A triple-effect evaporator, waste liquid treatment system and waste liquid treatment method for waste liquid treatment
By introducing a spiral conveying channel and a U-shaped top cover structure into the waste liquid treatment triple-effect evaporator, combined with a lifting and floating component and flow control, the problems of small contact area and increased waste liquid capacity in the waste liquid treatment triple-effect evaporator are solved, and more efficient waste liquid evaporation and reflux treatment are achieved.
Patent Information
- Application Number
- CN202411853377.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-12-16
AI Technical Summary
In the existing three-effect evaporator for waste liquid treatment, the contact area between waste liquid and steam is small, the reaction efficiency is low, the waste liquid volume gradually increases, making it difficult to effectively evaporate inside the reactor, and the incompletely reacted waste liquid is difficult to reflux for reprocessing.
A spiral conveying channel is used to increase the contact area between waste liquid and steam, and a U-shaped top cover is set to reflux the unreacted waste liquid. Combined with the lifting and floating components and the flow control ball valve components, the waste liquid flow is adjusted through the transmission component to ensure a reasonable amount of waste liquid storage in the reactor.
The reaction efficiency of waste liquid and steam is improved, the reaction time is extended, the reflux of incompletely reacted waste liquid for reprocessing is ensured, the amount of waste liquid inside the reactor is controlled, and the evaporation effect and stability are improved.
Smart Images

Figure CN119528250B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to a triple-effect evaporator used for waste liquid treatment, and in particular to a triple-effect evaporator used for waste liquid treatment, a waste liquid treatment system and a waste liquid treatment method. Background Art
[0002] The waste liquid triple-effect evaporator is a highly efficient waste liquid treatment device, primarily used to evaporate the water in the waste liquid multiple times, thereby concentrating and recovering the waste liquid. This equipment uses a multi-stage evaporation system to gradually increase the concentration of the waste liquid, reduce energy consumption, and lower the demand for natural water resources. However, since the waste liquid inside the reactor is concentrated together, the contact area with the steam is reduced, resulting in low reaction efficiency. Furthermore, as the waste liquid is continuously transported into the reactor, the waste liquid volume inside the reactor gradually increases, making it difficult for the waste liquid at the bottom to evaporate. Therefore, to address these issues, a structure that improves evaporation efficiency and controls waste liquid flow is needed.
[0003] The existing three-effect evaporator used in waste liquid treatment needs to be further improved. Summary of the Invention
[0004] The purpose of the present invention is to provide a triple-effect evaporator for waste liquid treatment, which is provided with a spiral conveying channel to increase the contact area between waste liquid and steam, improve reaction efficiency and reaction time, and can return semi-crystallized waste liquid that has not been completely reacted to the spiral conveying channel. At the same time, a structure for controlling the waste liquid capacity inside the reactor is also provided to ensure that the spiral conveying channel has a certain flow space to prevent complete immersion.
[0005] In order to achieve the above object, the present invention adopts the following scheme:
[0006] A triple-effect evaporator for waste liquid treatment includes multiple separators, one side of the separator is connected to a heat exchange medium input component for inputting steam and waste liquid, a waste liquid return pipe is arranged between the bottom of the separator and the bottom of the heat exchange medium input component, the inner wall of the separator is provided with a spiral evaporation delivery channel, and a U-shaped top cover for returning waste liquid is arranged above the spiral evaporation delivery channel. A lifting and floating component for sensing the waste liquid in the separator is provided in the middle part, a flow control ball valve component is provided in the middle of the waste liquid return pipe, a speed control damping device for controlling the lifting and lowering speed of the lifting and floating component is provided at the lower end of the separator, a transmission component is provided between the lifting and floating component and the flow control ball valve component, and the transmission component can control the flow of the flow control ball valve component according to the lifting height of the lifting and floating component.
[0007] Furthermore, the heat exchange medium input component includes a heat exchanger body, an input pipe is provided between the heat exchanger body and the separator, a steam input end is provided on one side of the heat exchanger body, and the bottom of the waste liquid reflux pipe is connected to the waste liquid input end.
[0008] Furthermore, a steam delivery pipe is provided between two adjacent separators and the heat exchange medium input assembly;
[0009] The U-shaped top cover is arranged along the path of the spiral evaporation conveying channel.
