Intelligent assembly type steel structure industrial plant

Through the modular design and coordinated energy consumption mechanism, the stability and safety of the steel structure factory in the extreme environment are solved, and an efficient, safe and comfortable production space is achieved.

CN120273551APending Publication Date: 2025-07-08DONGGUAN LIANTAI STEEL STRUCTURE CO LTD
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Patent Information

Application Number
CN202510430995.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

The structural stability and safety of steel structure industrial plants in extreme environments face challenges. Traditional construction methods have safety hazards and low construction efficiency. The fixed layout of the internal space is difficult to meet diversified production needs, and there is a lack of systematic solutions to improve seismic and wind resistance and construction efficiency.

Method used

The intelligent prefabricated steel structure factory with modular design, including support units, shock-cushioning wind-resistant units and fresh air units, uses a collaborative energy consumption mechanism of embedded connection, mechanical linkage and elastic buffering, combined with standardized prefabricated design and intelligent airflow regulation to achieve rapid assembly and environmental optimization.

Benefits of technology

It significantly improves construction efficiency, enhances earthquake resistance and wind resistance, reduces structural deformation risks, optimizes the internal environment, meets diversified production needs, and ensures the safety and comfort of the factory.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of steel structure industrial factory building design and construction, and discloses an intelligent assembly type steel structure industrial factory building which comprises a steel structure factory building, and the steel structure factory building comprises a supporting unit. According to the intelligent assembly type steel structure industrial factory building, the performance of the steel structure factory building is improved through three innovations, the supporting units are connected with key components in a groove embedded mode, a three-dimensional force transmission system of double supporting columns and a bottom frame is combined, roof loads are dispersed in a multi-path mode, stress concentration is reduced, and the assembly efficiency is improved by 40% through standardized prefabricated parts; the cushioning unit drives a spring to be compressed through hinged swing to form a collaborative energy dissipation mechanism, redundant buffering and straddle column pulling are used for restraining lateral displacement, the earthquake lateral displacement angle is reduced by 35%, the fresh air unit generates uniform vortex airflow through a five-fan-blade array embedded in a supporting beam, energy is saved by 20%, intelligent noise reduction and speed regulation are achieved to adapt to the high-temperature and high-humidity environment, and the structural stability, anti-seismic performance and environmental performance are comprehensively improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of the design and construction of steel structure industrial plants, and particularly to an intelligent prefabricated steel structure industrial plant. Background Art

[0002] A steel structure industrial plant is an industrial building mainly made of steel materials. It has many advantages, such as high strength, light weight, fast construction speed, and recyclability. The structural forms of steel structure industrial plants are diverse and can meet different industrial production needs. During the design and construction process, factors such as the use of the plant, load, and seismic requirements need to be considered to ensure the safety and reliability of the plant. At the same time, the appearance of the steel structure industrial plant can also be designed according to needs to make it harmonious with the surrounding environment. In short, the steel structure industrial plant is an important building form in modern industrial architecture and provides high-quality space and facilities for industrial production.

[0003] Currently, the structural stability and safety of steel structure industrial plants in extreme environments face severe challenges. Traditional construction methods rely mostly on high-altitude operations, which have relatively large potential safety hazards and low construction efficiency. In addition, the fixed layout of the internal space is difficult to meet diverse production needs, resulting in low space utilization. With the advancement of Industry 4.0, intelligent construction technologies and modular design concepts have gradually been introduced, but there is still a lack of systematic solutions to comprehensively improve the seismic and wind resistance performance and construction efficiency of steel structure industrial plants. Therefore, there is an urgent need for an intelligent prefabricated steel structure industrial plant. Summary of the Invention

[0004] The purpose of the present invention is to provide an intelligent prefabricated steel structure industrial plant to solve the problems raised in the above background art.

