Temperature-controllable anti-volatilization ultrasonic device
By introducing a constant-temperature magnetic stirring and condensation component into the ultrasonic device, the problems of material adhesion and solvent evaporation were solved, thus ensuring the accuracy of the experimental results.
Patent Information
- Application Number
- CN202520149070.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-01-22
AI Technical Summary
In the process of extracting Chinese medicine components, the materials in the existing ultrasonic devices tend to stick to the probe and the solvents tend to evaporate, resulting in inaccurate experimental results.
A temperature-controlled, anti-volatile ultrasonic device was designed, comprising a thermostatic magnetic stirring component and a condensation component. The thermostatic magnetic stirring component prevents materials from sticking together, and the condensation component recovers the solvent, ensuring experimental accuracy.
It effectively prevents materials from sticking to the probe and prevents solvent evaporation, thus improving the accuracy of experimental data.
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Figure CN223887893U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to ultrasonic extraction technical field especially relates to a controllable temperature's anti volatile ultrasonic device. BACKGROUND
[0002] In the ultrasonic extraction, because the physical characteristics of different materials are different, the ultrasonic state required by them is also different, for example, in the extraction process of some traditional Chinese medicine components, sometimes the material will stick to the ultrasonic probe, so that the work cannot be carried out, so at this time the material needs to be stirred to continue to maintain ultrasonic, but the existing ultrasonic device on the market does not have this stirring function, and in the process of ultrasonic, heat will be generated, so it will cause the solvent to volatilize, which will cause the inaccuracy of the extraction result and experimental data.
[0003] The technical problem to be solved by the present application is to design a controllable temperature anti volatile ultrasonic device that can prevent the material from sticking to the ultrasonic probe and prevent the solvent from volatilizing to improve the accuracy of the experiment. UTILITY MODEL CONTENT
[0004] In order to overcome the shortcomings of the prior art, the utility model aims at providing a controllable temperature anti volatile ultrasonic device that can prevent the material from sticking to the ultrasonic probe and prevent the solvent from volatilizing to improve the accuracy of the experiment.
[0005] The utility model employs the technical scheme that a controllable temperature anti volatile ultrasonic device, including constant temperature magnetic stirring assembly and the ultrasonic probe located above constant temperature magnetic stirring assembly, constant temperature magnetic stirring assembly includes constant temperature magnetic stirrer and the container mechanism for containing material above constant temperature magnetic stirrer, container mechanism is equipped with the condensation component connected with it for preventing solvent from volatilizing.
[0006] In some embodiments, the container mechanism includes an inner beaker and an outer beaker sleeved around the periphery of the inner beaker, and a temperature control interlayer is formed between the inner beaker and the outer beaker.
[0007] In some embodiments, the outer beaker is respectively provided with a first circulating water interface and a second circulating water interface, and the first circulating water interface and the second circulating water interface are in communication with the temperature control interlayer.
[0008] In some embodiments, the inner beaker is provided with a material temperature probe inside, and the temperature control interlayer is provided with a interlayer water temperature probe inside, and the material temperature probe and the interlayer temperature probe are electrically connected between the constant temperature magnetic stirrer.
[0009] In some embodiments, the condensation component includes a condenser tube and a rubber hose connected with the condenser tube, the top of the inner beaker is provided with a glass cover in limiting cooperation therewith, and the rubber hose passes through the glass cover and is communicated with the inside of the inner beaker.
[0010] In some embodiments, the glass cover is positioned and installed in an inner rotating manner between the inner layer beaker.
[0011] In some embodiments, the glass cover is provided with a through hole, and the ultrasonic probe extends into the inner layer beaker through the through hole.
[0012] In some embodiments, the bottom of the constant temperature magnetic stirrer is provided with a lifting platform for controlling the lifting thereof.
[0013] In some embodiments, the constant temperature magnetic stirring assembly and the container mechanism are located in the soundproof box, and the soundproof box is further provided with a lighting lamp at the top thereof.
[0014] The utility model has the following technical effects: when the material is ultrasonically extracted, the constant temperature magnetic stirring assembly can drive the material in the container mechanism to be stirred, so that the material is prevented from sticking to the ultrasonic probe, and the condensing assembly is further provided, so that the evaporated solvent can be collected in the ultrasonic extraction process, so that the solvent volatilization is prevented, and the accuracy of experimental data is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0015] Fig. 1 It is a structure schematic view of the utility model controllable temperature anti-volatilization ultrasonic device.
