Test assembly of efficient heat insulation wall for assembled building

By designing a motor-driven rotating rod and linkage system, combined with positioning components and hydraulic cylinders, the problem of shaking and pressure testing of high-efficiency thermal insulation walls for prefabricated buildings in existing technologies has been solved. This enables accurate testing of the walls under shaking and load-bearing conditions, ensuring accurate assessment of the safety and thermal insulation performance of prefabricated buildings.

CN223727367UActive Publication Date: 2025-12-26GUANGDONG SOUTH CHINA DINGSHENG CONSTR CO LTD
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Patent Information

Application Number
CN202423318830.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-12-26
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

In existing technologies, test components for prefabricated high-efficiency thermal insulation walls for buildings are difficult to simulate earthquake-induced shaking and pressure tests, making it impossible to accurately assess the structural reliability and load-bearing limit of the wall, thus posing safety hazards.

Method used

A system of rotating rods and linkage rods driven by a motor was designed. The rotating rod drives the disc and linkage rod to simulate the shaking of the wall. Combined with positioning components and hydraulic cylinders, pressure testing is carried out to ensure the stability and safety of the wall under shaking and load-bearing conditions.

Benefits of technology

It enables precise testing of walls under shaking and load-bearing conditions, ensuring accurate assessment of the safety and thermal insulation performance of prefabricated buildings, and improving the accuracy and safety of testing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wall testing, and discloses a testing assembly of an efficient heat insulation wall for an assembled building, which comprises a tester, a fixed plate is fixedly connected in the tester, the right side of the fixed plate is fixedly connected with a motor I, the inner wall of one side of the tester and the left side of the fixed plate are both rotatably connected with a rotating rod, and the rotating rod is fixedly connected with a motor II. Wherein the right end of one rotating rod is fixedly connected to the driving end of the first motor, discs are fixedly connected to the close ends of the two rotating rods correspondingly, a linkage rod is fixedly connected to the close ends of the two discs, and two rotating rings are rotationally connected to the outer portion of the linkage rod; and a displacement rod is fixedly connected to the outer part of the rotating ring. According to the utility model, the earthquake emergency situation can be simulated through the shake test, the earthquake resistance of the wall body can be accurately inspected, and the safety of a building in a disaster can be guaranteed; the pressure test can determine the upper limit of wall load bearing, and ensures that the structure is stable under long-term load bearing of the building.
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Description

TECHNICAL FIELD

[0001] The utility model relates to wall test technical field especially relates to the test assembly of high -efficient heat -insulation wall for assembly building. BACKGROUND

[0002] The high -efficient heat -insulation wall for assembly building is the core measured object, aims at blocking heat transfer, reduces building energy consumption, creates comfortable temperature and humidity environment for indoor, in the assembly building, is composed of heat -insulation material and structural member, and the test assembly is aimed at it, and the performance such as heat -insulation, mechanics is accurately evaluated, and helps high -quality wall screening.

[0003] The test assembly carries out multidimensional test to the heat -insulation wall. After installing the wall in place, starting heating element, simulating different intensity heat radiation, the temperature difference between inner and outer wall is monitored in real time with high -precision temperature sensor, and the data of accurately collecting and calculating thermal resistance are measured heat -insulation efficiency;Simulate the environment of wind and rain erosion, detect the waterproof and moisture -proof and long -term heat -insulation stability of wall.

[0004] In the prior art, the structure reliability of part of the test assembly of wall in the process of use is difficult to know when the wall shakes in the earthquake, the connection node cannot be judged whether it is stable, the pressure test is missing, the bearing limit of the wall cannot be mastered, once the actual load exceeds the expectation, cracks or even collapse are prone to occur, and the overall safety of the assembly building is endangered, therefore, the test assembly of high -efficient heat -insulation wall for assembly building is proposed to solve the above problems. UTILITY MODEL CONTENTS

[0005] In order to make up for the above shortcomings, the utility model provides a test assembly of high -efficient heat -insulation wall for assembly building, which aims at improving the problem that the wall is difficult to shake and pressure test in the prior art.

