An intelligent treatment system based on the reuse of circulating water in beam yard
By designing a multi-level intelligent treatment system, including coarse impurity removal mechanism, sand screening mechanism, cleaning mechanism and floating cleaning mechanism, the problem of difficulty in removing different impurities in wastewater at the same time in the prior art is solved, and efficient recycling water treatment and reuse are achieved.
Patent Information
- Application Number
- CN202311673362.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-07
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2043-12-07
AI Technical Summary
It is difficult for existing beam circulating water reuse intelligent treatment devices to remove silt, suspended and floating objects in the wastewater at the same time, resulting in water resources being difficult to recycle.
An intelligent processing system is designed, including a coarse impurity removal mechanism, a sand screening mechanism, a cleaning mechanism and a floating cleaning mechanism. Through multi-layered filtration, sand screening, oscillation and floating cleaning steps, impurities with different characteristics are gradually removed.
Effectively remove large volume impurities, fine silt, suspended impurities and floating impurities in wastewater, improving the quality and reuse efficiency of circulating water.
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Figure CN117645385B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of beam yard circulating water reuse equipment, and in particular to an intelligent processing system based on beam yard circulating water reuse. Background Art
[0002] In recent years, high-speed railway bridge engineering projects have heavy tasks and tight construction periods. The quality of the project is often affected by inadequate construction and maintenance, especially in areas with hot climates and lack of water sources. Conventional watering and covering maintenance projects are difficult to ensure timely maintenance, and the water from watering evaporates quickly. After summarizing the practice, a prefabricated box girder water storage and maintenance and water circulation construction method has been formed. It mainly uses top surface water storage instead of traditional geotextile covering, and the outer and inner boxes are maintained with an automatic sprinkler system. The circulating water ditch in the beam yard is collected in the reservoir for reflux and reuse to solve the maintenance problems of hot climate, lack of water sources, and fast evaporation of water.
[0003] At present, since prefabricated bridges need spraying maintenance during the production process, the mud on the surface of the prefabricated bridge will flow into the bottom groove of the prefabricated bridge along with the excess water during the spraying maintenance process, so a large amount of wastewater will be generated in the production of prefabricated bridges. When the intelligent treatment device for recycling circulating water in the beam yard under the existing technology treats the wastewater, since the wastewater contains a large amount of mud, suspended matter, floating matter and other impurities, the mud sinks to the bottom, the suspended impurities are suspended in the circulating water, and the floating impurities float on the water surface. The intelligent treatment device for recycling circulating water in the beam yard under the existing technology often passes the wastewater through a filter device when treating the wastewater, resulting in that the intelligent treatment device for recycling circulating water in the beam yard cannot remove mud, floating matter and other impurities at the same time according to the characteristics of the impurities, thereby making it difficult to recycle water resources. Summary of the invention
[0004] The purpose of the present invention is to provide an intelligent treatment system based on the reuse of circulating water in a beam yard to solve the problems raised in the above-mentioned background technology.
[0005] In order to solve the above technical problems, the present invention is achieved through the following technical solutions:
[0006] The present invention is an intelligent treatment system based on the recycling of beam yard circulating water, comprising a protection box, a top of the protection box is fixedly connected with an inclined guide plate, a front outer wall of the protection box is fixedly connected with a driving motor, an output end of the driving motor is fixedly connected with an active rotating shaft, an end of the active rotating shaft close to the driving motor is drivingly connected with a belt 1, an end of the belt 1 away from the driving motor is drivingly connected with an output rotating shaft, a side outer wall of the protection box close to the driving motor is fixedly connected with a discharge mask, a side outer wall of the protection box away from the driving motor is fixedly connected with a water inlet, a bottom of the protection box is fixedly connected with a plurality of supporting legs, and further comprises:
[0007] The coarse impurity removal mechanism comprises a filter barrel fixedly connected to the inner wall of the guide inclined plate, a plurality of water outlet holes are arranged at the bottom of the filter barrel, and a part of the output shaft extending into the filter barrel is fixedly connected with a spiral fan blade.
