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Microwave tomography for estimating moisture content distribution in porous foam using neural networks

机译:微波层析成像,使用神经网络估计多孔泡沫中的水分含量分布

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Selective heating in industrial microwave drying could be more efficiently addressed by intelligent control of distributed microwave sources. As a result, increasing system efficiency and reducing thermal runaway while processing low loss dielectric samples. However, applying such a precise microwave control requires non-invasive in-situ measurement of the unknown distribution of moisture inside the material. In this work, the feasibility of integrating a microwave tomography (MWT) with the drying system is demonstrated. The studied imaging modality is applied to estimate the moisture content distribution in a polymer foam. To solve the estimation problem in a fast way, a neural network based approach is proposed in this work. Promising estimation results are shown using synthetic measurement data.
机译:通过智能控制分布式微波源,可以更有效地解决工业微波干燥中的选择性加热问题。结果,在处理低损耗电介质样品的同时,提高了系统效率并减少了热失控。然而,应用这种精确的微波控制需要对材料内部水分的未知分布进行非侵入性的原位测量。在这项工作中,证明了将微波层析成像(MWT)与干燥系统集成在一起的可行性。研究的成像模态可用于估算聚合物泡沫中的水分含量分布。为了快速解决估计问题,本文提出了一种基于神经网络的方法。使用综合测量数据可以显示出有希望的估算结果。

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