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A two-step simulation methodology for modelling stagnation flame synthesised aggregate nanoparticles

机译:用于停滞火焰合成聚集体纳米粒子的两步模拟方法

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摘要

A two-step simulation methodology is presented that allows a detailed particle model to be used to resolve the complex morphology of aggregate nanoparticles synthesised in a stagnation flame. In the first step, a detailed chemical mechanism is coupled to a one-dimensional stagnation flow model and spherical particle model solved using method of moments with interpolative closure. The resulting gas-phase profile is post-processed with a detailed stochastic population balance model to simulate the evolution of the population of particles, including the evolution of each individual primary particle and their connectivity with other primaries in an aggregate. A thermophoretic correction is introduced to the post processing step through a simulation volume scaling term to account for thermophoretic transport effects arising due to the steep temperature gradient near the stagnation surface. The methodology is evaluated by applying it to a test case: the synthesis of titanium dioxide from titanium tetraisopropoxide (TTIP) precursor. The thermophoretic correction is shown to improve the fidelity of the post-process to the first fully-coupled simulation, and the methodology is demonstrated to be feasible for simulating the morphology of aggregate nanoparticles formed in a stagnation flame, permitting the simulation of quantities that are directly comparable to experimental observations. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:提出了两步模拟方法,该方法允许使用详细的粒子模型来解析在停滞火焰中合成的聚集纳米粒子的复杂形态。第一步,将详细的化学机理耦合到一维停滞流动模型和球面颗粒模型,该模型使用具有内插闭合的矩量法求解。用详细的随机种群平衡模型对生成的气相分布进行后处理,以模拟颗粒种群的演化,包括每个单个初级颗粒的演化以及它们与聚集体中其他初级颗粒的连通性。通过模拟体积缩放项将热泳校正引入到后处理步骤中,以说明由于停滞表面附近陡峭的温度梯度而产生的热泳传输效应。通过将该方法应用于以下测试案例来评估该方法:从四异丙氧基钛(TTIP)前驱体合成二氧化钛。显示了热泳校正可以提高后处理对第一个完全耦合模拟的保真度,并且该方法被证明对于模拟停滞火焰中形成的聚集纳米粒子的形态是可行的,从而可以模拟与实验观察结果直接可比。 (C)2019燃烧研究所。由Elsevier Inc.出版。保留所有权利。

著录项

  • 来源
    《Combustion and Flame》 |2019年第4期|143-153|共11页
  • 作者单位

    Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England|Cambridge Ctr Adv Res & Educ Singapore CARES, CREATE Tower,1 Create Way, Singapore 138602, Singapore;

    Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England|Cambridge Ctr Adv Res & Educ Singapore CARES, CREATE Tower,1 Create Way, Singapore 138602, Singapore;

    Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England|Cambridge Ctr Adv Res & Educ Singapore CARES, CREATE Tower,1 Create Way, Singapore 138602, Singapore;

    Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England|Nanyang Technol Univ, Sch Chem & Biomed Engn, 62 Nanyang Dr, Singapore 6357459, Singapore|Cambridge Ctr Adv Res & Educ Singapore CARES, CREATE Tower,1 Create Way, Singapore 138602, Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Stagnation flame; Population balance; Detailed particle model; Titanium dioxide; TTIP;

    机译:停滞火焰;人口平衡;详细粒子模型;二氧化钛;TTIP;

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