Wastewater and odor integrated treatment equipment
By designing an integrated wastewater and odor treatment equipment, the turbine impeller is driven by the kinetic energy of the odorous water. Combined with the design of spray pipes and spiral nozzles, the efficient mixing and automated control of wastewater and odorous gas are achieved. This solves the problems of large footprint, high investment, and high operating costs of traditional separate equipment designs, and improves treatment efficiency and automation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XINJIANG GREEN NORTH ENVIRONMENTAL PROTECTION TECH CO LTD
- Filing Date
- 2025-05-21
- Publication Date
- 2026-04-21
AI Technical Summary
The existing technology separates wastewater treatment and odor control processes, resulting in large equipment footprint, high investment, high operating costs, and low automation, making it difficult to meet actual production and environmental protection requirements.
An integrated wastewater and odor treatment device was designed. It utilizes the kinetic energy of the flowing odorous water to drive the turbine impeller to rotate, which in turn drives the stirring blades and exhaust fan. Combined with spray pipes and spiral nozzles, it achieves uniform mixing of chemical solution and odorous gas. Activated carbon adsorption discs are used for deodorization, and intelligent control is achieved through a photoelectric sensor.
It has achieved energy self-sufficiency, reduced operating energy consumption, improved wastewater treatment efficiency and odor treatment effect, enhanced automation level, and reduced equipment investment and operating costs.
Smart Images

Figure CN224141837U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of environmental protection equipment technology, and in particular to an integrated wastewater and odor treatment equipment. Background Technology
[0002] In the field of environmental protection, traditional wastewater treatment and odor control processes have long been designed separately. In existing technologies, wastewater treatment systems typically only target water purification and require separate odor collection pipelines, spray towers, activated carbon boxes, and other deodorization equipment.
[0003] This not only requires the construction of multiple treatment units, occupying a large area, but also increases equipment investment and operating costs. Furthermore, existing treatment equipment has shortcomings in terms of processing efficiency and automation, making it difficult to meet actual production and environmental protection requirements. Therefore, developing an integrated device capable of simultaneously treating wastewater and odor is of significant practical importance. Utility Model Content
[0004] In order to overcome the shortcomings of existing technologies that separate wastewater and odor treatment, the technical problem of this utility model is to provide an integrated wastewater and odor treatment device.
[0005] The technical implementation scheme of this utility model is as follows: an integrated wastewater and odor treatment equipment, including a main shell, a support frame, a slag hopper, an air hopper, a liquid inlet pipe, a liquid outlet pipe, a turbine drive device, stirring blades, an exhaust fan, and an activated carbon adsorption plate. The air hopper is installed at the top of the main shell, the slag hopper is installed at the bottom of the main shell, the support frame is installed at the bottom of the main shell near the slag hopper, the liquid inlet pipe is installed on one side of the main shell, the liquid outlet pipe is installed near the top of the support frame, the turbine drive device is installed inside the main shell, the stirring blades are installed at the bottom of the turbine drive device, the exhaust fan is installed at the top of the turbine drive device, and the activated carbon adsorption plate is installed inside the main shell near the top of the exhaust fan.
[0006] Furthermore, the turbine drive device includes a turbine impeller, a first rotating rod, a second rotating rod, a third rotating rod, and a fixed frame. The first rotating rod is installed inside the main body shell and passes through the liquid outlet pipe. Multiple turbine impellers are fixedly connected to one end of the first rotating rod near the liquid outlet pipe. The fixed frame is installed inside the main body shell near the top of the first rotating rod and is rotatably connected to the second rotating rod. An exhaust fan is installed at the top of the second rotating rod. Another fixed frame is installed inside the main body shell near the bottom of the first rotating rod and is rotatably connected to the third rotating rod. A stirring blade is installed at the bottom of the third rotating rod. The second and third rotating rods are connected to the first rotating rod through a reversing gear set.
[0007] Furthermore, it also includes a spray pipe, which is installed on the main body shell near the top of the exhaust fan.
[0008] Furthermore, it also includes spiral nozzles, with multiple spiral nozzles evenly distributed in a ring on the spray pipe.
[0009] Furthermore, it also includes through-beam sensors, with a set of through-beam sensors installed on the main body shell near the top of the tripod.
[0010] Furthermore, it also includes a screw conveyor, with a screw conveyor installed at the bottom of the slag hopper.
