Translation: A translational auxiliary type mechanical noise reduction construction shed

By installing retractable and foldable load-bearing mechanisms and flexible-rigid connection components in the construction shed, the problems of easy wear and tear and cumbersome operation of existing construction shed structures are solved, achieving higher stability and deployment efficiency.

CN121024383BActive Publication Date: 2026-05-08BEIJING GAS GRP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
BEIJING GAS GRP
Filing Date
2025-08-28
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing mobile construction sheds are prone to wear and tear, are cumbersome to operate, and have poor structural coherence, resulting in poor adjustment, which affects their service life, overall stability, and deployment efficiency.

Method used

Several load-bearing mechanisms are arranged along the X-axis inside the shed. Each load-bearing mechanism includes a support module and a load-bearing module along the Y-axis. The support module includes a telescopic support frame and a walking component. The telescopic support frame can extend and retract along the Z-axis, and the load-bearing module can fold along the Z-axis. The spacing between adjacent load-bearing frames is adjusted by flexible and rigid connection components, and stability is enhanced by limiting seats and magnetic connections.

Benefits of technology

It improves the structural coherence and ease of operation of the construction shed, enhances stability and deployment and storage efficiency, avoids adjustment problems caused by dust accumulation and wear, and ensures long-term reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a translation auxiliary mechanical noise reduction construction shed, each load-bearing mechanism comprises two support modules oppositely arranged along the Y-axis direction and a load-bearing module arranged on the two support modules, each support module comprises a telescopic support frame and a walking assembly, the telescopic support frame is configured to be able to telescopically move along the Z-axis direction to adjust the layout height of the load-bearing module, and a plurality of mounting brackets for mounting sound insulation boards are arranged on the telescopic support frame along the Z-axis direction, the walking assembly is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or be stationary, and the load-bearing module comprises a load-bearing frame, the load-bearing frame is configured to be able to fold along the Z-axis direction to adjust the layout length, so that the problems that the structure of the existing mobile construction shed is prone to wear, the operation is complicated, the structural correlation is poor, the adjustment is not smooth, the service life is affected, and the overall stability and layout efficiency are reduced are solved.
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Description

Technical Field

[0001] This invention belongs to the field of construction shed technology, and specifically relates to a translation-assisted mechanical noise reduction construction shed. Background Technology

[0002] A construction shed is a temporary protective facility used to reduce the spread of noise during construction. It typically uses sound-absorbing materials and sealed structures to reduce the impact of noise on the surrounding environment.

[0003] As disclosed in patent CN220888973U, a mobile construction shed includes a central shed roof and side shed roofs. A through groove is formed on one side surface of the central shed roof, and the side shed roofs slide symmetrically within the through groove. Four support columns abut against the symmetrical lower surfaces of the side shed roofs. Mounting plates are fixedly connected to the lower surfaces of each support column. Connecting plates are fixedly connected between the column surfaces near the mounting plates. A hydraulic cylinder is fixedly mounted on the central upper surface of the connecting plate, and a side-sliding bracket is fixedly connected to the output end of the hydraulic cylinder. A cylindrical groove for adjusting the height of the side-sliding bracket is formed within the support column, and the upper surfaces of the side-sliding brackets are fixedly connected to the lower surfaces of the side shed roofs. A set of adjustable and retractable wheels is symmetrically arranged below the connecting plate. While the structure of the aforementioned patent possesses good adjustment capabilities and mobility, its sliding structure is prone to adjustment difficulties due to dust accumulation or wear, affecting its service life. Furthermore, its operation is cumbersome and its structural integrity is poor, affecting not only overall stability but also reducing the efficiency of shed deployment and retrieval.

[0004] Based on this, this application proposes a translation-assisted mechanical noise reduction construction shed. Summary of the Invention

[0005] The purpose of this invention is to solve the problems of existing mobile construction sheds, which are prone to wear and tear, cumbersome to operate, and have poor structural compatibility, resulting in poor adjustment, reduced service life, and reduced overall stability and deployment efficiency.

