Solid-liquid separation device for gas-making circulating pool

By designing a solid-liquid separation device for the aeration circulation pool and using a vibration motor and a rotary motor to drive the screen and screw rod for solid-liquid separation, the disposal problems of sludge with high water content and large particle size are solved, and efficient separation and low-cost disposal of sludge are achieved.

CN223422540UActive Publication Date: 2025-10-10JIDONGHAITIAN CEMENT WENXI CO LTD
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Patent Information

Application Number
CN202422832712.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-10-10
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

In the existing technology, the sludge in the gasification circulation pool has a high water content and large solid matter particle size, which makes it difficult to effectively dispose of it through the SMP system and waste liquid system, increasing the difficulty of disposal.

Method used

A solid-liquid separation device for an aeration circulation pool was designed, including a supporting structure, a bearing structure, a feeding structure, a separation structure, and a discharging structure. A vibration motor and a rotary motor were used to drive the screen and the screw rod for solid-liquid separation, thereby realizing dry-wet separation of sludge.

Benefits of technology

It realizes effective dry-wet separation of sludge, reduces disposal costs, improves disposal efficiency, and reduces the impact on the kiln system. It has a simple structure and is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a solid-liquid separation device for a gas-making circulating pool. The solid-liquid separation device comprises a base, the supporting structure is mounted on the upper surface of the base, and the supporting structure is used for supporting; the first bearing structure is mounted on the supporting structure, and the first bearing structure is used for bearing; the feeding structure is installed on the first bearing structure and is used for feeding, and the solid-liquid separation device disclosed by the utility model relates to the field of solid-liquid separation, reduces the influence of hazardous waste materials on a kiln system, improves the hazardous waste treatment efficiency, and is relatively simple in structure and convenient to use.
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Description

Technical Field

[0001] The utility model relates to the field of solid-liquid separation, in particular to a solid-liquid separation device for a gasification circulation pool. Background Art

[0002] Compared to other hazardous waste disposal technologies, cement kiln co-processing technology offers advantages in energy conservation, environmental protection, and economics. It is currently considered one of the safest and most thorough technologies for disposal. Currently, our company utilizes cement kilns to co-process hazardous waste through SMP pumping systems, waste liquid disposal systems, and manual feeding systems. During this process, we also dispose of hazardous wastes with high water content, such as sludge from our existing gasification circulation tanks, oil sludge from accident pools, and sludge from biochemical conditioning tanks. Although these hazardous wastes have relatively simple compositions and contain low levels of components difficult to decompose in the kiln, such as sulfur and chlorine, they are more suitable for resource recovery and harmless disposal.

[0003] However, its moisture content is relatively high, and the materials currently entering the factory are relatively simple, and cannot be disposed of by the SMP system through reasonable matching. Moreover, due to the large particle size of the solid matter, it cannot be disposed of through the waste liquid system, which increases the difficulty of disposal. Therefore, in order to solve this problem, it is very necessary to design a solid-liquid separation device for the gasification circulation pool. Utility Model Content

[0004] In response to the shortcomings of the existing technology, the utility model provides a solid-liquid separation device for a gasification circulation pool, which solves the problem that the water content is relatively high, the materials currently entering the factory are relatively single, and cannot be disposed of by the SMP system through reasonable matching. In addition, due to the large particle size of the solid matter, it cannot be disposed of through the waste liquid system, which increases the difficulty of disposal.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: a solid-liquid separation device for a gasification circulation pool, comprising:

[0006] base;

[0007] A supporting structure, the supporting structure being mounted on the upper surface of the base and being used for supporting;

[0008] a first bearing structure, wherein the first bearing structure is installed on the supporting structure and is used for bearing;

[0009] A feeding structure, the feeding structure being installed on the first supporting structure and used for feeding;

[0010] a first separation structure, wherein the first separation structure is installed in the first supporting structure and is used for separation;

[0011] A second bearing structure is mounted on the support structure and is used for bearing;

[0012] A second separation structure is mounted in the second bearing structure and is used for separation;

[0013] An outfeed structure is mounted on the second bearing structure and is used for outfeed.

[0014] Preferably, the support structure comprises a support frame.

[0015] The support frame is mounted on the upper surface of the base.

[0016] Preferably, the first bearing structure comprises a first bearing shell.

[0017] The first bearing shell is mounted on the upper surface of the support frame.

[0018] Preferably, the infeed structure comprises an infeed shell.

[0019] The infeed shell is mounted on the upper surface of the first bearing shell.

[0020] Preferably, the first separation structure comprises two pairs of first fixing frames, two pairs of vibration motors, a first support frame, a first screen, a first limiting shell, a first drainage shell, and a first drainage pipe.