[0006] In order to realize the above purpose, the utility model adopts the following technical scheme:

[0007] The test assembly of high -efficient heat -insulation wall for assembly building, including tester, the inside fixed connection of tester has fixed plate, the right side fixed connection of fixed plate has motor no.

[0008] As a further description of the above technical solutions:

[0009] The positioning assembly comprises a plurality of stabilizing blocks, the proximal ends of two of the stabilizing blocks are fixedly connected together with a support rod, the outside of the support rod is sleeved with a spring, the outside of the support rod is slidably connected with a sliding block, the top of the sliding block is fixedly connected with a connecting block, and the top of the connecting block is fixedly connected with a positioning block.

[0010] As a further description of the above technical solutions:

[0011] The top and left and right ends of the mounting plate are fixedly connected with two sliding connecting blocks, and the inner wall of one side of the tester and the left side of the fixing plate are both provided with a sliding groove.

[0012] As a further description of the above technical solutions:

[0013] The top of the plurality of sliding connecting blocks is fixedly connected with a placing plate, and one end of the sliding connecting block is slidably connected in the inside of the sliding groove.

[0014] As a further description of the above technical solutions:

[0015] The top of the placing plate is provided with two limiting grooves, the outside of the connecting block is slidably connected in the inside of the limiting groove, and the bottom of the positioning block is slidably connected to the top of the placing plate.

[0016] As a further description of the above technical solutions:

[0017] The inside top end of the tester is fixedly connected with a heater, and the inner wall of one side of the tester and the left side of the fixing plate are fixedly connected with a plurality of separation plates.

[0018] As a further description of the above technical solutions:

[0019] The extrusion assembly comprises a sliding rail, the left and right ends of the sliding rail are fixedly connected to the inner wall of one side of the tester and the left side of the fixing plate, respectively, the bottom of the sliding rail is slidably connected with a sliding block, the bottom of the sliding block is fixedly connected with a hydraulic cylinder, and the driving end of the hydraulic cylinder is fixedly connected with a pressing block.

[0020] As a further description of the above technical solutions:

[0021] The front end of the tester is rotatably connected with two cabinet doors, the rear end of the tester is fixedly connected with an observation window, and the right side of the inside of the tester is fixedly connected with a recorder.

[0022] The utility model has the advantages of the following beneficial effects:

[0023] 1、The utility model discloses a start motor can drive rotating rod to rotate, when rotating rod can drive disc to rotate in the process of rotating, make disc can drive linkage rod up and down movement, realized the shaking test can simulate earthquake emergent condition, accurate inspection wall body earthquake resistance, guarantee the safety when building encounters disaster, pressure test can clearly wall body bearing upper limit, ensure its structure stable under the long -term bearing of building.

[0024] 2、The utility model discloses a wall body is put into between two positioning blocks, when wall body is put into between positioning block, positioning block can drive the movement of the block, make the block can drive the movement of the sliding block, realized the guarantee test accuracy, displacement will cause heat transfer, mechanical test data deviation, only stable state can obtain real performance index for improvement, and stable state can let heat flow even, orderly penetrate wall body, ensure that the heat insulation coefficient that measures is accurate and correct. BRIEF DESCRIPTION OF DRAWINGS

[0025] Figure 1 It is the three -dimensional schematic view of the test assembly of efficient heat insulation wall body for assembly building that the utility model proposes;

[0026] Figure 2 It is the structure schematic view of observation window of test assembly of efficient heat insulation wall body for assembly building that the utility model proposes;

[0027] Figure 3 It is the structure schematic view of positioning block of test assembly of efficient heat insulation wall body for assembly building that the utility model proposes;

[0028] Figure 4 It is the structure schematic view of sliding block of test assembly of efficient heat insulation wall body for assembly building that the utility model proposes;

[0029] Figure 5 It is the structure schematic view of mounting plate of test assembly of efficient heat insulation wall body for assembly building that the utility model proposes;

[0030] Figure 6 It is Figure 5 The enlarged view of A in the middle.

