Novel vacuum multi-effect energy-saving technical device

By setting up a mixing component in the vacuum multi-effect energy-saving device, and using a motor to drive the connecting rod to rotate the mixing rod, the low-temperature demineralized water and the gas-vapor mixture are fully mixed, which solves the problem of insufficient energy utilization of low-temperature demineralized water and improves the efficiency of the vacuum equipment.

CN224024755UActive Publication Date: 2026-03-24XINJINGJIE (JIANGSU) ENERGY TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In existing technologies, the mixing of low-temperature demineralized water with the gas-vapor mixture is insufficient, resulting in energy waste and failure to effectively utilize the cooling energy of the low-temperature demineralized water.

Method used

By setting up a mixing component, including a motor, connecting rod, fixing ring, and mixing rod, the low-temperature demineralized water and the gas-vapor mixture are directly and fully mixed. The motor drives the connecting rod to rotate the mixing rod, and the auxiliary rod further promotes mixing, ensuring that the low-temperature energy of the demineralized water is fully utilized.

Benefits of technology

This method achieves thorough mixing of low-temperature demineralized water and gas mixture, avoiding energy waste and improving the efficiency of vacuum equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a novel vacuum multi-effect energy-saving technical device, which comprises a vacuum multi-effect energy-saving component, a vacuum multi-effect energy-saving component, a vacuum multi-effect energy-saving component and a vacuum multi-effect energy-saving component, the mixing assembly comprises a motor, a connecting rod, a fixing ring and a mixing rod; the motor is located in the center of one side outside the cooling and depressurization mixer, the connecting rod penetrates through and is rotationally connected to the center of one side outside the cooling and depressurization mixer, the outer side end of the connecting rod is fixedly connected with the output end of the motor, the fixing ring is fixed to the inner side end of the connecting rod, and the mixing rods are arranged in a group and fixed to the surface of the fixing ring. Through the arrangement of the mixing assembly, when low-temperature demineralized water enters the cooling and depressurization mixer, the motor drives the connecting rod to rotate through the output end, so that the connecting rod drives the mixing rod to synchronously rotate through the fixing ring, and the rotating mixing rod directly and fully mixes the low-temperature demineralized water with a gas-steam mixture; the low-temperature energy of the demineralized water is fully utilized, and energy waste is prevented.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a vacuum energy saving technical field, concretely is a novel vacuum multi -effect energy saving technology device. BACKGROUND

[0002] Vacuum energy saving is a method for realizing energy saving and efficiency promotion by using vacuum technology, and the method extends a vacuum multi -effect energy saving technology device.

[0003] Through the search, the authorized publication number CN216115472U of China authorizes a novel vacuum multi -effect energy saving technology device, including: the inlet end of the cooling and pressure reducing mixer is provided with a bypass inlet valve; The outlet end of the gas-liquid separation equipment is provided with a bypass air outlet valve; The exhaust condenser is communicated with the gas-liquid separation equipment; The vacuum extraction pipeline is connected with the cooling and pressure reducing mixer and the gas-liquid separation equipment in parallel, and the parallel part of the vacuum extraction pipeline is provided with a partition valve; The vacuum extraction equipment is communicated with the vacuum extraction pipeline.The utility model uses low-temperature desalted water as cooling water source, and directly contacts and mixes with the gas-steam mixture in the vacuum extraction pipeline, so that the gas-steam mixture is cooled before entering the vacuum extraction equipment, thereby indirectly improving the output of the vacuum extraction equipment, and the effect of further improving the vacuum of the wet cooling unit is achieved.

[0004] In the above-mentioned patent document, the low-temperature desalted water from the water inlet pipe is only directly contacted and mixed with the gas-steam mixture in the cooling and pressure reducing mixer, which is used to cool and condense most of the steam, but in this process, the low-temperature energy of the desalted water may not be fully utilized, and there is a certain waste of energy, therefore, an auxiliary mixing energy saving technology device is needed to make the low-temperature desalted water and the gas-steam mixture fully mixed. UTILITY MODEL CONTENTS

[0005] The utility model aims at providing a novel vacuum multi -effect energy saving technology device to solve the problems raised in the above background technology.

