A pressurized gas-water separator based on ship equipment

CN114345014BActive Publication Date: 2025-10-24天长市蓝天船舶设备制造有限公司
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Patent Information

Application Number
CN202111503141.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-12-10
Publication Date
2025-10-24
Estimated Expiration
2041-12-10

AI Technical Summary

Technical Problem

The gas-water separators used in existing marine equipment process a mixture of gas, water and oil. The oil has a certain viscosity, which causes the oil to adhere to the cylinder wall, blocking the deflection of the gas and reducing the separation effect.

Method used

A pressurized gas-water separator based on ship equipment is designed. By setting up a gas dispersion mechanism, a pressurization mechanism and a sealing mechanism, and utilizing the movement of the threaded rod and the pressurization plate, the gas residue in the separator box is reduced, the gas density is increased, the water vapor is condensed and discharged, and the oil is prevented from adhering to the cylinder wall.

Benefits of technology

It effectively solves the problem of reduced separation effect caused by oil adhesion on the cylinder wall, improves the gas-water separation efficiency, reduces the adhesion of water vapor on the cylinder wall, and enhances the separation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses the field of gas-water separator, and relates to a pressurized gas-water separator based on ship equipment, which comprises a mounting box, a gas distribution mechanism is arranged on the inner side wall of the mounting box, the gas distribution mechanism comprises a liquid distribution box, a plurality of gas distribution boxes in array distribution are fixedly connected to the surface of the liquid distribution box, gas distribution holes are formed in the end of the gas distribution boxes, and the liquid distribution box is fixedly connected to the bottom end of the inner side wall of the mounting box. When the first pressurizing plate and the second pressurizing plate move away from each other, the pressure in the mounting box is reduced, the gas remaining in the gas distribution boxes is sucked into the mounting box, then the first pressurizing plate and the second pressurizing plate move towards each other, the sucked gas is compressed and condensed into water, the gas remaining in the liquid distribution box is reduced, the problem that oil adheres to the cylinder wall and blocks the gas baffle is avoided, a large amount of water vapor adheres to the cylinder wall, and thus the separation effect is reduced.
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Description

TECHNICAL FIELD

[0001] The application discloses a kind of based on ship equipment pressurization gas-water separator in the field of gas-water separator. BACKGROUND

[0002] Gas-water separator is mainly used for separating gas and liquid in liquid-containing system, and has the advantages of high water removal efficiency and small size. The working principle of the gas-water separator is that, due to the difference in density between gas and liquid, when the liquid and gas flow together, if a blockage is encountered, the gas will be deflected and go away, while the liquid will continue to have a forward speed due to inertia, and the forward liquid will be attached to the blocking wall and will be collected together due to the action of gravity and then discharged through a discharge pipe.

[0003] In the prior art, the gas-water separator used in ship equipment is used to separate liquid formed by mixing gas, water and oil, and the oil has a certain viscosity. When the liquid passes through the separator, the oil will adhere to the cylinder wall and block the deflection of the gas, so that a large amount of water vapor is attached to the cylinder wall, thereby reducing the separation effect.

[0004] Therefore, the application provides a kind of based on ship equipment pressurization gas-water separator to solve the above problems. SUMMARY

[0005] The application aims to provide a kind of based on ship equipment pressurization gas-water separator to solve the above problems in the background art.

[0006] To achieve the above-mentioned purpose, the application provides the following technical scheme: a kind of based on ship equipment pressurization gas-water separator, including installation box, the installation box inner side wall is provided with gas distribution mechanism, the gas distribution mechanism includes liquid distribution tank, the surface of the liquid distribution tank is fixedly connected with a plurality of gas distribution boxes arranged in an array, the end of the gas distribution box is provided with a gas distribution hole, and the liquid distribution tank is fixedly connected to the bottom end of the inner side wall of the installation box.

[0007] The surface of the liquid distribution tank is provided with a pressurizing mechanism, the pressurizing mechanism comprises two threaded rods, the top end of the threaded rod penetrates through the top end of the mounting box and is rotationally connected with the top end of the mounting box, the bottom end of the threaded rod is fixedly connected with a connecting plate, the connecting plate is rotationally connected on the inner side wall of the mounting box, the connecting plate is rotationally connected on the liquid distribution tank, the top end surfaces of the two threaded rods are commonly screw-connected with a first pressurizing plate, the bottom end surfaces of the two threaded rods are commonly screw-connected with a second pressurizing plate, the first pressurizing plate and the second pressurizing plate are both slidingly connected on the inner side wall of the mounting box, the top end surface of the liquid distribution tank and the top end surface of the mounting box are commonly fixedly connected with a liquid injection pipe, the bottom end surface of the liquid distribution tank and the bottom end surface of the mounting box are commonly fixedly connected with a liquid discharge pipe, the bottom end of the mounting box is fixedly connected with a drain pipe, the first pressurizing plate and the surface of the liquid distribution tank are commonly provided with a sealing mechanism, the liquid distribution tank is provided with a separation mechanism, and the top end of the mounting box is provided with a driving mechanism.

[0008] In operation, the air-water separator used in the ship instrument in the prior art has the problem that the liquid treated is a liquid mixture of gas, water and oil, and the oil has certain viscosity, and when the liquid is separated by the separator, the oil will adhere to the cylinder wall, block the gas baffle, cause a large amount of water vapor to adhere to the cylinder wall, and reduce the separation effect. The technical scheme can solve the above problems, and the specific operation is as follows: first, the liquid is injected into the separation mechanism through the liquid injection pipe, when the liquid is separated by the separation mechanism, since the surface of the liquid distribution tank is fixedly connected with a plurality of air distribution boxes, when the oil in the liquid adheres to the inner side wall of the liquid distribution tank and causes blockage, the gas will flow into the air distribution box, the driving mechanism is started, the two threaded rods start to rotate, the first pressurizing plate moves upward, the second pressurizing plate moves downward, the pressure in the mounting box decreases, the residual air in the liquid distribution tank is accelerated into the mounting box through the air distribution holes at the end of the air distribution box, the residual air in the liquid distribution tank is prevented from being blocked in the liquid distribution tank, the water in the liquid adheres to the inner side wall of the liquid distribution tank and cannot be separated, and at the same time, when the first pressurizing plate and the second pressurizing plate move to the end of the threaded rod respectively, under the action of the driving mechanism, the first pressurizing plate moves downward, the second pressurizing plate moves upward, the sealing mechanism is opened, the air distribution holes are blocked, the air in the mounting box is compressed, the air density in the mounting box is increased, the water vapor in the mounting box is condensed into liquid and stays on the second pressurizing plate, the water ratio in the gas is reduced, and then the water is discharged through the drain pipe and the oil is discharged through the liquid discharge pipe, thereby solving the problem that when the separator separates, the oil adheres to the cylinder wall, blocks the gas baffle, causes a large amount of water vapor to adhere to the cylinder wall, and reduces the separation effect.

[0009] As a further scheme of the present application, the second booster plate top end is funnel-shaped, the distribution tank bottom end surface is provided with a leakage groove, and the connecting plate top end surface is provided with a flow-through hole; in operation, after the compressed air is finished, the gas in the mounting tank will pass through the air dispersing hole and re-enter the distribution tank, thereby causing a large amount of water vapor to adhere to the cylinder wall, thereby reducing the separation effect; by providing the leakage groove, when the second booster plate moves upward to the leakage groove, the gas in the mounting tank flows out through the leakage groove, and since the second booster plate is funnel-shaped, the condensed water flows to the connecting plate surface through the second booster plate and the leakage groove, and then is discharged through the flow-through hole, thereby avoiding the problem of gas backflow into the distribution tank, causing a large amount of water vapor to adhere to the cylinder wall, thereby reducing the separation effect.

