Continuous vacuum cooling machine

By introducing a decontamination module and an automatic cleaning system into the vacuum cooler, the problem of reduced efficiency caused by steam contamination has been solved, achieving steam purity and extending equipment life, thus improving operational efficiency.

CN121185028BActive Publication Date: 2026-02-03YUNFENG MASCH (FUJIAN) CO LTD
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Patent Information

Application Number
CN202511755025.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-11-26
Publication Date
2026-02-03
Estimated Expiration
2045-11-26

AI Technical Summary

Technical Problem

When existing continuous vacuum coolers are in use, the steam is contaminated, affecting the efficiency and wear and tear. This is mainly because temperature changes when the steam flows in the suction pipe cause substances such as salt and sugar to precipitate and form dirt.

Method used

A continuous vacuum cooler was designed, equipped with a decontamination module, including a cleaning brush roller and an automatic cleaning system. The system removes dirt from the inner wall of the suction pipe by rotating the brush. The automatic docking, cleaning and separation of the steam pipe is achieved by using a drive motor, an electric telescopic cylinder and an arc-shaped sealing clamp, reducing manual intervention.

Benefits of technology

It effectively prevents the formation of deposits on steam due to temperature changes, ensuring steam purity, improving cooling efficiency and service life, reducing manual operation, and improving operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of vacuum cooling machines, and particularly relates to a continuous vacuum cooling machine. When the continuous vacuum cooling machine is used, steam is polluted, which influences the use efficiency and use loss of the continuous vacuum cooling machine. The following scheme is proposed, which comprises a cooling placement cabinet, one side of the cooling placement cabinet is provided with a pollution removal module, the pollution removal module comprises a tool frame, one side of the pollution removal module is provided with a vacuum cooling machine body. The continuous vacuum cooling machine disclosed by the application has an automatic cleaning function through the pollution removal module, dirt on the inner wall of the suction pipeline is removed by rotating the cleaning brush roller, deposition formed due to temperature change in the flow process is prevented from adhering, the purity of steam is ensured, the cooling efficiency and service life are improved, meanwhile, the automatic butt joint, cleaning and separation of the suction pipeline are realized by driving electric components such as a driving motor, an electric telescopic cylinder, a general motor and an arc-shaped sealing quick clamping plate, manual intervention is reduced, and the operation efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the field of vacuum cooling machine technology, and more particularly to a continuous vacuum cooling machine. Background Technology

[0002] Vacuum cooling is a rapid and clean food cooling and processing technology with advantages such as short cooling time, long preservation time, and no environmental pollution. It is widely used in vacuum rapid cooling and preservation processing of fruits and vegetables after harvest to eliminate field heat and in processed cooked foods. Vacuum cooling refers to the process where an item is placed in a sealed box evacuated by a vacuum system that can withstand a certain negative pressure. As the vacuum level inside the vacuum box increases, the boiling point of water decreases, making it easier for water to vaporize. When water vaporizes, it can only absorb heat from the item itself, so the item can be cooled rapidly.

[0003] When existing continuous vacuum coolers are in use, the temperature of the pipes is lower than the dew point temperature of the steam as it flows through the suction pipes. As a result, the steam condenses into water, and the salts, sugars, and other substances dissolved in the water precipitate out and adhere to the inner wall of the pipes, forming a viscous, syrupy, or crystalline deposit. Tiny solid particles are also captured by this sticky substance, forming dirt. This contamination of the steam affects the efficiency and wear and tear of the continuous vacuum cooler. Summary of the Invention

[0004] This invention discloses a continuous vacuum cooler, which aims to solve the technical problem in the prior art where the steam is contaminated during use, affecting the efficiency and wear and tear of the continuous vacuum cooler.

