Intelligent temperature control reaction kettle for resin catalyst production

The design of the intelligent temperature-controlled reactor solves the problem of untimely temperature regulation in resin catalyst production, achieving precise temperature control and uniform stirring, thus improving production quality and efficiency.

CN224167513UActive Publication Date: 2026-04-28DAN DONG MING ZHU TE ZHONG SHU ZHI YOU XIAN GONG SI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DAN DONG MING ZHU TE ZHONG SHU ZHI YOU XIAN GONG SI
Filing Date
2025-04-29
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The existing resin catalyst production reactors lack temperature monitoring devices, resulting in untimely and poor temperature regulation, and making it impossible to ensure a constant reaction temperature.

Method used

An intelligent temperature-controlled reactor was designed, comprising a temperature control component and a stirring component. It utilizes a temperature sensor for real-time monitoring and a controller panel, including a heating chamber, a cooling chamber, a suction pump, a temperature sensor, and a stirring component, to achieve precise temperature control and uniform stirring within the reactor.

Benefits of technology

It achieves precise temperature control inside the reactor, ensuring constant temperature during the production process and improving production quality and reaction efficiency.

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Abstract

The utility model discloses an intelligent temperature control reaction kettle for resin catalyst production, and belongs to the technical field of resin catalyst production. The top of a reaction kettle main body is sleeved with a cover body, a heat preservation cavity is formed in the reaction kettle main body, temperature control assemblies are arranged at the two ends of the reaction kettle main body respectively, and a stirring assembly is arranged in a temperature control cylinder. According to the reaction kettle, the temperature control assembly is arranged, so that the temperature in the reaction kettle is accurately controlled. A temperature sensor is mainly used for monitoring the temperature in a temperature control cylinder in real time, hot water in a heating box or cooling liquid in a cooling box is pumped into an annular pipe fitting and a flow guide pipe through a suction pump, the liquid circularly flows through a first connecting pipe and a second connecting pipe, and double adjustment of the temperature inside and outside the temperature control cylinder is achieved; through the synergistic effect of the heating system and the cooling system, the temperature in the temperature control cylinder can be accurately controlled, the constant temperature in the resin catalyst production process is ensured, and the production quality is improved.
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Description

Technical Field

[0001] This utility model relates to the field of resin catalyst production technology, and more specifically to an intelligent temperature-controlled reactor for resin catalyst production. Background Technology

[0002] Resin catalysts are materials that use ion exchange resins as catalysts, mainly used in various chemical reactions. Resin catalysts can be divided into acidic cation exchange resins and basic anion exchange resins, which have the ability to catalyze acidic and basic reactions, respectively. A resin catalyst reactor is a device specifically designed for chemical reactions, mainly used for resin preparation and catalytic reactions.

[0003] Patent document CN205886878U discloses an apparatus for preparing styrene-acrylic rubber, including a monomer pre-emulsification tank, a third monomer metering tank, an initiator metering tank, and a polymerization tank. The monomer pre-emulsification tank, the third monomer metering tank, and the initiator metering tank are respectively connected to the inlet at the top of the polymerization tank via precision metering pumps. The gas outlet at the top of the polymerization tank is connected to the inlet of a condenser via a pipe. A liquid sealing column is installed on the liquid outlet at the bottom of the condenser. The liquid outlet at the top of the liquid sealing column is connected to the inlet at the top of the polymerization tank via a pipe. The outlet at the bottom of the polymerization tank is connected to the inlet of a finished product storage tank via a gear pump. This invention effectively solves the problem of heat removal from the reaction. Moreover, the polymerizable monomer is pre-mixed and emulsified with water into a uniform liquid before being added to the polymerization tank. The polymerization reaction is mild and controllable, and each batch can produce more than 10 tons, which greatly improves production efficiency. The production process is easy to control, the reaction product has a uniform and smaller particle size, the sizing effect is good, and the production cost is reduced.

