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Advancing predictive models for particulate formation in turbulent flames via massively parallel direct numerical simulations

机译:通过大规模并行直接数值模拟改进湍流火焰中颗粒形成的预测模型

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摘要

Combustion of fossil fuels is likely to continue for the near future due to the growing trends in energy consumption worldwide. The increase in efficiency and the reduction of pollutant emissions from combustion devices are pivotal to achieving meaningful levels of carbon abatement as part of the ongoing climate change efforts. Computational fluid dynamics featuring adequate combustion models will play an increasingly important role in the design of more efficient and cleaner industrial burners, internal combustion engines, and combustors for stationary power generation and aircraft propulsion. Today, turbulent combustion modelling is hindered severely by the lack of data that are accurate and sufficiently complete to assess and remedy model deficiencies effectively. In particular, the formation of pollutants is a complex, nonlinear and multi-scale process characterized by the interaction of molecular and turbulent mixing with a multitude of chemical reactions with disparate time scales. The use of direct numerical simulation (DNS) featuring a state of the art description of the underlying chemistry and physical processes has contributed greatly to combustion model development in recent years. In this paper, the analysis of the intricate evolution of soot formation in turbulent flames demonstrates how DNS databases are used to illuminate relevant physico-chemical mechanisms and to identify modelling needs.
机译:由于全球能源消耗的增长趋势,化石燃料的燃烧可能会在不久的将来继续。效率的提高和燃烧装置污染物排放的减少对于实现有意义的碳减排水平至关重要,这是正在进行的气候变化努力的一部分。具有适当燃烧模型的计算流体动力学将在设计更高效,更清洁的工业燃烧器,内燃机以及用于固定式发电和飞机推进器的燃烧器中发挥越来越重要的作用。如今,湍流燃烧模型由于缺乏准确有效地评估和纠正模型缺陷的准确且足够完整的数据而受到严重阻碍。特别地,污染物的形成是一个复杂的,非线性的,多尺度的过程,其特征在于分子和湍流混合的相互作用以及时间尺度不同的众多化学反应。近年来,直接数值模拟(DNS)的使用对基础化学和物理过程进行了最先进的描述,为燃烧模型的发展做出了巨大贡献。在本文中,对湍流火焰中烟灰形成的复杂演变的分析表明,如何使用DNS数据库阐明相关的理化机制并确定建模需求。

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