2010International Conference on Bioinformatics and Biomedical EngineeringRequires access

Controlling Factors of Shortcut Nitrification in Sequencing Batch Reactor

Tao Yuan, Baoping Han, Ping Lu, Xueqiang Zhu, Baoping Han

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Abstract

Wastewater treatment practices have been significantly improved since the introduction of novel microbial treatment technologies. The Sequencing Batch Reactor (SBR) system for ammonia removal over nitrite (SHARON) process by intermittent aeration as well as the key parameters of SHARON, were studied in this paper, which includes pH, temperature, dissolved oxygen (DO) and sludge age, to obtain the required anaerobic ammonium oxidation (ANAMMOX) influent that must be composed of ammonia and nitrite in a ratio 1:1. The results show that the suitable conditions are as follows. (1) pH is 7.5~8.0; (2) temperature is 30~40 o C; (3) DO is 1.0~1.5 mg/L; (4) sludge age is greater than 15 d. When the SBR is run under these suitable conditions, and influent ammonia concentration is 200 mg/L, an ammonium/nitrite ratio of 1:1 is obtained using 5-min-aeration and 5-min-stuffiness with oxygenlimited. The results imply that SBR system for SHARON process is efficient and inexpensive.

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Wastewater treatment practices have been significantly improved since the introduction of novel microbial treatment technologies. The Sequencing Batch Reactor (SBR) system for ammonia removal over nitrite (SHARON) process by intermittent aeration as well as the key parameters of SHARON, were studied in this paper, which includes pH, temperature, dissolved oxygen (DO) and sludge age, to obtain the required anaerobic ammonium oxidation (ANAMMOX) influent that must be composed of ammonia and nitrite in a ratio 1:1. The results show that the suitable conditions are as follows. (1) pH is 7.5~8.0; (2) temperature is 30~40 o C; (3) DO is 1.0~1.5 mg/L; (4) sludge age is greater than 15 d. When the SBR is run under these suitable conditions, and influent ammonia concentration is 200 mg/L, an ammonium/nitrite ratio of 1:1 is obtained using 5-min-aeration and 5-min-stuffiness with oxygenlimited. The results imply that SBR system for SHARON process is efficient and inexpensive.

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Available abstract

Wastewater treatment practices have been significantly improved since the introduction of novel microbial treatment technologies. The Sequencing Batch Reactor (SBR) system for ammonia removal over nitrite (SHARON) process by intermittent aeration as well as the key parameters of SHARON, were studied in this paper, which includes pH, temperature, dissolved oxygen (DO) and sludge age, to obtain the required anaerobic ammonium oxidation (ANAMMOX) influent that must be composed of ammonia and nitrite in a ratio 1:1. The results show that the suitable conditions are as follows. (1) pH is 7.5~8.0; (2) temperature is 30~40 o C; (3) DO is 1.0~1.5 mg/L; (4) sludge age is greater than 15 d. When the SBR is run under these suitable conditions, and influent ammonia concentration is 200 mg/L, an ammonium/nitrite ratio of 1:1 is obtained using 5-min-aeration and 5-min-stuffiness with oxygenlimited. The results imply that SBR system for SHARON process is efficient and inexpensive.

Key concepts: Anammox, Sequencing batch reactor, Aeration, Nitrite, Ammonia, Nitrification, Chemistry, Pulp and paper industry

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