Reaction kettle with temperature monitoring function

By introducing temperature monitoring and stirring components into the reactor, the problem of uneven reaction caused by the lack of temperature monitoring in existing reactors was solved, thus improving product quality.

CN223615872UActive Publication Date: 2025-12-02XIAMEN FANGYANG BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422564475.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-23
Publication Date
2025-12-02
Estimated Expiration
2034-10-23

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Abstract

The utility model relates to the field of reaction kettles, in particular to a reaction kettle with a temperature monitoring function. According to the technical scheme, a stirring assembly for stirring and sensing is arranged in a reaction kettle body; the stirring assembly comprises a rotating motor; the lower end of the rotating motor is rotationally connected with a rotating rod through a coupler. A thread is arranged on the rotating rod; a connecting ring is arranged at the upper end part of the thread; a connecting rod is arranged outside the connecting ring; a connecting scraping plate is arranged at the lower end part of the connecting rod; and the eight connecting scrapers are arranged in one-to-one correspondence with the connecting rods. The displacement and supporting structure is arranged to facilitate supporting and displacement work, then the discharging structure is arranged at the upper end to facilitate separate discharging work, the reaction main body structure is arranged at the lower end to conduct heating and reaction work, meanwhile, the temperature display is arranged at the front end, and finally, the stirring assembly is arranged in the reaction device. The device is used for power stirring and guiding temperature measurement.
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Description

Technical Field

[0001] This utility model relates to the field of reaction vessels, and in particular to a reaction vessel with temperature monitoring. Background Technology

[0002] A reaction vessel is a piece of equipment used for chemical reactions, physicochemical processes, and laboratory research. It is typically made of steel plates of a certain thickness, possessing high corrosion resistance and the ability to withstand high temperatures and pressures. It is widely used in pharmaceuticals, chemicals, food processing, and other fields to meet the needs of various processes.

[0003] In existing reactors, due to the lack of temperature monitoring structures, the reaction process largely relies on work experience. However, reacting based on experience may lead to over- or under-reaction, resulting in a decline in product quality.

[0004] Therefore, to address the existing lack of temperature monitoring structures that leads to product quality issues, a reaction vessel equipped with temperature monitoring can be designed to solve these problems. Utility Model Content

[0005] To overcome the shortcomings of existing reactors, which lack temperature monitoring structures and rely heavily on work experience during reaction, which may lead to over- or under-reaction and thus reduce product quality.

[0006] The technical solution of this utility model is as follows: a reaction vessel with temperature monitoring, comprising a reaction vessel body and a stirring assembly; the stirring assembly is a power device for stirring. The reaction vessel body is internally equipped with a stirring assembly for stirring and sensing; the stirring assembly includes a rotary motor; the lower end of the rotary motor is rotatably connected to a rotating rod via a coupling; the rotating rod is threaded; the upper end of the thread is provided with a connecting ring; a connecting rod is provided outside the connecting ring; a connecting scraper is provided at the lower end of the connecting rod; eight connecting scrapers are provided, and each scraper corresponds one-to-one with a connecting rod.

[0007] Preferably, a main support structure is provided to facilitate support and displacement operations; a feeding structure is provided for feeding operations; a main reaction structure is provided for reaction and temperature display; and a stirring assembly is provided for dynamic stirring and temperature measurement operations.

[0008] Preferably, the connecting ring is provided with a groove; a movable block is slidably connected to the groove; and a guide post is provided at the lower end of the movable block. When the rotating motor is started, it drives the rotating rod to rotate, thereby connecting the connecting ring to the connecting rod, causing the connecting scraper to rotate and perform scraping and stirring work.

[0009] Preferably, a movable slider is slidably connected to the guide post; a threaded ring is provided at the front end of the movable slider; the threaded ring and the thread are configured for clearance fit; a temperature sensor is provided at the front end of the threaded ring.