[0010] As a further scheme of the present application, the sealing mechanism includes a plurality of arrayed sliding rods, the sliding rods are symmetrically fixedly connected in the sliding grooves opened outside the distribution tank, reset springs are sleeved on the surfaces of the sliding rods, the two ends of the reset springs are fixedly connected to the annular connecting ring and the distribution tank sliding groove, respectively, L-shaped iron attracting frames are arrayed and fixedly connected to the surface of the annular connecting ring, a ring-shaped connecting frame is fixedly connected to the bottom ends of the plurality of L-shaped iron attracting frames, sealing plates are arrayed and fixedly connected to the surface of the ring-shaped connecting frame corresponding to the end part of the air dispersing tank, a connecting rod is fixedly connected to the plurality of ring-shaped connecting frames, and a rotary pushing mechanism is arranged on the surfaces of the first booster plate top end and the second booster plate; in operation, when the first booster plate moves upward and the second booster plate moves downward, the annular connecting ring moves downward under the action of the rotary pushing mechanism and the connecting rod, the sealing plate cancels the sealing of the air dispersing, the gas in the air dispersing tank enters the mounting tank through the air dispersing hole, when the first booster plate moves to the highest position and the second booster plate moves to the lowest position, the sealing plate re-seals the end part of the air dispersing tank under the action of the rotary pushing mechanism and the reset spring, thereby avoiding the problem of gas re-entering the air dispersing tank from the air dispersing hole when the gas in the mounting tank is compressed, when the first booster plate moves to the lowest position and the second booster plate moves to the highest position, the sealing plate instantaneously separates from the end part of the air dispersing tank under the action of the rotary pushing mechanism, thereby preparing for the gas to flow out of the air dispersing tank in advance.

[0011] As a further scheme of the present application, the rotating pushing mechanism comprises a plurality of magnetic blocks, the magnetic blocks are fixedly connected to the surface of the first booster plate, a first pushing block is fixedly connected to the surface of the first booster plate symmetrically, and a second pushing block is fixedly connected to the inner side wall of the mounting box symmetrically; during operation, when the second booster plate moves to the lowest point, the first pushing block and the second pushing block at the bottom end extrude and pull, so that the second booster plate rotates, the magnetic blocks are separated from the L-shaped magnetic bracket, the repulsive force is cancelled, and the sealing plate moves upward under the action of the reset spring, instantaneously seals the port of the air dispersion box, and then when the second booster plate moves to the highest point, the first pushing block and the second pushing block at the top end extrude and pull, so that the second booster plate resets, the magnetic blocks repel the L-shaped magnetic bracket again, and the sealing plate moves downward, instantaneously cancelling the sealing of the port of the air dispersion box, and avoiding that the gas in the mounting box reenters the air dispersion box.

[0012] As a further scheme of the present application, the separating mechanism comprises a hollow separating shaft, the hollow separating shaft is located in the separation tank, the top end of the hollow separating shaft is fixedly connected to the top end of the inner side of the mounting box, a spiral conveying blade is fixedly connected to the surface of the hollow separating shaft, the top end outer side wall of the hollow separating shaft, the separation tank and the mounting box are fixedly connected in communication with an exhaust pipe, and a separation plate is fixedly connected to the bottom end of the separation tank; during operation, liquid is injected into the separation tank through the liquid injection pipe, then under the action of the spiral conveying blade, due to the different densities of the gas and the liquid, when the liquid and the gas flow together, the liquid is blocked by the separation tank, the gas is deflected and discharged through the exhaust pipe, and the liquid continues to move forward at a speed to the bottom end of the separation tank due to inertia, is separated and precipitated through the separation plate, finally, the water in the liquid is discharged through the drain pipe, and the oil is discharged through the liquid discharge pipe, so that the water-oil separation effect is achieved.

[0013] As a further scheme of the present application, the driving mechanism comprises a servo motor, the output shaft of the servo motor is fixedly connected to the top end of one of the threaded rods, and the top end surfaces of the two threaded rods are jointly driven by a belt; during operation, the transmission of the servo motor and the belt provides power for the rotation of the threaded rod.

[0014] Compared with the prior art, the present application has the following beneficial effects:

[0015] 1. By arranging the air dispersion mechanism, the booster mechanism and the sealing mechanism, when the first booster plate and the second booster plate move away from each other, the pressure in the mounting box decreases, the gas remaining in the air dispersion box is sucked into the mounting box, then the first booster plate and the second booster plate move towards each other, so that the sucked gas is compressed and condensed into water, the gas residue in the separation tank is reduced, the problem that the oil adheres to the cylinder wall and blocks the deflection of the gas is avoided, a large amount of water vapor is attached to the cylinder wall, and thus the separation effect is reduced.

