Condensing equipment for heat loss control forced circulation evaporation

By introducing a cooling mechanism consisting of spiral cooling pipes and semiconductor refrigeration chips into the condensation equipment, as well as a feeding mechanism for conveying materials by an auger, the problem of uneven material cooling is solved, and efficient and uniform cooling is achieved.

CN223969501UActive Publication Date: 2026-03-06HEILONGJIANG CHAOLIN AUTOMATION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing forced circulation crystallization evaporators result in uneven material cooling and low cooling efficiency during the cooling process, and traditional condensation equipment cannot effectively reduce the material temperature.

Method used

The design combines a cooling mechanism and a feeding mechanism. The cooling mechanism circulates and cools the cooling water through spiral cooling pipes and semiconductor cooling chips, while the feeding mechanism conveys the material to the top of the condenser via an auger, thus achieving uniform cooling of the material.

Benefits of technology

It achieves uniform cooling of materials, improves cooling efficiency, and ensures the recycling of cooling water and the temperature uniformity of materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses condensing equipment for heat loss control forced circulation evaporation, which relates to the technical field of condensing equipment and comprises a condensing tank, a cooling mechanism is arranged on one side of the condensing tank and comprises a cooling water tank, a circulating pump is fixedly arranged on the outer side wall of the cooling water tank, and a first guide pipe is fixedly arranged at the side end of the circulating pump. A spiral cooling pipe is arranged on the inner side of the condensation tank, a second guide pipe is fixedly arranged at the top of the cooling water tank, a feeding mechanism is arranged on one side of the condensation tank and comprises a feeding barrel, a conveying pump is arranged on one side of the feeding barrel, a conveying shaft is rotationally arranged on the inner side of the feeding barrel, and an auger is fixedly arranged on the conveying shaft. Materials at the bottom of the condensation tank are pumped out through the discharging pipe through the conveying pump, the materials are conveyed to the top of the feeding barrel and then conveyed into the condensation tank through the feeding pipe, then the materials at the bottom in the condensation tank are conveyed to the top in the condensation tank, the materials covering the bottom in the condensation tank are effectively cooled through circulating feeding, and then the materials are cooled evenly.
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Description

Technical Field

[0001] This utility model relates to the field of condensing equipment technology, and more specifically to a condensing equipment for forced circulation evaporation with heat loss control. Background Technology

[0002] Forced circulation crystallization evaporators typically use a circulating pump to repeatedly circulate the material, and then heat it to evaporate and crystallize it. The evaporator mainly consists of two parts: a heating chamber and an evaporation chamber. The heating chamber provides the heat required for evaporation to the liquid, causing the liquid to boil and vaporize, while the evaporation chamber completely separates the gas and liquid phases.

[0003] Forced circulation crystallization evaporators typically require cooling the material after evaporation to allow the water vapor inside the material to evaporate quickly and obtain solid crystal particles. However, the material inside existing forced circulation crystallization evaporators is at a high temperature before cooling, and traditional condensation equipment cannot effectively cool the material inside, which easily leads to uneven cooling and low cooling efficiency. Utility Model Content

[0004] The purpose of this invention is to provide a condensation device for forced circulation evaporation with heat loss control, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides a condensation device for forced circulation evaporation with heat loss control, comprising a condensation tank, a cooling mechanism on one side of the condensation tank, the cooling mechanism including a cooling water tank, a circulation pump fixedly mounted on the outer wall of the cooling water tank, a first conduit fixedly mounted on the side end of the circulation pump, a spiral cooling pipe mounted on the inner side of the condensation tank, a second conduit fixedly mounted on the top of the cooling water tank, a plurality of semiconductor cooling chips fixedly mounted on the outer wall of the cooling water tank, a feeding mechanism on one side of the condensation tank, the feeding mechanism including a feeding cylinder, a conveying pump mounted on one side of the feeding cylinder, a discharge pipe fixedly mounted on the bottom end of the outer wall of the condensation tank, a feeding pipe fixedly mounted on the side wall of the conveying pump, a conveying shaft rotatably mounted on the inner side of the feeding cylinder, an auger fixedly mounted on the conveying shaft, a motor fixedly mounted on the top of the feeding cylinder, the output end of the motor fixed to the conveying shaft, and an inlet pipe fixedly mounted on the upper end of the outer wall of the feeding cylinder.