[0021] The two pairs of first fixing frames are mounted on the inner side surface of the first bearing shell, each vibration motor is mounted on the corresponding first fixing frame, the first support frame is mounted on the two pairs of vibration motors, the first screen is mounted on the first support frame, the first limiting shell is mounted on the first support frame, the first drainage shell is mounted on the inner side surface of the first bearing shell, the first drainage pipe is mounted on the first drainage shell, and the first drainage pipe extends out of the first bearing shell.

[0022] Preferably, the second bearing structure comprises a second bearing shell.

[0023] The second bearing shell is mounted on the upper surface of the support frame and is connected with the first bearing shell.

[0024] Preferably, the second separation structure comprises a second limiting shell, a third limiting shell, a cylindrical shell, a fourth limiting shell, a second fixing frame, a first rotary motor, and a spiral rod.

[0025] The second limiting shell is installed on the inner surface of the first bearing shell, the third limiting shell is installed on the second limiting shell, and the third limiting shell matches the first bearing shell, the cylindrical shell is installed in the second bearing shell, and the fourth limiting shell is installed in the second bearing shell. The second limiting shell, the third limiting shell, the cylindrical shell and the fourth limiting shell are connected, the cylindrical shell is a screen-shaped shell, the second fixing bracket is installed on the side surface of the first bearing shell, the first rotating motor is installed on the second fixing bracket, the screw rod is installed on the rotating end of the first rotating motor, and the screw rod is located in the second limiting shell, the third limiting shell, the cylindrical shell and the fourth limiting shell.

[0026] Preferably, the discharge structure comprises: a discharge shell and a second drain pipe;

[0027] The discharging shell is installed on the fourth limiting shell, and the discharging shell extends out of the second bearing shell, and the second drain pipe is installed at the lower end of the side surface of the second bearing shell.

[0028] Preferably, a mains power interface is provided on the base, and a controller is provided on the base. Beneficial effects

[0029] The utility model provides a solid-liquid separation device for a gasification circulation tank. It has the following beneficial effects: It separates sludge into dry and wet parts, reducing disposal costs and improving disposal efficiency. It also separates solid particles from liquid wastewater, which is then fed into a decomposition furnace for incineration via a waste liquid system, improving the dispersion effect, thereby reducing disposal costs, reducing the impact of hazardous waste on the kiln system, and improving hazardous waste disposal efficiency. It also has a relatively simple structure and is easy to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 This is a structural schematic diagram of a solid-liquid separation device in a gasification circulation pool described in the present utility model.

[0031] Figure 2 This is a main structural diagram of a solid-liquid separation device in a gasification circulation pool described in the present utility model.

[0032] Figure 3 This is a front view of a solid-liquid separation device in a gasification circulation pool according to the present invention.

[0033] Figure 4 This is a top view of a solid-liquid separation device in a gasification circulation pool described in the utility model.

[0034] In the picture:

[0035] Base 10, support structure 20, first bearing structure 30, feeding structure 40, first separation structure 50, second bearing structure 60, second separation structure 70, discharge structure 80, mains power interface 90, controller 100;

[0036] Support frame 21;

[0037] A first carrying shell 31;

[0038] Feed housing 41;

[0039] A first fixing frame 51, a vibration motor 52, a first supporting frame 53, a first screen 54, a first limiting housing 55, a first drainage housing 56, and a first drainage pipe 57;

[0040] A second carrying shell 61;

[0041] A second limiting housing 71, a third limiting housing 72, a cylindrical housing 73, a fourth limiting housing 74, a second fixing bracket 75, a first rotating motor 76, and a screw rod 77;

[0042] Discharge shell 81 and second drain pipe 82. DETAILED DESCRIPTION

[0043] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0044] See also Figure 1-4 The utility model provides a technical solution: a solid-liquid separation device for a gasification circulation pool, comprising: a base 10, a supporting structure 20, the supporting structure 20 is installed on the upper surface of the base 10, and the supporting structure 20 is used for supporting, a first bearing structure 30, the first bearing structure 30 is installed on the supporting structure 20, and the first bearing structure 30 is used for bearing, a feeding structure 40, the feeding structure 40 is installed on the first bearing structure 30, and the feeding structure 40 is used for feeding, a first separation structure 50, the first separation structure 50 is installed in the first bearing structure 30, and the first separation structure 50 is used for separation, a second bearing structure 60, the second bearing structure 60 is installed on the supporting structure 20, and the second bearing structure 60 is used for bearing, a second separation structure 70, the second separation structure 70 is installed in the second bearing structure 60, and the second separation structure 70 is used for separation, and a discharging structure 80, the discharging structure 80 is installed on the second bearing structure 60, and the discharging structure 80 is used for discharging.