[0016] 2. The application sets the leakage groove and the flow hole, when the second booster plate moves up to the leakage groove, the gas in the installation box flows out through the leakage groove, at the same time, since the second booster plate is the leakage hole, the condensed water flows to the surface of the connecting plate through the second booster plate and the leakage groove, and then is discharged through the flow hole, avoiding the problem that the gas backflow enters into the separation tank, causing a large amount of water vapor to adhere to the cylinder wall, thereby reducing the separation effect. BRIEF DESCRIPTION OF DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0018] Figure 1 It is the overall sectional view in the present application;

[0019] Figure 2 It is the overall sectional view in the present application; Figure 1 It is the enlarged view of A in the present application;

[0020] Figure 3 It is the enlarged view of B in the present application; Figure 1 It is the enlarged view of B in the present application;

[0021] Figure 4 It is the overall structure schematic diagram (hidden installation box) in the present application;

[0022] Figure 5 It is the connection diagram of the separation mechanism in the present application.

[0023] In the drawings, the components represented by each reference numeral are listed as follows:

[0024] Installation box 1, separation tank 2, air diffuser tank 3, air diffuser hole 4, threaded rod 5, connecting plate 6, first booster plate 7, second booster plate 8, liquid injection pipe 9, liquid discharge pipe 10, drain pipe 11, leakage groove 12, flow hole 13, slide rod 14, annular connecting ring 15, reset spring 16, L-shaped magnet holder 17, annular connecting holder 18, connecting rod 19, magnet block 20, first push block 21, second push block 22, hollow separation shaft 23, sealing plate 24, spiral conveying blade 25, exhaust pipe 26, separation plate 27, private service motor 28, belt 29. DETAILED DESCRIPTION

[0025] Clearly, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those ordinarily skilled in the art without creative work fall within the scope of the present application.

[0026] Please refer to Figures 1-5 The present application provides a technical solution: a ship equipment based on pressure gas-water separator, including installation box 1, the inner side wall of installation box 1 is provided with a gas distribution mechanism, the gas distribution mechanism includes a distribution box 2, the surface of distribution box 2 is fixedly connected with a plurality of array distributed gas distribution boxes 3, the end of gas distribution box 3 is provided with a gas distribution hole 4, the distribution box 2 is fixedly connected to the bottom end of the inner side wall of installation box 1;

[0027] The surface of distribution box 2 is provided with a pressure increasing mechanism, the pressure increasing mechanism includes two threaded rods 5, the top end of threaded rod 5 penetrates the top end of installation box 1 and is rotatably connected with the top end of installation box 1, the bottom end of threaded rod 5 is fixedly connected with a connecting plate 6, the connecting plate 6 is rotatably connected to the inner side wall of installation box 1, the connecting plate 6 is rotatably connected to the distribution box 2, the top end surface of two threaded rods 5 is commonly screw connected with a first pressure plate 7, the bottom end surface of two threaded rods 5 is commonly screw connected with a second pressure plate 8, the first pressure plate 7 and the second pressure plate 8 are both slidingly connected to the inner side wall of installation box 1, the top end surface of distribution box 2 and the top end surface of installation box 1 are commonly fixedly connected with a liquid injection pipe 9, the bottom end surface of distribution box 2 and the bottom end surface of installation box 1 are commonly fixedly connected with a liquid discharge pipe 10, the bottom end of installation box 1 is fixedly connected with a drain pipe 11, the first pressure plate 7 and the surface of distribution box 2 are commonly provided with a sealing mechanism, the distribution box 2 is provided with a separation mechanism, the top end of installation box 1 is provided with a driving mechanism;

