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Article cité :
J. Pantaloni , E. Guyon , M. G. Velarde , R. Bailleux , G. Finiels
Rev. Phys. Appl. (Paris), 12 12 (1977) 1849-1854
Citations de cet article :
12 articles
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Note: Effect of the tilting angle of the wire on the onset of natural convection in the transient hot wire method
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Hot-Wire Method for Kinematic Viscosity Estimation
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TRANSIENT FREE CONVECTION DEVELOPMENT IN HOT-WIRE EXPERIMENTS
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Short hot wire technique for measuring thermal conductivity and thermal diffusivity of various materials
Huaqing Xie, Hua Gu, Motoo Fujii and Xing Zhang Measurement Science and Technology 17 (1) 208 (2006) https://doi.org/10.1088/0957-0233/17/1/032
Modelling of the inactivation kinetics of the trypsin inhibitors in soy flour
Rob van den Hout, Gerrit Meerdink and Klaas van 't Riet Journal of the Science of Food and Agriculture 79 (1) 63 (1999) https://doi.org/10.1002/(SICI)1097-0010(199901)79:1<63::AID-JSFA183>3.0.CO;2-4
Simultaneous measurements of thermal conductivity and thermal diffusivity of liquids under microgravity conditions
M. Fujii, X. Zhang, N. Imaishi, S. Fujiwara and T. Sakamoto International Journal of Thermophysics 18 (2) 327 (1997) https://doi.org/10.1007/BF02575164
A computer-controlled transient needle-probe thermal conductivity instrument for liquids
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Measurement of thermal conductivity of molten salts in the range 100–500°C
R. Santini, L. Tadrist, J. Pantaloni and P. Cerisier International Journal of Heat and Mass Transfer 27 (4) 623 (1984) https://doi.org/10.1016/0017-9310(84)90034-6
A mathematical model of a ramp forced hot-wire thermal conductivity instrument
Shamseddin S. Mohammadi, Michael S. Graboski and E. Dendy Sloan International Journal of Heat and Mass Transfer 24 (4) 671 (1981) https://doi.org/10.1016/0017-9310(81)90011-9