Fabricated autoclaved aerated concrete plate structure wall control device

By introducing a level, Z-axis, and X-axis drive structure into the prefabricated autoclaved aerated concrete (AAC) panel wall control device, combined with a limiting plate and elastic limiting components, the problem of precise adjustment during the installation of prefabricated walls was solved, achieving efficient and safe wall installation.

CN224282035UActive Publication Date: 2026-05-26GUANGZHOU PANYU QIAOXING CONSTR INSTALLATION ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGZHOU PANYU QIAOXING CONSTR INSTALLATION ENG CO LTD
Filing Date
2025-06-10
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

During the installation of existing prefabricated autoclaved aerated concrete (AAC) panel walls, it is difficult to achieve precise control of verticality and horizontal position, resulting in installation deviations exceeding the specifications. In particular, high-span or large-span wall panels are prone to tipping over under external forces, posing a safety hazard.

Method used

The system employs a level and leveling mechanism mounted on a base plate, combined with Z-axis and X-axis drive structures, to achieve three-dimensional adjustment of the wall panel. The height and position of the wall panel are precisely controlled by a combination of a servo motor and a ball screw. Verticality is ensured by a limit plate and a verticality indicator, and elastic limit components are used to prevent the wall panel from loosening.

Benefits of technology

It enables precise adjustment of the wall in three dimensions: X-axis, Y-axis, and Z-axis, improving installation accuracy and safety, reducing construction deviations, and enhancing construction efficiency and safety.

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Abstract

The utility model provides an assembly type autoclaved aerated concrete plate structure wall control device, which belongs to the technical field of building, and comprises a base plate, a gradienter is arranged on the base plate, and a horizontal adjusting mechanism for adjusting the levelness of the base plate is arranged at the bottom of the base plate; a Z-axis driving structure is fixed to the base plate, the output end of the Z-axis driving structure is vertically arranged upwards, a connecting rod is connected to one side of the output end of the Z-axis driving structure, a mounting plate is arranged at the bottom of the connecting rod, and a mounting frame used for mounting a wall is arranged on the mounting plate. The mounting plate is further provided with an X-axis driving structure, and the output end of the X-axis driving structure is fixedly connected with the mounting frame. According to the fabricated autoclaved aerated concrete plate structure wall body control device, three-dimensional adjustment on a wall body can be achieved in the installation process, all-directional control over the position precision and stability in the wallboard installation process is achieved, and therefore the installation efficiency of the wall body is improved.
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Description

Technical Field

[0001] This utility model relates to the field of building technology, and in particular to a control device for prefabricated autoclaved aerated concrete panel walls. Background Technology

[0002] Prefabricated autoclaved aerated concrete (ALC) panel walls are non-load-bearing wall systems assembled using prefabricated ALC panels as the core components through standardized connection nodes. These walls are lightweight, high-strength, provide thermal insulation, and are fire and moisture resistant, making them widely used in both civil and industrial construction sectors, such as residential and public buildings, and industrial plants and warehouses. However, stability control during ALC panel installation remains a key challenge restricting construction quality and safety. Currently, traditional ALC panel installation methods rely primarily on temporary bracing and wooden wedges for fixing. These methods have significant drawbacks: firstly, the adjustment precision of temporary supports is insufficient, making it difficult to accurately control the verticality and horizontal position of the wall panels, often resulting in installation deviations exceeding specifications (e.g., verticality deviation exceeding 5mm / 2m), thus affecting the overall stability of the wall; secondly, existing devices are mostly single-point supports, lacking sufficient rigidity for high wall panels (height ≥ 3m) or large-span wall panels, making them prone to collapse under wind loads, construction vibrations, and other external forces, posing significant safety hazards. For example, in the installation of exterior wall panels in high-rise buildings, traditional diagonal bracing has been unable to effectively resist horizontal wind forces, resulting in cases of wall panels overturning during installation, causing material losses and construction delays.