[0028] In operation, the air-water separator used in the ship equipment in the prior art has the problem that when the liquid is processed into a liquid mixture of gas, water and oil, and the oil has a certain viscosity, the oil will adhere to the cylinder wall when separated by the separator, blocking the gas baffle, resulting in a large amount of water vapor adhering to the cylinder wall, thereby reducing the separation effect. The technical scheme can solve the above problems, and the specific operation is as follows: first, the liquid is injected into the separation mechanism through the liquid injection pipe 9, and when the liquid is separated by the separation mechanism, the surface of the separation tank 2 is fixedly connected with a plurality of air distribution boxes 3. When the oil in the liquid adheres to the inner wall of the separation tank 2 and causes blockage, the gas will flow into the air distribution box 3. Start the driving mechanism, so that the two threaded rods 5 start to rotate, so that the first booster plate 7 moves upward, and the second booster plate 8 moves downward, so that the pressure in the mounting box 1 decreases, so that the residual air in the separation tank 2 is accelerated into the box through the air distribution hole 4 at the end of the air distribution box 3, avoiding the residual air in the separation tank 2 being blocked in the separation tank 2, so that the water in the liquid adheres to the inner wall of the separation tank 2 and cannot be separated. At the same time, when the first booster plate 7 and the second booster plate 8 move to the end of the threaded rod 5 respectively, under the action of the driving mechanism, the first booster plate 7 moves downward, and the second booster plate 8 moves upward. The sealing mechanism is opened to block the air distribution hole 4. At this time, the air in the mounting box 1 is compressed, the air density in the mounting box 1 is increased, so that the water vapor in the mounting box 1 is condensed into liquid and stays on the second booster plate 8, reducing the water ratio in the gas. Subsequently, the water is discharged through the drain pipe 11, and the oil is discharged through the liquid discharge pipe 10, thereby solving the problem that when the separator separates, the oil adheres to the cylinder wall, blocking the gas baffle, resulting in a large amount of water vapor adhering to the cylinder wall, thereby reducing the separation effect.

[0029] As a further scheme of the present application, the top end of the second booster plate 8 is funnel-shaped, the bottom end surface of the separation tank 2 is provided with a leakage groove 12, and the top end surface of the connecting plate 6 is provided with a flow-through hole 13; in operation, after the compressed air is finished, the gas in the mounting box 1 will re-enter the separation tank 2 through the air distribution hole 4, thereby causing a large amount of water vapor to adhere to the cylinder wall, thereby reducing the separation effect. The problem of reducing the separation effect, by providing the leakage groove 12, when the second booster plate 8 moves upward to the leakage groove 12, the gas in the mounting box 1 flows out through the leakage groove 12, and because the second booster plate 8 is funnel-shaped, the condensed water flows to the surface of the connecting plate 6 through the second booster plate 8 and the leakage groove 12, and then is discharged through the flow-through hole 13, avoiding the gas backflow into the separation tank 2, causing a large amount of water vapor to adhere to the cylinder wall, thereby reducing the separation effect.

[0030] As a further scheme of the present application, the sealing mechanism comprises a plurality of arrayed sliding rods 14, which are symmetrically fixedly connected in the sliding grooves opened outside the distribution tank 2, the sliding rods 14 are sleeved with return springs 16, the two ends of the return springs 16 are fixedly connected with the annular connecting ring 15 and the sliding groove of the distribution tank 2 respectively, the annular connecting ring 15 is fixedly connected with a plurality of L-shaped iron attracting frames 17 in array on the surface, the bottom ends of the L-shaped iron attracting frames 17 are fixedly connected with an annular connecting frame 18, the annular connecting frame 18 is fixedly connected with a plurality of connecting rods in array on the surface corresponding to the end of the air diffuser tank 3, the first booster plate 7 and the second booster plate 8 are provided with a rotary pushing mechanism on the top and the surface respectively; when the first booster plate 7 moves upward and the second booster plate 8 moves downward, the annular connecting ring 15 moves downward under the action of the rotary pushing mechanism and the connecting rod, the sealing plate 24 cancels the sealing of the air diffuser, the gas in the air diffuser tank 3 can enter the mounting tank 1 through the air diffuser hole 4, when the first booster plate 7 moves to the highest position and the second booster plate 8 moves to the lowest position, the sealing plate 24 re-seals the end of the air diffuser tank 3 under the action of the rotary pushing mechanism and the return spring 16, so as to avoid that the gas in the mounting tank 1 re-enters the air diffuser tank 3 from the air diffuser hole 4 when the gas is compressed, when the first booster plate 7 moves to the lowest position and the second booster plate 8 moves to the highest position, the sealing plate 24 instantaneously separates from the end of the air diffuser tank under the action of the rotary pushing mechanism, so as to prepare for the gas to flow out of the air diffuser tank 3 in advance.

