Experimental device for detecting carbon emission of pseudo-classic building material
The apparatus addresses the challenge of temperature-dependent carbon emission detection in ancient architectural materials by incorporating heating and cooling systems, enabling thorough carbon emission analysis across diverse temperature conditions.
Patent Information
- Application Number
- CN202421444019.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-24
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-06-24
AI Technical Summary
The existing carbon displacement detection experimental equipment is not suitable for testing antique building materials under different temperature environments, which affects the detection range and accuracy.
An experimental device was designed, including a heating plate and a refrigeration plate, which can adjust the temperature separately in the installation box and combine it with a carbon emission detector to realize the carbon displacement detection of antique building materials at different temperatures.
The carbon displacement detection of antique building materials under different temperature environments has been achieved, the detection range has been expanded, and the accuracy and comprehensiveness of the detection have been improved.
Smart Images

Figure CN223107759U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of experimental devices, in particular to an experimental device for detecting the carbon emission of antique imitation building materials. Background Technique
[0002] Antique imitation buildings refer to buildings specifically used to imitate and replace ancient buildings, traditional religious temples, traditional landscapes, historical buildings, cultural relic buildings, ancient village groups, and restore the general situation of historical features. Antique imitation buildings refer to the re-creation of the forms of ancient buildings that conform to traditional cultural characteristics using modern building materials or traditional building materials.
[0003] Antique imitation building materials refer to the building materials used in the construction of antique imitation buildings. In order to ensure the environmental protection of the use of antique imitation building materials, a carbon emission detector is needed to detect the carbon emissions of antique imitation building materials through experiments. By detecting the carbon emissions of antique imitation building materials through experiments, the carbon emissions of antique imitation building materials can be detected.
[0004] However, when the existing carbon emission detection experimental device is used, it is not conducive to detecting the carbon emissions of antique imitation building materials in different temperature environments, which will affect the scope of detecting the carbon emissions of antique imitation building materials and is not conducive to detecting the carbon emissions of antique imitation building materials.
[0005] Therefore, we propose an experimental device for detecting the carbon emissions of antique imitation building materials. Content of the Utility Model
[0006] The purpose of the utility model is to provide an experimental device for detecting the carbon emissions of antique imitation building materials to solve the problems raised in the above background technique.
[0007] To achieve the above purpose, the utility model provides the following technical solutions:
[0008] An experimental device for detecting the carbon emissions of antique imitation building materials includes an installation box. The middle of the upper surface of the installation box is provided with a main body of a carbon emission detector. A connecting pipe that is connected and communicated is jointly installed between the middle of one side of the main body of the carbon emission detector and the middle of the corresponding side of the installation box. A plurality of bearing plates are installed at intervals along the vertical direction in the main body of the carbon emission detector. A plurality of first through holes are spacedly opened on each bearing plate. The middle of the inner surface of the top of the installation box is provided with a heating plate, and the middle of the inner surface of the bottom of the installation box is provided with a refrigerating plate.
[0009] As a further solution of the utility model: One end of the connecting pipe close to the main body of the carbon emission detector is installed at the corresponding position on the main body of the carbon emission detector, and the inside of the connecting pipe and the inside of the main body of the carbon emission detector are in a connected and communicated state.
[0010] By adopting the above technical solution: the setting of the main body of the carbon emission detector can fix and limit the connecting pipe.
[0011] As a further solution of the present utility model: one end of the connecting pipe close to the installation box is installed at the corresponding position on the installation box, and a second through hole matching the inner ring surface of the connecting pipe is provided on the box body of the installation box at the corresponding position.
[0012] By adopting the above technical solution: the setting of the installation box can fix and limit the connecting pipe, which is convenient for using the connecting pipe.
[0013] As a further solution of the present utility model: the second through hole penetrates the inner surface and the outer surface of the corresponding position on the installation box, and the inner side of the installation box is in a communicating state with the inner side of the connecting pipe.
[0014] By adopting the above technical solution: the setting of the second through hole helps to communicate between the installation box and the connecting pipe.
[0015] As a further solution of the present utility model: the first through holes all penetrate the upper surface and the lower surface of the corresponding positions on the corresponding bearing plates, and push-pull plates are fixed in the middle of the lower surface of the bearing plates on the side far from the connecting pipe.
