Intelligent quantitative flocculant dosing device

The design of the intelligent quantitative flocculant dosing device solves the problems of clumping and difficulty in controlling the amount of flocculant during the addition process, realizes automated crushing and quantitative dosing, and improves the stability and efficiency of sewage treatment.

CN118878034BActive Publication Date: 2026-02-17SHANDONG RUNYANG ENVIRONMENTAL PROTECTION EQUIP CO LTD
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Patent Information

Application Number
CN202411044721.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2026-02-17
Estimated Expiration
2044-07-31

AI Technical Summary

Technical Problem

Existing flocculants are prone to clumping during the addition process, leading to blockages and dust generation. Furthermore, manual addition makes it difficult to accurately control the amount, affecting the wastewater treatment effect.

Method used

An intelligent quantitative flocculant dosing device was designed, comprising a tank, storage pipe, inverted L-shaped addition and delivery pipe, filter plate, rotating shaft, stirring rod, motor and other components, to realize automatic crushing, screening and quantitative addition. The stable storage, crushing and quantitative addition of flocculant are achieved through a gear and rack system driven by the motor.

Benefits of technology

It enables automated storage, crushing, and quantitative addition of flocculants, avoiding clumping and dust generation, and ensuring the stability and effectiveness of wastewater treatment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical fields of flocculant dosing, and discloses an intelligent quantitative flocculant dosing device, which comprises a tank body and a tank cover installed on the top of the tank body, a rotatable adjusting storage tube is installed in the tank body, an inverted L-shaped adding conveying pipe is fixedly installed on the upper part of the tank body, a filter plate is fixedly installed at the bottom of the storage tube, a storage plugging part is installed at the bottom of the filter plate in the tank body, the end of the inverted L-shaped adding conveying pipe located in the tank body is located in the storage tube, a first rotating shaft is rotatably connected to the bottom of the tank body, an inverted cylindrical block is fixedly installed on the surface of the first rotating shaft, and two quantitative grooves are symmetrically formed in the surface of the inverted cylindrical block; the flocculant dosing device has the functions of storage plugging, automatic crushing, screening and automatic quantitative adding, and has the advantages of simple structure, convenient operation, stable and reliable use and adjustment, and can meet the use requirements of automatic flocculant dosing.
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Description

Technical Field

[0001] This invention belongs to the field of flocculant dosing technology, specifically an intelligent quantitative flocculant dosing device. Background Technology

[0002] Flocculants are chemical substances used in water and wastewater treatment, primarily to promote the aggregation and sedimentation of suspended solids, thereby improving water clarity and treatment efficiency. Flocculants alter the physical and chemical properties of particulate matter in water, enabling tiny suspended particles to aggregate into larger flocs, facilitating subsequent sedimentation or filtration. The main functions of flocculants include: 1. Promoting sedimentation: Flocculants can aggregate tiny suspended particles in water into larger particles (flocs), thus accelerating sedimentation; 2. Improving water quality: By removing suspended solids, colloidal substances, and some dissolved substances from water, flocculants can significantly improve water quality and reduce turbidity; 3. Improving subsequent treatment: In wastewater treatment, the use of flocculants can improve the efficiency of subsequent filtration, sedimentation, and other treatment processes. In conclusion, flocculants play a crucial role in water and wastewater treatment and are an important tool for achieving sustainable water resource utilization.

[0003] In the process of wastewater treatment, flocculants cannot be directly injected into the wastewater; they must first be mixed evenly with water before being added. Commonly used flocculants are usually in powder form, which can clump together during storage. Therefore, they need to be manually crushed before being added. At the same time, the addition of powdered flocculants can easily generate dust, which can affect the working environment and the health of workers. Furthermore, manual addition makes it difficult to accurately control the amount, thus affecting wastewater treatment. Therefore, improvements are needed to address these issues. Summary of the Invention

