A waste liquid treatment mechanism, a waste acid sulfidation high-efficiency treatment device and a working method thereof
By using a coiling mechanism and a first drive mechanism in the efficient treatment device for the dust acid vulcanization, and combining the second filter mechanism and the material guide mechanism, the problem of precipitated particles crushing during the stirring process is solved, and efficient waste liquid treatment and impurity separation are achieved.
Patent Information
- Application Number
- CN202510235624.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2045-02-28
AI Technical Summary
The existing high-efficiency treatment device for dirt acid vulcanization can easily break down precipitated particles during the stirring process, affecting the waste liquid treatment efficiency.
The filter is controlled to move stably in the processing box by using a coiling mechanism and a first drive mechanism, and combining the second filter mechanism and the material guide mechanism to achieve efficient separation and filtration of impurities.
The waste liquid treatment efficiency is improved, the solid impurity crushing problem caused by excessive stirring is avoided, the subsequent filtration steps are ensured, and the impurity separation process is optimized.
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Figure CN119873925B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of waste liquid treatment, and in particular to a waste liquid treatment mechanism, a waste acid sulfurization high-efficiency treatment device and a working method thereof. Background Art
[0002] A high-efficiency waste acid sulfidation treatment unit typically refers to equipment or systems used to treat industrial wastewater containing high concentrations of sulfuric acid and other pollutants. These units are widely used in industries such as chemical, metallurgy, and electroplating to convert these hazardous substances into a more stable, harmless, or easily handled form to meet emission standards or achieve resource recovery.
[0003] In the prior art, chemical agents are generally used to react with sulfides to generate insoluble sulfide precipitates, thereby separating the sulfides from wastewater to achieve waste liquid treatment and purification.
[0004] However, the existing high-efficiency waste acid sulfurization treatment device still has the following defects during use:
[0005] Appropriate stirring can promote uniform mixing and enhance mass transfer, but overly vigorous stirring may break up the formed precipitated particles, which is not conducive to subsequent separation and affects the efficiency of waste liquid treatment. Summary of the Invention
[0006] In order to overcome the above technical problems, the purpose of the present invention is to provide a waste liquid treatment mechanism, a high-efficiency waste acid sulfurization treatment device and a working method thereof, so as to solve the problem of poor filtering treatment efficiency after waste acid sulfurization proposed in the above background technology.
[0007] The purpose of the present invention can be achieved through the following technical solutions:
[0008] A waste liquid treatment mechanism, a high-efficiency treatment device for sulfurizing contaminated acid and a working method thereof, a waste liquid treatment mechanism, comprising a filter arranged at the bottom of a treatment box, the treatment box being provided with a guide pipe connected to the filter; the treatment box being provided with a first filter mechanism; the first filter mechanism comprising a filter screen, a reeling mechanism, a connecting shaft and a first drive mechanism, the filter screen being arranged in the treatment box; the reeling mechanism being installed in the treatment box and being used for reeling in or unreeling the filter screen; the connecting shaft being provided at the free end of the filter screen; the first drive mechanism being installed in the treatment box, the first drive mechanism being used to control the connecting shaft to move upward or reset downward from the bottom of the treatment box along the inner wall of the treatment box; when the connecting shaft moves upward from the bottom of the treatment box along the inner wall of the treatment box, the filter screen is used to salvage flocculants in the treatment box.
[0009] Preferably, the winding mechanism includes a first motor and a winding shaft; the first motor is installed on the processing box, and the winding shaft is coaxially connected to the output end of the first motor.
[0010] Preferably, a transmission mechanism is provided between the output end of the first motor and the winding shaft; the transmission mechanism includes a belt and two wheels; the two wheels are coaxially fixed to the output end of the first motor and the winding shaft respectively; the belt is tensioned on the two wheels.
[0011] Preferably, the first driving mechanism includes a second motor, a pair of slide rails and a rotating rod; the second motor is installed on the processing box, the rotating rod is fixed to the output end of the second motor, a first slide groove is opened on the rotating rod, and the end of the connecting shaft is slidably connected to the first slide groove; a pair of the slide rails are arranged on the inner walls on both sides of the processing box, and the two ends of the connecting shaft are respectively slidably connected to the pair of slide rails.
