A fully automatic multifunctional auxiliary temperature control reaction device and method

By using the limit connection components and lifting components of the fully automatic multi-functional auxiliary temperature control reaction device, the problem of tipping caused by the water bath liquid level being higher than the container liquid level is solved, thus achieving safety and stability in the water bath heating process.

CN122076358APending Publication Date: 2026-05-26CHONGQING QIJIANG DISTRICT YIHE FOOD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHONGQING QIJIANG DISTRICT YIHE FOOD CO LTD
Filing Date
2026-02-10
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In the existing technology, the water bath heating device cannot limit the container, resulting in the water bath liquid level being higher than the container liquid level, which easily leads to tipping and affects the use.

Method used

The fully automatic multi-functional auxiliary temperature control reaction device is adopted, including a limit connection component and a lifting component. The reaction cup is clamped by bolts, and the lifting component controls the reaction cup to descend slowly, so that the water bath liquid level is lower than the cup mouth, ensuring stability.

Benefits of technology

This completely eliminates the risk of the reaction cup tipping over due to excessively high water bath levels, ensuring the safety, uniformity, and stability of the water bath heating process.

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Abstract

This invention relates to the field of reaction equipment technology, specifically to a fully automatic multifunctional auxiliary temperature-controlled reaction device and method; it includes a frame and a limiting connection assembly. The limiting connection assembly includes a heating chamber, a bottom chamber, a reaction cup, a mounting frame, bolts, a buffer pad, a first magnetic stir bar, a capping component, a lifting component, a magnetic stirring component, a temperature-controlled heating component, and a liquid adding component. The reaction cup is placed in the mounting frame, and the bolts are tightened to push the buffer pad to press against the outer wall of the reaction cup; the liquid adding component injects an appropriate amount of water bath liquid; the capping component covers the mouth of the reaction cup; the magnetic stirring component drives the first magnetic stir bar to rotate; the temperature-controlled heating component heats the water bath liquid; by firmly limiting the reaction cup in this way, the risk of tipping or overturning caused by the water bath liquid level overflowing the mouth of the cup is completely solved, ensuring the safety, uniformity, and stability of the water bath heating process.
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Description

Technical Field

[0001] This invention relates to the field of reaction equipment technology, and in particular to a fully automatic multifunctional auxiliary temperature control reaction device and method. Background Technology

[0002] In the quality control and safety testing of raw materials, products and various samples (such as food, medicine, environmental samples, etc.), in order to accurately determine the content of specific active ingredients or target substances (such as pesticide residues, veterinary drug residues, additives, nutrients, pollutants, etc.), it is usually necessary to first perform complex pretreatment on solid, semi-solid or liquid samples.

[0003] Currently, water baths are mainly used to heat the materials inside the container.

[0004] However, in the aforementioned prior art, it is impossible to limit the container, resulting in the water bath liquid level being higher than the container liquid level, which easily leads to tipping and affects use. Summary of the Invention

[0005] The purpose of this invention is to provide a fully automatic multifunctional auxiliary temperature control reaction device and method, which aims to solve the technical problem in the prior art where the container cannot be limited, resulting in the water bath liquid level being higher than the container liquid level, which easily leads to tipping and affects the use.

[0006] To achieve the above objectives, the present invention employs a fully automatic multifunctional auxiliary temperature-controlled reaction device, comprising a frame and a limiting connection assembly. The limiting connection assembly includes a heating chamber, a bottom chamber, a reaction cup, a mounting bracket, bolts, a buffer pad, a first magnetic stir bar, a sealing component, a lifting component, a magnetic stirring component, a temperature-controlled heating component, and a liquid-adding component. The limiting connection assembly is connected to the frame. The heating chamber is fixedly connected to the frame and located above the frame. The bottom chamber is disposed on the inner wall of the heating chamber. The lifting component is connected to both the bottom chamber and the heating chamber. The mounting bracket is fixedly connected to the bottom chamber. A fixed connection is established above the bottom chamber. The bolt is threadedly connected to the mounting bracket and located on one side of the mounting bracket. The reaction cup is disposed on the inner side wall of the mounting bracket. The buffer pad is fixedly connected to the bolt and located on one side of the bolt, and the buffer pad is in contact with the reaction cup. The first magnetic stir bar is placed on the inner side wall of the reaction cup. The magnetic stirring components are respectively connected to the bottom chamber and the first magnetic stir bar. The sealing component is connected to the reaction cup. The temperature control heating component is connected to the heating chamber. The liquid addition component is respectively connected to the frame and the heating chamber.