[0010] Preferably, a discharge port is provided at the lower end of the reactor body; a heating pipe is provided on the reactor body. The reactor body provides the reaction site, the heating pipe heats the inside of the reactor body, and the discharge port is used for discharging the reacted material after the reaction is complete.

[0011] Preferably, a fixing ring is provided on the outside of the reactor body; a support frame is provided around the lower end of the fixing ring; rollers are provided at the lower end of the support frame; four rollers and four support frames are provided, and they are arranged in a one-to-one correspondence. The fixing ring fixes the reactor body, the support frame provides support, and the rollers facilitate displacement.

[0012] Preferably, the upper end of the fixing ring is provided with a column ring frame; a feeding chamber is provided on the column ring frame; a valve is provided on the feeding chamber; the column ring frame, feeding chamber and valve are set as a group, and a total of four groups are provided. The column ring frame fixes and supports the feeding chamber, and the valve controls the feeding operation of the feeding chamber.

[0013] Preferably, a fixing post is provided at the front end of the fixing ring; a temperature monitoring instrument is provided at the front end of the fixing post. The fixing post supports the temperature monitoring instrument, which displays the temperature.

[0014] The beneficial effects of this utility model are:

[0015] 1. By setting up displacement and support structures, support and displacement operations are facilitated. A feeding structure is then installed at the top for separate feeding, and the main reaction structure is located at the bottom for heating and reaction. A temperature display is installed at the front, and finally, a stirring assembly is installed inside for dynamic stirring and guided temperature measurement. This overcomes the shortcomings of existing reactors, which lack temperature monitoring structures and rely heavily on experience during reaction, potentially leading to over- or under-reaction and consequently lower product quality.

[0016] 2. The main structure facilitates the main reaction process. The reactor body provides the reaction site, heating pipes heat the interior of the reactor body, and the discharge port allows for the complete discharge of the reacted material. A fixing ring secures the reactor body, a support frame provides support, and rollers facilitate movement. A column ring frame supports the material discharge chamber, and valves control the material discharge. A fixed column supports a temperature monitoring instrument for temperature display. The stirring assembly then performs stirring. A rotating motor starts, driving a rotating rod, which connects the connecting ring to the connecting rod, causing the connecting scraper to rotate and stir. Simultaneously, a threaded ring moves along the thread, a temperature sensor detects temperatures at different heights, a sliding block slides on a guide column for guidance, and a moving block slides on a groove for rotational guidance, thus completing the temperature monitoring of the reactor. Attached Figure Description

[0017] Figure 1 The diagram shown is a three-dimensional structural schematic of the reaction vessel with temperature monitoring according to this utility model.

[0018] Figure 2 The diagram shown is a schematic of the reaction vessel roller with temperature monitoring according to this utility model;

[0019] Figure 3 The diagram shown is a schematic of the reactor body with temperature monitoring according to this utility model.

[0020] Figure 4 The diagram shown is a schematic of the thread of the reaction vessel with temperature monitoring according to this utility model.

[0021] Explanation of reference numerals in the attached drawings: 1. Roller; 2. Support frame; 3. Fixing ring; 4. Column ring frame; 5. Feeding chamber; 6. Valve; 7. Fixing column; 8. Temperature monitor; 9. Reactor body; 10. Discharge port; 11. Heating tube; 1201. Rotating motor; 1202. Rotating rod; 1203. Thread; 1204. Connecting ring; 1205. Connecting rod; 1206. Connecting scraper; 1207. Slide groove; 1208. Moving block; 1209. Guide column; 1210. Moving slider; 1211. Threaded ring; 1212. Temperature sensor. Detailed Implementation

