An alignment device for equipment installation

CN224786795UActive Publication Date: 2026-09-22HONGXIN IND TECHNOLOGY (DALIAN) CO LTD
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Patent Information

Application Number
CN202522397364.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-09-22
Estimated Expiration
2035-11-12

AI Technical Summary

Technical Problem

[0004]1、首先,在底座的四个角落上均安装有小型液压千斤顶,通过启动小型液压千斤顶,调整底座的高度,使底座上夹紧的设备(控制盒)随着底座向上移动,将设备调节至安装的高度上,在底座上还安装有丝杠,通过旋转丝杠,调整设备在水平面上的位置,使设备与墙面抵接,随后,工作人员使用紧固件将设备安装在墙面上,然而,在设备安装的过程中,有些墙面处于竖直或水平状态,有些墙面却呈现倾斜的状态,难以根据墙面的倾斜度调整设备的倾斜角度,不方便设备的安装,缩小适用范围,降低实用性;

Benefits of technology

[0018]1、本实用新型通过设置调角组件,启动液压缸,液压缸伸缩端的活塞杆伸展或收缩,调整主板的倾斜角度,从而调节了载板的倾斜角度,进而根据墙面(倾斜面)的倾斜角度,调整载板上固定的设备(控制盒)的倾斜角度,使设备与墙面相匹配,扩大适用范围,提升实用性。

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Abstract

The utility model discloses an aligning device for equipment installation relates to equipment installation technical field. The utility model discloses a mainboard is provided with the angle adjusting subassembly on the lower surface of mainboard, and the angle adjusting subassembly includes the bottom plate articulated in the lower surface of mainboard, and the upper surface of bottom plate is articulated with the hydraulic cylinder, and the piston rod upper end of hydraulic cylinder telescopic end is articulated on the lower surface of mainboard, the upper surface of bottom plate is provided with the anti -collision subassembly, and the anti -collision subassembly includes the damper rectangular array installation on the bottom plate, and the outer periphery of damper is sleeved with the shock absorbing spring, and the upper surface of damper is abutted on the lower surface of mainboard. The utility model sets up the angle adjusting subassembly, and the position of equipment (control box) is adjusted according to the inclination angle of wall, expands the scope of application, improves practicality, and sets up the anti -collision subassembly, avoids mainboard and bottom plate contact collision, and the vibration amplitude is buffered, prevents the equipment from falling and breaking down because of vibration.
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Description

Technical Field

[0001] This utility model belongs to the field of equipment installation technology, and in particular relates to an alignment device for equipment installation. Background Technology

[0002] Previously, due to low social productivity, it was difficult to produce mechanical equipment, forcing people to rely on manual labor, resulting in low work efficiency and requiring a large amount of labor, making it difficult to meet market demand. With the development of social technology, people can use appropriate materials to produce mechanical equipment, which improves work efficiency and reduces the amount of labor. However, during the production and assembly of mechanical equipment, corresponding equipment (control boxes) is provided, allowing people to drive the mechanical equipment to complete production work. To facilitate the operation of the control box, its position needs to be fixed to prevent accidental movement. During the installation of the control box, an equipment installation alignment device is used, which consists of a base plate, a hydraulic lift, a carrier plate, a clamping structure, and a cross laser, among other components.

[0003] However, existing equipment alignment devices still have the following shortcomings in practical use:

[0004] 1. First, small hydraulic jacks are installed at the four corners of the base. By activating the small hydraulic jacks, the height of the base is adjusted, causing the equipment (control box) clamped on the base to move upward with the base, adjusting the equipment to the installation height. A lead screw is also installed on the base. By rotating the lead screw, the position of the equipment on the horizontal plane is adjusted so that the equipment abuts against the wall. Subsequently, the staff uses fasteners to install the equipment on the wall. However, during the installation process, some walls are vertical or horizontal, while others are tilted. It is difficult to adjust the tilt angle of the equipment according to the tilt of the wall, which is inconvenient for the installation of the equipment, reduces its applicability, and reduces its practicality.

[0005] 2. Secondly, during the adjustment of the base position (height or tilt angle), an external structure (hydraulic cylinder) is required to support the base. When the external structure can support the base normally, it can ensure the stability of the base position and prevent the equipment (control box) clamped on the base from falling and being damaged. However, the external structure will wear out during use. When the external structure can no longer support the base, that is, when the base loses external support, the base will fall and collide with other parts, causing a large vibration, and may even cause the equipment to fall and be damaged due to the vibration.

