首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Major softening at brittle-ductile transition due to interplay between chemical and deformation processes: An insight from evolution of shear bands in the South Armorican Shear Zone
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Major softening at brittle-ductile transition due to interplay between chemical and deformation processes: An insight from evolution of shear bands in the South Armorican Shear Zone

机译:由于化学过程和变形过程之间的相互作用而导致的脆性-韧性转变过程中的主要软化:从南阿莫里肯剪切带的剪切带演化中得出的见解

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The formation of S-C/C fabrics in the South Armorican Shear Zone has been evaluated by detailed microstructural study where the focus was given to initiation and early evolution of the C/C fabric shear bands. Our observations suggest that the S-C/C fabrics formed at distinct temperature conditions indicating >550 degrees C for the S fabric and 300-350 degrees C at 100-400MPa for the C/C fabric shear bands. The evolving microstructure within shear bands documents switches in deformation mechanisms related to positive feedbacks between deformation and chemical processes and imposes mechanical constraints on the evolution of the brittle-ductile transition in the continental transform fault domains. Three stages of shear band evolution have been identified. Stage I corresponds to initiation of shear bands via formation of microcracks with possible yielding differential stress of up to 250MPa. Stage II is associated with subgrain rotation recrystallization and dislocation creep of quartz and coeval dissolution-precipitation creep of microcline. Recrystallized quartz grains show continual increase in size and decrease in stress and strain rates from 94MPa to 17-26MPa and 1.8x10(-1)s(-1)-9x10(-17)s(-1) associated with deformation partitioning into weaker microcline layer and shear band widening. The quartz mechanical data allowed us to set some constrains for coeval dissolution-precipitation of microcline which at our estimated pressure-temperature conditions suggests creep at 17-26MPa differential stress and 1.8x10(-15)s(-1) strain rate. Stage III is characterized by localized slip along white mica bands accommodated by dislocation creep at strain rate 1.8x10(-14)s(-1) and stress 5.75MPa. Our mechanical data point to dynamic evolution of the studied brittle-ductile transition characterized by major weakening to strengths >10MPa. Such nonsteady state evolution may be common in crustal shear zones especially when phase transformations are involved.
机译:已通过详细的微结构研究评估了南阿莫里肯剪力区中S-C / C织物的形成,重点研究了C / C织物剪切带的萌生和早期演化。我们的观察结果表明,S-C / C织物在不同的温度条件下形成,表明S织物> 550摄氏度,C / C织物剪切带在100-400 MPa时为300-350摄氏度。剪切带内不断演变的微观结构记录了与变形和化学过程之间的正反馈有关的变形机制的转换,并对大陆相变断层域中脆性-韧性转变的演化施加了机械约束。已经确定了剪切带演化的三个阶段。第一阶段对应于通过形成微裂纹来引发剪切带,可能会产生高达250MPa的压差。第二阶段与亚晶粒旋转重结晶和石英的位错蠕变以及微线的同时期溶解-沉淀蠕变有关。重结晶的石英晶粒尺寸不断增加,应力和应变率从94MPa降低到17-26MPa和与变形划分为较弱的1.8x10(-1)s(-1)-9x10(-17)s(-1)相关微线层和剪切带加宽。石英的力学数据使我们能够为微线的同时溶解沉淀设定一些约束条件,这些约束条件在我们估计的压力-温度条件下表明蠕变在17-26MPa差应力和1.8x10(-15)s(-1)应变率下发生。第三阶段的特征是沿着白云母带的局部滑动,由位错蠕变以应变速率1.8x10(-14)s(-1)和应力5.75MPa适应。我们的机械数据表明,所研究的脆-延性转变的动态演变特征是强度显着降低至> 10MPa。这种非稳态演化在地壳剪切带中可能很常见,尤其是在涉及相变时。

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