[0045] The support structure 20 on the upper surface of the base 10 is used for support, the first bearing structure 30 on the support structure 20 is used for bearing, the feeding structure 40 on the first bearing structure 30 is used for feeding, the first separation structure 50 in the first bearing structure 30 is used for separation, the second bearing structure 60 on the support structure 20 is used for bearing, the second separation structure 70 in the second bearing structure 60 is used for separation, and the discharging structure 80 on the second bearing structure 60 is used for discharging.

[0046] The support structure 20 includes a support frame 21 , which is installed on the upper surface of the base 10 .

[0047] The base 10 is supported by a support frame 21 on the upper surface thereof.

[0048] The first supporting structure 30 includes a first supporting shell 31 , which is mounted on the upper surface of the supporting frame 21 .

[0049] The support frame 21 is supported by a first supporting shell 31 on the upper surface thereof.

[0050] The feeding structure 40 includes a feeding shell 41 , which is mounted on the upper surface of the first supporting shell 31 .

[0051] The sludge can be fed into the first carrying shell 31 through the feed shell 41 on the upper surface of the first carrying shell 31 .

[0052] The first separation structure 50 includes: two pairs of first fixing frames 51, two pairs of vibration motors 52, a first support frame 53, a first screen 54, a first limiting shell 55, a first drainage shell 56 and a first drainage pipe 57. The two pairs of first fixing frames 51 are installed on the inner surface of the first bearing shell 31, each vibration motor 52 is installed on the corresponding first fixing frame 51, the first support frame 53 is installed on the two pairs of vibration motors 52, the first screen 54 is installed on the first support frame 53, the first limiting shell 55 is installed on the first support frame 53, the first drainage shell 56 is installed on the inner surface of the first bearing shell 31, the first drainage pipe 57 is installed on the first drainage shell 56, and the first drainage pipe 57 extends out of the first bearing shell 31.

[0053] The sludge fed in falls on the first screen 54 due to the first limiting shell 55. Due to the action of the vibration motor 52 on the first fixed frame 51, the vibration motor 52 on the first fixed frame 51 drives the first screen 54 on the first support frame 53 to vibrate. At this time, the sewage passes through the first screen 54 and enters the first drainage shell 56 and is discharged through the first drainage pipe 57. The fixed material falls to the second limiting shell 71 under the action of the vibration motor 52 on the first fixed frame 51, the first limiting shell 55 and the first screen 54.

[0054] The second supporting structure 60 includes a second supporting shell 61 . The second supporting shell 61 is mounted on the upper surface of the support frame 21 and is connected to the first supporting shell 31 .

[0055] The second bearing shell 61 on the upper surface of the support frame 21 is used for bearing.

[0056] The second separation structure 70 includes: a second limiting shell 71, a third limiting shell 72, a cylindrical shell 73, a fourth limiting shell 74, a second fixing frame 75, a first rotating motor 76 and a screw rod 77. The second limiting shell 71 is mounted on the inner surface of the first bearing shell 31, the third limiting shell 72 is mounted on the second limiting shell 71, and the third limiting shell 72 matches the first bearing shell 31. The cylindrical shell 73 is mounted in the second bearing shell 61, and the fourth limiting shell 74 is mounted in the second bearing shell 61. The second limiting shell 71, the third limiting shell 72, the cylindrical shell 73 and the fourth limiting shell 74 are connected. The cylindrical shell 73 is a screen-shaped shell. The second fixing frame 75 is mounted on the side surface of the first bearing shell 31. The first rotating motor 76 is mounted on the second fixing frame 75. The screw rod 77 is mounted on the rotating end of the first rotating motor 76, and the screw rod 77 is located in the second limiting shell 71, the third limiting shell 72, the cylindrical shell 73 and the fourth limiting shell 74.

[0057] The fallen solid material passes through the second limiting shell 71 and falls to the third limiting shell 72. At this time, under the action of the first rotating motor 76 on the second fixed frame 75 driving the screw rod 77, the solid material passes through the cylindrical shell 73 from the third limiting shell 72 to the fourth limiting shell 74. When passing through the cylindrical shell 73, the sewage enters the second supporting shell 61.

[0058] The discharge structure 80 includes: a discharge shell 81 and a second drain pipe 82. The discharge shell 81 is installed on the fourth limiting shell 74 and extends out of the second supporting shell 61. The second drain pipe 82 is installed at the lower end of the side surface of the second supporting shell 61.

[0059] Solid materials are discharged through the discharge shell 81 , and sewage is discharged through the second drainage pipe 82 at the lower end of the side surface of the second supporting shell 61 .

[0060] A mains power interface 90 is provided on the base 10 , and a controller 100 is provided on the base 10 .

[0061] Power is supplied through a mains power interface 90 on the base 10 , and control is performed through a controller 100 on the base 10 .