[0006] To address this issue, we provide an alignment device for equipment installation to solve the problems mentioned above. Utility Model Content

[0007] The purpose of this utility model is to provide an alignment device for equipment installation. By setting an angle adjustment component, the tilt angle of the equipment (control box) can be adjusted according to the tilt angle of the wall, thereby expanding the scope of application and improving practicality. In addition, by setting an anti-collision component, the main board is prevented from contacting and impacting the base plate when it loses the support of the hydraulic cylinder, reducing the vibration amplitude and preventing the equipment from falling and being damaged due to vibration. This solves the technical problems mentioned in the background art.

[0008] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:

[0009] This utility model relates to an alignment device for equipment installation, comprising a main board, an angle adjustment assembly on the lower surface of the main board, the angle adjustment assembly including a base plate hinged to the lower surface of the main board, a hydraulic cylinder hinged to the upper surface of the base plate, the upper end of the piston rod of the hydraulic cylinder being hinged to the lower surface of the main board; an anti-collision assembly on the upper surface of the base plate, the anti-collision assembly including a damper mounted in a rectangular array on the base plate, a shock-absorbing spring sleeved around the outer periphery of the damper, and the upper surface of the damper abutting against the lower surface of the main board.

[0010] The present invention is further configured such that a protective cylinder is provided on the upper surface of the motherboard, and supports symmetrically installed on the lower surface of the protective cylinder are mounted on the upper surface of the motherboard. The connecting frame inside the protective cylinder has an L-shaped structure, and a carrier plate is installed on the upper surface of the connecting frame. Ball bearings distributed in a rectangular array on the lower surface of the carrier plate support the upper surface of the motherboard. A lead screw penetrating inside the protective cylinder is located inside the connecting frame, and a threaded sleeve connected to the connecting frame is connected to the circumferential thread of the lead screw.

[0011] The present invention is further configured such that mounting seats are symmetrically installed on the upper surface of the carrier plate, and a limit cover is threadedly connected to the end of a transverse threaded cylinder that is installed through the side wall of the mounting seat. A connecting rod is installed on the side wall of a threaded disc that is internally threaded to the transverse threaded cylinder, and the outer end of the connecting rod passes through the limit cover and is rotatably connected to an anti-slip clamp.

[0012] The present invention is further configured such that: a crossbeam is provided on the upper surface of the carrier plate and is located on the side away from the mounting seat; bolts are threadedly connected to the side wall of a movable seat symmetrically sleeved on the outer side of the crossbeam; a cross laser is installed on the upper surface of the movable seat; a support rod is connected to the lower surface of the crossbeam; a sleeve is sleeved on the outer periphery of the support rod; the lower end of the sleeve penetrates the carrier plate and is connected to the upper surface of the main plate; a sleeve rod rotatably connected to the lower surface of the crossbeam is located on the side away from the support rod; a sleeve cap is threadedly connected to the upper end of a vertical threaded cylinder sleeved on the outer periphery of the sleeve rod; the lower end of the vertical threaded cylinder penetrates the carrier plate and is connected to the upper surface of the main plate; and a threaded block fixed to the lower end of the sleeve rod is threadedly connected to the inside of the vertical threaded cylinder.

[0013] The present invention is further configured such that a connecting cylinder is symmetrically hinged to the upper surface of the base plate, and a movable rod is installed on the side wall of the movable block sleeved inside the connecting cylinder, and the upper end of the movable rod is hinged to the lower surface of the main plate.

[0014] The present invention is further configured such that the upper end of the connecting cylinder is threadedly connected to a threaded cap, and the threaded cap has a through hole for the movable rod to pass through.

[0015] The present invention is further configured such that the upper surface of the base plate is provided with a rectangular array of threaded holes, and the lower surface of the damper is fixedly connected with a screw rod, which is threadedly connected to the base plate through the threaded holes.

[0016] The present invention is further configured such that an iron block is embedded on the upper surface of the damper, and a magnetic block is embedded in a rectangular array on the lower surface of the main board, with the iron block and the magnetic block corresponding to each other.