[0012] Preferably, a second filtering mechanism is provided on the processing box; the second filtering mechanism includes a third motor, a spiral conveying rod, a conveying cylinder, a filter press box, a filter cartridge and an extrusion mechanism; the third motor is installed on the processing box, the spiral conveying rod is coaxially connected to the third motor, the conveying cylinder cover is provided on the spiral conveying rod, the filter press box is provided in the processing box, and the filter press box is connected to the conveying cylinder, and one end of the spiral conveying rod extends into the filter press box; the filter cartridge is sleeved on the spiral conveying rod in the filter press box; the extrusion mechanism is provided in the filter press box and is used to press impurities in the filter cartridge.
[0013] Preferably, the extrusion mechanism includes a mounting frame, a positioning sleeve, a compression spring and a pressure plate; the mounting frame is fixed to the filter press box, the compression spring is arranged between the filter press box and the mounting frame, and a through hole is opened on the filter press box; the pressure plate is arranged between the compression spring and the filter press box and is used to block the through hole.
[0014] Preferably, the method further comprises a material guiding mechanism, the material guiding mechanism being used to drive the impurities on the filter screen to move; the material guiding mechanism comprising a protruding section and a second driving mechanism; the protruding section being provided in the processing box and connected to the slide rail; an opening being provided on the side wall of the conveying cylinder; the second driving mechanism being used to drive the end of the connecting shaft to slide on the protruding section, thereby driving the impurities on the filter screen to be introduced into the conveying cylinder through the opening;
[0015] The second driving mechanism includes a pair of cylinders, a slider and a rotating block; the pair of cylinders are installed in the processing box, the slider is fixed to the output end of the cylinder, the rotating block is hinged to the slider, a torsion spring is provided at the hinge position between the rotating block and the slider, and a second sliding groove is provided on the rotating block to match the end of the connecting shaft.
[0016] Preferably, a cleaning mechanism is provided at the opening of the conveying cylinder; the cleaning mechanism comprises a roller brush and a linkage mechanism; the roller brush is rotatably connected to the processing box and is used to clean impurities on the filter screen; the linkage mechanism is installed in the processing box and is used to drive the roller brush to rotate around its axis;
[0017] The linkage mechanism includes a driving gear and a driven gear; the driving gear is coaxially fixed to the spiral conveying rod, and the driven gear is meshed with the driving gear and coaxially fixed to the roller brush.
[0018] A high-efficiency waste acid sulfidation treatment device comprises a waste liquid treatment mechanism.
[0019] A working method of a high-efficiency waste acid sulfidation treatment device comprises the following steps:
[0020] Step 1: Uniform mixing: The reeling mechanism controls the reeling or unreeling of the filter screen, and the first driving mechanism controls the movement of the filter screen, so that the filter screen vibrates in the treatment box to stir the waste liquid in the treatment box;
[0021] Step 2: Filtration and salvage: After the waste liquid treatment is completed, the filter screen is reeled in or unreeled by the reeling mechanism, and at the same time, the first driving mechanism controls the connecting shaft to move upward from the bottom of the treatment box along the inner wall of the treatment box, thereby driving the filter screen to salvage the flocculent matter in the treatment box.
[0022] Beneficial effects of the present invention:
[0023] 1. By providing a retracting mechanism and a first driving mechanism, the filter can always remain taut and move stably in the treatment box, and the movement rate of the filter can be controlled to achieve an ideal stirring effect. This improves the waste liquid treatment efficiency and avoids the problem of precipitated solid impurities being broken due to excessive stirring, thereby ensuring the effect of subsequent filtration steps.
[0024] 2. By setting up a second filtering mechanism, the salvaged impurities are collected and filtered, so that the impurities are introduced into the filter cartridge, which is responsible for filtering the impurities. The extrusion mechanism squeezes out excess water from the impurities, and the screw conveying rod rotates continuously to quickly guide the impurities out, thereby improving the efficiency and effect of impurity treatment;
[0025] 3. By setting up a material guiding mechanism, when the first driving mechanism drives the connecting shaft to move to a position close to the conveying barrel, the filter is driven to an upward tilt state, so that impurities can be smoothly introduced into the conveying barrel through the opening under the action of gravity; the whole process ensures that the impurities can be quickly and efficiently transferred to the conveying barrel after being salvaged from the waste liquid, thereby optimizing the impurity separation step in the waste liquid treatment process. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The present invention will be further described below with reference to the accompanying drawings.
