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Laser-induced incandescence: Particulate diagnostics for combustion, atmospheric, and industrial applications

机译:激光诱导的白炽:用于燃烧,大气和工业应用的微粒诊断

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摘要

The understanding of soot formation in combustion processes and the optimization of practical combustion systems require in situ measurement techniques that can provide important characteristics, such as particle concentrations and sizes, under a variety of conditions. Of equal importance are techniques suitable for characterizing soot particles produced from incomplete combustion and emitted into the environment. Additionally, the production of engineered nanoparticles, such as carbon blacks, may benefit from techniques that allow for online monitoring of these processes.In this paper, we review the fundamentals and applications of laser-induced incandescence (LII) for particulate diagnostics in a variety of fields. The review takes into account two variants of LII, one that is based on pulsed-laser excitation and has been mainly used in combustion diagnostics and emissions measurements, and an alternate approach that relies on continuous-wave lasers and has become increasingly popular for measuring black carbon in environmental applications. We also review the state of the art in the determination of physical parameters central to the processes that contribute to the non-equilibrium nanoscale heat and mass balances of laser-heated particles; these parameters are important for LII-signal analysis and simulation. Awareness of the significance of particle aggregation and coatings has increased recently, and the effects of these characteristics on the LII technique are discussed.Because of the range of experimental constraints in the variety of applications for which laser-induced incandescence is suited, many implementation approaches have been developed. This review discusses considerations for selection of laser and detection characteristics to address application-specific needs. The benefits of using LII for measurements of a range of nanoparticles in the fields mentioned above are demonstrated with some typical examples, covering simple flames, internal-combustion engines, exhaust emissions, the ambient atmosphere, and nanoparticle production. We also remark on less well-known studies employing LII for particles suspended in liquids.An important aspect of the paper is to critically assess the improvement in the understanding of the fundamental physical mechanisms at the nanoscale and the determination of underlying parameters; we also identify further research needs in these contexts. Building on this enhanced capability in describing the underlying complex processes, LII has become a workhorse of particulate measurement in a variety of fields, and its utility continues to be expanding. When coupled with complementary methods, such as light scattering, probe-sampling, molecular-beam techniques, and other nanoparticle instrumentation, new directions for research and applications with LII continue to materialize.
机译:对燃烧过程中烟尘形成的理解以及实际燃烧系统的优化要求在各种条件下能够提供重要特性(例如颗粒浓度和大小)的原位测量技术。同样重要的是适用于表征由不完全燃烧产生并排放到环境中的烟尘颗粒的技术。此外,工程纳米颗粒(例如炭黑)的生产可能会受益于可在线监控这些过程的技术。在本文中,我们回顾了激光诱导白炽灯(LII)在各种颗粒物诊断中的基本原理和应用。领域。这篇综述考虑了LII的两种变体,一种基于脉冲激光激发,主要用于燃烧诊断和排放测量,另一种基于连续波激光器的替代方法,在测量黑度方面越来越受欢迎。碳在环境中的应用。在确定物理参数的过程中,我们还回顾了现有技术的现状,这些物理参数是造成非平衡纳米级热量和激光加热粒子质量平衡的重要过程。这些参数对于LII信号分析和仿真很重要。近年来,人们越来越意识到粒子聚集和涂层的重要性,并讨论了这些特性对LII技术的影响。由于在各种应用中都存在实验上的限制,因此适合多种应用,其中激光诱导白炽灯的应用非常广泛。已经开发了。这篇评论讨论了选择激光和检测特性以满足特定应用需求的注意事项。使用LII在上述领域中测量一系列纳米颗粒的好处通过一些典型示例得到了证明,这些示例涵盖了简单的火焰,内燃机,废气排放,环境大气和纳米颗粒的产生。我们还评论了鲜为人知的研究,即使用LII对悬浮在液体中的颗粒进行研究。本文的一个重要方面是批判性地评估对纳米级基本物理机理的理解以及确定基本参数的改进。我们还将在这些情况下确定进一步的研究需求。在描述底层复杂过程的这种增强功能的基础上,LII已成为各种领域中颗粒测量的主力军,其效用不断扩大。与光散射,探针采样,分子束技术和其他纳米粒子仪器等互补方法结合使用时,LII的研究和应用新方向继续得以实现。

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