[0005] To solve the above technical problems, the present invention provides the following technical solution: An intelligent prefabricated steel structure industrial plant, including a steel structure plant building, and the steel structure plant building includes a support unit; The support unit is used as the main body of the steel structure plant building. The support unit includes a first support base. A first groove is formed on the surface of the first support base, and a second groove is also formed on the surface of the first support base. A first support frame is fixedly connected to the inner wall of the first groove. A second support base is fixedly connected to the surface of the first support frame. A third groove is formed on the surface of the second support base. A second support frame is fixedly connected to the inner wall of the third groove. The top end of the first support frame is fixedly connected to a bottom plate. A first support column is fixedly connected to the top end of the bottom plate. A support beam is fixedly connected to the top end of the first support column. A second support column is also fixedly connected to the top end of the bottom plate. A support beam identical to the first support column is fixedly connected to the top end of the second support column; The steel structure workshop further includes a shock-absorbing and wind-resistant unit, which is used to absorb part of the force generated during an earthquake or strong wind to relieve the shaking of the workshop itself. The shock-absorbing and wind-resistant unit includes a rotating head, and a first rotating rod is rotatably connected to the inner wall of the rotating head. One end of the first rotating rod away from the rotating head is rotatably connected to a rotating frame. A spring is fixedly connected to the surface of the rotating frame away from the first rotating rod, and a buffer seat is fixedly connected to the end of the spring away from the rotating frame.

[0006] Preferably, the surface of the first support column is fixedly connected to the rotating head, and the surface of the second support column is fixedly connected to the buffer seat.

[0007] Preferably, there are two springs, and the two springs are linearly arranged along the inner wall of the buffer seat. The surface of the rotating frame is slidably connected to the inner wall of the buffer seat.

[0008] Preferably, a first baffle is fixedly connected to the inner wall of the second groove, a second baffle is fixedly connected to the top end of the first baffle, and the bottom end of the second baffle is fixedly connected to the support beam.

[0009] Preferably, the bottom end of the bottom plate is fixedly connected to the second support frame, and the bottom end of the bottom plate is also fixedly connected to the first support seat.

[0010] Preferably, the steel structure workshop further includes a fresh air unit, which is used to replace the air in the workshop and lower the indoor temperature. The fresh air unit includes a mounting frame, a motor is fixedly connected to the top end of the mounting frame, an output end of the motor penetrates through the mounting frame and is fixedly connected to a second rotating rod, and a fan blade is fixedly connected to the surface of the second rotating rod.

[0011] Preferably, the bottom end of the mounting frame is fixedly connected to the inner wall of the support beam, there are five fan blades, and the five fan blades are circumferentially arranged around the surface of the second rotating rod.

[0012] Preferably, there are four groups of the first support seats, and each group of the first support seats is respectively arranged at both ends of the first support frame.

[0013] Compared with the prior art, the beneficial effects achieved by the present invention are: First, the grooves one and two opened on the surface of the support base of the present invention are respectively fixedly connected to the support frame one and the baffle one in an embedded manner. The anti-shear ability is enhanced through the limiting effect of the inner wall of the groove, and at the same time, the fatigue risk of traditional welding joints is avoided. The support columns one and two symmetrically distributed at the top of the bottom plate, combined with the fixed connection of the bottom to the support frame two, form a three-dimensional force transmission system of "upper columns and lower frames", evenly dispersing the roof load to the foundation, effectively reducing local stress concentration. Components such as the support base one and the support base two are quickly assembled through standardized grooves and bolt connections, greatly shortening the construction period and facilitating later maintenance and replacement, especially suitable for the high-efficiency requirements of prefabricated buildings.

[0014] Second, the hinge structure of the rotating head and the rotating rod one of the present invention allows the rotating frame to swing with multiple degrees of freedom in the horizontal direction. The spring absorbs the lateral kinetic energy through compression deformation, forming a double-path energy dissipation mechanism of "rotating energy dissipation + elastic energy storage", converting the impact force into a controllable non-destructive displacement. The two springs are linearly arranged along the buffer seat, cooperating with the sliding connection between the rotating frame and the inner wall of the buffer seat, constituting a redundant buffer system. Even if a single spring fails, it can still maintain partial functions, significantly improving the reliability of the seismic system. The shock absorption unit is bridged between the support column one and the support column two, forming a distributed connection with diagonal bracing. By restricting the lateral displacement of the factory building frame, the risk of structural deformation is further reduced.

[0015] Third, the five fan blades of the present invention are distributed in a circular array around the rotating rod two, forming a vortex air flow with a wide coverage range through the drive of the motor, saving about % energy compared with traditional axial flow fans, and the air flow disturbance is more uniform. The mounting frame is directly embedded and fixed in the inner wall of the support beam, avoiding occupying the net height of the factory building or interfering with the equipment layout. At the same time, the rigid structure of the support beam is used to isolate the vibration conduction, reducing the noise of the fan operation. The motor can be externally connected to a temperature and humidity sensor to achieve intelligent speed regulation, dynamically adjusting the ventilation intensity according to real-time environmental data, and reserving an expansion interface for subsequent intelligent control to meet the environmental control requirements of high-temperature and high-humidity areas. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of a partial structure of the present invention; Figure 3 It is a schematic diagram of a partial structure of the present invention; Figure 4 It is a schematic diagram of a partial structure of the present invention; Figure 5 It is a schematic diagram of the split of the overall structure of the present invention; Figure 6 It is a schematic diagram of the split and upward view of the overall structure of the present invention; Figure 7 It is a schematic diagram of the shock absorption and wind resistance unit of the present invention.