[0027] Figure 1 This is a schematic diagram of the overall first-view three-dimensional structure of the present invention;
[0028] Figure 2 This is a schematic diagram of the overall second-viewing perspective three-dimensional structure of the present invention;
[0029] Figure 3 This is a first-perspective, three-dimensional, enlarged structural diagram of the present invention after the processing box is removed;
[0030] Figure 4 This is a schematic diagram of a second-angle magnified structure of the present invention after the processing box is removed;
[0031] Figure 5 This invention Figure 4 Schematic diagram of the enlarged structure of area A in the middle;
[0032] Figure 6 It is a side view cutaway enlarged structural schematic diagram of the present invention;
[0033] Figure 7 It is a partially cutaway three-dimensional structural schematic diagram of the present invention;
[0034] Figure 8 It is a partially cutaway three-dimensional structural schematic diagram of the processing box of the present invention in the exported state;
[0035] Figure 9 This invention Figure 8 Schematic diagram of the enlarged structure of the middle B area;
[0036] Figure 10 This invention Figure 8 Schematic diagram of the enlarged structure of the middle C area;
[0037] Figure 11 It is a flow chart of the method of the present invention.
[0038] In the figure: 1, processing box; 2, first filtering mechanism; 21, filter screen; 22, reeling mechanism; 221, first motor; 222, reeling shaft; 223, transmission mechanism; 2231, rotating wheel; 2232, belt; 23, connecting shaft; 24, first driving mechanism; 241, slide rail; 242, second motor; 243, rotating rod; 244, first chute; 25, material guiding mechanism; 251, protruding section; 252, second driving mechanism; 2521, cylinder; 2522, Slider; 2523, rotating block; 2524, second slide; 26, cleaning mechanism; 261, roller brush; 262, linkage mechanism; 2621, driving gear; 2622, driven gear; 3, second filtering mechanism; 31, third motor; 32, spiral conveying rod; 33, conveying cylinder; 34, filter press box; 35, filter cartridge; 36, extrusion mechanism; 361, mounting bracket; 362, positioning sleeve; 363, compression spring; 364, pressure plate; 4, filter; 5, outlet pipe. DETAILED DESCRIPTION
[0039] 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 any creative efforts shall fall within the scope of protection of the present invention.
[0040] Example 1
[0041] See also Figures 1-10 , a waste liquid treatment mechanism, such as Figure 1-Figure 4 As shown, it includes a filter 4 arranged at the bottom of the processing box 1, and a derivation pipe 5 connected to the filter 4 is provided on the processing box 1; it can be understood that the filter 4 is the existing technology, and the waste liquid in the processing box 1 is filtered by the filter 4 and then discharged through the derivation pipe 5. A first filtering mechanism 2 is provided on the processing box 1; the first filtering mechanism 2 includes a filter screen 21, a reeling mechanism 22, a connecting shaft 23 and a first driving mechanism 24; wherein, the filter screen 21 is provided in the processing box 1; it can be understood that the filter screen 21 is a flexible structure; the reeling mechanism 22 is installed in the processing box 1 and is used to reel in or unreel the filter screen 21; the connecting shaft 23 is provided at the free end of the filter screen 21 (that is, the end of the filter screen 21 that deviates from the reeling mechanism 22); the first driving mechanism 24 is installed in the processing box 1 and is used to control the connecting shaft 23 to move upward or reset downward from the bottom of the processing box 1 along the inner wall of the processing box 1; when the connecting shaft 23 moves upward from the bottom of the processing box 1 along the inner wall of the processing box 1, the filter screen 21 is used to salvage the flocculent matter in the processing box 1.
