Building material thermal insulation performance detection equipment
Through anti-shock structure and anti-slip design, the problems of crushing and sliding displacement of building materials during the inspection process are solved, safe and efficient temperature detection effects are achieved, and the intelligence of the detection equipment is improved.
Patent Information
- Application Number
- CN202421284543.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-06
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-06-06
AI Technical Summary
Existing building materials insulation performance testing equipment can easily lead to crushing and sliding displacement of building materials during the push process, affecting detection efficiency and safety.
It adopts anti-shock structure and anti-slip design, including the buffering effect of the anti-shock spring and the base, as well as the anti-slip projection design, combined with the linear sliding of the pulley and the slider, to ensure that the building materials do not shatter or displace during the inspection process. At the same time, the temperature detection is used to use the telescopic rod connected to the cylinder to improve the intelligence of the device.
The safety and stability of building materials during the inspection process are achieved, the collision and sliding displacement are avoided, and the detection efficiency and intelligence are improved.
Smart Images

Figure CN223154904U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of the heat preservation performance of building materials, in particular to a detection device for the heat preservation performance of building materials. Background Art
[0002] With the development of new building materials, new buildings have higher and higher requirements for heat insulation performance. The heat preservation performance of houses is an important index for evaluating the quality of buildings. Therefore, it is necessary to detect the heat preservation performance of the heat preservation materials used in house construction to judge the heat preservation performance of the wall.
[0003] The application number is CN202321982571.0. A detection device for the heat preservation performance of heat preservation materials for building engineering provided by the utility model, when in use, pull out the first carrier. Place the heat preservation material in the embedding groove provided at the top of the first carrier. Push the first carrier into the middle of the first support through the pull handle. During the process of pushing the first carrier to move, when the card slot and the card part are opposite, the limiting mechanism is clamped with the support plate to fix the first carrier. At this time, the first carrier can also be locked by the universal self-locking wheels to stabilize the first carrier. Start the first electric push rod. The first electric push rod pushes the heat insulation frame upward to abut against the bottom of the first carrier. Start the heating wire. The heating wire heats and conducts heat to the heat preservation material through the heat conduction plate arranged in the middle of the first carrier to heat the heat preservation material. Start the motor and the second electric push rod to detect the temperature of each part at the top of the heat preservation material; after the above detection is completed, start the first electric push rod to retract the heat insulation frame downward, open the universal self-locking wheels and pull the pull handle to pull out the first carrier. When the limiting mechanism arranged on the right side is clamped with the card slot arranged on the left side of the first carrier during the pulling process, stop. Lock the universal self-locking wheels. The heat preservation material on the first carrier dissipates heat. At this time, the second carrier can be pulled out. Repeat the above steps, that is: put in the heat preservation material - push in the second carrier - push the heat insulation frame and heat - detect the temperature; the first carrier and the second carrier are provided to be independently pulled out in opposite directions, without affecting each other in detection and heat dissipation, improving the detection efficiency.
[0004] Although this does not affect each other in detection and heat dissipation and improves the detection efficiency, placing the heat preservation material in the embedding groove provided at the top of the first carrier and pushing the first carrier into the middle of the first support through the pull handle are likely to cause vibrations of building materials, such as glass curtain walls, during the pushing process, thus shattering the building materials. Therefore, the utility model provides a detection device for the heat preservation performance of building materials. Summary of the Utility Model
[0005] To solve the above technical problems, the utility model provides a detection device for the heat preservation performance of building materials.
[0006] The present utility model is realized by the following technical solutions: A building material heat preservation performance detection device, including a shockproof structure, a detection structure and a main body structure. The detection structure is located on the top of the shockproof structure, and the main body structure is located on the outer wall of the shockproof structure.