[0031] Legend:

[0032] 1, tester; 2, box door; 3, observation window; 4, recorder; 5, fixed plate; 6, heater; 7, separation plate; 8, slide rail; 9, sliding block; 10, hydraulic cylinder; 11, pressing block; 12, sliding groove; 13, motor one; 14, rotating rod; 15, disc; 16, linkage rod; 17, rotating ring; 18, displacement rod; 19, mounting plate; 20, stabilizing block; 21, support rod; 22, spring; 23, sliding block; 24, connecting block; 25, positioning block; 26, sliding connecting block; 27, placing plate; 28, limiting groove. DETAILED DESCRIPTION

[0033] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0034] Referring to Figures 1 to 3 An embodiment provided by the utility model: the test assembly of the high-efficiency heat insulation wall for assembling building, including tester 1, tester 1 is the main frame of the whole device, the front end of tester 1 is rotatably connected with two box doors 2, the wall can be put into tester 1 for detection through box door 2, the rear end of tester 1 is fixedly connected with observation window 3, observation window 3 is beneficial to checking the internal test condition at any time, the inside right side of tester 1 is fixedly connected with recorder 4, recorder 4 is used for accurately collecting and storing test data, the inside of tester 1 is fixedly connected with fixed plate 5, fixed plate 5 plays the role of separating test wall and recorder 4, the inside top end of tester 1 is fixedly connected with heater 6, heater 6 continuously provides heat for the test wall, whether the test wall is resistant to high temperature, the inside wall of one side of tester 1 and the left side of fixed plate 5 are fixedly connected with a plurality of separation plates 7, separation plate 7 can separate heater 6, the left side of separation plate 7 is fixed on the inside right side of tester 1, and the right side is fixed on the left side of fixed plate 5.

[0035] Referring to Figure 5 and Figure 6The right side of the fixed plate 5 is fixedly connected with the motor 13, and the inner wall of one side of the tester 1 and the left side of the fixed plate 5 are both rotatably connected with the rotating rod 14, and the right end of one of the rotating rods 14 is fixedly connected with the driving end of the motor 13, and the rotating rod 14 can be driven to rotate by the motor 13, and the proximal ends of the two rotating rods 14 are fixedly connected with the disc 15, and the disc 15 can be fixed by the rotating rod 14, and the proximal ends of the two discs 15 are fixedly connected with the linkage rod 16, and the linkage rod 16 can be driven to move up and down in the rotating process of the disc 15, and the outer rotating rod 16 is rotatably connected with the two rotating rings 17, and the rotating ring 17 can be driven to move up and down in the process of the linkage rod 16 moving up and down, and the outer rotating ring 17 is fixedly connected with the displacement rod 18, and the top of the two displacement rods 18 is rotatably connected with the mounting plate 19, and the displacement rod 18 can drive the mounting plate 19 to move up and down in the process of the rotating ring 17 moving up and down.

[0036] Referring to Figure 3 and Figure 4 The top of the mounting plate 19 is fixedly connected with the positioning assembly for limiting the wall body, the positioning assembly comprises a plurality of stable blocks 20, the proximal ends of the two stable blocks 20 are fixedly connected with the supporting rod 21, the supporting rod 21 can be fixed by the stable block 20, the outer supporting rod 21 is sleeved with the spring 22, the spring 22 can have the effect of elastic force, the outer supporting rod 21 is slidably connected with the sliding block 23, the sliding block 23 can slide on the outer supporting rod 21, the top of the sliding block 23 is fixedly connected with the connecting block 24, the top of the connecting block 24 is fixedly connected with the positioning block 25, when the wall body is placed in the inner positioning block 25, the positioning block 25 will move, and the positioning block 25 can drive the connecting block 24 to push the sliding block 23 to press the spring 22 in the moving process of the positioning block 25, so that the spring 22 is deformed, so as to generate potential energy to press the wall body.