[0017] Legend Explanation: 1. Steel structure workshop; 10. Support unit; 1001. First support seat; 1002. First support frame; 1003. Second support seat; 1004. Second support frame; 1005. Bottom plate; 1006. First baffle; 1007. First support column; 1008. Second support column; 1009. Support beam; 1010. Second baffle 20. Shock-absorbing and wind-resistant unit; 2001. Rotating head; 2002. First rotating rod; 2003. Rotating frame; 2004. Spring; 2005. Buffer seat 30. Fresh air unit; 3001. Mounting frame; 3002. Motor; 3003. Second rotating rod; 3004. Fan blade Specific implementation mode

[0018] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention. Embodiment

[0019] As Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7 shown, the present invention provides a technical solution: an intelligent prefabricated steel structure industrial workshop, including a steel structure workshop 1, and the steel structure workshop 1 includes a support unit 10; The support unit 10 is used as the main body of the steel structure workshop 1. The support unit 10 includes a first support seat 1001. A first groove is formed on the surface of the first support seat 1001. A second groove is also formed on the surface of the first support seat 1001. The inner wall of the first groove is fixedly connected with a first support frame 1002. The surface of the first support frame 1002 is fixedly connected with a second support seat 1003. A third groove is formed on the surface of the second support seat 1003. The inner wall of the third groove is fixedly connected with a second support frame 1004. The top end of the first support frame 1002 is fixedly connected with a bottom plate 1005. The top end of the bottom plate 1005 is fixedly connected with a first support column 1007. The top end of the first support column 1007 is fixedly connected with a support beam 1009. The top end of the bottom plate 1005 is also fixedly connected with a second support column 1008. The top end of the second support column 1008 is fixedly connected with a support beam 1009 identical to the first support column 1007; The steel structure workshop 1 further includes a shock-absorbing and wind-resistant unit 20. The shock-absorbing and wind-resistant unit 20 is used to absorb part of the force generated during an earthquake or strong wind to relieve the shaking of the workshop itself. The shock-absorbing and wind-resistant unit 20 includes a rotating head 2001. The inner wall of the rotating head 2001 is rotatably connected to a first rotating rod 2002. One end of the first rotating rod 2002 away from the rotating head 2001 is rotatably connected to a rotating frame 2003. The surface of one end of the rotating frame 2003 away from the first rotating rod 2002 is fixedly connected to a spring 2004. One end of the spring 2004 away from the rotating frame 2003 is fixedly connected to a buffer seat 2005.

[0020] The support unit 10 of the intelligent prefabricated steel structure industrial workshop realizes efficient load-bearing and stable force transmission through modular structure design: The first groove and the second groove on the surface of the first support seat 1001 respectively embed the first support frame 1002 and subsequent connecting components to form a longitudinal rigid support; The first support frame 1002 and the second support frame 1004 are connected in series through the second support seat 1003 and the third groove to form a continuous force transmission path; The first support column 1007 and the second support column 1008 symmetrically distributed on the bottom plate 1005 jointly support the top double support beam 1009 to form a three-dimensional force transmission network, evenly dispersing the load to the foundation and effectively reducing local stress. The shock-absorbing and wind-resistant unit 20 dissipates energy through mechanical linkage and elastic buffering in coordination: The hinged structure of the rotating head 2001 and the first rotating rod 2002 allows the rotating frame 2003 to swing horizontally, driving the spring 2004 to compress and deform, converting the impact force of the earthquake or strong wind into elastic potential energy. The buffer seat 2005 restricts the spring offset through a sliding connection to form a redundant energy dissipation mechanism, significantly suppressing the shaking of the workshop and ensuring the structural safety under extreme working conditions. The combination of the two realizes the comprehensive improvement of assembly efficiency, load-bearing performance and seismic resistance.

[0021] The surface of the first support column 1007 is fixedly connected to the rotating head 2001, and the surface of the second support column 1008 is fixedly connected to the buffer seat 2005.

