Copper electrolyte cooling evaporator

By designing anti-overheating components and locking components in the copper electrolyte cooling evaporator, the problem of overheating of the evaporator in a high-temperature environment is solved, and the performance stability of the evaporator and the efficient cooling of the copper electrolyte are achieved.

CN222900209UActive Publication Date: 2025-05-27SHENZHEN HONGDA ENVIRONMENTAL TECH GO LTD
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Patent Information

Application Number
CN202421908012.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-05-27
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

Most existing evaporator devices do not have a structure to prevent the evaporator from overheating, which may cause the evaporator to overheat under high temperature environments, affect performance and may damage the equipment.

Method used

A copper electrolyte cooling evaporator is designed, including an anti-overheating assembly and a locking assembly. The anti-overheating component drives the fan blades to rotate through the motor, increasing the flow of air in the protective case and dissipating heat; the locking component is made of spring and slide rod mechanism to facilitate locking, fixing and disassembly of the heat dissipation fan.

Benefits of technology

Effectively prevent the evaporator from overheating, ensuring its performance is stable and not damaged, and at the same time, it realizes efficient cooling of copper electrolyte through the circulation loop.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222900209U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of evaporators, in particular to a copper electrolyte cooling evaporator which comprises a cooling box body, a liquid inlet pipe is arranged on one side of the cooling box body, a liquid discharge pipe is arranged on the other side of the cooling box body, an evaporator cooling assembly is arranged at one end of the cooling box body, and an anti-overheating assembly is arranged on one side of the evaporator cooling assembly. Fan blades on a rotating shaft of the motor are driven by the motor to rotate, air in the protective shell is exhausted, air enters the protective shell through heat dissipation holes, and therefore flowing of the air in the protective shell is accelerated, the heat dissipation effect on an evaporator in the protective shell is achieved, the evaporator is prevented from being overheated, and the service life of the evaporator is prolonged. Therefore, the performance of the evaporator is not affected, and the evaporator is not damaged.
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Description

Technical Field

[0001] The utility model relates to the technical field of evaporators, in particular to a copper electrolyte cooling evaporator. Background Art

[0002] An evaporator is a device that can directly evaporate a liquid into a gas. Since the working principle of the evaporator is different from the traditional heating method, it can achieve a fast, low-temperature, and efficient evaporation process. The working principle of the evaporator is based on the relationship between the boiling point of the liquid and the ambient pressure. The evaporator realizes evaporation by reducing the ambient pressure on the liquid surface. Usually, the evaporator will use low-temperature substances such as refrigerants to reduce the temperature on the liquid surface through internal devices such as circulating pipes, so that the liquid is in a saturated state. When the temperature on the liquid surface reaches the evaporation temperature, the liquid starts to evaporate continuously, and the generated steam is discharged through the outlet pipe. At the same time, heat is absorbed from the surrounding during the evaporation process, and an evaporator device is used when cooling copper electrolyte.

[0003] Most of the existing evaporator devices are not equipped with a structure to prevent the evaporator from overheating. When the evaporator device works in a high-temperature environment, it may cause the evaporator to overheat, thereby affecting the performance of the evaporator and may also damage the evaporator itself. Summary of the Utility Model

[0004] In view of the problem that most of the existing evaporator devices are not equipped with a structure to prevent the evaporator from overheating, when the evaporator device works in a high-temperature environment, it may cause the evaporator to overheat, thereby affecting the performance of the evaporator and may also damage the evaporator itself, the present utility model is proposed.

[0005] Therefore, the purpose of the present utility model is to provide a copper electrolyte cooling evaporator, and its purpose is to solve the problem that most of the existing evaporator devices are not equipped with a structure to prevent the evaporator from overheating, when the evaporator device works in a high-temperature environment, it may cause the evaporator to overheat, thereby affecting the performance of the evaporator and may also damage the evaporator itself.

[0006] To solve the above technical problems, the present utility model provides the following technical solution: A copper electrolyte cooling evaporator, including a cooling box body, a liquid inlet pipe is arranged on one side of the cooling box body, a liquid discharge pipe is arranged on the other side of the cooling box body, an evaporator cooling component is arranged at one end of the cooling box body, an overheat prevention component is arranged on one side of the evaporator cooling component, and locking components are symmetrically arranged on the overheat prevention component;

[0007] The anti-overheat component includes a protective housing, which is arranged at one end of the cooling box body. A plurality of heat dissipation holes are provided at the top and bottom of the protective housing. L-shaped plates are symmetrically arranged on one side of the protective housing. A T-shaped insertion plate is arranged inside the L-shaped plates. Heat dissipation through holes are formed in the T-shaped insertion plate, and the heat dissipation through holes penetrate through the T-shaped insertion plate. An installation plate is arranged inside the heat dissipation through holes. A motor is arranged on one side of the installation plate. The output end of the motor is drivingly connected to a motor rotating shaft, and a fan blade is arranged at one end of the motor rotating shaft.

[0008] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: a protective cover is arranged at one end of the T-shaped insertion plate, and the protective cover is rotatably connected to the T-shaped insertion plate.

[0009] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: the T-shaped insertion plate is arranged in two symmetrically arranged L-shaped plates, and the T-shaped insertion plate is slidably connected to the L-shaped plates.

[0010] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: the evaporator cooling component includes an evaporation pipe, which is arranged inside the cooling box body. An air inlet pipe is arranged at one end of the evaporation pipe, and the air inlet pipe penetrates through one end of the cooling box body. A compressor is arranged at one end of the cooling box body, and the input end of the compressor is connected to the air inlet pipe. The output end of the compressor is connected to a connecting pipe. A condenser is arranged at one end of the cooling box body, the input end of the condenser is connected to the connecting pipe, the output end of the condenser is connected to a liquid outlet pipe, the other end of the evaporation pipe is connected to the liquid outlet pipe, and the liquid outlet pipe penetrates through one end of the cooling box body.

[0011] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: a water inlet pipe is arranged on the liquid outlet pipe, and the water inlet pipe penetrates through the top of the protective housing. A first switch is arranged on the water inlet pipe. A water outlet pipe is arranged on the air inlet pipe, and the water outlet pipe penetrates through one side of the protective housing. A second switch is arranged on the water outlet pipe.

[0012] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: the locking component includes a wedge-shaped groove, which is symmetrically arranged on the T-shaped insertion plate. A storage groove is arranged on the L-shaped plate, and a circular hole is arranged on the L-shaped plate. A wedge-shaped block is arranged inside the wedge-shaped groove. A sliding rod is arranged on one side of the wedge-shaped block, a spring is sleeved on the outer surface of the sliding rod, and a pulling plate is arranged at one end of the sliding rod.

[0013] As a preferred scheme of the copper electrolyte cooling evaporator of the present utility model, wherein: the sliding rod is slidably connected to the circular hole, and the spring is arranged between the L-shaped plate and the pulling plate.

[0014] Advantages of the present utility model:

[0015] 1. In the present utility model, the fan blades on the motor shaft are rotated by the motor to discharge the air in the protective housing, and air enters through the heat dissipation holes, thereby accelerating the air flow in the protective housing, playing a role in dissipating heat from the evaporator in the protective housing, preventing the evaporator from overheating, so as not to affect the performance of the evaporator and not damage the evaporator itself.

[0016] 2. In the present utility model, the refrigerant evaporates into a gas in the evaporation tube, thereby cooling the copper electrolyte solution. The refrigerant that has become a gas reaches the compressor from the evaporation tube through the intake pipe, reaches the condenser from the compressor through the connecting pipe, changes the refrigerant from a gas to a liquid, and then reaches the evaporation tube through the liquid outlet pipe to form a circulation loop. Clear water is added through the water inlet pipe, and the clear water passes through the evaporation tube and is discharged from the water outlet pipe to clean the evaporation tube, preventing blockage of the evaporation tube caused by long-term use.

[0017] 3. In the present utility model, the pull plate drives the wedge block on the sliding rod to move until the wedge block retracts from the wedge groove into the storage groove. The movement of the pull plate further stretches the spring, causing the spring to generate tension. Then, the T-shaped plug is pulled out from the symmetric L-shaped plate. During installation, the T-shaped plug is inserted into the L-shaped plate. Due to the tension of the spring driving the movement of the pull plate, the pull plate pushes the wedge block on the sliding rod into the wedge groove, thereby locking the T-shaped plug. This not only facilitates the locking and fixing of the cooling fan but also facilitates the disassembly and replacement of the cooling fan. Description of the Drawings

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:

[0019] Figure 1 It is a schematic diagram of the overall structure of a copper electrolyte solution cooling evaporator of the present utility model.

[0020] Figure 2 It is a schematic diagram of the structure of the overheat prevention component of a copper electrolyte solution cooling evaporator of the present utility model.

[0021] Figure 3 It is a schematic cross-sectional view of a copper electrolyte solution cooling evaporator of the present utility model.

[0022] Figure 4 It is a schematic diagram of the structure of the evaporator temperature reduction component of a copper electrolyte solution cooling evaporator of the present utility model.

[0023] Description of the reference numerals:

[0024] 1. Cooling box; 2. Liquid inlet pipe; 3. Liquid discharge pipe; 4. Evaporator cooling component; 41. Evaporation pipe; 42. Air inlet pipe; 43. Compressor; 44. Connecting pipe; 45. Condenser; 46. Liquid outlet pipe; 47. Water inlet pipe; 48. First switch; 49. Water outlet pipe; 410. Second switch; 5. Overheat prevention component; 51. Protective housing; 52. Heat dissipation holes; 53. L-shaped plate; 54. T-shaped plug; 55. Heat dissipation through hole; 56. Mounting plate; 57. Motor; 58. Motor shaft; 59. Fan blade; 510. Protective cover; 6. Locking component; 61. Wedge-shaped groove; 62. Storage groove; 63. Circular hole; 64. Wedge-shaped block; 65. Slide bar; 66. Spring; 67. Pulling plate Detailed implementation manners

[0025] In order to make the above objects, features, and advantages of the present utility model more obvious and understandable, the following will describe the detailed implementation manners of the present utility model with reference to the accompanying drawings of the specification.

[0026] Embodiment 1

[0027] Refer to Figures 1-3 , which is the first embodiment of the present utility model, and provides a copper electrolyte cooling evaporator. Such a copper electrolyte cooling evaporator includes a cooling box 1, a liquid inlet pipe 2 is provided on one side of the cooling box 1, a liquid discharge pipe 3 is provided on the other side of the cooling box 1, an evaporator cooling component 4 is provided at one end of the cooling box 1, an overheat prevention component 5 is provided on one side of the evaporator cooling component 4, and locking components 6 are symmetrically provided on the overheat prevention component 5;

[0028] The overheat prevention component 5 includes a protective housing 51, the protective housing 51 is arranged at one end of the cooling box 1, a plurality of heat dissipation holes 52 are provided at the top and bottom of the protective housing 51, L-shaped plates 53 are symmetrically provided on one side of the protective housing 51, a T-shaped plug 54 is arranged inside the L-shaped plate 53, a heat dissipation through hole 55 is provided on the T-shaped plug 54, the heat dissipation through hole 55 penetrates through the T-shaped plug 54, a mounting plate 56 is arranged inside the heat dissipation through hole 55, a motor 57 is arranged on one side of the mounting plate 56, the output end of the motor 57 is drivingly connected to a motor shaft 58, a fan blade 59 is arranged at one end of the motor shaft 58, and by driving the fan blade 59 on the motor shaft 58 to rotate by the motor 57, the air inside the protective housing is discharged, and air enters through the heat dissipation holes, thereby accelerating the air flow inside the protective housing and preventing the evaporator from overheating.

[0029] One end of the T-shaped plug 54 is provided with a protective cover 510, and the protective cover 510 is rotatably connected to the T-shaped plug 54. By opening the protective cover 510, it is convenient to clean the cooling fan.

[0030] The T-shaped plug board 54 is arranged in two symmetric L-shaped plates 53, and the T-shaped plug board 54 is slidably connected to the L-shaped plates 53, which is convenient for the installation and disassembly of the cooling fan.

[0031] During the use process, the staff fills the copper electrolyte solution into the cooling box body 1 from the liquid inlet pipe 2, and the copper electrolyte solution in the cooling box body 1 is cooled by the evaporator cooling component 4. When the evaporator cooling component 4 works in a high-temperature environment, the staff starts the motor 57, and the motor 57 drives the fan blade 59 on the motor rotating shaft 58 to rotate, discharging the air in the protective housing 51 and inhaling air through the heat dissipation holes 52, thereby accelerating the air flow in the protective housing, playing a role in dissipating heat from the evaporator in the evaporator cooling component 4 in the protective housing, preventing the evaporator from overheating, so as not to affect the performance of the evaporator and not damage the evaporator itself.