[0006] The utility model is a novel vacuum multi -effect energy saving technology device, which comprises:

[0007] The vacuum multi -effect energy saving assembly comprises a cooling and pressure reducing mixer;

[0008] The mixing assembly comprises a motor, a connecting rod, a fixed ring and a mixing rod; the motor is located at the center of one side outside the cooling and pressure reducing mixer, the connecting rod penetrates and is rotationally connected to the center of one side outside the cooling and pressure reducing mixer, the connecting rod is fixedly connected to the output end of the motor at the outer side end, the fixed ring is fixed to the inner side end of the connecting rod, and the mixing rod is arranged in a group and is fixed to the surface of the fixed ring.

[0009] Further, the opposite end surfaces of the mixing rod are fixedly connected with auxiliary rods, the auxiliary rods are arranged in groups, and a fixed frame is fixedly connected to the center of one side of the outside of the cooling and decompression mixer.

[0010] Further, the motor is located inside the fixed frame and is fixedly connected with the fixed frame, the penetrating section of the connecting rod is fixedly connected with a group of sealing rings, and the sealing rings are tightly attached to the inner and outer sides of the penetrating section of the cooling and decompression mixer.

[0011] Further, the vacuum multi-effect energy-saving assembly further comprises a gas-liquid separator, a steam condenser, a vacuum extractor, a connecting pipe and a water inlet pipe; the gas-liquid separator is located on one side below the cooling and decompression mixer, the steam condenser is located on the other side of the cooling and decompression mixer, the vacuum extractor is located on one side above the gas-liquid separator, the connecting pipe is fixed between the inner sides of the cooling and decompression mixer, the gas-liquid separator, the steam condenser and the vacuum extractor, and the water inlet pipe is fixed to the center of the other side of the outside of the cooling and decompression mixer.

[0012] Further, the anti-misrotation assembly is further comprised;

[0013] The anti-misrotation assembly comprises fixed rods, a connecting cylinder, a moving rod and a spring; the fixed rods are arranged in groups and are fixedly arranged at equal intervals on one side of the outside of the cooling and decompression mixer, the connecting cylinder is fixedly arranged between the outer side ends of the fixed rods, the moving rod is slidingly connected to the inner side of the connecting cylinder and is located above the outer side ends of the connecting rod, and the spring is fixedly arranged between the inner side end of the connecting cylinder and the inner side end of the moving rod.

[0014] Further, a limiting hole is formed in the outer side end surface of the connecting rod, the bottom end of the moving rod is inserted into the limiting hole, a plug-in hole is formed in the top end of the connecting cylinder, and a pull rod is slidingly connected to the inner side of the plug-in hole.

[0015] Further, the bottom end of the pull rod is fixedly connected with the inner side end of the moving rod, a circular hole is formed in the upper end of the pull rod, a threaded rod is screw-connected to the inner side of the circular hole, and one end of the threaded rod penetrates into the inner side of the cooling and decompression mixer.

[0016] The utility model has the following beneficial effects:

[0017] The utility model discloses a mixing assembly is arranged, when low-temperature desalted water enters the cooling and decompression mixer, the motor drives the connecting rod to rotate through the output end, makes the connecting rod drive the mixing rod synchronous rotation through the fixed ring, and the rotating mixing rod mixes low-temperature desalted water and gas directly and fully, makes the low-temperature energy of desalted water be fully utilized, prevents energy waste. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiment description, obviously, the drawings described in the following description are only some embodiments of the present application, and for the ordinary skilled in the art, other drawings can also be obtained without creative labor based on these drawings.

[0019] Fig. 1 It is the appearance structure schematic diagram of the present application;

[0020] Fig. 2 It is the mixed component structure schematic diagram of the present application;

[0021] Fig. 3 It is the connecting rod and auxiliary rod structure schematic diagram of the present application;

[0022] Fig. 4 It is the anti-misrotation component structure schematic diagram of the present application;

[0023] Fig. 5 It is the anti-misrotation component exploded structure schematic diagram of the present application;

[0024] Fig. 6 It is the threaded rod use state structure schematic diagram of the present application.