[0004] During use, the temperature regulation mechanism of the above-mentioned technical solution lacks a temperature monitoring device, making it impossible to know the temperature inside the reactor in a timely manner and adjust the temperature accordingly. Furthermore, it is difficult to control the cooling water volume manually, resulting in poor control of the reaction temperature and an inability to ensure a constant reaction temperature.

[0005] Therefore, those skilled in the art urgently need to provide an intelligent temperature-controlled reactor for resin catalyst production to improve the problems existing in the prior art. Utility Model Content

[0006] This invention provides an intelligent temperature-controlled reactor for resin catalyst production, aiming to improve the poor temperature control effect in the prior art.

[0007] Therefore, one objective of this utility model is to provide an intelligent temperature-controlled reactor for the production of resin catalysts, comprising a reactor body, a cover, and a temperature control component.

[0008] The cover is fixedly sleeved on the top of the reactor body and is detachably connected to the reactor body;

[0009] The reactor body has an internal insulation cavity, and a temperature control cylinder is installed inside the insulation cavity; the temperature control component is fixed to the side of the reactor body, and the temperature control component penetrates the reactor body and extends into the temperature control cylinder; a stirring component is installed inside the temperature control cylinder.

[0010] Furthermore, the temperature control assembly includes a heating chamber, a cooling chamber, and a suction pump;

[0011] The heating box and cooling box are symmetrically arranged on the outside of the main body of the reactor. The suction pump is fixed at the bottom of the heat preservation cavity and is located between the heat preservation cavity and the temperature control cylinder.

[0012] The suction end of the suction pump is fixedly provided with a No. 1 connecting pipe, the two ends of which pass through the interior of the heating box and the cooling box respectively; the liquid outlet end of the suction pump is fixedly provided with a No. 2 connecting pipe, the two ends of which pass through the interior of the heating box and the cooling box respectively.

[0013] The top of the first connecting pipe is also provided with an annular pipe fitting, and the annular pipe fitting is fixed around the outside of the temperature control cylinder; the other end of the annular pipe fitting is fixedly connected to a guide pipe, and the other end of the guide pipe passes through the second connecting pipe.

[0014] Furthermore, the heating chamber contains liquid water, and the cooling chamber contains coolant; the heating chamber contains multiple electric heating tubes, and the cooling chamber has heat dissipation fins fixedly installed on one side.

[0015] The outer surfaces of both the heating chamber and the cooling chamber are provided with scale lines, and the tops of both the heating chamber and the cooling chamber are fitted with plugs.

[0016] Furthermore, the stirring assembly includes a main gear and a secondary gear;

[0017] The main gear meshes with the secondary gear on one side, and a drive motor is fixedly installed on the top of the main gear; a transmission rod is fixedly installed at the center of the secondary gear; the transmission rod passes through the temperature control cylinder, and the bottom of the transmission rod is rotatably connected to the temperature control cylinder.

[0018] A movable ring is fitted on the outer side of one end of the transmission rod that extends into the temperature control cylinder, and a matching thread is provided between the movable ring and the transmission rod.

[0019] A scraping ring is provided on the outer side of the moving ring, and a sliding groove is provided through the inner side of the scraping ring. Several sliding rods are sleeved in the sliding groove. One end of the sliding rod is movably connected to the sliding groove, and the other end of the sliding rod is connected to the moving ring. A stirring blade is fixedly provided on the side of each sliding rod.

[0020] Furthermore, the guide tube is located inside the transmission rod, and the top of the guide tube passes through the top of the transmission rod and is fixedly connected to one end of the annular tube.

[0021] Solenoid valves are installed between the No. 1 connecting pipe and the heating box and the cooling box;

[0022] Solenoid valves are installed between the No. 2 connecting pipe and the heating box and cooling box.

