Building construction warm shed

By introducing foldable operating platforms and sliding components, including ground-mounted rails and sliders, into the construction greenhouse, the problem of traditional greenhouses being immobile has been solved, enabling flexible position adjustments on the construction site and improving construction efficiency and adaptability.

CN223766955UActive Publication Date: 2026-01-06THE FOURTH OF CHINA CONSTR SEVENTH ENG
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Patent Information

Application Number
CN202520056931.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2026-01-06
Estimated Expiration
2035-01-10

AI Technical Summary

Technical Problem

Traditional construction sheds cannot be moved freely, failing to meet the construction needs of different locations. Furthermore, in frigid regions, existing technologies cannot achieve the required construction efficiency.

Method used

A construction heating shed has been designed, including an operating platform. The operating platform is a foldable sliding device, including a sliding component, which includes a slide rail fixed to the ground and a slider installed at the bottom of the operating platform. The slider slides on the slide rail, enabling the operating platform to move freely.

Benefits of technology

It enables free movement of building construction, meets the construction needs of different locations, and facilitates the adjustment of the construction site location.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a building construction warm shed which comprises an operation platform which is a foldable operation platform. The warm shed framework is distributed on the periphery of the operation platform, the warm shed heat preservation layer is erected on the warm shed framework, the warm shed heat preservation layer extends to the ground, and a warm shed space covering a to-be-constructed structure is formed by the warm shed heat preservation layer and the operation platform; a sliding assembly is arranged at the bottom of the operation platform, the sliding assembly comprises a sliding rail fixed to the ground and a sliding block installed at the bottom of the operation platform, the sliding block slides on the sliding rail, free movement of the operation platform is achieved, and the construction requirements of different positions can be met.
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Description

Technical Field

[0001] This application relates to a construction heating shed, belonging to the field of building engineering technology. Background Technology

[0002] Construction site heated sheds are used to raise the temperature on construction sites, ensuring construction quality and work efficiency, and are especially important in cold environments. With the rapid development of industrial construction in northern regions, the construction of steel structure factory buildings in frigid environments with large temperature differences faces numerous challenges. Traditional construction methods often necessitate a winter break due to cold weather, resulting in long construction periods and high costs. To address this issue, existing technologies include constructing heated sheds to withstand the cold.

[0003] For example, utility model patent CN 202577985 U discloses a low-temperature concrete pouring greenhouse, which specifically ensures the temperature requirements of the construction environment by setting up an insulation layer and a warm air blower. However, this greenhouse cannot be moved freely and cannot meet the construction needs of different locations. Utility Model Content

[0004] According to one aspect of this application, a construction shed is provided that is freely movable and can meet the construction needs of different locations.

[0005] A construction site heated shed, characterized in that it comprises:

[0006] The operating platform is a foldable operating platform.

[0007] The greenhouse frame is distributed around the operating platform, and the greenhouse insulation layer is erected on the greenhouse frame. The greenhouse insulation layer extends to the ground and forms a greenhouse space covering the structure to be constructed with the operating platform.

[0008] The operating platform is equipped with a sliding component at its bottom. The sliding component includes a slide rail fixed to the ground and a slider installed at the bottom of the operating platform. The slider slides on the slide rail to enable the operating platform to move freely.

[0009] Furthermore, the slide rail is an I-beam, and the slider includes a pair of angle steels disposed at the bottom of the operating platform. The pair of angle steels are symmetrically arranged and form a clamping cavity. The upper crossbeam of the I-beam is located within the clamping cavity of the pair of angle steels, allowing the angle steels to move freely on the I-beam.

[0010] Furthermore, a wheel is provided inside the clamping cavity. The wheel is installed at the bottom of the operating platform and located between the operating platform and the I-beam. The wheel slides on the top of the I-beam.

[0011] Furthermore, U-shaped locking components are provided on both sides of the wheel body. The U-shaped locking components are used to fix the operating platform and prevent it from moving further when the operating platform is in a designated position.

[0012] Furthermore, the sliding component is located in the middle of the operating platform.

[0013] Furthermore, the width of the lower crossbeam of the I-beam is greater than the width of the upper crossbeam.

[0014] Furthermore, the operating platform is also equipped with support beams;

[0015] One end of the support beam is connected to the operating platform, and the other end of the support beam is hinged to the lower crossbeam of the I-beam.

[0016] Furthermore, the operating platform includes several vertically arranged platform modules, with adjacent platform modules connected by hinges;

[0017] The platform module includes a platform welded together by horizontally arranged square steel pipes and vertically arranged square steel pipes. A connecting sleeve is provided on the square steel pipe, and the connecting sleeve is connected to one end of the support beam.

