Plant electromechanical comprehensive anti-seismic support

CN122544199APending Publication Date: 2026-08-11扬中长捷电气有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-02
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]桥架的安装离不开抗震支架,通过抗震支架可以对桥架支撑,并限制桥架的位移以及振动控制,现有的抗震支架在对桥架安装时,一部分通过限位块对桥架限位夹持,另一部分通过螺栓固定,利用限位块限位容易受到振动而松脱,导致桥架在抗震支架上位置偏移,利用螺栓固定容易受到振动出现螺栓松动,导致桥架在抗震支架上震动晃动,缺少一种稳定牢固的安装结构,而且,桥架与抗震支架安装前,需要先将桥架水平运动插入至抗震支架的内部,然后在进行安装,拆卸也是同时,当一节桥架长度较长时,就不便于桥架与抗震支架的安装以及拆卸

Benefits of technology

1、本发明通过防松动组件和安装组件以及安装板的相互配合,可以将机电桥架和横杆进行定位对接,限制机电桥架在水平方向上的位移,利用呈错位设置在安装板顶部的若干T形薄片,可以对机电桥架在垂直方向上的限位,不仅规避了螺栓连接带来的易震动松脱的问题,还规避了机电桥架安装不牢固易水平晃动的问题,机电桥架的安装操作简单便捷高效。

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Abstract

This invention provides a seismic-resistant integrated electromechanical support for factory buildings, belonging to the field of seismic support technology. It includes two mirror-shaped suspension rods. Each suspension rod has a first and a second diagonal brace on its outer side wall, with the first diagonal brace located to one side of the second diagonal brace. A through groove is formed on one side of the outer wall of each suspension rod. Two ear plates are symmetrically arranged on one side of the outer wall of each suspension rod near the outer side of the through groove. A crossbar runs through the inside of the through groove. An electromechanical cable tray is installed above the crossbar. Two mounting plates are symmetrically arranged at the bottom of the electromechanical cable tray. This invention, through the cooperation of anti-loosening components, mounting components, and mounting plates, not only avoids the problem of easy vibration and loosening caused by bolted connections, but also avoids the problem of unstable installation and horizontal swaying of the electromechanical cable tray. The installation and operation of the electromechanical cable tray is simple, convenient, and efficient.
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Description

Technical Field

[0001] This invention belongs to the field of seismic bracing technology, specifically relating to a seismic bracing system for integrated electromechanical systems in factory buildings. Background Technology

[0002] Seismic bracing is a specialized support system designed to protect electromechanical facilities (such as water pipes, air ducts, and cable trays) within buildings during earthquakes. It effectively limits equipment displacement, controls vibration, and transfers seismic loads to the main building structure, thereby reducing secondary disasters. The electromechanical system of a factory is a core component of modern industrial buildings, encompassing multiple professional modules such as electrical, water supply and drainage, heating, ventilation and air conditioning (HVAC), fire protection, process piping, and automation control. Its installation quality directly affects production safety, operational efficiency, and subsequent maintenance costs. The electromechanical system of a factory cannot function without cable trays, which are critical infrastructure for ensuring the safe and orderly operation of power, control, and communication lines.

[0003] The installation of cable trays is inseparable from seismic bracing. Seismic bracing supports the cable trays, limits their displacement, and controls vibration. Existing seismic bracing systems use either limit blocks to clamp the cable trays during installation or bolts for fixation. Limit blocks are prone to loosening due to vibration, causing the cable tray to shift position on the seismic bracing. Bolt fixation is also susceptible to loosening due to vibration, leading to vibration and swaying of the cable tray on the seismic bracing. This lack of a stable and robust installation structure is problematic. Furthermore, before installing the cable tray and seismic bracing, the cable tray must be horizontally inserted into the seismic bracing before installation and disassembly can proceed simultaneously. This becomes inconvenient when a section of cable tray is long, hindering both installation and disassembly.

[0004] Therefore, a seismic bracing system for integrated electromechanical components in factory buildings is proposed. Summary of the Invention

[0005] This invention provides a seismic-resistant integrated electromechanical support for factory buildings, the purpose of which is to solve the problems mentioned above.