[0042] It should be noted that, in the waste liquid treatment process, in order to increase the reaction speed and optimize the stirring and mixing effect, specifically, the first drive mechanism 24 controls the movement of the connecting shaft 23 in the treatment box 1, and at the same time, the winding mechanism 22 is responsible for the winding and unwinding operations of the filter screen 21. This design ensures that when the connecting shaft 23 moves according to the instructions of the first drive mechanism 24, the filter screen 21 can always remain in a taut state and move stably in the treatment box 1. By adjusting the speed at which the first drive mechanism 24 drives the connecting shaft 23, the movement rate of the filter screen 21 can be accurately controlled, thereby achieving an ideal stirring effect. This method not only improves the waste liquid treatment efficiency, but also avoids the problem of precipitated solid impurities being broken due to excessive stirring, thereby ensuring the effect of the subsequent filtration step.
[0043] See also Figure 1-Figure 4 In an optional embodiment, it can be understood that the present application does not limit the specific structure and installation method of the winding mechanism 22. The following only provides a feasible technical solution for reference: the winding mechanism 22 includes a first motor 221 and a winding shaft 222; the first motor 221 is installed in the processing box 1, and the winding shaft 222 is coaxially connected to the output end of the first motor 221.
[0044] It should be noted that after the waste liquid treatment reaction is complete, to effectively separate impurities and accelerate the filtration process, the first drive mechanism 24 drives the connecting shaft 23 to move, while the reeling mechanism 22 ensures that the filter screen 21 remains taut throughout the entire process. As the connecting shaft 23 moves upward from the bottom of the treatment tank 1 along a predetermined path, the taut filter screen 21 rises accordingly, effectively removing impurities from the waste liquid. This process not only removes impurities from the waste liquid but also facilitates subsequent rapid filtration and separation operations, thereby improving the efficiency and effectiveness of the entire waste liquid treatment process.
[0045] See also Figure 1-Figure 4 In an optional embodiment, a transmission mechanism 223 is provided between the output end of the first motor 221 and the winding shaft 222; it can be understood that the present application does not limit the specific structure and installation method of the transmission mechanism 223. The following only provides a feasible technical solution for reference: the transmission mechanism 223 includes a belt 2232 and two rotating wheels 2231; the two rotating wheels 2231 are coaxially fixed to the output end of the first motor 221 and the winding shaft 222 respectively; the belt 2232 is tensioned on the two rotating wheels 2231.
[0046] It should be noted that the first motor 221 drives one of the rotating wheels 2231 to rotate, and the belt 2232 drives the other rotating wheel 2231 to rotate accordingly, thereby driving the reel 222 to rotate. In this way, the reeling or unreeling process of the filter 21 can be precisely controlled. Specifically, when the first motor 221 is started, the power it generates is transmitted to the connected rotating wheel 2231. Through the connection of the belt 2232, the power is transmitted to the second rotating wheel 2231, ultimately causing the reel 222 to rotate.
[0047] See also Figure 1-Figure 4 In an optional embodiment, the first driving mechanism 24 includes a second motor 242, a pair of slide rails 241 and a rotating rod 243; the second motor 242 is installed on the processing box 1, and the rotating rod 243 is fixed to the output end of the second motor 242. The rotating rod 243 is provided with a first sliding groove 244 (such as Figure 10 As shown), the end of the connecting shaft 23 is slidably connected to the first slide groove 244; a pair of slide rails 241 are provided on both sides of the inner wall of the processing box 1, and the two ends of the connecting shaft 23 are slidably connected to the pair of slide rails 241 respectively.
[0048] It should be noted that when the first drive mechanism 24 is started, the second motor 242 first drives the rotating rod 243 to rotate, and under the action of the first slide 244, the connecting shaft 23 is pushed to slide along the slide rail 241 of the annular structure. This design ensures that the connecting shaft 23 can move smoothly on the slide rail 241, while driving the strainer 21 in a taut state to move in the treatment box 1. In this way, not only can the waste liquid be effectively stirred, but also after the waste liquid treatment reaction is completed, the strainer 21 can be used to filter and salvage impurities. The entire process relies on the annular path provided by the slide rail 241, which ensures the continuity and stability of the movement of the strainer 21, thereby improving the efficiency and effect of waste liquid treatment.
