首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Spontaneous generation of ductile shear zones by thermal softening: Localization criterion, 1D to 3D modelling and application to the lithosphere
【24h】

Spontaneous generation of ductile shear zones by thermal softening: Localization criterion, 1D to 3D modelling and application to the lithosphere

机译:通过热软化的自发产生延性剪切区:本地化标准,1D到3D模拟和应用于岩石圈

获取原文
获取原文并翻译 | 示例
           

摘要

The generation of ductile shear zones is essential for the formation of tectonic plate boundaries, such as subduction or strike-slip zones. However, the primary mechanism of ductile strain localization is still contentious. We study here the spontaneous generation of ductile shear zones by thermal softening using thermo-mechanical numerical simulations for linear and power-law viscous flow in one-dimension (1D), 2D and 3D. All models are velocity-driven. The ID model exhibits bulk simple shear whereas the 2D and 3D models exhibit bulk pure shear. The initial conditions include a small temperature perturbation in otherwise homogeneous material. We use a series of 1D simulations to determine a new analytical formula which predicts the temperature evolution inside the shear zone. This temperature prediction requires knowledge of only the boundary velocity, flow law and thermal parameters, but no a priori information about the shear zone itself, such as thickness, stress and strain rate. The prediction is valid for 1D, 2D and 3D shear zones in bulk pure and simple shear. The results show that shear heating dominates over conductive cooling if the relative temperature increase is > 50 degrees C. The temperature variation induced by the shear zone is nearly one order of magnitude wider than the corresponding finite strain variation so that no significant temperature variation occurs between shear zone and wall rock. Applying typical flow laws for lithospheric rocks shows that shear zone generation by thermal softening occurs for typical plate tectonic velocities of few cm.yr(-1) or strain rates between 10(-16) and 10(-14) s(-1). Shear stresses larger than 200 MPa can already cause strain localization. The results indicate that thermal softening is a feasible mechanism for spontaneous ductile shear zone generation in the lithosphere and may be one of the primary mechanisms of lithospheric strain localization. (C) 2019 Elsevier B.V. All rights reserved.
机译:延性剪切区的产生对于构造板边界的形成是必不可少的,例如俯冲或滑动区域。然而,延性应变局部化的主要机制仍然有争议。在此研究在这里通过使用热电系统模拟进行热软化的延展性剪切区的自发产生,用于一维(1D),2D和3D的线性和动力法粘性流动。所有型号都是速度驱动的。 ID模型展示散装简单剪切,而2D和3D模型表现出散装纯剪切。初始条件包括均匀材料中的小温度扰动。我们使用一系列1D模拟来确定新的分析配方,该配方预测剪切区内的温度演变。该温度预测只需要对边界速度,流量法和热参数知识,而是没有关于剪切区域本身的先验信息,例如厚度,应力和应变率。预测适用于散装纯和简单的剪切中的1D,2D和3D剪切区域。结果表明,如果相对温度升高为50℃,则剪切加热在导电冷却上占据导电冷却。由剪切区引起的温度变化比相应的有限应变变化宽几乎是一个数量级,使得在不存在显着的温度变化剪切区和壁岩。应用岩石岩的典型流动规律表明,由于10(-16)和10(-14)(-1)(-1)的典型板构造速度,典型的板构造速度为典型板构造速度而发生剪切区。 。大于200MPa的剪切应力可能已经引起应变局部化。结果表明,热软化是岩石圈中自发延性剪切区产生的可行机制,并且可以是岩石界局部局部化的主要机制之一。 (c)2019 Elsevier B.v.保留所有权利。

著录项

相似文献

  • 外文文献
  • 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