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Quantum Computation of Partial Differential Equations
【数学之美-杰出学者讲坛】2023年第3期 || On the density of polynomial orbits
物理系colloquium: 凝聚态物理中的电流
清华软件论坛第十五期|程鸿: Solving Graph Computation Problems using Graph Neu...
报告题目:
Low-Temperature Solar Thermal Systems: Heat Transfer in Polymeric Systems
 报告人:
Prof. Jane H. Davidson
University of Minnesota
报告时间:
2005-11-11 15:30
报告地点:
热能系系馆报告厅
主办单位:
热能系
  简介:

Of the existing solar energy technologies, non-concentrating solar thermal systems to heat water, to warm buildings and to provide heat for industry and agriculture have arguably the greatest near-term potential to displace fossil fuels.  However, solar thermal systems have not achieved market potential.  Technology has seen modest change since the 1980’s and initial cost has remained high relative to gas and electric water heaters.  The seminar will highlight work at the University of Minnesota on polymer based systems, which are hoped to be half the cost of conventional systems.  The seminar will touch on some of the material issues, including mechanical behavior and scaling of polymer tubes, but the emphasis will be on our work to characterize buoyancy driven flow and convective heat transfer in indirect storage systems that use an immersed heat exchanger.  Natural convection flow in the collector is interpreted from a transient scale analysis and three-dimensional computational model as well as measured water temperature distributions in a laboratory collector of aspect ratio of 9.3:1 and inclined at 30 degrees to the horizontal.  Average natural convection heat transfer rates are measured for isothermal and stratified collectors with both adiabatic and uniform heat flux boundary conditions.  The presence of the collector enclosure is shown to enhance natural convection heat transfer rates compared to those for tubes in an unbounded fluid.  The heat transfer enhancement is attributed to the large scale circulation rates in the enclosure.  For tube bundles, generally Nusselt numbers increase with increasing pitch-to-diameter ratio and applied heat flux.  The results are interpreted to provide guidance on heat exchanger geometry.

 

Bio

Professor Davidson is Professor of Mechanical Engineering at the University of Minnesota in the Heat Transfer and Thermodynamics Division.  She received the BS and MS degrees in Engineering Science and Mechanics from the University of Tennessee and a Ph.D. in Mechanical Engineering from Duke University.  Before coming to Minnesota, she was a faculty member at the University of Delaware and Colorado State University.  Dr. Davidson is past Editor-in-Chief of the Journal of Solar Energy Engineering.  She is the 2004 recipient of the ASME John I. Yellott Award for outstanding research in solar energy and Fellow of ASME and ASES.  In 2005, she was named Distinguished Women Scholar in Science and Engineering at the University of Minnesota.  Her publications include more than 150 papers in journals and conferences and three book chapters. 

 

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