An activated carbon and ozone catalytic oxidation water treatment device

By designing a water treatment device that combines a lifting hydraulic cylinder and a fixed electromagnet with activated carbon and ozone catalytic oxidation, the problems of inconvenient activated carbon replacement and water impurity separation are solved. This achieves rapid purification of activated carbon and efficient water treatment, improving water treatment efficiency and ease of equipment operation.

CN121247997BActive Publication Date: 2026-03-31BEIJING UNIV OF TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-31
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing technologies that use activated carbon and ozone to deodorize and purify water cannot quickly purify the activated carbon after each treatment, do not separate water and impurities independently, and are inconvenient to replace activated carbon, which affects water purification efficiency and increases the labor intensity of workers.

Method used

An activated carbon and ozone catalytic oxidation water treatment device was designed. By combining a lifting hydraulic cylinder and a fixed electromagnet, the device enables rapid replacement of activated carbon and independent separation of water and impurities. An ozone generator and a stirring rack are used to improve the uniformity of contact between activated carbon and water. By combining a stirring centrifuge and a bottom support mesh plate, the device enables centrifugal sedimentation of impurities and purification of water. An operating component is set up to enable rapid slag removal and drainage.

Benefits of technology

It achieves rapid purification of activated carbon and rapid separation of water, reduces the hassle of replacing activated carbon, improves water treatment efficiency and equipment cleanliness, and reduces the labor intensity of staff.

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Abstract

The application discloses an activated carbon and ozone catalytic oxidation water treatment device, relates to the technical field of water treatment, and relates to the technical field of water treatment. A treatment fixed box is arranged at the top of a fixed support frame. Lifting hydraulic cylinders are symmetrically arranged at the two ends of the treatment fixed box. A lifting fixed frame is arranged at the top of the lifting hydraulic cylinders. Fixed electromagnets are symmetrically arranged at the bottom of the lifting fixed frame. Bottom support net plates are symmetrically connected to the bottom of the lifting fixed frame through spring hinges. Pressing hydraulic cylinders are arranged at the two ends of the lifting fixed frame. Stirring motors are symmetrically arranged at the top of the closed sealing covers through motor bases. The application is characterized in that multiple lifting and expansion cooperation and discharge are adopted, so that the activated carbon can be quickly replaced and operated. In addition, centrifugal treatment and net plate isolation and deposition treatment are adopted, so that the purification treatment of the activated carbon and the rapid deslagging treatment of water are realized. Therefore, the overall treatment efficiency can be improved during water evolution, and the water purification effect is ensured.
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Description

Technical Field

[0001] This invention relates to the field of water treatment technology, specifically to a water treatment device using activated carbon and ozone catalytic oxidation. Background Technology

[0002] Water treatment methods include physical and chemical treatment. Humans have been using water treatment for many years. Physical methods involve using filter media with different pore sizes to remove impurities from the water through adsorption or barrier processes. Activated carbon is a significant adsorption method, while barrier methods involve passing water through filter media to prevent larger impurities from passing through, thus obtaining cleaner water.

[0003] However, existing technologies for deodorizing and purifying water using activated carbon and ozone cannot quickly purify the activated carbon after each treatment, nor can they independently separate water and impurities. Furthermore, replacing activated carbon is inconvenient, which greatly affects the actual water purification efficiency and increases the workload of staff. Summary of the Invention

[0004] This invention provides an activated carbon and ozone catalytic oxidation water treatment device, which can effectively solve the problems mentioned in the background art. When using activated carbon and ozone to deodorize and purify water, the existing technology cannot quickly purify the activated carbon after each treatment, and does not independently separate water and impurities. At the same time, it is inconvenient to replace activated carbon, which greatly affects the actual water purification efficiency and increases the labor intensity of the staff.

[0005] To achieve the above objectives, the present invention provides the following technical solution: an activated carbon and ozone catalytic oxidation water treatment device, comprising a fixed support frame, wherein a treatment component is provided on the side end of the fixed support frame;

[0006] The processing component includes a processing stationary box;

[0007] A processing fixing box is installed at the top of the fixed support frame, and lifting hydraulic cylinders are symmetrically installed at both ends of the processing fixing box;

[0008] The top of the lifting hydraulic cylinder is equipped with a lifting fixing frame, and the bottom of the lifting fixing frame is symmetrically equipped with fixing electromagnets.

