Chemical process refrigerant integration device
By designing the refrigerant integrated device for chemical engineering, using stirring, scraping, diversion and purification structures, the problems of high-temperature oxidation of chemical raw materials and waste of coolant are solved, efficient and rapid cooling and purification are achieved, and the quality and cooling efficiency of chemical raw materials are improved.
Patent Information
- Application Number
- CN202510461545.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-07-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing refrigerant integrated devices in chemical engineering process lack a pre-cooling structure, resulting in excessive temperature of chemical raw materials that are easy to oxidize, and the coolant resources are wasted and impurities are contained, affecting the quality and cooling efficiency of chemical raw materials.
Design a chemical process refrigerant integration device, including a feed funnel, purification box, stirring shaft, scraping mechanism, shunt umbrella, cooling sheet and shunt mechanism, and the stirring, scraping, shunt and purification are driven by motors to achieve pre-cooling, cleaning and efficient cooling, and circulating and purification by cooling liquid.
Improve the cooling efficiency and quality of chemical raw materials, reduce the waste of coolant, achieve efficient and rapid cooling and purification of chemical raw materials, and improve the working efficiency and quality of the device.
Smart Images

Figure CN120385186A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of chemical processing, and particularly to a refrigerant integration device for a chemical process. Background Art
[0002] The refrigerant integration device for a chemical process is also known as a cooling device for chemical processing. There are many types of chemical raw materials with very wide uses. Chemical raw materials generally consist of components such as sulfur, sodium, phosphorus, potassium, and calcium, and can generally be divided into three major categories: food-grade chemical raw materials, industrial-grade chemical raw materials, and medical-grade chemical raw materials, mainly differentiated according to the purity of the chemical raw materials themselves. After the chemical products are processed, the heat on their surfaces is relatively high, and a cooling device needs to be used to cool them down, so as to promote the smooth progress of subsequent processing work;
[0003] 1. A large-scale automated cooling chemical device for producing chemical raw materials in the publication number CN116328960A, which relates to the technical field of cooling chemistry. The present invention includes a device main body. There is a feed inlet at the top of the device main body, and a chute is provided at the top inner wall of the device main body. An observation frame is provided on the front of the device main body. It also includes a cooling device, a dust prevention device, a gas circulation device, and a gathering device. The cooling device is arranged at the bottom inner wall of the device main body, the dust prevention device is arranged above the cooling device, the gas circulation device is arranged outside the dust prevention device, and the gathering device is arranged on both sides of the inner wall of the device main body. The cooling device includes an annular plate and convex spherical blocks. The annular plate is arranged at the center of the bottom inner wall of the device main body, and a number of convex spherical blocks are equidistantly and fixedly installed on the top surface of the annular plate. Through the centrifugal force of rotation, the chemical raw materials inside the sieve barrel can be shaken, and the chemical raw materials can be screened to improve the overall quality of the chemical raw materials. When the above-mentioned prior art is used, mainly through the cooperation of an external motor, a sieve barrel, a collision block, a convex spherical block, an annular plate, and a condensing pipe, the sieve barrel can shake the chemical raw materials inside the sieve barrel through the centrifugal force of rotation during the rotation process, and screen the chemical raw materials. However, the temperature on the surface of the chemical raw materials is relatively high before cooling. If they are directly fed into the inside of the cooling device, due to the large temperature difference between hot and cold, oxidation is likely to occur and the quality of the chemical raw materials is reduced. Therefore, corresponding improvements can be made;
[0004] 2. An efficient cooling device in the processing of chemical products with the publication number CN109900033A, characterized in that it includes a tank body, a condensing water pipe is wound around the outside of the tank body, cooling water flows through the condensing water pipe, the tank body wall is made of high thermal conductivity material, there is a feeding port at the top of the tank body, and a discharging pipe at the bottom. The beneficial effect of the present invention is that through the condensing water pipe outside the tank body, efficient cooling is achieved, time cost is saved, and the quality of the product is improved; when the above-mentioned prior art is used, although the waste of coolant resources is solved to a certain extent, in actual use, if impurities are contained in the coolant, phenomena such as scale will form in the water pipe, which is inconvenient for the staff to clean the water pipe. Therefore, corresponding improvements can be made.
[0005] According to the above, there is an urgent need for a chemical processing cooling device with a pre-cooling structure, efficient and rapid cooling, and a purification function to solve the above-mentioned problems. Summary of the Invention
[0006] The purpose of the present invention is to provide a chemical process refrigerant integration device to solve the problems of lack of pre-cooling, waste of cooling water resources, and impurities in the background technology mentioned above.