[0017] This utility model has the following beneficial effects:

[0018] 1. This utility model, by setting an angle adjustment component, activates a hydraulic cylinder. The piston rod at the telescopic end of the hydraulic cylinder extends or retracts, adjusting the tilt angle of the main board, thereby adjusting the tilt angle of the carrier plate. Then, according to the tilt angle of the wall (tilted surface), the tilt angle of the equipment (control box) fixed on the carrier plate is adjusted, so that the equipment matches the wall, expanding the scope of application and improving practicality.

[0019] 2. By setting up anti-collision components, when the hydraulic cylinder can no longer support the motherboard, the tilted motherboard is quickly moved towards the base plate. At this time, the damper and shock-absorbing spring work together to prevent the motherboard from directly colliding with the base plate, reduce the vibration amplitude, and improve the service life of the motherboard and the base plate. It also prevents the equipment (control box) fixed on the carrier plate from falling off due to vibration, thus preventing the equipment from falling and being damaged. Attached Figure Description

[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.

[0021] Figure 1 A three-dimensional schematic diagram of an alignment device for equipment installation;

[0022] Figure 2 A cross-sectional schematic diagram of an alignment device for equipment installation;

[0023] Figure 3 This is a schematic cross-sectional view of the connection between the connecting cylinder and the movable rod.

[0024] Figure 4 This is a schematic cross-sectional view of the connection between the carrier plate, crossbeam, vertical threaded cylinder, sleeve, sleeve, support rod, crossbeam, and cross laser.

[0025] Figure 5 This is a schematic cross-sectional view of the connection between the transverse threaded cylinder, connecting rod, and anti-slip clamp.

[0026] The attached diagram lists the components represented by each number as follows: 1-Main board, 101-Carrier plate, 101a-Ball bearing, 102-Horizontal threaded cylinder, 102a-Mounting base, 102b-Limit cover, 103-Connecting rod, 103a-Threaded disc, 104-Anti-slip clamp, 105-Crossbeam, 106-Cross laser, 106a-Modible seat, 106b-Bolt, 107-Vertical threaded cylinder, 107a-Threaded block, 107b-Sleeve rod, 107c-Cylinder cover, 108-Sleeve 108a-Support rod, 109-Protective cylinder, 109a-Support, 109b-Screw rod, 109c-Screw sleeve, 109d-Connecting frame, 2-Angle adjustment assembly, 201-Connecting cylinder, 201a-Threaded cap, 202-Modible rod, 202a-Modible block, 203-Base plate, 204-Hydraulic cylinder, 3-Anti-collision assembly, 301-Damper, 302-Shock-absorbing spring, 303-Iron block, 304-Magnetic block, 305-Screw rod. Detailed Implementation

[0027] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0028] Example 1

[0029] Please see Figure 1 , Figure 2 , Figure 4 and Figure 5This utility model is an alignment device for equipment installation, including a main board 1, a carrier plate 101, a protective cylinder 109, a support 109a, a lead screw 109b, a screw sleeve 109c, and a connecting frame 109d. Rotating the lead screw 109b causes the carrier plate 101 to move on the main board 1, adjusting the distance between the carrier plate 101 and the wall, thereby adjusting the distance between the equipment (control box) and the wall, making it easier to install the equipment on the wall.

[0030] Specifically, a protective cylinder 109 is provided on the upper surface of the main board 1. Supports 109a are symmetrically installed on the lower surface of the protective cylinder 109 and mounted on the upper surface of the main board 1. The connecting frame 109d inside the protective cylinder 109 has an L-shaped structure. A carrier plate 101 is installed on the upper surface of the connecting frame 109d. The ball bearings 101a distributed in a rectangular array on the lower surface of the carrier plate 101 support the upper surface of the main board 1. A lead screw 109b passing through the inside of the protective cylinder 109 is located inside the connecting frame 109d. The threaded sleeve 109c on the periphery of the lead screw 109b is connected to the connecting frame 109d.