[0007] The sealing component includes a top cover, an exhaust valve, and a locking member. The top cover is detachably connected to the reaction cup and is located above the reaction cup. The exhaust valve is connected to the top cover and is located above the top cover. The locking member is threadedly connected to the top cover, and the end of the locking member is in contact with the reaction cup.

[0008] The lifting component includes a cylinder and a sealing ring. The cylinder is installed below the heating chamber, which has a circular hole that is slidably engaged with the output end of the cylinder. The output end of the cylinder is fixedly connected to the bottom chamber and located below it. The sealing ring is fixedly connected to the bottom chamber and located on the inner bottom wall of the bottom chamber, and is slidably engaged with the output end of the cylinder.

[0009] The magnetic stirring component includes a motor, a magnetic ring, and a second magnetic stirrer. The magnetic ring is fixedly connected to the bottom chamber and located on the inner top wall of the bottom chamber. The motor is installed below the magnetic ring, and the output end of the motor passes through the magnetic ring and the bottom chamber in sequence. The second magnetic stirrer is fixedly connected to the motor and located at the output end of the motor, and the second magnetic stirrer is adapted to the first magnetic stirrer.

[0010] The temperature control heating component includes multiple heating tubes, a controller, and an array of sensors. The multiple heating tubes are respectively installed on the inner side wall of the heating chamber, and the array of sensors are respectively installed on the inner side wall of the heating chamber. The controller is fixedly connected to the frame and located above the frame, and the controller is electrically connected to the heating tubes and the array of sensors respectively.

[0011] The liquid filling component includes a water storage tank, a water pump, an infusion pipe, and a liquid level sensor. The water storage tank is fixedly connected to the frame and located above the frame. The water pump is connected to the water storage tank and located on one side of the water storage tank. The infusion pipe is connected to both the water pump and the heating chamber. The liquid level sensor is fixedly connected to the heating chamber and located on the inner wall of the heating chamber.

[0012] This invention also provides a fully automatic multifunctional auxiliary temperature control reaction method, comprising the following steps: Place the reaction cup into the mounting bracket and tighten the bolt to push the buffer pad to press against the outer wall of the reaction cup, thereby obtaining a reliable clamping and limiting of the reaction cup; The liquid injection component is used to inject an appropriate amount of water bath liquid into the heating chamber to obtain a ready water bath environment. The reaction cup is sealed by covering the mouth of the reaction cup with the sealing member, thereby obtaining the reaction cup that prevents volatilization and contamination; The magnetic stirring component is activated to drive the first magnetic stir bar to rotate, thereby obtaining a uniformly mixed sample; The temperature-controlled heating component is activated to heat the prepared water bath environment, so that its temperature quickly reaches and stabilizes at the preset value, thereby obtaining a constant temperature water bath environment. The lifting mechanism is activated to slowly lower the reaction cup, gradually immersing it in the constant-temperature water bath environment, and finally obtaining the reaction reagent.

[0013] This invention discloses a fully automatic multifunctional auxiliary temperature-controlled reaction device and method. First, the reaction cup containing the sample to be processed and the required solid reagents is placed into the mounting frame. The bolts are tightened, pushing the buffer pad to tightly contact and press against the outer wall of the reaction cup, achieving reliable clamping and limiting of the reaction cup, ensuring no displacement or shaking during subsequent operations. Next, the liquid addition component injects an appropriate amount of water bath liquid into the heating chamber, with the initial liquid level below the bottom of the reaction cup or only partially submerging its bottom. Then, the sealing component covers or seals the mouth of the reaction cup to prevent solvent evaporation and sample contamination during subsequent processes. Subsequently, the magnetic stirring component drives the first magnetic stir bar placed inside the reaction cup to rotate, causing the solid sample inside the cup to react with the subsequent... The added liquid reagents are thoroughly mixed; simultaneously, the temperature-controlled heating component begins operation, heating the water bath liquid in the heating chamber to quickly reach and stabilize its temperature at a preset value, providing a thermal environment for the reaction; then, the lifting component is activated, slowly lowering the reaction cup, during which the reaction cup is gradually immersed in the heated water bath liquid; by precisely controlling the stroke of the lifting component, the water bath liquid level is ensured to eventually rise to completely submerge the body of the reaction cup, but the liquid level height is strictly controlled and always remains below the rim of the reaction cup; this method of firmly limiting the reaction cup completely solves the risk of tipping or overturning caused by the water bath liquid level being too high and overflowing the rim, thus ensuring the safety, uniformity, and stability of the water bath heating process. Attached Figure Description

[0014] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0015] Figure 1 This is a schematic diagram of the structure of the fully automatic multifunctional auxiliary temperature control reaction device of the present invention.

[0016] Figure 2This is a right view of the fully automatic multifunctional auxiliary temperature control reaction device of the present invention.

[0017] Figure 3 This is the invention Figure 2 A sectional view along line AA.

[0018] Figure 4 This is the invention Figure 3 Enlarged view of the local structure at point B.

[0019] Figure 5 This is a flowchart of the steps of the fully automatic multifunctional auxiliary temperature control reaction method of the present invention.

[0020] 101-Frame, 102-Heating chamber, 103-Bottom chamber, 104-Reaction cup, 105-Mounting bracket, 106-Bolt, 107-Buffer pad, 108-First magnetic stirrer, 109-Cylinder, 110-Sealing ring, 111-Motor, 112-Magnetic ring, 113-Second magnetic stirrer, 114-Heating tube, 115-Controller, 116-Array sensor, 117-Water tank, 118-Water pump, 119-Infusion pipe, 120-Liquid level sensor, 121-Round hole, 122-Cleaning chamber, 123-Drain valve pipe, 124-Ultrasonic generator. Detailed Implementation

[0021] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application.

[0022] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a,” “the,” and “the” used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.

[0023] It should be understood that although the terms first, second, third, etc., may be used in this application to describe various information, such information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this application, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Depending on the context, the word "if" as used herein may be interpreted as "when," "when," or "in response to determination."

[0024] Please see Figures 1-4, Figure 1 This is a schematic diagram of the fully automatic multifunctional auxiliary temperature control reaction device of the present invention. Figure 2 This is a right view of the fully automatic multifunctional auxiliary temperature control reaction device of the present invention. Figure 3 This is the invention Figure 2 AA-line sectional view, Figure 4 This is the invention Figure 3 Enlarged view of the local structure at point B.

[0025] This invention provides a fully automatic multifunctional auxiliary temperature-controlled reaction device, including a frame 101 and a limiting connection assembly. The limiting connection assembly includes a heating chamber 102, a bottom chamber 103, a reaction cup 104, a mounting bracket 105, bolts 106, a buffer pad 107, a first magnetic stirrer 108, a sealing component, a lifting component, a magnetic stirring component, a temperature-controlled heating component, and a liquid addition component. The lifting component includes a cylinder 109 and a sealing ring 110. The magnetic stirring component includes a motor 111, a magnet ring 112, and a second magnetic stirrer 113. The temperature-controlled heating component includes multiple heating tubes 114, a controller 115, and an array sensor 116. The liquid addition component includes a water tank 117, a water pump 118, a delivery pipe 119, and a liquid level sensor 120. The heating chamber 102 has a circular hole 121. The fully automatic multifunctional auxiliary temperature-controlled reaction device also includes a cleaning component, which includes a cleaning chamber 122, a drain valve pipe 123, and an ultrasonic generator 124.

[0026] The limiting connection assembly is connected to the frame 101; the heating chamber 102 is fixedly connected to the frame 101 and located above the frame 101; the bottom chamber 103 is disposed on the inner side wall of the heating chamber 102; the lifting component is connected to the bottom chamber 103 and the heating chamber 102 respectively; the mounting bracket 105 is fixedly connected to the bottom chamber 103 and located above the bottom chamber 103; the bolt 106 is threadedly connected to the mounting bracket 105 and located on one side of the mounting bracket 105; the reaction cup 104 is disposed on the mounting bracket 105. The inner wall of the frame 105 has a buffer pad 107 fixedly connected to the bolt 106 and located on one side of the bolt 106, and the buffer pad 107 is in contact with the reaction cup 104. The first magnetic stir bar 108 is placed on the inner wall of the reaction cup 104. The magnetic stirring component is connected to the bottom chamber 103 and the first magnetic stir bar 108 respectively. The sealing component is connected to the reaction cup 104. The temperature control heating component is connected to the heating chamber 102. The liquid adding component is connected to the frame 101 and the heating chamber 102 respectively.

[0027] In this embodiment, firstly, the reaction cup 104, containing the sample to be processed and the required solid reagents, is placed into the mounting frame 105, and the bolt 106 is tightened. This pushes the buffer pad 107 to tightly contact and press against the outer wall of the reaction cup 104, achieving reliable clamping and limiting of the reaction cup 104, ensuring that it does not shift or shake during subsequent operations. Next, the liquid addition component injects an appropriate amount of water bath liquid into the heating chamber 102, with the initial liquid level lower than the bottom of the reaction cup 104 or only partially submerging its bottom. Then, the capping component covers or seals the mouth of the reaction cup 104 to prevent solvent evaporation and sample contamination during subsequent processes. Subsequently, the magnetic stirring component drives the first magnetic stir bar 108 placed inside the reaction cup 104 to rotate, causing the solid sample inside the cup to react with the subsequently added reagents. The liquid reagents are thoroughly mixed; simultaneously, the temperature-controlled heating component starts working, heating the water bath liquid in the heating chamber 102 to quickly reach and stabilize its temperature at a preset value, providing a thermal environment for the reaction; then, the lifting component starts, slowly lowering the reaction cup 104, during which the reaction cup 104 is gradually immersed in the heated water bath liquid; by precisely controlling the stroke of the lifting component, it is ensured that the water bath liquid level eventually rises to completely submerge the body of the reaction cup 104, but the liquid level height is strictly controlled and always lower than the rim of the reaction cup 104; by firmly limiting the reaction cup 104 in this way, the risk of tipping or overturning caused by the water bath liquid level being too high and overflowing the rim of the cup is completely solved, ensuring the safety, uniformity and stability of the water bath heating process.

[0028] Furthermore, the top cover is detachably connected to the reaction cup 104 and is located above the reaction cup 104. The exhaust valve is connected to the top cover and is located above the top cover. The locking member is threadedly connected to the top cover, and the end of the locking member is in contact with the reaction cup 104.

[0029] In this embodiment, the top cover is placed over the reaction cup 104, and the locking member is rotated to press its end against the rim of the reaction cup 104, thereby achieving a sealed connection. The exhaust valve is located above the top cover and is used to release excess pressure inside the reaction cup 104 or introduce inert gas when necessary to prevent seal failure, solvent evaporation, or sample contamination caused by pressure or temperature changes in subsequent processes.