[0005] This invention proposes a continuous vacuum cooler, comprising a cooling placement cabinet. A decontamination module is provided on one side of the cooling placement cabinet, and the decontamination module includes a tooling frame. A vacuum cooler body is provided on one side of the decontamination module, and a first mounting opening is provided on one side of the vacuum cooler body. A second steam pipe is fixedly connected inside the first mounting opening. A moving mechanism is provided at the bottom of the cooling placement cabinet, and a cabinet door is provided on the moving mechanism. A second mounting opening is provided on one side of the cooling placement cabinet, and a first steam pipe is fixedly connected inside the second mounting opening. Two circular holes are provided on both sides of the tooling frame, and bearings pass through the interiors of the two circular holes. A rotating mounting base is connected to the fixture. A drive motor is fixedly connected to one side of the fixture frame. The drive end of the drive motor is connected to one side of the rotating mounting base via a coupling. Two electric telescopic cylinders are fixedly connected to both sides of the rotating mounting base. Mounting rings are fixedly connected to the drive ends of the multiple electric telescopic cylinders. Telescopic springs are fixedly connected to one side of each mounting ring in a ring shape. A common suction pipe is fixedly connected to one side of the multiple telescopic springs located on the same mounting ring. A fixture frame is fixedly connected to the outside of two suction pipes located at the same level. Two circular holes are opened on both sides of the two fixture frames. The inner surfaces of the two opposing circular holes are... Both parts are connected to the same rotating cylinder via bearings. Adjusting gears are fixedly connected to the exterior of both rotating cylinders. A universal motor is fixedly connected to one side of each of the two tooling frames. The drive end of the universal motor is connected to one end of the rotating cylinder via a coupling. The opposite ends of the two horizontally positioned suction pipes are connected to the same linkage gear frame via bearings. Circular holes are installed at equal intervals on one side of each linkage gear frame. Cleaning brush rollers are fixedly connected inside the multiple mounting holes. The exterior of the cleaning brush rollers contacts the inner wall of the suction pipe. The toothed ends of the linkage gear frame mesh with the adjusting gears. The cooling placement cabinet and the vacuum cooling unit are connected... Two guide rods are fixedly connected to one side of each of the two guide rods located on the same side, and horizontal moving plates are slidably connected to the outside of the two guide rods. A tooling plate is fixedly connected to one side of each of the two tooling plates. Two circular holes 3 are opened on one side of each of the two circular holes 3. A rotating shaft is connected to the inside of each of the two circular holes 3 through a bearing. A clamping adjustment arm is fixedly connected to the outside of each of the multiple rotating shafts. A circular hole 4 is opened on one side of each of the multiple clamping adjustment arms, and the same arc-shaped sealing quick clamp is movably connected to the inside of each of the two opposite circular holes 4. A circular hole 5 is opened on one side of each of the multiple clamping adjustment arms, and an adjusting cylinder is connected to the inside of each of the multiple circular holes 5 through a bearing.

[0006] In a preferred embodiment, an electric drive rod is fixedly connected to one side of each of the two horizontal moving plates, and a lifting adjustment plate is fixedly connected to the drive end of each of the multiple electric drive rods. Limit grooves are symmetrically opened on one side of each of the multiple lifting adjustment plates, and the adjusting cylinder is located inside the limit groove. An electric telescopic rod is provided on one side of both the cooling placement cabinet and the vacuum cooling machine body, and the drive end of the electric telescopic rod is fixedly connected to one side of the adjusting slide plate.

[0007] In a preferred embodiment, a rinsing frame is fixedly connected to one side of the tooling frame, and both the rinsing frame and the tooling frame have installation openings on one side. The same hollow circular water drum plate is fixedly connected inside the two installation openings, and rinsing holes are opened at equal intervals on the side of the hollow circular water drum plate facing the rinsing frame.

[0008] In a preferred embodiment, a filter frame is fixedly connected to one side of the tooling frame, and a tooling cover plate is bolted to one side of the filter frame. A sliding opening is provided on one side of the tooling cover plate, and a filter plate is slidably connected inside the sliding opening. The discharge end of the flushing frame is connected to the inside of the filter frame through a pipe.