[0031] Furthermore, mounting seats 102a are symmetrically mounted on the upper surface of the carrier plate 101. A limit cap 102b is threadedly connected to the end of a transverse threaded cylinder 102 that is threaded through the side wall of the mounting seat 102a. A connecting rod 103 is mounted on the side wall of a threaded disc 103a that is threaded internally connected to the transverse threaded cylinder 102. The outer end of the connecting rod 103 passes through the limit cap 102b and is rotatably connected to an anti-slip clamp 104. A crossbeam 105 is provided on the upper surface of the carrier plate 101 and is located on the side away from the mounting seat 102a. Bolts 106b are threadedly connected to the side wall of a movable seat 106a symmetrically fitted on the outer side of the crossbeam 105. The upper surface of the movable seat 106a... A cross laser 106 is installed on the surface. The lower surface of the crossbeam 105 is connected by a support rod 108a. A sleeve 108 is fitted around the outer periphery of the support rod 108a. The lower end of the sleeve 108 passes through the carrier plate 101 and is connected to the upper surface of the main plate 1. A sleeve rod 107b rotatably connected to the lower surface of the crossbeam 105 is located on the side away from the support rod 108a. A vertical threaded cylinder 107 fitted around the outer periphery of the sleeve rod 107b has a cylinder cover 107c threadedly connected to its upper end. The lower end of the vertical threaded cylinder 107 passes through the carrier plate 101 and is connected to the upper surface of the main plate 1. A threaded block 107a fixed to the lower end of the sleeve rod 107b is threadedly connected to the inside of the vertical threaded cylinder 107.

[0032] The operation process of this embodiment is as follows: Place the device (control box) on the carrier plate 101, rotate the connecting rod 103 clockwise, and the threaded disc 103a rotates clockwise inside the transverse threaded cylinder 102. The threaded disc 103a moves outward from the transverse threaded cylinder 102, causing the connecting rod 103 to move outward from the transverse threaded cylinder 102 while rotating. Since the lower surface of the anti-slip clamp 104 abuts against the lower surface of the carrier plate 101, and the anti-slip clamp 104 is rotatably connected to the connecting rod 103, the anti-slip clamp 104 moves closer to the device until both anti-slip clamps... 104 clamps the device; conversely, rotating the connecting rod 103 counterclockwise causes the threaded disc 103a to move towards the interior of the transverse threaded cylinder 102. The connecting rod 103 moves with the threaded disc 103a, causing the anti-slip clamping plates 104 to move, thus releasing the device. After the device is fixed, rotating the sleeve rod 107b clockwise causes the threaded block 107a to rotate clockwise and move upwards, causing the sleeve rod 107b to move upwards, the support rod 108a to move upwards, causing the crossbeam 105 to move upwards, and the cross laser 106 to move upwards. When the sleeve rod 107b is rotated counterclockwise, the sleeve rod 107b and the support rod 108a move downwards, and the crossbeam 105 moves downwards, lowering the height of the cross laser 106. Rotating the bolt 106b counterclockwise releases the fixation on the position of the movable seat 106a, pushing the cross laser 106. The movable seat 106a moves along the crossbeam 105, adjusting the position of the cross laser 106 on the horizontal plane until the light emitted by the cross laser 106 passes through the through hole on the equipment lug. Rotating the bolt 106b clockwise fixes the cross laser 106. The position of the screw 109b is determined by rotating the nut on the screw 109b counterclockwise. When the screw 109b is rotated clockwise, the screw sleeve 109c moves linearly along the screw 109b, the connecting bracket 109d moves closer to the wall, and the ball bearing 101a moves on the main board 1, causing the carrier plate 101 to move closer to the wall. The fixed equipment moves closer to the wall until the lug on the equipment contacts the wall, fixing the position of the lug on the wall and realizing the installation of the equipment. When the screw 109b is rotated counterclockwise, the carrier plate 101 moves away from the wall.

[0033] Example 2

[0034] Please see Figure 1 , Figure 2 and Figure 3 Based on the first specific embodiment, an angle adjustment component 2 is provided. The angle adjustment component 2 includes a base plate 203 and a hydraulic cylinder 204. When the hydraulic cylinder 204 is activated, the piston rod at the telescopic end of the hydraulic cylinder 204 extends or retracts, adjusting the tilt angle of the main board 1. This allows the tilt angle of the equipment (control box) on the carrier plate 101 to be adjusted according to the angle of the wall (tilted surface), expanding the scope of application and improving practicality.

[0035] Specifically, the base plate 203 is hinged to the lower surface of the main plate 1, and a hydraulic cylinder 204 is hinged to the upper surface of the base plate 203. The upper end of the piston rod at the telescopic end of the hydraulic cylinder 204 is hinged to the lower surface of the main plate 1.

[0036] Furthermore, a connecting cylinder 201 is symmetrically hinged to the upper surface of the base plate 203. A movable rod 202 is installed on the side wall of the movable block 202a sleeved inside the connecting cylinder 201. The upper end of the movable rod 202 is hinged to the lower surface of the main plate 1. A threaded cap 201a is threaded to the upper end of the connecting cylinder 201. A through hole for the movable rod 202 to pass through is opened on the threaded cap 201a.