[0049] See also Figure 1-Figure 4 In an optional embodiment, a second filtering mechanism 3 is provided on the processing box 1; the second filtering mechanism 3 includes a third motor 31, a spiral conveying rod 32, a conveying cylinder 33, a filter press box 34, a filter cartridge 35 and an extrusion mechanism 36; the third motor 31 is installed on the processing box 1, the spiral conveying rod 32 is coaxially connected to the third motor 31, the conveying cylinder 33 is covered on the spiral conveying rod 32, the filter press box 34 is provided in the processing box 1, and the filter press box 34 is connected to the conveying cylinder 33, and one end of the spiral conveying rod 32 extends into the filter press box 34; the filter cartridge 35 is sleeved on the spiral conveying rod 32 in the filter press box 34; the extrusion mechanism 36 is provided in the filter press box 34, and is used to filter impurities in the filter cartridge 35.
[0050] It should be noted that the impurities salvaged by the filter screen 21 are introduced into the position of the second filter mechanism 3, and then filter pressure treatment is carried out in the mechanism. The specific process is as follows: the third motor 31 drives the spiral conveying rod 32 to rotate, and the impurities located in the conveying cylinder 33 are gradually pushed into the filter cylinder 35 in the filter press box 34. The filter cylinder 35 is responsible for the preliminary filtration of impurities. As the impurities accumulated inside the filter cylinder 35 gradually increase, the extrusion mechanism 36 starts to apply pressure to the impurities in the filter cylinder 35 and squeeze out the moisture therein. At the same time, the spiral conveying rod 32 continues to rotate to ensure that the impurities can be continuously squeezed out through the gap between the filter cylinder 35 and the extrusion mechanism 36, so as to achieve the rapid extraction of impurities after filtration.
[0051] See also Figure 1-Figure 3 In an optional embodiment, the extrusion mechanism 36 includes a mounting frame 361, a positioning sleeve 362, a compression spring 363 and a pressure plate 364; the mounting frame 361 is fixed to the filter press box 34, the compression spring 363 is arranged between the filter press box 34 and the mounting frame 361, and a through hole is opened on the filter press box 34; the pressure plate 364 is arranged between the compression spring 363 and the filter press box 34, and is used to cover the through hole.
[0052] It should be noted that as the spiral conveying rod 32 continues to rotate, the impurities are gradually pushed to the vicinity of the pressure plate 364 and enter the filter press area through the through hole. During this process, the compression spring 363 applies reverse pressure, pushing the pressure plate 364 to compress the impurities, thereby achieving efficient filter press treatment. The continuous rotation of the spiral conveying rod 32 not only ensures the continuous feeding of impurities, but also prompts the compressed impurities to pass through the gap between the pressure plate 364 and the filter press box 34 and be smoothly discharged from the gap between the compression spring 363 and the filter press box 34. This design allows the impurities to be fully dehydrated during the filter press process, and the filtered impurities can be quickly and smoothly discharged.
[0053] See also Figure 3-Figure 6In an optional embodiment, it further includes a material guiding mechanism 25, which is used to drive the impurities on the filter screen 21 to move; the material guiding mechanism 25 includes a protruding section 251 and a second driving mechanism 252; the protruding section 251 is provided on the processing box 1 and is connected to the slide rail 241; an opening is provided on the side wall of the conveying cylinder 33; the second driving mechanism 252 is used to drive the end of the connecting shaft 23 to slide on the protruding section 251, so as to drive the impurities on the filter screen 21 to be introduced into the conveying cylinder 33 through the opening; the second driving mechanism 252 includes a pair of cylinders 2521, a slider 2522 and a rotating block 2523; the pair of cylinders 2521 is installed on the processing box 1, the slider 2522 is fixed to the output end of the cylinder 2521, the rotating block 2523 is hinged to the slider 2522, a torsion spring is provided at the hinge position between the rotating block 2523 and the slider 2522, and a second sliding groove 2524 is provided on the rotating block 2523 that is adapted to the end of the connecting shaft 23.