[0006] To achieve the above objectives, the present invention provides a translation-assisted mechanical noise reduction construction shed, comprising a shed body, several load-bearing mechanisms, and several connecting mechanisms;

[0007] Several load-bearing mechanisms are arranged sequentially in the shed along the X-axis. Each load-bearing mechanism includes two support modules arranged opposite each other along the Y-axis and a load-bearing module mounted on the two support modules. Each support module includes a telescopic support frame and a traveling component. The telescopic support frame is configured to be able to telescopically move along the Z-axis to adjust the installation height of the load-bearing module. Several mounting brackets for installing sound insulation panels are provided on the telescopic support frame along the Z-axis. The traveling component is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or remain stationary. The load-bearing module includes a load-bearing frame, which is configured to be able to fold along the Z-axis to adjust its installation length.

[0008] Several connection mechanisms include flexible connection components and rigid connection components that are respectively connected to two adjacent telescopic support frames between two adjacent load-bearing frames, both of which are used to adjust the distance between the two adjacent load-bearing frames.

[0009] Optionally, the telescopic support frame includes two telescopic struts symmetrically arranged along the X-axis, with an X-shaped support frame connecting the two telescopic struts.

[0010] Optionally, each of the telescopic struts includes an inner core rod and an outer sleeve rod fitted at its lower end, with a first positioning pin inside the outer sleeve rod for positioning the inner core rod.

[0011] Alternatively, each of the aforementioned mounting brackets is divided into a connecting portion and a T-shaped mounting portion. The connecting portion is fitted onto the inner core rod and the outer sleeve rod, and fasteners are symmetrically arranged inside the mounting portion. The sound insulation panel is installed inside the mounting portion by means of the fasteners.

[0012] Optionally, the walking assembly includes a hydraulic rod and casters. The hydraulic rod is connected to the lower end of the outer sleeve rod to adjust the height of the outer sleeve rod, and the casters are connected to the lower end of the hydraulic rod to drive the outer sleeve rod to move or remain stationary.

[0013] Optionally, the load-bearing module also includes four connecting seats, and the four corners of the load-bearing frame are connected to the upper end of the inner core rod one by one through the four connecting seats.

[0014] Optionally, the load-bearing frame includes a first limiting seat, a second limiting seat, a third limiting seat, a fourth limiting seat, and a fifth limiting seat arranged sequentially along the Y-axis. Each pair of adjacent limiting seats is connected to two folding rods arranged symmetrically along the X-axis. The second, third, and fourth limiting seats can limit the folding rods connected thereto or fold the folding rods along the Z-axis.

[0015] Optionally, the first limiting seat and the fifth limiting seat are both disposed on the upper end of their corresponding connecting seats, and the first limiting seat and the fifth limiting seat are both connected to the folding rod or limit the folding rod through the connecting seat.

[0016] Optionally, both ends of the second and fourth limiting seats are provided with magnetic limiting grooves and magnetic limiting plates, respectively. The magnetic limiting grooves and magnetic limiting plates are used to connect the second and fourth limiting seats or to connect the second and fourth limiting seats to the first and fifth limiting seats, respectively.

[0017] Optionally, the flexible connection assembly includes a sleeve fitted onto the inner core rod, a connecting cylinder provided on the sleeve, the connecting cylinder being fitted onto the lower end of the connecting seat, and a tension spring connecting adjacent connecting cylinders between adjacent load-bearing frames.

[0018] The beneficial effects of this invention are as follows:

[0019] The present invention proposes a translation-assisted mechanical noise reduction construction shed, which consists of several load-bearing mechanisms arranged sequentially along the X-axis in the shed body. Each load-bearing mechanism includes two support modules arranged opposite each other along the Y-axis and a load-bearing module mounted on the two support modules. Each support module includes a telescopic support frame and a walking component. The telescopic support frame is configured to be able to telescopically move along the Z-axis to adjust the arrangement height of the load-bearing module. Several mounting brackets for installing sound insulation panels are provided on the telescopic support frame along the Z-axis. The walking component is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or remain stationary. The load-bearing module includes a load-bearing frame, which is configured to be foldable along the Z-axis to adjust its arrangement length. Flexible and rigid connecting components are respectively provided on adjacent telescopic support frames between adjacent load-bearing frames to adjust the spacing between adjacent load-bearing frames. Compared with existing mobile construction sheds, the construction shed of the present invention has higher structural correlation and is simple to operate and easy to adjust, thereby improving the overall stability of the construction shed and its deployment and storage efficiency.

