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Nonequilibrium in the transport of heat and reactants in combustion in porous media

机译:在多孔介质中燃烧过程中热量和反应物的传输不平衡

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Combustion in inert, catalytic and combustible porous media occurs under the influence of a large range of geometric length scales, thermophysical and thermochemical properties, and flow, heat and mass transfer conditions. As a result, a large range of phenomenological length and time scales control the extent of departure from local thermal and chemical nonequilibrium. The use of intraphase and interphase nonequilbria have allowed for the design of new combustion processes and systems, such as, catalytic reactors and converters, porous radiant burners, direct energy and gas conversion devices and systems, chemical sensors, and material synthesis processes. Improvement of current and design of yet newer and more innovative systems requires further investigations into the gas-phase and surface chemistry, solid-state and condensed-phase physics, transport in discordered structures, and mathematical and numerical methods. Here we summarize the processes leading to thermal and chemical nonequilibrium, their role in the combustion in porous media, their innovative uses and effects on applications, the current modeling of these processes and the modeling techniques that may allow for further improvements and developments.
机译:惰性,催化和可燃多孔介质中的燃烧在大范围的几何长度尺度,热物理和热化学性质以及流动,传热和传质条件的影响下发生。结果,大量的现象学长度和时间尺度控制了偏离局部热和化学不平衡的程度。使用相内和相间无渗层允许设计新的燃烧过程和系统,例如催化反应器和转化器,多孔辐射燃烧器,直接能量和气体转化装置和系统,化学传感器以及材料合成过程。电流的改进和更新,更创新的系统的设计需要对气相和表面化学,固态和凝聚相物理学,无序结构中的运输以及数学和数值方法进行进一步研究。在这里,我们总结了导致热和化学不平衡的过程,它们在多孔介质中燃烧的作用,它们的创新用途和对应用的影响,这些过程的当前建模以及可能允许进一步改进和发展的建模技术。

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