[0008] Furthermore, a sand screening mechanism is arranged directly below the coarse impurity removal mechanism, and the sand screening mechanism includes a water outlet column fixedly connected to the bottom of the inclined guide plate, and a buffer plate is fixedly connected to the bottom of the inclined guide plate.
[0009] Furthermore, the sand screening mechanism also includes a sand screening conveyor belt rotatably connected to the active rotating shaft, an auxiliary rotating shaft is rotatably connected to the inner side of one end of the sand screening conveyor belt away from the active rotating shaft, water retaining belts are fixedly connected to both sides of the sand screening conveyor belt, and a plurality of sand screening circular grooves are evenly arranged on the outer side of the sand screening conveyor belt.
[0010] Furthermore, a cleaning mechanism is provided inside the protective box, and the cleaning mechanism includes a large gear fixedly connected to both ends of the active rotating shaft, a small gear meshing on the large gear, a cleaning rotating shaft fixedly connected to the central axis of the small gear, a plurality of bristles fixedly connected to the cleaning rotating shaft, and a mud and sand storage box is provided directly below the cleaning rotating shaft.
[0011] Furthermore, a pushing mechanism is arranged directly below the auxiliary rotating shaft, and the pushing mechanism comprises a belt 2 which is transmission-connected to both ends of the auxiliary rotating shaft, an end of the belt 2 which is away from the auxiliary rotating shaft is transmission-connected to a rotating shaft, and an end of the rotating shaft which is away from the belt 2 is fixedly connected to a half gear;
[0012] Among them, the inner walls on both sides of the protection box are fixedly connected with fixed frames, the inner walls at the upper and lower ends of the fixed frames are provided with sliding grooves, the fixed frames are slidably connected to the moving frames through the sliding grooves, and the moving frames are fixedly connected with spur racks.
[0013] Furthermore, a crushing mechanism is fixedly connected to the mobile frame, and the crushing mechanism includes a connecting rod fixedly connected to the mobile frame, and a fixed bottom plate is fixedly connected to the connecting rod;
[0014] Among them, the top of the connecting rod is fixedly and rotatably connected with a pressure rod, the bottom of one end of the pressure rod close to the connecting rod is fixedly connected with a compression spring, and the end of the pressure rod away from the connecting rod is rotatably connected with a rolling column.
[0015] Furthermore, an oscillation mechanism is arranged directly below the pushing mechanism, and the oscillation mechanism includes a limit groove arranged on the inner side of the movable frame, a vibration spring is fixedly connected to the bottom of the limit groove of the movable frame, an oscillation disk is fixedly connected to the top of the vibration spring, a number of semicircular protrusions are arranged on both sides of the oscillation disk, and an extrusion rod is fixedly connected to the inner side of the fixed frame.
[0016] Furthermore, a floating cleaning mechanism is arranged directly below the oscillating mechanism, and the floating cleaning mechanism includes a limiting slide bar fixedly connected to the movable frame, a floating slide groove is opened in the middle of the limiting slide bar, and the limiting slide bar is slidably connected to a buoyancy cylinder through the floating slide groove.
[0017] Furthermore, the floating cleaning mechanism also includes a collecting hood fixedly connected to the buoyancy cylinder, the bottom of the collecting hood is fixedly connected to a collecting cage, the top inner wall of the collecting hood is rotatably connected to a rotating column, and the bottom of the rotating column is fixedly connected to a rotating sheet.
[0018] A method for removing impurities based on an intelligent treatment system for recycling water in a beam yard includes the following steps:
[0019] S: Preliminary impurity removal: wastewater is pumped into the rough impurity removal mechanism through a water pump, and the larger impurities in the wastewater are filtered out first;
[0020] S: Remove waste water and sand, pass the waste water through the sand screening conveyor belt, and the smaller sand and gravel will enter the sand screening circular trough;
[0021] S: In addition to suspended impurities, wastewater flows into the shaking plate, and the impurities suspended in the water sink to the bottom of the shaking plate under continuous shaking;
[0022] S: In addition to floating impurities, the wastewater flows into the bottom of the protection box, and the impurities floating on the water surface are collected in the collection cage through the floating cleaning mechanism.