[0007] To achieve the above purpose, the present invention provides the following technical solutions: A chemical process refrigerant integration device includes a chemical process refrigerant integration box, a feeding funnel is installed at the top of the chemical process refrigerant integration box, and a purification box is installed on one side of the chemical process refrigerant integration box; a motor is installed at the bottom end inside the chemical process refrigerant integration box, and a first rotating shaft is installed at the output end of the motor. Stirring shafts are installed on both sides of the first rotating shaft, and stirring rods are evenly installed on both sides of the stirring shafts. The stirring shafts are connected to the first rotating shaft through belt pulleys. A third bevel gear is installed on the outer side of the top end of the first rotating shaft. Scraping seats are installed on both sides inside the chemical process refrigerant integration box, and scraping mechanisms are arranged inside the scraping seats. Connecting shafts are installed on one side of the scraping seats close to the third bevel gear, and fourth bevel gears are installed on the outer sides of the connecting shafts. The fourth bevel gears are connected to the third bevel gears.
[0008] Preferably, a diversion umbrella is installed on the outer side of the first rotating shaft at the top of the third bevel gear, and guide plates are evenly installed at the top of the diversion umbrella. Guide grooves are arranged inside the guide plates, and cooling fins are installed inside the guide plates.
[0009] Preferably, the scraping mechanism includes an internal groove, a threaded sleeve and a scraping plate;
[0010] Built-in groove, which is arranged inside the scraping seat. A first reciprocating lead screw and a second reciprocating lead screw are respectively installed inside the built-in groove. Second bevel gears are installed on the outer sides of the tops of the first reciprocating lead screw and the second reciprocating lead screw. First bevel gears are installed on the outer sides of the connecting shaft far away from the fourth bevel gear, and the first bevel gears are all connected to the second bevel gears;
[0011] Thread sleeve, which is installed on the outer sides of the first reciprocating lead screw and the second reciprocating lead screw. It can achieve the effect of reciprocating up and down through the threaded connection relationship with the first reciprocating lead screw and the second reciprocating lead screw;
[0012] Scraper, which is installed on the outer side of the scraping seat and is connected to the thread sleeve, and can scrape off the chemical raw materials adhered to the inner wall.
[0013] Preferably, a diversion pipe is installed at the top of the purification tank, and a water pump is installed on one side of the diversion pipe. One side of the water pump is communicated with the inside of the purification tank through an outlet pipe. The purification tank is communicated with the liquid inlet of the cooling pipe through a through pipe. The top of the water pump is communicated with the liquid outlet of the cooling pipe through an inlet pipe. A partition plate is installed inside the purification tank, and a flow dividing plate is installed on one side of the partition plate. A flow dividing mechanism is arranged on the side of the partition plate far away from the flow dividing plate.
[0014] Preferably, the flow dividing mechanism includes a second rotating shaft and a flow dividing seat;
[0015] Second rotating shaft, which is installed inside the purification tank, and a gear body is installed on the outer side of the second rotating shaft. A motor is installed on one side of the purification tank. A rack is installed inside the purification tank at one end of the second rotating shaft, and the rack is meshed with the gear body. A connecting plate is installed at the top of the rack;
[0016] Flow dividing seat, which is installed on one side of the connecting plate. Through the connection relationship between the rack and the gear body, it can drive the flow dividing seat to do reciprocating motion, so as to divide and diffuse the coolant on the surface of the flow dividing plate.
[0017] Preferably, a sleeve is installed on the outer side of the second rotating shaft on one side of the gear body, and turning plates are evenly installed on the outer side of the sleeve. The turning plates are arranged in a fan shape and are distributed in multiple groups on the outer side of the sleeve, which can accelerate the cooling work of the coolant.
[0018] Preferably, grooves are arranged on both sides inside the chemical process refrigerant integrated box, and cooling pipes are installed inside the grooves. The cooling pipes are coiled inside the grooves, which can expand the cooling range of the coolant.
[0019] Preferably, the cross section of the guide plate is distributed in a wavy shape at the top of the flow dividing umbrella, which can play the role of flow buffering and flow division, and prevent the accumulation of chemical raw materials.