[0016] By adopting the above technical solution: the setting of the push-pull plate helps to push and pull the bearing plate, which is convenient for using the bearing plate.
[0017] As a further solution of the present utility model: a first retaining groove matching the heating plate is provided on the inner surface of the top of the installation box, and a second retaining groove matching the cooling plate is provided on the inner surface of the bottom of the installation box.
[0018] By adopting the above technical solution: the setting of the second retaining groove on the installation box helps to install and limit the cooling plate.
[0019] As a further solution of the present utility model: blocks are fixed in the middle of both ends of the bearing plate surface, the blocks are in a horizontal state, and corresponding slots are provided on the installation box for the blocks, and the blocks are located in the corresponding slots and are slidably connected with the corresponding slots in the horizontal direction.
[0020] By adopting the above technical solution: the setting of the slots and the blocks helps to limit the bearing plate, which is convenient for stably moving the bearing plate.
[0021] As a further solution of the present utility model: one side of the installation box away from the connecting pipe is in an open state, a matching box door is rotatably installed on the side of the installation box away from the connecting pipe, and support legs are fixed at the four corners of the lower surface of the installation box.
[0022] By adopting the above technical solution: the setting of the support legs can support and limit the installation box, facilitating the stable use of the installation box.
[0023] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0024] 1. In the present utility model, the heating plate can heat the inside of the installation box to facilitate the detection of the carbon emission of antique building materials at a relatively high temperature. The cooling plate can cool the inside of the installation box to reduce the temperature inside the installation box, so as to facilitate the detection of the carbon emission of antique building materials at a relatively low temperature. When in use, it helps to conduct carbon emission detection experiments on antique building materials in different temperature environments, so as to ensure the scope of carbon emission detection experiments on antique building materials and contribute to the detection experiment of the carbon emission of antique building materials.
[0025] 2. In the present utility model, the first through holes on the bearing plate can make the upper sides of the bearing plates in the installation box communicate with each other. When the bearing plate moves, it can drive the clamping block to move along the card slot on the installation box. The installation box can limit the bearing plate through the card slot and the clamping block, facilitating the stable movement of the bearing plate. The carbon emission detector body and the installation box can be connected through the second through hole and the connecting pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 is a structural schematic diagram of the present utility model;
[0027] Figure 2 is a structural schematic diagram of the installation box of the present utility model;
[0028] Figure 3 is a structural schematic diagram of the clamping block of the present utility model;
[0029] Figure 4 is a structural schematic diagram of the bearing plate of the present utility model.
[0030] In the figure: 1. Carbon emission detector body; 2. Installation box; 3. Support legs; 4. Door; 5. Bearing plate; 6. First through hole; 7. Second through hole; 8. Connecting pipe; 9. Clamping block; 10. Card slot; 11. Heating plate; 12. Cooling plate; 13. First retaining groove; 14. Second retaining groove; 15. Push-pull plate. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0032] Please refer to Figures 1 to 4 , in the embodiment of the present invention, an experimental device for detecting the carbon emission of antique building materials includes an installation box 2. In the middle of the upper surface of the installation box 2, a main carbon emission detector 1 is installed. Between the middle of one side of the main carbon emission detector 1 and the middle of the corresponding side of the installation box 2, a connected connecting pipe 8 is installed. Along the vertical direction, a plurality of bearing plates 5 are spaced apart and installed inside the main carbon emission detector 1. A plurality of first through holes 6 are spaced apart on each of the bearing plates 5. In the middle of the inner surface of the top of the installation box 2, a heating plate 11 is installed. In the middle of the inner surface of the bottom of the installation box 2, a cooling plate 12 is installed. The heating plate 11 can heat the inside of the installation box 2 to facilitate detecting the carbon emission of antique building materials at a higher temperature. The cooling plate 12 can cool the inside of the installation box 2 to lower the temperature inside the installation box 2 to facilitate detecting the carbon emission of antique building materials at a lower temperature. During use, it helps to conduct carbon emission detection experiments on antique building materials in different temperature environments, so as to ensure the scope of the carbon emission detection experiment on antique building materials and contribute to the carbon emission detection experiment on antique building materials.