[0023] The present invention has the following beneficial effects:
[0024] (1) The present invention sets a floating cleaning mechanism inside the protection box. When the circulating water level in the protection box rises, the buoyancy tube will float along the floating slide groove on the limiting slide rod as the water level rises. This arrangement is conducive to ensuring that the floating cleaning mechanism is always on the surface of the circulating water. When there are floating impurities on the circulating water surface, the collection cover is driven to move back and forth under the back and forth movement of the pushing mechanism. When the collection cover is driven to move in any direction, the rotating plate in the same direction will rotate along the rotating column under the resistance of the water, so that the impurities floating on the water surface can enter the collection cage. At this time, the rotating plate in the opposite direction will not rotate due to the obstruction of the collection cover, thereby preventing the floating impurities from being directly discharged and affecting the cleaning effect of the floating impurities.
[0025] (2) The present invention provides a plurality of sand screening circular grooves on the sand screening conveyor belt. When circulating water flows through the sand screening conveyor belt, fine sand in the circulating water will fall into the sand screening circular grooves. When encountering larger cement blocks, the rolling columns on the sand screening conveyor belt rotate back and forth, so that the large pieces of sand and gravel can be broken and flow into the sand screening circular grooves together. As the sand screening conveyor belt moves upward, the cleaning mechanism removes the fine impurities in the sand in the sand screening circular grooves. In this way, the physical properties of sand and gravel are utilized to remove sand from the circulating water.
[0026] (3) The present invention provides a sand screening mechanism. When the circulating water from the guide plate mountain flows down along the water outlet column, a buffer plate is provided below, and the water flows directly to the buffer plate to avoid the circulating water flowing directly to the sand screening conveyor belt. In this way, the circulating water can be prevented from impacting the sand screening circular groove on the sand screening conveyor belt, and the mud and sand in the sand screening circular groove can be prevented from being flushed out, so that the sand screening mechanism cannot work normally.
[0027] (4) The present invention slides the oscillation plate on the movable frame. When the movable frame moves back and forth with the oscillation plate, the extrusion rod continuously squeezes the semicircular protrusion above the oscillation plate. Under the squeezing of the vibration spring, the oscillation plate vibrates up and down at a relatively high frequency. Impurities suspended in the circulating water are quickly precipitated under the rapid vibration. At this time, the relatively clean circulating water above overflows along the oscillation plate. This movement mode can effectively separate the impurities suspended in the circulating water, thereby further improving the quality of the circulating water.
[0028] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for describing the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative work.