[0020] Preferably, the stirring rod is L-shaped and arranged at equal intervals on both sides of the stirring shaft.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows: By providing a cleaning mechanism, the chemical process refrigerant integration device can enable the stirring assembly to perform cleaning work up and down while stirring, so as to scrape off the raw materials adhered to the inner wall of the chemical process refrigerant integration tank. By providing a flow dividing umbrella, the chemical raw materials can be dispersed and cooled, improving the working efficiency and quality of cooling. And under the interaction of the nozzles at its bottom, the cold air can be dispersed, further enhancing the rapid cooling effect of the chemical process refrigerant integration tank. At the same time, by providing a flow dividing mechanism, it can drive the turning plate to move while cleaning the flow dividing plate, not only playing a role in purifying the coolant but also improving the cooling speed and effect of the coolant.
[0022] 1. During use, by starting the motor to drive the operation of the stirring assembly inside the chemical process refrigerant integration tank, it can be fully integrated with the cold air emitted from the cooling pipes in the inner wall, improving the cooling efficiency. At the same time, when the first rotating shaft rotates, under the dual meshing action of the third bevel gear and the fourth bevel gear, and the first bevel gear and the second bevel gear, it can further drive the scraper to perform cleaning movement up and down, thus realizing the function of cleaning while stirring, improving the working efficiency and working quality of the chemical process refrigerant integration tank. The first rotating shaft further drives the flow dividing umbrella to rotate, and under the mutual cooperation of the guiding plate and the guiding groove, the chemical raw materials can be divided and slowly flowed, preventing a large amount of chemical raw materials from accumulating together, which will not only cause adhesion but also reduce the cooling effect. At the same time, through the cooling fins, the chemical raw materials can also play a pre-cooling effect during the rolling process, preventing the hot temperature from directly entering the inside of the chemical process refrigerant integration tank, which will affect the quality of the chemical raw materials and further affect the smooth progress of subsequent processing work.
[0023] 2. By setting a flow dividing mechanism inside the purification tank, it can disperse the coolant above the flow dividing plate while improving the cooling effect of the coolant. By starting the motor, driving the rotating shaft to rotate, and under the meshing connection, it can drive the flow dividing seat at the top of the rack to perform reciprocating motion, further promoting the diversion of the coolant on the surface of the flow dividing plate. At the same time, the rotating shaft will drive the sleeve and the turning plate outside to rotate, which can accelerate the volatilization of heat in the coolant, and with the cooperation of the cooling components on the inner wall, it can improve the cooling effect of the coolant, so that the cyclic cooling work can proceed smoothly. Description of the Drawings
[0024] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0025] Figure 1 It is a front three-dimensional sectional structure schematic diagram of the present invention;
[0026] Figure 2 It is a three-dimensional structure schematic diagram of the flow dividing umbrella of the present invention;
[0027] Figure 3 It is a front sectional structure schematic diagram of the flow dividing umbrella of the present invention;
[0028] Figure 4 It is a side view structure schematic diagram of the cooling pipe of the present invention;
[0029] Figure 5 It is a three-dimensional structure schematic diagram of the scraper of the present invention;
[0030] Figure 6 It is a three-dimensional structure schematic diagram of the interior of the purification box of the present invention;
[0031] Figure 7 It is a three-dimensional structure schematic diagram of the turning plate of the present invention.
[0032] Explanation of the reference numerals in the drawings: 1. Feed hopper; 2. Chemical process refrigerant integrated box; 3. Flow dividing umbrella; 4. First rotating shaft; 5. Scraping seat; 6. Groove; 7. Cooling pipe; 8. Scraping mechanism; 801. Built-in groove; 802. First reciprocating lead screw; 803. Second reciprocating lead screw; 804. First bevel gear; 805. Second bevel gear; 806. Threaded sleeve; 807. Scraper; 9. Through pipe; 10. Purification box; 11. Water pump; 12. Liquid outlet pipe; 13. First motor; 14. Third bevel gear; 15. Fourth bevel gear; 16. Guide plate; 17. Guide groove; 18. Liquid inlet pipe; 19. Cooling fin; 20. Connecting shaft; 21. Partition plate; 22. Flow dividing plate; 23. Flow dividing mechanism; 2301. Second rotating shaft; 2302. Second motor; 2303. Gear body; 2304. Rack; 2305. Connecting plate; 2306. Flow dividing seat; 24. Sleeve; 25. Turning plate; 26. Stirring shaft; 27. Stirring rod; 28. Pulley; 29. Diversion pipe. Detailed implementation manners