[0003] Therefore, it is necessary to develop a control device for prefabricated autoclaved aerated concrete (AAC) panel walls to improve the construction quality and structural safety of prefabricated walls. Utility Model Content

[0004] To overcome the problems existing in related technologies, the purpose of this utility model is to provide a control device for prefabricated autoclaved aerated concrete panel walls. This device can achieve three-dimensional adjustment of the wall during the installation process, and realize all-round control over the positional accuracy and stability of the wall panels during installation, thereby improving the installation efficiency of the wall.

[0005] A control device for prefabricated autoclaved aerated concrete (AAC) panel walls includes:

[0006] A substrate, on which a level is provided, and at the bottom of the substrate a leveling mechanism for adjusting the levelness of the substrate;

[0007] A Z-axis drive structure is fixed on the substrate. The output end of the Z-axis drive structure is vertically upward. A connecting rod is connected to one side of the output end of the Z-axis drive structure. A mounting plate is provided at the bottom of the connecting rod. A mounting frame for mounting the wall is provided on the mounting plate.

[0008] The mounting plate is also provided with an X-axis drive structure, and the output end of the X-axis drive structure is fixedly connected to the mounting frame.

[0009] In a preferred embodiment of this invention, the mounting frame is provided with a plurality of mounting slots, which are arranged in parallel.

[0010] In a preferred embodiment of this invention, the mounting frame is provided with a plurality of mounting slots, which are interconnected and perpendicular to each other.

[0011] In a preferred embodiment of this utility model, a limiting plate is provided on the mounting frame, the length of the limiting plate is set along the Z-axis, and the bottom of the limiting plate is hinged to the mounting frame.

[0012] The mounting frame is also provided with an adjusting component, which is rotatably mounted on the side wall of the mounting groove, and one end of the adjusting component passes through the side wall of the mounting groove and abuts against the wall inside the mounting groove.

[0013] In a preferred embodiment of this invention, the limiting plate is provided with a slot, and a verticality instrument is engaged in the slot.

[0014] In a preferred embodiment of this invention, the horizontal adjustment mechanism includes a cylinder seat and an adjusting cylinder. The cylinder seat is fixed to the mounting base surface of the substrate, and the adjusting cylinder is fixed to the cylinder seat. The output end of the cylinder seat is hinged to the mounting base surface of the substrate.

[0015] In a preferred embodiment of this invention, the side wall of the mounting groove is provided with an elastic limiting member, which includes an elastic seat, a spring, and a roller. The elastic seat is disposed in the mounting groove, the spring is connected between the elastic seat and the side wall of the mounting groove, and the roller is rotatably disposed on the elastic seat.

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

[0017] This utility model provides a control device for prefabricated autoclaved aerated concrete (AAC) panel walls. The device includes a base plate with a level on it and a leveling mechanism at its bottom for adjusting the base plate's levelness. A Z-axis drive structure is fixed to the base plate, with its output end vertically upward. A connecting rod is connected to one side of the output end of the Z-axis drive structure, and a mounting plate is located at the bottom of the connecting rod. A mounting frame for mounting the wall panel is mounted on the mounting plate. An X-axis drive structure is also mounted on the mounting plate, with its output end fixedly connected to the mounting frame. In use, the base plate is first placed on the ground at the installation location. By observing the level reading, the leveling mechanism is adjusted to ensure the base plate is level. Then, the AAC panel is placed in the mounting frame and fixed. The Z-axis drive structure is activated to adjust the height of the panel. During adjustment, the level is monitored in real time by the level to ensure the base plate remains level. Once the panel's height is adjusted, the X-axis drive structure is activated to adjust the panel's horizontal position. By precisely controlling the movement of the X-axis and Z-axis drive structures, the position of the wall panel in three-dimensional space can be adjusted, ensuring the installation accuracy of the wall panel. This device can achieve precise adjustment of the wall in three dimensions: X-axis, Y-axis (horizontal direction), and Z-axis (vertical direction), meeting the high requirements for positional accuracy during wall installation. Furthermore, it is easy to operate, allowing construction personnel to quickly master its use, thus improving installation efficiency. Attached Figure Description