[0006] This invention provides a seismic-resistant integrated electromechanical support for a factory building, comprising two mirror-arranged suspension rods. Each suspension rod has a first diagonal brace and a second diagonal brace on its outer side wall, with the first diagonal brace located to one side of the second diagonal brace. A through groove is formed on one side of the outer wall of each suspension rod. Two ear plates are symmetrically arranged on one side of the outer wall of each suspension rod near the outer side of the through groove. A crossbar runs through the inside of the through groove. An electromechanical cable tray is positioned above the crossbar. Two mounting plates are symmetrically arranged at the bottom of the electromechanical cable tray. A limit block is provided at the top of each mounting plate near the side of the electromechanical cable tray. The mounting plate has an installation hole at the bottom near the limiting block. A first connection hole is provided on the bottom of the mounting plate and on one side of the outer wall of the limiting block. A second connection hole is provided on the outer wall and bottom of the mounting plate. A guide groove is provided at the top of the crossbar, and several positioning holes are provided at equal intervals at the bottom of the crossbar. A mating hole is provided on the outer wall of the crossbar. A lower pad is provided at the center of the top of the crossbar, and an upper pad is provided at the center of the top of the lower pad. Anti-loosening components and installation components are provided on the crossbar, and a cable tray support component and a cable tray disassembly / assembly component are provided on the hanger.

[0007] Furthermore, the anti-loosening component includes a guide block that slides inside the guide groove. The bottom of the guide block has a threaded hole, and the top of the guide block has a support frame. A magnet is provided on one inner wall of the support frame, and a movable groove is provided on one outer wall of the support frame near the magnet. Several T-shaped thin plates are movably arranged at equal intervals in the vertical direction inside the movable groove. A U-shaped groove is provided at the center of one outer wall of the T-shaped thin plate, and a magnet strip is embedded on the other outer wall of the T-shaped thin plate. The magnet strip and the magnet facing each other have opposite magnetic properties. A fastening screw is connected inside the threaded hole by a threaded connection.

[0008] Furthermore, the mounting assembly includes a guide block two that slides inside the guide groove. The bottom of the guide block two is provided with a threaded hole two, and the top of the guide block two is provided with a mounting post. The interior of the threaded hole two is connected to a fastening screw two by threaded engagement.

[0009] Furthermore, the cable tray support assembly includes a fixing block disposed on one outer wall of the suspension rod and a lifting block that slides on the outer outer wall of the suspension rod. A vertical column is disposed at the top of the lifting block, the vertical column passes through the fixing block, and a lower pin hole and an upper pin hole are provided on the outer peripheral surface of the vertical column. The lower pin hole is located below the upper pin hole. A support block is disposed at the bottom of the lifting block, and two support plates are symmetrically disposed on the outer outer wall of the support block. A stop block is disposed at the top of the support plate, and a fixing pin passes through the interior of the upper pin hole.

[0010] Furthermore, the cable tray assembly includes a first horizontal plate and a second horizontal plate respectively located on the outer wall of the two hangers facing each other and at the lower end. The end of the first horizontal plate away from the hanger is rotatably connected to a rotating plate. The rotating plate and the second horizontal plate are engaged by a pin, and two support blocks are symmetrically arranged on the top of the rotating plate.

[0011] Furthermore, the crossbar and the ear plate are fixed together by bolts, and the crossbar is perpendicular to the hanger. By adopting the above technical solution, the crossbar and ear plate are fixed together with bolts, which can fix the crossbar, thereby ensuring the stability and firmness of the connection between the crossbar and the hanger. The horizontally set crossbar can be used to support and install the electromechanical cable tray.

[0012] Furthermore, the mounting plate and the limiting block are fixed to the electromechanical cable tray by screws, and the screws pass through connection hole one and are screwed into connection hole two; By adopting the above technical solution, screws can be used to fix the mounting plate and the limiting block to the electromechanical cable tray, thereby making the electromechanical cable tray and the mounting plate form a whole, which facilitates the subsequent positioning, docking and installation of the electromechanical cable tray.