[0010] Furthermore, the U-shaped top cover includes an upper arc-shaped cover, and both ends of the upper arc-shaped cover are provided with guide cross plates extending toward the inner side of the spiral evaporation conveying channel. The guide cross plates are used to fix the waste liquid that is semi-crystallized to the upper arc-shaped cover back to the spiral evaporation conveying channel below for re-evaporation.
[0011] Furthermore, a steam delivery side opening is provided between the U-shaped top cover and the spiral evaporation delivery channel.
[0012] Furthermore, the lifting and floating assembly includes a plurality of sealing guide shaft holes arranged at the bottom of the separator, a sealing guide shaft is arranged in the sealing guide shaft hole so as to move up and down, a floating structure is arranged between the upper ends of the plurality of sealing guide shafts, and the density of the floating structure is less than the density of the waste liquid.
[0013] Furthermore, the floating structure is made of low-density polyethylene, ethylene-vinyl acetate copolymer, polystyrene foam material, polyester material or a floating plate stainless steel structure.
[0014] Furthermore, the flow control ball valve assembly includes a ball valve housing arranged on the waste liquid return pipe, and a flow control ball valve is rotatably arranged in the ball valve housing.
[0015] Furthermore, the speed control damping device includes a damping valve body arranged at the bottom of the separator, a lifting annular plate is connected between the lower ends of the multiple sealing guide shafts, a blocking plate is arranged in the middle of the damping valve body, and the blocking plate divides the interior of the damping valve body into two upper and lower valve chambers, each of the two valve chambers is provided with a piston plate, a vertical axis hole is provided in the middle of the blocking plate, a vertical axis body is connected between the two piston plates, the vertical axis body extends to the bottom of the damping valve body and is fixedly connected to the lifting annular plate, and a through hole is provided on the blocking plate. When the two piston plates move up and down synchronously, the medium in the two valve chambers will be transferred from one of them to the other through the through hole, and the up and down movement speed of the piston plate is controlled by the diameter of the through hole.
[0016] Furthermore, the transmission assembly includes a transmission shaft arranged on one side of the quantity control ball valve and extending to the outside of the ball valve housing, a transmission gear is provided at the outer end of the transmission shaft, and a drive rack is provided on the lifting annular plate, and the drive rack and the transmission gear are engaged for transmission.
[0017] A waste liquid treatment system comprises any one of the above triple-effect evaporators.
[0018] A method for treating waste liquid comprises the following steps: inputting the waste liquid into any one of the above-mentioned triple-effect evaporators for evaporation treatment.
[0019] In summary, the present invention has the following beneficial effects compared to the prior art:
[0020] The present invention solves the shortcomings of the existing three-effect evaporator used for waste liquid treatment. Through the structural setting of the present invention, it has the following advantages: a spiral conveying channel is provided to increase the contact area between waste liquid and steam, the contact area between waste liquid and steam becomes larger, the flow stroke of waste liquid becomes longer, and the reaction efficiency and reaction time are improved. Since some waste liquid that has not completely reacted will be semi-crystallized during the flow of waste liquid in the spiral conveying channel, a reverse U-shaped baffle is provided to adhere to the semi-crystallized waste liquid and gradually flow back to the spiral conveying channel. At the same time, a lifting and floating component is provided to cooperate with the flow control ball valve component to control the input of waste liquid, so as to achieve the control of the internal waste liquid storage volume and ensure the reaction effect. At the same time, since the boiling waste liquid affects the up and down floating amplitude of the lifting and floating component, a damping device is provided to ensure the stability and accuracy of the lifting and floating component, and ensure that the adjustment flow amplitude fed back by the transmission component is more accurate and stable. It has a simple structure and is easy to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 Schematic diagram of a triple-effect evaporator of the present invention;
[0022] Figure 2 This is one of the structural diagrams of the present invention;
[0023] Figure 3 for Figure 2 Schematic diagram of the waste liquid semi-crystal reflux structure at A;
[0024] Figure 4 A perspective view of the present invention;
[0025] Figure 5 This is the second structural diagram of the present invention;
[0026] Figure 6 This is the third structural diagram of the present invention;
[0027] Figure 7 for Figure 6 A partial enlarged view of point B. DETAILED DESCRIPTION
[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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.