[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0034] Embodiment 1
[0035] Please refer to Figures 1-7 , a chemical process refrigerant integration device provided by the present invention includes a chemical process refrigerant integration box 2. A feed hopper 1 is installed at the top of the chemical process refrigerant integration box 2. A purification box 10 is installed on one side of the chemical process refrigerant integration box 2. A first motor 13 is installed at the bottom end inside the chemical process refrigerant integration box 2, and a first rotating shaft 4 is installed at the output end of the first motor 13. Stirring shafts 26 are installed on both sides of the first rotating shaft 4, and stirring rods 27 are evenly installed on both sides of the stirring shafts 26. The stirring shafts 26 are connected to the first rotating shaft 4 through belt pulleys 28. A third bevel gear 14 is installed on the outer side of the top end of the first rotating shaft 4. Scraping seats 5 are installed on both sides inside the chemical process refrigerant integration box 2, and scraping mechanisms 8 are arranged inside the scraping seats 5. Connecting shafts 20 are installed on one side of the scraping seats 5 close to the third bevel gear 14, and fourth bevel gears 15 are installed on the outer sides of the connecting shafts 20. The fourth bevel gears 15 are connected to the third bevel gear 14. A diversion umbrella 3 is installed on the outer side of the first rotating shaft 4 at the top of the third bevel gear 14, and guide plates 16 are evenly installed at the top of the diversion umbrella 3. Guide grooves 17 are arranged inside the guide plates 16, and cooling fins 19 are installed inside the guide plates 16. Grooves 6 are arranged on both sides inside the chemical process refrigerant integration box 2, and cooling pipes 7 are installed inside the grooves 6. The cooling pipes 7 are coiled inside the grooves 6, which can expand the cooling range of the coolant. The cross-section of the guide plates 16 is distributed in a wavy shape at the top of the diversion umbrella 3, which can play the role of flow retardation and diversion to prevent the accumulation of chemical raw materials. The stirring rods 27 are L-shaped and are arranged at equal intervals on both sides of the stirring shafts 26.
[0036] In this embodiment, during use, the stirring assembly can be driven to stir through the first motor 13 and with the mutual cooperation of the belt pulleys 28. At the same time, the third bevel gear 14 can further drive the diversion umbrella 3 to rotate, pre-cooling and dispersing the falling chemical raw materials to prevent a large amount of chemical raw materials from accumulating together, thereby improving the smoothness of the subsequent cooling work.
[0037] Embodiment 2
[0038] This embodiment further includes: The scraping mechanism 8 includes an internal groove 801, a threaded sleeve 806, and a scraping plate 807. The internal groove 801 is provided inside the scraping seat 5. A first reciprocating lead screw 802 and a second reciprocating lead screw 803 are respectively installed inside the internal groove 801. Second bevel gears 805 are installed on the outer sides of the tops of the first reciprocating lead screw 802 and the second reciprocating lead screw 803. First bevel gears 804 are installed on the outer sides of the stirring shaft 26 away from the fourth bevel gear 15, and the first bevel gears 804 are all connected to the second bevel gears 805. The threaded sleeve 806 is installed on the outer sides of the first reciprocating lead screw 802 and the second reciprocating lead screw 803, and can achieve the effect of reciprocating up and down through the threaded connection relationship with the first reciprocating lead screw 802 and the second reciprocating lead screw 803. The scraping plate 807 is installed on the outer side of the scraping seat 5 and is connected to the threaded sleeve 806, and can scrape off the chemical raw materials adhering to the inner wall.
[0039] In this embodiment, by setting the scraping mechanism 8, during the stirring process of the stirring assembly, the scraping plate 807 can be driven to move up and down to scrape and clean the inner wall of the chemical process refrigerant integrated box 2. All these operations are carried out synchronously, which can effectively improve the working efficiency and working quality of the chemical process refrigerant integrated box 2 and also bring convenience to the staff.