[0023] Furthermore, a cleaning pipe is provided at the upper end of the inner wall of the temperature control cylinder, and the cleaning pipe passes through the temperature control cylinder and is connected to the annular pipe fitting;

[0024] An electromagnetic valve is provided between the cleaning tube and the inner wall of the temperature control cylinder.

[0025] Furthermore, a support rod is fixedly installed at the bottom of the temperature control cylinder, and the bottom of the support rod is fixedly connected to the insulation cavity;

[0026] A temperature sensor is installed through the top of the temperature control cylinder.

[0027] Furthermore, the top of the cover is provided with a feed inlet, and the bottom of the feed inlet extends into the interior of the temperature control cylinder.

[0028] Furthermore, a controller panel is fixedly installed on the front side of the reactor body, a power socket is installed on the rear side of the reactor body, and a discharge port is installed below the controller panel, extending through the interior of the temperature control cylinder.

[0029] The beneficial effects of this utility model are as follows:

[0030] In summary, due to the adoption of the above technical solution, the beneficial effects of this application are as follows:

[0031] 1. In this utility model, precise control of the internal temperature of the reactor is achieved by setting up a temperature control component. It mainly utilizes a temperature sensor to monitor the temperature inside the temperature control cylinder in real time, and uses a suction pump to draw hot water from the heating tank or coolant from the cooling tank into the annular pipe and guide pipe. The liquid is then circulated through connecting pipes one and two, achieving dual regulation of the internal and external temperatures of the temperature control cylinder. Through the synergistic effect of the heating and cooling systems, the internal temperature of the temperature control cylinder can be precisely controlled, ensuring a constant temperature during the resin catalyst production process and improving production quality.

[0032] 2. In this invention, by setting up a stirring assembly, uniform stirring of materials during the resin catalyst production process is achieved, thereby improving reaction efficiency. It mainly utilizes the meshing transmission of the main gear and the auxiliary gear, causing the transmission rod to drive the moving ring to rotate. During rotation, the scraping ring moves up and down along the transmission rod to scrape off the material adhering to the inner wall of the temperature control cylinder, preventing material residue. Simultaneously, the sliding rod is movably connected to the chute, and the stirring blade rotates with the sliding rod within the chute, stirring the material and further enhancing the stirring effect. Combined with the liquid flow within the guide pipe, this makes the stirring and mixing process even faster and more efficient. Attached Figure Description

[0033] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.

[0034] Figure 1 A three-dimensional view of the overall structure of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model;

[0035] Figure 2 An internal cross-sectional view of the overall structure of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model.

[0036] Figure 3 A diagram showing the connection structure of the suction pump, connecting pipe No. 1, and connecting pipe No. 2 of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model.

[0037] Figure 4 A perspective view of the connection structure between the transmission rod and the scraping ring of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model;

[0038] Figure 5 A top sectional view of the connection structure between the transmission rod and the scraping ring of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model.

[0039] Figure 6 This is an enlarged view of point A of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model.

[0040] Legend:

[0041] The following is a list of structures represented by each number in the attached diagram: 1-Reaction vessel body, 2-Lid, 3-Insulation cavity, 4-Temperature control cylinder, 5-Temperature control component, 6-Stirring component, 7-Cleaning tube, 8-Temperature sensor, 9-Feed inlet;

[0042] 501-Heating box, 502-Cooling box, 503-Electric heating tube, 504-Heat dissipation fins, 505-Suction pump, 506-Connecting pipe No. 1, 507-Connecting pipe No. 2, 508-Annular fitting, 509-Guide pipe;

[0043] 601-Main gear, 602-Secondary gear, 603-Drive motor, 604-Transmission rod, 605-Moving ring, 606-Scraping ring, 607-Slide groove, 608-Sliding rod, 609-Stirring blade. Detailed Implementation

[0044] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0045] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0046] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0047] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0048] Example

[0049] A smart temperature-controlled reactor for resin catalyst production includes a reactor body 1, a cover 2, and a temperature control component 5.

[0050] The cover 2 is fixedly sleeved on the top of the reactor body 1 and is detachably connected to the reactor body 1.