[0009] In a preferred embodiment, a circulating pump is fixedly connected to one side of the tooling frame, and the pumping end of the circulating pump is connected to the inside of the hollow circular pumping plate through a pumping pipe, while the suction end of the circulating pump is connected to the inside of the filter frame through a second pipe.

[0010] As can be seen from the above, the continuous vacuum cooler provided by the present invention has an automatic cleaning function through a decontamination module. The cleaning brush roller rotates to remove dirt from the inner wall of the suction pipe, preventing the deposition of steam due to temperature changes during the flow process, ensuring the purity of the steam, improving cooling efficiency and service life. At the same time, the electric components such as the drive motor, electric telescopic cylinder, general motor and arc-shaped sealing quick clamp plate realize the automatic docking, cleaning and separation of the suction pipe, reducing manual intervention and improving the beneficial effect of improving operating efficiency. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of the main structure of a continuous vacuum cooler proposed in this invention;

[0012] Figure 2 This is a side view of a continuous vacuum cooler proposed in this invention.

[0013] Figure 3 This is a schematic diagram of the decontamination module structure of a continuous vacuum cooler proposed in this invention;

[0014] Figure 4 This is a schematic diagram of the decontamination module of a continuous vacuum cooler proposed in this invention.

[0015] Figure 5 This is a schematic diagram of the arc-shaped sealing quick clamp plate part of a continuous vacuum cooler proposed in this invention;

[0016] Figure 6 This is a schematic diagram of the cleaning brush roller structure of a continuous vacuum cooler proposed in this invention;

[0017] Figure 7This is a schematic diagram of the rinsing frame section of a continuous vacuum cooler proposed in this invention.

[0018] In the diagram: 1. Cooling cabinet; 2. Cabinet door; 3. Moving mechanism; 4. Vacuum cooling unit; 5. Steam pipe one; 6. Steam pipe two; 7. Stain removal module; 701. Tooling frame; 702. Rotary mounting base; 703. Drive motor; 704. Mounting ring; 705. Telescopic spring; 706. Tooling rack; 707. Suction pipe; 708. Rotating cylinder; 709. Adjusting gear; 710. General-purpose motor; 711. Guide rod; 712. Electric telescopic rod; 713. Adjustment... 714. Slide plate; 715. Linkage toothed frame; 716. Cleaning brush roller; 717. Horizontal moving plate; 718. Tooling plate; 719. Rotating shaft; 720. Clamping and adjusting arm; 721. Arc-shaped sealing quick clamp plate; 722. Adjusting cylinder; 723. Electric drive rod; 724. Lifting and adjusting plate; 725. Limiting groove; 726. Flushing frame; 727. Hollow round water drum plate; 728. Electric telescopic cylinder; 729. Circulation pump; 720. Water drum pipe; 10. Filter frame; 11. Tooling cover plate; 12. Filter plate. Detailed Implementation

[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0020] The continuous vacuum cooler disclosed in this invention is mainly used in scenarios where the steam of the continuous vacuum cooler is contaminated, affecting the efficiency and wear and tear of the cooler.

