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Chemical Kinetics of Phosphorus-Containing Compounds Used as Fire Suppressants and Chemical Agent Surrogates

Chemical Kinetics of Phosphorus-Containing Compounds Used as Fire Suppressants and Chemical Agent Surrogates
用作灭火剂和化学制剂替代品的含磷化合物的化学动力学
批准号:
1706825
负责人:
Eric Petersen
金额:
$27.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-01 至 2020-07-31

项目摘要

项目成果

Eric Petersen的其他基金

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中文摘要
翻译
含磷化合物具有现代的全球性影响,因为它们被用作有前途的灭火剂。这些含磷化合物作为哈龙灭火剂的有前途的替代品的替代用途提供了额外的,深远的影响,并强烈需要充分了解其化学行为。这些化合物也可以用作化学试剂模拟物,以了解更多关于它们在火焰中的行为。在本研究项目中,将对磷基分子的化学进行实验研究。主要结果将是在含有这些磷化合物的火焰中发生的重要化学反应的准确表示。然后,工程师和科学家可以使用改进的模型。这个多学科的项目将为研究生、博士后研究员和本科生提供机会,在他们通常不参与的领域发表论文和参加会议。准确预测其燃烧行为的一个主要方面在于磷氧化动力学子机制的准确性。尽管它们目前的重要性,有很少的动力学数据在燃烧条件下的这些化合物,和化学动力学反应速率系数是不是在所有众所周知的。这项基础研究将集中在直接测量磷氧化子机制中关键反应的反应速率常数。从这项工作中产生的基本化学动力学信息将是独一无二的,并将提供模拟含磷化合物在燃烧环境中的影响所需的结果。通过使用激波管产生高温条件(1000至2000 K),将进行关键中间物种(如PO2,HOPO,H2O和HOPO 2)的激光吸收测量。将获得新的光谱信息,其浓度的激光吸收测量将首次在激波管中进行。这种测量将导致首次确定几个重要反应(多达6个)的反应速率。该项目的成功完成将极大地提高对几种具有实际和专题意义的含磷物种的燃烧行为的预测能力。
英文摘要
Compounds containing phosphorus have modern, global ramifications because of their use as promising fire suppressants. The alternate usage of these phosphorous compounds as promising replacements for halon-based fire suppressants provides additional, far-reaching impact and a strong need for sufficient understanding of their chemical behavior. These compounds can also be used as chemical agent simulants to understand more about their behavior in flames. In this research project, the chemistry of phosphorus-based molecules will be studied experimentally. The primary result will be an accurate representation of the important chemical reactions that occur in flames containing these phosphorous compounds. Improved models can then be employed by engineers and scientists. This multidisciplinary project will allow opportunities for the graduate students, postdoctoral researcher, and undergraduate students working on the project to publish and attend conferences in fields in which they might not normally participate.The compounds of interest to this project are phosphorus-based. A major aspect of accurately predicting their combustion behaviors lies in the accuracy of the phosphorus-oxidation kinetics sub-mechanism. Despite their current importance, there are few kinetics data at combustion conditions for these compounds, and the chemical kinetic reaction rate coefficients are not at all well known. This fundamental study will focus on making direct measurements of the reaction rate constants of key reactions in the phosphorus oxidation sub-mechanism. The fundamental chemical kinetics information produced from this work will be one-of-a-kind and will provide results that are much needed for simulating the effects of P-containing compounds in a combustion environment. By using a shock tube to produce the high-temperature conditions (1000 to 2000 K), laser absorption measurements of key intermediate species such as PO2, HOPO, H2O, and HOPO2 will be performed. New spectroscopic information thereon will be obtained, and laser absorption measurements of their concentrations will be performed for the first time in a shock tube. Such measurements will lead to determination of the reaction rates of several important reactions (up to 6) for the first time. The successful completion of this project will greatly advance the predictive capabilities for the combustion behavior of several phosphorus-containing species of practical and topical interest.
期刊论文(6)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.combustflame.2019.11.010
发表时间: 2020-03
期刊: Combustion and Flame
影响因子: 4.4
作者: [C. Mulvihill;E. Petersen]
通讯作者: C. Mulvihill;E. Petersen
A Shock-Tube Study of the H2-N2O System Using H2O Absorption and Ignition Delay Times
利用 H2O 吸收和点火延迟时间对 H2-N2O 系统进行激波管研究
DOI: --
发表时间: 2018
期刊: Central States Section of the Combustion Institute
影响因子: --
作者: [Mulvihill, C. R., Mathieu, O., Petersen, E. L.]
通讯作者: Petersen, E. L.
Resolving the Shortcomings in Modern NH3 Kinetics Models using Detailed Species Time Histories and Direct Rate Measurements
REU Site: Undergraduate Research in Energy and Propulsion
REU Site: Texas Center for Undergraduate Research in Energy and Propulsion
REU Site: Texas Center for Undergraduate Research in Energy and Combustion
国内基金
海外基金
基于Hydrodynamics-Reaction Kinetics耦合模型的厌氧膨胀床反应器三相流场数值模拟及生态-水力响应机制解析
  • 批准号:
    51078108
  • 项目类别:
    面上项目
  • 资助金额:
    36.0万元
  • 批准年份:
    2010
  • 负责人:
    丁杰
  • 依托单位: