self-adaptive connection not only improves the accuracy of the connection but also enhances its stability. When the wall is subjected to external forces, the spring can absorb some of the impact force, acting as a buffer and shock absorber to protect the wall structure from damage and extend its service life. The elastic tightening effect of the spring ensures that the elastic top block remains firmly attached to the pin, preventing the pin from accidentally falling off during use, thereby guaranteeing the overall stability and safety of the wall.
[0012] Furthermore, when the wall panel is separated from the connecting column, the pin is blocked by an elastic top block.
[0013] The beneficial effects of adopting the above-mentioned further solutions are:
[0014] When the wall panel and connecting column are separated, the resilient top block effectively blocks the pin, preventing it from accidentally inserting into the pin hole between the first and second insertion slots. This design avoids misoperation of the pin during transportation, storage, or when not installed, ensuring the safety and accuracy of the connection process. Before assembling the wall panel and connecting column, the pin is already in a stable and easily manageable state due to the blocking effect of the resilient top block. This allows construction workers to focus more on the accurate insertion and positioning of the connecting column without worrying about pin interference or misoperation. Once the connecting column is correctly inserted into the second insertion slot, and the resilient top block compresses the spring to align the pin hole, construction workers can quickly and smoothly insert the pin into the pin hole for fixation. This process, due to thorough prior preparation and the absence of additional pin position adjustments, significantly reduces installation time and labor costs.
[0015] Furthermore, a strong magnet is installed on the top surface of the wall panel located in the first insertion slot. When the pin is not in use, it is limited and installed in the first insertion slot by the strong magnet.
[0016] The beneficial effects of adopting the above-mentioned further solutions are:
[0017] The strong magnetic force firmly holds the pin within the first insertion slot, effectively preventing accidental detachment even during transport, storage, or when not in use. This design avoids safety hazards caused by the pin falling or being lost. During assembly or disassembly, if the pin is not properly secured, it could cause accidental injury to workers. The strong magnetic force reduces this risk, protecting workers' safety. When the pin is needed for connection, workers simply remove it from the magnetic force and insert it into the aligned pin hole. This design simplifies the process and improves efficiency. The strong magnetic force also ensures the pins are neatly arranged in the first insertion slot when not in use, preventing loss or disarray. This management method not only facilitates access for workers but also reduces losses due to mismanagement.
[0018] Furthermore, the pin block and the elastic top block have the same length, and both are half the length of the second insertion slot.
[0019] The beneficial effects of adopting the above-mentioned further solutions are:
[0020] Because the pin and the resilient top block are the same length, and both are half the length of the second insertion slot, this design ensures that when the connecting post is inserted into the second insertion slot, the pin can precisely push the resilient top block, so that both reach their respective limit positions simultaneously. This precise fit helps to align the pin holes, thereby ensuring that the pin can be smoothly inserted and secured. By designing the lengths of the pin and the resilient top block to be half the length of the second insertion slot, the entire connection structure can be made more compact. This compact structure not only saves materials but also reduces the overall thickness of the wall, contributing to lightweight design.
[0021] Furthermore, when the pin is inserted into the second insertion slot, the pin pushes the elastic top block to compress the spring, so that the pin hole of the pin is aligned with the pin holes of the first insertion slot and the second insertion slot.
[0022] The beneficial effects of adopting the above-mentioned further solutions are:
[0023] When the pin is inserted into the second socket, it pushes the elastic top block and compresses the spring. During this process, the pin automatically aligns with the pin holes in both the first and second sockets. This design eliminates the tedious manual alignment step, increases the automation of the connection, and makes the installation process more convenient and efficient. Construction workers simply insert the connecting post (with the pin) into the second socket; as the pin goes deeper, the pin holes automatically align, and then the pin shaft can be inserted for fixation. This simplified operation reduces construction difficulty and improves efficiency. The automatic alignment function ensures a precise connection between the pin and the pin hole, avoiding loosening or failure caused by inaccurate manual alignment. This precise connection improves the overall stability and structural strength of the wall. The spring acts as a buffer during compression, absorbing some of the impact force and protecting the connection structure from damage. This design enhances the reliability of the connection and extends the service life of the wall.