[0016] Fig. 2 It is an internal structure schematic view of the utility model controllable temperature anti-volatilization ultrasonic device.
[0017] The corresponding relationship between the numbers and names in the drawing is as follows: 1, ultrasonic probe; 2, constant temperature magnetic stirrer; 3, inner layer beaker; 4, outer layer beaker; 5, temperature control interlayer; 40, first circulating water interface; 41, second circulating water interface; 6, material temperature probe; 7, interlayer water temperature probe; 8, condenser pipe; 9, rubber hose; 10, glass cover; 11, through hole; 12, lifting platform; 13, soundproof box; 14, lighting lamp. DETAILED DESCRIPTION
[0018] The technical scheme in the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0019] Please refer to Figs. 1-2The utility model provides a kind of temperature-controllable volatile-preventing ultrasonic device, including soundproof box 13, wherein soundproof box 13 is equipped with thermostatic magnetic stirring assembly and the ultrasonic probe 1 located thermostatic magnetic stirring assembly top, ultrasonic probe 1 is installed in the upper end of soundproof box 13, thermostatic magnetic stirring assembly includes thermostatic magnetic stirrer 2 and the container mechanism located thermostatic magnetic stirrer 2 top, container mechanism is also located in soundproof box 13, wherein container mechanism is used to contain material needing ultrasonic extraction, and container mechanism is also equipped with condensing component connected with it for preventing solvent volatilization, by being equipped with thermostatic magnetic stirring assembly in soundproof box 13, when ultrasonic extraction is carried out to material, thermostatic magnetic stirring assembly can drive the material located in container mechanism to stir, to prevent material from sticking on ultrasonic probe 1, to ensure the normal progress of ultrasonic extraction work further, and by being also equipped with condensing component, evaporated solvent can also be collected in the process of ultrasonic extraction, to prevent solvent volatilization, to ensure the accuracy of experimental data further.
[0020] Container mechanism includes inner layer beaker 3 and outer layer beaker 4 sleeved in the outer circle of inner layer beaker 3, wherein the gap between inner layer beaker 3 and outer layer beaker 4 forms temperature control interlayer 5, first circulating water interface 40 and second circulating water interface 41 are respectively provided on the side wall of outer layer beaker 4, wherein first circulating water interface 40 and second circulating water interface 41 are all communicated with temperature control layer to be used for temperature control of material in container mechanism, material temperature probe 6 is provided in the inside of inner layer beaker 3, interlayer water temperature probe 7 is provided in the inside of temperature control interlayer 5, material temperature probe 6 and interlayer temperature probe are electrically connected between thermostatic magnetic stirrer 2, when material is placed in inner layer beaker 3 and needs ultrasonic extraction, first circulating water interface 40 is used to fill water in temperature control interlayer 5 at this time, and then thermostatic magnetic stirrer 2 is used to heat water in temperature control interlayer 5, to heat material in inner layer beaker 3 by using heat conduction, material temperature probe 6 is used to detect the temperature of material in inner layer beaker 3 when heating, when the temperature of material reaches working temperature, material temperature probe 6 senses and then signal is transmitted to thermostatic magnetic stirrer 2, and then thermostatic magnetic stirrer 2 stops heating water in temperature control interlayer 5, if material temperature probe 6 detects that the temperature of material in inner layer beaker 3 is higher than preset working temperature, material temperature probe 6 will send signal to thermostatic magnetic stirrer 2 to control first circulating water interface 40 to fill cold water in temperature control interlayer 5, and hot water is discharged through second circulating water interface 41, to cool water in temperature control interlayer 5, and interlayer water temperature probe 7 is provided in temperature control interlayer 5, to detect the temperature of water in temperature control interlayer 5 in real time, when water temperature changes and is higher or lower than preset working temperature, interlayer water temperature probe 7 can send relevant signal to thermostatic magnetic stirrer 2 to heat or fill cold water to cool water in temperature control interlayer 5.
[0021] The condensing assembly comprises a condensing tube 8 and a rubber hose 9 connected with the condensing tube 8, and a glass cover 10 is further arranged at the top of the inner beaker 3 and is in position-limiting cooperation with the inner beaker 3, wherein the rubber hose 9 is communicated with the inside of the inner beaker 3 through the glass cover 10. Since the material needs to be heated during ultrasonic extraction, solvent evaporation is inevitable. When the solvent evaporates, most of the solvent is liquefied into liquid state on the glass cover 10 due to cooling and then flows back to the inner beaker 3, and part of the evaporated solvent flows through the rubber hose 9 to the condensing tube 8 and is then liquefied by the condensing tube 8 and then flows back to the inner beaker 3 through the rubber hose 9 for collection. Therefore, the condensing assembly can collect the evaporated solvent during ultrasonic extraction, so as to prevent the solvent from evaporating and ensure the accuracy of experimental data.