[0051] The reactor body 1 has an insulation cavity 3 inside, and a temperature control cylinder 4 is installed inside the insulation cavity 3; the temperature control component 5 is fixed on the side of the reactor body 1, and the temperature control component 5 penetrates the reactor body 1 and extends into the temperature control cylinder 4; a stirring component 6 is installed inside the temperature control cylinder 4.

[0052] In some embodiments, the temperature control component 5 includes a heating chamber 501, a cooling chamber 502, and a suction pump 505;

[0053] Heating box 501 and cooling box 502 are symmetrically arranged on the outside of the reactor body 1. Suction pump 505 is fixed at the bottom of insulation cavity 3 and the suction pump position 505 is between insulation cavity 3 and temperature control cylinder 4.

[0054] The suction end of the suction pump 505 is fixedly provided with a first connecting pipe 506, and the two ends of the first connecting pipe 506 pass through the interior of the heating box 501 and the cooling box 502 respectively; the liquid outlet end of the suction pump 505 is fixedly provided with a second connecting pipe 507, and the two ends of the second connecting pipe 507 pass through the interior of the heating box 501 and the cooling box 502 respectively.

[0055] The top of the first connecting pipe 506 is also provided with an annular fitting 508, and the annular fitting 508 is fixed around the outside of the temperature control cylinder 4; the other end of the annular fitting 508 is fixedly connected to a guide pipe 509, and the other end of the guide pipe 509 passes through the second connecting pipe 507.

[0056] In other embodiments, the heating box 501 is filled with liquid water, and the cooling box 502 is filled with coolant; the heating box 501 is filled with multiple electric heating tubes 503, and the cooling box 502 is fixedly provided with heat dissipation fins 504 on one side.

[0057] Both the heating chamber 501 and the cooling chamber 502 have scale lines on their outer surfaces, and both the heating chamber 501 and the cooling chamber 502 have plugs on their tops.

[0058] In the above embodiment, by setting up the heat insulation cavity 3, the temperature control cylinder 4 can effectively reduce heat loss during temperature adjustment, improve the internal temperature stability of the temperature control cylinder 4, and further enhance the temperature control effect of the temperature control component 5. By setting up the temperature control component 5, the internal temperature of the reactor body 1 can be precisely controlled. When the temperature sensor 8 detects that the internal temperature of the temperature control cylinder 4 is lower than the preset value, the controller panel will start the electric heating tube 503 to heat the liquid water in the heating box 501. At the same time, the suction pump 505 draws the heated hot water into the annular pipe 508 through the first connecting pipe 506. The hot water flows in the annular pipe 508 and heats the temperature control cylinder 4. The heated water then flows back to the second connecting pipe 507 through the guide pipe 509 and flows back to the heating box 501 through the second connecting pipe 507, forming a circulating heating system to heat the temperature control cylinder 4. Conversely, when the temperature sensor 8 detects that the temperature inside the temperature control cylinder 4 is higher than the preset value, the controller panel will activate the suction pump 505 to draw coolant from the cooling tank 502 into the annular pipe 508 through the first connecting pipe 506. The coolant flows within the annular pipe 508 and cools the temperature control cylinder 4. The cooled liquid then flows back to the second connecting pipe 507 through the guide pipe 509, and then back to the cooling tank 502 through the second connecting pipe 507, forming a circulating cooling system to cool the temperature control cylinder 4. Through the synergistic effect of the heating and cooling systems, the temperature inside the temperature control cylinder 4 can be precisely controlled, ensuring a constant temperature during the resin catalyst production process and improving production quality. By setting heat dissipation fins 504, the heat dissipation area of ​​the cooling tank 502 can be increased, improving cooling efficiency and enabling the coolant in the cooling tank 502 to cool down quickly, further enhancing the temperature control effect of the temperature control component 5. Meanwhile, scale lines are provided on the front of both the heating box 501 and the cooling box 502, allowing for a direct observation of the remaining amount of hot water in the heating box 501 and coolant in the cooling box 502, facilitating timely replenishment and ensuring continuous temperature regulation.