[0054] It should be noted that when the first driving mechanism 24 drives the connecting shaft 23 to move to a position close to the conveying cylinder 33, the filter screen 21 is in a tilted upward state (such as Figure 7 As the first drive mechanism 24 continues to drive the connecting shaft 23 forward, it contacts and rotates the rotating block 2523. During this process, the torsion spring is compressed until the connecting shaft 23 and the rotating block 2523 become misaligned. At this point, the torsion spring releases its energy, causing the rotating block 2523 to automatically return to its original position, accurately positioning the connecting shaft 23 within the second slot 2524 of the rotating block 2523.
[0055] Subsequently, the cylinder 2521 drives the slider 2522 to move, and the slider 2522 further pushes the rotating block 2523, so that the rotating block 2523 drives the connecting shaft 23 to move to the protruding section 251 (such as Figure 8 (as shown). In this position, impurities on filter screen 21 are smoothly drawn into conveyor barrel 33 through the opening under the action of gravity. This entire process ensures that impurities salvaged from the wastewater can be quickly and efficiently transferred to conveyor barrel 33, optimizing the impurity separation step in the wastewater treatment process. This mechanism not only improves the efficiency of impurity collection but also ensures the continuity and stability of the system.
[0056] The filter screen 21 is rolled up by the retracting mechanism 22, and the connecting shaft 23 moves along the protruding section 251 until it returns to the slide rail 241. At this time, the second motor 242 controls the rotating rod 243 to rotate, so that the first slide groove 244 (such as Figure 10As shown in the figure, the connecting shaft 23 is precisely aligned with the corresponding position on the slide rail 241. When the connecting shaft 23 moves from the protruding section 251 back to the slide rail 241, the first slide groove 244 on the rotating rod 243 receives the end of the connecting shaft 23, ensuring that it returns smoothly to the first slide groove 244. This process enables the first driving mechanism 24 to drive the connecting shaft 23 to move cyclically again, achieving continuous impurity salvaging operations.
[0057] During the salvaging process, the connecting shaft 23 moves along the sidewall of the treatment tank 1, reducing the degree of agitation of the waste liquid and avoiding the problem of solid impurities being broken due to excessive agitation, thereby ensuring the effectiveness of filtration and separation. This design not only improves salvage efficiency but also ensures the stability and effectiveness of the entire waste liquid treatment process. The connecting shaft 23 moves along the sidewall of the treatment tank 1, significantly reducing the degree of agitation of the waste liquid and effectively avoiding the problem of solid impurities being broken due to excessive agitation, thereby ensuring the effectiveness of filtration and separation.
[0058] See also Figure 1-Figure 4 In an optional embodiment, a cleaning mechanism 26 is provided at the opening of the conveying cylinder 33; the cleaning mechanism 26 includes a roller brush 261 and a linkage mechanism 262; the roller brush 261 is rotatably connected to the processing box 1 and is used to clean impurities on the filter 21; the linkage mechanism 262 is installed on the processing box 1 and is used to drive the roller brush 261 to rotate around its axis.
[0059] It should be noted that when the filter 21 moves to the opening of the conveyor cylinder 33, the rotation of the spiral conveyor rod 32 drives the roller brush 261 through the linkage mechanism 262, thereby effectively cleaning the filter 21. This process not only removes impurities adhering to the filter 21, but also ensures that these impurities are smoothly introduced into the conveyor cylinder 33. In this way, cleaning is carried out immediately after the impurities are salvaged, which not only ensures the cleanliness of the filter 21, but also maintains its efficient filtering and salvaging performance, ensuring the smooth execution of subsequent processing steps.
[0060] See also Figure 1-Figure 4 In an optional embodiment, it can be understood that the present application does not limit the specific structure and installation method of the linkage mechanism 262. The following only provides a feasible technical solution for reference: the linkage mechanism 262 includes a driving gear 2621 and a driven gear 2622; the driving gear 2621 is coaxially fixed to the spiral conveying rod 32, and the driven gear 2622 is meshed with the driving gear 2621 and coaxially fixed to the roller brush 261.