[0018] The beneficial effects that this application can produce include:

[0019] This application provides a construction greenhouse, wherein the operating platform is a foldable operating platform for easy transportation and storage; the bottom of the operating platform is equipped with a sliding component, which includes a slide rail fixed to the ground and a slider installed on the bottom of the operating platform. The slider slides on the slide rail, enabling the operating platform to move freely and facilitating position adjustment on the construction site. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of a construction greenhouse according to one embodiment of this application;

[0021] Figure 2 This is a schematic diagram of the structure of an operating platform in a construction greenhouse according to one embodiment of this application;

[0022] Figure 3 This is a schematic diagram of the structure of a support beam in a building construction shed according to one embodiment of this application;

[0023] List of components and attached drawings: 1-Operating platform; 2-Warm shed frame; 3-Warm shed insulation layer; 4-Slide rail; 5-Slider; 6-Wheel; 7-U-shaped connector; 8-Support beam; 9-Platform module; 10-Hinge; 11-Connecting sleeve. Detailed Implementation

[0024] The present application is described in detail below with reference to the embodiments, but the present application is not limited to these embodiments.

[0025] See Figure 1-3 A construction greenhouse, characterized in that it comprises:

[0026] Operating platform 1, wherein the operating platform 1 is a foldable operating platform;

[0027] The greenhouse frame 2 is distributed around the operating platform 1, and the greenhouse insulation layer 3 is erected on the greenhouse frame 2. The greenhouse insulation layer 3 extends to the ground and forms a greenhouse space covering the structure to be constructed with the operating platform 1.

[0028] The bottom of the operating platform 1 is provided with a sliding component, which includes a slide rail 4 fixed to the ground and a slider 5 installed on the bottom of the operating platform 1. The slider 5 slides on the slide rail 4 to realize the free movement of the operating platform 1.

[0029] Specifically, the operating platform 1 is designed as a foldable operating platform for easy transportation and storage, and can be quickly unfolded for use when needed. The greenhouse frame 2 is distributed around the operating platform 1, providing structural support for the greenhouse. The frame material should be sufficiently strong to withstand the expected load and ensure the stability of the greenhouse. The greenhouse insulation layer 3 is installed on the greenhouse frame 2 to provide insulation. The insulation layer material should have good insulation performance and its thickness can be adjusted as needed to achieve the desired insulation effect. The insulation layer extends to the ground, forming a greenhouse space covering the structure to be constructed together with the operating platform 1. The sliding assembly includes a slide rail 4 fixed to the ground and a slider 5 installed at the bottom of the operating platform 1. The slider 5 slides on the slide rail 4, allowing the operating platform 1 to move freely and facilitating position adjustments on the construction site.

[0030] It is worth noting that the operating platform must be able to accommodate 2-3 operators.

[0031] The slide rail 4 is an I-beam, and the slider 5 includes a pair of angle steels disposed at the bottom of the operating platform 1. The pair of angle steels are symmetrically arranged and form a clamping cavity. The upper crossbeam of the I-beam is located in the clamping cavity of the pair of angle steels, allowing the angle steels to move freely on the I-beam.

[0032] Specifically, the slide rail 4 adopts an I-beam structure. This design not only provides sufficient strength and stability but also facilitates cooperation with the slider 5. The upper crossbeam of the I-beam serves as the track for the slider 5 to slide, and its size and shape should be matched with the engagement cavity of the slider 5. The slider 5 is composed of a pair of symmetrically arranged angle steels, which are fixed to the bottom of the operating platform 1 by appropriate connection methods (such as welding, bolting, etc.). An engagement cavity is formed between the angle steels. This engagement cavity is designed to enclose the upper crossbeam of the I-beam, thereby ensuring the stability and smooth sliding of the slider 5 on the slide rail 4. The size of the engagement cavity should be slightly larger than the size of the upper crossbeam of the I-beam to allow the slider 5 a certain degree of freedom of movement on the slide rail 4, while maintaining sufficient contact area to transmit the necessary force and maintain stability.

[0033] The I-beam structure of the slide rail and the angle steel-constructed slider provide excellent structural stability, capable of supporting the weight of the operating platform and the equipment on it. The engaging cavity design allows the slider to slide smoothly on the slide rail, reducing friction and resistance and improving movement efficiency. This design allows for adjustment of the slide rail and slider dimensions to accommodate operating platforms of different sizes and weights.