[0030] Furthermore, the cylinder 109 is installed below the heating chamber 102, the heating chamber 102 has a circular hole 121, the circular hole 121 is slidably engaged with the output end of the cylinder 109, the output end of the cylinder 109 is fixedly connected to the bottom chamber 103 and located below the bottom chamber 103, the sealing ring 110 is fixedly connected to the bottom chamber 103 and located on the inner bottom wall of the bottom chamber 103, and the sealing ring 110 is slidably engaged with the output end of the cylinder 109.

[0031] In this embodiment, when in use, the cylinder 109 is activated, pushing its output end upward, which causes the bottom chamber 103 and the reaction cup 104 to descend smoothly within the heating chamber 102. During this process, the reaction cup 104 is gradually immersed in the heated water bath liquid. The sealing ring 110 slides and seals with the output end of the cylinder 109, effectively preventing the water bath liquid from leaking along the output end.

[0032] Furthermore, the magnetic ring 112 is fixedly connected to the bottom chamber 103 and is located on the inner top wall of the bottom chamber 103. The motor 111 is installed below the magnetic ring 112, and the output end of the motor 111 passes through the magnetic ring 112 and the bottom chamber 103 in sequence. The second magnetic stir bar 113 is fixedly connected to the motor 111 and is located at the output end of the motor 111. The second magnetic stir bar 113 is adapted to the first magnetic stir bar 108.

[0033] In this embodiment, the motor 111 operates, driving the second magnetic stir bar 113 to rotate; the rotating magnetic field generated by the second magnetic stir bar 113 magnetically couples with the first magnetic stir bar 108 through the walls of the bottom chamber 103 and the reaction cup 104, thereby driving the first magnetic stir bar 108 to rotate synchronously within the sealed reaction cup 104, so that the sample and solvent in the cup are fully mixed; the magnet ring 112 focuses and enhances the magnetic field to ensure driving efficiency.

[0034] Furthermore, multiple heating tubes 114 are respectively installed on the inner side wall of the heating chamber 102, the array sensors 116 are respectively installed on the inner side wall of the heating chamber 102, the controller 115 is fixedly connected to the frame 101 and located above the frame 101, and the controller 115 is electrically connected to the heating tubes 114 and the array sensors 116 respectively.

[0035] In this embodiment, the controller 115 receives the real-time temperature signal fed back by the array sensor 116 according to a preset program, and intelligently controls the power output of the multiple heating tubes 114 accordingly; through multi-point monitoring and distributed heating, it achieves rapid and uniform heating of the water bath liquid in the heating chamber 102, and accurately maintains its temperature at the set value, providing a stable and uniform thermal environment for the reaction.

[0036] Furthermore, the water storage tank 117 is fixedly connected to the frame 101 and located above the frame 101; the water pump 118 is connected to the water storage tank 117 and located on one side of the water storage tank 117; the infusion pipe 119 is connected to the water pump 118 and the heating chamber 102 respectively; and the liquid level sensor 120 is fixedly connected to the heating chamber 102 and located on the inner wall of the heating chamber 102.

[0037] In this embodiment, the controller 115 starts the water pump 118 to pump the liquid in the water storage tank 117 into the heating chamber 102 through the infusion pipe 119; the liquid level sensor 120 monitors the liquid level in real time and feeds the signal back to the controller 115; when the liquid level reaches the preset initial height, the controller 115 shuts off the water pump 118 to complete the precise liquid addition.

[0038] Furthermore, the fully automatic multi-functional auxiliary temperature control reaction device also includes a cleaning component, which includes a cleaning chamber 122, a drain valve pipe 123, and an ultrasonic generator 124. The cleaning chamber 122 is fixedly connected to the frame 101 and is located above the frame 101. The drain valve pipe 123 communicates with the cleaning chamber 122 and is located on one side of the cleaning chamber 122. The ultrasonic generator 124 is installed on one side of the cleaning chamber 122.