[0029] See also Figure 1-7 , the present invention provides a triple-effect evaporator for waste liquid treatment, comprising a plurality of separators 1, a heat exchange medium input component 2 for inputting steam and waste liquid connected to one side of the separator 1, a waste liquid return pipe 200 is arranged between the bottom of the separator 1 and the bottom of the heat exchange medium input component 2, characterized in that: a spiral evaporation delivery channel 8 is arranged on the inner wall of the separator 1, a U-shaped top cover 3 for reflowing waste liquid is arranged above the spiral evaporation delivery channel 8, a lifting and floating component 4 for sensing the waste liquid in the internal volume of the separator 1 is arranged in the middle of the separator 1, a flow control ball valve component 5 is arranged in the middle of the waste liquid return pipe 200, a speed control damping device 6 for controlling the lifting and floating component 4 is arranged at the lower end of the separator 1, a transmission component 7 is arranged between the lifting and floating component 4 and the flow control ball valve component 5, and the transmission component 7 can control the flow of the flow control ball valve component 5 according to the lifting height of the lifting and floating component 4;
[0030] The waste liquid medium and the steam medium are inputted into the heat exchanger body 201 from the heat exchange medium input assembly 2, the steam medium and the waste liquid medium are heated, and then enter the spiral evaporation delivery channel 8 through the steam delivery pipe 300. The reaction time of the waste liquid can be increased by passing through the spiral evaporation delivery channel 8, and the waste liquid will evaporate continuously during the flow of the spiral evaporation delivery channel 8. The U-shaped top cover 3 is provided to further block the incompletely evaporated waste liquid, and the semi-crystalline waste liquid attached to the lower surface of the U-shaped top cover 3 is guided into the spiral evaporation delivery channel 8 for flow evaporation. The steam-generated airflow passes through the gap between the spiral evaporation delivery channel 8 and the U-shaped top cover 3 and enters the steam delivery pipe 300 to be delivered to the next heat exchanger body 201 as the heat exchange medium.
[0031] Since the spiral evaporation delivery channel 8 is provided, the height of the medium inside the separator 1 must be controlled, otherwise the spiral evaporation delivery channel 8 cannot be completely immersed to achieve the purpose of increasing the stroke;
[0032] Therefore, the lifting and floating assembly 4 is used to sense the height of the waste liquid in the spiral evaporation conveying channel 8. The higher the waste liquid height is, the higher the waste liquid height is. The transmission assembly 7 feeds back to the flow control ball valve assembly 5 to control the flow rate to be smaller, thereby reducing the reflux speed and the waste liquid input speed of the waste liquid input end 204.
[0033] When the waste liquid level is lower, the transmission assembly 7 feeds back to the flow control ball valve assembly 5 to control the flow rate to increase, thereby increasing the reflux speed and the waste liquid input speed of the waste liquid input end 204;
[0034] Provide sufficient reaction time in the separator 1 to ensure evaporation effect;
[0035] Since the temperature inside the separator 1 is high and the waste liquid is in a boiling state, in order to ensure the stability of the lifting and floating component 4 on the surface of the waste liquid, a speed control damping device 6 is provided. The speed control damping device 6 controls the up and down shaking frequency of the lifting and floating component 4 to prevent the lifting and floating component 4 from fluctuating due to boiling and affecting the adjustment of the flow control ball valve component 5.
[0036] The heat exchange medium input component 2 of the present invention includes a heat exchanger body 201, an input pipe 202 is provided between the heat exchanger body 201 and the separator 1, a steam input end 203 is provided on one side of the heat exchanger body 201, and a waste liquid input end 204 is connected to the bottom of the waste liquid reflux pipe.
[0037] In the present invention, a steam delivery pipe 300 is provided between two adjacent separators 1 and the heat exchange medium input assembly 2;
[0038] The U-shaped top cover 3 is arranged along the path of the spiral evaporation conveying channel 8 .
[0039] The U-shaped top cover 3 of the present invention includes an upper arc-shaped cover 301, and both ends of the upper arc-shaped cover 301 are provided with guide transverse plates 302 extending toward the inner side of the spiral evaporation conveying channel 8. The guide transverse plates 302 are used to fix the waste liquid that is semi-crystallized to the upper arc-shaped cover 301 back to the spiral evaporation conveying channel 8 below for re-evaporation.