[0009] The bottom end of the lifting and fixing frame is symmetrically connected to the bottom support mesh plate by spring hinges, and both ends of the lifting and fixing frame are equipped with pressing hydraulic cylinders;

[0010] The tops of the two pressing hydraulic cylinders are equipped with closed sealing covers, and the tops of the closed sealing covers are symmetrically equipped with agitator motors via motor mounts;

[0011] The output shaft of the stirring motor is snapped with a stirring processing rack;

[0012] The processing fixed box is equipped with multiple spray processing pipes, and the top of the inner side of the lifting fixed frame is equidistantly clamped with several limited fixed buckets.

[0013] The bottom of the processing fixed box is connected through a limit fixing tube.

[0014] According to the above technical solution, the lifting and fixing frame is slidably installed inside the processing fixing box, and the bottom support mesh plate is magnetically connected to the fixing electromagnet.

[0015] According to the above technical solution, there are two bottom support mesh plates, and the bottom end of the closed sealing cover is attached to the top end of the lifting and fixing frame.

[0016] According to the above technical solution, ozone generators are installed at the positions of the multi-spray treatment pipes at one end of the treatment fixing box and one end of the closed sealing cover, and the top of the closed sealing cover is equidistantly penetrated by the injection fixing sleeve.

[0017] An interception net box is fitted inside the injection fixing sleeve, and a water injection fixing pipe is connected through one end of the injection fixing sleeve.

[0018] The bottom end of the closed sealing cover is rotatably connected to an extraction interception tube, and the top end of the closed sealing cover is snapped with a belt drive box at the position corresponding to the extraction interception tube.

[0019] A drive motor is mounted on the top of the closed sealing cover via a motor mount.

[0020] An isolation mesh plate is installed at the bottom of the treatment fixing box corresponding to the position of the limiting fixing pipe, and a treatment valve is embedded at one end of the water injection fixing pipe.

[0021] According to the above technical solution, the stirring and processing rack is placed inside the lifting and fixing frame, and one end of the multi-spray processing pipe and one end of the limiting and fixing pipe are connected to one end of the ozone generator.

[0022] According to the above technical solution, the output shaft of the transmission motor engages with the input shaft of the belt drive box;

[0023] The input terminals of the lifting hydraulic cylinder, the fixed electromagnet, the pressing hydraulic cylinder, the stirring motor, the ozone generator, the transmission motor, and the processing valve are all electrically connected to the output terminal of the external controller.

[0024] The input terminal of the external controller is electrically connected to the output terminal of the external power supply.

[0025] According to the above technical solution, an operating component is provided on the side of the processing fixing box;

[0026] The operating components include an electric slide rail for scraping slag.

[0027] The bottom of the inner side of the processing fixed box is fitted with a slag scraping electric slide rail, and a slag scraping processing plate is installed at one end of the slag scraping electric slide rail through a slide rail seat.

[0028] The bottom end of the processing fixed box is connected to a slag discharge fixed pipe, and one end of the lifting fixed frame is clamped with an alignment electric push rod.

[0029] The alignment electric actuator is equipped with an alignment operation frame at its top, and a water pump is installed on one side of the top of the alignment operation frame via a motor mount.

[0030] The top of the alignment operation frame is fitted with a reciprocating fixing tube;

[0031] A fixed operating block is welded to the top of the closed sealing cover, and an intercepting and fixing box is installed on the top of the fixed operating block;

[0032] The top of the interceptor fixing box is hinged with a closing operation cover, and a storage cage is installed inside the interceptor fixing box.

[0033] The bottom of the intercepting and fixing box and the top of the closing operation cover are both connected to an external discharge fixing pipe, and a linkage valve is embedded in one end of the slag discharge fixing pipe and the external discharge fixing pipe.

[0034] A perforated cleaning sleeve is installed on the bottom inner side of the processing fixed box.

[0035] According to the above technical solution, the bottom end of the slag scraping plate is attached to the top end of the isolation mesh plate, and one end of the water pump is connected to one end of the reciprocating fixed pipe through an adapter.

[0036] According to the above technical solution, the reciprocating fixed tube is placed inside the extraction interception tube, and the extraction interception tube is fitted and connected to the porous cleaning sleeve.

[0037] According to the above technical solution, there are two interception and fixing boxes;

[0038] The input terminals of the slag scraper electric slide rail, the positioning electric push rod, the water pump, and the linkage valve are all electrically connected to the output terminal of the external controller.

