Powder mixed liquid top-speed evaporation collision device based on supercritical gas collision technology

The powder mixture rapid evaporation collision device using supercritical gas collision technology, through the cooperation of stirring blades and electric telescopic rods, achieves rapid evaporation and convenient collection of powder mixtures, solving the problems of slow powder extraction speed and difficulty in collection in existing technologies.

CN223732111UActive Publication Date: 2025-12-30XINJIANG ZHENGYE ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520123192.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-20
Publication Date
2025-12-30
Estimated Expiration
2035-01-20

AI Technical Summary

Technical Problem

In existing powder mixture evaporation collision devices, excessive injection of powder mixture during the heating and evaporation process leads to insignificant evaporation effects, slow powder extraction speed, and difficulty in powder collection.

Method used

The powder mixture rapid evaporation collision device based on supercritical gas collision technology includes an evaporation collision tank, a conical gas cylinder, a stirring mechanism, and a fixing mechanism. By rotating the stirring blades and controlling the electric telescopic rod, the device achieves rapid evaporation of the mixture and convenient collection of the powder.

Benefits of technology

It achieves rapid evaporation of the mixture and efficient extraction of powder, solving the problems of slow powder extraction speed and difficulty in collecting powder in the mixture.

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Abstract

The utility model discloses a powder mixed liquid top-speed evaporation clash device based on supercritical gas clash technology, which comprises an evaporation clash tank, a conical gas cylinder, a stirring mechanism and a fixing mechanism, the stirring mechanism and the fixing mechanism are both mounted between the conical gas cylinder and the evaporation clash tank, and a lifting plate is slidably arranged on the inner wall of a limiting chute; belt wheels are rotationally connected to the inner walls of the two ends of the lifting plate, a belt strip is in transmission connection between the two belt wheels, a butt joint buckle is fixedly arranged at the bottom of a connecting shaft, and stirring blades are rotationally connected to the bottom of the inner wall of the mixed liquid container; according to the utility model, the butt-joint buckle ascends and descends to be clamped in the butt-joint hole of the stirring blade, the motor is started to enable the butt-joint buckle to drive the stirring blade to rotate, the evaporation of powder mixed liquid is accelerated, after the evaporation is finished, the butt-joint buckle ascends to be separated from the butt-joint hole through the electric telescopic rod, the mixed liquid container can be quickly taken out, and the extracted powder is collected, so that the problem that in the prior art, the extraction efficiency is high is solved. The speed of extracting the powder in the powder mixed liquid is slow and the powder is not easy to collect by an evaporation collision technology.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of powder mixed liquid evaporation collision, in particular to the powder mixed liquid extremely fast evaporation collision device based on supercritical gas collision technology. BACKGROUND

[0002] Evaporation collision refers to the generation of steam when liquid evaporates on a high-temperature surface, which generates an upward force on the liquid itself, causing the liquid to "jump" or "roll" on the surface. This phenomenon is particularly evident in the Leidenfrost effect, when water droplets come into contact with a high-temperature surface, some of the water vaporizes into water vapor due to the high temperature, and this layer of water vapor lifts the water droplets, forming a suspended state. In modern production industries, when some mixed liquids are evaporated to extract the powder therein, evaporation collision technology is usually used for operation.

[0003] However, the existing powder mixed liquid evaporation collision device injects a large amount of mixed liquid into the evaporation collision equipment for heating and evaporation during the heating and evaporation process of the mixed liquid. Due to the excessive injection of the powder mixed liquid, the mixed liquid is stacked on each other, which makes the evaporation effect of part of the water not obvious. If a stirring structure is installed therein for stirring, it is very inconvenient to collect the powder extracted later. To this end, the present design scheme proposes a powder mixed liquid extremely fast evaporation collision device based on supercritical gas collision technology. UTILITY MODEL CONTENT

[0004] The utility model aims to provide a powder mixed liquid extremely fast evaporation collision device based on supercritical gas collision technology to solve the problems raised in the background technology.

[0005] To achieve the above-mentioned purpose, the utility model provides a powder mixed liquid extremely fast evaporation collision device based on supercritical gas collision technology, which comprises an evaporation collision tank, a conical air cylinder, and a stirring mechanism and a fixing mechanism installed between the conical air cylinder and the evaporation collision tank, and the conical air cylinder is hinged to one side of the top of the evaporation collision tank.

[0006] The stirring mechanism comprises a limiting sliding groove opened in one side of the outer wall of the conical air cylinder, and one side of the inner wall of the limiting sliding groove is in communication with the inner wall of the conical air cylinder, the inner wall of the limiting sliding groove is slidably provided with a lifting plate, and the outer wall of one end of the lifting plate is penetratingly connected with the inner wall of the conical air cylinder, the inner walls of both ends of the lifting plate are rotatably connected with belt pulleys, a belt strip is transmissionally connected between the two belt pulleys, a connecting shaft is penetratingly provided on one side of the bottom of the lifting plate, and one of the belt pulleys is fixed on the outer wall of one end of the connecting shaft, and a butt joint buckle is fixedly provided at the bottom of the connecting shaft.