[0021] Reference Figures 1-7A continuous vacuum cooler includes a cooling cabinet 1, a decontamination module 7 on one side of the cooling cabinet 1, the decontamination module 7 including a tooling frame 701, a vacuum cooler body 4 on one side of the decontamination module 7, and a mounting opening 1 on one side of the vacuum cooler body 4, with a steam pipe 2 6 fixedly connected inside the mounting opening 1. A moving mechanism 3 is provided at the bottom of the cooling cabinet 1, and a cabinet door 2 is provided on the moving mechanism 3. A second mounting opening 2 is provided on one side of the cooling cabinet 1, with a steam pipe 5 fixedly connected inside the mounting opening 2. Circular holes 1 are provided on both sides of the tooling frame 701, and the interiors of the two circular holes 1 are connected to the same rotating mounting seat 702 via bearings. One side of the tooling frame 701 is fixed... A drive motor 703 is connected, and the drive end of the drive motor 703 is connected to one side of the rotary mounting base 702 via a coupling. Two electric telescopic cylinders 727 are fixedly connected to both sides of the rotary mounting base 702. The drive ends of the multiple electric telescopic cylinders 727 are fixedly connected to mounting rings 704. One side of each mounting ring 704 is fixedly connected to a telescopic spring 705 in an annular shape. One side of the multiple telescopic springs 705 located on the same mounting ring 704 is fixedly connected to the same suction pipe 707. The outside of two suction pipes 707 located at the same level is fixedly connected to the same tooling frame 706, and two tooling frames 706 have two circular holes on both sides. The inside of the two opposite circular holes 706 is connected to the same bearing. Rotating cylinders 708, both of which are externally fixedly connected to adjusting gears 709. Two tooling frames 706 are each fixedly connected to one side of a universal motor 710. The drive end of the universal motor 710 is connected to one end of the rotating cylinder 708 via a coupling. Two horizontally aligned suction pipes 707 are connected to the same linkage gear frame 714 via bearings at opposite ends. Circular holes are equidistantly installed on one side of each linkage gear frame 714. Cleaning brush rollers 715 are fixedly connected inside these holes. The outer surface of the cleaning brush rollers 715 contacts the inner wall of the suction pipe 707. The toothed ends of the linkage gear frame 714 mesh with the adjusting gears 709. The cooling placement cabinet 1 and the vacuum cooling body 4 are both located on one side... Two guide rods 711 are fixedly connected, and horizontal moving plates 716 are slidably connected to the outside of the two guide rods 711 located on the same side. Tooling plates 717 are fixedly connected to one side of the two horizontal moving plates 716. Two circular holes 3 are opened on one side of the two tooling plates 717. Rotating shafts 718 are connected to the inside of the two circular holes 3 through bearings. Clamping adjustment arms 719 are fixedly connected to the outside of the multiple rotating shafts 718. Circular holes 4 are opened on one side of the multiple clamping adjustment arms 719, and the same arc-shaped sealing quick clamping plate 720 is movably connected to the inside of the two opposite circular holes 4. Circular holes 5 are opened on one side of the multiple clamping adjustment arms 719, and adjusting cylinders 721 are connected to the inside of the multiple circular holes 5 through bearings.

[0022] Reference Figures 2-7 In a preferred embodiment, an electric drive rod 722 is fixedly connected to one side of each of the two horizontal moving plates 716, and a lifting adjustment plate 723 is fixedly connected to the drive end of each of the multiple electric drive rods 722. A limit groove 724 is symmetrically opened on one side of each of the multiple lifting adjustment plates 723. An adjusting cylinder 721 is located inside the limit groove 724. An electric telescopic rod 712 is provided on one side of both the cooling placement cabinet 1 and the vacuum cooling machine body 4. The drive end of the electric telescopic rod 712 is fixedly connected to one side of the adjusting slide plate 713.

[0023] Reference Figures 2-7 In a preferred embodiment, a rinsing frame 725 is fixedly connected to one side of the tooling frame 701, and both the rinsing frame 725 and the tooling frame 701 have an installation port on one side. The same hollow round water drum plate 726 is fixedly connected inside the two installation ports, and the hollow round water drum plate 726 has rinsing holes at equal intervals on the side facing the rinsing frame 725.