[0004] To achieve the above objectives, the present invention provides the following technical solution: an intelligent quantitative flocculant dosing device, comprising a tank and a tank cover installed on the top of the tank, wherein a rotatable and adjustable storage tube is installed inside the tank, an inverted L-shaped addition and delivery tube is fixedly installed on the upper part of the tank, a filter plate is fixedly installed at the bottom inside the storage tube, a storage sealing component is installed inside the tank at the bottom of the filter plate, the end of the inverted L-shaped addition and delivery tube located inside the tank is located inside the storage tube, a first rotating shaft is rotatably connected to the bottom of the tank, an inverted cylindrical block is fixedly installed on the surface of the first rotating shaft, two quantitative grooves are symmetrically formed on the surface of the inverted cylindrical block, a reciprocating rotation adjustment component is installed between the upper part of the tank and the tank cover, a second rotating shaft connected to the reciprocating rotation adjustment component is provided in the middle of the storage tube, a stirring rod is fixedly installed on the surface of the second rotating shaft located inside the storage tube, and a first dual-output shaft motor is installed on the top of the tank cover, the two output ends of the first dual-output shaft motor being respectively connected to the reciprocating rotation adjustment component and the first rotating shaft.

[0005] Preferably, the tank body has two first grooves and two second grooves inside, with the two first grooves located between the two second grooves. First retaining rings are fixedly installed at the top and bottom of the storage tube surface, and the two first retaining rings are movably installed inside the two first grooves respectively. Two rollers are equidistantly installed in a ring at the middle of the storage tube surface, with the two rollers located inside the two second grooves respectively. This allows for effective installation of the storage tube and effective rotation adjustment of the storage tube.

[0006] Preferably, the storage sealing component includes two first rotating shafts, which are symmetrically rotatably connected to the lower part inside the storage tube. A pair of fixed rods are fixedly connected to the surface of each of the two first rotating shafts, and a semi-circular sealing baffle is fixedly connected between each pair of fixed rods. One end of each of the two first rotating shafts extends to the outside of the tank and is fixedly connected to a first worm gear. A second dual-output shaft motor is installed on the surface of the tank. The two output ends of the second dual-output shaft motor are symmetrically fixedly connected to first worms. The two first worms are respectively meshed with two first worm gears, thereby effectively adjusting the semi-circular sealing baffle.

[0007] Preferably, the reciprocating rotation adjustment component includes a first bearing fixedly installed in the middle of the can lid, a hollow tube fixedly installed in the middle of the first bearing, a first ring plate fixedly installed in the lower part of the hollow tube inside the can body, a second ring plate on the circumferential surface of the first ring plate, n-shaped blocks fixedly installed at equal intervals on the top of the first and second ring plates, a first arc-shaped rack fixedly installed at equal intervals on the outer arc surface of the first ring plate, and a second arc-shaped rack fixedly installed at equal intervals on the inner arc surface of the second ring plate.

[0008] Preferably, a third groove is provided in the upper part of the tank body, and a second plate is movably installed inside the third groove. Vertical rods are fixedly installed at equal intervals in a ring on the top of the first retaining ring at the top of the storage tube. Gears located between the first and second plates are fixedly connected to the top of each vertical rod. The gears alternately mesh with the first and second arc-shaped racks, thereby effectively adjusting the continuous reciprocating rotation of the storage tube and causing it to oscillate back and forth, which is beneficial for screening.

[0009] Preferably, two second bearings are fixedly installed inside the hollow tube, and a second rotating shaft is fixedly connected between the two second bearings and passes through the hollow tube. A first bevel gear ring is fixedly installed on the upper part of the hollow tube above the can cover, and a second bevel gear ring symmetrical to the first bevel gear ring is fixedly installed on the top of the second rotating shaft. A large bevel gear is fixedly installed on one output end of the first dual-output shaft motor. The large bevel gear meshes between the first bevel gear ring and the second bevel gear ring, thereby enabling effective adjustment.

[0010] Preferably, a small transmission gear is fixedly installed at one output end of the first dual-shaft motor, and a large transmission gear that meshes with the small transmission gear is rotatably installed on the surface of the tank. A disc is fixedly installed at one end of the large transmission gear, and actuating pins are fixedly installed at equal intervals on the arc surface of the disc. Each rotation of the equally spaced actuating pins can adjust the first rotating shaft by 180 degrees.

[0011] Preferably, a second rotating shaft is rotatably mounted on the surface of the tank body, a circular block is fixedly mounted on the top of the second rotating shaft, a transmission pin matching the actuating pin is mounted on the circumferential surface of the circular block, a second worm is fixedly mounted on the bottom of the second rotating shaft, one end of the first rotating shaft extends to the outside of the tank body and a second worm wheel is fixedly mounted thereon, the second worm wheel meshes with the second worm, thereby enabling effective automatic dosing operation.