[0013] Furthermore, the lower pad is at the same height as guide block one and guide block two, the upper pad and the mounting plate have the same thickness, and the mounting post and the mounting hole match and fit together. By adopting the above technical solution, with the cooperation of the lower pad and the upper pad, the mounting plate at the bottom of the electromechanical cable tray can abut against the top of the crossbar, and the bottom of the electromechanical cable tray can abut against the top of the upper pad, achieving the purpose of installation balance. It also allows the mounting column to be accurately inserted into the mounting hole, realizing the horizontal positioning of the electromechanical cable tray and the crossbar.

[0014] Furthermore, the cross-section of the support frame is "M" shaped, and the adjacent T-shaped sheets in the vertical direction abut and are dynamically fitted together; By adopting the above technical solution, the “M”-shaped support frame provides space for the installation of the magnet sheet and the movement of the T-shaped sheet. Under the action of magnetic repulsion, a part of the T-shaped sheet is pushed out of the “M”-shaped support frame.

[0015] Furthermore, the top of the support plate abuts against the bottom of the electromechanical cable tray, and the stop block abuts against the outer side wall of the electromechanical cable tray; By adopting the above technical solution, the electromechanical cable tray placed on top of the support plate and the stop block can be used to limit the movement of the electromechanical cable tray, thereby keeping the electromechanical cable tray in a stable state during the lifting process.

[0016] The beneficial effects of this invention are as follows: 1. This invention, through the cooperation of anti-loosening components, installation components, and mounting plates, can position and connect the electromechanical cable tray and crossbars, limiting the horizontal displacement of the electromechanical cable tray. By using several T-shaped thin plates staggered on the top of the mounting plate, the vertical positioning of the electromechanical cable tray can be limited. This not only avoids the problem of easy vibration and loosening caused by bolt connections, but also avoids the problem of easy horizontal shaking due to insecure installation of the electromechanical cable tray. The installation and operation of the electromechanical cable tray is simple, convenient, and efficient.

[0017] 2. The present invention enables the vertical assembly and disassembly of electromechanical cable trays through the bottom-opening anti-seismic support and the horizontally detachable crossbar. The space required for the assembly and disassembly of electromechanical cable trays is small, making it suitable for the layout of electromechanical cable trays in small spaces, and ensuring the structural strength of the anti-seismic support after the electromechanical cable tray 4 is installed.

[0018] Other features and advantages of the invention will be set forth in the following description, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures particularly pointed out in the description and the drawings. Attached Figure Description

[0019] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the structure and electromechanical cable tray of an embodiment of the present invention; Figure 2 This is a schematic diagram of the electromechanical cable tray structure according to an embodiment of the present invention; Figure 3 This is a schematic diagram of the structure of an embodiment of the present invention; Figure 4 This is a schematic diagram of the anti-loosening component and the mounting component according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the T-shaped sheet structure according to an embodiment of the present invention; Figure 6 This is a schematic diagram of the cable tray support assembly structure according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the crossbar structure according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the cable tray assembly / disassembly structure according to an embodiment of the present invention; Reference numerals: 1. Hanger rod; 11. Through groove; 12. Ear plate; 2. Diagonal rod one; 3. Diagonal rod two; 4. Electromechanical cable tray; 41. Mounting plate; 411. Mounting hole; 42. Limiting block; 43. Connecting hole one; 44. Connecting hole two; 5. Crossbar; 51. Guide groove; 52. Positioning hole; 53. Butt joint hole; 54. Lower pad; 55. Upper pad; 6. Anti-loosening component; 61. Guide block one; 611. Threaded hole one; 62. Support frame; 621. Magnet piece; 622. Movable groove; 623. T-shaped sheet; 6231. U-shaped groove; 6232, magnetic strip; 63, fastening screw one; 7, mounting assembly; 71, guide block two; 711, threaded hole two; 72, mounting column; 73, fastening screw two; 8, cable tray support assembly; 81, fixing block; 82, lifting block; 821, vertical column; 8211, lower pin hole; 8212, upper pin hole; 83, support block; 84, support plate; 841, stop block; 85, fixing pin; 9, cable tray disassembly and assembly assembly; 91, horizontal plate one; 92, horizontal plate two; 93, rotating plate; 94, pin; 95, support block. Detailed Implementation

