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Numerical modeling of radiation heat exchange in combustion chambers and heat exchangers of power installations

机译:燃烧室辐射热交换的数值模型及电力安装热交换器

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The application of numerical modeling is considered to solve the problems of radiation heat exchange in structurally inhomogeneous two-phase media which are realized during the combustion of fuel in boiler units atmospheric emissions from air carriers when they move at supersonic speeds. The optically active ingredients of the gas phase of the combustion products have a sharp selection of spectral absorption lines (radiation) which causes a difference in the spectral transmission functions for selective radiation from the spectral transmission functions for non-selective radiation (gray body). In the presence of a dispersed phase of the combustion products acute selection is subjected to such a parameter of the radiation propagation medium as the probability of quantum survival. The number of spectral lines determining the spectral transmission functions increases with temperature and is determined by hundreds of thousands of lines at high temperatures. In this paper we consider a closed simulation of radiation heat transfer in combustion chambers when the temperature field in the combustion chambers is calculated first and then the flux of thermal radiation to the tube heat-receiving surfaces.
机译:数值建模的应用被认为解决了结构不均匀的两相介质中的辐射热交换的问题,该两相介质在锅炉单元燃料燃料燃烧过程中在超声速度移动时从空气载体的燃料燃烧过程中实现。燃烧产物的气相的光学活性成分具有尖锐的光谱吸收管线(辐射),其引起光谱传输功能的差异,用于从用于非选择性辐射(灰色体)的光谱传输功能的选择性辐射。在存在燃烧产物的分散相的情况下,急性选择的辐射繁殖介质的参数作为量子存活的概率。确定光谱传输功能的频谱线的数量随温度的增加,并且在高温下由数十万条线确定。在本文中,当首先计算燃烧室中的温度场时,考虑燃烧室中的辐射传热的闭合模拟,然后将热辐射的通量与管热接收表面的磁通量进行计算。

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