[0024] Furthermore, the first and second insertion slots on both sides of the wall panel are diagonally distributed.
[0025] The beneficial effects of adopting the above-mentioned further solutions are:
[0026] When the first and second interlocking slots are diagonally distributed, the connecting column experiences supporting forces from two diagonal directions during insertion. This design helps distribute the stress, making the connection more stable and improving the overall structural strength of the wall. The diagonally distributed interlocking slots enhance the wall panel's resistance to torsional forces. Under external forces such as wind and earthquakes, the wall is less prone to twisting deformation, thus ensuring the stability and safety of the building. The diagonally distributed interlocking slots make the wall panel structure more compact. This design helps save materials, reduce production costs, and decrease the overall thickness of the wall, achieving lightweight design. Although the interlocking slots are diagonally distributed, they still ensure sufficient connection area. This design optimizes space utilization while maintaining connection stability, allowing the wall to play a greater role within a limited space.
[0027] This utility model provides a modular, positionable, and assembleable lightweight building wall. It has the following beneficial effects:
[0028] The modular design of both the walls and connecting columns simplifies and speeds up the assembly and disassembly of the entire building. This design not only reduces construction difficulty but also improves efficiency, making it particularly suitable for temporary structures or emergency shelters that require rapid construction or dismantling.
[0029] Through the precise cooperation of pins, pin blocks, and pin holes, high-precision positioning between walls is achieved. Once the connecting column is inserted into place, the pin can pass through the pin hole to limit and fix it, ensuring the stability of the wall and the safety of the structure.
[0030] The combination of the elastic top block and spring in the second insertion slot constitutes a self-locking and anti-fall-off mechanism. When the connecting post is not inserted, the elastic top block will block the pin and prevent it from accidentally penetrating the pin hole; when the connecting post is inserted and pushes the elastic top block to compress the spring, the pin hole is aligned, allowing the pin to be inserted and fixed, effectively preventing the wall from loosening or falling off during use.
[0031] The use of lightweight materials reduces the overall weight of the wall system, making it easier to transport and install. At the same time, the modular design allows the wall to be flexibly combined and expanded according to actual needs, meeting the requirements of different scenarios. Attached Figure Description
[0032] The accompanying drawings, which are included to provide a further understanding of the present invention and form part of this application, illustrate exemplary embodiments of the present invention and are used to explain the present invention, but do not constitute an undue limitation of the present invention.
[0033] In the attached diagram:
[0034] Figure 1 This is a schematic diagram of the appearance of the present utility model;
[0035] Figure 2 This is a schematic diagram of the main appearance of the wall panel of this utility model;
[0036] Figure 3 This is a bottom view of the wall panel of this utility model;
[0037] Figure 4 This is a schematic diagram of the appearance of the connecting column of this utility model.
[0038] The attached diagram lists the components represented by each number as follows:
[0039] 1. Wall panel; 101. First insertion slot; 102. Pin; 103. Second insertion slot; 104. Elastic top block; 105. Spring; 106. Strong magnet; 2. Connecting column; 201. Pin block; 202. Pin hole. Detailed Implementation
[0040] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0041] Please see Figures 1 to 4 As shown, the embodiments provided by this utility model are as follows:
[0042] Example 1
[0043] A modular, positionable, and assembleable lightweight building wall includes wall panels 1, which are assembled by connecting columns 2.