[0037] The operation process of this embodiment is as follows: When the wall surface used to install the equipment (control box) is inclined, the hydraulic cylinder 204 is activated, the piston rod at the telescopic end of the hydraulic cylinder 204 extends, the movable block 202a moves inside the connecting cylinder 201, and the movable block 202a moves closer to the threaded cover 201a. Since the movable block 202a and the movable rod 202 are connected, the moving movable block 202a drives the movable rod 202 to move. The base plate 203 is hinged to the lower surface of the main plate 1, and the upper end of the movable rod 202 is hinged to the lower surface of the main plate 1. Thus, during the movement of the movable rod 202, the main plate 1 moves in an arc, that is, the side of the main plate 1 away from the hydraulic cylinder 204 moves upward, driving the carrier plate 101 to move in an arc, causing the equipment fixed on the carrier plate 101 to move in an arc until the equipment is flush with the wall surface (inclined). (Sloping surface) Parallel, adjust the position of the cross laser 106 so that the light emitted by the cross laser 106 passes through the through hole on the device ear and corresponds to the installation point on the wall (sloping surface); when it is necessary to adjust the main board 1 to be parallel with the base plate 203, the piston rod of the extension end of the hydraulic cylinder 204 retracts, the movable block 202a moves away from the threaded cover 201a, driving the movable rod 202 into the interior of the connecting cylinder 201, so that the main board 1 moves in an arc until the main board 1 is parallel with the base plate 203; when it is necessary to adjust the height of the main board 1, use screws to install the base plate 203 on the upper surface of the external hydraulic lift, start the external hydraulic lift, so that the main board 1 moves up or down, driving the device on the carrier plate 101 to move up or down, and adjust the device to the installation height.

[0038] Example 3

[0039] Please see Figure 1 and Figure 2 Based on specific embodiments one and two, an anti-collision component 3 is provided. The anti-collision component 3 includes a damper 301, a shock-absorbing spring 302, an iron block 303, and a magnetic block 304. After the main board 1 suddenly loses the support of the hydraulic cylinder 204, the main board 1 quickly moves closer to the base plate 203. At this time, through the cooperation of the damper 301 and the shock-absorbing spring 302, the main board 1 is prevented from directly colliding with the base plate 203, thereby reducing the vibration amplitude.

[0040] Specifically, a rectangular array of dampers 301 is mounted on the upper surface of the base plate 203, and a shock-absorbing spring 302 is sleeved on the outer periphery of the dampers 301. The upper surface of the dampers 301 abuts against the lower surface of the main plate 1.

[0041] Furthermore, the upper surface of the base plate 203 has a rectangular array of threaded holes, and the lower surface of the damper 301 is fixed with a screw 305. The screw 305 is threadedly connected to the base plate 203 through the threaded holes. The upper surface of the damper 301 is embedded with an iron block 303, and the lower surface of the main plate 1 is embedded with a rectangular array of magnetic blocks 304. The positions of the iron block 303 and the magnetic block 304 are corresponding.

[0042] The operation process of this embodiment is as follows: During the arc movement of the main board 1, the side of the main board 1 away from the hydraulic cylinder 204 moves upward, and the magnetic block 304 moves away from the iron block 303, causing the main board 1 and the damper 301 to disengage; during the arc movement of the main board 1, the side of the main board away from the hydraulic cylinder 204 moves downward, causing the magnetic block 304 to move closer to the iron block 303. When the lower surface of the main board 1 contacts the damper 301, the magnetic block 304 and the iron block 303 connect; during the process of the main board 1 returning to a parallel state with the base plate 203, it suddenly loses the support of the hydraulic cylinder 204. When supported, the motherboard 1 will quickly move closer to the base plate 203. When the motherboard 1 contacts the damper 301, it will apply downward pressure to the damper 301. At the same time, the shock-absorbing spring 302 works in conjunction with the damper 301 to reduce the external force applied by the motherboard 1 to the damper 301. Meanwhile, the iron block 303 and the magnetic block 304 are connected. The magnetic force of the magnetic block 304 is greater than the elastic force of the shock-absorbing spring 302, preventing the magnetic block 304 and the iron block 303 from separating again after connection. This limits the range of movement of the motherboard 1 under the action of the elastic force of the shock-absorbing spring 302 and speeds up the process of the motherboard 1 stabilizing.

