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Neural network and zone modelling of a gas-fired furnace operating under non-steady state conditions

机译:非稳态条件下运行燃气炉的神经网络和区域建模

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This paper initially compares predictions and measurements from a range of gas-fired furnaces to demonstrate that mathematical models,based on hte zone mehtod of radiation analysis,can simulate satisfactorily the transient behaviour of these installations.However the computational times associated with these models are generally too great for on-line ocntrol purposes and it has been roposed that neural network models are an alternative for this purpose.Consequently the second part of the paper is ocncernedwith representation of a zone model of a metal reheating furance starting up from "cold" by an appropriate artificial neural netowkr.The predictions fromthe two models are good agreement with respect to hte duration of the inital start up period,the energy consumption and,to a lesser extent,the load surface temperature at discharge.
机译:本文最初将来自一系列燃气熔炉的预测和测量进行了比较,以证明基于辐射分析的HTE区Mehtod的数学模型可以令人满意地模拟这些装置的瞬态行为。但是如何使用与这些模型相关的计算时间对于在线OCNTROL目的而言过于伟大,并且它被围绕着神经网络模型是替代目的的替代方案。纸张的第二部分是ocncerned of of Contringwith从“冷”启动的金属再次启动的金属调速流氓的区域模型。一个适当的人工神经Netowkr.这两种模型的预测对于初始启动时期的HTE持续时间,能量消耗和较小程度,载荷表面温度在放电时的载荷持续时间良好。

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