Integrated gas purification intelligent thermal stability tester
By integrating a gas purification system, the problem of gas emission pollution during the testing process of the intelligent thermal stability tester has been solved, achieving gas purification and convenient maintenance, and protecting the health of the environment and operators.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2026-03-31
AI Technical Summary
Existing intelligent thermal stability testers release harmful gases generated by the heat of samples directly without treatment during testing, leading to environmental pollution and health risks to operators.
The integrated intelligent thermal stability tester for gas purification uses a suction fan to guide the gas generated during testing into a purification chamber. Activated carbon boxes adsorb benzene-like substances, and alkaline metal oxide adsorption plates neutralize acidic gases, thus achieving gas purification. The purification chamber is designed for easy maintenance and replacement of the adsorption materials.
It effectively purifies the gases generated during the testing process, reduces air pollution, protects the health of operators, and also enables convenient maintenance of the purification components.
Smart Images

Figure CN224066690U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of thermal stability testing equipment, and in particular to an integrated intelligent thermal stability tester for gas purification. Background Technology
[0002] An intelligent thermal stability tester is an instrument used to measure and evaluate the stability of materials or equipment under thermal conditions. Utilizing advanced data processing and analysis technologies, such as data fitting, curve plotting, and characteristic parameter extraction, the intelligent thermal stability tester can quickly and accurately obtain information on the thermal stability performance of materials from large amounts of test data, providing strong support for material research and development and applications.
[0003] During testing, existing intelligent thermal stability testers cause physical or chemical changes in samples due to heating, producing gases containing various harmful substances. These gases are emitted directly without treatment, polluting the atmospheric environment and affecting the health of operators. Utility Model Content
[0004] The purpose of this invention is to solve the problem that in the existing intelligent thermal stability tester, the sample undergoes physical or chemical changes due to heat during the testing process, producing gases containing various harmful substances. These gases are directly emitted without treatment, causing pollution to the atmospheric environment and affecting the health of the operators. Therefore, this invention proposes an integrated gas purification intelligent thermal stability tester.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: an integrated intelligent thermal stability tester for gas purification, comprising an intelligent thermal stability tester component, wherein an adjustment component is provided inside the intelligent thermal stability tester component, a purification component is provided on the intelligent thermal stability tester component, the intelligent thermal stability tester component includes a tester, the purification component includes an exhaust pipe, one end of the exhaust pipe is connected to a purification box, a suction fan is installed on the side of the purification box, and multiple activated carbon boxes and multiple alkaline metal oxide adsorption plates are provided inside the purification box.
[0006] Preferably, the adjustment component includes multiple adjustment slots, a movable block is movably installed inside the adjustment slot, and an infrared thermometer is installed on the side of the movable block.
[0007] Preferably, the purification box is provided with multiple slide rails inside, and the activated carbon box and alkaline metal oxide adsorption plate are movably installed inside the slide rails.
[0008] Preferably, a protective frame is installed on the outside of the suction fan, and the protective frame is set on the purification box.
[0009] Preferably, the purification box has symmetrically installed movable slots on its side, and a sealing plate is movably installed inside the movable slot.
[0010] Preferably, the infrared thermometer is equipped with a mounting bracket, and a pull rod runs through the interior of the mounting bracket.
[0011] Preferably, a spring is provided on the outer side of the pull rod, and one end of the spring is connected to the fixing frame.
[0012] Preferably, the movable block has a limiting hole, and the pull rod is movably installed inside the limiting hole.
[0013] Preferably, the inner side of the tester is provided with a sliding groove, a slider is installed inside the sliding groove, a placement frame is installed on the top of the slider, a heating tube is installed inside the placement frame, and heaters are connected to both ends of the heating tube.
[0014] Preferably, a door is installed on the side of the tester, a hinge is installed between the tester and the door, and a control computer is installed on the top of the tester.
[0015] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0016] 1. In this utility model, a suction fan operates, allowing the gas generated during the testing process to be transported to the purification chamber through an exhaust pipe. The activated carbon box facilitates the adsorption of benzene and other compounds in the gas, while the alkaline metal oxide adsorption plate neutralizes acidic gases in the gas. This process effectively adsorbs and neutralizes the gas generated during the test, purifying the complex mixture of gases produced and preventing direct emission into the atmosphere, thus reducing air pollution and protecting the health of operators. The movable sealing plate moves within the movable slot, facilitating the opening of the purification chamber. Subsequently, the activated carbon box and alkaline metal oxide adsorption plate slide within the slide rail, making maintenance and replacement of the activated carbon box and alkaline metal oxide adsorption plate convenient.
[0017] 2. In this utility model, the movable block moves inside the adjustment groove, which is conducive to adjusting the position of the infrared thermometer. By pulling the pull rod, the spring is compressed. When the infrared thermometer moves to the appropriate position, the pull rod is released, causing the spring to extend, which in turn causes one end of the pull rod to be set inside the movable block, thereby realizing the limit of the infrared thermometer. The adjustment groove has multiple through holes, and the pull rod is movably set inside one of the through holes. The tester is equipped with two infrared thermometers, thereby realizing multi-directional temperature monitoring of the sample. Attached Figure Description
[0018] Figure 1 A three-dimensional structural diagram of an integrated intelligent thermal stability tester for gas purification is provided for this utility model.