[0018] Figure 1 This is a perspective view of the prefabricated autoclaved aerated concrete panel wall control device provided by this utility model;

[0019] Figure 2 This is a top view of the prefabricated autoclaved aerated concrete panel wall control device provided by this utility model;

[0020] Figure 3 This is a side view of the prefabricated autoclaved aerated concrete panel wall control device provided by this utility model;

[0021] Figure 4 This is a schematic diagram of the horizontal adjustment mechanism provided by this utility model being installed under the substrate;

[0022] Figure 5 This is a schematic diagram of the mounting slot provided by this utility model;

[0023] Figure 6 This is a schematic diagram of the elastic limiting member provided by this utility model.

[0024] Figure label:

[0025] 1. Base plate; 2. Z-axis drive structure; 21. Connecting rod; 3. X-axis drive structure; 4. Mounting frame; 41. Mounting groove; 5. Z-axis drive structure; 6. Limiting plate; 61. Verticality indicator; 7. Adjusting component; 8. Elastic limiting component; 81. Spring; 82. Elastic seat; 83. Roller; 9. Horizontal adjustment mechanism; 91. Cylinder seat; 92. Adjusting cylinder. Detailed Implementation

[0026] Preferred embodiments of the present invention will now be described in more detail with reference to the accompanying drawings. While preferred embodiments of the present invention are shown in the drawings, it should be understood that the present invention may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that the present invention will be thorough and complete, and will fully convey the scope of the present invention to those skilled in the art.

[0027] Prefabricated autoclaved aerated concrete (ALC) panel walls are non-load-bearing wall systems assembled using prefabricated ALC panels as the core components through standardized connection nodes. These walls are lightweight, high-strength, provide thermal insulation, and are fire and moisture resistant, making them widely used in both civil and industrial construction sectors, such as residential and public buildings, and industrial plants and warehouses. However, stability control during ALC panel installation remains a key challenge restricting construction quality and safety. Currently, traditional ALC panel installation methods rely primarily on temporary bracing and wooden wedges for fixing. These methods have significant drawbacks: firstly, the adjustment precision of temporary supports is insufficient, making it difficult to accurately control the verticality and horizontal position of the wall panels, often resulting in installation deviations exceeding specifications (e.g., verticality deviation exceeding 5mm / 2m), thus affecting the overall stability of the wall; secondly, existing devices are mostly single-point supports, lacking sufficient rigidity for high wall panels (height ≥ 3m) or large-span wall panels, making them prone to collapse under wind loads, construction vibrations, and other external forces, posing significant safety hazards. For example, in the installation of exterior wall panels in high-rise buildings, traditional diagonal bracing has been unable to effectively resist horizontal wind forces, resulting in cases of wall panels overturning during installation, causing material losses and construction delays.

[0028] Based on this, this application provides a control device for prefabricated autoclaved aerated concrete panel walls.

[0029] Example 1

[0030] like Figures 1-6 As shown in the figure, this embodiment provides a control device for prefabricated autoclaved aerated concrete (AAC) panel walls, comprising:

[0031] A base plate 1 is provided with a level, and a leveling mechanism 9 for adjusting the levelness of the base plate 1 is provided at the bottom of the base plate.

[0032] A Z-axis drive structure 52 is fixed on the substrate 1. The output end of the Z-axis drive structure 52 is vertically upward. A connecting rod 21 is connected to one side of the output end of the Z-axis drive structure 52. A mounting plate is provided at the bottom of the connecting rod 21. A mounting frame 4 for mounting the wall is provided on the mounting plate.

[0033] The mounting plate is also provided with an X-axis drive structure 3, and the output end of the X-axis drive structure 3 is fixedly connected to the mounting frame 4.

