Plate heat exchanger and temporary storage tank integrated cooling device
By designing sealing and heat dissipation mechanisms, the problems of liquid leakage and heat dissipation in the integrated cooling device of plate heat exchanger and temporary storage tank were solved, thereby improving the sealing performance and cooling effect of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2026-03-17
AI Technical Summary
In existing integrated cooling devices combining plate heat exchangers and storage tanks, the plate heat exchanger body and connecting pipes lack sealing mechanisms, leading to liquid leakage. Furthermore, when the liquid enters the storage tank, the heat cannot be effectively dissipated, affecting the use of the device.
The sealing mechanism is designed, including components such as slide rods, connecting blocks, bolts, sliding sleeves, and guide grooves, to ensure the seal between the plate heat exchanger body and the connecting pipe. Components such as motors, positive and negative screws, ball bearings, threaded plates, and fans are used to transfer liquid heat to the heat-conducting plates and dissipate it through air blowing.
It effectively prevents liquid leakage, improves the sealing of the device, and enhances the cooling effect through air blowing, making the device easier to use.
Smart Images

Figure CN224004267U_ABST
Abstract
Description
Technical Field
[0001] This solution falls under the field of cooling devices, specifically involving an integrated cooling device for plate heat exchangers and temporary storage tanks. Background Technology
[0002] This paper proposes an integrated cooling device combining a plate heat exchanger and a storage tank, a heat exchange equipment used in industrial production processes. This device achieves fluid cooling through the combination of a plate heat exchanger and a storage tank. In this integrated cooling device, the plate heat exchanger performs the heat exchange function, transferring heat from one fluid to another through its plate structure, thus cooling or heating the fluid. The storage tank, on the other hand, temporarily stores and regulates the fluid, ensuring the stable operation of the entire system. By integrating the plate heat exchanger and the storage tank, this integrated cooling device is suitable for many industrial fields, such as chemical, food processing, and pharmaceutical industries, and is widely used in heat exchange and cooling processes during production. In existing technology, when the plate heat exchanger body and connecting pipes are connected, the device lacks a sealing mechanism, making it difficult to seal the connection between the plate heat exchanger body and connecting pipes. This can lead to liquid leakage at the connection point. Furthermore, when the liquid inside the plate heat exchanger body is discharged into the storage tank, the liquid may still contain heat, making the device inconvenient to use. Therefore, improvements to the existing technology are needed. Utility Model Content
[0003] The purpose of this solution is to provide an integrated cooling device for plate heat exchangers and temporary storage tanks to address the problem that when the plate heat exchanger body and connecting pipes are connected, the device lacks a sealing mechanism, making it difficult to seal the connection between the plate heat exchanger body and connecting pipes. This can lead to potential liquid leakage at the connection between the plate heat exchanger body and connecting pipes, and the liquid may still have heat when it is discharged into the temporary storage tank, making the device inconvenient to use.
[0004] To achieve the above objectives, this utility model provides an integrated cooling device for a plate heat exchanger and a temporary storage tank, comprising a plate heat exchanger body, a connecting pipe in contact with the plate heat exchanger body, a connecting sleeve fixedly connected to the outer side of the plate heat exchanger body, the connecting sleeve in contact with the connecting pipe, a sealing mechanism provided inside the connecting sleeve, a temporary storage tank provided on the plate heat exchanger body, a support column fixedly connected to the lower end of the temporary storage tank, a partition fixedly connected inside the temporary storage tank, a sealing ring fixedly connected to the outer side of the partition, the sealing ring in contact with the temporary storage tank, a discharge pipe provided inside the temporary storage tank, and a heat dissipation mechanism provided inside the temporary storage tank.
[0005] The principle of this solution is as follows: Before using the device, insert the connecting pipe from the connecting sleeve to the designated position on the plate heat exchanger body. Then, move the handle towards the connecting sleeve. The movement of the handle moves the sliding rod, which in turn moves the connecting block. The movement of the connecting block moves the sliding sleeve, which in turn moves the guide block and the sealing sleeve. After the sealing sleeve contacts the designated position at the connection between the plate heat exchanger body and the connecting pipe, install the bolt into the designated position inside the connecting block. This seals the connection between the plate heat exchanger body and the connecting pipe, preventing liquid leakage at the connection between the plate heat exchanger body and the connecting pipe.