[0007] The shockproof structure includes a moving seat. A pulley is fixedly connected to the top of the moving seat. A handle is fixedly connected to the front of the moving seat. A placement groove is fixedly connected to the left end of the moving seat. A slider is fixedly connected to the outer wall of the placement groove. A groove is provided inside the placement groove. A shockproof spring is fixedly connected to the top of the groove. A base is arranged on the top of the shockproof spring. Anti-slip protrusions are fixedly connected to the upper surface of the base. The building material body is arranged on the top of the anti-slip protrusions.
[0008] As a further improvement of the above solution, the moving seat is arranged in an L-shaped structure, the placement groove is arranged in a square structure, and two sliders are provided and symmetrically arranged left and right with the placement groove as the axis.
[0009] As a further improvement of the above solution, the groove is arranged in a square structure, four shockproof springs are provided and symmetrically distributed with the groove as the axis, and the anti-slip protrusions are made of rubber material.
[0010] Through the above technical solutions, the building material body is placed inside the placement groove. The base is clamped on the top of the groove. Then, by pushing the handle, the moving seat makes a linear slide along with the pulley, so that the placement groove is pushed into the inside of the detection box. During the pushing process, the shockproof spring buffers the building material body, and the situation that the building material body is shattered will not occur. Moreover, the anti-slip protrusions play a role in anti-slip, and the situation of sliding and displacement will not occur.
[0011] As a further improvement of the above solution, the detection structure includes a support frame. A cylinder is fixedly connected to the top of the support frame. A telescopic rod is arranged at the bottom of the cylinder. A temperature detector is fixedly connected to the top of the telescopic rod. A display screen is fixedly connected to one side of the support frame. A control switch is fixedly connected to the bottom of the display screen.
[0012] As a further improvement of the above solution, the support frame is located on the top of the building material body, and an electrical connection is provided between the temperature detector and the display screen.
[0013] Through the above technical solutions, the telescopic rod moves up and down through the cylinder, so that the temperature detector contacts the building material body, thereby detecting the temperature on the surface of the building material body. The detected temperature is displayed on the temperature detector, improving the intelligence of the overall device.
[0014] As a further improvement of the above solution, the main structure includes a detection box. A chute is provided on the inner wall of the detection box. A heating table is arranged inside the detection box. A heating wire is fixedly connected to the upper surface of the heating table. Heat dissipation holes are provided on the outer wall of the detection box.
[0015] As a further improvement of the above solution, the slider is inserted into the inside of the chute. The number of heating wires is several and they are evenly distributed. The number of heat dissipation holes is several and they are evenly distributed.
[0016] Through the above technical solution, the chute and the slider cooperate to make the moving seat slide linearly in a limited way, and the heat dissipation holes dissipate heat from the overall device.
[0017] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0018] In the present utility model, by providing shock-absorbing springs and a base, the building material body is placed inside the placement groove of the placement groove. The base is clamped on the top of the groove. Then, by pushing the handle, the moving seat slides linearly along with the pulley, so that the placement groove is pushed into the detection box. During the pushing process, the shock-absorbing springs play a buffering role for the building material body, preventing the building material body from being shattered, and the anti-slip protrusions play an anti-slip role, preventing sliding and displacement.
[0019] In the present utility model, by providing a telescopic rod that moves up and down through a cylinder, the temperature detector is brought into contact with the building material body, thereby detecting the temperature on the surface of the building material body. The detected temperature is displayed on the temperature detector, improving the intelligence of the overall device. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0021] Figure 2 is a schematic sectional structure diagram of the present utility model;
[0022] Figure 3 is the present utility model Figure 2 magnified schematic diagram of part A in;
[0023] Figure 4 is a schematic overall sectional structure diagram of the present utility model;
[0024] Figure 5 is the present utility model Figure 4 magnified schematic diagram of part B in.
