@article{CRPHYS_2004__5_7_683_0, author = {J\'er\^ome Weiss}, title = {Foreword}, journal = {Comptes Rendus. Physique}, pages = {683--685}, publisher = {Elsevier}, volume = {5}, number = {7}, year = {2004}, doi = {10.1016/j.crhy.2004.08.003}, language = {en}, }
Jérôme Weiss. Foreword. Comptes Rendus. Physique, Volume 5 (2004) no. 7, pp. 683-685. doi : 10.1016/j.crhy.2004.08.003. https://comptes-rendus.academie-sciences.fr/physique/articles/10.1016/j.crhy.2004.08.003/
[1] Voyage dans les Alpes, Neuchâtel, Suisse, 1780
[2] Climate and atmospheric history of the past 420,000 years from the Vostok ice core, Antarctica, Nature, Volume 399 (1999), pp. 429-436
[3] Physics of Ice, Oxford University Press, Oxford, 1999
[4] Eng. Fract. Mech., 68 (2001) no. 17/18
[5] Rate-controlling Processes in the creep of polycrystalline ice, J. Phys. Chem., Volume 87 (1983), pp. 4066-4074
[6] Dislocations and plasticity in ice, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[7] The viscoplastic behaviour of ice in polar ice sheets: experimental results and modelling, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[8] Rheological Implications of the Internal Structure and Crystal Fabrics of the West Antarctic Ice Sheet as Revealed by Deep Core Drilling at Byrd Station, CRREL, Hanover, NH, USA, 1976
[9] Texture and fabrics in the GRIP ice core, J. Geophys. Res., Volume 102 (1997), pp. 26583-26599
[10] G. Durand, F. Graner, J. Weiss, Anisotropy of grain boundaries in crystals: a new measurement technique applied to polar ice, Europhys. Lett., in press
[11] Simulation of anisotropic ice flow and fabric evolution along the GRIP-GISP2 flow line (Central Greenland), Ann. Glaciol., Volume 30 (2000), pp. 217-223
[12] Glacier flow modelling: a comparison of the Shallow Ice Approximation and the full Stokes Solution, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[13] Widespread complex flow in the interior of the Antarctic ice sheet, Science, Volume 287 (2000), pp. 1248-1250
[14] Ice streams – fast and faster?, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[15] Mass balance of polar ice sheets, Science, Volume 297 (2002), pp. 1502-1506
[16] Mass and volume contributions to twentieth-century global sea level rise, Nature, Volume 428 (2004), pp. 406-409
[17] Ice ablation as evidence of climate change in the Alps over the 20th century, J. Geophys. Res., Volume 109 (2004) no. D10104 | DOI
[18] Secular glacier mass balances derived from cumulative glacier length changes, Global Planet. Change, Volume 36 (2003), pp. 295-306
[19] Dynamics of recent climate change in the Arctic, Science, Volume 297 (2002), pp. 1497-1502
[20] Recent changes in arctic sea ice: the interplay between ice dynamics and thermodynamics, J. Climate, Volume 13 (2000) no. 17, pp. 3099-3114
[21] Recent environmental changes in the Arctic: A review, Arctic, Volume 53 (2000) no. 4, pp. 359-371
[22] Will the Arctic Ocean lose all its ice?, Science, Volume 286 (1999), p. 1828
[23] A warmer Arctic means change for all, Science, Volume 297 (2002), pp. 1490-1492
[24] Relationships between geostrophic winds, ice strain rates and the piecewise rigid motions of pack ice (J.P. Dempsey; H.H. Shen, eds.), Scaling Laws in Ice Mechanics and Ice Dynamics, Kluwer Academic Publishers, Dordrecht, 2001, pp. 335-348
[25] Scale properties of sea ice deformation and fracturing, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[26] D. Marsan, H. Stern, R. Lindsay, J. Weiss, Scale dependence and localization of the deformation of arctic sea ice, submitted, 2004
[27] Brittle failure of ice, Eng. Fract. Mech., Volume 68 (2001) no. 17/18, pp. 1839-1887
[28] Fracture of the winter sea ice cover on the Arctic Ocean, C. R. Physique, Volume 5 (2004) (this issue) | DOI
[29] On the initiation of shear faults during brittle compressive failure: a new mechanism, J. Geophys. Res., Volume 104 (1999), pp. 695-705
[30] Internal structure and dynamics of the large icy satellites, C. R. Physique, Volume 5 (2004) (this issue) | DOI
Cité par Sources :
Commentaires - Politique