[0039] In this embodiment, the cleaning chamber 122 is used to hold the cleaning solution. The used reaction cup 104 can be placed in the cleaning chamber 122. The ultrasonic generator 124 is started to clean the reaction cup 104. The structure is simple and easy for staff to operate and use. The drain valve pipe 123 is used to discharge the wastewater in the cleaning chamber 122.

[0040] Corresponding to the aforementioned fully automatic multi-functional auxiliary temperature control reaction device, this application also provides a fully automatic multi-functional auxiliary temperature control reaction method.

[0041] Figure 5 This is a flowchart illustrating the steps of the fully automated, multifunctional, assisted temperature-controlled reaction method of the present invention. (Refer to...) Figure 5 The method includes the following steps: S1 inserts the reaction cup 104 into the mounting bracket 105, and tightens the bolt 106 to push the buffer pad 107 to press against the outer wall of the reaction cup 104, thereby obtaining a reliable clamping and limiting of the reaction cup 104; S2 uses the liquid injection component to inject an appropriate amount of water bath liquid into the heating chamber 102 to obtain a ready water bath environment; S3 uses the sealing member to cover the mouth of the reaction cup 104 to achieve a seal, thereby obtaining the reaction cup 104 which prevents volatilization and contamination; S4 activates the magnetic stirring component to drive the first magnetic stir bar 108 to rotate, thereby obtaining a uniformly mixed sample; S5 activates the temperature control heating component to heat the prepared water bath environment, so that its temperature quickly reaches and stabilizes at the preset value, thereby obtaining a constant temperature water bath environment. S6 activates the lifting component to slowly lower the reaction cup 104, gradually immersing it in the constant-temperature water bath environment, and finally obtaining the reaction reagent.

[0042] In this embodiment, the reaction cup 104 is placed into the mounting bracket 105, and the bolt 106 is tightened to push the buffer pad 107 to press against the outer wall of the reaction cup 104, thereby obtaining a reliable clamping and limiting of the reaction cup 104; an appropriate amount of water bath liquid is injected into the heating chamber 102 using the liquid addition component to obtain a ready water bath environment; the mouth of the reaction cup 104 is covered by the sealing component to achieve a seal, thereby obtaining a reaction cup 104 that prevents volatilization and contamination; the magnetic stirring component is activated to drive the first magnetic stir bar 108 to rotate, thereby obtaining a uniformly mixed sample. The process involves: activating the temperature-controlled heating component to heat the prepared water bath environment, rapidly reaching and stabilizing its temperature at a preset value to obtain a constant-temperature water bath environment; activating the lifting component to slowly lower the reaction cup 104, gradually immersing it in the constant-temperature water bath environment, ultimately obtaining the reaction reagent; this method securely limits the position of the reaction cup 104, completely eliminating the risk of tipping or overturning due to increased buoyancy and decreased stability caused by excessively high water levels overflowing the cup rim, ensuring the safety, uniformity, and stability of the water bath heating process.

[0043] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. A fully automatic multi-functional auxiliary temperature control reaction device, characterized in that, It includes a frame and a limiting connection assembly, wherein the limiting connection assembly is connected to the frame; The limiting connection assembly includes a heating chamber, a bottom chamber, a reaction cup, a mounting frame, bolts, a buffer pad, a first magnetic stirrer, a capping component, a lifting component, a magnetic stirring component, a temperature-controlled heating component, and a liquid adding component. The heating chamber is fixedly connected to the frame and located above the frame. The bottom chamber is disposed on the inner wall of the heating chamber. The lifting component is connected to both the bottom chamber and the heating chamber. The mounting frame is fixedly connected to the bottom chamber and located above it. The bolt is threadedly connected to the mounting frame and located on one side of the mounting frame. The reaction cup is disposed on the inner wall of the mounting frame. The buffer pad is fixedly connected to the bolt and located on one side of the bolt, and the buffer pad is in contact with the reaction cup. The first magnetic stirrer is placed on the inner wall of the reaction cup. The magnetic stirring component is connected to both the bottom chamber and the first magnetic stirrer. The capping component is connected to the reaction cup. The temperature-controlled heating component is connected to the heating chamber. The liquid adding component is connected to both the frame and the heating chamber.