[0034] Specifically, a Z-axis drive structure 52 is fixedly mounted on the base plate 1. This Z-axis drive structure 52 is a combination of a servo motor and a ball screw. The servo motor is fixed to one side of the base plate 1, and the ball screw is arranged vertically. The output shaft of the servo motor is connected to one end of the ball screw. The output end of the Z-axis drive structure 52 is the nut of the ball screw, which is arranged vertically upward. On one side of the nut, a connecting rod 21 is fixedly connected by bolts. The connecting rod 21 is a cylindrical structure, and its length is set according to the actual installation requirements. A mounting plate is fixedly mounted to the bottom of the connecting rod 21 by bolts. The mounting plate is rectangular, and a mounting frame 4 for mounting the wall is provided on the mounting plate. The mounting frame 4 can be composed of four angle steels, forming a rectangular frame structure, and is fixed to the mounting plate by bolts for fixing the autoclaved aerated concrete wall panel.

[0035] An X-axis drive structure 3 is also provided on the mounting plate. This X-axis drive structure 3 is also a combination of a servo motor and a ball screw. The servo motor is fixed to one side of the mounting plate, and the ball screw is positioned horizontally (X-axis direction). The output shaft of the servo motor is connected to one end of the ball screw. The output end of the X-axis drive structure 3 is the nut of the ball screw, which is fixedly connected to one side of the mounting frame 4. Driven by the X-axis drive structure 3, the mounting frame 4 can move in the X-axis direction.

[0036] The aforementioned prefabricated autoclaved aerated concrete (AAC) panel wall control device includes a base plate 1, on which a level is mounted. A leveling mechanism 9 for adjusting the levelness of the base plate 1 is located at its bottom. A Z-axis drive structure 52 is fixed to the base plate 1, with its output end vertically upward. A connecting rod 21 is connected to one side of the output end of the Z-axis drive structure 52, and a mounting plate is located at the bottom of the connecting rod 21. A mounting frame 4 for mounting the wall is mounted on the mounting plate. An X-axis drive structure 3 is also mounted on the mounting plate, with its output end fixedly connected to the mounting frame 4. In use, the base plate 1 is first placed on the ground at the installation location. By observing the level reading, the leveling mechanism 9 is adjusted to ensure the base plate 1 is level. Then, the AAC panel is placed inside the mounting frame 4 and fixed. The Z-axis drive structure 52 is activated to adjust the height of the wall panel. During adjustment, the level of the base plate 1 is monitored in real time by the level to ensure it remains level. Once the wall panel's height is adjusted to the correct position, the X-axis drive structure 3 is activated to adjust the wall panel's horizontal position. By precisely controlling the movement of the X-axis drive structure 3 and the Z-axis drive structure 52, the wall panel's position in three-dimensional space is adjusted, ensuring the installation accuracy of the wall panel. This device can achieve precise adjustment of the wall in three dimensions: X-axis, Y-axis (horizontal direction), and Z-axis (vertical direction), meeting the high requirements for positional accuracy during wall installation. Furthermore, it is easy to operate, allowing construction personnel to quickly master its use, thus improving installation efficiency.

[0037] In this embodiment, the mounting frame 4 is provided with a plurality of mounting slots 41, which are connected to each other and perpendicular to each other.

[0038] The mounting slot 41 in this embodiment includes a horizontal slot and a vertical slot. The interconnected mounting slots 41 can fix wall panels in different directions within the same frame, reducing the frame overlap problem caused by direction conversion in traditional installation.

[0039] In a preferred embodiment, a limiting plate 6 is provided on the mounting frame 4, the length of the limiting plate 6 is set along the Z-axis, and the bottom of the limiting plate 6 is hinged to the mounting frame 4.

[0040] The mounting frame 4 is also provided with an adjusting member 7, which is rotatably disposed on the side wall of the mounting groove 41, and one end of the adjusting member 7 penetrates through the side wall of the mounting groove 41 and abuts against the wall inside the mounting groove 41.

