DocumentCode :
606961
Title :
Optimization through artificial neural network on a Programmable Logic Controller for a Sludge Drying Plant
Author :
Mohamed, M.Z. ; Ghazali, M.F.M. ; Idrus, S.M. ; Wahab, N.A.
Author_Institution :
Eng. Dept., PETRONAS Penapisan Melaka Sdn Bhd, Sungai Udang, Malaysia
fYear :
2013
fDate :
8-10 March 2013
Firstpage :
103
Lastpage :
105
Abstract :
The Sludge Drying Plant (SDP) is the final processing facility of Effluent Treatment System (ETS) that produces bio-sludge cake before it is sent out for final disposal. Due to the process disturbances, mechanical and inconsistent chemical reactions, the amount dry solid is reduced tremendously. The principal objective of this study is to derive a more realistic and reliable operational rules and algorithm through Artificial Modeling within the Programmable Logic Controller (PLC) for SDP, taking into account the controlled and uncontrolled parameters and system deciding the best operation per process. This study focuses on the identification, optimization, intelligent computing capability and technical operating skills that contribute to the SDP efficiency. Optimized controls for the SDP ensures a maximum weight percent solution (wt%) is squeezed out through complex computing from available process parameters.
Keywords :
chemical reactions; drying; effluents; neurocontrollers; optimisation; programmable controllers; sludge treatment; ETS; PLC; SDP; artificial neural network; bio-sludge cake; chemical reactions; effluent treatment system; optimization; programmable logic controller; sludge drying plant; Artificial neural networks; Chemicals; Data collection; Optimization; Process control; Sensors; Solids; Sludge Drying Plant; effluent treatment system; parameter optimization; process design;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing and its Applications (CSPA), 2013 IEEE 9th International Colloquium on
Conference_Location :
Kuala Lumpur
Print_ISBN :
978-1-4673-5608-4
Type :
conf
DOI :
10.1109/CSPA.2013.6530023
Filename :
6530023
Link To Document :
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