[0007] The inner wall of the evaporation counter-impingement tank is connected with a mixed liquid container, the bottom of the inner wall of the mixed liquid container is rotationally connected with a stirring blade, and the top of the stirring blade is provided with a docking hole.

[0008] In one example, the bottom of the inner wall of the evaporation counter-impingement tank is provided with a heating guide wire, one side of the top of the lifting plate is provided with a motor, one end of the other belt pulley is fixedly connected with the output end of the motor through the top of the lifting plate, the bottom of the inner wall of the limiting sliding groove is provided with an electric telescopic rod, and the output end of the electric telescopic rod is fixedly connected with the other side of the bottom of the lifting plate, the top of the lifting plate is fixedly provided with a partition plate, and the outer wall of the partition plate is connected with the outer wall of one side of the conical air cylinder.

[0009] In one example, the bottom of the evaporation counter-impingement tank is provided with a support ring, and the bottom of the mixed liquid container is in contact with the top of the support ring, the edge of the inner wall of the evaporation counter-impingement tank is provided with a vacuum groove, and the upper edge of the inner wall of the conical air cylinder is provided with a filter screen.

[0010] In one example, the fixing mechanism comprises four support shafts installed on one side of the evaporation counter-impingement tank, and a screw rod is rotationally installed at the central region of the four support shafts.

[0011] In one example, the outer wall of the four support shafts is provided with an L-shaped clamping strip, the inner wall of one side of the L-shaped clamping strip is threadedly connected with the outer wall of the screw rod, and one end of the screw rod is connected with a knob through the outer wall of one side of the L-shaped clamping strip.

[0012] In one example, the one side of the evaporation counter-impingement tank is fixedly provided with a control switch, and the heating guide wire, the motor and the electric telescopic rod are electrically connected with an external power source through the control switch.

[0013] Compared with the prior art, the beneficial effects of the present application are as follows: during the evaporation counter-impingement process, the electric telescopic rod is started to make the docking buckle ascend and descend through the connecting shaft so as to be clamped in the docking hole of the stirring blade, the motor is started to make the connecting shaft and the docking buckle rotate with the stirring blade, the evaporation of the powder mixed liquid is accelerated, after the evaporation is completed, the electric telescopic rod is used to lift the docking buckle to separate it from the docking hole, so that the normal opening of the conical air cylinder is not affected, and the mixed liquid container can be quickly taken out to collect the extracted powder, thereby solving the problems of slow powder extraction speed and difficulty in collecting the powder in the powder mixed liquid in the prior art. BRIEF DESCRIPTION OF DRAWINGS

[0014] Figure 1 It is a structural schematic diagram of the whole application;

[0015] Figure 2 It is a structural schematic diagram of the inside of the conical air cylinder of the application;

[0016] Figure 3 The structure diagram of the connection between the lifting plate and the connecting shaft of the utility model is shown in the figure.

[0017] Figure 4 The structure diagram of the inside of the evaporation collision tank of the utility model is shown in the figure.

[0018] Figure 5 The structure diagram of the expansion of the conical air cylinder and the evaporation collision tank of the utility model is shown in the figure.

[0019] Figure 6 The structure diagram of the expansion of the conical air cylinder and the evaporation collision tank of the utility model is shown in the figure. Figure 5 The structure diagram of the expansion of the conical air cylinder and the evaporation collision tank of the utility model is shown in the figure.

[0020] In the figure: 1, evaporation collision tank; 2, conical air cylinder; 3, stirring mechanism; 301, limiting sliding groove; 302, lifting plate; 303, belt pulley; 304, belt strip; 305, connecting shaft; 306, butt joint buckle; 307, mixed liquid container; 308, stirring blade; 309, butt joint hole; 310, heating guide wire; 311, motor; 312, electric telescopic rod; 313, partition; 4, support ring; 5, vacuum tank; 6, filter screen; 7, fixing mechanism; 701, support shaft; 702, screw rod; 703, L-shaped clamping strip; 704, knob. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0022] Please refer to Figures 1-6 The utility model provides a technical scheme: powder mixed liquid extremely fast evaporation collision device based on supercritical gas collision technology, including evaporation collision tank 1, conical air cylinder 2 and the stirring mechanism 3 and fixing mechanism 7 of being installed between conical air cylinder 2 and evaporation collision tank 1, and conical air cylinder 2 is hinged in the top of evaporation collision tank 1 one side;