[0039] Compared with the prior art, the beneficial effects of the present invention are: the present invention has a scientific and reasonable structure and is safe and convenient to use.

[0040] 1. Equipped with a processing component, the closing sealing cover is raised and lowered via a hydraulic cylinder. A fixed electromagnet magnetically attaches to the bottom support mesh plate and the lifting frame, which, in conjunction with the hydraulic cylinder, raises and lowers the lifting frame, enabling rapid opening and processing. This allows for quick operation when replacing activated carbon, reducing the workload for staff. Ozone is injected into the lifting frame and processing box via an ozone generator, limit fixing pipe, and water injection fixing pipe. The water undergoes preliminary filtration using a placement fixing sleeve and interception mesh box. The opposing movement of water and ozone, combined with a stirring motor and a mixing processing frame, propels the water and activated carbon... By dispersing and contacting ozone, the uniformity of its overall distribution is improved. Ozone and activated carbon are used to oxidize and catalyze water, achieving slag removal and deodorization. Combined with stirring, centrifugation, and bottom support screen plates, impurities are centrifuged and sedimented to intercept them, separating water from impurities and achieving water purification. This allows for rapid and independent treatment of water and impurities. Multi-stage lifting and unfolding discharge enable quick operation when replacing activated carbon. Furthermore, centrifugation and screen plate isolation sedimentation treatment achieve both activated carbon purification and rapid slag removal, improving overall treatment efficiency and ensuring the effectiveness of water purification.

[0041] 2. Equipped with operating components, the reciprocating fixed tube is lowered and inserted into the inside of the extraction interception tube via an electric actuator and an operating frame. A water pump and the reciprocating fixed tube extract the treated water from the treatment tank, achieving drainage. A drive motor and belt drive box rotate the extraction interception tube, using friction between the tube and the porous cleaning sleeve to prevent secondary pollution from deposited impurities, thus improving water purity. An electric scraper rail drives a scraper plate to move impurities and wastewater, which, in conjunction with the slag discharge fixed tube, discharges slag, achieving rapid internal slag removal. Through lifting and lowering for water pumping, rotating and agitating for interception, and centralized bottom slag discharge, the equipment achieves rapid internal purification, allowing for quick purification after each treatment, improving the cleanliness of the equipment and ensuring the effectiveness of each purification cycle.

[0042] In summary, by coordinating the processing and operating components, utilizing mixing and centrifugal sedimentation for cleaning, combined with top pumping and bottom slag removal, and simultaneously purifying the activated carbon and equipment, the catalytic oxidation of water ensures cleanliness at multiple points, preventing the accumulation of impurities inside the equipment from affecting the water purification effect. This also reduces the workload of workers and improves the ease of equipment operation. Attached Figure Description

[0043] 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.

[0044] In the attached diagram:

[0045] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0046] Figure 2 This is a schematic diagram of the processing component of the present invention;

[0047] Figure 3 This is a schematic diagram of the installation structure of the stirring motor of the present invention;

[0048] Figure 4 This is a schematic diagram of the installation structure of the drive motor of the present invention;

[0049] Figure 5 This is a schematic diagram of the installation structure of the ozone generator of the present invention;

[0050] Figure 6 This is a schematic diagram of the installation structure of the extraction and interception tube of the present invention;

[0051] Figure 7 This is a schematic diagram of the installation structure of the processing fixed box of the present invention;

[0052] Figure 8 This is a schematic diagram of the structure of the operating components of the present invention;

[0053] Numbered in the diagram: 1. Fixed support frame;

[0054] 2. Processing components; 201. Processing fixing box; 202. Lifting hydraulic cylinder; 203. Lifting fixing frame; 204. Fixing electromagnet; 205. Base support mesh plate; 206. Pressing hydraulic cylinder; 207. Closing sealing cover; 208. Agitator motor; 209. Agitator processing frame; 210. Multi-spray processing pipe; 211. Limiting fixing hopper; 212. Limiting fixing pipe; 213. Ozone generator; 214. Input fixing sleeve; 215. Interception mesh box; 216. Water injection fixing pipe; 217. Extraction interception pipe; 218. Belt drive box; 219. Drive motor; 220. Isolation mesh plate; 221. Processing valve;

[0055] 3. Operating components; 301. Slag scraper electric slide rail; 302. Slag scraper plate; 303. Slag discharge fixing pipe; 304. Alignment electric push rod; 305. Alignment operating frame; 306. Water pump; 307. Reciprocating fixing pipe; 308. Fixing operating block; 309. Interception fixing box; 310. Closing operating cover; 311. Storage cage; 312. External discharge fixing pipe; 313. Linkage valve; 314. Multi-hole cleaning sleeve. Detailed Implementation

[0056] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.