[0030] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0031] Figure 2 It is a schematic diagram of the overall cross-sectional structure of the present invention;
[0032] Figure 3 This is a schematic diagram of the cleaning mechanism structure of the present invention;
[0033] Figure 4 It is a schematic diagram of the local structure of the present invention;
[0034] Figure 5 For the present invention Figure 4 A magnified view of middle;
[0035] Figure 6 This is a schematic diagram of the overall structure of the driving mechanism of the present invention;
[0036] Figure 7 For the present invention Figure 5 Enlarged view of middle B;
[0037] Figure 8 It is a schematic diagram of the overall structure of the floating cleaning mechanism of the present invention;
[0038] Fig. 9 For the present invention Figure 8 Enlarged view of middle C;
[0039] Fig.10 It is a schematic diagram of the impurity removal method of the present invention;
[0040] In the accompanying drawings, the components represented by the reference numerals are listed as follows:
[0041] In the figure: 1. Protective box; 11. Inclined guide plate; 12. Driving motor; 13. Active rotating shaft; 14. Belt 1; 15. Output rotating shaft; 16. Discharging mask; 17. Water inlet; 18. Support leg; 2. Coarse impurity removal mechanism; 201. Filter barrel; 202. Water outlet hole; 203. Spiral fan blade; 3. Sand screening mechanism; 301. Water outlet column; 302. Buffer plate; 303. Sand screening conveyor belt; 304. Auxiliary rotating shaft; 305. Water retaining belt; 306. Sand screening circular groove; 4. Cleaning mechanism; 401. Large gear; 402. Small gear; 403. Cleaning rotating shaft; 404. Brush; 405. Sediment storage box; 5. Pushing mechanism ; 501, belt two; 502, rotating shaft; 503, half gear; 504, fixed frame; 505, slide; 506, mobile frame; 507, spur rack; 6, crushing mechanism; 601, connecting rod; 602, fixed bottom plate; 603, pressure rod; 604, extrusion spring; 605, crushing column; 7, oscillation mechanism; 701, limit groove; 702, vibration spring; 703, oscillation disk; 704, semicircular protrusion; 705, extrusion rod; 8, floating cleaning mechanism; 801, limit slide; 802, floating slide; 803, buoyancy cylinder; 804, collecting cover; 805, collecting cage; 806, rotating column; 807, rotating sheet. DETAILED DESCRIPTION
[0042] 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 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 creative work are within the scope of protection of the present invention.
[0043] Example 1
[0044] See also Figure 1-Figure 5As shown, the present invention is an intelligent treatment system based on the reuse of circulating water in a beam yard, comprising a protection box 1, a top of the protection box 1 is fixedly connected with a guide inclined plate 11, the purpose of which is to facilitate the diversion of circulating water, a front outer wall of the protection box 1 is fixedly connected with a driving motor 12, the purpose of which is to facilitate the provision of external power, an output end of the driving motor 12 is fixedly connected with an active rotating shaft 13, the purpose of which is to facilitate the connection of the rotation effect of the driving motor 12, and an end of the active rotating shaft 13 close to the driving motor 12 is transmission-connected with a belt 14, the purpose of which is to facilitate the connection of the active rotating shaft The rotation effect of the shaft 13, the end of the belt 14 away from the driving motor 12 is connected to the output shaft 15, the purpose of this setting is to facilitate the transmission effect of the belt 14, the outer wall of the side of the protective box 1 close to the driving motor 12 is fixedly connected to the discharge mask 16, the purpose of this setting is to facilitate the connection of the output shaft 15, the outer wall of the side of the protective box 1 away from the driving motor 12 is fixedly connected to the water inlet 17, the purpose of this setting is to facilitate the entry of circulating water, the bottom of the protective box 1 is fixedly connected to a plurality of support legs 18, the purpose of this setting is to facilitate the support of the device, and also includes:
[0045] The coarse impurity removal mechanism 2 includes a filter barrel 201 fixedly connected to the inner wall of the guide plate 11, and the purpose of this arrangement is to facilitate the filtering of impurities. A plurality of water outlet holes 202 are provided at the bottom of the filter barrel 201, and the purpose of this arrangement is to facilitate the passage of circulating water. The part of the output shaft 15 extending into the filter barrel 201 is fixedly connected with a spiral fan blade 203, and the purpose of this arrangement is to facilitate the removal of impurities.
[0046] A sand screening mechanism 3 is arranged directly below the coarse impurity removal mechanism 2. The purpose of such arrangement is to facilitate filtering of sand. The sand screening mechanism 3 includes a water outlet column 301 fixedly connected to the bottom of the guide plate 11. The purpose of such arrangement is to facilitate the release of circulating water. A buffer plate 302 is fixedly connected to the bottom of the guide plate 11. The purpose of such arrangement is to facilitate avoiding the impact of circulating water on the sand screening conveyor belt 303.