[0022] In order to facilitate the installation of the glass cover 10 on the inner beaker 3, the glass cover 10 is installed in position-limiting cooperation with the inner beaker 3 in an inner rotation manner, and the glass cover 10 is installed in a screwing manner with the inner beaker 3. The screwing manner can further improve the sealing effect of the inner beaker 3.
[0023] A through hole 11 is arranged on the glass cover 10, and the ultrasonic probe 1 extends through the through hole 11 to the inner beaker 3 to perform ultrasonic extraction on the material in the inner beaker 3.
[0024] In order to cope with ultrasonic extraction of different amounts of material in the inner beaker 3, a lifting platform 12 is further arranged at the bottom of the constant-temperature magnetic stirrer 2. The lifting platform 12 can control the lifting of the constant-temperature magnetic stirrer 2, so as to control the lifting of the container mechanism, and the ultrasonic probe 1 is suitable for ultrasonic extraction of different amounts of material in the inner beaker 3.
[0025] In order to facilitate observation of ultrasonic effect and sound insulation effect, the sound insulation box 13 is made of a sound insulation board with a composite compression structure, and a lighting lamp 14 is further arranged at the top of the sound insulation box 13. The lighting lamp 14 comprises a plurality of LED lamps.
[0026] The working principle of the utility model is as follows: when the material is subjected to ultrasonic extraction, the constant-temperature magnetic stirring assembly can drive the material in the container mechanism to be stirred, so as to prevent the material from adhering to the ultrasonic probe 1, and the condensing assembly can further collect the evaporated solvent during ultrasonic extraction, so as to prevent the solvent from evaporating and ensure the accuracy of experimental data.
[0027] Finally, it should be noted that the above is only the preferred examples of the present application, and is not intended to limit the present application, although the foregoing embodiments of the present application are described in detail, for those skilled in the art, it still can be modified, or part of the technical features of the equivalent replacement. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the scope of protection of the present application.
Claims
1. A temperature-controlled, anti-volatile ultrasonic device, characterized in that, The device includes a thermostatic magnetic stirring assembly and an ultrasonic probe located above the thermostatic magnetic stirring assembly. The thermostatic magnetic stirring assembly includes a thermostatic magnetic stirrer and a container mechanism located above the thermostatic magnetic stirrer for holding materials. The container mechanism is provided with a condensation component connected thereto to prevent solvent evaporation.
2. The temperature-controlled anti-volatile ultrasonic device according to claim 1, characterized in that, The container structure includes an inner beaker and an outer beaker surrounding the inner beaker, with a temperature-controlled interlayer formed between the inner and outer beakers.
3. The temperature-controlled anti-volatile ultrasonic device according to claim 2, characterized in that, The outer beaker is provided with a first circulating water interface and a second circulating water interface, both of which are connected to the temperature control jacket.
4. The temperature-controlled anti-volatile ultrasonic device according to claim 2, characterized in that, The inner beaker is equipped with a material temperature probe, and the temperature control jacket is equipped with a jacket water temperature probe. Both the material temperature probe and the jacket temperature probe are electrically connected to the constant temperature magnetic stirrer.
5. The temperature-controlled anti-volatile ultrasonic device according to claim 2, characterized in that, The condensation assembly includes a condenser tube and a rubber hose connected to the condenser tube. The top of the inner beaker is provided with a glass cover that fits in a limiting manner. The rubber hose passes through the glass cover and connects to the interior of the inner beaker.
6. The temperature-controlled anti-volatile ultrasonic device according to claim 5, characterized in that, The glass lid and the inner beaker are positioned and fixed by an inward rotation.
7. The temperature-controlled anti-volatile ultrasonic device according to claim 5, characterized in that, The glass cover has a through hole, through which the ultrasonic probe extends into the inner beaker.
8. The temperature-controlled anti-volatile ultrasonic device according to claim 1, characterized in that, The thermostatic magnetic stirrer is equipped with a lifting platform at its bottom for controlling its raising and lowering.
9. The temperature-controlled anti-volatile ultrasonic device according to claim 1, characterized in that, The device includes a soundproof box, in which the constant temperature magnetic stirring assembly and the container mechanism are located. The top of the soundproof box is also equipped with a lighting lamp.