Application of computational intelligence for on-line control of a sequencing batch reactor (SBR) at Morrinsville Sewage Treatment Plant

被引:8
作者
Cohen, A
Janssen, G
Brewster, SD
Seeley, R
Boogert, AA
Graham, AA
Mardani, MR
Clarke, N
Kasabov, NK
机构
[1] AGR UNIV WAGENINGEN,DEPT AGR ENGN & PHYS,NL-6703 HD WAGENINGEN,NETHERLANDS
[2] UNIV OTAGO,DEPT INFORMAT SCI,DUNEDIN,NEW ZEALAND
[3] AGR UNIV WAGENINGEN,DEPT FOOD SCI,FOOD & BIOPROC ENGN GRP,NL-6700 EV WAGENINGEN,NETHERLANDS
关键词
SBR; fuzzy systems; neural net; process control; BNR; waste treatment; extended aeration; activated sludge;
D O I
10.1016/S0273-1223(97)00224-2
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Morrinsville Sewage Treatment Plant has recently been upgraded to an Extended Aeration SBR. The plant needs to comply with stringent discharge requirements despite the variations in organic and hydraulic load caused by tradewaste discharges and stormwater infiltration. Effluent data from a nearby dairy factory is transmitted to the treatment plant by radio and processed by a back propagation neural network trained to correlate the data with the corresponding BOD. BOD oxidation, nitrification acid denitrification rate constants are estimated by fuzzy systems as function of temperature and MLVSS. Output data generated by the model are used to assist control of SDR cycle duration, sludge wasting, and temporary storage of excessive load in a lagoon. The model does not pretend to provide an accurate description of the process, nor a fully optimised control system, bur rather a common-sense approach to the very challenging operating conditions. This is a plant receiving a low level of supervision and it is expected that the control system will improve process performance and compliance with discharge requirements. (C) 1997 IAWQ. Published by Elsevier Science Ltd.
引用
收藏
页码:63 / 71
页数:9
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