[0041] In practical use, the limiting plate 6 provides auxiliary fixation to the wall in the height direction, thereby controlling the verticality of the wall. Rotating the adjusting member 7 causes one end of the adjusting member 7 to abut against the wall in the mounting groove 41, thus achieving the purpose of changing the verticality of the wall by rotating the adjusting member 7.

[0042] In this embodiment, the adjusting member 7 is a cylindrical screw with an external thread at one end and a hemispherical abutment end at the other end. The adjusting member 7 is rotatably mounted on the side wall of the mounting groove 41 via a threaded engagement. The external thread of the screw matches the threaded hole on the side wall of the mounting groove 41, allowing the adjusting member 7 to rotate and move along the axial direction of the threaded hole. The hemispherical abutment end of the adjusting member 7 penetrates the side wall of the mounting groove 41 and extends into the mounting groove 41 to abut against the wall panel inside the mounting groove 41.

[0043] After the wall panel is inserted into the mounting slot 41 and initially fixed with fasteners, rotate the limiting plate 6 so that it fits against the upper surface of the wall panel from the top of the mounting frame 4. Since the bottom of the limiting plate 6 is hinged to the mounting frame 4, the tilt angle of the limiting plate 6 can be adjusted according to the height of the wall panel to ensure that the inner sidewall of the limiting plate 6 is in close contact with the upper surface of the wall panel, thus providing auxiliary fixation of the wall panel from the height direction.

[0044] Furthermore, the limiting plate 6 is provided with a slot, and a vertical instrument 61 is engaged in the slot.

[0045] Specifically, the size of the slot is compatible with common small vertical instruments 61 on the market (such as laser vertical instruments 61). Anti-slip rubber strips are provided on the inner wall of the slot to increase the friction between the vertical instrument 61 and the slot and prevent the vertical instrument 61 from sliding in the slot.

[0046] The verticality indicator 61 is a portable laser verticality indicator 61. Its bottom has a rectangular locking part that matches the shape of the locking slot. The outer wall of the locking part has anti-slip textures that cooperate with the anti-slip rubber strip. The verticality indicator 61 is inserted into the locking slot of the limiting plate 6 through the locking part, achieving a locking and fixing with the limiting plate 6. The laser emitting end of the verticality indicator 61 faces the side of the wall panel and can emit a vertical laser line for detecting the verticality of the wall panel.

[0047] In this embodiment, before rotating the limiting plate 6 to fit against the upper surface of the wall panel, the locking part of the verticality instrument 61 is first inserted into the slot of the limiting plate 6 to ensure that the verticality instrument 61 is firmly locked in the slot. Then, the limiting plate 6 is rotated to fit against the upper surface of the wall panel, and the verticality of the wall panel is initially adjusted by the adjusting part 7.

[0048] Turn on the verticality indicator 61 to emit a vertical laser line. The laser line is projected onto the side of the wall panel, and the construction workers judge the verticality of the wall panel by observing the degree of contact between the laser line and the side of the wall panel. If there is a gap between the laser line and the side of the wall panel, it indicates that the verticality of the wall panel is deviated. At this time, according to the location and size of the gap, the verticality of the wall panel is precisely adjusted by rotating the adjusting component 7 until the laser line is completely in contact with the side of the wall panel, indicating that the verticality of the wall panel meets the requirements.

[0049] During installation, the verticality indicator 61 can monitor changes in the verticality of the wall panels in real time. For example, when installing adjacent wall panels, if the verticality of the installed wall panels shifts slightly due to changes in force, the laser line of the verticality indicator 61 will promptly display the deviation, and the construction personnel can immediately correct it using the adjustment component 7 to ensure the consistency of the overall verticality of the wall.

[0050] More preferably, a locking structure should also be provided at the hinge joint between the limiting plate 6 and the mounting frame 4 to completely fix the limiting plate 6 after it is adjusted to the target angle.