[0025] In the drawings, the component list represented by each sign is as follows:

[0026] 11, temperature and pressure reducing mixer; 12, gas-liquid separator; 13, exhaust condenser; 14, vacuum extractor; 15, connecting pipe; 16, water inlet pipe; 21, motor; 22, connecting rod; 23, fixed ring; 24, mixing rod; 25, auxiliary rod; 26, fixed frame; 27, sealing ring; 31, fixed rod; 32, connecting cylinder; 33, moving rod; 34, spring; 35, limiting hole; 36, plug-in hole; 37, pull rod; 38, circular hole; 39, threaded rod. DETAILED DESCRIPTION

[0027] The technical scheme in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application, obviously, the described embodiments are only some embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by the ordinary skilled in the art without creative labor are within the protection scope of the present application.

[0028] In order to make the purpose, technical scheme and advantages of the present application more clear, the following will further describe the embodiments of the present application in combination with the drawings.

[0029] Please refer to Figs. 1-3As shown, the utility model is a novel vacuum multi-effect energy-saving technology device, comprising

[0030] The vacuum multi-effect energy-saving assembly comprises a temperature and pressure reducing mixer 11.

[0031] The vacuum multi-effect energy-saving assembly further comprises a gas-liquid separator 12, a steam condenser 13, a vacuum extractor 14, a connecting pipe 15 and a water inlet pipe 16. The gas-liquid separator 12 is located on one side below the temperature and pressure reducing mixer 11, the steam condenser 13 is located on the other side of the temperature and pressure reducing mixer 11, the vacuum extractor 14 is located on one side above the gas-liquid separator 12, the connecting pipe 15 is fixed between the inner sides of the temperature and pressure reducing mixer 11, the gas-liquid separator 12, the steam condenser 13 and the vacuum extractor 14, and the water inlet pipe 16 is fixed to the center of the other side outside the temperature and pressure reducing mixer 11.

[0032] The temperature and pressure reducing mixer 11 is used for placing gas-steam mixture and low-temperature desalted water, the gas-liquid separator 12 is used for separating gas-steam mixture and water, the steam condenser 13 is used for condensing gas, the vacuum extractor 14 is used for placing steam, the connecting pipe 15 is used for connecting between the inner sides of the temperature and pressure reducing mixer 11, the gas-liquid separator 12, the steam condenser 13 and the vacuum extractor 14, and the water inlet pipe 16 is used for allowing desalted water to enter the temperature and pressure reducing mixer 11.

[0033] The mixing assembly comprises a motor 21, a connecting rod 22, a fixing ring 23 and mixing rods 24. The motor 21 is located at the center of one side outside the temperature and pressure reducing mixer 11, the connecting rod 22 penetrates and is rotationally connected to the center of one side outside the temperature and pressure reducing mixer 11, the outer end of the connecting rod 22 is fixedly connected with the output end of the motor 21, the fixing ring 23 is fixed to the inner end of the connecting rod 22, and the mixing rods 24 are arranged in a group and are fixed to the surface of the fixing ring 23.

[0034] The motor 21 is used for driving the connecting rod 22, the connecting rod 22 is used for connecting the fixing ring 23 and driving the mixing rods 24 to rotate, the fixing ring 23 is used for connecting the mixing rods 24 and the connecting rod 22, and the mixing rods 24 are used for directly contacting and mixing low-temperature desalted water and gas-steam mixture.

[0035] The opposite end surfaces of the mixing rods 24 are fixedly connected with auxiliary rods 25, the auxiliary rods 25 are arranged in a group, and a fixing frame 26 is fixedly connected to the center of one side outside the temperature and pressure reducing mixer 11.

[0036] The motor 21 is located inside the fixing frame 26 and is fixedly connected thereto, a group of sealing rings 27 are fixedly connected to the penetrating section of the connecting rod 22, and the sealing rings 27 are tightly attached to the inner and outer sides of the penetrating section of the temperature and pressure reducing mixer 11.

[0037] The auxiliary rod 25 is used to further assist the direct mixing of the low-temperature demineralized water and the gas-vapor mixture. There are four auxiliary rods 25 in each group. The fixing bracket 26 is used to fix the motor 21. The sealing ring 27 is used to seal the passage between the connecting rod 22 and the cooling and depressurizing mixer 11.

