烟道气测量神经网络预测排放监测系统的研制

S. Zain, Kien Kek Chua
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引用次数: 9

摘要

大多数国家的环境部都在日益严格清洁空气法规,要求重工业遵守烟囱排放限值。最新的措施之一是强制安装被称为连续排放监测系统(CEMS)的分析仪器,向能源部办公室在线报告排放水平。CEMS是一种基于硬件的分析仪,价格昂贵,维护工作量大,而且常常不可靠。因此,对更经济、可靠和准确的基于软件的预测技术的需求是法规遵从性的可行等效替代方案。本研究成功开发了一种基于神经网络软件的预测排放监测系统(PEMS),该系统可以准确地确定与硬件分析仪测量密切相关的烟囱排放水平。
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Development of a neural network Predictive Emission Monitoring System for flue gas measurement
Department of Environment in most countries is increasingly tightening clean Air regulation to mandate heavy industries to comply with stack emission limits. One of the latest measures is to enforce the installation of analytical instrumentation known as Continuous Emission Monitoring System (CEMS) to report emission level online to DOE office. CEMS being hardware based analyzer is expensive and maintenance intensive and often unreliable. Therefore, the need for more economical, reliable and accurate software-based predictive techniques is a feasible equivalent alternative for regulatory compliance. This study has successfully developed a neural network software-based Predictive Emissions Monitoring System (PEMS) to accurately determine stack emission level which can correlate closely with hardware analyzer measurement.
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