[0059] In some embodiments, the stirring assembly 6 includes a main gear 601 and a secondary gear 602;

[0060] One side of the main gear 601 meshes with the secondary gear 602, and a drive motor 603 is fixedly installed on the top of the main gear 601; a transmission rod 604 is fixedly installed at the center of the secondary gear 602; the transmission rod 604 passes through the temperature control cylinder 4, and the bottom of the transmission rod 604 is rotatably connected to the temperature control cylinder 4.

[0061] A moving ring 605 is fitted on the outer side of one end of the transmission rod 604 that extends into the temperature control cylinder 4, and a matching thread is provided between the moving ring 605 and the transmission rod 604.

[0062] A scraping ring 606 is provided on the outer side of the moving ring 605. A sliding groove 607 is provided through the inner side of the scraping ring 606. Several sliding rods 608 are sleeved inside the sliding groove 607. One end of the sliding rod 608 is movably connected to the sliding groove 607, and the other end is fixedly connected to the moving ring 605. A stirring blade 609 is fixedly provided on the side of each sliding rod 608.

[0063] In the above embodiment, by setting the stirring assembly 6, more efficient stirring and mixing of materials in the resin catalyst production process is achieved. Driven by the drive motor 603, the meshing transmission of the main gear 601 and the secondary gear 602 causes the transmission rod 604 to start rotating. Since the moving ring 605 and the transmission rod 604 are provided with matching threads, when the transmission rod 604 rotates, the moving ring 605 will move up and down along the transmission rod 604. This movement not only allows the scraping ring 606 to move along the axial direction of the transmission rod 604 to scrape the material attached to the inner wall of the temperature control cylinder 4 to avoid material residue, but also drives the rotation of the sliding rod 608 and the stirring blade 609. The movable connection between the sliding rod 608 and the chute 607 ensures that the stirring blade 609 can rotate and swing freely during rotation, thereby more thoroughly stirring and mixing the materials.

[0064] In other embodiments, the guide tube 509 is located inside the transmission rod 604, and the top of the guide tube 509 passes through the top of the transmission rod 604 and is fixedly connected to one end of the annular tube 508.

[0065] Solenoid valves are installed between the No. 1 connecting pipe 506 and the heating box 501 and the cooling box 502;

[0066] Solenoid valves are installed between the second connecting pipe 507 and the heating box 501 and the cooling box 502.

[0067] In the above embodiments, by setting up solenoid valves, precise control of the liquids in the heating box 501 and the cooling box 502 is achieved.

[0068] In some embodiments, a cleaning pipe 7 is provided at the upper end of the inner wall of the temperature control cylinder 4. The cleaning pipe 7 passes through the temperature control cylinder 4 and is connected to the annular pipe 508.

[0069] A solenoid valve is installed between the cleaning tube 7 and the inner wall of the temperature control cylinder 4.

[0070] In the above embodiment, by setting up a cleaning pipe 7, it is convenient to clean the inside of the annular pipe 508 and the guide pipe 509, so as to avoid the generation of impurities inside the annular pipe 508 and the guide pipe 509 after long-term use, which would affect the normal circulation of the liquid. The solenoid valve is used to control the opening or closing of the cleaning pipe 7.

[0071] In some embodiments, a support rod is fixedly provided below the bottom of the temperature control cylinder 4, and the bottom of the support rod is fixedly connected to the heat preservation cavity 3;

[0072] A temperature sensor 8 is installed through the top of the temperature control cylinder 4.