[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0023] Please see Figures 1-4This utility model provides an embodiment: a reaction vessel with temperature monitoring, including a reaction vessel body 9 and a stirring assembly; a discharge port 10 is provided at the lower end of the reaction vessel body 9; a heating tube 11 is provided on the reaction vessel body 9. A fixing ring 3 is provided on the outside of the reaction vessel body 9; a support frame 2 is provided around the lower end of the fixing ring 3; a roller 1 is provided at the lower end of the support frame 2; four rollers 1 and four support frames 2 are provided, and they are arranged in a one-to-one correspondence. A column ring frame 4 is provided around the upper end of the fixing ring 3; a discharge chamber 5 is provided on the column ring frame 4; a valve 6 is provided on the discharge chamber 5; the column ring frame 4, the discharge chamber 5 and the valve 6 are set as a group, and a total of four groups are provided. A fixing column 7 is provided at the front end of the fixing ring 3; a temperature monitoring instrument 8 is provided at the front end of the fixing column 7. The reaction vessel body 9 provides a reaction site, the heating tube 11 heats the inside of the reaction vessel body 9, and the discharge port 10 is used for the discharge of the fully reacted material. The fixed ring 3 secures the reactor body 9, which is supported by the support frame 2. Rollers 1 facilitate displacement. The column ring frame 4 securely supports the feeding chamber 5, and the valve 6 controls the feeding operation of the feeding chamber 5. The fixed column 7 supports the temperature monitoring instrument 8, which displays the temperature.

[0024] Please see Figure 4 This utility model provides an embodiment: A stirring assembly for stirring and sensing is provided inside the reaction vessel body 9; the stirring assembly includes a rotary motor 1201; the lower end of the rotary motor 1201 is rotatably connected to a rotating rod 1202 via a coupling; the rotating rod 1202 is provided with a thread 1203; the upper end of the thread 1203 is provided with a connecting ring 1204; a connecting rod 1205 is provided outside the connecting ring 1204; a connecting scraper 1206 is provided at the lower end of the connecting rod 1205; eight connecting scrapers 1206 are provided, each corresponding one-to-one with a connecting rod 1205. A sliding groove 1207 is provided on the connecting ring 1204; a moving block 1208 is slidably connected to the sliding groove 1207; a guide post 1209 is provided at the lower end of the moving block 1208. A movable slider 1210 is slidably connected to the guide post 1209; a threaded ring 1211 is provided at the front end of the movable slider 1210; the threaded ring 1211 and the thread 1203 are configured for clearance fit; a temperature sensor 1212 is provided at the front end of the threaded ring 1211. When the rotating motor 1201 starts, it drives the rotating rod 1202 to rotate, thereby connecting the connecting ring 1204 to the connecting rod 1205, causing the connecting scraper 1206 to rotate and perform scraping and stirring work. Simultaneously, the threaded ring 1211 moves along the thread 1203, the temperature sensor 1212 can detect the temperature at different heights, the movable slider 1210 slides on the guide post 1209 for guiding work, and the movable block 1208 slides on the groove 1207 for rotational guiding work.

[0025] During operation, the reactor body 9 provides the reaction site, the heating pipe 11 heats the interior of the reactor body 9, and the discharge port 10 discharges the fully reacted product. The fixing ring 3 secures the reactor body 9, the support frame 2 provides support, and the rollers 1 facilitate displacement. The column ring frame 4 provides fixed support for the discharge chamber 5, and the valve 6 controls the discharge from the discharge chamber 5. The fixing column 7 supports the temperature monitoring instrument 8, which displays the temperature. The rotating motor 1201 starts, driving the rotating rod 1202 to rotate, thereby connecting the connecting ring 1204 to the connecting rod 1205, causing the connecting scraper 1206 to rotate and scrape and stir. Simultaneously, the threaded ring 1211 moves along the thread 1203, the temperature sensor 1212 detects the temperature at different heights, the movable slider 1210 slides on the guide column 1209 for guidance, and the movable block 1208 slides on the slide groove 1207 for rotational guidance, completing all operations.