[0012] Compared with the prior art, the beneficial effects of the present invention are:

[0013] (1) In operation, by setting up a tank body, tank cover, storage pipe, inverted L-shaped addition and conveying pipe, filter plate, rotating shaft, inverted cylindrical block, quantitative groove, rotating shaft, stirring rod, first double-output shaft motor, storage and sealing component and reciprocating rotation adjustment component, this flocculant addition device has a structure that integrates storage and sealing, automatic crushing and screening and automatic quantitative addition functions. Storage and sealing prevent the stored flocculant from clogging at the quantitative addition structure and ensures the stability of quantitative addition. Automatic crushing and screening can crush and screen the flocculant that is clumped by the storage and sealing, which is beneficial to the subsequent quantitative addition operation of flocculant. Automatic quantitative addition can ensure the effect of flocculant wastewater treatment.

[0014] (2) By starting the second dual-output shaft motor, the second dual-output shaft motor drives the two first worm gears to rotate. The rotation of the two first worm gears will drive the two first worm wheels to rotate. The rotation of the two first worm wheels will drive the two first rotating shafts to rotate relative to each other. The two rotating shafts will drive the two semi-circular sealing baffles to rotate 90 degrees and unfold through the fixed rod, so that the two semi-circular sealing baffles can be removed from the bottom of the filter plate to facilitate the filter plate to filter the flocculant.

[0015] (3) By starting the first dual-output shaft motor, the large bevel gear is driven to rotate. The rotation of the large bevel gear will drive the first bevel gear ring and the second bevel gear ring, causing the first bevel gear ring and the second bevel gear ring to rotate in different directions. The first bevel gear ring and the second bevel gear ring rotating in different directions will drive the hollow tube and the rotating shaft to rotate. The rotation of the rotating shaft will drive the stirring rod to rotate inside the storage tube, thereby stirring and crushing the stored agglomerated powdered flocculant, making it easier for the powdered flocculant to leak out through the filter plate. The rotation of the hollow tube will drive the first ring plate and the second ring plate to rotate. The rotation of the first ring plate and the second ring plate will drive the first arc-shaped rack and the second arc-shaped rack to rotate. The rack and pinion rotates, and the rotation of the first and second arc-shaped racks alternately drives the gears, causing them to move along an arc-shaped trajectory between the first and second ring plates. This causes the gears to drive the storage tube to rotate and oscillate continuously in both directions via the vertical rod and the first retaining ring connected to the vertical rod. The continuous rotation and oscillation of the storage tube is stably and effectively achieved by the rotation of the first retaining ring inside the first ring groove and the rolling of the roller inside the second ring groove. The continuous rotation and oscillation of the storage tube effectively filters the pulverized flocculant through the filter plate. The filtered flocculant falls into the metering groove for collection and metered addition.

[0016] The starting of the first dual-shaft motor synchronously drives the transmission pinion to rotate. The rotation of the transmission pinion reduces the speed of the transmission gear, which in turn drives the large transmission gear to rotate. The rotation of the large transmission gear drives the disc and the actuating pin on its surface to rotate. The actuating pin actuates the transmission pin, causing the circular block to rotate. The rotation of the circular block drives the second rotating shaft and the second worm gear to rotate. The rotation of the second worm gear drives the second worm wheel, which in turn drives the rotating shaft to rotate. Ultimately, the rotating shaft rotates 180 degrees each time, causing the inverted cylindrical block to rotate 180 degrees. This allows the two metering grooves to alternately pour out and add the metered amount of flocculant collected inside. Attached Figure Description

[0017] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.

