Method and device for synchronizing short-cut nitrification and denitrification with enhanced biological phosphorus removal
By introducing a side-flow anaerobic fermentation reactor into the mainstream reactor of a wastewater treatment plant, and utilizing the hydrolysis and fermentation of returned sludge to provide an internal carbon source, a short-cut nitrification-denitrification and biological phosphorus removal coupled system was constructed. This solved the problem of nitrogen and phosphorus removal under low carbon-to-nitrogen ratio, achieved efficient simultaneous treatment, and reduced operating costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- TONGJI UNIV
- Filing Date
- 2026-05-09
- Publication Date
- 2026-07-24
AI Technical Summary
Existing wastewater treatment plants struggle to achieve simultaneous short-cut nitrification-denitrification and biological phosphorus removal when the carbon-to-nitrogen ratio is low. This makes it difficult to optimize the nitrogen and phosphorus removal processes simultaneously, and traditional processes require additional carbon sources and inhibitors, resulting in high operating costs.
A continuously stirred side-flow anaerobic fermentation reactor is set up in the main reactor. The internal carbon source is provided by the hydrolysis and fermentation of returned sludge. Combined with the parameter control of the main system, a stable short-cut nitrification-denitrification and biological phosphorus removal coupled system is constructed. The fermentation products are used as the internal carbon source to inhibit nitrite oxidizing bacteria and enhance the activity of polyphosphate-accumulating bacteria.
It achieves simultaneous short-cut nitrification and denitrification with enhanced biological phosphorus removal without the addition of external carbon sources and inhibitors, improving nitrogen and phosphorus removal efficiency, achieving a nitrite nitrogen accumulation rate of over 70%, enhancing system stability and flexibility, and reducing operating costs.
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