[0051] Furthermore, the horizontal adjustment mechanism 9 includes a cylinder seat 91 and an adjusting cylinder 92. The cylinder seat 91 is fixed on the mounting base surface of the base plate 1, and the adjusting cylinder 92 is fixed on the cylinder seat 91. The output end of the cylinder seat 91 is hinged to the mounting base surface of the base plate 1.

[0052] Specifically, the horizontal adjustment mechanism 9 in this embodiment consists of a cylinder base 91 and an adjusting cylinder 92. The cylinder base 91 is made of high-strength cast iron and has an L-shaped structure. Its vertical end is fixed to the mounting base (such as a concrete floor slab or foundation) by expansion bolts, and its horizontal end faces upward. The adjusting cylinder 92 is a double-acting cylinder, and its cylinder barrel is fixed to the horizontal end of the cylinder base 91 by bolts. The piston rod of the cylinder is set vertically upward.

[0053] The piston rod tip of the adjusting cylinder 92 is hinged to the bottom of the base plate 1 via a hinge seat. The hinge seat has a U-shaped structure and is fixed to the bottom of the base plate 1. The piston rod tip is inserted into the U-shaped groove of the hinge seat, and the hinge connection is achieved through a pin, allowing the base plate 1 to rotate slightly in the horizontal direction around the pin. Each horizontal adjusting mechanism 9 also has a pneumatic control valve and a pressure sensor on its cylinder seat 91. The pneumatic control valve is used to regulate the pneumatic pressure inside the cylinder 92, and the pressure sensor is used to monitor the supporting force of the cylinder on the base plate 1 in real time.

[0054] During the control process, compressed air is introduced into the regulating cylinder 92, causing the piston rod to extend and support the base plate 1. The air pressure of each regulating cylinder 92 is adjusted by the air pressure control valve to initially bring the base plate 1 into a horizontal state. At this time, the level reading on the base plate 1 is observed. If there is a horizontal deviation of the base plate 1, for example, the left side is higher, the air pressure of the left regulating cylinder 92 is increased, causing the left piston rod to extend and push the left side of the base plate 1 to rise; at the same time, the air pressure of the right regulating cylinder 92 is decreased, causing the right piston rod to shorten and the right side of the base plate 1 to fall, until the level shows that the base plate 1 is completely horizontal.

[0055] Furthermore, the side wall of the mounting groove 41 is provided with an elastic limiting member 8, which includes an elastic seat 82, a spring 81 and a roller 83. The elastic seat 82 is disposed in the mounting groove 41, the spring 81 is connected between the elastic seat 82 and the side wall of the mounting groove 41, and the roller 83 is rotatably disposed on the elastic seat 82.

[0056] Specifically, several elastic limiting members 8 are evenly spaced on both side walls of the mounting groove 41 along its length. Each set of elastic limiting members 8 consists of an elastic seat 82, a spring 81, and a roller 83. The elastic seat 82 can be made of engineering plastic and has an L-shaped structure, with its vertical end embedded in a reserved position on the side wall of the mounting groove 41. The spring 81 is a compression spring, with one end fixed to the inner side of the horizontal end of the elastic seat 82 and the other end abutting against a fixed seat on the side wall of the mounting groove 41. The roller 83 is made of stainless steel and is rotatably mounted on the outer side of the horizontal end of the elastic seat 82 via bearings. The axis of the roller 83 is perpendicular to the length direction of the mounting groove 41. When the wall panel is inserted into the mounting groove 41, the edge of the wall panel first contacts the roller 83. The roller 83 rotates under thrust and drives the elastic seat 82 to compress the spring 81, providing guidance and buffering for the wall panel insertion. As the wall panel extends deeper into the mounting groove 41, the rollers 83 of the elastic limiting members 8 on both sides continuously contact the edge of the wall panel, and the elastic force of the springs 81 keeps the wall panel in the center position of the mounting groove 41. During the wall panel fixing process, the rollers 83 can rotate with the slight movement of the wall panel, avoiding damage to the wall panel surface due to hard friction. When the adjusting member 7 presses against the wall panel to adjust the verticality, the springs 81 of the elastic limiting members 8 can absorb the impact force during the adjustment process, preventing the wall panel from cracking due to excessive local stress. After installation, the continuous elastic pressure of the elastic limiting members 8 can assist the fasteners in fixing the wall panel, reducing the risk of loosening in a vibration environment.

