Download High Performance Computing in Science and Engineering ‘13: by Jiajia Zhou, Friederike Schmid (auth.), Wolfgang E. Nagel, PDF

By Jiajia Zhou, Friederike Schmid (auth.), Wolfgang E. Nagel, Dietmar H. Kröner, Michael M. Resch (eds.)

This publication offers the state of the art in simulation on supercomputers. best researchers current effects accomplished on structures of the excessive functionality Computing heart Stuttgart (HLRS) for the yr 2013. The studies disguise all fields of computational technology and engineering starting from CFD through computational physics and chemistry to computing device technology with a distinct emphasis on industrially appropriate functions. providing result of certainly one of Europe’s prime structures this quantity covers a wide selection of functions that carry a excessive point of sustained functionality. The ebook covers the most tools in excessive functionality computing. Its amazing leads to reaching maximum functionality for construction codes are of specific curiosity for either the scientist and the engineer. The ebook comes with a wealth of colored illustrations and tables of results.

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Extra resources for High Performance Computing in Science and Engineering ‘13: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2013

Example text

5, 317 (1959) 38. L. L. Barrat, Soft Matter 3, 685 (2007) 39. I. V. Belyaev, J. Phys. Condens. Matter 23, 184104 (2011) 40. W. S. Khair, J. Fluid Mech. 606, 115 (2008) 41. S. M. Squires, Phys. Fluids 21, 042001 (2009) 42. W. R. White, J. Chem. Soc. Faraday Trans. 2 74, 1607 (1978) 43. J. A. B. Russel, J. Colloid Interface Sci. 258, 56 (2003) 44. E. Hückel, Phys. Z. 25, 204 (1924) 45. v. Smoluchowski, Z. Phys. Chem. 92, 129 (1917) 46. L. G. H. Wiersema, The Electrical Double Layer Around a Spherical Colloid Particle (MIT, Massachusetts, 1961) 47.

J. López-García, M. Aranda-Rascón, J. Horno, J. Colloid Interface Sci. 323, 146 (2008) 51. J. Zhou, F. Schmid, J. Phys. Condens. Matter 24, 464112 (2012) 52. J. Zhou, F. Schmid, Eur. Phys. J. E 36, 33 (2013) 53. J. Zhou, R. Schmitz, B. Dünweg, F. Schmid, J. Chem. Phys. 139, 024901 (2013) Phase Separation of Colloid Polymer Mixtures Under Confinement Antonia Statt, Alexander Winkler, Peter Virnau, and Kurt Binder Abstract Colloid polymer mixtures exhibit vapor-liquid like and liquid-solid like phase transitions in bulk suspensions, and are well-suited model systems to explore confinement effects on these phase transitions.

A box with linear dimensions Lx D Ly D 6:375 is used, and the colloid packing fraction is Ác D 0:3271. The wall interaction range was set to wc D 0:5 (b) Each F is plotted versus 1=Dw and extrapolated to Dw ! 1 can be solved by the so called “ensemble switch method” [9]. fri g/. The linear dimensions and the particle numbers of both systems are precisely the same, fri g denoting the positions of all the particles. fri g/; (5) where Ä 2 f0; 1g denotes the “mixing percentage” between both systems.

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