[0020] Furthermore, this invention employs a first limiting seat, a second limiting seat, a third limiting seat, a fourth limiting seat, and a fifth limiting seat arranged sequentially along the Y-axis. Each adjacent limiting seat is connected to two folding rods symmetrically arranged along the X-axis. The second, third, and fourth limiting seats can limit the folding rods connected to them or fold the rods along the Z-axis. This not only enables on-demand adjustment but also enhances reliability and operational stability. Simultaneously, it effectively avoids problems caused by dust accumulation or wear leading to adjustment difficulties, providing strong protection for the long-term use of the construction shed.

[0021] As can be seen from the above, the technical solution of the present invention can effectively solve the problems of existing mobile construction sheds, such as easy wear and tear, cumbersome operation, and poor structural correlation, which lead to poor adjustment, affected service life, and reduced overall stability and deployment efficiency.

[0022] Other features and advantages of the present invention will be described in detail in the following detailed description section. Attached Figure Description

[0023] The present invention can be better understood by referring to the following description taken in conjunction with the accompanying drawings, in which the same or similar reference numerals are used throughout the drawings to denote the same or similar parts.

[0024] Figure 1 A schematic diagram of a translation-assisted mechanical noise reduction construction shed from a first perspective, according to an embodiment of the present invention, is shown.

[0025] Figure 2 A schematic diagram of a translation-assisted mechanical noise reduction construction shed from a second perspective, according to an embodiment of the present invention, is shown.

[0026] Figure 3 A schematic diagram of a translation-assisted mechanical noise reduction construction shed from a third perspective, according to an embodiment of the present invention, is shown.

[0027] Figure 4 A schematic diagram of a translation-assisted mechanical noise reduction construction shed from a fourth perspective, according to an embodiment of the present invention, is shown.

[0028] Figure 5 A structural schematic diagram of a load-bearing frame according to an embodiment of the present invention is shown;

[0029] Figure 6 A schematic diagram of the mounting bracket according to an embodiment of the present invention is shown;

[0030] Figure 7 A schematic diagram of the structure of a flexible connection assembly according to an embodiment of the present invention is shown;

[0031] Figure 8 A cross-sectional view of the connecting cylinder according to an embodiment of the present invention is shown.

[0032] Figure label:

[0033] 1-Shed body; 101-Folding shed door; 1011-Transparent observation window; 2-Sound insulation board; 3-Mounting bracket; 301-Connecting part; 302-Mounting part; 4-Support frame; 5-Inner core rod; 6-Outer rod; 7-First positioning pin; 8-Fastener; 9-Second positioning pin; 10-Hydraulic rod; 11-Universal wheel; 12-Connecting seat; 13-First limit seat; 14-Second limit seat; 15-Third limit seat; 16-Fourth limit seat; 17-Fifth limit seat; 18-Folding rod; 19-Limit cap; 20-Magnetic limit groove; 21-Magnetic limit plate; 22-Pull rod; 23-Mounting rod; 24-Hanging handle; 25-Sleeve; 26-Connecting cylinder; 27-Tie spring; 28-Connecting rod; 29-Connecting shaft; 30-Adjusting handle. Detailed Implementation

[0034] To enable those skilled in the art to more fully understand the technical solutions of the present invention, exemplary embodiments of the present invention will be described more comprehensively and in detail below with reference to the accompanying drawings. Obviously, the one or more embodiments of the present invention described below are merely one or more specific ways to implement the technical solutions of the present invention, and are not exhaustive. It should be understood that other ways belonging to a general inventive concept can be used to implement the technical solutions of the present invention, and should not be limited to the embodiments described exemplary. Based on one or more embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.