[0040] Embodiment III
[0041] This embodiment further includes: a diversion pipe 29 is installed at the top of the purification tank 10, and a water pump 11 is installed on one side of the diversion pipe 29. One side of the water pump 11 is communicated with the inside of the purification tank 10 through a liquid outlet pipe 12. The purification tank 10 is communicated with the liquid inlet of the cooling pipe 7 through a through pipe 9. The top of the water pump 11 is communicated with the liquid outlet of the cooling pipe 7 through a liquid inlet pipe 18. A partition plate 21 is installed inside the purification tank 10, and a flow dividing plate 22 is installed on one side of the partition plate 21. A flow dividing mechanism 23 is arranged on the side of the partition plate 21 away from the flow dividing plate 22. The flow dividing mechanism 23 includes a second rotating shaft 2301 and a flow dividing seat 2306. The second rotating shaft 2301 is installed inside the purification tank 10, and a gear body 2303 is installed on the outer side of the second rotating shaft 2301. A second motor 2302 is installed on one side of the purification tank 10. A rack 2304 is installed inside the purification tank 10 at one end of the second rotating shaft 2301, and the rack 2304 is meshed with the gear body 2303. A connecting plate 2305 is installed at the top of the rack 2304. The flow dividing seat 2306 is installed on one side of the connecting plate 2305. Through the connection relationship between the rack 2304 and the gear body 2303, the flow dividing seat 2306 can be driven to make a reciprocating motion, so as to divide and diffuse the coolant on the surface of the flow dividing plate 22. A sleeve 24 is installed on the outer side of the second rotating shaft 2301 on one side of the gear body 2303, and turning plates 25 are uniformly installed on the outer side of the sleeve 24. The turning plates 25 are arranged in a fan shape and are distributed in multiple groups on the outer side of the sleeve 24, which can accelerate the cooling of the coolant.
[0042] In this embodiment, by setting the flow dividing mechanism 23, the coolant can be purified while being divided. With the cooperation of the turning plates 25, the volatilization of heat in the coolant can be accelerated, so that not only the function of double recycling of water resources is realized, but also the working efficiency can be improved.
[0043] Working principle: When the present invention is in use, first start the first motor 13 to drive the stirring assembly to start the stirring motion. At the same time, the flow dividing umbrella 3 is also driven to rotate. The guide plate 16 at the top of the flow dividing umbrella 3 is used to slow down and divide the chemical raw materials, so as to prevent a large amount of chemical raw materials from directly entering the internal of the chemical process refrigerant integrated tank 2, reducing the cooling effect and increasing the possibility of adhesion. At the same time, through the mutual cooperation of the flow dividing umbrella 3 and the cooling fins 19, the pre-cooling effect can also be achieved, thereby improving the quality of the chemical raw materials. The chemical raw materials fall from the flow dividing umbrella 3 into the internal of the chemical process refrigerant integrated tank 2. Through the mutual cooperation of the stirring assembly and the cooling pipe 7, deeper cooling of the chemical raw materials can be started. At the same time, by setting the scraping mechanism 8, during the operation of the stirring assembly, under the dual action of the meshing connection and the threaded connection of the first bevel gear 804 and the second bevel gear 805, the stirring assembly can clean the inner wall of the chemical process refrigerant integrated tank 2 up and down while stirring, so as to complete the cleaning of the chemical raw materials;
[0044] Secondly, when the coolant inside the cooling pipe 7 needs to be purified and recycled, the coolant in the cold zone inside the cooling pipe 7 is pumped into the inside of the purification tank 10 by the water pump 11. The shunt plate 22 is used for shunting to make it spread more evenly. Then, the turnover plate 25 is turned over to improve the cooling effect of the coolant. At the same time, by starting the second motor 2302, under the action of meshing connection, the shunt seat 2306 is driven to reciprocate on the shunt plate 22 to prevent the coolant from accumulating and other phenomena, thereby improving work efficiency.
[0045] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection" and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0046] The device embodiments described above are merely illustrative. The units described as separated components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. Those of ordinary skill in the art can understand and implement it without creative work.
[0047] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit them. Although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments or equivalently replace some of the technical features. These modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A chemical process refrigerant integration device, including a chemical process refrigerant integration box (2), a feed hopper (1) is installed at the top of the chemical process refrigerant integration box (2), and a purification box (10) is installed on one side of the chemical process refrigerant integration box (2); It is characterized in that: At the bottom end inside the chemical process refrigerant integration box (2), a first motor (13) is installed, and a first rotating shaft (4) is installed at the output end of the first motor (13). Stirring shafts (26) are installed on both sides of the first rotating shaft (4), and stirring rods (27) are evenly installed on both sides of the stirring shafts (26). The stirring shafts (26) are connected to the first rotating shaft (4) through belt pulleys (28). A third bevel gear (14) is installed on the outer side of the top end of the first rotating shaft (4). Scraping seats (5) are installed on both sides inside the chemical process refrigerant integration box (2), and a scraping mechanism (8) is arranged inside the scraping seats (5). Connecting shafts (20) are installed on one side of the scraping seats (5) close to the third bevel gear (14), and fourth bevel gears (15) are installed on the outer sides of the connecting shafts (20). The fourth bevel gears (15) are connected to the third bevel gear (14).