[0062] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include," "comprise," or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article, or device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations. The phrase "includes an element defined by..." does not exclude the presence of other identical elements in the process, method, article, or device that includes the element.

[0063] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A solid-liquid separation device for a gasification circulation pool, characterized in that: include: Base (10); A support structure (20), the support structure (20) being mounted on the upper surface of the base (10), and the support structure (20) being used for supporting; A first bearing structure (30), the first bearing structure (30) is installed on the supporting structure (20), and the first bearing structure (30) is used for bearing; A feeding structure (40), the feeding structure (40) is mounted on the first supporting structure (30), and the feeding structure (40) is used for feeding; a first separation structure (50), the first separation structure (50) being installed in the first bearing structure (30), and the first separation structure (50) being used for separation; a second bearing structure (60), the second bearing structure (60) being mounted on the supporting structure (20), and the second bearing structure (60) being used for bearing; a second separation structure (70), the second separation structure (70) being installed in the second bearing structure (60), and the second separation structure (70) being used for separation; A discharge structure (80), the discharge structure (80) is installed on the second supporting structure (60), and the discharge structure (80) is used for discharging materials.

2. The solid-liquid separation device for a gasification circulation pool according to claim 1, characterized in that: The support structure (20) comprises: a support frame (21); The support frame (21) is mounted on the upper surface of the base (10).

3. The solid-liquid separation device for aeration circulation pool according to claim 2, characterized in that: The first bearing structure (30) comprises: a first bearing shell (31); The first bearing shell (31) is mounted on the upper surface of the support frame (21).

4. The solid-liquid separation device for a gasification circulation pool according to claim 3, characterized in that: The feeding structure (40) comprises: a feeding shell (41); The feed housing (41) is mounted on the upper surface of the first supporting housing (31).

5. The solid-liquid separation device for the gasification circulation pool according to claim 4, characterized in that: The first separation structure (50) comprises: two pairs of first fixing frames (51), two pairs of vibration motors (52), a first support frame (53), a first screen (54), a first limiting shell (55), a first drainage shell (56), and a first drainage pipe (57); Two pairs of the first fixing frames (51) are mounted on the inner surface of the first bearing shell (31), each of the vibration motors (52) is mounted on the corresponding first fixing frame (51), the first support frame (53) is mounted on the two pairs of the vibration motors (52), the first screen (54) is mounted on the first support frame (53), the first limiting shell (55) is mounted on the first support frame (53), the first drainage shell (56) is mounted on the inner surface of the first bearing shell (31), the first drainage pipe (57) is mounted on the first drainage shell (56), and the first drainage pipe (57) extends out of the first bearing shell (31).

6. The solid-liquid separation device for a gasification circulation pool according to claim 5, characterized in that: The second bearing structure (60) comprises: a second bearing shell (61); The second bearing shell (61) is mounted on the upper surface of the support frame (21), and the second bearing shell (61) is connected to the first bearing shell (31).

7. The solid-liquid separation device for the gasification circulation pool according to claim 6, characterized in that: The second separation structure (70) comprises: a second limiting shell (71), a third limiting shell (72), a cylindrical shell (73), a fourth limiting shell (74), a second fixing frame (75), a first rotating motor (76), and a screw rod (77); The second limiting shell (71) is installed on the inner surface of the first bearing shell (31), the third limiting shell (72) is installed on the second limiting shell (71), and the third limiting shell (72) matches the first bearing shell (31), the cylindrical shell (73) is installed in the second bearing shell (61), and the fourth limiting shell (74) is installed in the second bearing shell (61). The second limiting shell (71), the third limiting shell (72), and the cylindrical shell (73) The first and second limiting housings (71, 72, 73, 74) are connected to each other, the cylindrical housing (73) is a mesh-shaped housing, the second fixing frame (75) is mounted on the side surface of the first bearing housing (31), the first rotating motor (76) is mounted on the second fixing frame (75), the screw rod (77) is mounted on the rotating end of the first rotating motor (76), and the screw rod (77) is located in the second limiting housing (71), the third limiting housing (72), the cylindrical housing (73), and the fourth limiting housing (74).

8. The solid-liquid separation device for a gasification circulation pool according to claim 7, characterized in that: The discharge structure (80) comprises: a discharge shell (81) and a second drain pipe (82); The discharge shell (81) is installed on the fourth limiting shell (74), and the discharge shell (81) extends out of the second bearing shell (61), and the second drain pipe (82) is installed at the lower end of the side surface of the second bearing shell (61).

9. The solid-liquid separation device for a gasification circulation pool according to claim 1, characterized in that: A mains power interface (90) is provided on the base (10), and a controller (100) is provided on the base (10).