[0032] Embodiment 2

[0033] Refer to Figures 1-4 , which is the second embodiment of the present utility model. The difference between this embodiment and the first embodiment is that the evaporator cooling component 4 includes an evaporation pipe 41, the evaporation pipe 41 is arranged inside the cooling box body 1, one end of the evaporation pipe 41 is provided with an air inlet pipe 42, the air inlet pipe 42 penetrates through one end of the cooling box body 1, a compressor 43 is arranged at one end of the cooling box body 1, the input end of the compressor 43 is connected to the air inlet pipe 42, the output end of the compressor 43 is connected with a connecting pipe 44, a condenser 45 is arranged at one end of the cooling box body 1, the input end of the condenser 45 is connected to the connecting pipe 44, the output end of the condenser 45 is connected with a liquid outlet pipe 46, the other end of the evaporation pipe 41 is connected to the liquid outlet pipe 46, and the liquid outlet pipe 46 penetrates through one end of the cooling box body 1. The copper electrolyte solution is cooled by the refrigerant evaporating into gas in the evaporation pipe 41.

[0034] A water inlet pipe 47 is arranged on the liquid outlet pipe 46, the water inlet pipe 47 penetrates through the top of the protective housing 51, a first switch 48 is arranged on the water inlet pipe 47, a water outlet pipe 49 is arranged on the air inlet pipe 42, the water outlet pipe 49 penetrates through one side of the protective housing 51, and a second switch 410 is arranged on the water outlet pipe 49. At the same time, clean water is added through the water inlet pipe 47, and the clean water passes through the evaporation pipe 41 and then is discharged from the water outlet pipe 49 to clean the evaporation pipe 41 and prevent the evaporation pipe 41 from being blocked after long-term use.

[0035] During use, the staff adds the refrigerant into the evaporator. The refrigerant evaporates into gas in the evaporation tube 41, thereby cooling the copper electrolyte. The refrigerant that has become gas reaches the compressor 43 from the evaporation tube 41 through the intake pipe 42, and reaches the condenser 45 from the compressor 43 through the connecting pipe 44, turning the refrigerant from gas into liquid. Then it reaches the evaporation tube 41 through the liquid outlet pipe 46, forming a circulation loop. Then, clean water is added from the water inlet pipe 47. The clean water passes through the evaporation tube 41 and is discharged from the water outlet pipe 49 to clean the evaporation tube 41 and prevent the evaporation tube 41 from being blocked after long-term use.

[0036] The remaining structure is the same as that of Embodiment 1.

[0037] Embodiment 3

[0038] Referring to Figures 1-4 , which is the third embodiment of the present utility model. The difference between this embodiment and the second embodiment is that: the locking assembly 6 includes a wedge-shaped groove 61, the wedge-shaped groove 61 is symmetrically arranged on the T-shaped plug 54, a receiving groove 62 is provided on the L-shaped plate 53, a circular hole 63 is provided on the L-shaped plate 53, a wedge-shaped block 64 is provided inside the wedge-shaped groove 61, a sliding rod 65 is provided on one side of the wedge-shaped block 64, a spring 66 is sleeved on the outer surface of the sliding rod 65, and a pulling plate 67 is provided at one end of the sliding rod 65. By pushing the pulling plate 67, the wedge-shaped block 64 on the sliding rod 65 is inserted into the wedge-shaped groove 61, thereby locking the T-shaped plug 54 and facilitating the locking and fixing of the radiator fan.

[0039] The sliding rod 65 is slidably connected to the circular hole 63, and the spring 66 is arranged between the L-shaped plate 53 and the pulling plate 67, facilitating the movement of the sliding rod 65 in the circular hole 63 and playing a guiding role at the same time.

[0040] During use, the staff pulls the pulling plate 67, and the pulling plate 67 drives the wedge-shaped block 64 on the sliding rod 65 to move until the wedge-shaped block 64 contracts from the wedge-shaped groove 61 into the receiving groove 62. The movement of the pulling plate 67 stretches the spring 66, causing the spring 66 to generate tension. Then, the T-shaped plug 54 is pulled out from the symmetric L-shaped plates 53. During installation, the T-shaped plug 54 is inserted into the L-shaped plates 53. Due to the tension of the spring 66 driving the movement of the pulling plate 67, the pulling plate 67 pushes the wedge-shaped block 64 on the sliding rod 65 to be inserted into the wedge-shaped groove 61, thereby locking the T-shaped plug 54. This not only facilitates the locking and fixing of the radiator fan but also facilitates the disassembly and replacement of the radiator fan.

