Building glass energy-saving effect detection device

By using temperature control components and temperature sensors in the building glass energy-saving effect detection device to simulate the building environment, the problem of inability to effectively detect the energy-saving effect of building glass in the prior art is solved, and a fast and low-cost energy-saving effect evaluation is achieved.

CN223244440UActive Publication Date: 2025-08-19WUHAN SHENBO TECH CO LTD
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Patent Information

Application Number
CN202422003034.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-16
Publication Date
2025-08-19
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

The prior art cannot effectively detect the energy-saving effect of building glass, and the on-site inspection operation is complex, high cost and low efficiency, making it difficult to reflect the performance under actual use.

Method used

Design a building glass energy-saving effect detection device, simulates the exterior scene of the building through temperature control components, and simulates the interior scene of the building with the detection box. It uses internal and external temperature sensors to detect the internal and external temperature of the glass plate. It has a simple structure and low cost, and can quickly and intuitively evaluate the energy-saving effect of glass.

Benefits of technology

The energy-saving effect of fast and non-destructive testing of building glass on site is achieved, which improves the accuracy and efficiency of inspection, and reduces operational complexity and cost.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy-saving effect detection device for building glass. The energy-saving effect detection device comprises a main body structure; the main body structure comprises a detection box and a housing, a box cover is mounted at the top of the detection box, a lower surrounding edge for fixing a glass plate to be detected is arranged on the box cover, a boss is arranged in the detection box, and an inner temperature sensor is mounted on the boss; the housing is arranged outside the upper end of the detection box, a top cover is mounted at the top of the housing, and an outer temperature sensor is mounted at the bottom in the housing; and the temperature control assembly is arranged at the top in the housing. The device is simple in structure, simulates a scene outside a building through the temperature control assembly, simulates a scene inside the building through the detection box to detect a glass plate, detects the internal and external temperatures of the glass plate through the internal and external sensors, is simple to operate and low in cost, and can visually and quickly detect the energy-saving effect of the building glass.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass detection equipment, in particular to a device for detecting energy-saving effects of building glass. Background Art

[0002] Building energy conservation refers to measures taken during building design, construction, and operation to reduce energy consumption, improve energy efficiency, lower building operating costs, and minimize environmental pollution and greenhouse gas emissions. With the growing global energy crisis and environmental issues, building energy conservation has become a key measure for achieving sustainable development. Building energy conservation testing involves professional and technical personnel evaluating the thermal performance and related technical operations of raw materials, equipment, facilities, and structures used in energy-saving buildings using standardized methods, appropriate instruments, and environmental conditions. It is a key means of ensuring the quality of energy-saving building construction.

[0003] With the continuous improvement of building energy-saving requirements, energy-saving glass is increasingly used in the field of construction. After searching, Chinese patent application number: CN202210959171.1 discloses a glass performance testing device, including a lower plate located at the lower side, a fixed plate fixed at the upper end of the lower plate, an upper plate fixed at the upper end of the fixed plate, a slide plate provided between the upper and lower plates, a left slide plate and a right slide plate capable of sliding up and down respectively provided at the ends of the slide plate and the fixed plate close to each other, a glass to be tested is provided between the two adjacent left and right slide plates, a transport box is fixed at the ends of the upper and lower plates close to each other, a sliding cavity is defined in each of the upper and lower plates, a sliding block is slidably connected in each of the two sliding cavities, a fixed block is fixed at the ends of the two sliding blocks close to each other, and a linear detector and an inclination detector are fixed in each of the two fixed blocks. By centrally detecting the surface inclination and transmittance of the glass to be tested, the detection efficiency of the glass to be tested is improved. By temporarily splicing the glass to be tested on the upper and lower sides, the assembly degree of the glass to be tested can be detected, thereby preventing the occurrence of inconsistent sizes during the assembly process and indirectly improving work efficiency.

[0004] However, these technical solutions cannot fully assess the energy-saving effects of building glass. Furthermore, current testing of the thermal insulation performance of installed energy-saving glass still relies heavily on laboratory environments, resulting in complex, costly, and inefficient operations. Furthermore, these tests fail to directly reflect actual performance under actual usage conditions. Therefore, developing a device capable of rapidly and non-destructively testing the thermal insulation performance of energy-saving glass on-site is crucial. Utility Model Content

[0005] The purpose of the present utility model is to provide a device for detecting the energy-saving effect of building glass. The device has a simple structure, simulates the scene outside the building through a temperature control component, simulates the scene inside the building through a detection box to detect the glass plate, and detects the internal and external temperatures of the glass plate through internal and external sensors. It is simple to operate and low in cost. It can detect the energy-saving effect of building glass more intuitively and quickly, so as to solve the problems raised in the above-mentioned background technology.

