Slip History, Tectonic Evolution, and Fault Zone Structure Along the Southern Alpine Fault, New Zealand

IF 2.9 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Geochemistry Geophysics Geosystems Pub Date : 2024-11-22 DOI:10.1029/2024GC011839
A. M. Mere, N. C. Barth, J. J. Schwartz, A. Kylander-Clark
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Abstract

The study of active fault zones is fundamental to understanding both long-term tectonics and short-term earthquake behavior. Here, we integrate lidar-enabled geomorphic-geologic mapping and petrochronological analysis to reveal the slip-history, tectonic evolution, and structure of the southern Alpine Fault in New Zealand. New petrographic, zircon U-Pb and zircon trace-element data from fault-displaced basement units provides constraint on ∼70–90 km of right-lateral displacement on the presently active strand of the southern Alpine Fault, which we infer is of Plio-Quaternary age. This incremental displacement has accumulated while the offshore part of the fault has evolved within a distributed zone of plate boundary deformation. We hypothesize that pre-existing faults in the continental crust of the Pacific Plate have been exploited as components of this distributed plate boundary system. Along the onshore southern Alpine Fault, detailed mapping of active fault traces reveals complexity in geomorphic fault expression. Our analysis suggests that the major geomorphic features of the southern Alpine Fault correspond to penetrative fault zone structures. We emphasize the region immediately south of the central-southern section boundary, where a major extensional stepover and restraining bend are located along-strike of each other. We infer that this geometry may reflect segmentation of the Alpine Fault between two distinct fault segments. The ends of these proposed segments meet near where several Holocene earthquake ruptures have terminated. Our new constraints on the evolution and structure of the southern Alpine Fault help contribute to improved characterization of the greatest onshore source of earthquake hazard in New Zealand.

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新西兰南阿尔卑斯断层沿线的滑动历史、构造演化和断层带结构
对活动断层带的研究是了解长期构造和短期地震行为的基础。在这里,我们将激光雷达支持的地貌地质测绘与岩石年代学分析相结合,揭示了新西兰阿尔卑斯断层南部的滑动历史、构造演化和结构。来自断层位移基底单元的新岩相学、锆石 U-Pb 和锆石痕量元素数据为目前活跃的阿尔卑斯山断层南段上 70-90 千米的右侧位移提供了约束条件,我们推断该位移为上第四纪时代。当断层的近海部分在板块边界变形的分布区内演化时,这种增量位移已经累积起来。我们推测,太平洋板块大陆地壳中原已存在的断层已被利用,成为这一分布式板块边界系统的组成部分。沿着陆上南部阿尔卑斯断层,对活动断层痕迹的详细测绘揭示了断层地貌表达的复杂性。我们的分析表明,阿尔卑斯断层南部的主要地貌特征与穿透性断层带结构相对应。我们强调的是紧靠中段-南段边界以南的区域,在这一区域,一个主要的伸展阶梯和约束弯曲位于彼此的沿走向上。我们推断,这种几何形状可能反映了阿尔卑斯断层在两个不同断层段之间的分段。这两段断层的末端在几条全新世地震断裂的终点附近交汇。我们对阿尔卑斯山断层南部的演变和结构所做的新推断有助于更好地描述新西兰最大的陆上地震危险源。
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来源期刊
Geochemistry Geophysics Geosystems
Geochemistry Geophysics Geosystems 地学-地球化学与地球物理
CiteScore
5.90
自引率
11.40%
发文量
252
审稿时长
1 months
期刊介绍: Geochemistry, Geophysics, Geosystems (G3) publishes research papers on Earth and planetary processes with a focus on understanding the Earth as a system. Observational, experimental, and theoretical investigations of the solid Earth, hydrosphere, atmosphere, biosphere, and solar system at all spatial and temporal scales are welcome. Articles should be of broad interest, and interdisciplinary approaches are encouraged. Areas of interest for this peer-reviewed journal include, but are not limited to: The physics and chemistry of the Earth, including its structure, composition, physical properties, dynamics, and evolution Principles and applications of geochemical proxies to studies of Earth history The physical properties, composition, and temporal evolution of the Earth''s major reservoirs and the coupling between them The dynamics of geochemical and biogeochemical cycles at all spatial and temporal scales Physical and cosmochemical constraints on the composition, origin, and evolution of the Earth and other terrestrial planets The chemistry and physics of solar system materials that are relevant to the formation, evolution, and current state of the Earth and the planets Advances in modeling, observation, and experimentation that are of widespread interest in the geosciences.
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