[0037] The top left and right ends of the mounting plate 19 are fixedly connected with two sliding connecting blocks 26, which can play a limiting role. The left side of the tester 1 and the fixed plate 5 is provided with a sliding groove 12. The top of the plurality of sliding connecting blocks 26 is fixedly connected with a placing plate 27. The mounting plate 19 and the placing plate 27 are connected together through the sliding connecting block 26. One end of the sliding connecting block 26 is slidably connected in the sliding groove 12. The mounting plate 19 and the placing plate 27 can move up and down in a straight line. The top of the placing plate 27 is provided with two limiting grooves 28. The outer part of the connecting block 24 is slidably connected in the limiting groove 28. The limiting groove 28 can make the connecting block 24 move in a straight line. The bottom of the positioning block 25 is slidably connected to the top of the placing plate 27. The wall on the top of the placing plate 27 is positioned by the positioning block 25, so as to ensure the stability of the wall during detection.

[0038] The left side of the tester 1 and the fixed plate 5 is fixedly connected with a wall testing extrusion assembly. The extrusion assembly comprises a sliding rail 8. The left and right ends of the sliding rail 8 are fixedly connected to the left side of the tester 1 and the fixed plate 5. The sliding rail 8 can drive the subsequent workpiece to move. The sliding rail 8 is blocked at the bottom of the separation plate 7 (as shown in Figure 4 After the separation plate 7 is removed), the bottom of the sliding rail 8 is slidably connected with a sliding block 9. The sliding block 9 can slide on the bottom of the sliding rail 8, so that the sliding block 9 can move freely. The bottom of the sliding block 9 is fixedly connected with a hydraulic cylinder 10. The hydraulic cylinder 10 can be driven by the sliding block 9 to move freely. The driving end of the hydraulic cylinder 10 is fixedly connected with a pressing block 11. The pressing block 11 can be pushed down by the hydraulic cylinder 10, so as to press the wall.

[0039] Working principle: when the wall needs to be tested, the wall needs to be positioned first to prevent shaking during detection. First, the wall is placed between the two positioning blocks 25. When the wall is placed between the positioning blocks 25, the positioning blocks 25 can drive the connecting block 24 to move, so that the connecting block 24 can drive the sliding block 23 to move. The sliding block 23 will extrude the spring 22 during movement, so that the spring 22 will deform to generate potential energy. The elastic force of the sliding block 23 is transmitted to the positioning block 25. The limiting groove 28 can limit the position of the connecting block 24 during movement to prevent deviation during movement, so that the positioning block 25 can position the wall to prevent movement during testing.

[0040] When the wall is positioned, the heater 6 is used for continuous heating, and then the wall can be detected at high temperature to check whether the wall is high-temperature resistant, and after the detection, the sliding block 9 outside the sliding rail 8 can drive the hydraulic cylinder 10 to move, and then the hydraulic cylinder 10 is started to drive the lower block 11 to descend and extrude the wall to test the extrusion resistance of the wall.

[0041] When the test is completed, the wall needs to be tested for shaking force, first, the motor one 13 is started, and after the motor one 13 is started, the rotating rod 14 can be rotated, and when the rotating rod 14 rotates, the disc 15 can be rotated, and since one end of the disc 15 is connected to another disc 15 by the linkage rod 16, the disc 15 can drive the linkage rod 16 to move up and down during rotation, and when the linkage rod 16 moves up and down, the external rotating rotating ring 17 can be shaken up and down, so that the rotating ring 17 drives the displacement rod 18 to shake up and down, and the displacement rod 18 can drive the mounting plate 19 to move up and down, and the sliding connection block 26 fixed on the top of the mounting plate 19 can fix the placement plate 27, so that the mounting plate 19 can drive the placement plate 27 to move up and down during the movement, and since the sliding connection block 26 is sliding in the sliding groove 12, the mounting plate 19 and the placement plate 27 can move in a straight line during the movement, so that the wall limited on the top of the placement plate 27 can move up and down to simulate shaking in an earthquake.

