Acceleration simulation test monitoring equipment

By employing an accelerated simulation testing device with transparent ceramic material and intelligent monitoring components, the problem of difficulty in observing the liquid state under high temperature and high pressure has been solved, achieving rapid heating and clear monitoring, and is suitable for observing chemical reactions that are resistant to high temperature and alkali.

CN223959669UActive Publication Date: 2026-03-03JIANGSU YUDAO BIOLOGICAL TECH CO LTD
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Patent Information

Application Number
CN202423319516.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2026-03-03
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

Existing chemical reaction equipment makes it difficult to observe the internal liquid state under high temperature and high pressure, and existing devices cannot withstand high temperature and alkali and are not convenient for observing and monitoring the reaction process.

Method used

The box and reagent tubes are made of transparent ceramic material and are equipped with a heating device, a diffusion device, a lifting device and a camera. The heating device quickly heats up the container and the diffusion device disturbs the air. Combined with the visibility of the transparent material, the lifting device adjusts the height of the camera and provides a light source for observation.

Benefits of technology

It enables direct observation of chemical reactions under high temperature and high pressure, rapidly heats up and accelerates the experimental process, and its sealed structure facilitates opening and closing, avoids leakage, and provides clear monitoring results.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223959669U_ABST
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Abstract

The utility model relates to the field of simulation test equipment, in particular to acceleration simulation test monitoring equipment. Comprising a box body, a reagent tube, a heating device and a monitoring assembly, and the box body comprises a testing box body and a monitoring box body; the box body and the reagent tubes are made of transparent materials; the heating device is arranged at the lower part of the test box body, a diffusion device is also arranged below the heating device, the reagent tube is arranged on the heating device, the monitoring assembly is arranged in the monitoring box body, and the position of the monitoring assembly is matched with the position of the reagent tube. A plurality of through holes are formed in a fixing plate of the heating device to facilitate air flowing and heat diffusion. The diffusion device drives the fan blades to rotate through the driving device so as to disturb air in the box body and diffuse heat generated by the heating device, so that the test box body can reach the temperature required by the test more quickly, and the experiment progress is accelerated. The box body and the reagent tube are made of transparent ceramic materials, so that the liquid state inside can be observed more visually while high temperature resistance and alkali resistance are achieved.
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Description

Technical Field

[0001] This utility model relates to the field of simulation testing equipment, specifically an accelerated simulation testing and monitoring device. Background Technology

[0002] In chemical reaction experiments, visual reaction equipment is often required to observe the reaction process and evaluate its performance. For example, it is necessary to judge the performance of the test substance by observing the state of the auxiliary agent in the alkaline solution (turbidity, layering, flocculation) under high temperature. Since high temperature often generates high pressure, some experiments use high-temperature and high-pressure reactors that can withstand high temperatures and pressures.

[0003] For example, invention patent CN112903575A discloses a multifunctional high-temperature and high-pressure reactor, mainly including an air inlet, reactor shell, water injection pipe, nozzle, resistance heater, high-speed rotating disk, compartment sampling port, sample holder, air outlet, electrochemical testing sensor, safety valve, pressure gauge, handle, thermometer, pH sensor, data cable, computer terminal, reactor lid, sample, and partition. The electrochemical testing sensor and pH sensor are both located inside the high-temperature and high-pressure reactor and connected to the data cable, transmitting information to the computer terminal in real time to obtain pH value, potential value, and polarization curve. However, high-temperature and high-pressure reactors are usually double-layered metal structures, making it difficult to observe the internal liquid state, and are not suitable for some experiments requiring observation of the internal liquid state.

[0004] However, conventional glass containers either have poor sealing performance or cannot withstand the experimental requirements of high temperature and alkali resistance. Currently, there is no simulation testing device that can withstand both high temperatures and alkali resistance while also facilitating the observation and monitoring of the reaction process. Therefore, there is an urgent need for an accelerated simulation testing and monitoring device. Utility Model Content

[0005] To overcome the problems existing in the prior art, the purpose of this utility model is to provide an accelerated simulation test monitoring device.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an accelerated simulation test and monitoring device, comprising a housing, reagent tubes, a heating device, and a monitoring component, wherein the housing includes a test housing and a monitoring housing; both the housing and the reagent tubes are made of transparent material;

[0007] The heating device is located at the bottom of the test chamber, the reagent tube is located on the heating device, and the monitoring component is located in the monitoring chamber, with the position of the monitoring component matching the position of the reagent tube.

[0008] The present invention is further configured such that: the heating device includes a fixed plate and a heating tube, the fixed plate is hollow inside, the heating tube is disposed inside the fixed plate, and the fixed plate is provided with a plurality of ventilation holes.

[0009] The ventilation holes, in conjunction with the diffuser, facilitate airflow and heat dissipation.

[0010] The present invention is further configured such that: the accelerated simulation test monitoring equipment also includes a diffusion device disposed below the heating device, the diffusion device including fan blades and a driving device, the driving device being disposed at the bottom of the test chamber, and the fan blades being connected to the driving device.

