Basin Structure for Earthquake Ground Motion Estimates in Urban Los Angeles Mapped with Nodal Receiver Functions

IF 2.4 Q2 GEOSCIENCES, MULTIDISCIPLINARY Geosciences (Switzerland) Pub Date : 2023-10-24 DOI:10.3390/geosciences13110320
Ritu Ghose, Patricia Persaud, Robert W. Clayton
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引用次数: 1

Abstract

We constrained sedimentary basin structure using a nodal seismic array consisting of ten dense lines that overlie multiple basins in the northern Los Angeles area. The dense array consists of 758 seismic nodes, spaced ~250–300 m apart along linear transects, that recorded ground motions for 30–35 days. We applied the receiver function (RF) technique to 16 teleseismic events to investigate basin structure. Primary basin-converted phases were identified in the RFs. A shear wave velocity model produced in a separate study using the same dataset was incorporated to convert the basin time arrivals to depth. The deepest part of the San Bernardino basin was identified near the Loma Linda fault at a depth of 2.4 km. Basin depths identified at pierce points for separate events reveal lateral changes in basin depth across distances of ~2–3 km near individual stations. A significant change in basin depth was identified within a small distance of ~4 km near the San Jacinto fault. The San Gabriel basin exhibited the largest basin depths of all three basins, with a maximum depth of 4.2 km. The high lateral resolution from the dense array helped to reveal more continuous structures and reduce uncertainties in the RFs interpretation. We discovered a more complex basin structure than previously identified. Our findings show that the basins’ core areas are not the deepest, and significant changes in basin depth were observed near some faults, including the San Jacinto fault, Fontana fault, Red Hill fault and Indian Hill fault.
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用节点接收函数映射洛杉矶城市地震地震动估计的盆地结构
我们使用由覆盖在洛杉矶北部多个盆地上的10条密集线组成的节点地震阵列来约束沉积盆地结构。该密集阵列由758个地震节点组成,沿线性样条间隔约250-300 m,记录了30-35天的地面运动。利用接收函数(RF)技术对16个远震事件进行了盆地结构研究。在RFs中确定了主要的盆地转换相。在使用相同数据集的另一项研究中产生的横波速度模型被结合起来,将盆地时间到达转换为深度。圣贝纳迪诺盆地最深的部分位于洛玛林达断层附近,深度为2.4公里。在单独事件的穿刺点上确定的盆地深度揭示了在个别站点附近2-3公里距离上盆地深度的横向变化。在圣哈辛托断裂带附近约4 km的小范围内发现了盆地深度的显著变化。圣盖博盆地是三个盆地中深度最大的盆地,最大深度为4.2 km。密集阵列的高横向分辨率有助于揭示更连续的结构,减少rf解释中的不确定性。我们发现了一个比以前确定的更复杂的盆地结构。研究结果表明,盆地核心区并非最深,在圣哈辛托断裂、丰塔纳断裂、红山断裂和印度山断裂等断裂附近,盆地深度变化明显。
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来源期刊
Geosciences (Switzerland)
Geosciences (Switzerland) Earth and Planetary Sciences-Earth and Planetary Sciences (all)
CiteScore
5.30
自引率
7.40%
发文量
395
审稿时长
11 weeks
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