[0035] Reference Figure 1-8 An embodiment of the present invention provides a translation-assisted mechanical noise reduction construction shed, including a shed body 1, several load-bearing mechanisms, and several connecting mechanisms; the several load-bearing mechanisms are arranged sequentially in the shed body 1 along the X-axis direction, each load-bearing mechanism includes two support modules arranged opposite each other along the Y-axis direction and a load-bearing module mounted on the two support modules, each support module includes a telescopic support frame and a walking component, the telescopic support frame is configured to be able to telescopically move along the Z-axis direction to adjust the arrangement height of the load-bearing module, and several mounting brackets 3 for installing sound insulation panels 2 are provided on the telescopic support frame along the Z-axis direction, the walking component is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or remain stationary, the load-bearing module includes a load-bearing frame, the load-bearing frame is configured to be foldable along the Z-axis direction to adjust its arrangement length.

[0036] Several connection mechanisms include flexible connection components and rigid connection components that are respectively connected to two adjacent telescopic support frames between two adjacent load-bearing frames, both of which are used to adjust the distance between the two adjacent load-bearing frames.

[0037] In one specific embodiment, the shed body 1 has a connecting rope (not shown in the figure) inside. The connecting rope is used to connect the shed body 1 to the telescopic support frame and the load-bearing module to fix the shed body 1. This serves to prevent dust when the construction shed is used.

[0038] In one embodiment, folding shed doors 101 are provided at both ends of the shed body 1, and transparent observation windows 1011 are provided on the folding shed doors 101. Specifically, the folding shed doors 101 are connected to the load-bearing frame by hanging, which can be opened and closed quickly, meeting the needs of personnel and equipment to enter and exit, and can flexibly adjust the ventilation or closed state to adapt to different construction scenarios. The transparent observation windows 1011 allow workers to directly observe the work inside the shed without opening the doors, which reduces dust leakage, temperature fluctuations or noise interference caused by frequent door opening and closing, and allows for real-time monitoring of construction safety and progress. It is especially suitable for work scenarios that require maintaining environmental stability or concealed observation. The overall design takes into account both functionality and practicality, improving construction efficiency and safety.

[0039] In one embodiment, the telescopic support frame includes two telescopic struts symmetrically arranged along the X-axis, with an X-shaped support frame 4 connecting the two struts. Specifically, the support frame 4 enhances the strength of the rigid connection between the two telescopic struts, thereby ensuring the stability of the construction shed.

[0040] In one embodiment, each telescopic support rod includes an inner core rod 5 and an outer sleeve rod 6 sleeved at its lower end, with a first positioning pin 7 provided inside the outer sleeve rod 6 for positioning the inner core rod 5.

[0041] Specifically, the outer rod 6 can lock or release the inner core rod 5 through the first positioning pin 7 to adjust the extension length of the inner core rod 5 relative to the outer rod 6, thereby adjusting the installation height of the load-bearing frame to meet the diverse needs of construction sheds.

[0042] In one specific embodiment, both the inner core rod 5 and the outer sleeve rod 6 are made of steel.

[0043] In one embodiment, each of the plurality of mounting brackets 3 is divided into a connecting portion 301 and a T-shaped mounting portion 302. The connecting portion 301 is sleeved on the inner core rod 5 and the outer sleeve rod 6. Fasteners 8 are symmetrically arranged inside the mounting portion 302. The sound insulation plate 2 is installed inside the mounting portion 302 by means of the fasteners 8.

[0044] In one specific embodiment, the fastener 8 is a screw.

[0045] Specifically, the sound insulation panel 2 is made of composite materials that combine sound insulation and sound absorption, such as flexible polymer sound insulation panels. Its size can be customized according to actual needs. The arrangement of several mounting brackets 3 allows the sound insulation panel 2 to be installed immediately after each load-bearing component is completed, or after the construction shed is assembled. During installation, the sound insulation panel 2 is installed along the mounting track formed by the connecting lines of the mounting portions 302 of the mounting brackets 3, and with the cooperation of fasteners 8, stable installation of sound insulation panels 2 of different sizes is achieved, thereby achieving a sound insulation effect that fixes the sound insulation panel and stabilizes the construction shed.