[0024] Specifically, the working process of this continuous vacuum cooler mainly includes two parts: vacuum cooling and pipeline cleaning. The cooling cabinet 1 is used to place items to be cooled, such as food or fruits and vegetables. The vacuum cooler body 4 creates a low-pressure environment by drawing a vacuum, causing the moisture in the items to evaporate and absorb heat at low temperature, thereby achieving rapid cooling. Steam pipeline 1 5 and steam pipeline 2 6 are connected to the cooling cabinet 1 and the vacuum cooler body 4, respectively. Steam is transported through the suction pipeline 707. The moving mechanism 3 and the cabinet door 2 facilitate the loading, unloading and movement of items. During the cooling process, as steam flows through the suction pipe 707, temperature changes may cause condensation and the formation of deposits such as salt and sugar. Therefore, the cleaning module 7 periodically cleans the suction pipe 707. First, the electric drive rod 722 drives the lifting adjustment plate 723 to move, adjusting the position of the adjusting cylinder 721 via the limit groove 724, thereby controlling the angle of the clamping adjustment arm 719. This releases the arc-shaped sealing quick clamp 720 from the suction pipe 707 and steam pipes 5 and 6. Then, the electric telescopic rod 712 pushes the horizontal moving plate 716 along the guide rod 711, moving the arc-shaped sealing quick clamp 720 on the tooling plate 717 away from the suction pipe 707. Finally, the drive motor 703 drives the rotating mounting base 702 to rotate, allowing the suction pipe 707 to be cleaned to move further away. 7. Rotate to above the rinsing frame 725, and then activate the corresponding electric telescopic cylinder 727. The electric telescopic cylinder 727 drives the suction pipe 707 to be cleaned to move into the rinsing frame 725, so that the suction pipe 707 to be cleaned and the hollow round drum water plate 726 are at the same level. During cleaning, the hollow round drum water plate 726 has multiple rinsing holes on the side facing the rinsing frame 725, spraying high-pressure water jets to rinse the suction pipe 707 and the cleaning brush rollers 715. At the same time, the general motor 710 starts, driving the rotating cylinder 708 and the adjusting gear 709 to rotate. The adjusting gear 709 meshes with the linkage round gear frame 714, driving the linkage round gear frame 714 to rotate inside the suction pipe 707. The multiple cleaning brush rollers 715 installed on the linkage round gear frame 714 rotate accordingly, brushing away the dirt attached to the inner wall of the pipe.

[0025] In specific application scenarios, the automatic cleaning function of the decontamination module 7 uses the rotating cleaning brush roller 715 to remove dirt from the inner wall of the suction pipe 707, preventing deposits formed by temperature changes during steam flow from adhering, ensuring steam purity, improving cooling efficiency and service life. At the same time, the electric components such as the drive motor 703, electric telescopic cylinder 727, general motor 710 and arc-shaped sealing quick clamp 720 realize the automatic docking, cleaning and separation of the suction pipe 707, reducing manual intervention and improving operating efficiency.

[0026] Reference Figure 3 and Figure 7In a preferred embodiment, a filter frame 10 is fixedly connected to one side of the tooling frame 701, and a tooling cover plate 11 is bolted to one side of the filter frame 10. A sliding opening is provided on one side of the tooling cover plate 11, and a filter plate 12 is slidably connected inside the sliding opening. The discharge end of the flushing frame 725 is connected to the inside of the filter frame 10 through a pipe.

[0027] Reference Figure 3 and Figure 7 In a preferred embodiment, a circulating pump 8 is fixedly connected to one side of the tooling frame 701, and the water-blowing end of the circulating pump 8 is connected to the inside of the hollow circular water-blowing plate 726 through the water-blowing pipe 9, and the suction end of the circulating pump 8 is connected to the inside of the filter frame 10 through the second pipe.

[0028] Specifically, the circulating pump 8 draws filtered water from the filter frame 10 and delivers it to the hollow circular drum plate 726 through the water drum pipe 9. After the sewage flows into the flushing frame 725, it enters the filter frame 10 through the pipe 1. After being filtered by the filter plate 12, the impurities are intercepted, and the clean water is reused by the circulating pump 8, realizing the recycling of water resources and reducing waste.