[0044] Example 2
[0045] To facilitate the rapid assembly of wall panel 1 via connecting columns 2, for example, as shown... Figures 1 to 4As shown, the present invention further includes: first insertion slots 101 are provided on both sides of the wall panel 1, and a second insertion slot 103 is provided on the wall panel 1 below the first insertion slots 101. The first insertion slots 101 and the second insertion slots 103 on both sides of the wall panel 1 are diagonally distributed. When the first insertion slots and the second insertion slots are diagonally arranged, the connecting column can enjoy balanced support from two diagonal directions during insertion. This design significantly enhances the stability of the connection and improves the overall structural strength of the wall. The diagonal layout also enhances the wall panel's resistance to torsional forces, effectively preventing the wall from twisting and deforming even in extreme weather or natural disasters such as earthquakes, ensuring the safety and stability of the building. Furthermore, this layout optimizes space utilization, enabling the walls to maintain structural stability while achieving efficient material utilization and lightweight design, satisfying the dual pursuit of functionality and aesthetics in modern architecture. The first insertion slot 101 and the second insertion slot 103 are connected by a pin hole 202, and the bottom end of the second insertion slot 103 also has a pin hole 202. A pin 102 is inserted into the first insertion slot 101 for containment. A strong magnet 106 is installed on the top surface of the wall panel 1 located in the first insertion slot 101. When the pin 102 is not in use, it is contained within the first insertion slot 101 by the strong magnet 106. The strong attraction of the magnet provides a solid guarantee for the stable containment of the pin within the first insertion slot, effectively preventing the pin from falling off even during transportation, storage, or non-use, thus eliminating safety hazards. This design not only protects the safety of construction workers but also avoids construction delays caused by lost or improperly handled pins. When connection is required, construction workers simply need to release the pin from the magnet and then precisely insert it into the aligned pin hole, greatly simplifying the operation process and improving construction efficiency. Furthermore, the limiting effect of the strong magnet promotes orderly management of the pins, reducing confusion and loss, and improving the overall construction management level. An elastic top block 104 is movably installed in the second insertion slot 103. When the wall panel 1 and the connecting column 2 are separated, the pin 102 is blocked by the elastic top block 104, preventing the pin 102 from penetrating the pin hole 202 between the first insertion slot 101 and the second insertion slot 103. In the non-connected state, the elastic top block acts as a sturdy barrier, effectively curbing the risk of the pin being mistakenly inserted into the pin hole between the first and second insertion slots. This ingenious design avoids potential misoperation during transportation, storage, and the pre-installation stage, ensuring the safety and accuracy of the connection operation.Meanwhile, this design ensures that the pin is in a stable and controllable state during the preparation stage, allowing construction personnel to focus on the precise positioning and insertion of the connecting column without being distracted by potential interference from the pin. This accelerates the installation process and reduces labor and time costs. A spring 105 is installed in the second insertion slot 103, and the elastic top block 104 is elastically installed in the second insertion slot 103 via the spring 105. The elasticity of the spring cleverly causes the elastic top block to automatically adjust to the optimal position when the connecting column is inserted, precisely ensuring perfect alignment between the pin block and the pin hole, thus achieving a seamless insertion process. This adaptive connection mechanism not only greatly improves the accuracy of the connection but also significantly enhances its stability. Faced with external impacts on the wall, the spring can effectively absorb and disperse the impact force, exerting excellent buffering and shock absorption performance, effectively protecting the wall structure from damage, thereby extending its service life. In addition, the elastic fastening characteristics of the spring ensure that the elastic top block is tightly attached to the pin block, preventing the pin shaft from accidentally falling off and ensuring the overall stability and safety of the wall. The connecting column 2 is provided with a pin block 201, and a pin hole 202 is opened through the pin block 201. The pin block 201 and the elastic top block 104 have the same length, and both are half the length of the second insertion groove 103. The lengths of the pin block and the elastic top block are carefully set to be half the length of the second insertion groove. This design ensures that when the connecting column is inserted, the two can reach their respective limit positions simultaneously, accurately pushing the pin hole to align, laying a solid foundation for the seamless insertion and fixation of the pin shaft. This design not only optimizes the compactness of the connection structure and reduces material consumption, but also promotes lightweight wall design, meeting the modern building's pursuit of high efficiency and energy conservation. When the pin 201 is inserted into the second insertion slot 103, the pin 201 pushes the elastic top block 104 to compress the spring 105, aligning the pin hole 202 of the pin 201 with the pin holes 202 of the first insertion slot 101 and the second insertion slot 103. During the connection process, the pin automatically pushes the elastic top block and compresses the spring, simultaneously aligning the pin holes. This mechanism greatly improves the automation level of the connection, eliminating tedious manual alignment steps and making the installation process simpler and faster. This automated alignment function ensures accurate connection and enhances the overall stability and structural strength of the wall. At the same time, the spring's buffering and shock absorption during compression effectively resists impact, protects the integrity of the connection structure, and further improves the reliability of the connection and the durability of the wall. After the connecting column 2 is interlocked with the second insertion slot 103 via the pin 201, it is fixed by the pin shaft 102 passing through the pin hole 202.