[0011] The beneficial effects of this utility model are:
[0012] 1. This utility model utilizes the kinetic energy of the flowing foul water to drive the turbine impeller to rotate, thereby driving the stirring blades and exhaust fan to work. No additional power equipment is required, achieving energy self-sufficiency and reducing operating energy consumption.
[0013] 2. The spray pipe and spiral nozzle of this utility model enable the cleaning solution to mix evenly with the odor, thus improving the odor treatment effect; the rotation of the stirring blades ensures that the wastewater and cleaning solution are fully mixed, thereby enhancing the wastewater treatment efficiency. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a three-dimensional structural diagram of the internal structure of this utility model.
[0016] Figure 3 This is a three-dimensional structural diagram of the turbine impeller, stirring blade, and exhaust fan of this utility model.
[0017] Figure 4 This is a three-dimensional structural diagram of the spray pipe, spiral nozzle, and activated carbon adsorption plate of this utility model.
[0018] In the attached diagrams: 1-Main body shell, 101-Through-beam sensor, 2-Standing frame, 3-Slag hopper, 4-Screw discharge machine, 5-Air outlet hopper, 6-Liquid inlet pipe, 7-Liquid outlet pipe, 8-Turbine impeller, 9-First rotating rod, 901-Second rotating rod, 902-Third rotating rod, 10-Fixed frame, 11-Agitating blade, 12-Exhaust fan, 13-Spray pipe, 14-Screw nozzle, 15-Activated carbon adsorption plate. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0020] Example: Integrated wastewater and odor treatment equipment, such as Figures 1-4As shown, it includes a main shell 1, a support 2, a slag hopper 3, an air hopper 5, a liquid inlet pipe 6, a liquid outlet pipe 7, a turbine drive device, a stirring blade 11, an exhaust fan 12, and an activated carbon adsorption plate 15. The air hopper 5 is installed at the top of the main shell 1, the slag hopper 3 is installed at the bottom of the main shell 1, the support 2 is installed at the bottom of the main shell 1 near the slag hopper 3, the liquid inlet pipe 6 is installed on one side of the main shell 1, the liquid outlet pipe 7 is installed above the support 2 on the main shell 1, the turbine drive device is installed inside the main shell 1, the stirring blade 11 is installed at the bottom of the turbine drive device, the exhaust fan 12 is installed at the top of the turbine drive device, and the activated carbon adsorption plate 15 is installed inside the main shell 1 near the exhaust fan 12.
[0021] like Figures 2-3 As shown, a first rotating rod 9 is installed inside the main body shell 1. The first rotating rod 9 passes through the liquid outlet pipe 7. Multiple turbine impellers 8 are fixedly connected to one end of the first rotating rod 9 near the liquid outlet pipe 7. A fixed frame 10 is installed inside the main body shell 1 near the top of the first rotating rod 9. The fixed frame 10 is rotatably connected to a second rotating rod 901. An exhaust fan 12 is installed at the top of the second rotating rod 901. Another fixed frame 10 is installed inside the main body shell 1 near the bottom of the first rotating rod 9. The other fixed frame 10 is rotatably connected to a third rotating rod 902. A stirring blade 11 is installed at the bottom of the third rotating rod 902. The second rotating rod 901 and the third rotating rod 902 are connected to the first rotating rod 9 through a reversing gear set. The turbine impellers are driven to rotate by the kinetic energy of the flowing foul water, which in turn drives the stirring blades and the exhaust fan to work. No additional power equipment is required, achieving energy self-sufficiency and reducing operating energy consumption.
[0022] like Figure 4 As shown, a spray pipe 13 is installed on the main body shell 1 near the exhaust fan 12. The spray pipe 13 introduces cleaning solution into the upper space of the device to form a liquid spray layer from top to bottom, which forms a reverse contact with the odor from bottom to top, increasing the gas-liquid mixing area, so that water-soluble pollutants in the odor are efficiently absorbed by the solution, and improving the initial deodorization efficiency.
[0023] like Figure 4 As shown, multiple spiral nozzles 14 are evenly distributed in a ring on the spray pipe 13. The spiral nozzles 14 atomize the medicine and evenly cover the cross-section of the device in a ring, avoiding the spray blind zone problem of traditional straight pipe spraying and making the odor and medicine come into more complete contact.
[0024] like Figures 1-2 As shown, a set of through-beam sensors 101 are installed on the main body shell 1 near the top of the stand 2. By detecting the signal of the waste residue blocking the infrared beam, the liquid discharge and slag discharge process is automatically triggered, replacing manual inspection and judgment, and realizing intelligent control of waste residue treatment.