2. The chemical process refrigerant integration device according to claim 1, wherein: A flow dividing umbrella (3) is installed on the outer side of the first rotating shaft (4) at the top of the third bevel gear (14), and guide plates (16) are evenly installed at the top of the flow dividing umbrella (3). Guide grooves (17) are arranged inside the guide plates (16), and cooling fins (19) are installed inside the guide plates (16).
3. The chemical process refrigerant integration device according to claim 1, wherein: The scraping mechanism (8) includes a built-in groove (801), a threaded sleeve (806) and a scraping plate (807); The built-in groove (801) is arranged inside the scraping seat (5). A first reciprocating lead screw (802) and a second reciprocating lead screw (803) are respectively installed inside the built-in groove (801). Second bevel gears (805) are installed on the outer sides of the top ends of the first reciprocating lead screw (802) and the second reciprocating lead screw (803). First bevel gears (804) are installed on the outer sides of the stirring shafts (26) far from the fourth bevel gears (15), and the first bevel gears (804) are all connected to the second bevel gears (805); The threaded sleeve (806) is installed on the outer sides of the first reciprocating lead screw (802) and the second reciprocating lead screw (803), and can achieve the effect of reciprocating up and down through the threaded connection relationship with the first reciprocating lead screw (802) and the second reciprocating lead screw (803); The scraping plate (807) is installed on the outer side of the scraping seat (5) and is connected to the threaded sleeve (806), and can scrape off the chemical raw materials adhered to the inner wall.
4. A chemical process refrigerant integration device according to claim 1, characterized in that: A diversion pipe (29) is installed at the top of the purification tank (10), and a water pump (11) is installed on one side of the diversion pipe (29). The water pump (11) is connected to the inside of the purification tank (10) through a liquid outlet pipe (12). The purification tank (10) is connected to the liquid inlet of the cooling pipe (7) through a connecting pipe (9). The top of the water pump (11) is connected to the liquid outlet of the cooling pipe (7) through a liquid inlet pipe (18). A partition plate (21) is installed inside the purification tank (10), and a flow splitting plate (22) is installed on one side of the partition plate (21). A flow splitting mechanism (23) is arranged on the side of the partition plate (21) away from the flow splitting plate (22).
5. The chemical process refrigerant integration device according to claim 4, characterized in that: The flow splitting mechanism (23) includes a second rotating shaft (2301) and a flow splitting seat (2306); The second rotating shaft (2301) is installed inside the purification tank (10), and a gear body (2303) is installed on the outer side of the second rotating shaft (2301). A first motor (2302) is installed on one side of the purification tank (10). A rack (2304) is installed inside the purification tank (10) at one end of the second rotating shaft (2301), and the rack (2304) is meshed with the gear body (2303). A connecting plate (2305) is installed at the top of the rack (2304); The flow splitting seat (2306) is installed on one side of the connecting plate (2305). Through the connection relationship between the rack (2304) and the gear body (2303), the flow splitting seat (2306) can be driven to move reciprocally, so as to split and diffuse the coolant on the surface of the flow splitting plate (22).
6. The chemical process refrigerant integration device according to claim 5, wherein: A sleeve (24) is installed on the outer side of the second rotating shaft (2301) on one side of the gear body (2303), and turning plates (25) are evenly installed on the outer side of the sleeve (24). The turning plates (25) are arranged in a fan shape and are distributed in multiple groups on the outer side of the sleeve (24), which can accelerate the cooling of the coolant.
7. A chemical process refrigerant integration device according to claim 1, characterized in that: Grooves (6) are arranged on both sides inside the chemical process refrigerant integrated tank (2), and cooling pipes (7) are installed inside the grooves (6). The cooling pipes (7) are coiled inside the grooves (6), which can expand the cooling range of the coolant.
8. The chemical process refrigerant integration device according to claim 2, characterized in that: The cross section of the guide plate (16) is distributed in a wavy shape at the top of the flow splitting umbrella (3), which can play the role of flow buffering and splitting, and prevent the accumulation of chemical raw materials.
9. The refrigerant integration device for a chemical process according to claim 1, wherein: The stirring rod (27) is L-shaped and is arranged at equal intervals on both sides of the stirring shaft (26).
Citation Information
Patent Citations
Efficient cooling device used for chemical product processing
CN109900033A
Large automatic cooling chemical equipment for producing chemical raw materials
CN116328960A