[0006] To achieve the above objectives, the present invention provides the following technical solutions:

[0007] A device for detecting energy-saving effects of building glass, comprising:

[0008] Main structure;

[0009] The main structure includes a detection box and a cover. A box cover is installed on the top of the detection box. The box cover is provided with a lower edge for fixing the glass plate to be detected. A boss is provided in the detection box, and an internal temperature sensor is installed on the boss.

[0010] The cover is arranged outside the upper end of the detection box, a top cover is installed on the top of the cover, and an external temperature sensor is installed at the bottom of the cover;

[0011] It also includes a temperature control component arranged on the top of the cover shell.

[0012] Preferably, the temperature control assembly includes an upper peripheral edge arranged at the top inner portion of the top cover, and an insulating rod is arranged inside the upper peripheral edge.

[0013] Preferably, an electric heating wire is wound around the insulating rod, and a metal mesh plate for preventing burns is installed at the opening of the upper edge.

[0014] Preferably, slots are provided on the inner walls of the three side edges of the lower surrounding edge, the slots are arranged in a U-shape, and notches connected to the slots are provided on the fourth group of side edges of the lower surrounding edge.

[0015] Preferably, the glass plate is inserted into the interior of the slot through the notch, and a plug is clamped in the notch to prevent the glass plate from falling off.

[0016] Preferably, the cover shell and the top cover enclose the upper end and the box cover of the detection box, and the detection box is formed by pouring concrete to simulate a building.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] The utility model installs a box door on the detection box, installs an internal temperature sensor in the detection box, fixes the glass plate on the lower edge of the box door, and arranges a cover shell on the outside of the detection box, installs the external temperature sensor in the cover shell, and arranges a temperature control component on the top of the top cover on the cover shell. The device has a simple structure, simulates the scene outside the building through the temperature control component, simulates the scene inside the building through the detection box to detect the glass plate, and detects the internal and external temperatures of the glass plate through the internal and external sensors. The operation is simple and the cost is low, and the energy-saving effect of the building glass can be detected more intuitively and quickly. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a structural diagram of the utility model;

[0020] Figure 2 This is a schematic diagram of the structure of the cover of the utility model;

[0021] Figure 3 This is a schematic diagram of the structure of the detection box of the utility model;

[0022] Figure 4 It is a structural schematic diagram of the box cover of the present utility model.

[0023] In the figure: 1. Detection box; 2. Box cover; 3. Glass plate; 4. Boss; 5. Internal temperature sensor; 6. Cover; 7. Top cover; 8. Metal mesh; 9. Upper edge; 10. External temperature sensor; 11. Insulating rod; 12. Electric heating wire; 13. Lower edge; 14. Slot; 15. Notch; 16. Plug. DETAILED DESCRIPTION

[0024] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0025] See also Figure 1-4 , the utility model provides a technical solution:

[0026] A device for detecting energy-saving effects of building glass, comprising:

[0027] Main structure; The main structure includes a detection box 1 and a cover 6. A box cover 2 is installed on the top of the detection box 1. The box cover 2 is provided with a lower edge 13 for fixing the glass plate 3 to be tested. A boss 4 is provided in the detection box 1, and an internal temperature sensor 5 is installed on the boss 4;

[0028] A cover 6 is mounted on the upper exterior of the test box 1. A top cover 7 is mounted on top of the cover 6, and an external temperature sensor 10 is mounted on the bottom of the cover 6. The cover 6 also includes a temperature control assembly mounted on the top interior of the cover 6. The temperature control assembly includes an upper rim 9 mounted on the top interior of the top cover 7, within which an insulating rod 11 is mounted. An electric heating wire 12 is wound around the insulating rod 11, and a metal mesh plate 8 for preventing burns is mounted at the opening of the upper rim 9. The cover 6 and top cover 7 enclose the upper end of the test box 1 and the lid 2. The test box 1 is cast in concrete to simulate a building.