[0006] When the liquid inside the plate heat exchanger is discharged into the temporary storage tank, the heat of the liquid can be transferred to the heat-conducting plates through the partition. The fan is started, and the fan blows air onto the heat-conducting plates. The filter screen filters out external dust. Then the motor is started, and the motor drives the positive and negative screws to rotate. The rotation of the positive and negative screws causes the screw plate to move in a spiral motion, which in turn causes the screw plate to move relative to the screw plate. The movement of the screw plate drives the sliding block and the fixed block to move. The movement of the fixed block drives the fan to move. The fan blows air onto the heat-conducting plates to dissipate heat while moving, thereby cooling the liquid in the temporary storage tank. This improves the cooling effect of the device and makes it easier to use.
[0007] The technical advantages of this solution are as follows: By designing components such as sliding rods, handles, connecting blocks, bolts, sliding sleeves, and guide grooves, the solution moves the connecting blocks and sealing sleeves. After the sealing sleeve moves to the designated position at the connection between the plate heat exchanger body and the connecting pipe, the bolts are installed in the designated position within the connecting block, thereby sealing the connection between the plate heat exchanger body and the connecting pipe and preventing liquid leakage. Furthermore, by designing components such as motors, positive and negative screws, ball bearings, threaded plates, mounting strips, and sliding blocks, the heat of the liquid can be transferred to the heat-conducting plates through the partition. The fan is then activated to blow air onto the heat-conducting plates. Rotating the positive and negative screws and the threaded plate creates a threaded motion, which in turn moves the fan and other components. The fan blows air onto the heat-conducting plates while moving, thus cooling the liquid in the temporary storage tank. This results in better cooling performance and makes the device easier to use.
[0008] Furthermore, the sealing mechanism includes a sliding rod, which is slidably connected inside the connecting sleeve. A connecting block is fixedly connected to the right end of the sliding rod, and the connecting block contacts the connecting sleeve. A sliding sleeve contacts the inside of the connecting sleeve, and the sliding sleeve is fixedly connected to the connecting block. A guide groove is formed inside the connecting sleeve, and a guide block is slidably connected inside the guide groove. The guide block is fixedly connected to the sliding sleeve. A sealing sleeve is fixedly connected inside the sliding sleeve, and the sealing sleeve contacts the connecting sleeve. The connecting pipe contacts the sealing sleeve, and the sealing sleeve contacts the plate heat exchanger body. By moving the connecting block and sealing sleeve, the sealing sleeve moves to a designated position at the connection between the plate heat exchanger body and the connecting pipe. Then, bolts are installed into the designated position within the connecting block, thereby sealing the connection between the plate heat exchanger body and the connecting pipe and preventing liquid leakage at the connection between the plate heat exchanger body and the connecting pipe in the device.
[0009] Furthermore, a handle is fixedly connected to the left end of the slide rod, and the handle contacts the connecting sleeve. By designing the handle, the slide rod can be moved.
[0010] Furthermore, the connecting block is internally connected with bolts via threads. These bolts contact the connecting sleeve, and the bolts are designed to limit the movement of the connecting block.
[0011] Furthermore, the heat dissipation mechanism includes a motor. The motor is fixedly mounted on the outside of the temporary storage tank. The motor's rotating shaft is rotatably connected to the temporary storage tank. A positive and negative screw is fixedly connected to the left end of the motor's rotating shaft. The positive and negative screw is rotatably connected to the temporary storage tank. A threaded plate is threadedly connected to the outside of the positive and negative screw. An installation strip is fixedly connected inside the temporary storage tank. A sliding block is slidably connected inside the installation strip. A sliding block is fixedly connected to the lower end of the threaded plate. A fixing block is fixedly connected to the upper end of the threaded plate. A fan is fixedly mounted on the upper end of the fixing block. A heat-conducting plate is fixedly connected to the lower end of the partition. A filter screen is fixedly connected inside the temporary storage tank. An air vent is provided inside the temporary storage tank. Heat from the liquid can be transferred to the heat-conducting plate through the partition. The fan blows air onto the heat-conducting plate. Rotating the positive and negative screw causes the threaded plate to move, moving the threaded plate and driving the fan and other components to move. The fan blows air onto the heat-conducting plate while moving, thus cooling the liquid in the temporary storage tank. This improves the cooling effect of the device and makes it easier to use.