[0020] To make the objectives, technical solutions, and advantages of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The same reference numerals in the drawings represent the same components. It should be noted that the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the described embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0021] Example 1 Reference Figure 1-5 and Figure 7This invention proposes a seismic-resistant support for electromechanical systems in a factory building, comprising two mirror-arranged suspension rods 1. Each suspension rod 1 has a first inclined rod 2 and a second inclined rod 3 on its outer side wall, with the first inclined rod 2 located on one side of the second inclined rod 3. A through groove 11 is formed on one side of the outer wall of each suspension rod 1. Two ear plates 12 are symmetrically arranged on one side of the outer wall of each suspension rod 1 near the outer side of the through groove 11. A crossbar 5 passes through the through groove 11. The crossbar 5 and the ear plates 12 are fixed together by bolts, and the crossbar 5 is perpendicular to the suspension rod 1. Fixing the crossbar 5 and the ear plates 12 together with bolts secures the crossbar 5, thereby ensuring... The horizontal bar 5 and the hanger 1 are connected stably and firmly. The horizontal bar 5 can support and install the electromechanical cable tray 4. The electromechanical cable tray 4 is installed above the horizontal bar 5. Two mounting plates 41 are symmetrically arranged at the bottom of the electromechanical cable tray 4. A limit block 42 is provided on the top of the mounting plate 41 near the side of the electromechanical cable tray 4. A mounting hole 411 is opened on the bottom of the mounting plate 41 near the side of the limit block 42. A first connection hole 43 is opened on the bottom of the mounting plate 41 and on one side of the outer wall of the limit block 42. A second connection hole 44 is opened on the outer side wall and bottom of the mounting plate 41. The mounting plate 41 and the limit block 42 are connected to each other. Block 42 is fixed to the electromechanical cable tray 4 with screws. The screws pass through connection hole 43 and are screwed into connection hole 44. The screws can fix the mounting plate 41 and the limiting block 42 to the electromechanical cable tray 4, so that the electromechanical cable tray 4 and the mounting plate 41 form a whole, which facilitates the subsequent positioning, docking and installation of the electromechanical cable tray 4. The top of the crossbar 5 is provided with a guide groove 51, and the bottom of the crossbar 5 is provided with several positioning holes 52 at equal intervals. The outer side wall of the crossbar 5 is provided with docking holes 53. A lower pad 54 is provided at the center of the top of the crossbar 5, and an upper pad 55 is provided at the center of the top of the lower pad 54. The height of 54 is on the same horizontal plane as the height of guide block 61 and guide block 71. The thickness of the upper pad 55 and the mounting plate 41 is the same. The mounting column 72 and the mounting hole 411 are matched and fit together. With the cooperation of the lower pad 54 and the upper pad 55, the mounting plate 41 at the bottom of the electromechanical cable tray 4 can abut against the top of the crossbar 5, and the bottom of the electromechanical cable tray 4 can abut against the top of the upper pad 55, so as to achieve the purpose of installation balance. It can also allow the mounting column 72 to be accurately inserted into the mounting hole 411, so as to realize the horizontal limitation of the electromechanical cable tray 4 and the crossbar 5. The crossbar 5 is equipped with anti-loosening component 6 and mounting component 7. The anti-loosening component 6 includes a guide block 61 that slides inside the guide groove 51. The bottom of the guide block 61 has a threaded hole 611, and the top of the guide block 61 has a support frame 62. The support frame 62 has an "M"-shaped cross-section, with several adjacent T-shaped sheets 623 abutting and movably engaging in the vertical direction. The "M"-shaped support frame 62 provides space for the installation of the magnet sheet 621 and the movement of the T-shaped sheets 623. Under the action of magnetic repulsion, a portion of the T-shaped sheets 623 pushes out of the "M"-shaped support frame 62. One side of the support frame 62... A magnet 621 is provided on the wall, and a movable groove 622 is provided on one side of the outer wall of the support frame 62 near the magnet 621. Several T-shaped thin plates 623 are movably arranged at equal intervals in the vertical direction inside the movable groove 622. A U-shaped groove 6231 is provided at the center of one side of the outer wall of the T-shaped thin plate 623, and a magnet strip 6232 is embedded on the other side of the outer wall of the T-shaped thin plate 623. The magnet strip 6232 and the magnet 621 have opposite magnetic properties on the opposite side. A fastening screw 63 is connected to the inside of the threaded hole 611 by threaded engagement. Mounting assembly 7 includes a guide block 2 71 that slides inside the guide groove 51. The bottom of the guide block 2 71 is provided with a threaded hole 2 711, and the top of the guide block 2 71 is provided with a mounting post 72. The inside of the threaded hole 2 711 is connected to a fastening screw 2 73 by threaded engagement. To improve the stability of the installation of the electromechanical cable tray 4 and the seismic brace, in this embodiment, the anti-loosening component 6, the installation component 7, and the mounting plate 41 work together to position and connect the electromechanical cable tray 4 and the crossbar 5, limiting the horizontal displacement of the electromechanical cable tray 4. Several T-shaped thin plates 623, staggered at the top of the mounting plate 41, limit the vertical movement of the electromechanical cable tray 4. This not only avoids the problem of easy loosening due to vibration caused by bolt connections but also avoids the problem of easy horizontal swaying due to insecure installation of the electromechanical cable tray 4. The installation operation of the electromechanical cable tray 4 is simple, convenient, and efficient. Specifically, the seismic brace... The frame is installed on the floor slab. Hanger 1, diagonal brace 1, and diagonal brace 2 are fixed to the floor slab. Mounting plate 41 is installed at the bottom of the electromechanical cable tray 4. After mounting plate 41 abuts against the bottom of the electromechanical cable tray 4, limiting block 42 abuts against the outer wall of the electromechanical cable tray 4. Then, using screws, mounting plate 41 and limiting block 42 are fixed together with the electromechanical cable tray 4 to form a whole. Subsequently, the electromechanical cable tray 4 is lifted using external hoisting equipment and moved to the inner side of the seismic support (i.e., between the two hanger 1s, above the crossbar 5). Guide block 2 71 is moved along the guide groove 51 on the crossbar 5, adjusting the distance between the two guide blocks 2 71. The mounting post 72 on guide block 2 71 is positioned directly below mounting hole 411. Then, fastening screw 2 73 is passed through positioning hole 52 and screwed into threaded hole 2 711 to fix guide block 2 71 in position. The position of electromechanical cable tray 4 is adjusted, and its downward movement is controlled. As the electromechanical cable tray 4 moves vertically downward, mounting hole 411 is fitted onto mounting post 72. Finally, guide block 1 61 is moved along guide groove 51 on crossbar 5. As guide block 1 61 moves, support frame 62 at the top of guide block 1 61 moves towards electromechanical cable tray 4, and several T-shaped thin plates 623 on support frame 62 move synchronously. As the T-shaped plates 623 move horizontally, when some of them contact the mounting plate 41, they are forced to move relative to the support frame 62 under the resistance of the mounting plate 41, and are housed inside the support frame 62. The part that does not contact the mounting plate 41 is positioned on top of the mounting plate 41 under the magnetic repulsion of the magnetic sheet 621 and the magnetic strip 6232, and surrounds the outside of the mounting column 72, thus achieving the connection between the mounting plate 41 and the crossbar 5, and achieving the vertical positioning of the electromechanical cable tray 4, thus achieving the installation and fixation of the electromechanical cable tray 4 and the seismic support.