[0038] Working principle: When the components are not in use, the motor 21 does not rotate. When the low-temperature demineralized water enters the cooling and depressurizing mixer 11, the motor 21 starts and drives the connecting rod 22 to rotate through the output end. This causes the connecting rod 22 to drive the mixing rod 24 to rotate synchronously through the fixing ring 23. The rotating mixing rod 24 directly and fully mixes the low-temperature demineralized water with the gas-vapor mixture. At the same time, the mixing rod 24 drives the auxiliary rod 25 to rotate together, which further promotes the direct mixing of the low-temperature demineralized water with the gas-vapor mixture. This ensures that the low-temperature energy of the demineralized water is fully utilized and prevents energy waste.

[0039] Please see Figs. 1-2 , Figs. 4-6 As shown, this embodiment, based on the above embodiment, further includes:

[0040] Anti-misalignment component;

[0041] The anti-misoperation component includes a fixed rod 31, a connecting cylinder 32, a movable rod 33, and a spring 34. The fixed rods 31 are arranged in a group and are fixed at equal intervals on one side of the cooling and depressurizing mixer 11. The connecting cylinder 32 is fixed between the outer ends of the fixed rods 31. The movable rod 33 is slidably connected to the inner side of the connecting cylinder 32 and is located above the outer end of the connecting rod 22. The spring 34 is fixed between the inner end of the connecting cylinder 32 and the inner end of the movable rod 33.

[0042] The fixed rod 31 is used to connect the connecting cylinder 32. The connecting cylinder 32 is used to connect and move the spring 34 and the moving rod 33. The moving rod 33 is used to limit the connecting rod 22 when it is idle to prevent the connecting rod 22 from turning accidentally. The spring 34 is used to move the moving rod 33.

[0043] A limiting hole 35 is provided on the outer end surface of the connecting rod 22, and the bottom end of the moving rod 33 is inserted into the limiting hole 35. A insertion hole 36 is provided on the top end of the connecting cylinder 32, and a pull rod 37 is slidably connected to the inner side of the insertion hole 36.

[0044] The bottom end of the pull rod 37 is fixedly connected to the inner end of the moving rod 33. A circular hole 38 is opened at the upper end of the pull rod 37. A threaded rod 39 is threadedly connected to the inner side of the circular hole 38. One end of the threaded rod 39 passes through the inner side of the cooling and pressure reducing mixer 11.

[0045] The limiting hole 35 is used for connecting the bottom end of the moving rod 33 and the connecting rod 22, the moving rod 33 is inserted into the limiting hole 35, so that the moving rod 33 limits the connecting rod 22 when it is idle, and prevents the connecting rod 22 from rotating due to unexpected conditions of the motor 21, the insertion hole 36 is used for the movement of the pull rod 37, and the circular hole 38 is used for the insertion and rotation of the threaded rod 39, and the cooling and decompression mixer 11 is provided with a groove at the connection position of one end of the threaded rod 39, the pull rod 37 is pulled upwards, so that the pull rod 37 drives the spring 34 to contract through the moving rod 33, the moving rod 33 moves into the connecting barrel 32, the bottom end of the moving rod 33 is moved out of the limiting hole 35, so that the connecting rod 22 is used conveniently, at this time, the circular hole 38 on the pull rod 37 is aligned with the groove on the outer side of the cooling and decompression mixer 11, the threaded rod 39 is inserted into the circular hole 38 and the groove in a rotating manner, so that the pull rod 37 and the moving rod 33 after being moved upwards are limited.

[0046] Working principle: when the assembly is not used, the bottom end of the moving rod 33 is inserted into the limiting hole 35, when the connecting rod 22 is used, the pull rod 37 is pulled upwards, the pull rod 37 moves in the insertion hole 36, so that the pull rod 37 drives the spring 34 to contract through the moving rod 33, the moving rod 33 moves into the connecting barrel 32 through the spring 34, the bottom end of the moving rod 33 is moved out of the limiting hole 35, at this time, the circular hole 38 on the pull rod 37 is aligned with the groove on the outer side of the cooling and decompression mixer 11, the threaded rod 39 is held by hand, the threaded rod 39 is inserted into the circular hole 38 and the groove in a rotating manner, so that the threaded rod 39 is connected with the pull rod 37 and the cooling and decompression mixer 11 through threads, so that the pull rod 37 and the moving rod 33 after being moved upwards are limited, and the connecting rod 22 is used conveniently.

[0047] The preferred embodiments disclosed above are only used to help explain the utility model. The preferred embodiments do not describe all the details, and the utility model is not limited to the specific implementation manner. Obviously, according to the content of the description, many modifications and changes can be made. The description selects and specifically describes these embodiments, in order to better explain the principle and practical application of the utility model, so that the person skilled in the art can well understand and utilize the utility model. The utility model is limited by the claims and the whole scope and equivalents.

Claims

1. A novel vacuum multi-effect energy-saving technology device, characterized in that, include: A vacuum multi-effect energy-saving component, wherein the vacuum multi-effect energy-saving component includes a cooling and pressure-reducing mixer (11); The mixing assembly includes a motor (21), a connecting rod (22), a fixing ring (23), and mixing rods (24). The motor (21) is located at the center of the outside of the cooling and depressurizing mixer (11). The connecting rod (22) passes through and is rotatably connected to the center of the outside of the cooling and depressurizing mixer (11). The outer end of the connecting rod (22) is fixedly connected to the output end of the motor (21). The fixing ring (23) is fixed to the inner end of the connecting rod (22). The mixing rods (24) are arranged in a group and are all fixed to the surface of the fixing ring (23).

2. The novel vacuum multi-effect energy-saving technology device according to claim 1, characterized in that: An auxiliary rod (25) is fixedly connected to the opposite end surface of the mixing rod (24). The auxiliary rods (25) are arranged in a set. A fixing frame (26) is fixedly connected to the center of one side of the cooling and pressure reducing mixer (11).

3. The novel vacuum multi-effect energy-saving technology device according to claim 1, characterized in that: The motor (21) is located inside the fixed frame (26) and the two are fixedly connected. A set of sealing rings (27) is fixedly connected to the through section of the connecting rod (22). The sealing rings (27) are tightly attached to the inside and outside of the through section of the cooling and depressurizing mixer (11).

4. The novel vacuum multi-effect energy-saving technology device according to claim 1, characterized in that: The vacuum multi-effect energy-saving component also includes a gas-liquid separator (12), an exhaust condenser (13), a vacuum pump (14), a connecting pipe (15), and a water inlet pipe (16). The gas-liquid separator (12) is located on one side below the cooling and depressurizing mixer (11), the exhaust condenser (13) is located on the other side of the cooling and depressurizing mixer (11), the vacuum pump (14) is located on one side above the gas-liquid separator (12), the connecting pipe (15) is fixed between the cooling and depressurizing mixer (11), the gas-liquid separator (12), the exhaust condenser (13), and the vacuum pump (14), and the water inlet pipe (16) is fixed at the center of the other side of the cooling and depressurizing mixer (11).

5. The novel vacuum multi-effect energy-saving technology device according to claim 1, characterized in that: It also includes components to prevent accidental conversion; The anti-misrotation component includes a fixed rod (31), a connecting cylinder (32), a moving rod (33), and a spring (34). The fixed rods (31) are arranged in a group and are fixed at equal intervals to one side of the cooling and depressurizing mixer (11). The connecting cylinder (32) is fixed between the outer ends of the fixed rods (31). The moving rod (33) is slidably connected to the inner side of the connecting cylinder (32) and located above the outer end of the connecting rod (22). The spring (34) is fixed between the inner end of the connecting cylinder (32) and the inner end of the moving rod (33).

6. The novel vacuum multi-effect energy-saving technology device according to claim 1, characterized in that: The outer end surface of the connecting rod (22) has a limiting hole (35), the bottom end of the moving rod (33) is inserted into the limiting hole (35), the top end of the connecting cylinder (32) has an insertion hole (36), and a pull rod (37) is slidably connected to the inner side of the insertion hole (36).

7. A novel vacuum multi-effect energy-saving technology device according to claim 6, characterized in that: The bottom end of the pull rod (37) is fixedly connected to the inner end of the moving rod (33). A circular hole (38) is opened at the upper end of the pull rod (37). A threaded rod (39) is threadedly connected to the inner side of the circular hole (38). One end of the threaded rod (39) passes through the inner side of the cooling and depressurizing mixer (11).

Citation Information

Patent Citations

  • Novel vacuum multi-effect energy-saving technical device

    CN216115472U