Auxiliary device for building energy-saving project quality detection

Through the combined structure of the operating platform, support legs, oblique legs, rotating clamp plate and counterweight, combined with the pulling structure and magnet bar design, the stable placement of the detection device in complex environments is solved, ensuring the accuracy and safety of the detection.

CN223121052UActive Publication Date: 2025-07-18FUJIAN LIPENG ENG TECH CO LTD
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Patent Information

Application Number
CN202422492845.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-07-18
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The existing building energy-saving project quality inspection auxiliary devices are difficult to place stably and horizontally when facing the gap between the building wall and the ground or the ground tilt, resulting in detection errors and safety hazards.

Method used

The combined structure of the operating platform, support legs, oblique legs, rotating clamp plate, threaded rod and counterweight is adopted, combined with the pulling structure and the design of the magnet bar to ensure the stable placement of the device in complex environments.

Benefits of technology

The stable and horizontal placement of the detection device is achieved when the gaps between the building walls and the ground or the ground is inclined, improving the accuracy and safety of the detection.

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Abstract

The utility model belongs to the technical field of building engineering, and particularly relates to an auxiliary device for building energy-saving engineering quality detection, which comprises an operation platform, two supporting legs are fixed at one end of the bottom of the operation platform, an inclined leg is rotatably connected to the other end of the bottom of the operation platform, and a rotary clamping plate is rotatably connected to one end, far away from the operation platform, of the inclined leg. A threaded rod is fixed to the end, away from the inclined leg, of the rotating clamping plate, a balance weight body is connected to the outer side of the threaded rod in a threaded mode, a pulling structure is further installed between the balance weight body and the operation platform, the pulling structure is used for pulling and stabilizing the operation platform, and the pulling structure comprises a plurality of fixing buckles fixed to the top of the balance weight body; a mounting buckle is fixed to the end, away from the inclined leg, of the bottom of the operation platform, and a tension spring is arranged between the mounting buckle and one fixing buckle. The floor can still be stably and horizontally placed under complex conditions such as gaps between building wall surfaces and the ground or inclined ground and the like.
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Description

Technical Field

[0001] The utility model belongs to the technical field of building engineering, and in particular relates to an auxiliary device for quality detection of building energy-saving engineering. Background Art

[0002] As the world pays more and more attention to energy efficiency and environmental protection, building energy-saving projects, as an important means to reduce energy consumption and improve building efficiency, are becoming increasingly important. In the implementation of building energy-saving projects, quality inspection is a key link to ensure project quality and energy-saving effects.

[0003] At present, there are many auxiliary devices on the market for quality inspection of building energy-saving projects. Most of these devices are designed to improve inspection efficiency, reduce inspection errors, and reduce human intervention to achieve more accurate and efficient inspection.

[0004] However, the existing building energy-saving engineering quality detection auxiliary devices still face some challenges in practical applications, especially when dealing with complex building environments, such as irregular gaps between building walls and the ground, or inclination of the ground near the building walls. These problems often make it difficult to place the detection auxiliary devices stably and horizontally, which not only increases the difficulty and error of detection, but also may pose a potential threat to the safety of detection equipment and personnel.

[0005] Specifically, when there is a gap between the building wall and the ground, traditional detection auxiliary devices often cannot be placed directly on the wall, resulting in shaking or deviation during the detection process, affecting the accuracy of the detection results. Similarly, when the ground is tilted, even if the device can be placed barely, its levelness is difficult to ensure, which will also introduce detection errors;

[0006] In order to solve the above problems, some existing technologies try to enhance the adaptability and stability of the device by adding adjustment mechanisms or using special materials, etc. However, these methods are often complex in structure and costly, and in practical applications, they still cannot fully meet the detection needs in complex environments.

[0007] Therefore, it is necessary to develop a new type of auxiliary device for quality detection of building energy-saving projects. Utility Model Content

[0008] The utility model aims to provide an auxiliary device for quality inspection of building energy-saving projects, which can be placed stably and horizontally even in complex situations such as gaps between building walls and the ground or ground inclination.

[0009] The technical solution adopted by the utility model is as follows:

[0010] An auxiliary device for the quality inspection of building energy conservation projects, including an operation platform. At one end of the bottom of the operation platform, two support legs are fixed. At the other end of the bottom of the operation platform, an inclined leg is rotatably connected. At the end of the inclined leg away from the operation platform, a rotating clamping plate is rotatably connected. At the end of the rotating clamping plate away from the inclined leg, a threaded rod is fixed, and a counterweight is threadedly connected to the outer side of the threaded rod;

[0011] A pulling structure is also installed between the counterweight and the operation platform, and the pulling structure is used to pull and stabilize the operation platform.

[0012] The pulling structure includes a plurality of fixing buckles fixed on the top of the counterweight. At the bottom of the operation platform and at the end away from the inclined leg, an installation buckle is fixed. A tension spring is arranged between the installation buckle and one of the fixing buckles.