[0011] The drive unit rotates the fan blades to disturb the air inside the chamber, dissipating the heat generated by the heating device, allowing the test chamber to reach the required temperature more quickly and accelerating the experimental process.

[0012] The present invention is further configured such that a temperature detector is provided on the top of the test chamber.

[0013] The present invention is further configured such that: a fixing frame is provided on the fixing plate, and the reagent tube is placed in the fixing frame.

[0014] The present invention is further configured such that: the monitoring component includes a lifting device and a camera, and the camera is fixed on the lifting device.

[0015] The present invention is further configured such that the lifting device is a linear guide rail lifting structure or a lead screw lifting structure.

[0016] The camera is used to monitor the testing process. The camera is adjusted to a suitable height via a lifting device to accommodate reagent tubes of different sizes.

[0017] The present invention is further configured such that: the reagent tube also includes a sealing cap, the side wall of the reagent tube is provided with a fixing shoulder, the bottom of the sealing cap is provided with a sealing groove, a rubber gasket is installed in the sealing groove, and fixing buckles are provided on both sides of the sealing cap, which are fastened to the fixing shoulder for installing the sealing cap.

[0018] This sealing cap ensures sealing performance while being easy to open and close, avoiding the problems of existing sealing structures where the sealing plug is difficult to remove or prone to leakage during the removal process.

[0019] This invention is further configured such that the accelerated simulation test monitoring equipment also includes a light-emitting plate, which is disposed on the inner wall of the test chamber. The light-emitting plate provides a light source, facilitating clearer monitoring of the test process by the camera.

[0020] The present invention is further configured such that the box and reagent tube are made of transparent ceramic material.

[0021] Transparent ceramics not only possess excellent optical properties but also exhibit high temperature and corrosion resistance. Their melting points are generally above 2000℃, and they do not soften, deform, or crystallize even at temperatures as high as 1000℃. For example, thorium oxide-yttrium oxide transparent ceramics have a melting point as high as 3100℃, which is 1500℃ higher than ordinary borosilicate glass. Transparent ceramics also exhibit high electrical insulation properties and chemical stability.

[0022] In summary, the beneficial effects of the above-mentioned technical solution of this utility model are as follows:

[0023] The housing and reagent tubes in this invention are made of transparent ceramic material, which is resistant to high temperature and alkali, and allows for more intuitive observation of the internal liquid state.

[0024] The heating device of this invention has several through holes on its fixed plate, which cooperate with the diffuser below the heating device to facilitate airflow and heat dissipation. The diffuser drives a fan blade to rotate, thereby agitating the air inside the chamber and dissipating the heat generated by the heating device. This allows the test chamber to reach the required test temperature more quickly, accelerating the experimental process.

[0025] The reagent tube uses a snap-fit ​​sealing cap, which ensures sealing performance while being easy to open and close, avoiding the problems of existing sealing structures where the sealing plug is difficult to remove or prone to leakage during the removal process. Attached Figure Description

[0026] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0027] Figure 1 This is a schematic diagram of the overall structure of an accelerated simulation test monitoring device.

[0028] The attached diagram lists the components represented by each number as follows:

[0029] 100. Test enclosure; 200. Monitoring enclosure;

[0030] 10. Reagent tube; 11. Fixing shoulder; 12. Sealing cap; 13. Fixing buckle;

[0031] 20. Fixture;

[0032] 30. Heating device;

[0033] 40. Drive unit; 41. Fan blade;

[0034] 50. Temperature detector;

[0035] 60. Lifting device; 61. Camera; 62. Light-emitting panel. Detailed Implementation

[0036] To enable those skilled in the art to better understand the technical solution of this utility model, the technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Based on the embodiments of this utility model, other similar embodiments obtained by those skilled in the art without creative effort should all fall within the protection scope of this utility model. Furthermore, directional terms mentioned in the following embodiments, such as "up," "down," "left," and "right," are only for reference to the directions in the accompanying drawings; therefore, the directional terms used are for illustrative purposes and not for limiting the scope of this utility model.

[0037] The present invention will be further described below with reference to the accompanying drawings and preferred embodiments.

[0038] Example:

[0039] like Figure 1 As shown, this is a preferred embodiment of the present invention, an accelerated simulation test monitoring device, including a housing, reagent tubes 10, a heating device 30 and a monitoring component, wherein the housing includes a test housing 100 and a monitoring housing 200; in this embodiment, the housing and reagent tubes 10 are made of transparent ceramic material.

[0040] The heating device 30 is located at the lower part of the test chamber 100, the reagent tube 10 is located on the heating device 30, and the monitoring component is located in the monitoring chamber 200, with the position of the monitoring component matching the position of the reagent tube 10.

[0041] The heating device 30 includes a fixed plate and a heating tube. The fixed plate is hollow inside, and the heating tube is disposed inside the fixed plate. The fixed plate is provided with several ventilation holes.

[0042] The fixing plate is also provided with a fixing frame 20, and the reagent tube 10 is placed in the fixing frame 20. The size of the fixing frame 20 is adapted to the size of the reagent tube 10.