[0046] Working principle:
[0047] Both the wall panels and connecting columns are designed as independent modules with standardized dimensions and interfaces. This design allows different modules to be combined to form a complete building wall. The wall panels have first and second insertion slots on both sides, which mate with pins and pin holes on the connecting columns to achieve precise docking between modules.
[0048] The second insertion slot is equipped with a resilient top block and a spring. When the connecting post is not inserted, the resilient top block, under the action of the spring, blocks the pin, preventing it from accidentally penetrating the pin hole. When the pin of the connecting post is inserted into the second insertion slot, the pin pushes the resilient top block to compress the spring, aligning the pin hole on the pin block with the pin holes of the first and second insertion slots. Once the pin holes are aligned, the pin can penetrate the pin hole for limiting and fixing.
[0049] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0050] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A modular, positionable, and assembleable lightweight building wall, comprising wall panels (1), wherein the wall panels (1) are assembled by means of connecting columns (2), characterized in that: The wall panel (1) has a first insertion groove (101) on both sides, and a second insertion groove (103) is provided on the wall panel (1) below the first insertion groove (101). The first insertion groove (101) and the second insertion groove (103) are connected by a pin hole (202), and the bottom end of the second insertion groove (103) is also provided with a pin hole (202). A pin shaft (102) is inserted into the first insertion groove (101) for limiting, and an elastic top block (104) is movably installed in the second insertion groove (103). The connecting column (2) is provided with a pin block (201), and a pin hole (202) is provided through the pin block (201). The connecting column (2) is connected to the second insertion groove (103) by the pin block (201) and then fixed by the pin shaft (102) passing through the pin hole (202).
2. The modular, positionable, and assembleable lightweight building wall according to claim 1, characterized in that: A spring (105) is installed in the second insertion slot (103), and the elastic top block (104) is elastically installed in the second insertion slot (103) by the spring (105).
3. The modular, positionable, and assembleable lightweight building wall according to claim 1, characterized in that: When the wall panel (1) is separated from the connecting column (2), the pin (102) is blocked by the elastic top block (104).
4. The modular, positionable, and assembleable lightweight building wall according to claim 3, characterized in that: A strong magnet (106) is installed on the top surface of the wall panel (1) located in the first insertion groove (101). When the pin (102) is not in use, it is limited and installed in the first insertion groove (101) by the strong magnet (106).
5. The modular, positionable, and assembleable lightweight building wall according to claim 1, characterized in that: The pin (201) and the elastic top block (104) have the same length, and both are half the length of the second insertion slot (103).
6. The modular, positionable, and assembleable lightweight building wall according to claim 5, characterized in that: When the pin (201) is inserted into the second insertion slot (103), the pin (201) pushes the elastic top block (104) to compress the spring (105), so that the pin hole (202) of the pin (201) is aligned with the pin holes (202) of the first insertion slot (101) and the second insertion slot (103).
7. The modular, positionable, and assembleable lightweight building wall according to claim 1, characterized in that: The first insertion slot (101) and the second insertion slot (103) on both sides of the wall panel (1) are diagonally distributed.
Citation Information
Patent Citations
Modularized light building wall capable of being positioned and assembled
CN219386753U