[0042] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and not for limiting the present application, although the foregoing detailed description of the present application is made with reference to the foregoing embodiments, for the person skilled in the art, it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features, any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application, should be included in the protection scope of the present application.

Claims

1. Test assembly for the assembly of high-efficiency thermal insulation walls for buildings, comprising a tester (1), characterized in that: The inside of the tester (1) is fixedly connected with a fixed plate (5), the right side of the fixed plate (5) is fixedly connected with a motor one (13), the inside wall of one side of the tester (1) and the left side of the fixed plate (5) are both rotatably connected with a rotating rod (14), the right end of one of the rotating rods (14) is fixedly connected with the driving end of the motor one (13), the proximal ends of the two rotating rods (14) are respectively fixedly connected with a disc (15), the proximal ends of the two discs (15) are fixedly connected with a linkage rod (16), the outer part of the linkage rod (16) is rotatably connected with two rotating rings (17), the outer part of the rotating ring (17) is fixedly connected with a displacement rod (18), the top of the two displacement rods (18) is rotatably connected with a mounting plate (19), the top of the mounting plate (19) is fixedly connected with a positioning assembly for limiting the wall body, the inside wall of one side of the tester (1) and the left side of the fixed plate (5) are fixedly connected with a extrusion assembly for testing the wall body.

2. The test assembly for assembling high performance thermally insulated walls for building construction of claim 1, wherein: The positioning assembly comprises a plurality of stabilizing blocks (20), the proximal ends of the two stabilizing blocks (20) are fixedly connected with a supporting rod (21), the outer part of the supporting rod (21) is sleeved with a spring (22), the outer part of the supporting rod (21) is slidably connected with a sliding block (23), the top of the sliding block (23) is fixedly connected with a connecting block (24), the top of the connecting block (24) is fixedly connected with a positioning block (25).

3. The test assembly for assembling high performance thermally insulated walls for building construction of claim 2, wherein: The top of the mounting plate (19) is fixedly connected with two sliding connecting blocks (26), the inside wall of one side of the tester (1) and the left side of the fixed plate (5) are both provided with a sliding groove (12).

4. The test assembly for assembling high performance thermally insulated walls for building construction of claim 3, wherein: The top of the plurality of sliding connecting blocks (26) is fixedly connected with a placing plate (27), one end of the sliding connecting block (26) is slidably connected in the inside of the sliding groove (12).

5. The test assembly for assembling high performance thermally insulated walls for building construction of claim 4, wherein: The top of the placing plate (27) is provided with two limiting grooves (28), the outer part of the connecting block (24) is slidably connected in the inside of the limiting groove (28), the bottom of the positioning block (25) is slidably connected with the top of the placing plate (27).

6. The test assembly for assembling high performance thermally insulated wall sections for building construction of claim 1, wherein: The inside top end of the tester (1) is fixedly connected with a heater (6), the inside wall of one side of the tester (1) and the left side of the fixed plate (5) are fixedly connected with a plurality of separation plates (7).

7. The test assembly for assembling high performance thermally insulated wall sections for building construction of claim 1, wherein: The extrusion assembly comprises a sliding rail (8), the left and right ends of the sliding rail (8) are respectively fixedly connected with the inside wall of one side of the tester (1) and the left side of the fixed plate (5), the bottom of the sliding rail (8) is slidably connected with a sliding block (9), the bottom of the sliding block (9) is fixedly connected with a hydraulic cylinder (10), the driving end of the hydraulic cylinder (10) is fixedly connected with a pressing block (11).

8. The test assembly for assembling high performance thermally insulated wall sections for building construction of claim 1, wherein: The front end of the tester (1) is rotatably connected with two box doors (2), the rear end of the tester (1) is fixedly connected with an observation window (3), the inside right side of the tester (1) is fixedly connected with a recorder (4).