Interfacial energies for quartz and albite in pelitic schist
暂无分享,去创建一个
[1] O. Nishikawa,et al. Morphology of intergranular pores and wetting angles in pelitic schists studied by transmission electron microscopy , 2001 .
[2] B. Stöckhert,et al. Grain boundary energies in olivine derived from natural microstructures , 2001 .
[3] O. Nishikawa,et al. Progressive lattice misorientation and microstructural development in quartz veins deformed under subgreenschist conditions , 2000 .
[4] 平賀 岳彦. Interface structure and interfacial energy in metamorphic rocks studied by electron microscopy , 2000 .
[5] M. Holness,et al. Partial melting of the Appin Quartzite driven by fracture-controlled H2O infiltration in the aureole of the Ballachulish Igneous Complex, Scottish Highlands , 1999 .
[6] T. Takeshita,et al. c-Axis fabrics and microstructures in quartz schist from the Sambagawa metamorphic belt, central Shikoku, Japan , 1998 .
[7] K. Morita,et al. Geometric structures of grain boundaries expected from the O-lattice theory compared with high-resolution transmission electron microscope images , 1997 .
[8] T. Masuda,et al. Grain‐boundary migration of quartz during annealing experiments at high temperatures and pressures, with implications for metamorphic geology , 1997 .
[9] S. A. Hayward,et al. Displacive phase transition in anorthoclase: The “plateau effect” and the effect of T1-T2 ordering on the transition temperature , 1996 .
[10] M. Holness. Temperature and pressure dependence of quartz-aqueous fluid dihedral angles: the control of adsorbed H2O on the permeability of quartzites , 1993 .
[11] M. Holness. Equilibrium dihedral angles in the system quartz-CO2H2ONaCl at 800°C and 1–15 kbar: the effects of pressure and fluid composition on the permeability of quartzites , 1992 .
[12] A. C. Mclaren,et al. Dislocation nucleation and multiplication in synthetic quartz: Relevance to water weakening , 1989 .
[13] A. Jurewicz,et al. Distribution of apparent angles on random sections with emphasis on dihedral angle measurements , 1986 .
[14] T. S. Olsen,et al. Natural deformation and recrystallization of some intermediate plagioclase feldspars , 1985 .
[15] G. A. Parks. Surface and interfacial free energies of quartz , 1984 .
[16] E. Watson,et al. Distribution of partial melt in a felsic system: the importance of surface energy , 1984 .
[17] C. So,et al. The Core Structure of an Edge Dislocation in NaCl , 1980 .
[18] J. Paquet,et al. Subgrain boundaries in quartz theoretical analysis and microscopic observations , 1980, Physics and Chemistry of Minerals.
[19] T. Itaya. NOTES ON PETROGRAPHY AND ROCK-FORMING MINERALOGY (5) , 1978 .
[20] R. D. Lawrence. Tectonic significance of petrofabric studies along the Chewack-Pasayten fault, north-central Washington , 1978 .
[21] B. Hobbs,et al. The simulation of fabric development in plastic deformation and its application to quartzite: The model , 1978 .
[22] C. Woo,et al. Atomistic breathing shell model calculations of dislocation core configurations in ionic crystals , 1977 .
[23] P. C. Gehlen,et al. Atomic simulation of the dislocation core structure and Peierls stress in alkali halide , 1976 .
[24] V. M. Chernov,et al. Energy factor of dislocations in hexagonal crystals , 1976 .
[25] H. Heinisch,et al. Elastic stresses and self-energies of dislocations of arbitrary orientation in anisotropic media: Olivine, orthopyroxene, calcite, and quartz , 1975 .
[26] L. Teutonico. Dislocations in hexagonal crystals , 1970 .
[27] H. Gleiter. The segregation of copper at high angle grain boundaries in lead , 1970 .
[28] K. Ashbee,et al. Slip systems in quartz: I. Experiments , 1969 .
[29] R. Vernon. Microstructures of High-grade Metamorpbic Rocks at Broken Hill, Australia , 1968 .
[30] Jens Lothe John Price Hirth,et al. Theory of Dislocations , 1968 .
[31] R. Wagner,et al. Grain Boundaries in Germanium , 1960 .
[32] W. Read,et al. Dislocation Models of Crystal Grain Boundaries , 1950 .