[0022] Example 2 Reference Figure 1 , Figure 6 and Figure 8Based on the above embodiments, this invention also proposes a seismic-resistant integrated electromechanical support for factory buildings, including a suspension rod 1. A cable tray support assembly 8 and a cable tray disassembly assembly 9 are mounted on the suspension rod 1. The cable tray support assembly 8 includes a fixing block 81 mounted on one outer wall of the suspension rod 1 and a lifting block 82 sliding on the outer wall of the suspension rod 1. A vertical column 821 is mounted on the top of the lifting block 82, passing through the fixing block 81. A lower pin hole 8211 and an upper pin hole 8212 are provided on the outer circumferential surface of the vertical column 821. The lower pin hole 8211 is located at the upper pin hole 8212. Below the hole 8212, a support block 83 is provided at the bottom of the lifting block 82. Two support plates 84 are symmetrically arranged on the outer side wall of the support block 83. A stop block 841 is provided at the top of the support plate 84. The top of the support plate 84 abuts against the bottom of the electromechanical cable tray 4, and the stop block 841 abuts against the outer side wall of the electromechanical cable tray 4. The support plate 84 and the stop block 841 can limit the electromechanical cable tray 4 placed on the top of the support plate 84, so that the electromechanical cable tray 4 is in a stable state during the lifting process. A fixing pin 85 passes through the inside of the upper pin hole 8212. The cable tray assembly 9 includes a horizontal plate 91 and a horizontal plate 92 respectively located on the outer wall of the opposite side of the two hangers 1 and at the lower end. A rotating plate 93 is rotatably connected to the end of the horizontal plate 91 away from the hanger 1. The rotating plate 93 and the horizontal plate 92 are connected by a pin 94. Two support blocks 95 are symmetrically arranged on the top of the rotating plate 93. To facilitate the assembly and disassembly of the electromechanical cable tray 4, in this embodiment, the bottom-openable seismic brace and the horizontally detachable crossbar 5 enable the vertical assembly and disassembly of the electromechanical cable tray 4. The space required for assembly and disassembly of the electromechanical cable tray 4 is small, making it suitable for installation in confined spaces. It also ensures the structural strength of the seismic brace after the electromechanical cable tray 4 is installed. Specifically, when vertically installing the electromechanical cable tray 4, the pin 94 is removed. After one end of the rotating plate 93 loses support, under gravity, the rotating plate 93 rotates downwards along the other end. At this time, the bottom of the seismic brace is open, allowing for external hoisting. The electromechanical cable tray 4 is lifted or supported, and its vertical upward movement is controlled to pass through the open space and enter the interior of the seismic support. Then, the crossbar 5 is passed through the through slot 11 on the two hangers 1. The crossbar 5 is located below the electromechanical cable tray 4. The crossbar 5 and the ear plate 12 are fixed together with bolts. After adjusting the anti-loosening component 6 and the installation component 7 on the crossbar 5, the electromechanical cable tray 4 is controlled to move downward and achieve docking and fixing with the crossbar 5. Finally, the rotating plate 93 is rotated, and the rotating plate 93 and the crossbar 92 are docked together with the pin 94 to achieve the vertical installation of the electromechanical cable tray 4. When it is necessary to disassemble the electromechanical cable tray 4, first disassemble the electromechanical cable tray 4 and the crossbar 5. Use the cable tray lifting assembly 8 and external hoisting equipment to lift the electromechanical cable tray 4 upward and place it in a stable position. Then, open the rotating plate 93 to expose the bottom of the seismic support and pull out the crossbar 5. Subsequently, disconnect the cable tray lifting assembly 8 from the hanging rod 1. After removing the cable tray lifting assembly 8, the electromechanical cable tray 4 can be moved vertically downward. The electromechanical cable tray 4 is detached from the seismic support. The electromechanical cable tray 4 can be installed vertically, which can realize the installation and disassembly of the electromechanical cable tray 4 in a small space and has a wider range of applications.