[0046] In one specific embodiment, a second positioning pin 9 is provided on the connecting part 301 for fixing it to the inner core rod 5 and the outer sleeve rod 6.

[0047] Specifically, when the placement of each mounting bracket 3 needs to be adjusted, the connecting part 301 can be loosened from the inner core rod 5 and the outer sleeve rod 6 by using the second positioning pin 9. After adjustment, the connecting part 301 is then fixed. This structural design allows for adaptive adjustment of each mounting bracket 3 according to the size of the sound insulation panel 2, significantly improving the flexibility of the construction shed of this invention. It also facilitates timely replacement of each mounting bracket 3 to ensure the normal use of the construction shed.

[0048] In addition, the fastener 8 enables the installation of sound insulation panels 2 of different thicknesses, and combined with the T-shaped mounting part, it can simultaneously limit the sound insulation panels 2 on both sides of each telescopic leg, thereby reducing the structural complexity of the construction shed and improving its structural coherence.

[0049] In one embodiment, the walking assembly includes a hydraulic rod 10 and casters 11. The hydraulic rod 10 is connected to the lower end of the outer sleeve rod 6 for adjusting the installation height of the outer sleeve rod 6. The casters 11 are connected to the lower end of the hydraulic rod 10 for driving the outer sleeve rod 6 to move or remain stationary. Specifically, connecting the casters 11 to the lower end of the hydraulic rod 10 forms a movable support base. When it is necessary to adjust the installation height of the outer sleeve rod 6, the hydraulic rod 10 can be controlled to drive the outer sleeve rod 6 and perform fine adjustments to meet the precise adjustment requirements of the construction shed.

[0050] In one embodiment, the load-bearing module further includes four connecting seats 12, and the four corners of the load-bearing frame are connected to the upper end of the inner core rod 5 in a one-to-one correspondence through the four connecting seats 12.

[0051] In one embodiment, the load-bearing frame includes a first limiting seat 13, a second limiting seat 14, a third limiting seat 15, a fourth limiting seat 16, and a fifth limiting seat 17 arranged sequentially along the Y-axis. Two folding rods 18 arranged symmetrically along the X-axis are connected between adjacent limiting seats. The second limiting seat 14, the third limiting seat 15, and the fourth limiting seat 16 can limit the folding rods 18 connected thereto or fold the folding rods 18 along the Z-axis.

[0052] In one embodiment, the first limiting seat 13 and the fifth limiting seat 17 are both disposed on the upper end of the corresponding connecting seat 12, and the first limiting seat 13 and the fifth limiting seat 17 are both connected to the folding rod 18 or limit the folding rod 18 through the connecting seat 12.

[0053] In one embodiment, the connecting seat 12, the second limiting seat 14, the third limiting seat 15 and the fourth limiting seat 16 are all provided with limiting components for limiting the folding rod 18.

[0054] In one specific embodiment, the limiting assembly includes a limiting shaft (not shown in the figure) passing through the end of the folding rod and limiting caps 19 threaded to both ends of the limiting shaft.

[0055] Specifically, by the relative movement of the limiting cap 19 and the limiting shaft, the limiting shaft can be fixed or released within each connecting seat 12 or each limiting seat, thereby enabling the limiting of the folding rod 18 or its folding along the Z-axis. This significantly improves the structural connectivity and flexibility of the construction shed, allowing for on-demand adjustment and enhancing reliability and operational stability. Simultaneously, it effectively avoids problems caused by dust accumulation or wear leading to adjustment difficulties, providing strong assurance for the long-term use of the construction shed.

[0056] In one embodiment, magnetic limiting grooves 20 and magnetic limiting plates 21 are respectively provided at both ends of the second limiting seat 14 and the fourth limiting seat 16. The magnetic limiting grooves 20 and magnetic limiting plates 21 are used to connect the second limiting seat 14 and the fourth limiting seat 16 or to connect the second limiting seat 14 and the fourth limiting seat 16 to the first limiting seat 13 and the fifth limiting seat 17 respectively.