[0034] A wheel 6 is provided inside the engagement cavity. The wheel 6 is installed at the bottom of the operating platform 1 and is located between the operating platform 1 and the I-beam. The wheel 6 slides on the top of the I-beam.

[0035] Specifically, wheel 6 is cleverly installed at the bottom of the operating platform 1, precisely between the operating platform and the I-beam. Wheel 6 is designed to slide freely on the top of the I-beam (i.e., the upper crossbeam), thus replacing the direct frictional contact between the slider 5 and the I-beam. Wheel 6 is typically made of wear-resistant and durable materials, such as bearing steel or special alloys, to ensure long-term stable operation. Within the engagement cavity, wheels 6 are usually arranged in pairs or groups to ensure the stability and balance of the operating platform during movement. The number and arrangement of wheels 6 should be determined based on the weight, size, and expected frequency of use of the operating platform, and wheels 6 should have a self-locking function.

[0036] It is worth noting that the introduction of wheel 6 significantly reduces the friction between slider 5 and I-beam, making the movement of the operating platform easier and more efficient. Due to the reduced friction, the thrust required for the operating platform during movement is also reduced, thereby improving movement efficiency. The wear-resistant properties of wheel 6 help reduce wear on slider 5 and I-beam, thus extending the service life of the entire sliding assembly.

[0037] The wheel body 6 is also provided with U-shaped locking parts 7 on both sides. The U-shaped locking parts 7 are used to fix the operating platform 1 to prevent it from moving further when the operating platform 1 is in a designated position.

[0038] Specifically, the main function of the U-shaped connector 7 is to firmly fix the operating platform 1 to the slide rail 4 after it has been moved to the desired position, preventing it from continuing to slide or moving unexpectedly. This is crucial for ensuring safety and stability during construction, especially when precise control of the operating platform's position is required. The U-shaped connector 7 is designed with a U-shaped structure, with its extended ends able to tightly pass through both sides of the wheel body and positioned between the I-beam and the operating platform. Simultaneously, it positions the wheel body within the groove of the U-shaped structure, thus providing a stable fixing effect.

[0039] It is worth noting that the material of the locking component 7 should be sufficiently robust to withstand the weight of the operating platform and the equipment on it, and to ensure that it will not deform or be damaged during long-term use. The design of the U-shaped locking component 7 should facilitate installation and disassembly, allowing for quick release when the operating platform needs to be moved and re-locking after reaching a new position. A quick-locking or releasing mechanism could be considered for the U-shaped locking component 7 to further improve operational convenience. For example, a rotating part could be provided at the end of the extended portion of the U-shaped locking component (the length and position of the rotating part should not affect rotation, allowing it to engage with the upper part). When locking is required, the rotating part is rotated to be perpendicular to the end, locking it at the corresponding position on the operating platform (the corresponding square steel tube). When releasing is required, the rotating part is rotated to be parallel to the end, allowing it to be removed along with the U-shaped structure. By securing the operating platform, the U-shaped locking component 7 significantly reduces the safety risks caused by accidental movement. During construction, a stable operating platform is crucial for ensuring construction quality and efficiency. The introduction of the U-shaped locking component 7 enhances the stability of the operating platform, enabling it to better withstand various loads and vibrations. The U-shaped clip 7 has a relatively simple structure, making it easy to inspect and maintain. Regular cleaning, lubrication, and inspection can ensure its long-term stable operation.

[0040] The sliding component is located in the middle of the operating platform 1.

[0041] The width of the lower crossbeam of the I-beam is greater than the width of the upper crossbeam.

[0042] Specifically, to enhance the load-bearing capacity and stability of the I-beam, the wider lower crossbeam provides a larger support area, helping to distribute and bear the weight from the operating platform and the equipment on it. Simultaneously, this design also improves the torsional resistance of the I-beam, making it more stable when facing lateral forces or torques.

[0043] The operating platform 1 is also equipped with a support beam 8;

[0044] One end of the support beam 8 is connected to the operating platform, and the other end of the support beam 8 is hinged to the lower crossbeam of the I-beam.

[0045] Specifically, the support beam 8, as an additional structure connecting the operating platform 1 and the lower crossbeam of the I-beam, significantly enhances the stability of the entire system. Especially when the operating platform bears a large load or is subjected to lateral forces, the support beam 8 effectively disperses and bears these forces, preventing the operating platform from tilting or becoming unstable. By adding the support beam 8, the load-bearing capacity of the operating platform is significantly improved. This allows the operating platform to safely carry more equipment, materials, or personnel, thereby meeting a wider range of construction needs. The hinged connection between the support beam 8 and the lower crossbeam of the I-beam allows for adjustments as needed to accommodate different construction or maintenance requirements. For example, when it is necessary to adjust the support points of the operating platform, this can be achieved by adjusting the hinge points of the support beam 8.