[0023] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A factory electromechanical comprehensive anti-seismic support, comprising two mirror image arranged suspending rods (1), the outer side walls of the two suspending rods (1) are provided with inclined rod one (2) and inclined rod two (3), the inclined rod one (2) is located on one side of the inclined rod two (3), characterized in that: Two through slots (11) are provided on one side of the outer wall of each of the two suspension rods (1). Two ear plates (12) are symmetrically arranged on one side of the outer wall of the suspension rod (1) near the outer side of the through slot (11). A crossbar (5) runs through the inside of the through slot (11). An electromechanical cable tray (4) is provided above the crossbar (5). Two mounting plates (41) are symmetrically arranged at the bottom of the electromechanical cable tray (4). A limit block (42) is provided at the top of the mounting plate (41) near the side of the electromechanical cable tray (4). A mounting hole (411) is provided at the bottom of the mounting plate (41) near the side of the limit block (42). The bottom of the mounting plate (41) and the limit block (42) has a connecting hole 1 (43) on one side of the outer wall. The mounting plate (41) has a connecting hole 2 (44) on the outer wall and bottom. The top of the crossbar (5) has a guide groove (51) and the bottom of the crossbar (5) has several positioning holes (52) at equal intervals. The outer wall of the crossbar (5) has a docking hole (53). The top center of the crossbar (5) has a lower pad (54) and the top center of the lower pad (54) has an upper pad (55). The crossbar (5) has an anti-loosening component (6) and an installation component (7). The hanger (1) has a cable tray lifting component (8) and a cable tray disassembly and assembly component (9).