[0012] Furthermore, the storage tank is equipped with ball bearings inside, which contact the forward and reverse screws. By designing the ball bearings, the friction between the forward and reverse screws and the storage tank can be reduced.
[0013] Furthermore, a guide rod is slidably connected inside the sliding block, and both ends of the guide rod are fixedly connected to the mounting strip. By designing the guide rod, the sliding block can be sealed. Attached Figure Description
[0014] Figure 1 This is a perspective view of the overall structure of an embodiment of the present utility model;
[0015] Figure 2 This is an embodiment of the present utility model. Figure 1 Partial sectional perspective view of the structure;
[0016] Figure 3 This is an embodiment of the present utility model. Figure 1 A front sectional view;
[0017] Figure 4 This is an embodiment of the present utility model. Figure 2 Enlarged view of the connecting sleeve;
[0018] Figure 5 This is an embodiment of the present utility model. Figure 3 Enlarged view of the partition.
[0019] The following detailed description illustrates the specific implementation method:
[0020] The reference numerals in the accompanying drawings of the instruction manual include: plate heat exchanger body 1, connecting pipe 2, connecting sleeve 3, sealing mechanism 4, sliding rod 41, handle 42, connecting block 43, bolt 44, sliding sleeve 45, guide groove 46, guide block 47, sealing sleeve 48, temporary storage tank 5, support column 6, partition plate 7, sealing ring 8, discharge pipe 9, heat dissipation mechanism 10, motor 101, positive and negative screws 102, ball bearing 103, threaded plate 104, mounting strip 105, sliding block 106, guide rod 107, fixing block 108, fan 109, heat conduction plate 1010, and filter screen 1011. Detailed Implementation
[0021] The basic implementation examples are as follows: Figure 1 — Figure 5 As shown, this embodiment provides an integrated cooling device for a plate heat exchanger and a temporary storage tank, including a plate heat exchanger body 1, a connecting pipe 2 in contact with the plate heat exchanger body 1, a connecting sleeve 3 fixedly connected to the outer side of the plate heat exchanger body 1, the connecting sleeve 3 in contact with the connecting pipe 2, a sealing mechanism 4 provided inside the connecting sleeve 3, a temporary storage tank 5 provided on the plate heat exchanger body 1, a support column 6 fixedly connected to the lower end of the temporary storage tank 5, a partition 7 fixedly connected inside the temporary storage tank 5, a sealing ring 8 fixedly connected to the outer side of the partition 7, the sealing ring 8 in contact with the temporary storage tank 5, a discharge pipe 9 provided inside the temporary storage tank 5, and a heat dissipation mechanism 10 provided inside the temporary storage tank 5.
[0022] The basic implementation examples are as follows: Figure 4As shown, the sealing mechanism 4 includes a slide rod 41, which is slidably connected inside the connecting sleeve 3. A handle 42 is fixedly connected to the left end of the slide rod 41, and the handle 42 contacts the connecting sleeve 3. By designing the handle 42, the slide rod 41 can be moved. A connecting block 43 is fixedly connected to the right end of the slide rod 41, and the connecting block 43 contacts the connecting sleeve 3. A bolt 44 is threadedly connected inside the connecting block 43, and the bolt 44 contacts the connecting sleeve 3. By designing the bolt 44, the connecting block 43 can be limited. A sliding sleeve 45 contacts inside the connecting sleeve 3, and the sliding sleeve 45 is fixedly connected to the connecting block 43. A guide groove 46 is provided inside the connecting sleeve 3. The internal sliding connection of 6 includes a guide block 47, which is fixedly connected to the sliding sleeve 45. The internal fixed connection of the sliding sleeve 45 includes a sealing sleeve 48, which contacts the connecting sleeve 3, the connecting pipe 2, and the plate heat exchanger body 1. By moving the connecting block 43 and the sealing sleeve 48, the sealing sleeve 48 moves to the designated position at the connection between the plate heat exchanger body 1 and the connecting pipe 2. Then, the bolt 44 is installed in the designated position inside the connecting block 43, thereby sealing the connection between the plate heat exchanger body 1 and the connecting pipe 2 and preventing liquid leakage at the connection between the plate heat exchanger body 1 and the connecting pipe 2.