[0041] The remaining structure is the same as that of Embodiment 2.

[0042] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. A copper electrolyte cooling evaporator, comprising a cooling box (1), wherein one side of the cooling box (1) is provided with a liquid inlet pipe (2), and the other side of the cooling box (1) is provided with a liquid discharge pipe (3), characterized in that: An evaporator cooling component (4) is provided at one end of the cooling box (1), an overheating prevention component (5) is provided at one side of the evaporator cooling component (4), and a locking component (6) is symmetrically provided on the overheating prevention component (5); The overheating prevention component (5) comprises a protective shell (51), the protective shell (51) being arranged at one end of the cooling box (1), the top and bottom of the protective shell (51) being provided with a plurality of heat dissipation holes (52), an L-shaped plate (53) being symmetrically arranged on one side of the protective shell (51), a T-shaped plug plate (54) being arranged inside the L-shaped plate (53), a heat dissipation through hole (55) being opened on the T-shaped plug plate (54), and the heat dissipation through hole (55) passing through the T-shaped plug plate (54), a mounting plate (56) being arranged inside the heat dissipation through hole (55), a motor (57) being arranged on one side of the mounting plate (56), the output end of the motor (57) being transmission-connected to a motor shaft (58), and a fan blade (59) being arranged at one end of the motor shaft (58).

2. A copper electrolyte cooling evaporator according to claim 1, characterized in that: A protective cover (510) is provided at one end of the T-shaped plug plate (54), and the protective cover (510) is rotatably connected to the T-shaped plug plate (54).

3. A copper electrolyte cooling evaporator according to claim 2, characterized in that: The T-shaped plug plate (54) is arranged in the two symmetrical L-shaped plates (53), and the T-shaped plug plate (54) is slidably connected to the L-shaped plates (53).

4. A copper electrolyte cooling evaporator according to claim 3, characterized in that: The evaporator cooling component (4) comprises an evaporator tube (41), the evaporator tube (41) being arranged inside the cooling box (1), one end of the evaporator tube (41) being provided with an air inlet pipe (42), and the air inlet pipe (42) passing through one end of the cooling box (1), one end of the cooling box (1) being provided with a compressor (43), and the input end of the compressor (43) being connected to the air inlet pipe (42), and the output end of the compressor (43) being connected to a connecting pipe (44), one end of the cooling box (1) being provided with a condenser (45), the input end of the condenser (45) being connected to the connecting pipe (44), and the output end of the condenser (45) being connected to a liquid outlet pipe (46), the other end of the evaporator tube (41) being connected to the liquid outlet pipe (46), and the liquid outlet pipe (46) passing through one end of the cooling box (1).

5. A copper electrolyte cooling evaporator according to claim 4, characterized in that: The liquid outlet pipe (46) is provided with a water inlet pipe (47), and the water inlet pipe (47) passes through the top of the protective shell (51), and the water inlet pipe (47) is provided with a first switch (48); the air inlet pipe (42) is provided with a water outlet pipe (49), and the water outlet pipe (49) passes through one side of the protective shell (51), and the water outlet pipe (49) is provided with a second switch (410).

6. A copper electrolyte cooling evaporator according to claim 5, characterized in that: The locking assembly (6) comprises a wedge-shaped groove (61), the wedge-shaped groove (61) is symmetrically arranged on the T-shaped plug plate (54), the L-shaped plate (53) is provided with a receiving groove (62), the L-shaped plate (53) is provided with a circular hole (63), a wedge-shaped block (64) is provided inside the wedge-shaped groove (61), a sliding rod (65) is provided on one side of the wedge-shaped block (64), a spring (66) is sleeved on the outer surface of the sliding rod (65), and a pull plate (67) is provided at one end of the sliding rod (65).

7. A copper electrolyte cooling evaporator according to claim 6, characterized in that: The sliding rod (65) is slidably connected to the circular hole (63), and the spring (66) is arranged between the L-shaped plate (53) and the pulling plate (67).