[0057] In one embodiment, the first limiting seat 13 is provided with a magnetic limiting groove 20 for connecting with the second limiting seat.

[0058] In one embodiment, the fifth limiting seat 17 is provided with a magnetic limiting plate 21 for connection with the fourth limiting seat 16.

[0059] Specifically, the magnetic properties of the magnetic limiting groove 20 and the magnetic limiting plate 21 are opposite, and the size of the magnetic limiting plate 21 is smaller than that of the magnetic limiting groove 20. Thus, when two adjacent limiting seats come into contact, they play a role in connecting and limiting the two adjacent connecting seats, further enhancing the stability and reliability of the construction shed of the present invention during use.

[0060] In one embodiment, a pull rod 22 is provided at the lower end of the third limiting seat 15. The pull rod 22 is used to pull the third limiting seat 15 and the folding rod 18 connected thereto downward or push them upward to fold or unfold the folding rod 18. Specifically, the pull rod 22 facilitates the adjustment or storage of the construction shed, thereby improving the efficiency of the construction shed's setup and retrieval. In addition, the pull rod 22 can also help divide the space inside the shed 1, allowing users to adjust the space by hanging shed cloth or similar items on the pull rod 22.

[0061] In one embodiment, the folding rod 18 is provided with a mounting rod 23 for hanging the sound insulation panel 2, and a hanging handle 24 is threaded onto the lower end of the mounting rod 23. Specifically, when it is necessary to install the sound insulation panel 2 to the lower end of the folding rod 18, the sound insulation panel 2 can be placed on the upper end of the hanging handle 24, and then the hanging handle 24 can be rotated upward so that the upper end of the sound insulation panel 2 is in close contact with the folding rod 18, so as to achieve stable installation of the sound insulation panel 2.

[0062] Alternatively, hooks can be installed on the sound insulation panel 2 to hang it on the folding rod 18. The structure and working principle of the hooks are existing technologies, such as adjustable angle steel hooks, and will not be described in detail here.

[0063] In one embodiment, the flexible connection assembly includes a sleeve 25 fitted onto the inner core rod 5, a connecting cylinder 26 disposed on the sleeve 25, and the connecting cylinder 26 fitted onto the lower end of the connecting seat 12. A tension spring 27 connects adjacent connecting cylinders 26 between adjacent load-bearing frames. Specifically, the diameter of the sleeve 25 is smaller than the diameter of the connecting cylinder 26, thereby supporting the connecting cylinder 26. The tension spring 27 connects adjacent load-bearing frames, effectively transmitting and distributing loads to enhance the overall structural stability of the construction shed. It also utilizes the deformation capacity of the tension spring to buffer external impacts and absorb vibration energy. Simultaneously, the elastic connection characteristics of the tension spring allow for controllable relative displacement between adjacent load-bearing frames, thereby enabling adjustment of the distance between adjacent load-bearing frames.

[0064] In one embodiment, the rigid connection assembly includes two connecting rods 28 arranged in a cross configuration. The two ends of each connecting rod 28 are movably connected to two adjacent outer sleeve rods 6. A connecting shaft 29 is provided at the intersection of the two connecting rods 28, and an adjusting handle 30 is provided on the connecting shaft 29. The adjusting handle 30 is used to adjust the included angle between the two connecting rods 28. Specifically, by adjusting the included angle between the two connecting rods 28, the distance between two adjacent outer sleeve rods 6 between two adjacent load-bearing frames can be adjusted, thereby enabling the outer sleeve rods 6 to be unfolded or retracted, significantly improving the assembly and storage efficiency of the construction shed.