[0047] The sand screening mechanism 3 also includes a sand screening conveyor belt 303 rotatably connected to the active rotating shaft 13. The purpose of this arrangement is to facilitate the removal of sand. The inner side of the end of the sand screening conveyor belt 303 away from the active rotating shaft 13 is rotatably connected with an auxiliary rotating shaft 304. The purpose of this arrangement is to facilitate the connection of the auxiliary sand screening conveyor belt 303. Both sides of the sand screening conveyor belt 303 are fixedly connected with water retaining belts 305. The purpose of this arrangement is to facilitate flow limiting. The outer side of the sand screening conveyor belt 303 is evenly provided with a plurality of sand screening circular grooves 306. The purpose of this arrangement is to facilitate the collection of sand.
[0048] A cleaning mechanism 4 is provided inside the protective box body 1, and the purpose of such provision is to facilitate cleaning of the sand in the sand screening circular groove 306. The cleaning mechanism 4 includes a large gear 401 fixedly connected to both ends of the active rotating shaft 13, and the purpose of such provision is to facilitate connecting the rotation effect of the active rotating shaft 13. A small gear 402 is meshed on the large gear 401, and the purpose of such provision is to facilitate connecting the rotation effect of the large gear 401. A cleaning rotating shaft 403 is fixedly connected to the central axis of the small gear 402, and the purpose of such provision is to facilitate connecting the rotation effect of the small gear 402. A plurality of bristles 404 are fixedly connected to the cleaning rotating shaft 403, and the purpose of such provision is to facilitate cleaning of the sand. A mud and sand storage box 405 is provided directly below the cleaning rotating shaft 403, and the purpose of such provision is to facilitate storing impurities such as sand.
[0049] A pushing mechanism 5 is arranged directly below the auxiliary rotating shaft 304, and the purpose of such arrangement is to facilitate driving the oscillation mechanism 7 to move. The pushing mechanism 5 includes a belt 2 501 which is transmission-connected to both ends of the auxiliary rotating shaft 304, and the purpose of such arrangement is to facilitate the rotation effect of the auxiliary rotating shaft 304. The end of the belt 2 501 away from the auxiliary rotating shaft 304 is transmission-connected to a rotating shaft 502, and the purpose of such arrangement is to facilitate the rotation effect of the belt 2 501. The end of the rotating shaft 502 away from the belt 2 501 is fixedly connected to a half gear 503, and the purpose of such arrangement is to facilitate the rotation effect of the rotating shaft 502.
[0050] Among them, the inner walls on both sides of the protection box body 1 are fixedly connected with a fixed frame 504, and the purpose of this arrangement is to facilitate the connection of the mobile frame 506. The inner walls at the upper and lower ends of the fixed frame 504 are provided with sliding grooves 505. The fixed frame 504 is slidably connected to the mobile frame 506 through the sliding grooves 505. The purpose of this arrangement is to facilitate the connection of the mobile frame 506. The mobile frame 506 is fixedly connected with a straight rack 507, and the purpose of this arrangement is to facilitate the movement of the half gear 503.
[0051] Example 2
[0052] The difference from Example 1 is that:
[0053] like Figure 1-Figure 10 As shown, a crushing mechanism 6 is fixedly connected to the mobile frame 506, and the purpose of such arrangement is to facilitate crushing of large pieces of sand and stone. The crushing mechanism 6 includes a connecting rod 601 fixedly connected to the mobile frame 506, and the purpose of such arrangement is to facilitate the connection of the fixed bottom plate 602. The connecting rod 601 is fixedly connected to the fixed bottom plate 602, and the purpose of such arrangement is to facilitate the limiting of the extrusion spring 604.
[0054] Among them, the top of the connecting rod 601 is fixedly and rotatably connected with a pressure rod 603. The purpose of this arrangement is to facilitate the moving effect of the connecting movable frame 506. The bottom of the pressure rod 603 close to the connecting rod 601 is fixedly connected with an extrusion spring 604. The purpose of this arrangement is to facilitate the generation of pressure by the crushing column 605. The end of the pressure rod 603 away from the connecting rod 601 is rotatably connected with the crushing column 605. The purpose of this arrangement is to facilitate the crushing of large pieces of sand and gravel.