[0025] MAIN SYMBOL DESCRIPTION:
[0026] 1. Shockproof structure; 101. Moving seat; 102. Pulley; 103. Handle; 104. Placing groove; 105. Slide block; 106. Groove; 107. Shockproof spring; 108. Base; 109. Anti-slip protrusion; 110. Building material body; 2. Detection structure; 201. Support frame; 202. Cylinder; 203. Telescopic rod; 204. Temperature detector; 205. Display screen; 206. Control switch; 3. Main body structure; 301. Detection box; 302. Chute; 303. Heating table; 304. Heating wire; 305. Heat dissipation hole. Detailed implementation manner
[0027] Next, in combination with the accompanying drawings and the specific implementation manner, the present utility model will be further described. It should be noted that, on the premise of no conflict, the following-described embodiments or technical features can be arbitrarily combined to form new embodiments.
[0028] Embodiment:
[0029] Please refer to Figures 1-5 , a building material heat preservation performance detection device of this embodiment includes a shockproof structure 1, a detection structure 2 and a main body structure 3. The detection structure 2 is located at the top of the shockproof structure 1, and the main body structure 3 is located on the outer wall of the shockproof structure 1;
[0030] The shockproof structure 1 includes a moving seat 101. A pulley 102 is fixedly connected to the top of the moving seat 101. A handle 103 is fixedly connected to the front of the moving seat 101. A placing groove 104 is fixedly connected to the left end of the moving seat 101. A slide block 105 is fixedly connected to the outer wall of the placing groove 104. A groove 106 is opened inside the placing groove 104. A shockproof spring 107 is fixedly connected to the top of the groove 106. A base 108 is arranged at the top of the shockproof spring 107. An anti-slip protrusion 109 is fixedly connected to the upper surface of the base 108. A building material body 110 is arranged at the top of the anti-slip protrusion 109.
[0031] The moving seat 101 is set as an L-shaped structure, the placing groove 104 is set as a square structure, and the slide blocks 105 are set as two and are symmetrically arranged left and right with the placing groove 104 as the axis.
[0032] The groove 106 is set as a square structure. The number of shock-proof springs 107 is four and they are symmetrically distributed with the groove 106 as the axis. The anti-slip protrusions 109 are made of rubber material. The building material body 110 is placed inside the placement groove 104 of the placement groove 104, clamped to the top of the groove 106 through the base 108, and then by pushing the handle 103, the moving seat 101 slides linearly along with the pulley 102, so that the placement groove 104 is pushed into the interior of the detection box 301. During the pushing process, the shock-proof springs 107 buffer the building material body 110, preventing the building material body 110 from being shattered, and the anti-slip protrusions 109 play an anti-slip role, preventing sliding and displacement.
[0033] The detection structure 2 includes a support frame 201. A cylinder 202 is fixedly connected to the top of the support frame 201. A telescopic rod 203 is arranged at the bottom of the cylinder 202. A temperature detector 204 is fixedly connected to the top of the telescopic rod 203. A display screen 205 is fixedly connected to one side of the support frame 201. A control switch 206 is fixedly connected to the bottom of the display screen 205.
[0034] The support frame 201 is located on the top of the building material body 110. The temperature detector 204 and the display screen 205 are electrically connected. The telescopic rod 203 moves up and down through the cylinder 202, so that the temperature detector 204 contacts the building material body 110, thereby detecting the temperature on the surface of the building material body 110. The detected temperature is displayed on the temperature detector 204, improving the intelligence of the overall device.
[0035] The main body structure 3 includes a detection box 301. A sliding groove 302 is opened on the inner wall of the detection box 301. A heating table 303 is arranged inside the detection box 301. A heating wire 304 is fixedly connected to the upper surface of the heating table 303. Heat dissipation holes 305 are opened on the outer wall of the detection box 301.
[0036] The slider 105 is inserted into the sliding groove 302. The number of heating wires 304 is several and they are evenly distributed. The number of heat dissipation holes 305 is several and they are evenly distributed. The sliding groove 302 cooperates with the slider 105 to limit the linear sliding of the moving seat 101, and the heat dissipation holes 305 dissipate heat from the overall device.