[0040] A steam outlet opening 303 is provided between the U-shaped top cover 3 and the spiral evaporation delivery channel 8 of the present invention.
[0041] The lifting and floating assembly 4 described in the present invention includes a plurality of sealing guide shaft holes 401 arranged at the bottom of the separator 1, and a sealing guide shaft 402 is arranged in the sealing guide shaft hole 401 so as to move up and down. A floating structure 403 is arranged between the upper ends of the plurality of sealing guide shafts 402, and the density of the floating structure 403 is less than the density of the waste liquid; the flow control ball valve assembly 5, the transmission assembly 7, etc. are made of high-temperature resistant plastic materials.
[0042] The floating structure 403 of the present invention is made of low-density polyethylene, ethylene-vinyl acetate copolymer, polystyrene foam material, polyester material or a floating plate stainless steel structure.
[0043] The flow control ball valve assembly 5 of the present invention includes a ball valve housing 501 disposed on the waste liquid return pipe 200 , and a flow control ball valve 502 is rotatably disposed in the ball valve housing 501 .
[0044] The speed control damping device 6 of the present invention includes a damping valve body 601 arranged at the bottom of the separator 1, a lifting annular plate 609 is connected between the lower ends of the plurality of sealing guide shafts 402, a baffle plate 602 is provided in the middle of the damping valve body 601, and the baffle plate 602 divides the interior of the damping valve body 601 into two upper and lower valve chambers 603, each of the two valve chambers 603 is provided with a piston plate 604, a vertical shaft hole 605 is provided in the middle of the baffle plate 602, and the two movable A vertical shaft 606 is connected between the plug plates 604. The vertical shaft 606 extends below the damping valve body 601 and is fixedly connected to the lifting annular plate 609. A through hole 607 is provided on the blocking plate 602. When the two piston plates 604 move up and down synchronously, the medium in the two valve chambers 603 is transferred from one to the other through the through hole 607. The diameter of the through hole 607 controls the vertical movement speed of the piston plates 604.
[0045] When the waste liquid inside the separator 1 becomes less, the floating structure 403 will descend, and the descending process will drive the multiple sealing guide shafts 402 to descend. The descending of the sealing guide shafts 402 will cause the lifting ring plate 609 to descend, and the descending of the lifting ring plate 609 will drive the driving rack 703 to descend, thereby adjusting the rotation angle of the driving rack 703, thereby increasing the flow of the control ball valve 502;
[0046] When the lifting annular plate 609 descends, the two piston plates 604 will descend in the corresponding valve chambers 603, so that the medium in the upper valve chamber 603 is transferred to the lower valve chamber 603 through the through hole 607. Since the diameter of the through hole 607 is fixed, the transfer speed is limited. Therefore, the up and down swing amplitude of the lifting annular plate 609 will also be reduced, thereby improving the control accuracy of the control ball valve 502.
[0047] The transmission assembly 7 described in the present invention includes a transmission shaft 701 arranged on one side of the control ball valve 502 and extending to the outside of the ball valve housing 501. A transmission gear 702 is provided at the outer end of the transmission shaft 701, and a driving rack 703 is provided on the lifting annular plate 609. The driving rack 703 and the transmission gear 702 are engaged for transmission.
[0048] The present invention further provides a waste liquid treatment system, comprising the triple-effect evaporator for waste liquid treatment according to any of the above embodiments. Detailed descriptions of the triple-effect evaporator for waste liquid treatment can be found in the above embodiments and will not be repeated here.
[0049] The present invention also provides a waste liquid treatment method, comprising the following steps: inputting the waste liquid into the triple-effect evaporator of any of the above embodiments for evaporation treatment. The specific description of the triple-effect evaporator used for waste liquid treatment can be referred to the above embodiments and will not be repeated here.