[0023] The stirring mechanism 3 comprises a limiting sliding groove 301 formed on one side of the outer wall of the conical air cylinder 2, and the inner wall of the limiting sliding groove 301 is in communication with the inner wall of the conical air cylinder 2; the inner wall of the limiting sliding groove 301 is slidably provided with a lifting plate 302, and the outer wall of one end of the lifting plate 302 is penetratingly connected with the inner wall of the conical air cylinder 2; the inner wall of both ends of the lifting plate 302 is rotatably connected with a belt pulley 303; a belt strip 304 is drivingly connected between the two belt pulleys 303; a connecting shaft 305 is penetratingly arranged on one side of the bottom of the lifting plate 302, and one of the belt pulleys 303 is fixed on the outer wall of one end of the connecting shaft 305; a butt joint buckle 306 is fixedly arranged on the bottom of the connecting shaft 305.

[0024] In use, the powder mixed liquid is injected into the mixed liquid container 307 and installed in the evaporation collision tank 1, the heating guide wire 310 is started to perform the heating evaporation operation, the conical air cylinder 2 is fixed on the top of the evaporation collision tank 1 through the fixing mechanism 7, the conical air cylinder 2 is covered, the electric telescopic rod 312 is started to make the lifting plate 302 slide in the limiting sliding groove 301 with the connecting shaft 305 and the butt joint buckle 306 descending, until the butt joint buckle 306 is clamped into the butt joint hole 309 on the top of the stirring blade 308, at this time, the partition plate 313 blocks and seals the communication area between the limiting sliding groove 301 and the conical air cylinder 2, the motor 311 is started to rotate the connecting shaft 305 through the linkage of the belt pulley 303 and the belt strip 304, and then the stirring blade 308 is driven to continuously stir the mixed liquid in the mixed liquid container 307 through the butt joint buckle 306, so that the liquid is continuously stirred, the steam between the liquid and the surface of the high-temperature mixed liquid container 307 is dispersed and stirred, so that the liquid above quickly contacts the high-temperature container to accelerate the evaporation, after the evaporation is completed, the motor 311 is turned off, the electric telescopic rod 312 is started again to lift the connecting shaft 305 and the butt joint buckle 306 to separate from the butt joint hole 309, the conical air cylinder 2 is opened, and then the mixed liquid container 307 can be taken out, and the powder extracted therefrom is collected, thereby solving the problems of slow powder extraction speed and difficulty in powder collection in the prior art evaporation collision technology.

[0025] The evaporation collision tank 1 is penetratingly connected with the mixed liquid container 307, and the bottom of the inner wall of the mixed liquid container 307 is rotatably connected with the stirring blade 308; and the top of the stirring blade 308 is provided with the butt joint hole 309.

[0026] The bottom of the evaporation collision tank 1 is provided with a heating guide wire 310, one side of the top of the lifting plate 302 is provided with a motor 311, one end of the other belt pulley 303 penetrates through the top of the lifting plate 302 and is fixedly connected with the output end of the motor 311, the bottom of the inner wall of the limiting sliding groove 301 is provided with an electric telescopic rod 312, and the output end of the electric telescopic rod 312 is fixedly connected with the other side of the bottom of the lifting plate 302, the middle position of the top of the lifting plate 302 is fixedly provided with a partition plate 313, the outer wall of the partition plate 313 is penetratingly connected with the outer wall of one side of the conical air cylinder 2, and the inner wall of one side of the limiting sliding groove 301 is in communication with the inside of the air cylinder, the partition plate 313 can seal and shield this area as the lifting plate 302 descends, so that it is not easy to cause large heat loss in the evaporation collision process, and the heating evaporation is started, and the heating guide wire 310 is started to heat the mixed liquid container 307 above;

[0027] Further, the lower end of the evaporation collision tank 1 is provided with a supporting ring 4, and the bottom of the mixed liquid container 307 is in contact with the top of the supporting ring 4. The edge of the evaporation collision tank 1 is provided with a vacuum groove 5, and the upper edge of the inner wall of the conical air cylinder 2 is provided with a filter screen 6. When heating and evaporating, the water vapor is evaporated and discharged through the upper part of the conical air cylinder 2. When discharging, the impurities in the water vapor are filtered through the filter screen 6. The vacuum groove 5 is provided at the edge of the evaporation collision tank 1 to mainly reduce heat transfer and prevent the staff from touching the outer wall of the equipment to cause scalding. The mixed liquid container 307 is installed above the heating guide wire 310 by the supporting ring 4;

[0028] Further, the fixing mechanism 7 comprises four supporting shafts 701 installed on one side of the evaporation collision tank 1, and a screw rod 702 rotatably installed at the central region of the four supporting shafts 701 on one side of the evaporation collision tank 1.