[0073] In the above embodiment, by setting a temperature sensor 8, the temperature change inside the temperature control cylinder 4 can be monitored in real time and the signal can be transmitted to the controller panel, so that the staff can understand the temperature status inside the reactor in a timely manner. By setting a support rod, the stability of the temperature control cylinder 4 inside the insulation cavity 3 is improved, ensuring that the temperature control cylinder 4 will not shake or shift during operation, and further ensuring the accuracy and stability of temperature control.

[0074] In some embodiments, the top of the cover 2 is provided with a feed inlet 9, and the bottom of the feed inlet 9 extends into the interior of the temperature control cylinder 4.

[0075] In the above embodiments, the feed inlet 9 facilitates the injection of the resin catalyst raw material into the temperature control cylinder 4 for reaction. The feed inlet 9 is also reasonably sized to ensure smooth material flow while effectively preventing gas or liquid overflow during the reaction process, thus improving the safety and ease of operation of the reactor body 1. A sealing device, such as a sealing ring or gasket, is provided between the cover 2 and the reactor body 1 to ensure the airtightness and safety of the reactor under high pressure or high temperature conditions.

[0076] In some embodiments, a controller panel is fixedly provided on the front side of the reactor body 1, a power socket is provided on the rear side of the reactor body 1, and a discharge port is provided below the controller panel and extends through the temperature control cylinder 4.

[0077] In the above embodiments, the controller panel allows users to easily input and adjust the reactor's operating parameters, such as temperature setting and stirring speed. A power socket connects to an external power source, providing power to the entire device. The discharge port design facilitates the discharge of the product from the temperature-controlled cylinder after the reaction is complete.

[0078] The implementation principle of the intelligent temperature-controlled reactor for resin catalyst production provided by this utility model is as follows:

[0079] In use, the material is poured into the temperature control cylinder 4 through the feed inlet 9. The controller panel is activated, and the temperature sensor 8 monitors the temperature inside the temperature control cylinder 4 in real time and transmits the signal to the controller panel. When the temperature is lower than the set value, the controller panel controls the electric heating tube 503 to start heating. The liquid water in the heating box 501 is heated, and the second solenoid valve connected to the heating box 501 via the first connecting pipe 506 and the second connecting pipe 507 is opened. At this time, the suction pump 505 starts working, drawing the hot water in the heating box 501 through the first connecting pipe 506 into the annular fitting 508. The hot water flows along the annular fitting 508 to the guide pipe 509 and then flows back into the heating box 501 through the second connecting pipe 507, forming a hot water circulation to heat the temperature control cylinder 4. When the temperature exceeds the set value, the controller panel activates the cooling pump, drawing coolant from the cooling tank 502 and circulating it through connecting pipes 506 and 507 to cool the temperature control cylinder 4. Simultaneously, the heat carried by the circulating coolant is quickly dissipated into the air by the heat dissipation fins 504, further improving the cooling effect and ensuring rapid and stable temperature regulation within the reactor body 1. Meanwhile, the main gear 601 rotates under the drive of the drive motor 603, meshing with the secondary gear 602. This causes the transmission rod 604 to rotate the moving ring 605, which in turn drives the scraping ring 606 to move up and down along the transmission rod 604 during rotation, scraping away material adhering to the inner wall of the temperature control cylinder 4 to prevent residue. Simultaneously, the sliding rod 608 moves up and down with the moving ring 605, rotating within the chute 607 and stirring the material, further enhancing the stirring effect and resulting in more uniform mixing and higher reaction efficiency during the resin catalyst production process.

[0080] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.

[0081] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.

Claims

1. A smart temperature-controlled reactor for resin catalyst production, characterized in that, Including the reactor body, lid, and temperature control components; The cover is fixedly sleeved on the top of the reactor body and is detachably connected to the reactor body; The reactor body has an internal insulation cavity, and a temperature control cylinder is installed inside the insulation cavity; the temperature control component is fixed to the side of the reactor body, and the temperature control component penetrates the reactor body and extends into the temperature control cylinder; a stirring component is installed inside the temperature control cylinder.