[0061] It should be noted that when the auger 32 rotates, it drives the driving gear 2621 to rotate. The driving gear 2621 then rotates the meshing driven gear 2622, which in turn drives the roller brush 261 to rotate. This gear transmission mechanism achieves a linkage between the auger 32 and the roller brush 261, ensuring that the roller brush 261 rotates synchronously and effectively removes impurities from the filter screen 21. This design ensures that the filter screen 21 is promptly cleaned after each impurity removal operation, maintaining its efficient filtering and removal performance.
[0062] Example 2
[0063] See also Figures 1-11 Based on the waste liquid treatment mechanism in the first embodiment, this embodiment provides a working method of the waste liquid treatment mechanism, including the following steps:
[0064] Step 1: Uniform mixing: The reeling mechanism 22 controls the reeling or unreeling of the filter screen 21, and the first driving mechanism 24 controls the movement of the filter screen 21, so that the filter screen 21 vibrates in the treatment box 1 to stir the waste liquid in the treatment box 1;
[0065] Step 2: Filtration and salvage: After the waste liquid treatment is completed, the reeling mechanism 22 is used to control the reeling or unreeling of the filter screen 21. At the same time, the first driving mechanism 24 controls the connecting shaft 23 to move upward from the bottom of the treatment box 1 along the inner wall of the treatment box 1, thereby driving the filter screen 21 to salvage the flocculent matter in the treatment box 1.
[0066] Example 3
[0067] See also Figures 1-10 , a high-efficiency treatment device for contaminated acid sulfidation, including a waste liquid treatment mechanism in embodiment one.
[0068] In the description of the present invention, it should be understood that the terms "upper", "lower", "left", "right" and the like indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction and a specific direction structure and operation, and therefore, cannot be understood as limiting the present invention. In addition, "first" and "second" are only for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, unless otherwise specified, "multiple" means two or more.
[0069] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0070] The above is a detailed description of an embodiment of the present invention. However, the content described is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A waste liquid treatment mechanism, comprising a filter (4) arranged at the bottom of a treatment box (1), wherein the treatment box (1) is provided with a discharge pipe (5) communicating with the filter (4); characterized in that: The processing box (1) is provided with a first filtering mechanism (2); the first filtering mechanism (2) comprises: A filter screen (21), the filter screen (21) being arranged in the processing box (1); A reeling mechanism (22), the reeling mechanism (22) being mounted on the processing box (1) and used for reeling in or unreeling the filter screen (21); a connecting shaft (23), the connecting shaft (23) being arranged at a free end of the filter screen (21); and a first driving mechanism (24), the first driving mechanism (24) being mounted on the treatment box (1), and being used to control the connecting shaft (23) to move upward from the bottom of the treatment box (1) along the inner wall of the treatment box (1) or to return downward; when the connecting shaft (23) moves upward from the bottom of the treatment box (1) along the inner wall of the treatment box (1), the filter screen (21) is used to salvage flocculent matter in the treatment box (1); The first driving mechanism (24) includes a second motor (242), a pair of slide rails (241) and a rotating rod (243); the second motor (242) is installed on the processing box (1), the rotating rod (243) is fixed to the output end of the second motor (242), a first slide groove (244) is provided on the rotating rod (243), and the end of the connecting shaft (23) is slidably connected to the first slide groove (244); the pair of slide rails (241) are provided on the inner walls of both sides of the processing box (1), and the two ends of the connecting shaft (23) are slidably connected to the pair of slide rails (241).
2. A waste liquid treatment mechanism according to claim 1, characterized in that: The reeling mechanism (22) comprises a first motor (221) and a reeling shaft (222); the first motor (221) is mounted on the processing box (1), and the reeling shaft (222) is coaxially connected to the output end of the first motor (221).
3. A waste liquid treatment mechanism according to claim 2, characterized in that: A transmission mechanism (223) is provided between the output end of the first motor (221) and the reel (222); the transmission mechanism (223) comprises a belt (2232) and two rotating wheels (2231); the two rotating wheels (2231) are coaxially fixed to the output end of the first motor (221) and the reel (222), respectively; and the belt (2232) is tensioned on the two rotating wheels (2231).