[0055] An oscillation mechanism 7 is arranged directly below the pushing mechanism 5. The purpose of such arrangement is to facilitate filtering of tiny suspended impurities. The oscillation mechanism 7 includes a limiting groove 701 arranged on the inner side of the movable frame 506. The purpose of such arrangement is to facilitate limiting. A vibration spring 702 is fixedly connected to the bottom of the limiting groove 701 of the movable frame 506. The purpose of such arrangement is to facilitate resetting of the oscillation disk 703. The top of the vibration spring 702 is fixedly connected to the oscillation disk 703. The purpose of such arrangement is to facilitate storing circulating water. A number of semicircular protrusions 704 are arranged on both sides of the oscillation disk 703. The purpose of such arrangement is to facilitate the movement of the extrusion rod 705. The inner side of the fixed frame 504 is fixedly connected to the extrusion rod 705. The purpose of such arrangement is to facilitate the movement of the semicircular protrusions 704.
[0056] A floating cleaning mechanism 8 is arranged directly below the oscillation mechanism 7. The purpose of such arrangement is to facilitate the cleaning of floating impurities. The floating cleaning mechanism 8 includes a limiting slide bar 801 fixedly connected to the movable frame 506. The purpose of such arrangement is to facilitate the connection of the buoyancy cylinder 803. A floating slide groove 802 is opened in the middle of the limiting slide bar 801. The purpose of such arrangement is to facilitate the connection of the buoyancy cylinder 803. The limiting slide bar 801 is slidably connected to the buoyancy cylinder 803 through the floating slide groove 802. The purpose of such arrangement is to facilitate the floating of the buoyancy cylinder 803.
[0057] The floating cleaning mechanism 8 also includes a collecting hood 804 fixedly connected to the buoyancy cylinder 803, and the purpose of such arrangement is to facilitate the collection of floating impurities. The bottom of the collecting hood 804 is fixedly connected to a collecting cage 805, and the purpose of such arrangement is to facilitate the collection of floating impurities. The top inner wall of the collecting hood 804 is rotatably connected to a rotating column 806, and the purpose of such arrangement is to facilitate the rotation of the rotating plate 807. The bottom of the rotating column 806 is fixedly connected to a rotating plate 807, and the purpose of such arrangement is to facilitate the opening and closing of the collecting hood 804.
[0058] A method for removing impurities based on an intelligent treatment system for recycling water in a beam yard includes the following steps:
[0059] S1: Preliminary impurity removal: wastewater is pumped into the rough impurity removal mechanism 2 through a water pump, and the larger impurities in the wastewater are filtered out first;
[0060] S2: Remove the waste water and sand, pass the waste water through the sand screening conveyor belt 303, and the smaller sand and gravel will enter the sand screening circular trough 306;
[0061] S3: In addition to suspended impurities, the wastewater flows into the oscillating plate 703, and the impurities suspended in the water sink to the bottom of the oscillating plate 703 under continuous oscillation;
[0062] S4: In addition to floating impurities, the wastewater flows into the bottom of the protection box 1 and the impurities floating on the water surface are collected in the collection cage 805 through the floating cleaning mechanism 8.
[0063] A specific application of this embodiment is:
[0064] When the device is needed for circulating water treatment, the drive motor 12 is turned on, the water pump is connected to the water inlet 17, the drive motor 12 drives the active shaft 13 to rotate, and the output shaft 15 is driven to rotate through the belt 14, the circulating water passes through the water outlet hole 202, and the larger impurities are removed by the spiral blades 203. At this time, the circulating water flows to the sand screening conveyor belt 303. When the circulating water flows through the sand screening conveyor belt 303, the fine sediment in the circulating water will fall into the sand screening circular groove 306. When encountering larger cement blocks, the rolling column 605 on the sand screening conveyor belt 303 rotates back and forth. The movement can break up the large pieces of sand and stone and flow into the sand screening circular groove 306 together. As the sand screening conveyor belt 303 moves upward, the bristles 404 in the cleaning mechanism 4 clean the fine impurities of the sand in the sand screening circular groove 306. At this time, the auxiliary rotating shaft 304 drives the half gear 503 on the rotating shaft 502 to rotate through the belt 2 501. The moving frame 506 drives the crushing mechanism 6 to move back and forth under the cooperation of the spur rack 507. At the same time, the moving frame 506 also drives the oscillating plate 703 to move back and forth. Under the back and forth squeezing of the squeezing rod 705 and the semicircular protrusion 704, the oscillating plate 703 vibrates up and down.
[0065] In addition, when the circulating water level in the protective box 1 rises, the buoyancy tube 803 will float along the floating slide groove 802 on the limiting slide bar 801 as the water level rises. This arrangement is conducive to ensuring that the floating cleaning mechanism 8 is always on the surface of the circulating water. When there are floating impurities on the circulating water surface, the collection cover 804 is driven to move back and forth under the back and forth movement of the pushing mechanism 5. When the collection cover 804 is driven to move in any direction, the rotating piece 807 in the same direction will rotate along the rotating column 806 under the resistance of the water, so that the impurities floating on the water surface can enter the collection cage 805. At this time, the rotating piece 807 in the opposite direction will not rotate due to the obstruction of the collection cover 804, which can prevent the floating impurities from being directly discharged and affect the cleaning effect of the floating impurities.
[0066] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. An intelligent treatment system based on the recycling of beam yard circulating water, comprising a protection box (1), the top of the protection box (1) is fixedly connected to a guide plate (11), the front outer wall of the protection box (1) is fixedly connected to a driving motor (12), the output end of the driving motor (12) is fixedly connected to an active rotating shaft (13), the end of the active rotating shaft (13) close to the driving motor (12) is transmission-connected to a belt 1 (14), the end of the belt 1 (14) away from the driving motor (12) is transmission-connected to an output rotating shaft (15), the outer wall of one side of the protection box (1) close to the driving motor (12) is fixedly connected to a discharge mask (16), the outer wall of the side of the protection box (1) away from the driving motor (12) is fixedly connected to a water inlet (17), and the bottom of the protection box (1) is fixedly connected to a plurality of supporting legs (18), characterized in that: Also includes: A rough impurity removal mechanism (2), the rough impurity removal mechanism (2) comprising a filter barrel (201) fixedly connected to the inner wall of the guide plate (11), a plurality of water outlet holes (202) being arranged at the bottom of the filter barrel (201), and a portion of the output shaft (15) extending into the filter barrel (201) being fixedly connected to a spiral fan blade (203); A sand screening mechanism (3) is provided directly below the rough impurity removal mechanism (2), and the sand screening mechanism (3) comprises a water outlet column (301) fixedly connected to the bottom of the guide plate (11), and a buffer plate (302) is fixedly connected to the bottom of the guide plate (11); The sand screening mechanism (3) further comprises a sand screening conveyor belt (303) rotatably connected to the driving rotating shaft (13); an auxiliary rotating shaft (304) is rotatably connected to the inner side of one end of the sand screening conveyor belt (303) away from the driving rotating shaft (13); water retaining belts (305) are fixedly connected to both sides of the sand screening conveyor belt (303); and a plurality of sand screening circular grooves (306) are evenly arranged on the outer side