[0057] Example: Figure 1-8 As shown, the present invention provides a technical solution, an activated carbon and ozone catalytic oxidation water treatment device, including a fixed support frame 1, and a treatment component 2 is provided on the side end of the fixed support frame 1;

[0058] The processing component 2 includes a processing fixing box 201, a lifting hydraulic cylinder 202, a lifting fixing frame 203, a fixing electromagnet 204, a bottom support mesh plate 205, a pressing hydraulic cylinder 206, a closing sealing cover 207, a stirring motor 208, a stirring processing frame 209, a multi-spray processing pipe 210, a limiting fixing hopper 211, a limiting fixing pipe 212, an ozone generator 213, an input fixing sleeve 214, an interception mesh box 215, a water injection fixing pipe 216, an extraction interception pipe 217, a belt drive box 218, a drive motor 219, an isolation mesh plate 220, and a processing valve 221;

[0059] A processing and fixing box 201 is installed at the top of the fixed support frame 1, and lifting hydraulic cylinders 202 are symmetrically installed at both ends of the processing and fixing box 201;

[0060] A lifting fixing frame 203 is installed at the top of the lifting hydraulic cylinder 202. The lifting fixing frame 203 is slidably installed inside the processing fixing box 201 to realize quick pick-up and put-out processing. Fixed electromagnets 204 are symmetrically installed at the bottom of the lifting fixing frame 203.

[0061] The bottom end of the lifting and fixing frame 203 is symmetrically connected to the bottom support mesh plate 205 via spring hinges. There are two bottom support mesh plates 205. The bottom support mesh plate 205 is magnetically connected to the fixing electromagnet 204 to ensure the fixed engagement and the overall quick opening and closing operation. Both ends of the lifting and fixing frame 203 are equipped with pressing hydraulic cylinders 206.

[0062] Two hydraulic cylinders 206 are fitted with a sealing cover 207 at their top. The bottom of the sealing cover 207 is in contact with the top of the lifting frame 203 to achieve a sealing effect. A stirring motor 208 is symmetrically mounted on the top of the sealing cover 207 via a motor mount.

[0063] The output shaft of the stirring motor 208 is connected to the stirring and processing frame 209. The stirring and processing frame 209 is placed inside the lifting and fixing frame 203 to ensure the position and area of ​​water in contact with activated carbon.

[0064] The processing fixed box 201 is equipped with a multi-spray processing pipe 210, and the top of the inner side of the lifting fixed frame 203 is equidistantly connected with several limited fixed buckets 211.

[0065] A limit fixing tube 212 is connected through the bottom end of the fixed box 201;

[0066] Ozone generators 213 are installed at one end of the treatment box 201 and one end of the closed sealing cover 207, corresponding to the position of the multi-spray treatment pipe 210. One end of the multi-spray treatment pipe 210 and one end of the limiting fixing pipe 212 are connected to one end of the ozone generator 213 to achieve steady ozone production. An input fixing sleeve 214 is equidistantly inserted through the top of the closed sealing cover 207.

[0067] An interception net box 215 is sleeved inside the insertion fixing sleeve 214, and a water injection fixing pipe 216 is connected through one end of the insertion fixing sleeve 214.

[0068] The bottom end of the closed sealing cover 207 is rotatably connected to the extraction interception tube 217, and the top end of the closed sealing cover 207 is snapped with the belt drive box 218 at the position corresponding to the extraction interception tube 217.

[0069] A drive motor 219 is mounted on the top of the closed sealing cover 207 via a motor mount. The output shaft of the drive motor 219 engages with the input shaft of the belt drive box 218 to achieve steady transmission.

[0070] An isolation mesh plate 220 is installed at the bottom of the treatment fixing box 201 at the position corresponding to the limit fixing pipe 212, and a treatment valve 221 is embedded at one end of the water injection fixing pipe 216;

[0071] To ensure stable operation of the equipment, the input terminals of the lifting hydraulic cylinder 202, the fixed electromagnet 204, the pressing hydraulic cylinder 206, the stirring motor 208, the ozone generator 213, the drive motor 219, and the processing valve 221 are all electrically connected to the output terminal of the external controller.