[0026] Through the above steps, by setting up displacement and support structures, it is easy to carry out support and displacement work. The fixing ring 3 fixes the reactor body 9, the support frame 2 provides support, and the roller 1 facilitates displacement work. Then, a feeding structure is set at its upper end to facilitate separate feeding work. The column ring frame 4 fixes and supports the feeding chamber 5, and the valve 6 controls the feeding work of the feeding chamber 5. The reaction body structure is set at its lower end for heating and reaction work. The reactor body 9 provides the reaction site, the heating pipe 11 heats the inside of the reactor body 9, and the discharge port 10 discharges the fully reacted material. At the same time, a temperature display is set at its front end. The fixing column 7 supports the temperature monitoring instrument 8, which displays the temperature. Finally, a stirring assembly is set inside for dynamic stirring and guiding temperature measurement. The rotating motor 1201 starts, driving the rotating rod 1202 to rotate, thereby connecting the connecting ring 1204 to the connecting rod 1205, so that the connecting scraper 1206 rotates to scrape and stir. Simultaneously, the threaded ring 1211 moves along the thread 1203, the temperature sensor 1212 can detect the temperature at different heights, the movable slider 1210 slides on the guide post 1209 for guiding, and the movable block 1208 slides on the groove 1207 for rotational guiding. This overcomes the shortcomings of existing reactors that lack temperature monitoring structures during reaction and rely heavily on work experience, which can lead to over- or under-reaction, resulting in decreased product quality.

[0027] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A reaction vessel with temperature monitoring, comprising a reaction vessel body (9); characterized in that: It also includes a stirring assembly; the reactor body (9) is equipped with a stirring assembly for stirring and sensing; the stirring assembly includes a rotary motor (1201); the lower end of the rotary motor (1201) is rotatably connected to a rotating rod (1202) via a coupling; the rotating rod (1202) is provided with a thread (1203); the upper end of the thread (1203) is provided with a connecting ring (1204); a connecting rod (1205) is provided on the outside of the connecting ring (1204); the connecting rod ( The lower end of the 1205 is provided with a connecting scraper (1206); there are eight connecting scrapers (1206), and they are configured to correspond one-to-one with the connecting rod (1205); a movable slider (1210) is provided on the outside of the rotating rod (1202); a threaded ring (1211) is provided at the front end of the movable slider (1210); the threaded ring (1211) and the thread (1203) are configured to be clearance fit; a temperature sensor (1212) is provided at the front end of the threaded ring (1211).

2. A reaction vessel with temperature monitoring according to claim 1, characterized in that: A sliding groove (1207) is provided on the connecting ring (1204); a moving block (1208) is slidably connected on the sliding groove (1207); a guide post (1209) is provided at the lower end of the moving block (1208).

3. A reaction vessel with temperature monitoring according to claim 2, characterized in that: The guide post (1209) is slidably connected to the movable slider (1210).

4. A reaction vessel with temperature monitoring according to claim 1, characterized in that: The lower end of the reactor body (9) is provided with a discharge port (10); a heating tube (11) is provided on the reactor body (9).

5. A reaction vessel with temperature monitoring according to claim 1, characterized in that: A fixing ring (3) is provided on the outside of the reactor body (9); a support frame (2) is provided around the lower end of the fixing ring (3); a roller (1) is provided at the lower end of the support frame (2); four rollers (1) and four support frames (2) are provided, and they are arranged in a one-to-one correspondence.

6. A reaction vessel with temperature monitoring according to claim 5, characterized in that: The upper end of the fixed ring (3) is provided with a column ring frame (4); the column ring frame (4) is provided with a feeding chamber (5); the feeding chamber (5) is provided with a valve (6); the column ring frame (4), the feeding chamber (5) and the valve (6) are set as a group, and there are a total of four groups.

7. A reaction vessel with temperature monitoring according to claim 5, characterized in that: A fixing post (7) is provided at the front end of the fixing ring (3); a temperature monitoring instrument (8) is provided at the front end of the fixing post (7).