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CAREER: Compressive Laser Absorption Spectroscopy for Supercritical Combustion Studies

CAREER: Compressive Laser Absorption Spectroscopy for Supercritical Combustion Studies
职业:用于超临界燃烧研究的压缩激光吸收光谱
批准号:
1752516
负责人:
Raymond Spearrin
金额:
$54.99万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-01-01 至 2024-12-31

项目摘要

项目成果

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中文摘要
翻译
下一代超清洁、高效的内燃机预计将在比今天的发动机高得多的压力下运行。不幸的是,人们对这些高压下的燃烧物理和化学知之甚少,这减缓了更清洁、更省油的发动机(包括汽车、柴油、喷气和火箭发动机)的发展。因此,该项目的首要目标是更好地了解极端压力下的燃烧。一种新的激光诊断方法用于研究极端压力下燃烧的基本化学和辐射特性,针对与当前和未来发动机开发相关的特定燃料和操作条件。该项目的成功完成将产生(1)一种新颖的,广泛适用的诊断工具,将加速在一个至关重要的,但在很大程度上尚未探索的高压领域的基础燃烧研究,和(2)在这些条件下点火和污染物形成的基本化学的新见解。补充教育活动将利用现代媒体技术来测试实验室研究在课堂上的整合,并使大学以外的更广泛群体参与当前与能源和燃烧有关的科学和工程挑战。其中反应流体既不是液体也不是气体,并且表现出难以建模的非理想行为。为了研究非平衡过程,在这个政权,实验方法介绍,适应先进的理论信号压缩的波长域,以进行基于激光吸收的测量的物种和温度在超临界压力。所提出的方法可用于执行宽光谱调查的中到远红外域或超快速传感在较窄的波长范围。因此,该项目涉及重新审查的方法,基本的高温光谱研究和在激波管中的原位物种测量,并使新的探索性的方法,利用新的测量技术的优势。可以设想的是,当与高压、高重复率激波管协同组合时,压缩感测方法将(1)扩展和/或允许建立新的光谱数据库以包括极端压力,以及(2)使得能够进行新的燃烧化学研究,该燃烧化学研究在超临界状态下隔离高压反应动力学。提出了一个研究计划,以测试的压缩传感技术的变化,调查超临界流体的光谱特性,并检查高压点火和烟灰形成的化学动力学。
英文摘要
The next generation of ultra-clean, efficient combustion engines are expected to operate at much higher pressures than today's engines. Unfortunately, combustion physics and chemistry are poorly understood at these high pressures, which has slowed the advancement of cleaner, more fuel-efficient engines (including automotive, diesel, jet, and rocket engines). Therefore, the overarching goal of this project is to better understand combustion at extreme pressures. A new laser diagnostic method is used to investigate fundamental chemistry and radiative properties of combustion at extreme pressures, targeting specific fuels and operating conditions relevant to current and future engine development. Successful completion of the project will yield (1) a novel, broadly-applicable diagnostic tool that will accelerate basic combustion research in a critically important, but largely unexplored high-pressure domain, and (2) new insights into the fundamental chemistry of ignition and pollutant formation at these conditions. Complementary educational activities will leverage modern media technologies to test the integration of laboratory research in the classroom and to engage broader groups outside the university in current scientific and engineering challenges related to energy and combustion.A challenge and research focal point of this project is combustion at supercritical thermodynamic conditions, where the reacting fluid is neither liquid or gas and exhibits non-ideal behavior that is difficult to model. To study non-equilibrium processes in this regime, an experimental method is introduced that adapts advanced theories of signal compression to the wavelength domain in order to conduct laser absorption-based measurements of species and temperature at supercritical pressures. The proposed method can be used to perform broad spectral surveys of the mid- to far-infrared domain or ultra-fast sensing in a narrower wavelength range. Accordingly, this project involves a re-examination of the approaches to fundamental high-temperature spectroscopy studies and in situ species measurements in shock tubes, and enables new exploratory approaches that leverage the strengths of the novel measurement technique. It is envisioned that the compressive sensing method, when synergistically combined with a high-pressure, high repetition-rate shock tube, will (1) extend and/or allow the building of new spectroscopic databases to include extreme pressures, and (2) enable new combustion chemistry studies that isolate high-pressure reaction kinetics in the supercritical regime. A research plan is set forth to test variations of the compressive sensing technique, investigate spectroscopic properties of supercritical fluids, and examine chemical kinetics of high-pressure ignition and soot formation.
期刊论文(13)
专著(0)
科研奖励(0)
会议论文
Design-build-launch: a hybrid project-based laboratory course for aerospace engineering education
设计-构建-启动:航空航天工程教育基于项目的混合实验室课程
DOI: 10.1016/j.actaastro.2018.11.002
发表时间: 2019
期刊: Acta Astronautica
影响因子: 3.5
作者: [Spearrin, R. Mitchell, Bendana, Fabio A.]
通讯作者: Bendana, Fabio A.
DOI: 10.1007/s00340-019-7320-y
发表时间: 2019-11-01
期刊: APPLIED PHYSICS B-LASERS AND OPTICS
影响因子: 2.1
作者: [Bendana, Fabio A., Lee, Daniel D., Spearrin, R. Mitchell]
通讯作者: Spearrin, R. Mitchell
DOI: 10.1016/j.fuel.2022.126846
发表时间: 2023-03
期刊: Fuel
影响因子: 7.4
作者: [I. C. Sanders;Nicholas M. Kuenning;N. Minesi;Daniel I. Pineda;R. Spearrin]
通讯作者: I. C. Sanders;Nicholas M. Kuenning;N. Minesi;Daniel I. Pineda;R. Spearrin
Exploiting line-mixing effects for laser absorption spectroscopy at extreme combustion pressures
在极端燃烧压力下利用激光吸收光谱的线混合效应
DOI: 10.1016/j.proci.2020.08.037
发表时间: 2021
期刊: Proceedings of the Combustion Institute
影响因子: 3.4
作者: [Lee, Daniel D., Bendana, Fabio A., Nair, Anil P., Danczyk, Stephen A., Hargus, William A., Spearrin, R. Mitchell]
通讯作者: Spearrin, R. Mitchell
共 12 条
    国内基金
    海外基金
    基于Compressive sensing理论的单探测器太赫兹成像技术
    • 批准号:
      60977009
    • 项目类别:
      面上项目
    • 资助金额:
      32.0万元
    • 批准年份:
      2009
    • 负责人:
      王民钢
    • 依托单位:
    Compressive Sensing 理论及信号最佳稀疏分解方法研究
    • 批准号:
      60776795
    • 项目类别:
      联合基金项目
    • 资助金额:
      28.0万元
    • 批准年份:
      2007
    • 负责人:
      石光明
    • 依托单位: