Auxiliary assembly for building energy-saving detection equipment

By designing auxiliary components, the building energy efficiency testing equipment can be quickly adapted and stably clamped, solving the problems of time-consuming adjustment, poor compatibility, and poor vibration reduction effect of existing devices, and improving the accuracy and stability of the test data.

CN223769548UActive Publication Date: 2026-01-06GUANGZHOU ZHONGJIAN BUILDING MATERIALS INSPECTION & TESTING CO LTD
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Patent Information

Application Number
CN202520864839.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2026-01-06
Estimated Expiration
2035-05-06

AI Technical Summary

Technical Problem

Existing building energy efficiency testing equipment has problems such as time-consuming adjustment, poor compatibility, and poor vibration damping effect. Existing technical devices are prone to loosening under complex working conditions, which affects the accuracy of test data.

Method used

The auxiliary components include an auxiliary base, a movable control seat, a clamping crossbar, a slide bar, and a limit clamping component. Through guide rail connection and a buffer spring assembly, the equipment can be flexibly adjusted and stably clamped, adapting to equipment of different sizes and providing cushioning and shock absorption.

Benefits of technology

It improves the compatibility and stability of the equipment, reduces measurement errors, increases the accuracy of detection data, enhances adaptability, and strengthens the stability of the equipment under complex working conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an auxiliary assembly for building energy-saving detection equipment, which belongs to the technical field of building energy-saving detection and comprises an auxiliary part base, two movable control seats, a clamping cross rod, a sliding rod and a limiting clamping part, the two movable control seats are symmetrically arranged on the edge of the top of the auxiliary part base, the clamping cross rod is connected to the movable control seats, and the sliding rod is connected to the limiting clamping part. A sliding rod is connected to the upper portion of the clamping transverse rod, and the limiting clamping piece is connected to the sliding rod in a sliding mode. The building energy-saving detection equipment fixing device solves the problems that an existing building detection equipment fixing device is time-consuming in adjustment, poor in compatibility and lack of damping design, remarkably improves installation convenience, stability and detection data reliability of building energy-saving detection equipment, and is suitable for various complex building energy-saving detection working conditions.
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Description

TECHNICAL FIELD

[0001] The utility model relates to building energy saving detection technical field, specifically related to a kind of for the auxiliary assembly of building energy saving detection equipment. BACKGROUND

[0002] In the current building energy saving detection work, the stable installation and effective protection of detection equipment are crucial.The existing building detection equipment fixing device is mostly bolted or single size clamping groove.Bolted, each time installation and adjustment of equipment position need to consume a lot of time for screwing bolt, operation is complicated, especially in the detection scene needing frequent adjustment of equipment position, greatly reduce work efficiency.Single size clamping groove can only adapt to specific size detection equipment, for different specifications, shape equipment, cannot realize stable fixation, compatibility is very poor.More importantly, most existing fixing devices lack shock absorption design, when there is vibration source in building construction site, such as vibration generated by construction machinery operation, material handling and so on is transmitted to detection equipment, equipment is prone to loosen due to vibration, leading to detection data deviation, seriously interfere with the accuracy of detection result.

[0003] The existing building detection equipment fixing device is mostly bolted or single size clamping groove, there is adjustment time-consuming, poor compatibility, lack of shock absorption design and other problems, leading to equipment loosening or vibration interference under complex working conditions.For this reason, the utility model provides a kind of auxiliary assembly for building energy saving detection equipment to solve the deficiencies and shortcomings of prior art. UTILITY MODEL CONTENTS

[0004] The utility model aims at overcoming the deficiencies of prior art, and provides an auxiliary assembly for building energy saving detection equipment.

[0005] The utility model adopts the technical scheme that:

[0006] An auxiliary assembly for building energy saving detection equipment, including auxiliary part base, mobile control seat, clamping cross bar, sliding rod and limiting clamping piece, two mobile control seats are symmetrically installed on the top edge of the auxiliary part base, the clamping cross bar is connected on the mobile control seat, the sliding rod is connected above the clamping cross bar, and the limiting clamping piece is slidably connected on the sliding rod.

[0007] Preferably, the auxiliary part base is fixedly connected with a fixing frame, and the clamping cross bar is connected with the fixing frame through a lifting rod.

[0008] Preferably, the mobile control seat is connected and installed on the auxiliary part base through a guide rail.

[0009] Preferably, the limiting and clamping piece comprises a T-shaped block, a U-shaped block, an abutting block A, an abutting block B, a clamping rubber end and a buffer spring set, the top of the T-shaped block is fixedly connected with the abutting block A, the abutting block B is provided with a sliding groove for the abutting block A to move, the abutting block A and the abutting block B are fixedly connected through the buffer spring set, the outer end of the abutting block B is fixedly connected with the clamping rubber end, and a long hole is formed in the T-shaped block.

[0010] Preferably, a positioning stud knob is arranged on the top of the U-shaped block through thread penetration connection.

[0011] The utility model discloses the beneficial effects are:

[0012] The utility model discloses the flexible adjustment clamping cross bar's interval can adapt to the detection equipment of different width, and the detection equipment of different length is adapted, and the compatibility and quick adaptation ability of component to multiple size detection equipment are greatly improved, the clamping rubber end is closely combined equipment surface, realizes stable clamping, effectively prevents equipment from shaking or displacement in the detection process, reduces the measurement error of equipment due to vibration, improves the accuracy of detection data, the utility model discloses can adjust the height of detection equipment according to actual detection demand, satisfies the requirement of equipment height under different detection scenes, further enhances the applicability of component. BRIEF DESCRIPTION OF DRAWINGS

[0013] Fig. 1 The utility model discloses three -dimensional structure schematic diagram.

[0014] Fig. 2 The utility model discloses the structure schematic diagram of limiting and clamping piece.

[0015] Fig. 3 The utility model discloses the partial section view of limiting and clamping piece. DETAILED DESCRIPTION

[0016] The drawings are only for example explanation, and can not be understood as the limitation of the patent, in order to better illustrate the embodiment, some components of the drawings can be omitted, enlarged or reduced, and do not represent the size of actual product, for the person skilled in the art, some well-known structure and its description in the drawings can be omitted, and it is understandable.

[0017] As Figs. 1-3As shown, an auxiliary component for a building energy efficiency testing device includes an auxiliary base 001, a movable control seat 002, a clamping crossbar 003, a sliding rod 004, and a limiting clamping component 005. Two movable control seats 002 are symmetrically installed on the top edge of the auxiliary base 001. The clamping crossbar 003 is connected to the movable control seat 002, and the sliding rod 004 is connected above the clamping crossbar 003. The limiting clamping component 005 is slidably connected to the sliding rod 004.

[0018] Further optimizations to this solution include, for example: Figs. 1-3 As shown, a fixed frame 101 is fixedly connected to the auxiliary component base 001. A clamping crossbar 003 is connected to the fixed frame 101 via a lifting rod 102. The lifting rod 102 has a hydraulic lifting rod to control the lifting and lowering of the clamping crossbar 003.

[0019] Further optimizations to this solution include, for example: Figs. 1-3 As shown, the mobile control base 002 is connected and installed on the auxiliary component base 001 via the guide rail 201, and the mobile control base 002 can move and be fixed on the guide rail 201.

[0020] Further optimizations to this solution include, for example: Figs. 1-3 As shown, the limiting clamping component 005 includes a T-shaped block 510, a U-shaped block 520, an abutment block A 530, an abutment block B 540, a clamping rubber end 550, and a buffer spring assembly 560. The top of the T-shaped block 510 is fixedly connected to the abutment block A 530. A sliding groove 541 for the abutment block A 530 to move is provided between the abutment blocks B 540. The abutment blocks A 530 and B 540 are fixedly connected by the buffer spring assembly 560. The clamping rubber end 550 is fixedly connected to the outer end of the abutment block B 540. An elongated hole 511 is provided on the T-shaped block 510. One end of the U-shaped block 520 is connected to the elongated hole 511 by a fixing bolt 521.

[0021] Further optimizations to this solution include, for example: Figs. 1-3 As shown, the top of the U-shaped block 520 is threaded through and connected to a positioning stud knob 522. The combination of the U-shaped block 520 and the T-shaped block 510 allows for free sliding on the slide rod 004. By rotating the positioning stud knob 522, the positioning stud knob 522 is grounded on the slide rod 004 to achieve a limit.

[0022] The method of use or principle of this utility model is as follows:

[0023] When the building energy-saving detection device needs to be installed, first, according to the width of the device, the mobile control seat is pushed to slide on the guide rail of the auxiliary base, the distance between the two clamping cross bars is adjusted to be slightly larger than the width of the device. Then, the detection device is placed above the two clamping cross bars. Then, the position of the limiting clamp on the slide rod is slid, according to the length of the device, the fixing bolt is loosened, the position of the U-shaped block in the long hole of the T-shaped block is adjusted, and the limiting clamp is fixed in the appropriate position by rotating the positioning stud knob. At this time, the clamping rubber end on the abutting block B will be in contact with the surface of the device. Because the abutting block A and the abutting block B are fixedly connected through the buffer spring set, the buffer spring set will produce a certain elastic deformation, and the clamping force is applied to the device to realize stable clamping. When there is vibration in the detection site, the vibration is transmitted to the limiting clamp through the device, the buffer spring set is compressed or stretched, and the vibration energy is absorbed, so that the buffer shock-absorbing effect is achieved, and the detection device can stably operate under complex working conditions and accurately obtain detection data. If the height of the detection device needs to be adjusted, the lifting rod can be operated to make the fixed frame drive the clamping cross bar and the detection device installed thereon to rise or fall until the required height is reached.

[0024] In the drawings, the position relationship is only used for example description and cannot be understood as a limitation to the patent; obviously, the above embodiments of the utility model are only examples for clearly explaining the utility model, and are not a limitation to the embodiments of the utility model. For ordinary skilled in the art, on the basis of the above description, other different forms of changes or changes can be made. Here, all the embodiments need not be exhausted. Any modification, equivalent replacement and improvement within the spirit and principle of the utility model should be included in the protection scope of the utility model claims.

Claims

1. An auxiliary assembly for a building energy efficiency detection device, characterized by: Including auxiliary base (001), mobile control seat (002), clamping cross rod (003), slide rod (004) and limiting clamp (005), two mobile control seats (002) are symmetrically installed on the top edge of the auxiliary base (001), the clamping cross rod (003) is connected on the mobile control seat (002), the slide rod (004) is connected above the clamping cross rod (003), and the limiting clamp (005) is slidably connected on the slide rod (004).

2. The auxiliary assembly for building energy efficiency detection equipment according to claim 1, characterized in that: The fixed frame (101) is fixedly connected on the auxiliary base (001), and the clamping cross rod (003) is connected on the fixed frame (101) through the lifting rod (102).

3. The auxiliary assembly for building energy efficiency inspection equipment according to claim 1, characterized in that: The mobile control seat (002) is connected and installed on the auxiliary base (001) through the guide rail (201).

4. The auxiliary assembly for building energy efficiency inspection equipment according to claim 1, characterized in that: The limiting clamp (005) comprises a T-shaped block (510), a U-shaped block (520), an abutting block A (530), an abutting block B (540), a clamping rubber end (550) and a buffer spring set (560), the T-shaped block (510) is fixedly connected with the abutting block A (530) on the top, the abutting block B (540) is provided with a sliding groove (541) for the abutting block A (530) to move, the abutting block A (530) and the abutting block B (540) are fixedly connected through the buffer spring set (560), the abutting block B (540) is fixedly connected with the clamping rubber end (550) on the outer end, and the T-shaped block (510) is provided with a long hole (511).

5. The auxiliary assembly for building energy efficiency inspection equipment according to claim 4, characterized in that: The U-shaped block (520) is provided with a positioning stud knob (522) on the top and is connected in the long hole (511) through a fixed bolt (521).