[0013] On one side of the counterweight and on the outer side of the threaded rod, a fixing ring is fixed. On the side of the fixing ring away from the counterweight, a plurality of pushing springs are assembled. At the end of the pushing spring away from the fixing ring, a clamping ring is fixed, and the clamping ring is mutually clamped with the rotating clamping plate.

[0014] On the mutually approaching sides of the clamping ring and the fixing ring, a plurality of second magnet bars and a plurality of first magnet bars are respectively fixed, and the number of the plurality of second magnet bars is the same as that of the plurality of first magnet bars and their positions correspond.

[0015] On the side of the clamping ring close to the fixing ring and inside the pushing spring, a plurality of limiting bars are fixed, and the limiting bars are slidably connected with the fixing ring.

[0016] The bottom of the support leg is threadedly connected with an extension leg.

[0017] The technical effects achieved by the present utility model are as follows:

[0018] The present utility model can still be stably and horizontally placed in the face of complex situations such as the gap between the building wall and the ground or the ground inclination, so as to ensure the accuracy and reliability of the detection results, and further enable the detection equipment to achieve stable and horizontal detection operations in complex environments, thereby overcoming the deficiencies of the prior art. Description of the Drawings

[0019] Figure 1 is the structural schematic diagram of the present utility model;

[0020] Figure 2 is the structural schematic diagram among the tension spring, the inclined leg and the threaded rod in the present utility model;

[0021] Figure 3It is a schematic structural diagram among the snap ring, the counterweight body and the inclined leg in the present utility model;

[0022] Figure 4 It is a schematic structural diagram among the rotating clamping plate, the fixed ring and the pushing spring in the present utility model;

[0023] Figure 5 It is a schematic structural diagram among the snap ring, the pushing spring and the second magnet bar in the present utility model.

[0024] In the attached drawings, the list of components represented by each reference numeral is as follows:

[0025] 1. Operating platform; 2. Support leg; 3. Extension leg; 4. Inclined leg; 5. Rotating clamping plate; 6. Threaded rod; 7. Counterweight body; 8. Mounting buckle; 9. Fixed buckle; 10. Tension spring; 11. Snap ring; 12. Fixed ring; 13. Pushing spring; 14. Limit strip; 15. First magnet bar; 16. Second magnet bar. Detailed implementation manners

[0026] In order to make the purpose and advantages of the present utility model more clear, the present utility model will be specifically described below in conjunction with embodiments. It should be understood that the following text is only used to describe one or several specific implementation manners of the present utility model, and does not strictly limit the specific protection scope claimed by the present utility model.

[0027] As Figures 1-5 shown, an auxiliary device for building energy conservation project quality inspection includes an operating platform 1. At one end of the bottom of the operating platform 1, two support legs 2 are fixed. The bottom of the support legs 2 is threadedly connected with extension legs 3. Through the setting of the extension legs 3, the extension legs 3 can change the overall length between the support legs 2 and the extension legs 3, so that the placement effect of the operating platform 1 is better. The operating platform 1 is supported by the two support legs 2. At the other end of the bottom of the operating platform 1, an inclined leg 4 is rotatably connected. The inclined leg 4 rotates in a direction away from the two support legs 2 to support the operating platform 1. One end of the inclined leg 4 away from the operating platform 1 is rotatably connected with a rotating clamping plate 5. One end of the rotating clamping plate 5 away from the inclined leg 4 is fixed with a threaded rod 6, and a counterweight body 7 is threadedly connected to the outside of the threaded rod 6. The counterweight body 7 is generally in a shape similar to an L shape, so as to better threadedly connect with the threaded rod 6;

[0028] When it is necessary to detect the quality of a construction project, the flatness and inclination of the building wall can be detected. When detecting, an operating platform 1 is generally used to place or operate some equipment. It is supported by the support legs 2 provided at the bottom of the operating platform 1, and the inclined legs 4 extend outward. By screwing and rotating the clamping plate 5, the threaded rod 6 is driven to rotate, and through the threaded connection between the threaded rod 6 and the counterweight 7, the inclined legs 4 and the counterweight 7 are integrated as a whole. By such a relatively far position, the operating platform 1 is supported, which can prevent the ground inclination or deep pits at the position close to the wall surface, making it difficult to place the operating platform 1;

[0029] When there are no other obstacles close to the wall surface, two additional support legs 2 can be found and installed at the bottom of the operating platform 1 so that there are four support legs 2 at the bottom of the operating platform 1 for support;

[0030] A pulling structure is also installed between the counterweight 7 and the operating platform 1, and the pulling structure is used to pull and stabilize the operating platform 1.

[0031] Refer to the appendix Figure 2 , the pulling structure includes a plurality of fixed buckles 9 fixed on the top of the counterweight 7. At the bottom of the operating platform 1 and at one end far from the inclined legs 4, an installation buckle 8 is fixed. A tension spring 10 is arranged between the installation buckle 8 and one of the fixed buckles 9. When it is necessary to remove the operating platform 1, the tension spring 10 can be directly removed from the installation buckle 8 and the fixed buckle 9;

[0032] When heavy objects are placed on the operating platform 1, it is easy to cause the end of the operating platform 1 far from the inclined legs 4 to lift upward. At this time, the end of the operating platform 1 far from the inclined legs 4 can be pulled by the tension spring 10 to prevent it from jolting. Through the plurality of fixed buckles 9 provided, the tension spring 10 can be carried on a certain fixed buckle 9 according to the situation. The farther the fixed buckle 9 is from the operating platform 1, the stronger the tension of the tension spring 10 carried on it.