[0022] This connection design fixes the two ends of the shock-absorbing and wind-resistant unit 20 to the first support column 1007 and the second support column 1008 respectively to form an inclined bracing across the column space: The rigid connection between the rotating head 2001 and the first support column 1007 provides a rotating fulcrum, and the fixation of the buffer seat 2005 and the second support column 1008 serves as an elastic energy dissipation anchor point; When an earthquake or strong wind causes the lateral displacement of the workshop frame, the shock-absorbing unit drives the spring 2004 to compress and deform through the hinged swing of the first rotating rod 2002 and the rotating frame 2003, converting the impact force into the elastic potential energy of the spring. At the same time, the relative displacement between the support columns is restricted through the inclined bracing, thereby effectively suppressing the overall shaking of the structure and improving the seismic and wind resistance performance.

[0023] There are two springs 2004, and the two springs 2004 are linearly arrayed along the inner wall of the buffer seat 2005. The surface of the rotating frame 2003 is slidably connected to the inner wall of the buffer seat 2005.

[0024] This design improves the reliability and stability of the shock absorption unit through a dual-spring redundant layout and a sliding guiding structure: the two springs 2004 are linearly arranged along the inner wall of the buffer seat 2005 to form a parallel load sharing mechanism. When one-sided spring fails due to overload, the other spring can still continue to compress and deform to absorb impact energy, preventing the system from completely losing its buffering function. At the same time, the sliding connection between the rotating frame 2003 and the inner wall of the buffer seat restricts the lateral offset of the spring, ensuring that the spring only compresses or stretches along the preset axial direction, preventing jamming or structural damage caused by eccentric loading, thereby maintaining a stable energy dissipation path in strong winds or earthquakes and extending the service life of the device.

[0025] A baffle one 1006 is fixedly connected to the inner wall of the second groove. The top end of the baffle one 1006 is fixedly connected to a baffle two 1010, and the bottom end of the baffle two 1010 is fixedly connected to the support beam 1009.

[0026] This structure enhances the force transmission efficiency and lateral stability of the support system through the baffle component: the baffle one 1006 is fixed to the inner wall of the second groove of the first support seat 1001 and serves as a vertical load-bearing carrier to transmit the load of the support beam 1009 downward to the first support seat 1001. The top end of the baffle two 1010 is rigidly connected to the baffle one 1006, and the bottom end is fixedly connected to the support beam 1009, forming a continuous force transmission path of "support beam - baffle two - baffle one - support seat". This not only disperses the local pressure of the roof load on the support column but also enhances the shear resistance of the first support frame 1002 through the lateral restraint of the baffle, preventing the support seat from undergoing lateral displacement under dynamic loads, thereby enhancing the rigidity and durability of the overall structure.

[0027] The bottom end of the bottom plate 1005 is fixedly connected to the second support frame 1004, and the bottom end of the bottom plate 1005 is also fixedly connected to the first support seat 1001.

[0028] This connection design constructs a multi-directional force transmission path through the double-sided fixation at the bottom of the bottom plate 1005 to enhance the structural integrity: the bottom end of the bottom plate 1005 is rigidly connected to both the second support frame 1004 and the first support seat 1001, forming a composite force transmission system of "support column - bottom plate - support frame / support seat". This enables the roof load borne by the first support column 1007 and the second support column 1008 to be synchronously transmitted through the bottom plate 1005 to the longitudinal support structure of the second support frame 1004 and the foundation part of the first support seat 1001, achieving double dispersion of the load in the vertical and horizontal directions, avoiding stress concentration caused by single-point loading on the bottom plate, and at the same time restraining the deformation of the bottom plate through multi-point fixation, enhancing the flexural stiffness and overall stability of the support unit.

[0029] The steel structure workshop 1 further includes a fresh air unit 30. The fresh air unit 30 is used to replace the air in the workshop and lower the indoor temperature. The fresh air unit 30 includes a mounting frame 3001. At the top of the mounting frame 3001, a motor 3002 is fixedly connected. The output end of the motor 3002 penetrates through the mounting frame 3001 and is fixedly connected to a second rotating rod 3003. On the surface of the second rotating rod 3003, a fan blade 3004 is fixedly connected.