[0023] The basic implementation examples are as follows: Figure 1 , Figure 2 , Figure 3 , Figure 5As shown, the heat dissipation mechanism 10 includes a motor 101. The motor 101 is fixedly mounted on the outside of the temporary storage tank 5. The rotating shaft of the motor 101 is rotatably connected to the temporary storage tank 5. A positive and negative screw 102 is fixedly connected to the left end of the rotating shaft of the motor 101. A ball bearing 103 is provided inside the temporary storage tank 5. The ball bearing 103 contacts the positive and negative screw 102. By designing the ball bearing 103, the friction between the positive and negative screw 102 and the temporary storage tank 5 can be reduced. The positive and negative screw 102 is rotatably connected to the temporary storage tank 5. A threaded plate 104 is threadedly connected to the outside of the positive and negative screw 102. An installation strip 105 is fixedly connected inside the temporary storage tank 5. A sliding block 106 is slidably connected inside the installation strip 105. A guide rod 107 is slidably connected inside the sliding block 106. Both ends of the guide rod 107 are fixedly connected to the installation strip 105. By designing the guide rod 107, the sliding block 106 can be guided. 06 is sealed. A sliding block 106 is fixedly connected to the lower end of the threaded plate 104, and a fixing block 108 is fixedly connected to the upper end of the threaded plate 104. A fan 109 is fixedly installed on the upper end of the fixing block 108. A heat-conducting plate 1010 is fixedly connected to the lower end of the partition 7. A filter screen 1011 is fixedly connected inside the temporary storage tank 5. An air vent 1012 is opened inside the temporary storage tank 5. The heat of the liquid can be transferred to the heat-conducting plate 1010 through the partition 7. The fan 109 is started to blow air onto the heat-conducting plate 1010. Then, the forward and reverse screws 102 are rotated to cause threaded movement with the threaded plate 104. The movement of the threaded plate 104 drives the fan 109 and other components to move. The fan 109 blows air onto the heat-conducting plate 1010 while moving, thereby cooling the liquid in the temporary storage tank 5, thus improving the cooling effect of the device and making the device easy to use.
[0024] The specific implementation process of this utility model is as follows: Before using the device, insert the connecting pipe 2 into the connecting sleeve 3 and make contact with the designated position on the plate heat exchanger body 1. Then move the handle 42 towards the connecting sleeve 3. The movement of the handle 42 drives the sliding rod 41 to move. The movement of the sliding rod 41 drives the connecting block 43 to move. The movement of the connecting block 43 drives the sliding sleeve 45 to move. The movement of the sliding sleeve 45 drives the guide block 47 and the sealing sleeve 48 to move. After the sealing sleeve 48 moves and contacts the designated position at the connection between the plate heat exchanger body 1 and the connecting pipe 2, install the bolt 44 into the designated position in the connecting block 43. This seals the connection between the plate heat exchanger body 1 and the connecting pipe 2, preventing liquid leakage at the connection between the plate heat exchanger body 1 and the connecting pipe 2 on the device.
[0025] When the liquid in the plate heat exchanger body 1 is discharged into the temporary storage tank 5, the heat of the liquid can be transferred to the heat-conducting plate 1010 through the partition 7. The fan 109 is started, and the fan 109 rotates to blow air onto the heat-conducting plate 1010. The filter screen 1011 filters the external dust. Then the motor 101 is started, and the motor 101 drives the positive and negative screws 102 to rotate. The rotation of the positive and negative screws 102 causes the screw plate 104 to move in a threaded motion, which in turn causes the screw plate 104 to move relative to itself. The movement of the screw plate 104 drives the sliding block 106 and the fixed block 108 to move. The movement of the fixed block 108 drives the fan 109 to move. The fan 109 blows air onto the heat-conducting plate 1010 to dissipate heat while moving, thereby cooling the liquid in the temporary storage tank 5. This improves the cooling effect of the device and makes the device easier to use.