[0031] As a further scheme of the present application, the rotary pushing mechanism comprises a plurality of iron attracting blocks 20, the iron attracting blocks 20 are fixedly connected with first pushing blocks 21 symmetrically on the surface of the first booster plate 7, and second pushing blocks 22 are fixedly connected with the inner side wall of the mounting tank 1 in symmetry; when the second booster plate 8 moves to the lowest point, the first pushing blocks 21 and the second pushing blocks 22 at the bottom end are extruded and pulled, so that the second booster plate 8 rotates, the iron attracting blocks 20 are separated from the positions of the L-shaped iron attracting frames 17, the repulsion force is cancelled, the sealing plate 24 moves upward under the action of the return spring 16, and instantaneously seals the end of the air diffuser tank 3, then when the second booster plate 8 moves to the highest position, the first pushing blocks 21 and the second pushing blocks 22 at the top end are extruded and pulled, so that the second booster plate 8 is reset, the iron attracting blocks 20 repel the L-shaped iron attracting frames 17 again, the sealing plate 24 moves downward and instantaneously cancels the sealing of the end of the air diffuser tank 3, so as to avoid that the gas in the mounting tank 1 re-enters the air diffuser tank 3.

[0032] As a further scheme of the present application, the separating mechanism comprises a hollow separating shaft 23 located in the separation tank 2, the top end of which is fixedly connected to the top end of the inner side of the mounting tank 1, and the surface of the hollow separating shaft 23 is fixedly connected with a spiral conveying blade 25, and the top end outer side wall of the hollow separating shaft 23, the separation tank 2 and the mounting tank 1 are fixedly connected with an exhaust pipe 26 in common, and the bottom end of the separation tank 2 is fixedly connected with a separation plate 27; in operation, the liquid is injected into the separation tank 2 through the liquid injection pipe 9, and then under the action of the spiral conveying blade 25, due to the different densities of the gas and the liquid, when the liquid and the gas flow together, the gas will be blocked by the separation tank 2 and flow through the exhaust pipe 26, while the liquid will continue to move forward due to inertia to the bottom end of the separation tank 2, and then be separated by the separation plate 27, and finally the water in the liquid is discharged through the water discharge pipe 11, and the oil is discharged through the liquid discharge pipe 10, thereby achieving the water-oil separation effect.

[0033] As a further scheme of the present application, the driving mechanism comprises a servo motor 28, the output shaft of which is fixedly connected to the top end of one of the threaded rods 5, and the top end surfaces of the two threaded rods 5 are commonly driven by a belt 29; in operation, the threaded rod 5 is rotated by the driving of the servo motor 28 and the belt 29.

[0034] Working principle: first, the liquid is injected into the separating mechanism through the liquid injection pipe 9, and when the liquid is separated by the separating mechanism, due to the fact that the surface of the separation tank 2 is fixedly connected with a plurality of gas distribution tanks 3, when the oil in the liquid adheres to the inner side wall of the separation tank 2 and causes blockage, the gas will flow into the gas distribution tank 3, the driving mechanism is started, the two threaded rods 5 begin to rotate, the first booster plate 7 moves upward, the second booster plate 8 moves downward, the pressure in the mounting tank 1 is reduced, the residual air in the separation tank 2 is accelerated into the tank through the gas distribution holes 4 at the ends of the gas distribution tanks 3, avoiding the residual air in the separation tank 2 being blocked in the separation tank 2, so that the water in the liquid adheres to the inner side wall of the separation tank 2 and cannot be separated, and at the same time, when the first booster plate 7 and the second booster plate 8 move to the ends of the threaded rods 5 respectively, the first booster plate 7 moves downward and the second booster plate 8 moves upward under the action of the driving mechanism, the sealing mechanism is opened to block the gas distribution holes 4, at this time the air in the mounting tank 1 is compressed, the air density in the mounting tank 1 is increased, so that the water vapor in the mounting tank 1 is condensed into liquid and stays on the second booster plate 8, reducing the water content in the gas, and then the water is discharged through the water discharge pipe 11 and the oil is discharged through the liquid discharge pipe 10.

[0035] In the description of the specification, reference to "one embodiment", "an example", "a specific example" or the like means that a particular feature, structure, material or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the application. The appearances of the phrases "in one embodiment", "an example", "a specific example" or the like in various places in the specification are not necessarily referring to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics can be combined in any suitable manner in one or more embodiments or examples.

[0036] The preferred embodiments of the application disclosed above are only to help explain the application. The preferred embodiments do not describe all the details of the application and limit the application to the specific embodiments. Obviously, many modifications and variations can be made in light of the contents of the specification. The specification selects and specifically describes these embodiments in order to better explain the principles and practical application of the application, so that those skilled in the art can well understand and utilize the application. The application is limited only by the claims and their full scope and equivalents.