[0072] The input terminal of the external controller is electrically connected to the output terminal of the external power supply.

[0073] An operating component 3 is provided on the side of the fixed box 201;

[0074] The operating component 3 includes a slag scraping electric slide rail 301, a slag scraping plate 302, a slag discharge fixing pipe 303, an alignment electric push rod 304, an alignment operating frame 305, a water pump 306, a reciprocating fixing pipe 307, a fixing operating block 308, an intercepting fixing box 309, a closing operating cover 310, a storage cage 311, an external discharge fixing pipe 312, a linkage valve 313, and a porous cleaning sleeve 314;

[0075] The bottom of the inner side of the fixed box 201 is fitted with a slag scraping electric slide rail 301. One end of the slag scraping electric slide rail 301 is equipped with a slag scraping plate 302 through a slide rail seat. The bottom end of the slag scraping plate 302 is attached to the top end of the isolation mesh plate 220 to achieve steady slag cleaning.

[0076] The bottom of the fixed box 201 is connected to a slag discharge fixed pipe 303, and one end of the lifting fixed frame 203 is clamped with an alignment electric push rod 304.

[0077] The top of the alignment electric actuator 304 is equipped with an alignment operation frame 305, and a water pump 306 is installed on one side of the top of the alignment operation frame 305 via a motor mount.

[0078] The top of the positioning operation frame 305 is snapped with a reciprocating fixed pipe 307, and one end of the water pump 306 is connected to one end of the reciprocating fixed pipe 307 through an adapter to ensure the stability of drainage.

[0079] A fixed operating block 308 is welded to the top of the closed sealing cover 207. An intercepting and fixing box 309 is installed on the top of the fixed operating block 308. There are two intercepting and fixing boxes 309 to achieve exhaust filtration.

[0080] The top of the interceptor fixing box 309 is hinged with a closing operation cover 310, and a storage cage 311 is installed inside the interceptor fixing box 309.

[0081] The bottom of the intercepting and fixing box 309 and the top of the closing operation cover 310 are both connected to the external discharge fixing pipe 312. A linkage valve 313 is embedded in one end of the slag discharge fixing pipe 303 and the external discharge fixing pipe 312.

[0082] A perforated cleaning sleeve 314 is installed on the bottom inner side of the fixed box 201. A reciprocating fixed pipe 307 is placed inside the extraction interception pipe 217. The extraction interception pipe 217 is fitted and connected with the perforated cleaning sleeve 314 to achieve steady water pumping interception and coordinated treatment.

[0083] To ensure stable operation of the equipment, the input terminals of the slag scraper electric slide rail 301, the alignment electric push rod 304, the water pump 306, and the linkage valve 313 are all electrically connected to the output terminal of the external controller.

[0084] The working principle and usage process of this invention are as follows: When catalytically oxidizing water, the closing sealing cover 207 is raised by the pressing hydraulic cylinder 206, separating the closing sealing cover 207 from the lifting and fixing frame 203. At this time, the bottom support mesh plate 205 and the lifting and fixing frame 203 are magnetically combined by the fixing electromagnet 204 to achieve the bottom closure of the lifting and fixing frame 203. Activated carbon is then placed inside the lifting and fixing frame 203. After placement, the lifting hydraulic cylinder 202 moves the lifting and fixing frame 203 down, and the pressing hydraulic cylinder 206 moves the closing sealing cover 207 down to the top of the lifting and fixing frame 203 to achieve overall closure. Then, the closing operation cover 310 is rotated to place the storage mesh cage 311 containing activated carbon into the interception and fixing box 309. After placement, the interception and fixing box 309 is sealed by the closing operation cover 310.

[0085] Ozone is generated by ozone generator 213 and injected into the inside of lifting frame 203 through multi-spray treatment pipe 210 and into the inside of treatment box 201 through limiting fixing pipe 212. At the same time, water is injected into the inside of injection fixing sleeve 214 through water injection fixing pipe 216. At this time, the water flows along the injection fixing sleeve 214 and interception net box 215. The interception net box 215 intercepts impurities. The water is injected into the inside of lifting frame 203 and then flows down the activated carbon at the top of lifting frame 203.