[0029] Working principle: The working process of this continuous vacuum cooler mainly includes two parts: vacuum cooling and pipeline cleaning. The cooling cabinet 1 is used to place items to be cooled, such as food or fruits and vegetables. The vacuum cooler body 4 creates a low-pressure environment by drawing a vacuum, so that the moisture in the items evaporates and absorbs heat at low temperature, thereby achieving rapid cooling. Steam pipeline 1 5 and steam pipeline 2 6 are connected to the cooling cabinet 1 and the vacuum cooler body 4, respectively. Steam is transported through the suction pipeline 707. The moving mechanism 3 and the cabinet door 2 facilitate the loading, unloading and movement of items. During the cooling process, as steam flows through the suction pipe 707, temperature changes may cause condensation and the formation of deposits such as salt and sugar. Therefore, the cleaning module 7 periodically cleans the suction pipe 707. First, the electric drive rod 722 drives the lifting adjustment plate 723 to move, adjusting the position of the adjusting cylinder 721 via the limit groove 724, thereby controlling the angle of the clamping adjustment arm 719. This releases the arc-shaped sealing quick clamp 720 from clamping the suction pipe 707, steam pipe 5, and steam pipe 6. Then, the electric telescopic rod 712 pushes the horizontal moving plate 716 along the guide rod 711, moving the arc-shaped sealing quick clamp 720 on the tooling plate 717 away from the suction pipe 707. Next, the drive motor 703 drives the rotating mounting base 702 to rotate, causing the suction pipe 707 to be cleaned to rotate above the rinsing frame 725. Then, the corresponding electric telescopic cylinder 727 is activated, moving the suction pipe 707 to be cleaned. The device moves into the rinsing frame 725, so that the suction pipe 707 to be cleaned and the hollow drum water plate 726 are at the same level. During cleaning, the hollow drum water plate 726 has multiple rinsing holes on the side facing the rinsing frame 725, spraying high-pressure water jets to rinse the suction pipe 707 and the cleaning brush roller 715. At the same time, the general-purpose motor 710 starts, driving the rotating cylinder 708 and the adjusting gear 709 to rotate. The adjusting gear 709 meshes with the linkage gear frame 714, driving the linkage gear frame 714 to move in the suction... When the pipe 707 rotates inside, multiple cleaning brush rollers 715 installed on the toothed frame 714 rotate accordingly, brushing away the dirt attached to the inner wall of the pipe. The circulating pump 8 draws filtered water from the filter frame 10 and delivers it to the hollow circular drum plate 726 through the water drum pipe 9. After the sewage flows into the rinsing frame 725, it enters the filter frame 10 through the pipe. After being filtered by the filter plate 12, impurities are trapped, and the clean water is reused by the circulating pump 8, realizing the recycling of water resources and reducing waste.