2. The fully automatic multi-functional auxiliary temperature control reaction device as described in claim 1, characterized in that, The sealing component includes a top cover, an exhaust valve, and a locking member. The top cover is detachably connected to the reaction cup and is located above the reaction cup. The exhaust valve is connected to the top cover and is located above the top cover. The locking member is threadedly connected to the top cover, and the end of the locking member is in contact with the reaction cup.

3. The fully automatic multifunctional auxiliary temperature control reaction device as described in claim 2, characterized in that, The lifting component includes a cylinder and a sealing ring. The cylinder is installed below the heating chamber, which has a circular hole. The circular hole is slidably engaged with the output end of the cylinder. The output end of the cylinder is fixedly connected to the bottom chamber and located below the bottom chamber. The sealing ring is fixedly connected to the bottom chamber and located on the inner bottom wall of the bottom chamber, and the sealing ring is slidably engaged with the output end of the cylinder.

4. The fully automatic multifunctional auxiliary temperature control reaction device as described in claim 3, characterized in that, The magnetic stirring component includes a motor, a magnetic ring, and a second magnetic stirrer. The magnetic ring is fixedly connected to the bottom chamber and located on the inner top wall of the bottom chamber. The motor is installed below the magnetic ring, and the output end of the motor passes through the magnetic ring and the bottom chamber in sequence. The second magnetic stirrer is fixedly connected to the motor and located at the output end of the motor, and the second magnetic stirrer is adapted to the first magnetic stirrer.

5. The fully automatic multifunctional auxiliary temperature control reaction device as described in claim 4, characterized in that, The temperature control heating component includes multiple heating tubes, a controller, and an array of sensors. The multiple heating tubes are respectively installed on the inner side wall of the heating chamber, and the array of sensors are respectively installed on the inner side wall of the heating chamber. The controller is fixedly connected to the frame and located above the frame, and the controller is electrically connected to the heating tubes and the array of sensors respectively.

6. The fully automatic multifunctional auxiliary temperature control reaction device as described in claim 5, characterized in that, The liquid addition component includes a water storage tank, a water pump, an infusion pipe, and a liquid level sensor. The water storage tank is fixedly connected to the frame and located above the frame. The water pump is connected to the water storage tank and located on one side of the water storage tank. The infusion pipe is connected to both the water pump and the heating chamber. The liquid level sensor is fixedly connected to the heating chamber and located on the inner wall of the heating chamber.

7. A fully automatic multi-functional auxiliary temperature control reaction method, applied to the fully automatic multi-functional auxiliary temperature control reaction device as described in claim 1, characterized in that, Includes the following steps: Place the reaction cup into the mounting bracket and tighten the bolt to push the buffer pad to press against the outer wall of the reaction cup, thereby obtaining a reliable clamping and limiting of the reaction cup; The liquid injection component is used to inject an appropriate amount of water bath liquid into the heating chamber to obtain a ready water bath environment. The reaction cup is sealed by covering the mouth of the reaction cup with the sealing member, thereby obtaining the reaction cup that prevents volatilization and contamination; The magnetic stirring component is activated to drive the first magnetic stir bar to rotate, thereby obtaining a uniformly mixed sample; The temperature-controlled heating component is activated to heat the prepared water bath environment, so that its temperature quickly reaches and stabilizes at the preset value, thereby obtaining a constant temperature water bath environment. The lifting mechanism is activated to slowly lower the reaction cup, gradually immersing it in the constant-temperature water bath environment, and finally obtaining the reaction reagent.