[0006] As a further improvement to this technical solution, a feed inlet is provided at the top of the condenser, and a discharge outlet is provided at the bottom of the outer side wall of the condenser.

[0007] As a further improvement to this technical solution, the first conduit penetrates the side wall of the condenser and is connected to the bottom end of the spiral cooling pipe, and the second conduit penetrates the side wall of the condenser and is connected to the top end of the spiral cooling pipe.

[0008] As a further improvement to this technical solution, a controller is fixedly installed on the top of the cooling water tank, and a temperature sensor is fixedly installed inside the cooling water tank. The temperature sensor and multiple semiconductor cooling chips are all electrically connected to the controller.

[0009] As a further improvement to this technical solution, the end of the discharge pipe away from the condenser is fixed to the conveying pump, a solenoid valve is provided on the discharge pipe, and the end of the feeding pipe away from the conveying pump is fixed to the feeding cylinder.

[0010] As a further improvement to this technical solution, the end of the feed pipe away from the feeding cylinder is fixed to the outer wall of the condenser, and the feed pipe is inclined downward from the feeding cylinder side to the condenser side.

[0011] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0012] 1. By setting up a cooling mechanism, the cooling water is then transported to the second conduit through a spiral cooling pipe. The cooling water is then transported to the cooling water tank through the second conduit for recycling. The temperature of the cooling water in the cooling water tank is monitored by a temperature sensor. When the water temperature is high, the controller activates multiple semiconductor cooling chips. The multiple semiconductor cooling chips conduct heat to cool the cooling water in the cooling water tank, thereby ensuring that the cooling water has a good cooling effect on the materials.

[0013] 2. By setting up a feeding mechanism, the material at the bottom of the condenser is drawn out through the discharge pipe by the conveying pump. The material is then conveyed through the discharge pipe to the feeding pipe, and then to the feeding cylinder. The material in the feeding cylinder is conveyed upward by the auger. The material is then conveyed to the top of the feeding cylinder and then to the condenser through the feed pipe. This process conveys the material at the bottom of the condenser to the top of the condenser. Through this circulating feeding, the material covering the bottom of the condenser is effectively cooled, resulting in uniform cooling of the material. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0015] Figure 2 This is a schematic diagram of the cooling mechanism of the utility model;

[0016] Figure 3 This is a schematic diagram of the feeding mechanism of the utility model.

[0017] Figure 4 This is a cross-sectional structural schematic diagram of a utility model condenser.

[0018] The meanings of the labels in the diagram are as follows:

[0019] 1. Condenser; 2. Cooling mechanism; 21. Cooling water tank; 22. Circulating pump; 23. First conduit; 24. Spiral cooling pipe; 25. Second conduit; 26. Semiconductor cooling chip; 27. Controller; 28. Temperature sensor; 3. Feeding mechanism; 31. Feeding cylinder; 32. Conveying pump; 33. Discharge pipe; 34. Feeding pipe; 35. Conveying shaft; 36. Screwdriver; 37. Motor; 38. Feed pipe. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0022] Please see Figures 1-4As shown, this utility model provides a condensing device for forced circulation evaporation with heat loss control, including a condensing tank 1. The top of the condensing tank 1 has a feed inlet, and the bottom of the outer wall of the condensing tank 1 has a discharge outlet. Material from a forced circulation crystallization evaporator is introduced into the condensing tank 1 through the feed inlet. A cooling mechanism 2 is provided on one side of the condensing tank 1. The cooling mechanism 2 includes a cooling water tank 21, which stores cooling water. A circulation pump 22 is fixedly installed on the outer wall of the cooling water tank 21. The inlet of the circulation pump 22 is connected to the inside of the cooling water tank 21. A first conduit 23 is fixedly installed on the side of the circulation pump 22. A spiral cooling pipe 24 is provided inside the condensing tank 1. A second conduit 25 is fixedly installed on the top of the cooling water tank 21. The first conduit 23 penetrates the side wall of the condensing tank 1 and connects to the bottom of the spiral cooling pipe 24. The second conduit 25 penetrates the side wall of the condensing tank 1 and connects to the top of the spiral cooling pipe 24. The material from the forced circulation evaporator is introduced into the condensing tank 1 through the feed inlet. Cooling water is extracted from the cooling water tank 21 and transported to the spiral cooling pipe 24 via the first conduit 23. The cooling water spirals upward within the spiral cooling pipe 24 to cool and lower the material. The cooling water is then transported to the second conduit 25 via the spiral cooling pipe 24 and back to the cooling water tank 21 for recycling. Multiple semiconductor cooling chips 26 are fixedly installed on the outer wall of the cooling water tank 21. A controller 27 is fixedly installed on the top of the cooling water tank 21. A temperature sensor 28 is fixedly installed on the inner side of the cooling water tank 21. The temperature sensor 28 and the multiple semiconductor cooling chips 26 are electrically connected to the controller 27. The temperature sensor 28 monitors the temperature of the cooling water in the cooling water tank 21. When the water temperature is high, the controller 27 activates the multiple semiconductor cooling chips 26 to conduct heat and cool the cooling water in the cooling water tank 21.

[0023] A feeding mechanism 3 is provided on one side of the condenser tank 1. The feeding mechanism 3 includes a feeding cylinder 31, a conveying pump 32 is provided on one side of the feeding cylinder 31, a discharge pipe 33 is fixedly provided at the bottom of the outer wall of the condenser tank 1, the end of the discharge pipe 33 away from the condenser tank 1 is fixed to the conveying pump 32, and a solenoid valve is provided on the discharge pipe 33. A feeding pipe 34 is fixedly provided on the side wall of the conveying pump 32, the end of the feeding pipe 34 away from the conveying pump 32 is fixed to the feeding cylinder 31, a conveying shaft 35 is rotatably provided inside the feeding cylinder 31, an auger 36 is fixedly provided on the conveying shaft 35, a motor 37 is fixedly provided at the top of the feeding cylinder 31, the output end of the motor 37 is fixed to the conveying shaft 35, and an inlet pipe 38 is fixedly provided at the upper end of the outer wall of the feeding cylinder 31, the end of the inlet pipe 38 away from the feeding cylinder 31 is fixed to the outer wall of the condenser tank 1. The feed pipe 38 is inclined downward from one side of the feeding cylinder 31 towards the side of the condenser tank 1. By opening the solenoid valve on the discharge pipe 33 and starting the conveying pump 32, the material at the bottom of the condenser tank 1 is drawn out through the discharge pipe 33. The material is then conveyed through the discharge pipe 33 to the feeding pipe 34, and then into the feeding cylinder 31. The motor 37 drives the conveying shaft 35 to rotate, which in turn drives the auger 36 to rotate. The auger 36 conveys the material in the feeding cylinder 31 upward. The material is then conveyed to the top of the feeding cylinder 31 and then through the feed pipe 38 into the condenser tank 1. This process conveys the material at the bottom of the condenser tank 1 to the top of the condenser tank 1. Through this circulating feeding, the material covering the bottom of the condenser tank 1 is effectively cooled, resulting in uniform cooling of the material.