[0029] When in use, open the top cover 7, then open the box cover 2, fix the glass plate 3 on the lower edge 13, and after closing the box cover 2 and the top cover 7, the temperature control component sets the usage scenario. The external temperature sensor 10 in the cover shell 6 can detect the temperature of the outside of the glass plate 3, and the internal temperature sensor 5 in the detection box 1 can detect the temperature of the inside of the glass plate 3. For example, the temperature inside the cover shell 6 is set to 35 degrees Celsius through the temperature control component, and the heat in the cover shell 6 is guided into the detection box 1 through the glass plate 3. When the internal temperature sensor 5 detects that the temperature is consistent with that inside the cover 6, the thermal insulation capacity of the glass plate 3 is obtained by timing. After a single test is completed, the top cover 7 and the box cover 2 are opened in turn, and the glass plate 3 is replaced for testing. By comparing the time values of each glass plate 3, the thermal insulation capacity strength of each glass plate 3, that is, the energy-saving effect of each glass plate 3, can be known.

[0030] In general, the device has a simple structure. It simulates the scene outside the building through the temperature control component, simulates the scene inside the building through the detection box 1 to detect the glass plate 3, and detects the internal and external temperatures of the glass plate 3 through internal and external sensors. It is simple to operate and low in cost. It can detect the energy-saving effect of building glass more intuitively and quickly.

[0031] Among them, by setting a cover on the upper end of the test box and setting the temperature control component in the top cover of the cover, a closed test condition can be formed, reducing the influence of the outside world on the test results and improving the accuracy of the test;

[0032] By setting the test box to concrete material, the characteristics of the building can be simulated and the actual usage scenario of architectural glass can be set up. At this time, the temperature sensor in the test box can conform to the characteristics of the internal temperature of the building, thereby improving the authenticity and effectiveness of the test results.

[0033] See also Figure 3-4 In order to improve the convenience of using this application and quickly replace the glass plate 3, this application makes the following design:

[0034] The inner walls of three sides of the lower perimeter 13 are provided with slots 14. Slots 14 are U-shaped, and notches 15 are provided on the fourth set of sides of the lower perimeter 13, connecting to the slots 14. The glass plate 3 is inserted into the slots 14 through the notches 15, and a plug 16 is secured within the notches 15 to prevent the glass plate 3 from falling out.

[0035] In actual use, after opening the door of the detection box 1, the glass plate 3 is inserted into the slot 14 of the lower edge 13 through the notch 15, and the plug 16 is stuck in the notch 15 to complete the fixation of the glass plate 3. After a single test is completed, the plug 16 is removed and the glass plate 3 is replaced. Such a design can improve the convenience of using this application, facilitate quick fixation and replacement of the glass plate 3, and improve the efficiency of using this application.

[0036] Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be understood as limitations on the present invention. Ordinary technicians in this field can change, modify, replace and modify the above embodiments within the scope of the present invention.

Claims

1. A device for detecting energy-saving effects of building glass, characterized in that: include: Main structure; The main structure comprises a detection box (1) and a cover (6); a box cover (2) is installed on the top of the detection box (1); a lower edge (13) for fixing the glass plate (3) to be detected is provided on the box cover (2); a boss (4) is provided in the detection box (1); an internal temperature sensor (5) is installed on the boss (4); The cover (6) is arranged outside the upper end of the detection box (1), a top cover (7) is installed on the top of the cover (6), and an external temperature sensor (10) is installed on the bottom of the cover (6); It also includes a temperature control component arranged on the top of the cover shell (6).

2. The device for detecting energy-saving effect of architectural glass according to claim 1, characterized in that: The temperature control assembly comprises an upper peripheral edge (9) arranged at the top of the top cover (7), and an insulating rod (11) is arranged inside the upper peripheral edge (9).

3. The device for detecting energy-saving effect of architectural glass according to claim 2, characterized in that: An electric heating wire (12) is wound around the insulating rod (11), and a metal mesh plate (8) for preventing burns is installed at the opening of the upper surrounding edge (9).

4. The device for detecting energy-saving effect of architectural glass according to claim 1, characterized in that: The inner walls of the three sides of the lower surrounding edge (13) are provided with slots (14), which are arranged in a U shape. A notch (15) communicating with the slots (14) is provided on the fourth group of sides of the lower surrounding edge (13).

5. The device for detecting energy-saving effect of architectural glass according to claim 4, characterized in that: The glass plate (3) is inserted into the interior of the slot (14) through the notch (15), and a plug (16) is clamped in the notch (15) to prevent the glass plate (3) from falling off.

6. The device for detecting energy-saving effect of architectural glass according to claim 1, characterized in that: The cover (6) and the top cover (7) enclose the upper end of the detection box (1) and the box cover (2). The detection box (1) is formed by pouring concrete to simulate a building.

Citation Information

Patent Citations

  • A glass performance testing device

    CN115046596B