[0057] Example 2

[0058] In one embodiment, the mounting frame 4 is provided with a plurality of mounting slots 41, which are arranged in parallel.

[0059] The mounting groove 41 is elongated, and more preferably, its cross-sectional shape is T-shaped, with the groove opening width slightly smaller than the groove bottom width to prevent the wall panel from falling off after installation. The spacing between adjacent mounting grooves 41 is designed according to the specifications of the autoclaved aerated concrete wall panel and installation requirements. When installing the autoclaved aerated concrete wall panel, the edge of the wall panel is inserted into the mounting groove 41 of the mounting frame 4, and the wall panel is fixed to the mounting frame 4 using fasteners (such as bolts and nuts) provided in the mounting groove 41.

[0060] The design of multiple mounting slots 41 allows for flexible selection of the insertion position of the mounting slots 41 according to the dimensions of autoclaved aerated concrete wall panels of different specifications during actual use. Adjusting the wall panel using the mounting slots 41 enables the wall panel to be fixed in place after adjustment, thereby reducing the difficulty of wall panel installation.

[0061] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.

[0062] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be construed as limiting the scope of protection of this application.

[0063] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A control device for prefabricated autoclaved aerated concrete (AAC) panel walls, characterized in that, include: A substrate, on which a level is provided, and at the bottom of the substrate a leveling mechanism for adjusting the levelness of the substrate; A Z-axis drive structure is fixed on the substrate. The output end of the Z-axis drive structure is vertically upward. A connecting rod is connected to one side of the output end of the Z-axis drive structure. A mounting plate is provided at the bottom of the connecting rod. A mounting frame for mounting the wall is provided on the mounting plate. The mounting plate is also provided with an X-axis drive structure, and the output end of the X-axis drive structure is fixedly connected to the mounting frame.

2. The prefabricated autoclaved aerated concrete panel wall control device according to claim 1, characterized in that: The mounting frame is provided with a number of mounting slots, which are arranged in parallel.

3. The prefabricated autoclaved aerated concrete panel wall control device according to claim 1, characterized in that: The mounting frame is provided with a number of mounting slots, which are interconnected and perpendicular to each other.

4. The prefabricated autoclaved aerated concrete panel wall control device according to claim 2 or 3, characterized in that: A limiting plate is provided on the mounting frame, the length of the limiting plate is set along the Z-axis, and the bottom of the limiting plate is hinged to the mounting frame; The mounting frame is also provided with an adjusting component, which is rotatably mounted on the side wall of the mounting groove, and one end of the adjusting component passes through the side wall of the mounting groove and abuts against the wall inside the mounting groove.

5. The prefabricated autoclaved aerated concrete panel wall control device according to claim 4, characterized in that: The limiting plate is provided with a slot, and a vertical instrument is engaged in the slot.

6. The prefabricated autoclaved aerated concrete panel wall control device according to any one of claims 1-3, characterized in that: The leveling mechanism includes a cylinder seat and an adjusting cylinder. The cylinder seat is fixed to the mounting base surface of the substrate, and the adjusting cylinder is fixed to the cylinder seat. The output end of the cylinder seat is hinged to the mounting base surface of the substrate.

7. The prefabricated autoclaved aerated concrete panel wall control device according to claim 2 or 3, characterized in that: The side wall of the mounting groove is provided with an elastic limiting member, which includes an elastic seat, a spring and a roller. The elastic seat is disposed in the mounting groove, the spring is connected between the elastic seat and the side wall of the mounting groove, and the roller is rotatably disposed on the elastic seat.