[0019] Figure 2 This utility model presents another structural schematic diagram of an integrated intelligent thermal stability tester for gas purification.
[0020] Figure 3 A partial structural schematic diagram of an integrated intelligent thermal stability tester for gas purification is provided for this utility model.
[0021] Figure 4 This utility model provides a partially exploded structural diagram of an integrated intelligent thermal stability tester for gas purification.
[0022] Figure 5 This utility model presents a partially exploded structural diagram of an integrated intelligent thermal stability tester for gas purification.
[0023] Figure 6 This invention presents an exploded view of the purification component of an integrated intelligent thermal stability tester for gas purification.
[0024] Legend: 1. Intelligent thermal stability tester components; 101. Tester; 102. Chamber door; 103. Hinge; 104. Control computer; 105. Placement rack; 106. Slider; 107. Heating tube; 108. Heater; 2. Purification components; 201. Exhaust pipe; 202. Purification box; 203. Activated carbon box; 204. Alkaline metal oxide adsorption plate; 205. Slide rail; 206. Moving slot; 207. Fan; 208. Protective frame; 209. Sealing plate; 3. Adjustment components; 301. Adjustment slot; 302. Moving block; 303. Infrared thermometer; 304. Fixing frame; 305. Pull rod; 306. Spring. Detailed Implementation
[0025] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0026] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.
[0027] Example 1: As Figures 1-6As shown, this utility model provides a technical solution: an integrated intelligent thermal stability tester for gas purification, including an intelligent thermal stability tester component 1, an adjustment component 3 internally arranged in the intelligent thermal stability tester component 1, and a purification component 2 arranged on the intelligent thermal stability tester component 1. The intelligent thermal stability tester component 1 includes a tester 101, and the purification component 2 includes an exhaust pipe 201. One end of the exhaust pipe 201 is connected to a purification box 202. A suction fan 207 is installed on the side of the purification box 202. The purification box 202 contains multiple activated carbon boxes 203 and multiple alkaline metal oxide adsorption plates. 204. The interior of the purification chamber 202 is equipped with multiple slide rails 205. The activated carbon box 203 and the alkaline metal oxide adsorption plate 204 are movably installed inside the slide rails 205. The outside of the suction fan 207 is equipped with a protective frame 208, which is set on the purification chamber 202. The side of the purification chamber 202 is symmetrically equipped with moving slots 206. The inside of the moving slots 206 is movably equipped with a sealing plate 209. The side of the tester 101 is equipped with a chamber door 102. A hinge 103 is installed between the tester 101 and the chamber door 102. The top of the tester 101 is equipped with a control computer 104.
[0028] In this embodiment, the suction fan 207 operates, allowing the gas generated during the testing process to be transported to the purification chamber 202 via the exhaust pipe 201. The activated carbon box 203 facilitates the adsorption of benzene and other compounds in the gas, while the alkaline metal oxide adsorption plate 204 neutralizes acidic gases. This process effectively purifies the complex mixture of gases generated during the test, preventing direct emission into the atmosphere, reducing air pollution, and protecting the health of operators. The movable sealing plate 209, located within the movable slot 206, facilitates the opening of the purification chamber 202. The movable activated carbon box 203 and alkaline metal oxide adsorption plate 204 then slide within the slide rail 205, facilitating maintenance and replacement. The protective frame 208 ensures the normal operation of the suction fan 207 and prevents external impurities from entering its interior. The hinge 103 facilitates the opening of the chamber door 102.
[0029] Example 2: Figures 1-6As shown, the adjustment assembly 3 includes multiple adjustment slots 301. A movable block 302 is movably installed inside the adjustment slot 301. An infrared thermometer 303 is installed on the side of the movable block 302. A fixed frame 304 is installed on the infrared thermometer 303. A pull rod 305 passes through the inside of the fixed frame 304. A spring 306 is provided on the outside of the pull rod 305. One end of the spring 306 is connected to the fixed frame 304. A limit hole is opened on the movable block 302. The pull rod 305 is movably installed inside the limit hole. A sliding groove is opened on the inner side of the tester 101. A slider 106 is installed inside the sliding groove. A placement frame 105 is installed on the top of the slider 106. A heating tube 107 is installed inside the placement frame 105. Heaters 108 are connected to both ends of the heating tube 107.
[0030] In this embodiment, the movable slider 106 slides inside the groove, facilitating the removal of the placement rack 105 from the tester 101, thereby facilitating sample handling. The heater 108 operates to ensure that the heating tube 107 releases heat evenly, which is beneficial for heating the sample and achieving thermal stability testing. The infrared thermometer 303 facilitates real-time temperature monitoring. The movable block 302 moves inside the adjustment groove 301, which is beneficial for adjusting the position of the infrared thermometer 303. Pulling the pull rod 305 causes the spring 306 to be compressed. When the infrared thermometer 303 moves to the appropriate position, releasing the pull rod 305 causes the spring 306 to extend, thereby setting one end of the pull rod 305 inside the movable block 302, thus limiting the position of the infrared thermometer 303. The adjustment groove 301 has multiple through holes, and the pull rod 305 is movable inside one of the through holes. The tester 101 has two infrared thermometers 303 inside, thereby achieving multi-directional temperature monitoring of the sample.