[0018] In the attached diagram:

[0019] Figure 1 This is a front view schematic diagram of the intelligent quantitative flocculant dosing device of the present invention;

[0020] Figure 2 This is a rear view schematic diagram of the intelligent quantitative flocculant dosing device of the present invention;

[0021] Figure 3For the present invention Figure 2 A schematic diagram of a partial structure;

[0022] Figure 4 For the present invention Figure 3 A schematic diagram of a partial structure;

[0023] Figure 5 For the present invention Figure 1 A schematic diagram of a partial structure;

[0024] Figure 6 For the present invention Figure 1 A schematic diagram of the cross-sectional structure;

[0025] Figure 7 For the present invention Figure 6 Schematic diagram of local structure Figure 1 ;

[0026] Figure 8 For the present invention Figure 6 Schematic diagram of local structure Figure 2 ;

[0027] Figure 9 For the present invention Figure 6 Schematic diagram of local structure Figure 3 ;

[0028] Figure 10 This is a partial top view of the reciprocating rotating component of the present invention;

[0029] In the diagram: 1. Tank body; 2. Tank lid; 3. Storage pipe; 4. Inverted L-shaped feeding and conveying pipe; 5. Filter plate; 6. First rotating shaft; 7. Inverted cylindrical block; 8. Metering groove; 9. Second rotating shaft; 10. Stirring rod; 11. First dual-output shaft motor; 12. First ring groove; 13. Second ring groove; 14. First retaining ring; 15. Roller; 16. First rotating shaft; 17. Fixed rod; 18. Semi-circular sealing baffle; 19. First worm gear; 20. Second dual-output shaft motor; 21. First worm; 22. First bearing; 3. Hollow tube; 2401. First ring plate; 24. Second ring plate; 25. N-shaped block; 26. First arc-shaped rack; 27. Second arc-shaped rack; 28. Third ring groove; 29. ​​Vertical rod; 30. Gear; 31. Second bearing; 32. First bevel gear ring; 33. Second bevel gear ring; 34. Large bevel gear; 35. Transmission pin; 36. Transmission gear; 37. Disc; 38. Actuating pin; 39. Second rotating shaft; 40. Round block; 41. Transmission pin; 42. Second worm gear; 43. Second worm wheel. Detailed Implementation

[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0031] Example 1, by Figures 1 to 10 The present invention includes a tank body 1 and a tank cover 2 installed on the top of the tank body 1. A rotatable and adjustable storage tube 3 is installed inside the tank body 1. An inverted L-shaped addition and delivery tube 4 is fixedly installed on the upper part of the tank body 1. A filter plate 5 is fixedly installed at the bottom inside the storage tube 3. A storage sealing component located at the bottom of the filter plate 5 is installed inside the tank body 1. The end of the inverted L-shaped addition and delivery tube 4 located inside the tank body 1 is located inside the storage tube 3. A first rotating shaft 6 is rotatably connected to the bottom inside the tank body 1. An inverted cylindrical block 7 is fixedly installed on the surface of the first rotating shaft 6. Two metering grooves 8 are symmetrically opened on the surface of the inverted cylindrical block 7.

[0032] A reciprocating rotation adjustment component is installed between the upper part of the tank body 1 and the tank cover 2. A second rotating shaft 9 connected to the reciprocating rotation adjustment component is provided in the middle of the storage tube 3. An agitator 10 is fixedly installed on the surface of the second rotating shaft 9 inside the storage tube 3. A first dual-output shaft motor 11 is installed on the top of the tank cover 2. The two output ends of the first dual-output shaft motor 11 are respectively connected to the reciprocating rotation adjustment component and the first rotating shaft 6.

[0033] The tank body 1 has two first grooves 12 and two second grooves 13 inside. The two first grooves 12 are located between the two second grooves 13. The top and bottom of the surface of the storage tube 3 are fixedly installed with first retaining rings 14. The two first retaining rings 14 are respectively movably installed inside the two first grooves 12. Two rollers 15 are installed at equal intervals in a ring in the middle of the surface of the storage tube 3. The two rollers 15 are respectively located inside the two second grooves 13, so as to effectively install the storage tube 3 and enable the storage tube 3 to be effectively rotated and adjusted.

[0034] This flocculant dosing device integrates storage and sealing, automatic crushing and screening, and automatic quantitative addition functions. Storage and sealing prevent the stored flocculant from clogging the quantitative addition structure, thus ensuring the stability of quantitative addition. Automatic crushing and screening can crush and screen the flocculant that has clumped in the storage and sealing, which is beneficial to the subsequent quantitative addition of flocculant. Automatic quantitative addition can ensure the effect of flocculant in wastewater treatment.

[0035] Meanwhile, this flocculant dosing device has a simple structural design, is easy and convenient to operate, and is stable and reliable in use and adjustment. Its performance can meet the requirements for automatic flocculant dosing.