[0026] This solution utilizes components such as a sliding rod 41, handle 42, connecting block 43, bolt 44, sliding sleeve 45, and guide groove 46 to move the connecting block 43 and sealing sleeve 48. After the sealing sleeve 48 is moved to the designated position at the connection between the plate heat exchanger body 1 and the connecting pipe 2, the bolt 44 is installed into the designated position within the connecting block 43, thereby sealing the connection between the plate heat exchanger body 1 and the connecting pipe 2 and preventing liquid leakage at the connection between the plate heat exchanger body 1 and the connecting pipe 2. This is achieved through the design of a motor 101, positive and negative screws 102, and rollers. The components, such as bead 103, threaded plate 104, mounting strip 105, and sliding block 106, allow the heat of the liquid to be transferred to the heat-conducting plate 1010 through the partition 7. The fan 109 is started to blow air onto the heat-conducting plate 1010. Then, the forward and reverse screws 102 and threaded plate 104 are rotated to create a threaded motion. The movement of the threaded plate 104 drives the fan 109 and other components to move. While moving, the fan 109 blows air onto the heat-conducting plate 1010 to dissipate heat, thereby cooling the liquid in the temporary storage tank 5. This results in better cooling of the device and makes it easier to use.
[0027] The above descriptions are merely embodiments of this utility model, and common knowledge regarding specific structures and characteristics is not elaborated upon here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the structure of this utility model, and these should also be considered within the scope of protection of this utility model. These modifications will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application shall be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.
Claims
1. Plate heat exchanger and temporary tank integrated cooling device, comprising a plate heat exchanger main body, characterized in that: The plate heat exchanger body is connected with a connecting pipe, a connecting sleeve is fixedly connected to the outer side of the plate heat exchanger body, the connecting sleeve is in contact with the connecting pipe, a sealing mechanism is arranged in the connecting sleeve, a temporary storage tank is arranged on the plate heat exchanger body, a supporting column is fixedly connected to the lower end of the temporary storage tank, a partition plate is fixedly connected to the inside of the temporary storage tank, a sealing ring is fixedly connected to the outer side of the partition plate, the sealing ring is in contact with the temporary storage tank, a discharge pipe is arranged in the temporary storage tank, and a heat dissipation mechanism is arranged in the temporary storage tank.
2. The plate heat exchanger and temporary tank integrated cooling device according to claim 1, characterized in that: The sealing mechanism comprises a sliding rod, the sliding rod is slidably connected to the inside of the connecting sleeve, a connecting block is fixedly connected to the right end of the sliding rod, the connecting block is in contact with the connecting sleeve, a sliding sleeve is in contact with the inside of the connecting sleeve, the sliding sleeve is fixedly connected with the connecting block, a guide groove is formed in the connecting sleeve, a guide block is slidably connected to the inside of the guide groove, the guide block is fixedly connected with the sliding sleeve, a sealing sleeve is fixedly connected to the inside of the sliding sleeve, the sealing sleeve is in contact with the connecting sleeve, the connecting pipe is in contact with the sealing sleeve, and the sealing sleeve is in contact with the plate heat exchanger body.
3. The plate heat exchanger and temporary tank integrated cooling device according to claim 2, characterized in that: The left end of the sliding rod is fixedly connected with a handle, and the handle is in contact with the connecting sleeve.
4. The plate heat exchanger and temporary tank integrated cooling device according to claim 2, characterized in that: The inside of the connecting block is threadedly connected with a bolt, and the bolt is in contact with the connecting sleeve.
5. The plate heat exchanger and temporary tank integrated cooling device according to claim 1, characterized in that: The heat dissipation mechanism comprises a motor, the motor is fixedly installed on the outer side of the temporary storage tank, the rotating shaft of the motor is rotatably connected with the temporary storage tank, a reversible screw rod is fixedly connected to the left end of the rotating shaft of the motor, the reversible screw rod is rotatably connected with the temporary storage tank, a threaded plate is threadedly connected to the outer side of the reversible screw rod, an installation strip is fixedly connected to the inside of the temporary storage tank, a sliding block is slidably connected to the inside of the installation strip, the lower end of the threaded plate is fixedly connected with the sliding block, the upper end of the threaded plate is fixedly connected with a fixed block, a fan is fixedly installed on the upper end of the fixed block, a heat-conducting fin is fixedly connected to the lower end of the partition plate, a filter screen is fixedly connected to the inside of the temporary storage tank, and an air outlet hole is formed in the temporary storage tank.
6. The plate heat exchanger and temporary tank integrated cooling device according to claim 5, characterized in that: The inside of the temporary storage tank is provided with a ball, and the ball is in contact with the reversible screw rod.
7. The plate heat exchanger and temporary tank integrated cooling device according to claim 5, characterized in that: The inside of the sliding block is slidably connected with a guide rod, and both ends of the guide rod are fixedly connected with the installation strip.