[0024] The specific working principle of this utility model is as follows: Material from the forced circulation crystallization evaporator is introduced into the condenser tank 1 through the feed inlet. Cooling water is drawn from the cooling water tank 21 by the circulation pump 22 and transported to the spiral cooling pipe 24 via the first conduit 23. The cooling water spirals upward within the spiral cooling pipe 24 to cool the material. By opening the solenoid valve on the discharge pipe 33 and starting the conveying pump 32, the material at the bottom of the condenser tank 1 is drawn out through the discharge pipe 33. The material is fed into the feeding pipe 34 and then into the feeding cylinder 31. The motor 37 drives the conveying shaft 35 to rotate, which in turn drives the auger 36 to rotate. The auger 36 then conveys the material in the feeding cylinder 31 upwards. The material is then conveyed to the top of the feeding cylinder 31 and then into the condenser 1 through the feed pipe 38. This process moves the material from the bottom of the condenser 1 to the top, and through this circulating feeding, the material at the bottom of the condenser 1 is effectively cooled, resulting in uniform cooling.

[0025] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A condensing apparatus for thermal damage control forced circulation evaporation, comprising a condensing tank (1), characterized in that: The cooling mechanism (2) is arranged on one side of the condensing tank (1), and the cooling mechanism (2) comprises a cooling water tank (21), a circulating pump (22) is fixedly arranged on the outer side wall of the cooling water tank (21), a first conduit (23) is fixedly arranged on the side end of the circulating pump (22), a spiral cooling pipe (24) is arranged on the inner side of the condensing tank (1), a second conduit (25) is fixedly arranged on the top of the cooling water tank (21), a plurality of semiconductor refrigerating fins (26) are fixedly arranged on the outer side wall of the cooling water tank (21), the feeding mechanism (3) is arranged on one side of the condensing tank (1), the feeding mechanism (3) comprises a feeding cylinder (31), a conveying pump (32) is arranged on one side of the feeding cylinder (31), a discharge pipe (33) is fixedly arranged on the bottom end of the outer side wall of the condensing tank (1), a feeding pipe (34) is fixedly arranged on the side wall of the conveying pump (32), a feeding shaft (35) is rotatably arranged on the inner side of the feeding cylinder (31), a screw (36) is fixedly arranged on the feeding shaft (35), a motor (37) is fixedly arranged on the top of the feeding cylinder (31), the output end of the motor (37) is fixedly connected with the feeding shaft (35), and a feeding pipe (38) is fixedly arranged on the upper end of the outer side wall of the feeding cylinder (31).

2. A condensing apparatus for heat loss controlled forced circulation evaporation as claimed in claim 1 wherein: The condensing tank (1) is provided with a feeding port on the top, and the condensing tank (1) is provided with a discharge port on the bottom end of the outer side wall.

3. A condensing apparatus for heat loss controlled forced circulation evaporation as claimed in claim 1 wherein: The first conduit (23) penetrates the side wall of the condensing tank (1) and is connected with the bottom end of the spiral cooling pipe (24), and the second conduit (25) penetrates the side wall of the condensing tank (1) and is connected with the top end of the spiral cooling pipe (24).

4. A condensing apparatus for heat loss controlled forced circulation evaporation as claimed in claim 1 wherein: The controller (27) is fixedly arranged on the top of the cooling water tank (21), the temperature sensor (28) is fixedly arranged on the inner side of the cooling water tank (21), and the temperature sensor (28) and the plurality of semiconductor refrigerating fins (26) are electrically connected with the controller (27).

5. A condensing apparatus for heat loss controlled forced circulation evaporation as claimed in claim 1 wherein: The discharge pipe (33) is fixedly connected with the conveying pump (32) at the end away from the condensing tank (1), the discharge pipe (33) is provided with an electromagnetic valve, and the feeding pipe (34) is fixedly connected with the feeding cylinder (31) at the end away from the conveying pump (32).

6. A condensing apparatus for thermal load control forced circulation evaporation as defined in claim 1, wherein: The feeding pipe (38) is fixedly connected with the condensing tank (1) at the end away from the feeding cylinder (31), and the feeding pipe (38) is inclined downward from one side of the feeding cylinder (31) to one side of the condensing tank (1).