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Tectonic synthesis of the Olympic Mountains segment of the Cascadia wedge, using two-dimensional thermal and kinematic modeling of thermochronological ages

机译:Cascadia楔形奥林匹克山脉的构造合成,采用热影学时的二维热和运动造型

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摘要

A fully coupled two-dimensional kinematic and thermal model of a steady state accretionary wedge, constrained by an extensive data set of fission track and (U-Th)/He ages for apatite and zircon, is here used to investigate the development of the Olympic Mountains segment of the Cascadia accretionary wedge. The model has two main free parameters: ε_(max), the maximum rate of erosion for a generic erosion function operating at the top of the wedge, and α, the distribution of sedimentary accretion into the wedge. The best fit values for ε_(max) and α and their confidence limits are determined through an iterative search of parameter space. This study represents the first time that such inversion methods have been used to quantify the thermal-kinematic evolution of an accretionary wedge. Our results suggest that horizontal transport plays an important role in the exhumation trajectories experienced by material passing through the Cascadia wedge. At a 95% confidence interval, 80 to 100% of the sedimentary sequence from the subducting Juan de Fuca Plate has been accreted at the front of the wedge offshore of the Olympics over the past 14 m.y. This frontally accreted material must then traverse the entire width of the wedge prior to its eventual exposure in the Olympic forearc high. Assessed in this two-dimensional framework, the fission track and (U-Th)/He age data sets from the Olympic Mountains are all best fit by ε_(max) of 0.9–1.0 mm yr^(−1), despite variation in the timescales relevant to the three chronometers. This result supports the hypothesis that the Olympic Mountains segment of the Cascadia accretionary wedge has been in a flux steady-state since ∼14 Ma. The demonstration of a flux balance across the Cascadia margin also suggests that margin-parallel transport has not had a significant role in driving uplift of the Olympic Mountains.
机译:此处使用一个完整的二维稳态运动增生楔形运动学和热学模型,该模型受广泛的裂变径迹数据集以及磷灰石和锆石的(U-Th)/ He年龄数据约束,用于研究奥林匹克运动的发展卡斯卡迪亚增生楔的山脉部分。该模型有两个主要的自由参数:ε_(max),即在楔形体顶部运行的一般侵蚀函数的最大侵蚀速率,以及α,沉积物在楔形体中的分布。通过迭代搜索参数空间来确定ε_(max)和α的最佳拟合值及其置信度极限。这项研究是首次将这种反演方法用于量化增生楔的热运动演化。我们的研究结果表明,水平运输在通过卡斯卡迪亚楔形物的挖掘过程中扮演着重要的角色。以95%的置信区间,过去14个月以来,俯冲的胡安·德·富卡板块沉积序列的80%至100%已在奥运会海上楔形岩的前部增生。然后,这种最终积聚的材料必须穿过楔子的整个宽度,然后才能最终暴露在奥林匹克前高中。在此二维框架中进行评估,尽管变化很大,但来自奥林匹克山的裂变径迹和(U-Th)/ He年龄数据集的最佳ε_(max)为0.9–1.0 mm yr ^(-1)。与三个天文钟有关的时标。这一结果支持了这样的假设,即卡斯卡迪亚增生楔的奥林匹克山段自〜14 Ma以来一直处于通量稳态。整个卡斯卡迪亚边缘的通量平衡的证明也表明,平行边缘运输在推动奥林匹克山的抬升中没有重要作用。

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