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Intelligent setting control of raw meal calcination proces.

Authors :
Qiao, Jinghui
Chai, Tianyou
Wang, Hong
Source :
IEEE Conference on Decision & Control & European Control Conference; 1/ 1/2011, p7659-7664, 6p
Publication Year :
2011

Abstract

In raw meal calcination process, the target value of decomposition ratio of raw meal (RMDR) is different in easy calcination stage and difficult calcination stage because boundary conditions of raw meal change frequently, where RMDR cannot be guaranteed within its desirable ranges. To solve this problem, an intelligent setting control method is proposed. This method for raw meal calcination process consists of five modules, namely a RMDR target value setting model using subtraction clustering method (SCM) and adaptive-network-based fuzzy inference system containing categorical input (C-ANFIS), a control loop pre-setting model, a feedback compensation model based on fuzzy rules, a feedforward compensation model based on fuzzy rules, and a soft measurement model for RMDR. The proposed method is realized by on-line adjusting the setpoints of control loops with the change of raw meal boundary conditions. This method has been successfully applied to the raw meal calcination process of Jiuganghongda Cement Plant in China and its efficiency has been validated by the practical application results. [ABSTRACT FROM PUBLISHER]

Details

Language :
English
ISBNs :
9781612848006
Database :
Complementary Index
Journal :
IEEE Conference on Decision & Control & European Control Conference
Publication Type :
Conference
Accession number :
86614751
Full Text :
https://doi.org/10.1109/CDC.2011.6160477