[0033] Among them, one end of the connecting pipe 8 close to the main carbon emission detector 1 is installed with the corresponding position on the main carbon emission detector 1, and the inside of the connecting pipe 8 and the inside of the main carbon emission detector 1 are in a connected state. The main carbon emission detector 1 can fix and limit the connecting pipe 8. One end of the connecting pipe 8 close to the installation box 2 is installed with the corresponding position on the installation box 2. On the inner ring surface of the installation box 2 corresponding to the connecting pipe 8, a matching second through hole 7 is opened. The installation box 2 can fix and limit the connecting pipe 8, which is convenient for using the connecting pipe 8. The second through hole 7 penetrates the inner surface and the outer surface of the corresponding position on the installation box 2, and the inside of the installation box 2 and the inside of the connecting pipe 8 are in a connected state. The second through hole 7 helps to connect the installation box 2 and the connecting pipe 8.
[0034] The first through holes 6 all penetrate through the upper surface and the lower surface at corresponding positions on the corresponding bearing plates 5. In the middle of the lower surface of the bearing plate 5 on the side away from the connecting pipe 8, a push-pull plate 15 is fixedly installed. The push-pull plate 15 helps to push and pull the bearing plate 5, facilitating the use of the bearing plate 5. On the inner surface of the top of the installation box 2, a first retaining groove 13 matching the heating plate 11 is provided. On the inner surface of the bottom of the installation box 2, a second retaining groove 14 matching the refrigeration plate 12 is provided. The second retaining groove 14 on the installation box 2 helps to install and position the refrigeration plate 12.
[0035] In the middle of both ends of the surface of the bearing plate 5, a clamping block 9 is fixedly installed. The clamping block 9 is in a horizontal state. On the installation box 2, a clamping groove 10 matching the clamping block 9 is provided. The clamping blocks 9 are all located in the corresponding clamping grooves 10 and are slidably connected to the corresponding clamping grooves 10 in the horizontal direction. The clamping grooves 10 and the clamping blocks 9 help to position the bearing plate 5, facilitating the stable movement of the bearing plate 5. One side of the installation box 2 away from the connecting pipe 8 is in an open state. A matching box door 4 is rotatably installed on the side of the installation box 2 away from the connecting pipe 8. At the four corners of the lower surface of the installation box 2, support legs 3 are fixedly installed. The support legs 3 can support and position the installation box 2, facilitating the stable use of the installation box 2.
[0036] The working principle of the present utility model is as follows: During use, the support legs 3 are stably placed at the position where they need to be used, which helps to stably use the support legs 3. The support legs 3 can support and position the installation box 2 and various components assembled on the installation box 2, facilitating the stable use of the installation box 2 and various components assembled on the installation box 2. The installation box 2 can support and position the carbon emission detector main body 1, which helps to stably use the carbon emission detector main body 1.
[0037] Rotate and open the box door 4 on the installation box 2, so that the side of the installation box 2 close to the box door 4 is in an open state. Further, place the ancient architecture materials to be subjected to the carbon emission detection experiment on the upper side of the bearing plate 5. If there are ancient architecture materials that are not convenient to place and the bearing plate 5 needs to be taken out, pull the push-pull plate 15 towards the outside of the installation box 2. When the push-pull plate 15 is pulled, it can drive the bearing plate 5 to move towards the outside of the installation box 2. When the bearing plate 5 moves, it can drive the clamping block 9 to move along the clamping groove 10 on the installation box 2. The installation box 2 can limit the bearing plate 5 through the clamping groove 10 and the clamping block 9, facilitating the stable movement of the bearing plate 5.
[0038] After taking out the carrier plate 5, place the antique building materials correspondingly on the upper side of the carrier plate 5, and insert the clamping blocks 9 at both ends of the carrier plate 5 into the corresponding card slots 10 on the installation box 2. Further, close the box door 4. The first through holes 6 on the carrier plate 5 can make the upper sides of the carrier plates 5 in the installation box 2 communicate with each other. When the antique building materials are located in the installation box 2, a certain amount of carbon emission will be generated. The gas carrying carbon emission in the installation box 2 will be transported to the carbon emission detector main body 1 through the second through holes 7 and the connecting pipe 8. Open the carbon emission detector main body 1, and the carbon emission detector main body 1 can detect the carbon emission of the antique building materials in the installation box 2.
