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Neotectonics of Java, Indonesia: Crustal Deformation in the Overriding Plate of an Orthogonal Subduction System.

机译:印度尼西亚爪哇的新构造:正交俯冲系统上覆板块中的地壳变形。

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摘要

Shallow earthquakes in the upper part of the overriding plate of subduction zones can be devastating due to their proximity to population centers despite the smaller rupture extents than commonly occur on subduction megathrusts that produce the largest earthquakes. Damaging effects can be greater in volcanic arcs like Java because ground shaking is amplified by surficial deposits of uncompacted volcaniclastic sediments. Identifying the upper-plate structures and their potential hazards is key for minimizing the dangers they pose. In particular, the knowledge of the regional stress field and deformation pattern in this region will help us to better understand how subduction and collision affects deformation in this part of the overriding plate. The majority of the upper plate deformation studies have been focused on the deformation in the main thrusts of the fore-arc region. Study of deformation within volcanic arc is limited despite the associated earthquake hazards. In this study, I use maps of active upper-plate structures, earthquake moment tensor data and stress orientation deduced from volcano morphology analysis to characterize the strain field of Java arc. In addition, I use sandbox analog modeling to evaluate the mechanical factors that may be important in controlling deformation. My field- and remotely-based mapping of active faults and folds, supplemented by results from my paleoseismic studies and physical models of the system, suggest that Java's deformation is distributed over broad areas along small-scale structures. Java is segmented into three main zones based on their distinctive structural patterns and stress orientation. East Java is characterized by NW-SE normal and strike-slip faults, Central Java has E-W folds and thrust faults, and NE-SW strike-slip faults dominate West Java. The sandbox analog models indicate that the strain in response to collision is partitioned into thrusting and strike-slip faulting, with the dominance of margin-normal thrust faulting. My models test the effects of convergence obliquity, geometry, preexisting weaknesses, asperities, and lateral strength contrast. The result suggest that slight variations in convergence obliquity do not affect the deformation pattern significantly, while the margin shape, lateral strength contrast, and perturbation of deformation from asperities each have a greater impact on deformation.
机译:俯冲带上覆板上部的浅地震由于靠近人口中心而具有毁灭性,尽管其破裂程度小于发生最大地震的俯冲巨推力发生的程度。在Java之类的火山弧中,破坏作用可能更大,因为未压实的火山碎屑沉积物的表面沉积会加剧地面震动。识别上板结构及其潜在危险是将其构成的危险降至最低的关键。特别是,了解该区域的区域应力场和变形模式将有助于我们更好地了解俯冲和碰撞如何影响上覆板这一部分的变形。大多数上板变形研究集中在前弧区主推力的变形上。尽管存在相关的地震危险,但对火山弧内变形的研究仍然有限。在这项研究中,我使用活动的上板结构图,地震矩张量数据和从火山形态分析得出的应力方向来描述Java弧的应变场。此外,我使用沙盒模拟建模来评估可能对控制变形很重要的机械因素。我的活动断层和褶皱基于现场和远程的映射,再加上我的古地震研究和系统物理模型的结果,表明Java的变形分布在沿小规模结构的广阔区域。根据Java独特的结构模式和应力方向,它分为三个主要区域。东爪哇的特征是北西向正常和走滑断层,中爪哇具有E-W褶皱和逆冲断层,而NE-SW的走滑断层主导西爪哇。沙盒模拟模型表明,响应碰撞的应变被划分为冲断和走滑断层,其中以边缘法向冲断层为主。我的模型测试了倾斜度,几何形状,先前存在的弱点,凹凸不平和横向强度对比的影响。结果表明,收敛倾角的细微变化不会显着影响变形模式,而边缘形状,侧向强度对比和由凹凸引起的变形扰动对变形的影响更大。

著录项

  • 作者

    Marliyani, Gayatri Indah.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Geology.;Geological engineering.;Geomorphology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 391 p.
  • 总页数 391
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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