[0046] The operating platform 1 includes several vertically arranged platform modules 9, and adjacent platform modules 9 are connected by hinges 10;

[0047] The platform module 9 includes a platform welded together by horizontally arranged square steel pipes and vertically arranged square steel pipes. A connecting sleeve 11 is provided on the square steel pipe, and the connecting sleeve 11 is connected to one end of the support beam 8.

[0048] Specifically, the operating platform 1 consists of several vertically arranged platform modules 9, which are connected by hinges 10 to form a foldable or expandable structure. This allows for easy combination and expansion according to construction needs, enabling the entire operating platform to be folded or unfolded as needed. This design helps save space and allows for quick adjustment of the platform's size and shape when required. This modular design not only improves construction efficiency but also facilitates transportation and storage. Each platform module 9 is welded from horizontally and vertically arranged square steel pipes, forming a robust platform. The square steel pipes have high strength and rigidity, capable of withstanding large loads and ensuring the stability and safety of the operating platform. Furthermore, connecting sleeves 11 on the square steel pipes facilitate connection with the support beams 8. Through the connecting sleeves 11, the support beams 8 can be firmly fixed to the platform modules 9, thereby enhancing the stability and load-bearing capacity of the entire operating platform. This connection method is not only simple and reliable but also ensures a tight fit and stable connection between the support beams 8 and the platform modules 9. The stability and load-bearing capacity of the entire operating platform can be further adjusted by changing the length and angle of the support beams 8 to adapt to different construction needs and environmental conditions.

[0049] The above description is merely a few embodiments of this application and is not intended to limit this application in any way. Although this application discloses preferred embodiments as described above, it is not intended to limit this application. Any changes or modifications made by those skilled in the art without departing from the scope of the technical solution of this application using the disclosed technical content are equivalent to equivalent implementation cases and fall within the scope of the technical solution.

Claims

1. A construction tent, characterized in that, The utility model relates to a foldable operation platform, a warm shed framework and a warm shed heat preservation layer. The operation platform (1) is provided with a sliding assembly at the bottom, which comprises a slide rail (4) fixed on the ground and a sliding block (5) installed at the bottom of the operation platform (1), and the sliding block (5) slides on the slide rail (4) to realize the free movement of the operation platform (1). The slide rail (4) is an I-beam, and the sliding block (5) comprises a pair of angle steels arranged at the bottom of the operation platform (1), the pair of angle steels are symmetrically arranged and form a clamping cavity, and the upper cross beam of the I-beam is located in the clamping cavity of the pair of angle steels, so that the angle steels can freely move on the I-beam. A wheel body (6) is arranged in the clamping cavity, the wheel body (6) is installed at the bottom of the operation platform (1) and located between the operation platform (1) and the I-beam, and the wheel body (6) slides on the top of the I-beam.

2. A building construction warm tent according to claim 1, characterized in that U-shaped clamping pieces (7) are further arranged on both sides of the wheel body (6), and the U-shaped clamping pieces (7) are used for fixing the operation platform (1) when the operation platform (1) is located at a specified position to prevent the operation platform (1) from continuously moving.

3. A building construction warm tent according to claim 2, characterized in that The sliding assembly is located in the middle of the operation platform (1).

4. A building construction warm tent according to claim 3, characterized in that The width of the lower cross beam of the I-beam is greater than that of the upper cross beam.

5. A building construction warm tent according to claim 1, characterized in that, A support beam (8) is further arranged on the operation platform (1).

6. A building construction warm tent according to claim 2, characterized in that, One end of the support beam (8) is connected with the operation platform, and the other end of the support beam (8) is hingedly connected with the lower cross beam of the I-beam.

7. A building construction warm tent according to claim 2, characterized in that, The operation platform (1) comprises a plurality of platform modules (9) arranged vertically, and adjacent platform modules (9) are connected through hinges (10). The platform module (9) comprises a platform welded by horizontally arranged square steel pipes and vertically arranged square steel pipes, the square steel pipes are provided with connecting sleeves (11), and one end of the support beam (8) is connected with the connecting sleeves (11).

8. A building construction warm tent according to claim 7, characterized in that ​ ​

Citation Information

Patent Citations

  • Low-temperature concreted greenhouse

    CN202577985U