[0036] In Example 2, based on Example 1, the storage and sealing component includes two first rotating shafts 16. The two first rotating shafts 16 are symmetrically rotatably connected to the lower part of the storage tube 3. A pair of fixing rods 17 are fixedly connected to the surface of each of the two first rotating shafts 16. A semi-circular sealing baffle 18 is fixedly connected between each pair of fixing rods 17. The two semi-circular sealing baffles 18 form a circular plate and block the bottom of the filter plate 5, so that the powdered flocculant inside the storage tube 3 will not fall into the lower part of the storage tube 3, effectively avoiding the accumulation and clumping of powdered flocculant and causing blockage.

[0037] One end of each of the two first rotating shafts 16 extends to the outside of the tank body 1 and is fixedly connected to a first worm gear 19. A second dual-output shaft motor 20 is installed on the surface of the tank body 1. The two output ends of the second dual-output shaft motor 20 are symmetrically fixedly connected to first worm gears 21. The two first worm gears 21 are respectively meshed with the two first worm gears 19, thereby effectively adjusting the semi-circular sealing baffle 18.

[0038] By starting the second dual-output shaft motor 20, the second dual-output shaft motor 20 drives the two first worm gears 21 to rotate. The rotation of the two first worm gears 21 will drive the two first worm wheels 19 to rotate. The rotation of the two first worm wheels 19 will drive the two first rotating shafts 16 to rotate relative to each other. The two rotating shafts 16 will drive the two semi-circular sealing baffles 18 to rotate 90 degrees and unfold through the fixing rod 17, so that the two semi-circular sealing baffles 18 can be removed from the bottom of the filter plate 5, making it easier for the filter plate 5 to filter the flocculant.

[0039] In Example 3, based on Example 1, the reciprocating adjustment component includes a first bearing 22 fixedly installed in the middle of the can lid 2, a hollow tube 23 fixedly installed in the middle of the first bearing 22, a first ring plate 2401 fixedly installed in the lower part of the hollow tube 23 inside the can body 1, a second ring plate 24 provided on the circumferential surface of the first ring plate 2401, n-shaped blocks 25 fixedly installed at equal intervals on the top of the first ring plate 2401 and the second ring plate 24, a first arc-shaped rack 26 fixedly installed at equal intervals on the outer arc surface of the first ring plate 2401, and a second arc-shaped rack 27 fixedly installed at equal intervals on the inner arc surface of the second ring plate 24, with the first arc-shaped rack 26 and the second arc-shaped rack 27 being staggered.

[0040] The upper part of the tank body 1 is provided with a third ring groove 28. The second ring plate 24 is movably installed inside the third ring groove 28. The top of the first retaining ring 14 on the upper part of the storage tube 3 is fixedly installed with vertical rods 29 at equal intervals in a ring. The top of each vertical rod 29 is fixedly connected with a gear 30 located between the first ring plate 2401 and the second ring plate 24. The gears 30 are alternately meshed with the first arc-shaped rack 26 and the second arc-shaped rack 27, so as to effectively adjust the continuous reciprocating rotation of the storage tube 3 and make the storage tube 3 reciprocate to shake, which is beneficial for screening.

[0041] Two second bearings 31 are fixedly installed inside the hollow tube 23. The second rotating shaft 9 is fixedly connected between the two second bearings 31 and passes through the hollow tube 23. A first bevel gear ring 32 is fixedly installed on the upper part of the hollow tube 23 above the can cover 2. A second bevel gear ring 33 symmetrical to the first bevel gear ring 32 is fixedly installed on the top of the second rotating shaft 9. A large bevel gear 34 is fixedly installed on one output end of the first dual-output shaft motor 11. The large bevel gear 34 meshes between the first bevel gear ring 32 and the second bevel gear ring 33, thereby enabling effective adjustment.

[0042] By starting the first dual-output shaft motor 11, the first dual-output shaft motor 11 drives the large bevel gear 34 to rotate. The rotation of the large bevel gear 34 will transmit power to the first bevel gear ring 32 and the second bevel gear ring 33, thereby causing the first bevel gear ring 32 and the second bevel gear ring 33 to rotate in different directions. The first bevel gear ring 32 and the second bevel gear ring 33 rotating in different directions will drive the hollow tube 23 and the second rotating shaft 9 to rotate.

