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13篇 您的检索式:作者名="Gugan"
    题名 作者 年代 出处 被引量
1Coverage modeling for dependability analysis of fault-tolerant systems显示文摘Joanne Bechta Gugan Kishor S Triveli 1989IEEE Transactions on Computers1989,38,6:1
2The mechanism ofsmouldering in cigarettes显示文摘Egerton A Gugan K Weinberg F J 1963Combustion and Flame1963,7,:1
3The mechanism of smouldering in cigarette 显示文摘EGERTOM SIR A GUGAN K WEINERG F J 1963Combust Flame1963,7,:1
4The mechanism of smouldering in cigarette显示文摘Egerton Sir A Gugan K Weinberg F J 1963Combust Flame1963,7,:1
5Change analysis of a dynamic copula for measuring dependence in multivariate financial data 显示文摘Gugan D 2010Quantita- tive Finance2010,10,4:1
6The mechanism ofsmouldering in cigarettes 显示文摘Egerton A Gugan K Weinberg F J 1963Combust Flame1963,7,:1
7The MAPK MEK1/2-ERK1/ 2 pathway and its implication in hepatocyte cell cycle control 显示文摘Gugan J P Frmin C Baffet G 2012Int J Hepatol2012,2012,:1
8Influence of volatile and nonvolatile Fractions on intensity of Cheddar cheese flavor显示文摘MC GUGAN W A EMMONS D B ARMOND ELIZABETH L 1979Journal of Dairy Science1979,62,3:1
9Gluean- like synthetic oligosaecharides: iterative synthesis of linear oligo- β -(1,3)-glueans and immunostimulatory effects显示文摘JAMOIS F FERRIRES V GUGAN J P 2005Glycobiology2005,15,4:1
10Flood routing based on diffusion wave equation using mixing cell method显示文摘Singh V P Wang Gugan Te Adrian D D 1997Hydrologi-cal Processes1997,,11:1
11Binding site analysis of CCR2 through in silico methodologies: docking, CoMFA, and CoMSIA 显示文摘GUGAN K CHANGDEV G G THIRUMURTHY M 2011Chem Biol Drug Des2011,78,1:1
12Evaporation of mercury from domestic waste leachate显示文摘Jones C J Mc Gugan P J 1978Journal of Hazardous Materials1978,2,:1
13Experimental investigation of anodized/spray pyrolysed nanoporous structure on heat transfer augmentation显示文摘This paper analyzes the effects of nanoporous surface on heat transfer temperaments of assorted thermal conductingmaterials. A phenomenal proposal of wielding the surface roughness to ameliorate the heat transfer ratehas been discovered. The maximum increase of heat transfer rate procured by nanoporous layers is 133.3% higherthan the polished bare metals of surface roughness 0.2μm. This plays an imperative role in designing compact refrigerationsystems, chemical and thermal power plants. Experimental results picture a formidable upswing of58.3% heat transfer in chemically etched metals of surface roughness 3 μm, 133.3% in nanoporous surface of porosity75-95 nm formed by electrochemical anodization, and porosity of 40-50 nm formed by spray pyrolysis increasesthe heat transfer by 130%. Effects of porosity, flow velocity and scaling on the energy transfer are alsoscrutinized. This paper also analyzes the multifarious modes of nanoporous fabrication, to contrive both prodigiousand provident system.Kalaiselvam S. Gugan M.S. Kuraloviyan E. Meganathan R. NiruthiyaPriyan A. Swaminathan M.R. 2009Journal of Thermal Science2009,18,4:0
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