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Advances in imaging of chemically reacting flows

机译:化学反应流动成像的进展

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Many important chemically reacting systems are inherently multi-dimensional with spatial and temporal variations in the thermochemical state, which can be strongly coupled to interactions with transport processes. Fundamental insights into these systems require multi-dimensional measurements of the thermochemical state as well as fluid dynamics quantities. Laser-based imaging diagnostics provide spatially and temporally resolved measurements that help address this need. The state of the art in imaging diagnostics is continually progressing with the goal of attaining simultaneous multi-parameter measurements that capture transient processes, particularly those that lead to stochastic events, such as localized extinction in turbulent combustion. Development efforts in imaging diagnostics benefit from advances in laser and detector technology. This article provides a perspective on the progression of increasing dimensionality of laser-based imaging diagnostics and highlights the evolution from single-point measurements to 1D and 2D multi-parameter imaging and 3D high-speed imaging. This evolution is demonstrated using highlights of laser-based imaging techniques in combustion science research as an exemplar of a complex multi-dimensional chemically reacting system with chemistry-transport coupling. Imaging diagnostics impact basic research in other chemically reacting systems as well, such as measurements of near-surface gases in heterogeneous catalysis. The expanding dimensionality of imaging diagnostics leads to larger and more complex datasets that require increasingly demanding approaches to data analysis and provide opportunities for increased collaboration between experimental and computational researchers in tackling these challenges.
机译:许多重要的化学反应系统本质上是多维的,热化学状态在空间和时间上都有变化,这可能与运输过程的相互作用强烈耦合。对这些系统的基本认识需要对热化学状态以及流体动力学量进行多维测量。基于激光的成像诊断提供空间和时间分辨率的测量,有助于满足这一需求。成像诊断领域的最新技术正在不断进步,其目标是实现同步多参数测量,以捕获瞬态过程,尤其是导致随机事件的瞬态过程,例如湍流燃烧中的局部熄灭。成像诊断的发展努力得益于激光和探测器技术的进步。本文对基于激光的成像诊断的维度不断增加的进展进行了展望,并重点介绍了从单点测量到一维和二维多参数成像以及三维高速成像的发展。利用燃烧科学研究中基于激光的成像技术的亮点,作为具有化学传输耦合的复杂多维化学反应系统的一个范例,证明了这一演变。成像诊断也会影响其他化学反应系统的基础研究,比如多相催化中近表面气体的测量。成像诊断的维度不断扩大,导致更大、更复杂的数据集,需要越来越严格的数据分析方法,并为实验和计算研究人员在应对这些挑战时加强合作提供了机会。

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