2. The factory building electromechanical comprehensive anti-seismic support according to claim 1, characterized in that: The anti-loosening component (6) includes a guide block (61) that slides inside the guide groove (51). The bottom of the guide block (61) is provided with a threaded hole (611), and the top of the guide block (61) is provided with a support frame (62). A magnet (621) is provided on one inner wall of the support frame (62), and a movable groove (622) is provided on one outer wall of the support frame (62) near the magnet (621). 22) The interior is provided with several T-shaped thin plates (623) that are movably arranged at equal intervals in the vertical direction. A U-shaped groove (6231) is provided at the center of one side of the outer wall of the T-shaped thin plate (623), and a magnet strip (6232) is embedded on the other side of the outer wall of the T-shaped thin plate (623). The magnet strip (6232) and the magnet plate (621) have opposite magnetic properties on the side facing each other. The interior of the threaded hole (611) is connected to a fastening screw (63) by threaded engagement.

3. The factory building electromechanical comprehensive anti-seismic support according to claim 1, characterized in that: The mounting assembly (7) includes a guide block two (71) that slides inside the guide groove (51). The bottom of the guide block two (71) is provided with a threaded hole two (711), and the top of the guide block two (71) is provided with a mounting post (72). The inside of the threaded hole two (711) is connected to a fastening screw two (73) by threaded engagement.

4. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 1, characterized in that: The cable tray support assembly (8) includes a fixing block (81) on one side of the outer wall of the hanger (1) and a lifting block (82) that slides on the outer wall of the hanger (1). The top of the lifting block (82) is provided with a vertical column (821), which passes through the fixing block (81). The outer circumferential surface of the vertical column (821) is provided with a lower pin hole (8211) and an upper pin hole (8212). The lower pin hole (8211) is located below the upper pin hole (8212). The bottom of the lifting block (82) is provided with a support block (83). Two support plates (84) are symmetrically arranged on the outer wall of the support block (83). The top of the support plate (84) is provided with a stop block (841). A fixing pin (85) passes through the interior of the upper pin hole (8212).

5. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 1, characterized in that: The cable tray assembly (9) includes a horizontal plate 1 (91) and a horizontal plate 2 (92) respectively located on the outer wall of the two hangers (1) facing each other and at the lower end. A rotating plate (93) is rotatably connected to the end of the horizontal plate 1 (91) away from the hanger (1). The rotating plate (93) and the horizontal plate 2 (92) are connected by a pin (94). Two support blocks (95) are symmetrically arranged on the top of the rotating plate (93).

6. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 1, characterized in that: The crossbar (5) and the ear plate (12) are fixed together by bolts, and the crossbar (5) is perpendicular to the hanger (1).

7. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 1, characterized in that: The mounting plate (41) and the limiting block (42) are fixed to the electromechanical cable tray (4) by screws, which pass through the first connection hole (43) and are screwed to the second connection hole (44).

8. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 3, characterized in that: The lower pad (54) is at the same height as the guide block one (61) and the guide block two (71), the upper pad (55) and the mounting plate (41) have the same thickness, and the mounting post (72) and the mounting hole (411) are matched and fit together.

9. The integrated seismic bracing system for electromechanical systems in a factory building according to claim 2, characterized in that: The cross-section of the support frame (62) is "M" shaped, and the adjacent T-shaped sheets (623) in the vertical direction abut and move together.

10. A seismic bracing system for integrated electromechanical systems in a factory building according to claim 4, characterized in that: The top of the support plate (84) abuts against the bottom of the electromechanical cable tray (4), and the stop block (841) abuts against the outer side wall of the electromechanical cable tray (4).