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基于神经网络的传热法测量气固两相流中固体流量的研究
引用本文:吴新,袁竹林.基于神经网络的传热法测量气固两相流中固体流量的研究[J].锅炉技术,2001,32(12):8-10.
作者姓名:吴新  袁竹林
作者单位:东南大学清洁煤发电和燃烧技术教育部重点实验室,东南大学热能工程研究所,江苏,南京,210096
摘    要:利用人工神经网络优良的非线性映射能力,设计了一个3层前馈式神经网络用于传热法预测气固两相流中的固相流量,预测结果和实验结果吻合较好,为稀相气固两相流中固相流量的测量提供了一种简单、可靠的新方法。

关 键 词:人工神经网络  气力输送  传热  测量  预测
文章编号:CN31-1508(2001)12-0008-03
修稿时间:2001年5月22日

Neural Networks for On-line Prediction of the Solid Flowrate in Gas-solid Two Phase Flow Based on Heat Transfer
WU Xin,YUN Zhu-ling.Neural Networks for On-line Prediction of the Solid Flowrate in Gas-solid Two Phase Flow Based on Heat Transfer[J].Boiler Technology,2001,32(12):8-10.
Authors:WU Xin  YUN Zhu-ling
Abstract:In this paper, a methodology is introduced to use neural networks for online measure-ment of the solid flowrate in gas-solid two-phase flow based on heat transfer. An electrically heatedprobe was put in a gas-solid two-phase flow. The flow mediums with different velocity of flow,densities and diameters of particles produced different results of heat transfer. For a certain veloc-ity of conveyer air, the solid flow rate could be determined by the heating electric power and thesuperficial temperature of the probe. Experiments were made on a pilot gas-solid conveyer device.Prediction results prove that the method works effectively and reliably.
Keywords:neural networks  pneumatic conveying  heat transfer  measurement  prediction  
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