[0029] The outer wall of the four supporting shafts 701 is provided with an L-shaped clamping strip 703, the inner wall of one side of the L-shaped clamping strip 703 is threadedly connected with the outer wall of the screw rod 702, one end of the screw rod 702 is connected with a knob 704 penetrating through the outer wall of one side of the L-shaped clamping strip 703, when the device is used, after the conical air cylinder 2 is closed and covered, the knob 704 is rotated with the screw rod 702, so that the L-shaped clamping strip 703 is threadedly connected with the screw rod 702 to make the L-shaped clamping strip 703 slide on the supporting shaft 701, until the upper end of the L-shaped clamping strip 703 is pressed at the upper edge of the conical air cylinder 2, so that the conical air cylinder 2 can be fixed above the evaporation collision tank 1, to prevent the steam from pushing away the conical air cylinder 2 when heating.

Claims

1. A powder mixing liquid rapid evaporation collision device based on supercritical gas collision technology, comprising an evaporation collision tank (1), a conical air cylinder (2), and a stirring mechanism (3) and a fixing mechanism (7) both installed between the conical air cylinder (2) and the evaporation collision tank (1), and the conical air cylinder (2) is hinged on one side of the top of the evaporation collision tank (1); characterized in that The stirring mechanism (3) comprises a limiting sliding groove (301) opened on one side of the outer wall of the conical air cylinder (2), and the inner wall of the limiting sliding groove (301) is in communication with the inner wall of the conical air cylinder (2), the inner wall of the limiting sliding groove (301) is slidably provided with a lifting plate (302), and the outer wall of one end of the lifting plate (302) is penetratingly connected with the inner wall of the conical air cylinder (2), the inner walls of both ends of the lifting plate (302) are rotatably connected with belt pulleys (303), a belt strip (304) is drivingly connected between the two belt pulleys (303), a connecting shaft (305) is penetratingly arranged on one side of the bottom of the lifting plate (302), and one of the belt pulleys (303) is fixed on the outer wall of one end of the connecting shaft (305), and a butt joint buckle (306) is fixedly arranged on the bottom of the connecting shaft (305). The inner wall of the evaporation collision tank (1) is penetratingly connected with a mixed liquid container (307), the bottom of the inner wall of the mixed liquid container (307) is rotatably connected with a stirring blade (308), and the top of the stirring blade (308) is provided with a butt joint hole (309) at the middle position.

2. The supercritical gas collision technique based powder mixing liquid ultrafast evaporation collision device according to claim 1, characterized in that: The bottom of the inner wall of the evaporation collision tank (1) is provided with a heating guide wire (310), one side of the top of the lifting plate (302) is provided with a motor (311), and the other end of the other belt pulley (303) penetrates through the top of the lifting plate (302) and is fixedly connected with the output end of the motor (311), the bottom of the inner wall of the limiting sliding groove (301) is provided with an electric telescopic rod (312), and the output end of the electric telescopic rod (312) is fixedly connected with the other side of the bottom of the lifting plate (302), a partition plate (313) is fixedly arranged at the middle position of the top of the lifting plate (302), and the outer wall of the partition plate (313) is penetratingly connected with the outer wall of one side of the conical air cylinder (2).

3. The supercritical gas collision technique based powder mixing and liquid flash evaporation collision device according to claim 1, characterized in that: The bottom of the inner wall of the evaporation collision tank (1) is provided with a support ring (4), and the bottom of the mixed liquid container (307) is in contact with the top of the support ring (4), a vacuum groove (5) is formed at the edge of the inner wall of the evaporation collision tank (1), and a filter screen (6) is arranged at the upper edge of the inner wall of the conical air cylinder (2).

4. The supercritical gas collision technique based powder mixing and liquid flash evaporation collision device according to claim 1, characterized in that: The fixing mechanism (7) comprises four support shafts (701) installed on one side of the evaporation collision tank (1), and a screw rod (702) is rotatably installed at the central region of the four support shafts (701) on one side of the evaporation collision tank (1).

5. The supercritical gas collision technique based powder mixing and liquid flash evaporation collision device according to claim 4, characterized in that: The outer wall of the four support shafts (701) is sleeved with an L-shaped clamping strip (703), the inner wall of one side of the L-shaped clamping strip (703) is threadedly connected with the outer wall of the screw rod (702), and one end of the screw rod (702) is connected with a knob (704) penetrating through the outer wall of one side of the L-shaped clamping strip (703).

6. The supercritical gas collision technique based powder mixing and liquid flash evaporation collision device according to claim 2, characterized in that: One side of the evaporation collision tank (1) is fixedly provided with a control switch, and the heating guide wire (310), the motor (311) and the electric telescopic rod (312) are electrically connected with the external power supply through the control switch.