[0043] The rotation of the second rotating shaft 9 will drive the stirring rod 10 to rotate inside the storage tube 3, thereby stirring and crushing the stored agglomerated powdered flocculant, so that the powdered flocculant can be leaked out through the filter plate 5.

[0044] The rotation of the hollow tube 23 will drive the first ring plate 2401 and the second ring plate 24 to rotate. The rotation of the first ring plate 2401 and the second ring plate 24 will drive the first arc-shaped rack 26 and the second arc-shaped rack 27 to rotate. The rotation of the first arc-shaped rack 26 and the second arc-shaped rack 27 will alternately drive the gear 30 to move in an arc-shaped trajectory between the first ring plate 2401 and the second ring plate 24. Thus, the gear 30 drives the storage tube 3 to rotate and shake continuously in both directions through the vertical rod 29 and the first retaining ring 14 connected to the vertical rod 29. The continuous rotation and shaking of the storage tube 3 in both directions can be stably and effectively achieved by the first retaining ring 14 rotating inside the first ring groove 12 and by the roller 15 rolling inside the second ring groove 13.

[0045] The continuous forward and reverse rotation of the storage tube 3 effectively filters the pulverized flocculant through the filter plate 5; the filtered flocculant falls into the metering groove 8 for centralized collection and metered addition.

[0046] A controller is installed on the surface of the tank body 1. The controller is connected to the first dual-output shaft motor 11 and the second dual-output shaft motor 20 to control the opening and closing of the first dual-output shaft motor 11 and the second dual-output shaft motor 20, thereby achieving automatic and intelligent control.

[0047] In Example 4, based on Example 3, a small transmission gear 35 is fixedly installed at one output end of the first dual-shaft motor 11, and a large transmission gear 36 that meshes with the small transmission gear 35 is rotatably installed on the surface of the tank body 1. A disc 37 is fixedly installed at one end of the large transmission gear 36, and actuating pins 38 are fixedly installed at equal intervals on the arc surface of the disc 37. Each rotation of the equally spaced actuating pins 38 can adjust the first rotating shaft 6 by 180 degrees.

[0048] A second rotating shaft 39 is rotatably mounted on the surface of the tank body 1. A circular block 40 is fixedly mounted on the top of the second rotating shaft 39. A transmission pin 41 matching the actuating pin 38 is mounted on the circumferential surface of the circular block 40. A second worm gear 42 is fixedly mounted on the bottom of the second rotating shaft 39. One end of the first rotating shaft 6 extends to the outside of the tank body 1 and a second worm wheel 43 is fixedly mounted thereon. The second worm wheel 43 meshes with the second worm gear 42, thereby enabling an effective automatic dosing operation.

[0049] The start-up of the first dual-shaft motor 11 synchronously drives the transmission pinion 35 to rotate. The rotation of the transmission pinion 35 reduces the speed of the transmission gear 36. The rotation of the transmission gear 36 drives the disc 37 and the actuating pin 38 on its surface to rotate. The surface of the actuating pin 38 actuates the transmission pin 41, causing the circular block 40 to rotate. The rotation of the circular block 40 drives the second rotating shaft 39 and the second worm gear 42 to rotate. The rotation of the second worm gear 42 drives the second worm wheel 43 to rotate, causing the first rotating shaft 6 to rotate. Finally, the first rotating shaft 6 rotates 180 degrees each time, causing the inverted cylindrical block 7 to rotate 180 degrees, so that the two metering grooves 8 alternately pour out the metered amount of flocculant collected inside for addition.