[0025] like Figures 1-2As shown, a screw conveyor 4 is installed at the bottom of the slag discharge hopper 3. The screw conveyor 4 discharges waste slag by rotating and pushing. Compared with traditional gravity slag discharge, it can realize the continuous and stable conveying of waste slag with low moisture content (such as mud cake) and avoid clogging of the slag discharge hopper.
[0026] The foul-smelling wastewater is discharged into the device through the inlet pipe 6, while the cleaning agent is sprayed from multiple spiral nozzles 14 evenly distributed in a ring on the spray pipe 13. During its descent, the cleaning agent mixes thoroughly with the rising foul-smelling gas, cleaning it, and finally, the cleaning agent falls into the wastewater at the bottom of the device. As the foul-smelling wastewater flows within the inlet pipe 6, it drives the turbine impeller 8 to rotate, which in turn drives the first rotating rod 9 to rotate. The first rotating rod 9 drives the second rotating rod 901 and the third rotating rod 902 to rotate via a reversing gear set. The second rotating rod 901 drives the exhaust fan 12 to rotate, drawing the foul-smelling gas inside the device to the activated carbon adsorption plate 15 above the exhaust fan 12. The activated carbon adsorption plate 15 adsorbs and deodorizes the gas, and the deodorized gas is discharged from the outlet hopper 5. The third rotating rod 902 drives the stirring blades 11 to rotate, ensuring that the wastewater and cleaning agent are thoroughly mixed, thus improving the wastewater treatment effect. After a period of cleaning, the waste residue in the slag discharge hopper 3 gradually increases. When the waste residue accumulates to the point of blocking the through-beam sensor 101, the through-beam sensor 101 sends a signal to the device, and the device opens the valve of the liquid discharge pipe 7 to discharge the cleaning water. Subsequently, the device starts the screw conveyor 4 to discharge the waste residue.
[0027] The technical principles of the present invention have been described above with reference to specific embodiments. These descriptions are merely for explaining the principles of the present invention and should not be construed as limiting the scope of protection of the present invention in any way. Based on this explanation, those skilled in the art can conceive of other specific embodiments of the present invention without creative effort, and these embodiments will all fall within the scope of protection of the present invention.
Claims
1. A wastewater odor integrated treatment device comprising a main body shell, characterized in that: It also includes a support frame, a slag discharge hopper, an air discharge hopper, a liquid inlet pipe, a liquid outlet pipe, a turbine drive device, stirring blades, an exhaust fan, and an activated carbon adsorption plate. The air discharge hopper is installed at the top of the main body shell, the slag discharge hopper is installed at the bottom of the main body shell, the support frame is installed at the bottom of the main body shell near the slag discharge hopper, the liquid inlet pipe is installed on one side of the main body shell, the liquid outlet pipe is installed near the top of the support frame, the turbine drive device is installed inside the main body shell, the stirring blades are installed at the bottom of the turbine drive device, the exhaust fan is installed at the top of the turbine drive device, and the activated carbon adsorption plate is installed inside the main body shell near the top of the exhaust fan.
2. The waste water odor integrated treatment apparatus according to claim 1, characterized by: The turbine drive device includes a turbine impeller, a first rotating rod, a second rotating rod, a third rotating rod, and a fixed frame. The first rotating rod is installed inside the main body shell and passes through the liquid outlet pipe. Multiple turbine impellers are fixedly connected to one end of the first rotating rod near the liquid outlet pipe. The fixed frame is installed inside the main body shell near the top of the first rotating rod and is rotatably connected to the second rotating rod. An exhaust fan is installed at the top of the second rotating rod. Another fixed frame is installed inside the main body shell near the bottom of the first rotating rod and is rotatably connected to the third rotating rod. A stirring blade is installed at the bottom of the third rotating rod. The second and third rotating rods are connected to the first rotating rod through a reversing gear set.
3. The waste water odor integrated treatment apparatus according to claim 2, characterized by: It also includes a spray pipe, which is installed on the main body shell near the top of the exhaust fan.
4. The waste water odor integrated treatment apparatus according to claim 3, characterized by: It also includes spiral nozzles, with multiple spiral nozzles evenly distributed in a ring on the spray pipe.
5. The waste water odor integrated treatment apparatus according to claim 4, characterized by: It also includes through-beam sensors, with a set of through-beam sensors installed on the main body shell near the top of the tripod.
6. The waste water odor integrated treatment apparatus according to claim 5, characterized by: It also includes a screw conveyor, which is installed at the bottom of the slag hopper.