[0086] The stirring motor 208 drives the stirring treatment rack 209 to push the activated carbon and water in the lifting and fixing rack 203 to rotate and flow. The water comes into contact with the activated carbon and ozone. Under the catalytic action of the activated carbon, the ozone decomposes to produce hydroxyl radicals. At the same time, the activated carbon first enriches and adsorbs the organic matter in the water onto its surface and pores, creating a local high-concentration reaction environment. During the adsorption, the hydroxyl radicals react directly with the water on the surface of the activated carbon to achieve strong catalytic oxidation treatment. During the catalytic oxidation process, the organic matter, odor and other impurities in the water are treated to achieve water deslagging and deodorization treatment. During the water treatment process, some ozone flows upward through the water. At this time, the external discharge fixed pipe 312 is opened by the linkage valve 313. The ozone enters the storage cage 311 inside the interception fixed box 309 through the external discharge fixed pipe 312. The activated carbon adsorbs and purifies the ozone to prevent ozone from overflowing and ensure the safety of the external environment.

[0087] After continuous stirring and reaction for a period of time, the stirring motor 208 drives the stirring treatment rack 209 to rotate. The high-speed rotating stirring treatment rack 209 performs high-speed centrifugal treatment on water and activated carbon, centrifuging to remove some impurities attached to the surface of activated carbon and water. After centrifugation for a period of time, through natural sedimentation, the impurities fall along the lifting and fixing frame 203 and the bottom support mesh plate 205 into the inside of the treatment fixing box 201, realizing the external discharge and collection of impurities. At this time, the alignment electric push rod 304 drives the alignment operation frame 305 to move down, using the alignment operation frame 305 to... The reciprocating fixed pipe 307 moves down and is inserted into the inside of the extraction interception pipe 217. The water pump 306 and the reciprocating fixed pipe 307 extract the treated water in the treatment fixed box 201. The water is drawn out along the reciprocating fixed pipe 307. During the water pumping process, the drive motor 219 and the belt drive box 218 drive the extraction interception pipe 217 to rotate along the porous cleaning sleeve 314. The friction between the extraction interception pipe 217 and the porous cleaning sleeve 314 is used to prevent the water from being polluted by the deposited impurities. At this time, the impurities are still left inside the treatment fixed box 201, thus achieving drainage treatment.

[0088] After drainage is completed, the slag discharge fixing pipe 303 is opened by the linkage valve 313. The slag scraping electric slide rail 301 drives the slag scraping plate 302 to move along the treatment fixing box 201. The slag scraping plate 302 pushes the impurities and sewage along the treatment fixing box 201. The sewage mixed with impurities is discharged along the slag discharge fixing pipe 303, realizing internal slag cleaning treatment, so that the equipment can be quickly cleaned after water treatment is completed.

[0089] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An activated carbon and ozone catalytic oxidation water treatment device comprising a fixed support frame (1), characterized in that: The fixed support frame (1) is provided with a processing assembly (2) at the side end; The processing assembly (2) comprises a processing fixed box (201); The fixed support frame (1) is provided with a processing fixed box (201) at the top end, and lifting hydraulic cylinders (202) are symmetrically installed at both ends of the processing fixed box (201); The lifting hydraulic cylinders (202) are provided with lifting fixed frames (203) at the top end, and fixed electromagnets (204) are symmetrically installed at the bottom end of the lifting fixed frames (203); The bottom support net plate (205) is symmetrically connected to the lifting fixed frame (203) at the bottom end through a spring hinge, and pressing hydraulic cylinders (206) are installed at both ends of the lifting fixed frame (203); Two pressing hydraulic cylinders (206) are provided with a closed sealing cover (207) at the top end, and an extraction interception pipe (217) is rotatably connected to the bottom end of the closed sealing cover (207), and an agitating motor (208) is symmetrically installed on the closed sealing cover (207) through a motor base at the top end; The output shaft of the agitating motor (208) is clamped with a stirring processing frame (209); A plurality of spraying processing pipes (210) are installed inside the processing fixed box (201), one end of the spraying processing pipe (210) is connected with one end of an ozone generator (213), and a plurality of limiting fixed hoppers (211) are equidistantly clamped at the top inside the lifting fixed frame (203); The lifting fixed frame (203) is slidingly installed inside the processing fixed box (201), and the bottom support net plate (205) is magnetically connected with the fixed electromagnet (204); One end of the lifting fixed frame (203) is clamped with a positioning electric push rod (304), and a positioning operation frame (305) is installed at the top end of the positioning electric push rod (304), a water pump (306) is installed on one side of the top end of the positioning operation frame (305) through a motor base, and one end of the water pump (306) is connected with one end of a reciprocating fixed pipe (307) through an adapter; The reciprocating fixed pipe (307) is placed inside the extraction interception pipe (217), and the extraction interception pipe (217) is connected with a porous cleaning sleeve (314) in a sleeved manner.

