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清华大学材料科学与工程研究院《材料科学论坛》:近红外二区磷光成像
清华大学材料科学与工程研究院《材料科学论坛》:四方Sr4Al2O7:一种用于制备高质量...
Massive Particles at Spatial Infinity
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报告题目:
High-Pressure Experiments and Modeling of Propulsion Systems: Fuel Pyrolysis/Oxidation/Emissions
 报告人:
Prof. Harsha Chelliah
Mechanical and Aerospace Engineering ,University of Virginia
报告时间:
2018-08-23 10:00
报告地点:
B-518, Lee Shau Kee Building of Science and Technology
主办单位:
清华大学燃烧能源中心
  简介:
Abstract
Storable fuels containing large hydrocarbon molecules will continue to be used in propulsion systems in the foreseeable future, especially in high-pressure gas turbine and hypersonic propulsion systems. These two applications also have intense cooling needs due to temperature limitation of materials. By taking advantage of the endothermic pyrolysis processes of large hydrocarbon molecules, the fuels could be used in a regenerative manner to enhance the cooling capacity, and the resulting pyrolyzed species injected into the combustion chamber could promote flame stabilization and minimize soot emissions. They could also influence the turbulence-chemistry interactions in flame stabilization regions due to modification of the rate controlling chemical reaction pathways. In this presentation, ongoing research at the University of Virginia aimed at addressing some of the above elements will be discussed.
 
Bio:
 Harsha Chelliah is a professor in Mechanical and Aerospace engineering at the University of Virginia. He received his PhD in Mechanical and Aerospace Engineering from Princeton University in 1988. His research is focused on fundamental interactions between finite-rate kinetics and fluid flow using both experimental and modeling approaches.  He has developed several unique high-pressure reactors to experimentally investigate fundamental issues related hypersonic and gas-turbine propulsions systems. These reactors are instrumented with advanced diagnostic tools to measure molecular species via GC-MS and MBMS, soot via LII and SMPS, and flow field via PIV. He has also developed systematic model reduction algorithms based on principal component analysis with sensitivities and quasi steady-state approximations. These methodologies have been applied to predict ignition, flame propagation, and extinction phenomena for a range of fuels.
He is a Fellow of American Society of Mechanical Engineers, an Associate Fellow of American Institute Aeronautics and Astronautics, Visiting Fellow at Peterhouse College, Cambridge University, and the 2016 Thomas Jefferson Visiting Fellow at Downing College, Cambridge University.  He is also a member of the editorial board of the Combustion Theory and Modeling Journal.
  
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