Claims

1. A marine equipment based supercharged gas-water separator comprising a mounting box (1), characterized in that: The inside wall of the installation box (1) is provided with a gas distribution mechanism, which comprises a distribution tank (2), a plurality of arrayed gas distribution tanks (3) are fixedly connected to the surface of the distribution tank (2), the end of the gas distribution tank (3) is provided with a gas distribution hole (4), and the distribution tank (2) is fixedly connected to the bottom end of the inside wall of the installation box (1); The surface of the distribution tank (2) is provided with a booster mechanism, the booster mechanism comprises two threaded rods (5), the bottom end of the threaded rod (5) is fixedly connected with a connecting plate (6), the connecting plate (6) is rotatably connected to the inside wall of the installation box (1), the connecting plate (6) is rotatably connected to the distribution tank (2), the top surface of the two threaded rods (5) is threadedly connected with a first booster plate (7), the bottom surface of the two threaded rods (5) is threadedly connected with a second booster plate (8), the first booster plate (7) and the second booster plate (8) are slidably connected to the inside wall of the installation box (1), the top surface of the distribution tank (2) and the top surface of the installation box (1) are fixedly connected with a liquid injection pipe (9), the bottom surface of the distribution tank (2) and the bottom surface of the installation box (1) are fixedly connected with a liquid discharge pipe (10), the bottom end of the installation box (1) is fixedly connected with a drain pipe (11), the surface of the first booster plate (7) and the distribution tank (2) is provided with a sealing mechanism, the distribution tank (2) is provided with a separation mechanism, and the top end of the installation box (1) is provided with a driving mechanism; The sealing mechanism comprises a plurality of arrayed sliding rods (14), the sliding rods (14) are fixedly connected in the sliding grooves symmetrically formed on the outside of the distribution tank (2), the surface of the sliding rod (14) is sleeved with a reset spring (16), the two ends of the reset spring (16) are fixedly connected with a ring-shaped connecting ring (15) and the sliding groove of the distribution tank (2) respectively, the surface of the ring-shaped connecting ring (15) is fixedly connected with a plurality of L-shaped iron attracting frames (17) in an array, the bottom ends of the L-shaped iron attracting frames (17) are fixedly connected with a ring-shaped connecting frame (18) in common, the surface of the ring-shaped connecting frame (18) is fixedly connected with a sealing plate (24) in an array corresponding to the end of the gas distribution tank (3), a plurality of ring-shaped connecting frames (18) are fixedly connected with a connecting rod in common, and the top end of the first booster plate (7) and the surface of the second booster plate (8) are provided with a rotary pushing mechanism; The rotary pushing mechanism comprises a plurality of iron attracting blocks (20), the iron attracting blocks (20) are fixedly connected to the surface of the first booster plate (7), the two sides of the second booster plate (8) are fixedly connected with first pushing blocks (21) symmetrically, and the inside wall of the installation box (1) is fixedly connected with second pushing blocks (22) symmetrically.

2. A ship's equipment based pressure boosted gas water separator according to claim 1, characterized in that: The top end of the second booster plate (8) is funnel-shaped, the bottom surface of the distribution tank (2) is provided with a leakage groove (12), and the top surface of the connecting plate (6) is provided with a flow-through hole (13).

3. A ship's equipment based pressure boosted gas water separator according to claim 1, characterized in that: The separating mechanism comprises a hollow separating shaft (23) located in the liquid distribution tank (2), the top end of which is fixedly connected to the inner top end of the mounting tank (1), the surface of the hollow separating shaft (23) is fixedly connected with spiral conveying blades (25), the top end outer side wall of the hollow separating shaft (23), the liquid distribution tank (2) and the mounting tank (1) are fixedly connected with an exhaust pipe (26) in common, and the bottom end of the liquid distribution tank (2) is fixedly connected with a liquid distribution plate (27).

4. A ship-based equipment plenum air-water separator according to claim 1, wherein: The driving mechanism comprises a servo motor (28), the output shaft of the servo motor (28) is fixedly connected to the top end of one of the threaded rods (5), and the top end surfaces of the two threaded rods (5) are commonly driven by a belt (29).

Citation Information

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