2. The activated carbon and ozone catalytic oxidation water treatment device according to claim 1, characterized in that, There are two bottom support net plates (205), and the bottom end of the closed sealing cover (207) is attached to the top end of the lifting fixed frame (203).

3. The activated carbon and ozone catalytic oxidation water treatment device according to claim 1, characterized in that, Ozone generators (213) are installed at the positions corresponding to the spraying processing pipes (210) at one end of the processing fixed box (201) and one end of the closed sealing cover (207), and an input fixed sleeve (214) is equidistantly penetrated through the top end of the closed sealing cover (207); An interception net box (215) is sleeved inside the input fixed sleeve (214), and a water injection fixed pipe (216) is penetrated and connected at one end of the input fixed sleeve (214); A belt transmission box (218) is clamped at the position corresponding to the extraction interception pipe (217) at the top end of the closed sealing cover (207); A transmission motor (219) is installed on the top end of the closed sealing cover (207) through a motor base; The bottom end of the processing fixed box (201) is connected with a limiting fixed pipe (212) through, the bottom end of the processing fixed box (201) is installed with an isolation net plate (220) at the position corresponding to the limiting fixed pipe (212), and one end of the water injection fixed pipe (216) is embedded with a processing valve (221).

4. The activated carbon and ozone catalytic oxidation water treatment device according to claim 3, characterized in that, The stirring processing frame (209) is placed in the inner side of the lifting fixed frame (203), and one end of the limiting fixed pipe (212) is connected with one end of the ozone generator (213).

5. The activated carbon and ozone catalytic oxidation water treatment device according to claim 3, characterized in that, The output shaft of the transmission motor (219) is clamped with the input shaft of the belt transmission box (218); The input ends of the lifting hydraulic cylinder (202), the fixed electromagnet (204), the pressing hydraulic cylinder (206), the stirring motor (208), the ozone generator (213), the transmission motor (219) and the processing valve (221) are electrically connected with the output end of the external controller; The input end of the external controller is electrically connected with the output end of the external power supply.

6. The activated carbon and ozone catalytic oxidation water treatment device according to claim 5, characterized in that, The side end of the processing fixed box (201) is provided with an operation assembly (3); The operation assembly (3) comprises a slag scraping electric slide rail (301); The bottom end of the processing fixed box (201) is clamped with a slag scraping electric slide rail (301), one end of the slag scraping electric slide rail (301) is installed with a slag scraping processing plate (302) through a slide rail seat; The bottom end of the processing fixed box (201) is connected with a slag discharging fixed pipe (303) through; The top end of the alignment operation frame (305) is clamped with a reciprocating fixed pipe (307); The top end of the closed sealing cover (207) is welded with a fixed operation block (308), and the top end of the fixed operation block (308) is installed with an intercepting fixed box (309); The top end of the intercepting fixed box (309) is hinged with a closing operation cover (310), and the inner side of the intercepting fixed box (309) is installed with a storage mesh cage (311); The bottom end of the intercepting fixed box (309) and the top end of the closing operation cover (310) are connected with an external discharge fixed pipe (312) through, and one end of the slag discharging fixed pipe (303) and the external discharge fixed pipe (312) is embedded with a linkage valve (313); The bottom end of the processing fixed box (201) is installed with a multi-hole cleaning sleeve (314).

7. The activated carbon and ozone catalytic oxidation water treatment device according to claim 6, characterized by The bottom end of the slag scraping processing plate (302) is attached to the top end of the isolation net plate (220).

8. The activated carbon and ozone catalytic oxidation water treatment device according to claim 6, characterized in that, The intercepting fixed box (309) has two; The input ends of the slag scraping electric slide rail (301), the alignment electric push rod (304), the water pump (306) and the linkage valve (313) are electrically connected with the output end of the external controller.

Citation Information

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