[0031] The working principle of this embodiment is as follows: In use, the slider 106 first slides inside the groove, facilitating the removal of the placement rack 105 from the testing instrument 101, thus making sample handling easier. The heater 108 operates, causing the heating tube 107 to release heat evenly, which is beneficial for heating the sample and achieving thermal stability testing. The infrared thermometer 303 facilitates real-time temperature monitoring. The movable block 302 moves within the adjustment groove 301, allowing for adjustment of the infrared thermometer 303's position. Pulling the lever 305 compresses the spring 306. When the infrared thermometer 303 moves to the appropriate position, releasing the lever 305 causes the spring 306 to extend, thereby positioning one end of the lever 305 inside the movable block 302. This allows for the limiting of the infrared thermometer 303. The tester 101 is equipped with two infrared thermometers 303, enabling multi-directional temperature monitoring of the sample. After the test is completed, the suction fan 207 operates, allowing the gas generated during the test to be transported to the purification chamber 202 through the exhaust pipe 201. The activated carbon box 203 facilitates the adsorption of benzene and other compounds in the gas, while the alkaline metal oxide adsorption plate 204 helps neutralize acidic gases in the gas. Finally, the movable sealing plate 209 moves inside the movable slot 206, facilitating the opening of the purification chamber 202. Subsequently, the movable activated carbon box 203 and the alkaline metal oxide adsorption plate 204 slide inside the slide rail 205, facilitating maintenance and replacement of the activated carbon box 203 and the alkaline metal oxide adsorption plate 204.
[0032] The testing instrument 101, control computer 104, heating tube 107, heater 108, activated carbon box 203, alkaline metal oxide adsorption plate 204, and infrared thermometer 303 in this utility model are common knowledge in the field. Their working principles are well-known technologies. The appropriate model is selected according to actual use. Therefore, the testing instrument 101, control computer 104, heating tube 107, heater 108, activated carbon box 203, alkaline metal oxide adsorption plate 204, and infrared thermometer 303 will not be explained in detail.
[0033] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. An integrated gas purification intelligent heat stability tester, comprising an intelligent heat stability tester assembly (1), characterized in that: The inside of the intelligent heat stability tester assembly (1) is provided with an adjusting assembly (3), the intelligent heat stability tester assembly (1) is provided with a purification assembly (2), the intelligent heat stability tester assembly (1) comprises a tester (101), the purification assembly (2) comprises an exhaust pipe (201), one end of the exhaust pipe (201) is connected with a purification box (202), a side of the purification box (202) is mounted with an air suction fan (207), the inside of the purification box (202) is provided with a plurality of activated carbon boxes (203) and a plurality of basic metal oxide adsorption plates (204).
2. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: The adjusting assembly (3) comprises a plurality of adjusting grooves (301), the inside of the adjusting groove (301) is movably mounted with a moving block (302), a side of the moving block (302) is mounted with an infrared temperature measuring instrument (303).
3. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: The inside of the purification box (202) is provided with a plurality of sliding rails (205), the activated carbon box (203) and the basic metal oxide adsorption plate (204) are movably mounted in the inside of the sliding rail (205).
4. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: The outside of the air suction fan (207) is mounted with a protective frame (208), the protective frame (208) is arranged on the purification box (202).
5. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: A side of the purification box (202) is symmetrically mounted with a moving groove (206), the inside of the moving groove (206) is movably mounted with a sealing plate (209).
6. The integrated gas clean-up intelligent thermal stability tester of claim 2, wherein: The infrared temperature measuring instrument (303) is mounted with a fixing frame (304), the inside of the fixing frame (304) is penetrated with a pull rod (305).
7. The integrated gas clean-up intelligent thermal stability tester of claim 6, wherein: The outside of the pull rod (305) is provided with a spring (306), one end of the spring (306) is connected with the fixing frame (304).
8. The integrated gas clean-up intelligent thermal stability tester of claim 6, wherein: The moving block (302) is provided with a limiting hole, and the pull rod (305) is movably mounted in the limiting hole.
9. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: The inside of the tester (101) is provided with a sliding groove, the inside of the sliding groove is mounted with a sliding block (106), the top of the sliding block (106) is mounted with a placing frame (105), the inside of the placing frame (105) is mounted with a heating pipe (107), and the two ends of the heating pipe (107) are connected with a heater (108).
10. The integrated gas clean-up intelligent thermal stability tester of claim 1, wherein: A side of the tester (101) is mounted with a warehouse door (102), a hinge (103) is mounted between the tester (101) and the warehouse door (102), and the top of the tester (101) is mounted with a control computer (104).