[0065] When using the translation-assisted mechanical noise reduction construction shed of this invention:

[0066] First, two telescopic support rods symmetrically arranged along the X-axis are connected by an X-shaped support frame 4. A hydraulic rod 10 and casters 11 are installed at the lower end of the outer outer rod 6 to form a movable support base. The load-bearing frame is fixed to the upper end of the inner core rod 5 via four connecting seats 12, and the first limiting seat 13 to the fifth limiting seat 17 are connected by a folding rod 18. Folding and limiting functions are achieved using the limiting shaft, limiting cap 19, magnetic limiting groove 20, and magnetic limiting plate 21. An installation rod 23 and a hanging handle 24 are installed on the folding rod 18 for hanging the sound insulation panel 2. The above steps are completed before the construction shed leaves the factory, meaning each load-bearing mechanism serves as the main body for subsequent installation of the construction shed.

[0067] Then, several load-bearing mechanisms are arranged sequentially along the X-axis. The spacing between adjacent load-bearing frames and structural stability are achieved through sleeve 25, connecting sleeve 26, tie spring 27, cross connecting rod 28, connecting shaft 29 and adjusting handle 30. The flexible connecting component uses the elasticity of tie spring 27 to buffer vibration, and the rigid connecting component adjusts the included angle of connecting rod 28 through adjusting handle 30 to realize the unfolding or retraction of adjacent outer sleeve rods 6.

[0068] Next, insert the sound insulation panel 2 along the line connecting the T-shaped mounting part 302 of the mounting bracket 3 and fix it with the fastener 8. According to the size of the sound insulation panel 2, use the second positioning pin 9 to adjust the position of the connecting part 301 of the mounting bracket 3 to ensure that the sound insulation panel 2 is stably installed on the inner core rod 5 and the outer outer rod 6. Then, hang the sound insulation panel 2 at the lower end of the folding rod 18 through the handle 24 or hook to achieve flexible installation in multiple positions.

[0069] Next, the shed body 1 is placed over the assembled load-bearing mechanism, and the shed body 1 is fixed to the telescopic support frame and load-bearing module by connecting ropes to form a dustproof structure; hanging folding shed doors 101 are installed at both ends of the shed body 1, and transparent observation windows 1011 are set up to monitor the operation inside the shed in real time; the height of the third limit seat 15 is adjusted by the pull rod 22 to assist in the spatial division and folding storage of the shed body 1.

[0070] During the use of the construction shed, the extension length of the inner core rod 5 of the telescopic support rod can be adjusted, and the relative position of the outer sleeve rod 6 and the inner core rod 5 can be fixed by the first positioning pin 7 to adjust the deployment height of the load-bearing frame; the height of the outer sleeve rod 6 can be finely adjusted by the hydraulic rod 10 to adapt to different terrains; the Z-axis folding and unfolding of the load-bearing frame can be realized by pulling the pull rod 22 downward or pushing the folding rod 18 upward, thereby improving the deployment and retrieval efficiency.

[0071] The present invention proposes a translation-assisted mechanical noise reduction construction shed, which consists of several load-bearing mechanisms arranged sequentially along the X-axis in the shed body. Each load-bearing mechanism includes two support modules arranged opposite each other along the Y-axis and a load-bearing module mounted on the two support modules. Each support module includes a telescopic support frame and a walking component. The telescopic support frame is configured to be able to telescopically move along the Z-axis to adjust the arrangement height of the load-bearing module. Several mounting brackets for installing sound insulation panels are provided on the telescopic support frame along the Z-axis. The walking component is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or remain stationary. The load-bearing module includes a load-bearing frame, which is configured to be foldable along the Z-axis to adjust its arrangement length. Flexible and rigid connecting components are respectively provided on adjacent telescopic support frames between adjacent load-bearing frames to adjust the spacing between adjacent load-bearing frames. Compared with existing mobile construction sheds, the construction shed of the present invention has higher structural correlation and is simple to operate and easy to adjust, thereby improving the overall stability of the construction shed and its deployment and storage efficiency.

[0072] Furthermore, this invention employs a first limiting seat, a second limiting seat, a third limiting seat, a fourth limiting seat, and a fifth limiting seat arranged sequentially along the Y-axis. Each adjacent limiting seat is connected to two folding rods symmetrically arranged along the X-axis. The second, third, and fourth limiting seats can limit the folding rods connected to them or fold the rods along the Z-axis. This not only enables on-demand adjustment but also enhances reliability and operational stability. Simultaneously, it effectively avoids problems caused by dust accumulation or wear leading to adjustment difficulties, providing strong protection for the long-term use of the construction shed.