[0050] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A triple-effect evaporator for waste liquid treatment, comprising a plurality of separators (1), one side of each separator (1) being connected to a heat exchange medium input assembly (2) for inputting steam and waste liquid, a waste liquid return pipe (200) being provided between the bottom of each separator (1) and the bottom of the heat exchange medium input assembly (2), and characterized in that: The inner wall of the separator (1) is provided with a spiral evaporation conveying channel (8), and a U-shaped top cover (3) for returning waste liquid is provided above the spiral evaporation conveying channel (8). A lifting and floating assembly (4) for sensing the amount of waste liquid in the separator (1) is provided in the middle of the separator (1), and a flow control ball valve assembly (5) is provided in the middle of the waste liquid return pipe (200). A speed control damping device (6) for controlling the lifting and lowering speed of the lifting and floating assembly (4) is provided at the lower end of the separator (1). A transmission assembly (7) is provided between the lifting and floating assembly (4) and the flow control ball valve assembly (5), and the transmission assembly (7) can control the flow of the flow control ball valve assembly (5) according to the lifting height of the lifting and floating assembly (4); The heat exchange medium input assembly (2) comprises a heat exchanger body (201), an input pipe (202) is provided between the heat exchanger body (201) and the separator (1), a steam input end (203) is provided on one side of the heat exchanger body (201), and a waste liquid input end (204) is connected to the bottom of the waste liquid return pipe (200); A steam delivery pipe (300) is provided between two adjacent separators (1) and the heat exchange medium input assembly (2); The U-shaped top cover (3) is arranged along the path of the spiral evaporation conveying channel (8); The U-shaped top cover (3) comprises an upper arc-shaped cover (301), and both ends of the upper arc-shaped cover (301) are provided with guide transverse plates (302) extending toward the inner side of the spiral evaporation conveying channel (8), and the guide transverse plates (302) are used to return the waste liquid of the upper arc-shaped cover (301) to the spiral evaporation conveying channel (8) below for re-evaporation; The lifting and floating assembly (4) comprises a plurality of sealing guide shaft holes (401) provided at the bottom of the separator (1), a sealing guide shaft (402) being movably provided in the sealing guide shaft holes (401), a floating structure (403) being provided between the upper ends of the plurality of sealing guide shafts (402), and a density of the floating structure (403) being less than the density of the waste liquid; The speed control damping device (6) comprises a damping valve body (601) arranged at the bottom of the separator (1), a lifting annular plate (609) is connected between the lower ends of the plurality of sealing guide shafts (402), a baffle plate (602) is arranged in the middle of the damping valve body (601), the baffle plate (602) divides the interior of the damping valve body (601) into two upper and lower valve chambers (603), a piston plate (604) is arranged in each of the two valve chambers (603), a vertical shaft hole (605) is arranged in the middle of the baffle plate (602), and the two movable A vertical axis (606) is connected between the plug plates (604), and the vertical axis (606) extends to the bottom of the damping valve body (601) and is fixedly connected to the lifting annular plate (609). A through hole (607) is provided on the blocking plate (602). When the two piston plates (604) move up and down synchronously, the medium in the two valve chambers (603) will be transferred from one to the other through the through hole (607), and the up and down movement speed of the piston plate (604) is controlled by the diameter of the through hole (607).
2. The triple-effect evaporator for waste liquid treatment according to claim 1, characterized in that: A steam delivery side opening (303) is provided between the U-shaped top cover (3) and the spiral evaporation delivery channel (8).
3. The triple-effect evaporator for waste liquid treatment according to claim 2, characterized in that: The floating structure (403) is made of low-density polyethylene, ethylene-vinyl acetate copolymer, polystyrene foam material or polyester material.
4. The triple-effect evaporator for waste liquid treatment according to claim 3, characterized in that: The flow control ball valve assembly (5) comprises a ball valve housing (501) arranged on the waste liquid return pipe (200), and a flow control ball valve (502) is rotatably arranged in the ball valve housing (501).
5. A waste liquid treatment system, characterized in that: The invention comprises the triple-effect evaporator according to any one of claims 1 to 4.
6. A method for treating waste liquid, characterized in that: The method comprises the following steps: inputting the waste liquid into the triple-effect evaporator according to any one of claims 1 to 4 for evaporation treatment.
Citation Information
Patent Citations
Hydraulic control valve with one-way damping function
CN213270515U
Triple-effect evaporator for wastewater treatment
CN221644640U