4. A waste liquid treatment mechanism according to claim 1, characterized in that: The treatment box (1) is provided with a second filtering mechanism (3); the second filtering mechanism (3) comprises a third motor (31), a spiral conveying rod (32), a conveying cylinder (33), a filter press box (34), a filter cartridge (35) and an extrusion mechanism (36); the third motor (31) is mounted on the treatment box (1), the spiral conveying rod (32) is coaxially connected to the third motor (31), the conveying cylinder (33) is covered by the spiral conveying rod (32), the filter press box (34) is arranged in the treatment box (1), and the filter press box (34) is communicated with the conveying cylinder (33), and one end of the spiral conveying rod (32) extends into the filter press box (34); the filter cartridge (35) is sleeved on the spiral conveying rod (32) in the filter press box (34); the extrusion mechanism (36) is arranged in the filter press box (34) and is used to filter impurities in the filter cartridge (35).
5. A waste liquid treatment mechanism according to claim 4, characterized in that: The extrusion mechanism (36) comprises a mounting frame (361), a positioning sleeve (362), a compression spring (363), and a pressing plate (364); the mounting frame (361) is fixed to the filter press box (34); the compression spring (363) is arranged between the filter press box (34) and the mounting frame (361); a through hole is provided on the filter press box (34); the pressing plate (364) is arranged between the compression spring (363) and the filter press box (34) and is used to cover the through hole.
6. A waste liquid treatment mechanism according to claim 4, characterized in that: The material guide mechanism (25) is further included, and the material guide mechanism (25) is used to drive the impurities on the filter screen (21) to move; the material guide mechanism (25) includes a protruding section (251) and a second driving mechanism (252); the protruding section (251) is provided on the processing box (1) and connected to the slide rail (241); an opening is provided on the side wall of the conveying cylinder (33); the second driving mechanism (252) is used to drive the end of the connecting shaft (23) to slide on the protruding section (251), so as to drive the impurities on the filter screen (21) to be introduced into the conveying cylinder (33) through the opening; The second driving mechanism (252) comprises a pair of cylinders (2521), a slider (2522) and a rotating block (2523); the pair of cylinders (2521) are mounted on the processing box (1), the slider (2522) is fixed to the output end of the cylinder (2521), the rotating block (2523) is hinged to the slider (2522), a torsion spring is provided at the hinge position between the rotating block (2523) and the slider (2522), and a second sliding groove (2524) adapted to the end of the connecting shaft (23) is provided on the rotating block (2523).
7. A waste liquid treatment mechanism according to claim 6, characterized in that: A cleaning mechanism (26) is provided at the opening of the conveying cylinder (33); the cleaning mechanism (26) comprises a roller brush (261) and a linkage mechanism (262); the roller brush (261) is rotatably connected to the processing box (1) and is used to clean impurities on the filter screen (21); the linkage mechanism (262) is installed on the processing box (1) and is used to drive the roller brush (261) to rotate around its axis; The linkage mechanism (262) comprises a driving gear (2621) and a driven gear (2622); the driving gear (2621) is coaxially fixed to the spiral conveying rod (32), and the driven gear (2622) is meshed with the driving gear (2621) and coaxially fixed to the roller brush (261).
8. An efficient treatment device for waste acid sulfidation, characterized in that: It comprises a waste liquid treatment mechanism as described in any one of claims 1-7.
9. A working method of a waste liquid treatment mechanism according to any one of claims 1 to 7, characterized in that: The following steps are involved: Step 1: uniform mixing: the reeling or unreeling filter screen (21) is controlled by the reeling mechanism (22), and the movement of the filter screen (21) is controlled by the first driving mechanism (24), so that the filter screen (21) is shaken in the treatment box (1) to stir the waste liquid in the treatment box (1); Step 2: Filtration and salvage: After the waste liquid treatment is completed, the reeling or unreeling filter screen (21) is controlled by the reeling mechanism (22), and at the same time, the first driving mechanism (24) controls the connecting shaft (23) to move upward from the bottom of the treatment box (1) along the inner wall of the treatment box (1), thereby driving the filter screen (21) to salvage the flocculent matter in the treatment box (1).
Citation Information
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