[0030] The fresh air unit 30 drives the second rotating rod 3003 to drive the fan blade 3004 to rotate through the motor 3002, forming a forced air circulation system. Its core function is to improve the air circulation efficiency in the workshop, realizing rapid air exchange and cooling. The mounting frame 3001 provides a stable support structure. The linkage design of the motor and the fan blade efficiently converts mechanical energy into wind energy, discharging hot air directionally and introducing fresh air, improving the internal temperature and humidity environment of the workshop, ensuring the heat dissipation requirements of production equipment and personnel, and at the same time reducing the pressure on the traditional refrigeration system by reducing energy consumption.

[0031] The bottom end of the mounting frame 3001 is fixedly connected to the inner wall of the support beam 1009. There are five fan blades 3004, and the five fan blades 3004 are distributed in a circumferential array around the surface of the second rotating rod 3003.

[0032] This design realizes low-interference and high-efficiency ventilation through the integrated layout of the mounting frame 3001 and the fan blade 3004: the bottom end of the mounting frame 3001 is directly fixed to the inner wall of the support beam 1009, using the rigid structure of the support beam to bear the operation load of the fan, avoiding additional occupation of the workshop space or affecting the equipment layout, and at the same time isolating the vibration conduction of the motor 3002 through the beam body to reduce noise; the five fan blades 3004 are distributed in a circumferential array around the second rotating rod 3003, forming a uniform centrifugal vortex airflow when rotating at high speed, expanding the airflow coverage area by about 30% compared with the traditional fan blade layout, and reducing the air resistance by optimizing the blade angle, reducing the motor energy consumption by about 15% under the same air volume, taking into account both ventilation efficiency and energy-saving requirements.

[0033] There are four groups of first support seats 1001, and each group of first support seats 1001 is respectively arranged at both ends of the first support frame 1002.

[0034] This structure adopts four groups of symmetrically distributed first support seats 1001, which are respectively arranged at both ends of the first support frame 1002, forming a multi-point balanced load-bearing system. Its core function is to enhance the structural stability of the support frame and the ability to resist lateral deformation. By dispersing the load at multiple points, the risk of local stress concentration is reduced, and at the same time, the balance and anti-overturning performance of the overall frame are improved, ensuring that the main body of the workshop maintains reliable spatial stiffness and long-term operation safety under dynamic loads or vibration environments.

[0035] Working principle: The device of the present invention realizes the efficient and stable operation of an intelligent prefabricated steel structure industrial plant through the synergistic effect of modular structure design, mechanical energy consumption optimization, and environmental control technology. Its core principle is as follows: The support unit 10 serves as the main load-bearing structure of the plant. Adopting an embedded connection and a three-dimensional force transmission mechanism, the first groove and the second groove opened on the surface of the first support seat 1001 are rigidly fixed to the first support frame 1002 and the first baffle 1006 respectively. The anti-shear performance is enhanced through the limiting effect of the inner wall of the groove, avoiding the fatigue failure risk of traditional welded joints. The first support columns 1007 and the second support columns 1008 symmetrically distributed at the top of the bottom plate 1005 and the second support frame 1004 at the bottom form a three-dimensional force transmission network of "column-beam-frame", evenly dispersing the roof load to the foundation through multiple paths, significantly reducing local stress concentration. At the same time, all support components adopt a standardized prefabricated design and are quickly assembled through grooves and bolts, with the construction efficiency increased by more than 40% compared with traditional processes. The shock and wind resistance unit 20 ensures the structural safety in extreme environments through a synergistic energy consumption mechanism of mechanical linkage and elastic buffering. When lateral loads are caused by earthquakes or strong winds, the hinged structure of the rotating head 2001 and the first rotating rod 2002 drives the rotating frame 2003 to swing, driving the compression deformation of two linearly arranged springs 2004, converting the impact kinetic energy into elastic potential energy and consuming part of the energy through hinge friction. The sliding connection inside the buffer seat 2005 restricts the eccentric load of the spring, forming a redundant buffer system that can still continuously consume energy even if a single spring fails. At the same time, the shock absorption unit is bridged between the first support column 1007 and the second support column 1008, restricting the lateral displacement of the frame through diagonal bracing, reducing the maximum lateral displacement angle under earthquake action by about 35%. The fresh air unit 30 is integrated into the inner wall of the support beam 1009, optimizing the environment through low-interference installation and intelligent air flow control. The motor 3002 drives five fan blades 3004 distributed in a circular array to generate a vortex air flow, expanding the disturbance range by 50% and saving 20% energy compared with traditional axial fans. The mounting frame 3001 uses the rigid structure of the support beam to isolate vibration conduction, reducing the operating noise by more than 15 decibels. At the same time, an external temperature and humidity sensor is connected to achieve dynamic speed regulation, adjusting the ventilation intensity according to real-time data, and an Internet of Things expansion interface is reserved. When the three work together, the support unit maintains structural stability under static loads, the shock absorption unit dynamically dissipates sudden impacts, the fresh air unit continuously optimizes environmental parameters, and damaged components can be quickly replaced through modular design after a disaster, combined with the intelligent ventilation acceleration function to restore, thus realizing the comprehensive performance improvement of safety, efficiency, and comfort of the plant throughout its life cycle.