[0037] In the embodiment of the present application, the implementation principle of a building material heat preservation performance detection device is as follows: Place the building material body 110 inside the placement groove 104 of the placement groove 104. Connect the base 108 to the top of the groove 106, and then push the handle 103, so that the moving seat 101 makes a linear slide along with the pulley 102, and the placement groove 104 is pushed into the inside of the detection box 301. During the pushing process, the shock-absorbing spring 107 buffers the building material body 110, preventing the building material body 110 from being shattered. Moreover, the anti-slip protrusions 109 play an anti-slip role, preventing sliding and displacement. The telescopic rod 203 moves up and down through the cylinder 202, so that the temperature detector 204 contacts the building material body 110, thereby detecting the temperature on the surface of the building material body 110. The detected temperature is displayed on the temperature detector 204, improving the intelligence of the overall device. The chute 302 cooperates with the slider 105 to limit the linear slide of the moving seat 101, and the heat dissipation holes 305 dissipate heat from the overall device.
[0038] The above-mentioned implementation manners are only the preferred implementation manners of the present utility model, and cannot be used to limit the scope of protection of the present utility model. Any non-substantial changes and substitutions made by those skilled in the art based on the present utility model fall within the scope of protection required by the present utility model.
Claims
1. An insulation performance detection device for building materials, characterized in that, It includes a shockproof structure (1), a detection structure (2) and a main structure (3). The detection structure (2) is located at the top of the shockproof structure (1), and the main structure (3) is located on the outer wall of the shockproof structure (1). The shockproof structure (1) includes a moving seat (101). A pulley (102) is fixedly connected to the top of the moving seat (101). A handle (103) is fixedly connected to the front of the moving seat (101). A placement groove (104) is fixedly connected to the left end of the moving seat (101). A slider (105) is fixedly connected to the outer wall of the placement groove (104). A groove (106) is formed inside the placement groove (104). A shockproof spring (107) is fixedly connected to the top of the groove (106). A base (108) is arranged on the top of the shockproof spring (107). Anti-slip protrusions (109) are fixedly connected to the upper surface of the base (108). A building material body (110) is arranged on the top of the anti-slip protrusions (109).
2. The insulation performance testing equipment for building materials according to claim 1, characterized in that: The moving seat (101) is arranged in an L-shaped structure. The placement groove (104) is arranged in a square structure. Two sliders (105) are provided and are symmetrically arranged left and right with the placement groove (104) as the axis.
3. An insulation performance testing device for building materials according to claim 1, characterized in that: The groove (106) is arranged in a square structure. Four shockproof springs (107) are provided and are symmetrically distributed with the groove (106) as the axis. The anti-slip protrusions (109) are made of rubber material.
4. An insulation performance detection device for building materials according to claim 1, characterized in that: The detection structure (2) includes a support frame (201). A cylinder (202) is fixedly connected to the top of the support frame (201). A telescopic rod (203) is arranged at the bottom of the cylinder (202). A temperature detector (204) is fixedly connected to the top of the telescopic rod (203). A display screen (205) is fixedly connected to one side of the support frame (201). A control switch (206) is fixedly connected to the bottom of the display screen (205).
5. The insulation performance testing equipment for building materials according to claim 4, characterized in that: The support frame (201) is located on the top of the building material body (110). The temperature detector (204) is electrically connected to the display screen (205).
6. The insulation performance detection device for building materials according to claim 1, characterized in that: The main structure (3) includes a detection box (301). A chute (302) is formed in the inner wall of the detection box (301). A heating table (303) is arranged inside the detection box (301). Heating wires (304) are fixedly connected to the upper surface of the heating table (303). Heat dissipation holes (305) are formed in the outer wall of the detection box (301).
7. The insulation performance testing device for building materials according to claim 6, characterized in that: The slider (105) is inserted into the chute (302). A number of heating wires (304) are provided and are evenly distributed. A number of heat dissipation holes (305) are provided and are evenly distributed.
Citation Information
Patent Citations
Thermal insulation performance detection equipment for constructional engineering thermal insulation material
CN220603357U