首页> 外文期刊>Journal of structural geology >Dilatant plasticity in high-strain experiments on calcite-muscovite aggregates
【24h】

Dilatant plasticity in high-strain experiments on calcite-muscovite aggregates

机译:方解石-白云母聚集体高应变实验中的可塑性

获取原文
获取原文并翻译 | 示例
       

摘要

Torsion experiments were performed on synthetic aggregates of calcite with a 50% volume of muscovite. The tests were performed at 627-727 ℃ with a confining pressure of 300 MPa at constant shear strain rates of 3 × 10~(-5)-3 × 10~(-4) s~(-1) on cylindrical samples with the starting foliation parallel and perpendicular to the cylinder axis. Both the foliation parallel and the foliation perpendicular experiments show similar stress-strain patterns, with an initial hardening stage followed by significant strain weakening (>60%) before a catastrophic rupture. Microstructural analysis shows that in low-strain experiments calcite grains are intensely twinned while muscovite grains appear slightly bent and kinked. Higher strains promote a segregation of the two phases with calcite forming thin layers of fine, dynamically recrystallized grains, which act as localized shear bands, while muscovite grains keep their original size and rotate assuming a strong shape preferred orientation. This strain localization of the calcite from an initially homogeneous rock produced catastrophic failure at moderate bulk shear strains (γ ~ 3). Localization of the strain first involved ductile deformation to produce a new calcite layering with fine dynamically recrystallized grains along which cavities nucleated. The orientation and kinematics of the cavities are comparable to R1 Riedel structures. All experiments on calcite-muscovite mixtures resulted in heterogeneous strain. In these torsion experiments chemical changes and crystallization of new phases (anorthite and kalsilite) are observed at 627 ℃. Whereas, samples hot pressed or deformed in compression at 670 ℃ did not show such reactions or any localization. The effect of stress-field geometry and pore pressure upon mineral reactions is discussed. It is concluded that deformation-induced heterogeneous phase distributions caused local strength differences initiating strain localization in the calcite-muscovite mixtures, eventually leading to plastic failure.
机译:在方解石与50%体积白云母的合成聚集体上进行扭转实验。试验是在627-727℃,围压为300 MPa,恒定剪切应变率为3×10〜(-5)-3×10〜(-4)s〜(-1)的条件下对圆柱形试样进行的。平行于并垂直于圆柱轴的起始叶片。平行叶面实验和垂直叶面实验均显示出相似的应力应变模式,即在硬化性破坏之前,先经历了硬化阶段,随后是明显的应变减弱(> 60%)。显微组织分析表明,在低应变实验中,方解石晶粒强烈孪晶,而白云母晶粒略微弯曲和扭结。较高的应变促进两相偏析,方解石形成细小的动态再结晶晶粒的薄层,这些晶粒充当局部剪切带,而白云母晶粒则保持其原始尺寸并在强烈的形状优选取向下旋转。在最初的均质岩石中方解石的这种应变局部化在中等体积剪切应变(γ〜3)下产生了灾难性的破坏。应变的局部化首先涉及延性变形,以产生具有精细动态再结晶晶粒的新方解石层,沿该空腔再成核。腔的方向和运动学与R1 Riedel结构相当。方解石-白云母混合物的所有实验均导致异质应变。在这些扭转实验中,在627℃观察到化学变化和新相(钙长石和钙铝石)的结晶。而在670℃下热压或压缩变形的样品则未显示此类反应或任何局部化。讨论了应力场几何形状和孔隙压力对矿物反应的影响。结论是,变形引起的异相分布引起方解石-白云母混合物中的局部强度差异,从而引起应变局部化,最终导致塑性破坏。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号