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 >Plate boundary localization, slip-rates and rupture segmentation of the Queen Charlotte Fault based on submarine tectonic geomorphology
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Plate boundary localization, slip-rates and rupture segmentation of the Queen Charlotte Fault based on submarine tectonic geomorphology

机译:基于潜艇构造地貌的女王夏洛特故障的板材边界定位,滑移率和破裂分割

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Linking fault behavior over many earthquake cycles to individual earthquake behavior is a primary goal in tectonic geomorphology, particularly across an entire plate boundary. Here, we examine the 1150-km-long, right-lateral Queen Charlotte-Fairweather fault system using comprehensive multibeam bathymetry data acquired along the Queen Charlotte Fault (QCF) offshore southeastern Alaska and western British Columbia. Fine-scale analysis of tectonic geomorphology allowed us to identify and reconstruct 184 strike-slip piercing points over a 630 km stretch of the QCF. Age constraints from glacial recession and offshore sedimentation patterns yield a consistent slip-rate of similar to 50-57 mm/yr since similar to 17-12 ka, the fastest rate for a continent-ocean strike-slip fault on Earth. These slip-rates equal or exceed estimates of Pacific-North America (PA-NA) relative motion from global plate reconstructions, indicating that PA-NA motion is highly localized. The QCF cuts the seafloor along a narrow and unusually straight trace for its entire length and multiple fault traces are observed only at local step-overs. The geometry and behavior of the QCF over many earthquake cycles is simple and typical of mature faults with relatively homogeneous stress fields. Since the QCF is the primary PA-NA plate boundary, we used the trace of the QCF to define the small circle path for relative plate motion and computed the associated Euler pole. Predicted along-strike obliquity variations based on the new pole agree with observed tectonic geomorphology and suggest that previous global plate reconstructions overestimated the degree of oblique convergence along the QCF. We also find that subtle, long-wavelength (75-150 km) bends and discrete step-overs appear to define the endpoints of M>7 earthquakes, suggesting that obliquity and resultant fault geometry may control rupture segmentation and asperity development. Lastly, the agreement between predicted obliquity and tectonic geomorphology along the entire length of QCF compelled a reevaluation of regional tectonic models. In the north, the eastern Yakatat Terrane appears to be translating northwest with the Pacific plate, and slip transferred from the QCF to the Fairweather Fault results in similar to 20 mm/yr of convergence along the southern St. Elias mountains. In the south, we predict a reduced rate of convergence along the QCF west of Haida Gwaii (similar to 5-6 mm/yr of shortening, on average) relative to previous studies. Our results support a model for transpression and strike-slip partitioning along the edge of a hot and weak Pacific Plate, leading to crustal thickening and growth of the Queen Charlotte Terrace to the west of Haida Gwaii. Published by Elsevier B.V.
机译:在许多地震周期来个别地震行为链接故障行为是在构造地貌一个主要目标,尤其是在整个板的边界。在这里,我们研究使用沿着夏洛特皇后故障(QCF)中获得了全面的多波束测深数据阿拉斯加近海东南部和西部不列颠哥伦比亚省的1150公里长,右旋夏洛特皇后 - 嘉航断层系统。构造地貌精细尺度分析使我们能够在QCF的630公里长的识别和重建184走滑贯通点。冰川经济衰退和近海沉积模式年龄限制产生类似于50-57毫米/年的一致的滑动速率,因为相似的17-12万年,地球上的大陆,海洋走滑断层最快的速度。这些滑移率等于或超过太平洋 - 北美(PA-NA)从全球板块重建的相对运动的估计,表明PA-NA运动是高度本地化。的QCF切割沿窄且直的异常跟踪海底对于其整个长度和多个断层迹仅在局部步骤接管观察。在许多地震周期几何形状和QCF的行为是简单和典型具有相对均匀的应力场成熟故障。由于QCF是主要的PA-NA板块边界,我们使用了QCF的轨迹,以限定用于相对于板运动的小圆圈路径和计算出的相关联的欧拉极。根据新的极预测沿走向倾角变化赞同观察构造地貌和建议,以往的全球板块重建高估沿QCF斜向汇聚的程度。我们还发现,微妙的,长波长(75-150公里)的弯曲和离散的步骤悬停出现来定义M> 7级的地震的端点,这表明倾角和所得断层几何可以控制破裂分割和凹凸发展。最后,沿QCF的整个长度预测倾角和构造地貌之间的协议被迫区域构造模型进行重新评估。在北部,东部Yakatat岩层似乎翻译与西北太平洋板块,并从QCF到20毫米/沿南部的圣山上埃利亚斯收敛年滑转移到费尔韦瑟故障导致类似。在南方,我们预测沿着相对于以前的研究夏洛特皇后群岛的西QCF(类似于5-6毫米/缩短的年平均)收敛率降低。我们的研究结果支持transpression和走滑分区沿着热和弱太平洋板块边缘的模型,从而导致地壳增厚和夏洛特皇后露台的增长夏洛特皇后群岛以西。由elsevier b.v出版。

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