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CAREER: Decoding the Enigmas of U.S. Seismic Hazard Via Multi-Scale, Multi-Physics Approaches to Paleoliquefaction Analysis

CAREER: Decoding the Enigmas of U.S. Seismic Hazard Via Multi-Scale, Multi-Physics Approaches to Paleoliquefaction Analysis
职业:通过多尺度、多物理方法进行古液化分析,破解美国地震灾害之谜
批准号:
1751216
负责人:
Brett Maurer
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-01 至 2024-08-31

项目摘要

项目成果

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中文摘要
翻译
这个教师早期职业发展计划(CAREER)项目将有助于减少美国地震灾害的不确定性的知识,从而促进科学进步和国家的繁荣和福利。 在全国范围内,有许多地区的地震灾害特别不确定,因为地震的重现期比历史记录长。 换句话说,我们知道地震已经发生并将继续发生,但由于先前的地震早于人类记录和/或地震仪器的出现,未来地震的预期特征是高度不确定的。 在这些地区,由过去的地震引起的土壤液化,被称为“古液化”,可能提供唯一的证据,从中可以确定有关地震灾害的信息,包括地震震级,地点和复发率。 因此,美国的建筑规范受到古液化证据的严重影响,反过来,公共安全也是如此。 该奖项支持基础研究,以改善古液化的分析,目前遭受的限制,可能导致高度错误的结果。 这些发现不仅将推进古液化分析,而且还将有助于了解液化危害,从而进一步减少地震对建筑和自然环境的影响。 此外,一个教育研究部分将调查地震风险认知与社会心理偏见之间的联系,从而建立更有效的自然灾害工程教育平台。这个CAREER项目旨在消除普遍存在的障碍,以准确的古液化反分析,这将是通过弥合基础知识的差距,在三个不同的尺度。 研究内容包括:(1)控制流化岩脉和砂沸形成和形态的力学的微观尺度物理-数值研究;(2)耦合的、力学一致的液化触发和表现模型的中尺度公式化;以及(3)从古液化中概率性地地理定位震源并评估其破裂幅度的宏观尺度方法。 从基础研究开发的分析框架,然后将应用于古液化证据的神秘的地震灾害显着影响社会的地区。 其中包括美国西北部的卡斯卡迪亚俯冲带;美国中部新马德里地震带;美国东部的南卡罗来纳州沿海平原;和沿海新英格兰在美国东北部的物理和数值多尺度建模,现场测试和前所未有的案例历史数据的帮助下,这项研究将推进古液化分析和液化危害的一般理解,该奖项反映了NSF的法定使命,并通过使用基金会的智力价值进行评估,更广泛的影响审查标准。
英文摘要
This Faculty Early Career Development Program (CAREER) project will contribute knowledge that reduces the uncertainty of seismic hazards in the United States, thereby promoting scientific progress and the nation's prosperity and welfare. Nationally, there are many regions in which seismic hazards are especially uncertain because the return periods of earthquakes are longer than the historic record. In other words, it is known that earthquakes have and will continue to occur, but because prior earthquakes predate human records and/or the advent of seismic instruments, the expected characteristics of future earthquakes are highly uncertain. In these locales, soil liquefaction caused by past earthquakes, termed "paleoliquefaction," may provide the only evidence from which information about the seismic-hazard can be determined, including earthquake magnitudes, locations, and recurrence-rates. As a result, U.S. building codes are heavily influenced by paleoliquefaction evidence, and in turn, so too is public safety. This award supports fundamental research to improve the analysis of paleoliquefaction, which at present suffers from limitations that can lead to highly erroneous results. The findings will not only advance paleoliquefaction analytics, but will also benefit the understanding of liquefaction hazards in general, thus further reducing earthquake impacts on the built and natural environments. In addition, an educational research component will investigate links between seismic risk perception and socio-psychological bias, leading to more effective educational platforms in natural hazards engineering. This CAREER project aims to remove ubiquitous barriers to the accurate inverse-analysis of paleoliquefaction, which will be achieved by bridging fundamental knowledge-gaps at three distinct scales. The research includes: (1) micro-scale physical-numerical investigation of the mechanics controlling the formation and morphology of fluidized dikes and sand boils; (2) meso-scale formulation of a coupled, mechanically-consistent liquefaction triggering and manifestation model; and (3) a macro-scale approach to probabilistically geolocate seismic sources from paleoliquefaction and assess their rupture magnitudes. An analytical framework developed from the fundamental research will then be applied to paleoliquefaction evidence in regions where enigmatic seismic-hazards significantly impact society. These include the Cascadia Subduction Zone of the Northwest U.S.; the New Madrid Seismic Zone of the Central U.S.; the South Carolina Coastal Plain of the Eastern U.S.; and Coastal New England in the Northeast U.S. Aided by physical and numerical multi-scale modeling, field testing, and unprecedented case-history data, this research will advance both paleoliquefaction analytics and the understanding of liquefaction hazards in general, thus reducing future earthquake impacts.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(18)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.enggeo.2021.106221
发表时间: 2021-06
期刊: Engineering Geology
影响因子: 7.4
作者: [M. Geyin;B. Maurer]
通讯作者: M. Geyin;B. Maurer
DOI: 10.1177/87552930231174244
发表时间: 2023-05
期刊: Earthquake Spectra
影响因子: 5
作者: [Ryan A Rasanen;M. Geyin;B. Maurer]
通讯作者: Ryan A Rasanen;M. Geyin;B. Maurer
RapidLiq: Software for Near-Real-Time Prediction of Soil Liquefaction
RapidLiq:近实时预测土壤液化的软件
DOI: 10.17603/ds2-4bka-y039
发表时间: 2021
期刊: Designsafe-CI
影响因子: --
作者: [Geyin, Mertcan, Maurer, Brett]
通讯作者: Maurer, Brett
Probabilistic seismic source inversion of the 1886 Charleston, South Carolina, earthquake from macroseismic evidence: A major updating
根据宏观地震证据对 1886 年南卡罗来纳州查尔斯顿地震进行概率震源反演:重大更新
DOI: 10.1016/j.enggeo.2022.106958
发表时间: 2023
期刊: Engineering Geology
影响因子: 7.4
作者: [Rasanen, Ryan A., Maurer, Brett W.]
通讯作者: Maurer, Brett W.
共 18 条
    NSF East Asia and Pacific Summer Institute for FY 2012 in New Zealand
    • 批准号:
      1209494
    • 项目类别:
      Fellowship Award
    • 资助金额:
      $0.61万
    • 财政年份:
      2012
    • 负责人:
      Brett Maurer
    • 依托单位:
    海外基金