[0043] The accelerated simulation test monitoring equipment also includes a diffusion device located below the heating device 30. The diffusion device includes a fan blade 41 and a drive device 40. The drive device 40 is located at the bottom of the test chamber 100, and the fan blade 41 is connected to the drive device 40.

[0044] The ventilation holes on the fixed plate work in conjunction with the diffusion device to facilitate airflow and heat dissipation. The drive device 40 drives the fan blades 41 to rotate, which disturbs the air inside the chamber and dissipates the heat generated by the heating device, allowing the test chamber 100 to reach the required test temperature more quickly and accelerating the experimental process.

[0045] A temperature detector 50 is installed on the top of the test chamber 100 to monitor the temperature inside the test chamber 100.

[0046] The monitoring component includes a lifting device 60 and a camera 61, with the camera 61 fixed on the lifting device 60.

[0047] This embodiment employs a lead screw lifting structure, including a motor, a lead screw, and a slider. The lead screw is connected to the motor, and the slider is mounted on the lead screw and moves along it. The camera 61 is fixed to the slider. The camera 61 rises or falls by the forward or reverse rotation of the motor.

[0048] The camera 61 is used to monitor the testing process. The camera 61 is adjusted to a suitable height by a lifting device to accommodate reagent tubes 10 of different sizes.

[0049] The accelerated simulation test monitoring equipment also includes a light-emitting plate 62, which is disposed on the inner wall of the test chamber 100. The light-emitting plate 62 is used to provide a light source, so that the camera 61 can monitor the test process more clearly.

[0050] The reagent tube 10 also includes a sealing cap 12. The side wall of the reagent tube 10 is provided with a fixing shoulder 11. The bottom of the sealing cap 12 is provided with a sealing groove, the size of which is adapted to the size of the opening of the reagent tube 10. A rubber gasket is also installed in the sealing groove. Fixing buckles 13 are provided on both sides of the sealing cap 12.

[0051] In actual use, the reagent tube 10 is filled with the required auxiliary agent and alkali solution, and then the fixing buckle 13 is fastened to the fixing shoulder 11, and the sealing cap 12 is installed. The sealing cap 12 ensures sealing performance while being easy to open and close, avoiding the problems of existing sealing structures where the sealing plug is difficult to remove or prone to leakage during removal.

[0052] The reagent tube 10 is placed into the mounting bracket 20 inside the test chamber 100, and the heating device 30 is activated to heat the test chamber, simulating a high-temperature environment. Simultaneously, the drive device 40 below rotates the fan blades 41, dissipating the heat generated by the heating device 30, allowing the test chamber 100 to reach the required test temperature more quickly, thus accelerating the experimental process. The lifting device 60 moves the camera 61 to a suitable position to record the liquid state inside the reagent tube 10 during the simulated experiment. The light-emitting plate 62 inside the test chamber 100 provides a light source, facilitating clearer monitoring of the test process by the camera 61.

[0053] Finally, it should be noted that the above content is only used to illustrate the technical solution of this utility model, and is not intended to limit the scope of protection of this utility model. Simple modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model do not depart from the essence and scope of the technical solution of this utility model.

Claims

1. An accelerated simulation test monitoring device, characterized in that, It includes a housing, reagent tubes, a heating device, and a monitoring component. The housing comprises a testing housing and a monitoring housing. Both the housing and the reagent tubes are made of transparent ceramic material. The heating device is located at the lower part of the test chamber, the reagent tube is located on the heating device, and the monitoring component is located in the monitoring chamber. The position of the monitoring component matches the position of the reagent tube. The heating device includes a fixing plate and a heating tube. The fixing plate is hollow inside, the heating tube is located inside the fixing plate, and the fixing plate has several through holes. The accelerated simulation test and monitoring equipment also includes a diffusion device located below the heating device. The diffusion device includes fan blades and a driving device. The driving device is located at the bottom of the test chamber, and the fan blades are connected to the driving device.

2. The accelerated simulation test monitoring device according to claim 1, characterized in that, A temperature detector is installed on the top of the test chamber.

3. The accelerated simulation test and monitoring device according to claim 1, characterized in that, The fixing plate is also provided with a fixing frame, and the reagent tube is placed in the fixing frame.

4. The accelerated simulation test monitoring device according to claim 1, characterized in that, The monitoring component includes a lifting device and a camera, with the camera fixed to the lifting device.

5. The accelerated simulation test monitoring device according to claim 4, characterized in that, The lifting device is a linear guide rail lifting structure or a lead screw lifting structure.

6. The accelerated simulation test monitoring device according to claim 1, characterized in that, The accelerated simulation test monitoring equipment also includes a light-emitting plate, which is set on the inner wall of the test chamber.

7. The accelerated simulation test monitoring device according to claim 1, characterized in that, The reagent tube also includes a sealing cap, a fixing shoulder is provided on the side wall of the reagent tube, a sealing groove is provided at the bottom of the sealing cap, a rubber gasket is installed in the sealing groove, and fixing buckles are provided on both sides of the sealing cap to fasten to the fixing shoulder.

Citation Information

Patent Citations

  • Multifunctional high-temperature and high-pressure reaction kettle

    CN112903575A