[0039] When it is necessary to detect the carbon emission of the antique building materials at a relatively high temperature, turn on the heating plate 11 in the first retaining groove 13 at the top inside the installation box 2. When the heating plate 11 is turned on, the heating plate 11 can heat the inner side of the installation box 2 to facilitate the detection of the carbon emission of the antique building materials at a relatively high temperature. When it is necessary to detect the carbon emission of the antique building materials at a relatively low temperature, turn on the cooling plate 12 in the second retaining groove 14 at the bottom inside the installation box 2. When the cooling plate 12 is turned on, the cooling plate 12 can cool the inner side of the installation box 2 to lower the temperature inside the installation box 2 to facilitate the detection of the carbon emission of the antique building materials at a relatively low temperature, which is helpful for the detection experiment of the carbon emission of the antique building materials.
[0040] During the use process, it is helpful to conduct carbon emission detection experiments on antique building materials in different temperature environments, so as to ensure the scope of the carbon emission detection experiment on antique building materials, and it is helpful for the carbon emission detection experiment of antique building materials.
[0041] The above is only the preferred specific implementation manner of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution and the inventive concept of the present utility model, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present utility model.
Claims
1. An experimental device for detecting the carbon emissions of ancient architecture imitation materials, comprising an installation box (2), characterized in that: In the middle of the upper surface of the installation box (2), a main body of a carbon emission detector (1) is installed. Between the middle of one side of the main body of the carbon emission detector (1) and the middle of the corresponding side of the installation box (2), a communicating connecting pipe (8) is commonly installed. Along the vertical direction, a plurality of bearing plates (5) are spaced apart and installed inside the main body of the carbon emission detector (1). A plurality of first through holes (6) are spaced apart on each of the bearing plates (5). In the middle of the inner surface of the top of the installation box (2), a heating plate (11) is installed. In the middle of the inner surface of the bottom of the installation box (2), a refrigerating plate (12) is installed.
2. The experimental device for detecting the carbon emissions of antique building materials according to claim 1, wherein: One end of the connecting pipe (8) close to the main body of the carbon emission detector (1) is installed at the corresponding position on the main body of the carbon emission detector (1), and the inside of the connecting pipe (8) and the inside of the main body of the carbon emission detector (1) are in a communicating state.
3. An experimental device for detecting the carbon emissions of antique imitation building materials according to claim 2, characterized in that: One end of the connecting pipe (8) close to the installation box (2) is installed at the corresponding position on the installation box (2), and a second through hole (7) matching the inner ring surface of the connecting pipe (8) is provided on the box body of the installation box (2).
4. An experimental device for detecting the carbon emissions of antique building materials according to claim 3, characterized in that: The second through hole (7) penetrates the inner surface and the outer surface of the corresponding position on the installation box (2), and the inside of the installation box (2) and the inside of the connecting pipe (8) are in a communicating state.
5. The experimental device for detecting the carbon emission of antique building materials according to claim 4, characterized in that: The first through holes (6) all penetrate the upper surface and the lower surface of the corresponding position on the corresponding bearing plate (5). In the middle of the side of the lower surface of the bearing plate (5) away from the connecting pipe (8), a push-pull plate (15) is fixed.
6. The experimental device for detecting the carbon emissions of antique imitation building materials according to claim 5, wherein: On the inner surface of the top of the installation box (2), a first retaining groove (13) matching the heating plate (11) is provided. On the inner surface of the bottom of the installation box (2), a second retaining groove (14) matching the refrigerating plate (12) is provided.
7. An experimental device for detecting the carbon emissions of antique imitation building materials according to claim 6, characterized in that: In the middle of the surfaces at both ends of the bearing plate (5), a clamping block (9) is fixed. The clamping block (9) is in a horizontal state. On the installation box (2), a slot (10) matching the clamping block (9) is provided. The clamping blocks (9) are all located in the corresponding slots (10) and are slidably connected to the corresponding slots (10) in the horizontal direction.
8. An experimental device for detecting the carbon emissions of antique building materials according to claim 7, characterized in that: One side of the installation box (2) away from the connecting pipe (8) is in an open state. A matching box door (4) is rotatably installed on one side of the installation box (2) away from the connecting pipe (8). At the four corners of the lower surface of the installation box (2), support legs (3) are fixed.