[0030] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A continuous vacuum cooler, comprising a cooling placement cabinet (1), characterized in that, A cleaning module (7) is provided on one side of the cooling cabinet (1), and the cleaning module (7) includes a tooling frame (701). A vacuum cooling body (4) is provided on one side of the cleaning module (7), and a first mounting opening is provided on one side of the vacuum cooling body (4). A second steam pipe (6) is fixedly connected inside the first mounting opening. A moving mechanism (3) is provided at the bottom of the cooling cabinet (1), and a cabinet door (2) is provided on the moving mechanism (3). A second mounting opening is provided on one side of the cooling cabinet (1), and a first steam pipe (5) is fixedly connected inside the second mounting opening. A first round hole is provided on both sides of the tooling frame (701), and the two first round holes are connected to the same rotating mounting seat (7) through bearings. 02), A drive motor (703) is fixedly connected to one side of the tooling frame (701). The drive end of the drive motor (703) is connected to one side of the rotary mounting base (702) via a coupling. Two electric telescopic cylinders (727) are fixedly connected to both sides of the rotary mounting base (702). The drive ends of multiple electric telescopic cylinders (727) are fixedly connected to mounting rings (704). One side of multiple mounting rings (704) is fixedly connected to a telescopic spring (705). One side of multiple telescopic springs (705) located on the same mounting ring (704) is fixedly connected to the same suction pipe (707). The outside of two suction pipes (707) located at the same level is fixedly connected to the same tooling frame (703). 6), and two tooling frames (706) have two circular holes on both sides. The two opposing circular holes are connected to the same rotating cylinder (708) through bearings. Adjusting gears (709) are fixedly connected to the outside of the two rotating cylinders (708). A general-purpose motor (710) is fixedly connected to one side of the two tooling frames (706). The drive end of the general-purpose motor (710) is connected to one end of the rotating cylinder (708) through a coupling. The opposite ends of the two suction pipes (707) located at the same level are connected to the same linkage circular gear frame (714) through bearings. Circular holes are installed at equal intervals on one side of the two linkage circular gear frames (714). Cleaning brush rollers (715) are fixedly connected inside the multiple mounting circular holes. The outer side of the cleaning brush roller (715) contacts the inner wall of the suction pipe (707), and the tooth block end of the linkage round tooth frame (714) meshes with the adjusting gear (709). Two guide round rods (711) are fixedly connected to one side of the cooling placement cabinet (1) and the vacuum cooling body (4), and two guide round rods (711) located on the same side are slidably connected to the outer side of the two guide round rods (711), and two tooling plates (717) are fixedly connected to one side of the two horizontal moving plates (716). Two round holes (718) are opened on one side of the two tooling plates (717), and the interior of the two round holes (718) is connected to a rotating shaft (718) through a bearing. Clamping adjusting arms (719) are fixedly connected to the exterior of the multiple rotating shafts (718).Each of the multiple clamping and adjusting arms (719) has a circular hole four on one side, and the interior of each pair of opposite circular holes four is movably connected to the same arc-shaped sealing quick clamp plate (720). Each of the multiple clamping and adjusting arms (719) also has a circular hole five on one side, and the interior of each of the multiple circular holes five is connected to an adjusting cylinder (721) via a bearing.

2. A continuous vacuum cooler according to claim 1, characterized in that, Electric drive rods (722) are fixedly connected to one side of each of the two horizontal moving plates (716), and lifting adjustment plates (723) are fixedly connected to the driving ends of multiple electric drive rods (722). Limiting grooves (724) are symmetrically opened on one side of multiple lifting adjustment plates (723). Adjusting cylinders (721) are located inside the limiting grooves (724). Electric telescopic rods (712) are provided on one side of both the cooling placement cabinet (1) and the vacuum cooling machine body (4). The driving end of the electric telescopic rods (712) is fixedly connected to one side of the adjusting slide plate (713).

3. A continuous vacuum cooler according to claim 2, characterized in that, A rinsing frame (725) is fixedly connected to one side of the tooling frame (701), and both the rinsing frame (725) and the tooling frame (701) have an installation port on one side. The two installation ports are fixedly connected to the same hollow round water drum plate (726), and the hollow round water drum plate (726) has rinsing holes at equal intervals on the side facing the rinsing frame (725).

4. A continuous vacuum cooler according to claim 3, characterized in that, A filter frame (10) is fixedly connected to one side of the tooling frame (701), and a tooling cover plate (11) is bolted to one side of the filter frame (10). A sliding opening is provided on one side of the tooling cover plate (11), and a filter plate (12) is slidably connected inside the sliding opening. The discharge end of the flushing frame (725) is connected to the inside of the filter frame (10) through a pipe.

5. A continuous vacuum cooler according to claim 4, characterized in that, A circulating pump (8) is fixedly connected to one side of the tooling frame (701), and the water-blowing end of the circulating pump (8) is connected to the inside of the hollow circular water-blowing plate (726) through the water-blowing pipe (9), and the suction end of the circulating pump (8) is connected to the inside of the filter frame (10) through the second pipe.

Citation Information

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