2. The intelligent temperature-controlled reactor for resin catalyst production according to claim 1, characterized in that, The temperature control assembly includes a heating chamber, a cooling chamber, and a suction pump; The heating box and cooling box are symmetrically arranged on the outside of the main body of the reactor. The suction pump is fixed at the bottom of the heat preservation cavity and is located between the heat preservation cavity and the temperature control cylinder. The suction end of the suction pump is fixedly provided with a No. 1 connecting pipe, the two ends of which pass through the interior of the heating box and the cooling box respectively; the liquid outlet end of the suction pump is fixedly provided with a No. 2 connecting pipe, the two ends of which pass through the interior of the heating box and the cooling box respectively. The top of the first connecting pipe is also provided with an annular pipe fitting, and the annular pipe fitting is fixed around the outside of the temperature control cylinder; the other end of the annular pipe fitting is fixedly connected to a guide pipe, and the other end of the guide pipe passes through the second connecting pipe.

3. The intelligent temperature-controlled reactor for resin catalyst production according to claim 2, characterized in that, The heating chamber contains liquid water, and the cooling chamber contains coolant; the heating chamber contains multiple electric heating tubes, and the cooling chamber has heat dissipation fins fixedly installed on one side. The outer surfaces of both the heating chamber and the cooling chamber are provided with scale lines, and the tops of both the heating chamber and the cooling chamber are fitted with plugs.

4. The intelligent temperature-controlled reactor for resin catalyst production according to claim 2, characterized in that, The stirring assembly includes a main gear and a secondary gear; The main gear meshes with the secondary gear on one side, and a drive motor is fixedly mounted on the top of the main gear; a transmission rod is fixedly mounted at the center of the secondary gear; the transmission rod extends through the temperature control cylinder, and the bottom of the transmission rod is rotatably connected to the temperature control cylinder. A movable ring is fitted on the outer side of one end of the transmission rod that extends into the temperature control cylinder, and a matching thread is provided between the movable ring and the transmission rod. A scraping ring is provided on the outer side of the moving ring, and a sliding groove is provided through the inner side of the scraping ring. Several sliding rods are sleeved in the sliding groove. One end of the sliding rod is movably connected to the sliding groove, and the other end of the sliding rod is connected to the moving ring. A stirring blade is fixedly provided on the side of each sliding rod.

5. The intelligent temperature-controlled reactor for resin catalyst production according to claim 4, characterized in that, The guide tube is located inside the transmission rod, and the top of the guide tube passes through the top of the transmission rod and is fixedly connected to one end of the annular tube. Solenoid valves are installed between the No. 1 connecting pipe and the heating box and the cooling box; Solenoid valves are installed between the No. 2 connecting pipe and the heating box and cooling box.

6. The intelligent temperature-controlled reactor for resin catalyst production according to claim 2, characterized in that, The upper end of the inner wall of the temperature control cylinder is provided with a cleaning pipe, which passes through the temperature control cylinder and is connected to the annular pipe. An electromagnetic valve is provided between the cleaning tube and the inner wall of the temperature control cylinder.

7. The intelligent temperature-controlled reactor for resin catalyst production according to claim 1, characterized in that, A support rod is fixedly installed at the bottom of the temperature control cylinder, and the bottom of the support rod is fixedly connected to the insulation cavity. A temperature sensor is installed through the top of the temperature control cylinder.

8. The intelligent temperature-controlled reactor for resin catalyst production according to claim 1, characterized in that, The top of the cover is provided with a feed inlet, and the bottom of the feed inlet extends into the interior of the temperature control cylinder.

9. The intelligent temperature-controlled reactor for resin catalyst production according to claim 1, characterized in that, A controller panel is fixedly installed on the front side of the reactor body, a power socket is installed on the rear side of the reactor body, and a discharge port is installed below the controller panel, extending into the interior of the temperature control cylinder.

Citation Information

Patent Citations

  • Device that preparation phenylpropyl alcohol was glued

    CN205886878U