of the sand screening conveyor belt (303); A cleaning mechanism (4) is arranged inside the protection box (1), and the cleaning mechanism (4) comprises a large gear (401) fixedly connected to both ends of the driving shaft (13), a small gear (402) meshing with the large gear (401), a cleaning shaft (403) fixedly connected at the center axis of the small gear (402), a plurality of bristles (404) fixedly connected to the cleaning shaft (403), and a sediment storage box (405) is arranged directly below the cleaning shaft (403); A pushing mechanism (5) is arranged directly below the auxiliary rotating shaft (304), and the pushing mechanism (5) comprises a belt 2 (501) which is transmission-connected to both ends of the auxiliary rotating shaft (304), an end of the belt 2 (501) which is away from the auxiliary rotating shaft (304) is transmission-connected to a rotating shaft (502), and an end of the rotating shaft (502) which is away from the belt 2 (501) is fixedly connected to a half gear (503); Wherein, the inner walls on both sides of the protection box body (1) are fixedly connected with a fixed frame (504), the inner walls at the upper and lower ends of the fixed frame (504) are provided with sliding grooves (505), the fixed frame (504) is slidably connected with a movable frame (506) through the sliding grooves (505), and the movable frame (506) is fixedly connected with a spur rack (507); The movable frame (506) is fixedly connected to a crushing mechanism (6), wherein the crushing mechanism (6) comprises a connecting rod (601) fixedly connected to the movable frame (506), and a fixed bottom plate (602) is fixedly connected to the connecting rod (601); The top of the connecting rod (601) is fixedly and rotatably connected to a pressure rod (603), the bottom of one end of the pressure rod (603) close to the connecting rod (601) is fixedly connected to a compression spring (604), and the end of the pressure rod (603) away from the connecting rod (601) is rotatably connected to a rolling column (605).
2. According to claim 1, an intelligent treatment system based on the recycling of beam yard water is characterized in that: An oscillating mechanism (7) is arranged directly below the pushing mechanism (5), and the oscillating mechanism (7) comprises a limiting groove (701) arranged inside the moving frame (506), a oscillating spring (702) is fixedly connected to the bottom of the limiting groove (701) of the moving frame (506), an oscillating plate (703) is fixedly connected to the top of the oscillating spring (702), a plurality of semicircular protrusions (704) are arranged on both sides of the oscillating plate (703), and an extrusion rod (705) is fixedly connected to the inner side of the fixed frame (504).
3. The intelligent treatment system based on the reuse of beam yard circulating water according to claim 2 is characterized by: A floating cleaning mechanism (8) is arranged directly below the oscillating mechanism (7), and the floating cleaning mechanism (8) comprises a limiting slide bar (801) fixedly connected to the movable frame (506), a floating slide groove (802) is provided in the middle of the limiting slide bar (801), and the limiting slide bar (801) is slidably connected to a buoyancy cylinder (803) via the floating slide groove (802).
4. The intelligent treatment system based on the reuse of beam yard circulating water according to claim 3 is characterized by: The floating cleaning mechanism (8) further comprises a collecting hood (804) fixedly connected to the buoyancy cylinder (803), the bottom of the collecting hood (804) being fixedly connected to a collecting cage (805), the top inner wall of the collecting hood (804) being rotatably connected to a rotating column (806), and the bottom of the rotating column (806) being fixedly connected to a rotating sheet (807).
5. A method for removing impurities based on an intelligent treatment system for recycling water in a beam yard, characterized in that: The intelligent treatment system based on the reuse of the beam yard circulating water as claimed in claim 4 comprises the following steps: S1: Preliminary impurity removal: wastewater is pumped into the rough impurity removal mechanism (2) through a water pump, and the larger impurities in the wastewater are filtered out first; S2: Remove the wastewater from the water and pass it through the sand screening conveyor belt (303), and the smaller sand and gravel will enter the sand screening circular trough (306); S3: After removing suspended impurities, the wastewater flows into the shaking plate (703), and the impurities suspended in the water sink to the bottom of the shaking plate (703) under continuous shaking; S4: In addition to floating impurities, the wastewater flows into the bottom of the protection box (1) and the impurities floating on the water surface are collected in the collection cage (805) through the floating cleaning mechanism (8).
Citation Information
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