[0073] While one or more embodiments of the present invention have been described above, those skilled in the art will recognize that the present invention can be implemented in any other form without departing from its spirit and scope. Therefore, the embodiments described above are illustrative and not restrictive, and many modifications and substitutions will be apparent to those skilled in the art without departing from the spirit and scope of the invention as defined in the appended claims.

Claims

1. A translation-assisted mechanical noise reduction construction shed, characterized in that: It includes the canopy structure, several load-bearing mechanisms, and several connecting mechanisms; Several load-bearing mechanisms are arranged sequentially in the shed along the X-axis. Each load-bearing mechanism includes two support modules arranged opposite each other along the Y-axis and a load-bearing module mounted on the two support modules. Each support module includes a telescopic support frame and a traveling component. The telescopic support frame is configured to be able to telescopically move along the Z-axis to adjust the installation height of the load-bearing module. Several mounting brackets for installing sound insulation panels are provided on the telescopic support frame along the Z-axis. The traveling component is connected to the lower end of the telescopic support frame to drive the telescopic support frame to move or remain stationary. The load-bearing module includes a load-bearing frame, which is configured to be able to fold along the Z-axis to adjust its installation length. Several connecting mechanisms include flexible connecting components and rigid connecting components respectively connected to two adjacent telescopic support frames between two adjacent load-bearing frames, both of which are used to adjust the distance between the two adjacent load-bearing frames; The load-bearing module also includes four connecting seats. The load-bearing frame includes a first limiting seat, a second limiting seat, a third limiting seat, a fourth limiting seat, and a fifth limiting seat arranged sequentially along the Y-axis. Two folding rods arranged symmetrically along the X-axis are connected between adjacent limiting seats. The second limiting seat, the third limiting seat, and the fourth limiting seat can limit the folding rods connected to them or fold the folding rods along the Z-axis. Both the first limiting seat and the fifth limiting seat are disposed on the upper end of their corresponding connecting seats, and both the first limiting seat and the fifth limiting seat are connected to the folding rod or limit the folding rod through the connecting seat; Both ends of the second and fourth limiting seats are respectively provided with magnetic limiting grooves and magnetic limiting plates. The magnetic limiting grooves and magnetic limiting plates are used to connect the second and fourth limiting seats or to connect the second and fourth limiting seats to the first and fifth limiting seats respectively.

2. The translation-assisted mechanical noise reduction construction shed according to claim 1, characterized in that: The telescopic support frame includes two telescopic struts symmetrically arranged along the X-axis, and an X-shaped support frame connects the two telescopic struts.

3. The translation-assisted mechanical noise reduction construction shed according to claim 2, characterized in that: Each of the telescopic struts includes an inner core rod and an outer sleeve rod fitted at its lower end, with a first positioning pin inside the outer sleeve rod for positioning the inner core rod.

4. The translation-assisted mechanical noise reduction construction shed according to claim 3, characterized in that: Each of the aforementioned mounting brackets is divided into a connecting portion and a T-shaped mounting portion. The connecting portion is fitted onto the inner core rod and the outer sleeve rod. Fasteners are symmetrically arranged inside the mounting portion, and the sound insulation panel is installed inside the mounting portion by means of the fasteners.

5. The translation-assisted mechanical noise reduction construction shed according to claim 4, characterized in that: The walking assembly includes a hydraulic rod and casters. The hydraulic rod is connected to the lower end of the outer sleeve rod to adjust the height of the outer sleeve rod. The casters are connected to the lower end of the hydraulic rod to drive the outer sleeve rod to move or remain stationary.

6. The translation-assisted mechanical noise reduction construction shed according to claim 1, characterized in that: The flexible connection assembly includes a sleeve fitted on the inner core rod, a connecting cylinder provided on the sleeve, the connecting cylinder being fitted onto the lower end of the connecting seat, and a tension spring connecting adjacent connecting cylinders between adjacent load-bearing frames.

Citation Information

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