[0033] Refer to the appendix Figures 3-5, on one side of the counterweight body 7 and outside the threaded rod 6, a fixing ring 12 is fixed. On the side of the fixing ring 12 away from the counterweight body 7, a plurality of pushing springs 13 are assembled. On the side of the snap ring 11 close to the fixing ring 12 and inside the pushing springs 13, a plurality of limiting strips 14 are fixed, and the limiting strips 14 are slidably connected to the fixing ring 12. Through the arrangement of the limiting strips 14, when the pushing springs 13 are compressed, due to the limitation of the limiting strips 14, the pushing springs 13 are prevented from bending and other phenomena. And one end of the pushing spring 13 away from the fixing ring 12 is fixed with a snap ring 11. A plurality of locking blocks are arranged on the inner side of the snap ring 11, and a plurality of locking blocks corresponding to the locking blocks on the snap ring 11 are also arranged on the outer side of the rotating clamping plate 5. Furthermore, the snap ring 11 and the rotating clamping plate 5 are clamped with each other. The pushing spring 13 is used to elastically move the snap ring 11 towards the direction close to the rotating clamping plate 5. Refer to the attached Figure 5 As shown, on the sides of the snap ring 11 and the fixing ring 12 close to each other, a plurality of second magnet bars 16 and a plurality of first magnet bars 15 are respectively fixed, and the number of the plurality of second magnet bars 16 is the same as that of the plurality of first magnet bars 15 and their positions correspond. When it is necessary to rotate the clamping plate 5, the snap ring 11 can be moved towards the direction close to the fixing ring 12, so that the first magnet bars 15 are adsorbed on the second magnet bars 16, thereby canceling the clamping of the snap ring 11 on the rotating clamping plate 5;

[0034] After the rotating clamping plate 5 is screwed and rotated, through the pushing spring 13, the snap ring 11 can be elastically moved towards the direction close to the rotating clamping plate 5, so that the snap ring 11 and the rotating clamping plate 5 are clamped with each other, thereby preventing the rotating clamping plate 5 from rotating automatically due to external force.

[0035] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention. The structures, devices and operation methods not specifically described and explained in the present invention, unless otherwise specifically stated and limited, are implemented according to the conventional means in the art.

Claims

1. An auxiliary device for the quality inspection of building energy conservation projects, comprising an operation platform (1), characterized in that: At one end of the bottom of the operation platform (1), two support legs (2) are fixed. At the other end of the bottom of the operation platform (1), an inclined leg (4) is rotatably connected. At the end of the inclined leg (4) far from the operation platform (1), a rotating clamping plate (5) is rotatably connected. At the end of the rotating clamping plate (5) far from the inclined leg (4), a threaded rod (6) is fixed, and a counterweight (7) is threadedly connected to the outer side of the threaded rod (6). A pulling structure is also installed between the counterweight (7) and the operation platform (1), and the pulling structure is used to pull and stabilize the operation platform (1).

2. The auxiliary device for the quality inspection of building energy conservation projects according to claim 1, wherein: The pulling structure includes a plurality of fixing buckles (9) fixed on the top of the counterweight (7). At the bottom of the operation platform (1) and at the end far from the inclined leg (4), a mounting buckle (8) is fixed. A tension spring (10) is arranged between the mounting buckle (8) and one of the fixing buckles (9).

3. An auxiliary device for the quality inspection of building energy conservation projects according to claim 1, characterized in that: On one side of the counterweight (7) and outside the threaded rod (6), a fixing ring (12) is fixed. On the side of the fixing ring (12) far from the counterweight (7), a plurality of pushing springs (13) are assembled. At the end of the pushing spring (13) far from the fixing ring (12), a clamping ring (11) is fixed, and the clamping ring (11) is mutually clamped with the rotating clamping plate (5).

4. An auxiliary device for quality inspection of building energy conservation projects according to claim 3, characterized in that: On the mutually approaching sides of the clamping ring (11) and the fixing ring (12), a plurality of second magnet bars (16) and a plurality of first magnet bars (15) are respectively fixed, and the number of the plurality of second magnet bars (16) is the same as that of the plurality of first magnet bars (15) and their positions correspond to each other.

5. The auxiliary device for quality inspection of building energy conservation projects according to claim 3, characterized in that: On the side of the clamping ring (11) close to the fixing ring (12) and inside the pushing spring (13), a plurality of limiting bars (14) are fixed, and the limiting bars (14) are slidably connected with the fixing ring (12).

6. The auxiliary device for the quality inspection of building energy conservation projects according to claim 1, characterized in that: The bottom of the support leg (2) is threadedly connected with an extension leg (3).