[0050] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0051] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An intelligent quantitative flocculant dosing device, comprising a tank body and a tank cover installed on the top of the tank body, characterized in that: The inside of the tank body is internally provided with a rotatable adjusting storage tube, the upper part of the tank body is fixedly provided with an inverted L-shaped adding conveying tube, the bottom of the inside of the storage tube is fixedly provided with a filter plate, the inside of the tank body is internally provided with a storage plugging part located at the bottom of the filter plate, the end of the inverted L-shaped adding conveying tube located in the inside of the tank body is located in the inside of the storage tube, the bottom of the inside of the tank body is rotatably connected with a first rotating shaft, the surface of the first rotating shaft is fixedly provided with an inverted cylindrical block, the surface of the inverted cylindrical block is symmetrically provided with two quantitative grooves, the upper part of the inside of the tank body is provided with a reciprocating rotating adjusting part between the tank cover, the middle part of the inside of the storage tube is provided with a second rotating shaft connected with the reciprocating rotating adjusting part, the surface of the second rotating shaft located in the inside of the storage tube is fixedly provided with an agitating rod, the top of the tank cover is provided with a first double-output shaft motor, the two output ends of the first double-output shaft motor are respectively in transmission connection with the reciprocating rotating adjusting part and the first rotating shaft. The inside of the tank body is provided with two first circle grooves and two second circle grooves, the two first circle grooves are located between the two second circle grooves, the top and bottom of the surface of the storage tube are fixedly provided with first clamping rings, the two first clamping rings are movably installed in the inside of the two first circle grooves, the middle part of the surface of the storage tube is annularly and equidistantly provided with two circles of rollers, the two circles of rollers are respectively located in the inside of the two second circle grooves. The reciprocating rotating adjusting part comprises a first bearing fixedly installed in the middle part of the tank cover, the middle part of the first bearing is fixedly provided with a hollow tube, the lower part of the hollow tube located in the inside of the tank body is fixedly provided with a first circle plate, the circumferential surface of the first circle plate is provided with a second circle plate, the top of the first circle plate and the second circle plate is annularly and equidistantly fixedly provided with n-shaped blocks, the outer arc surface of the first circle plate is annularly and equidistantly fixedly provided with a first arc-shaped rack, the inner arc surface of the second circle plate is annularly and equidistantly fixedly provided with a second arc-shaped rack. The upper part of the inside of the tank body is provided with a third circle groove, the second circle plate is movably installed in the inside of the third circle groove, the top of the first clamping ring of the upper part of the storage tube is annularly and equidistantly fixedly provided with vertical rods, the top of the vertical rods are all fixedly connected with gears located between the first circle plate and the second circle plate, the gears are alternately in transmission meshing connection with the first arc-shaped rack and the second arc-shaped rack. The inside of the hollow tube is fixedly provided with two second bearings, the second rotating shaft is fixedly connected between the inside of the two second bearings and penetrates through the hollow tube, the upper part of the hollow tube located above the tank cover is fixedly provided with a first bevel gear, the top of the second rotating shaft is fixedly provided with a second bevel gear symmetrically with the first bevel gear, one output end of the first double-output shaft motor is fixedly provided with a large bevel gear, the large bevel gear is in meshing connection between the first bevel gear and the second bevel gear.

2. The intelligent quantitative flocculant dosing device according to claim 1, characterized in that: The storage plugging part comprises two first rotating shafts, the two first rotating shafts are symmetrically and rotatably connected with the lower part of the inside of the storage tube, the surface of the two first rotating shafts is all fixedly connected with a pair of fixed rods, a semicircular plugging baffle is fixedly connected between each pair of fixed rods. 3.The intelligent quantitative flocculant dosing device according to claim 2, characterized in that: One end of the two first rotating shafts is all extended to the outside of the tank body and fixedly connected with first worm wheels, the surface of the tank body is provided with a second double-output shaft motor, the two output ends of the second double-output shaft motor are symmetrically fixedly connected with first worms, the two first worms are respectively in meshing connection with the two first worm wheels.

4. The intelligent quantitative flocculant dosing device according to claim 1, characterized in that: The first double-output shaft motor is fixedly installed with a transmission pinion at one end of an output, the surface of the tank body is rotatably installed with a transmission gear wheel engaged with the transmission pinion, one end of the transmission gear wheel is fixedly installed with a disc, and the arc surface of the disc is fixedly installed with a plurality of arc-shaped and equidistantly arranged driving pins.

5. The intelligent quantitative flocculant dosing device according to claim 4, characterized in that: The surface of the tank body is rotatably installed with a second rotating shaft, the top of the second rotating shaft is fixedly installed with a circular block, the circumference of the circular block is installed with a plurality of transmission pins matched with the driving pins, the bottom of the second rotating shaft is fixedly installed with a second worm, one end of the first rotating shaft extends to the outside of the tank body and is fixedly installed with a second worm wheel, and the second worm wheel is engaged with the second worm.

Citation Information

Patent Citations

  • Industrial wastewater treatment device with floccule treatment component

    CN116495945A