[0043] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

Claims

1. An alignment device for device installation, comprising a motherboard (1), characterized in that: An angle adjustment assembly (2) is provided on the lower surface of the main board (1). The angle adjustment assembly (2) includes a base plate (203) hinged to the lower surface of the main board (1). A hydraulic cylinder (204) is hinged to the upper surface of the base plate (203). The upper end of the piston rod of the extension end of the hydraulic cylinder (204) is hinged to the lower surface of the main board (1). The upper surface of the base plate (203) is provided with an anti-collision component (3), which includes a rectangular array of dampers (301) mounted on the base plate (203). A shock-absorbing spring (302) is sleeved on the outer periphery of the damper (301), and the upper surface of the damper (301) abuts against the lower surface of the main plate (1).

2. The alignment device for equipment installation according to claim 1, characterized in that: The upper surface of the main board (1) is provided with a protective cylinder (109). The supports (109a) symmetrically installed on the lower surface of the protective cylinder (109) are mounted on the upper surface of the main board (1). The connecting frame (109d) sleeved inside the protective cylinder (109) has an L-shaped structure. The upper surface of the connecting frame (109d) is equipped with a carrier plate (101). The ball bearings (101a) distributed in a rectangular array on the lower surface of the carrier plate (101) are supported on the upper surface of the main board (1). The lead screw (109b) penetrating inside the protective cylinder (109) is located inside the connecting frame (109d). The threaded sleeve (109c) connected to the circumferential thread of the lead screw (109b) is connected to the connecting frame (109d).

3. The alignment device for equipment installation according to claim 2, characterized in that: The upper surface of the carrier plate (101) is symmetrically equipped with mounting bases (102a). A transverse threaded cylinder (102) is threaded through the side wall of the mounting base (102a) and a limit cap (102b) is threadedly connected to the end. A connecting rod (103) is installed on the side wall of a threaded disc (103a) that is threaded inside the transverse threaded cylinder (102). The outer end of the connecting rod (103) passes through the limit cap (102b) and is rotatably connected to an anti-slip clamp (104).

4. The alignment device for equipment installation according to claim 3, characterized in that: A crossbeam (105) is provided on the upper surface of the carrier plate (101) on the side away from the mounting base (102a). Bolts (106b) are threaded onto the sidewalls of movable seats (106a) symmetrically fitted on the outer side of the crossbeam (105). A cross laser (106) is mounted on the upper surface of the movable seat (106a). A support rod (108a) is connected to the lower surface of the crossbeam (105). A sleeve (108) is fitted around the outer periphery of the support rod (108a). The lower end of the sleeve (108) penetrates the carrier plate (102a). 1) Connected to the upper surface of the main board (1), the sleeve rod (107b) rotatably connected to the lower surface of the crossbeam (105) is located on the side away from the support rod (108a). The upper end of the vertical threaded cylinder (107) sleeved on the outer periphery of the sleeve rod (107b) is threaded with a cylinder cover (107c). The lower end of the vertical threaded cylinder (107) penetrates the carrier plate (101) and is connected to the upper surface of the main board (1). The threaded block (107a) fixed to the lower end of the sleeve rod (107b) is threaded inside the vertical threaded cylinder (107).

5. The alignment device for equipment installation according to claim 1, characterized in that: The upper surface of the base plate (203) is symmetrically hinged with a connecting cylinder (201). The side wall of the movable block (202a) sleeved inside the connecting cylinder (201) is equipped with a movable rod (202). The upper end of the movable rod (202) is hinged to the lower surface of the main plate (1).

6. The alignment device for equipment installation according to claim 5, characterized in that: The upper end of the connecting cylinder (201) is threadedly connected to a threaded cap (201a), and the threaded cap (201a) has a through hole for the movable rod (202) to pass through.

7. The alignment device for equipment installation according to claim 1, characterized in that: The upper surface of the base plate (203) has a rectangular array of threaded holes, and the lower surface of the damper (301) is fixed with a screw (305), which is threaded to the base plate (203) through the threaded holes.

8. The alignment device for equipment installation according to claim 1, characterized in that: The upper surface of the damper (301) is fitted with an iron block (303), and the lower surface of the main board (1) is fitted with a rectangular array of magnetic blocks (304). The positions of the iron block (303) and the magnetic block (304) are corresponding.