[0036] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent prefabricated steel structure industrial workshop, comprising a steel structure workshop (1), characterized in that: The steel structure workshop (1) includes a support unit (10); The support unit (10) is used as the main body of the steel structure workshop (1). The support unit (10) includes a first support base (1001). A first groove is formed on the surface of the first support base (1001), and a second groove is also formed on the surface of the first support base (1001). A first support frame (1002) is fixedly connected to the inner wall of the first groove. A second support base (1003) is fixedly connected to the surface of the first support frame (1002). A third groove is formed on the surface of the second support base (1003). A second support frame (1004) is fixedly connected to the inner wall of the third groove. The top end of the first support frame (1002) is fixedly connected to a bottom plate (1005). A first support column (1007) is fixedly connected to the top end of the bottom plate (1005). A support beam (1009) is fixedly connected to the top end of the first support column (1007). A second support column (1008) is also fixedly connected to the top end of the bottom plate (1005). A support beam (1009) identical to the first support column (1007) is fixedly connected to the top end of the second support column (1008); The steel structure workshop (1) further includes a shock absorption and wind resistance unit (20). The shock absorption and wind resistance unit (20) is used to absorb part of the force generated during an earthquake or strong wind to relieve the shaking of the workshop itself. The shock absorption and wind resistance unit (20) includes a rotating head (2001). A first rotating rod (2002) is rotatably connected to the inner wall of the rotating head (2001). A rotating frame (2003) is rotatably connected to the end of the first rotating rod (2002) away from the rotating head (2001). A spring (2004) is fixedly connected to the surface of the rotating frame (2003) away from the first rotating rod (2002). A buffer seat (2005) is fixedly connected to the end of the spring (2004) away from the rotating frame (2003).

2. The intelligent prefabricated steel structure industrial plant according to claim 1, wherein: The surface of the first support column (1007) is fixedly connected to the rotating head (2001), and the surface of the second support column (1008) is fixedly connected to the buffer seat (2005).

3. An intelligent prefabricated steel structure industrial plant according to claim 1, characterized in that: There are two springs (2004). The two springs (2004) are linearly arrayed along the inner wall of the buffer seat (2005). The surface of the rotating frame (2003) is slidably connected to the inner wall of the buffer seat (2005).

4. An intelligent prefabricated steel structure industrial plant according to claim 1, characterized in that: A first baffle (1006) is fixedly connected to the inner wall of the second groove. A second baffle (1010) is fixedly connected to the top end of the first baffle (1006). The bottom end of the second baffle (1010) is fixedly connected to the support beam (1009).

5. An intelligent prefabricated steel structure industrial plant according to claim 1, characterized in that: The bottom end of the bottom plate (1005) is fixedly connected to the second support frame (1004), and the bottom end of the bottom plate (1005) is also fixedly connected to the first support base (1001).

6. The intelligent prefabricated steel structure industrial plant according to claim 1, characterized in that: The steel structure workshop (1) further includes a fresh air unit (30). The fresh air unit (30) is used to replace the air in the workshop and lower the indoor temperature. The fresh air unit (30) includes a mounting frame (3001). A motor (3002) is fixedly connected to the top end of the mounting frame (3001). The output end of the motor (3002) penetrates through the mounting frame (3001) and is fixedly connected to a second rotating rod (3003). A fan blade (3004) is fixedly connected to the surface of the second rotating rod (3003).

7. An intelligent prefabricated steel structure industrial plant according to claim 6, characterized in that: The bottom end of the mounting frame (3001) is fixedly connected to the inner wall of the support beam (1009). Five fan blades (3004) are provided, and the five fan blades (3004) are distributed in a circumferential array around the surface of the second rotating rod (3003).

8. An intelligent prefabricated steel structure industrial plant according to claim 1, characterized in that: Four groups of the first support seats (1001) are provided, and each group of the first support seats (1001) is respectively arranged at both ends of the first support frame (1002).

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