CAREER: Identification, Modeling and Computational Simulations of Soil and Soil-Structure Using Earthquake Records and Experimental Data
CAREER: Identification, Modeling and Computational Simulations of Soil and Soil-Structure Using Earthquake Records and Experimental Data
批准号:
9984754
负责人:
Mourad Zeghal
金额:
$22.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-09-01 至 2006-08-31
中文摘要
9984754- ZeghalThis教师早期职业发展(CAREER)研究和教育项目使用实验数据,地震记录和计算模拟开发和校准极端动态载荷和故障条件下的岩土工程和基础建筑系统的分析模型,例如在强烈地震震动期间经历的。 土木工程本科生和研究生课程的教育部分介绍了以下内容:数据分析工具,建模技术(从简单的模型到复杂的计算机模拟),以及物理和分析模型开发的案例研究。在极端动态载荷和破坏条件下,大规模岩土工程和基础建筑系统的分析和建模很少可以使用全尺寸实验进行。 事实上,这种系统的破坏性实验的成本通常是禁止的,除了是不切实际的。 因此,大变形的响应机制和系统特性可以从以下一个或多个方面推断出来:对小土样的实验室调查,比例模型实验,以及对极端环境荷载条件的响应记录。这些来源中的每一个都在不同的载荷和系统条件范围内提供了有价值的信息,但在某些情况下,结果是不一致的。 该研究项目使用实验场和实验室数据,以及在大地震期间记录的数据:(1)评估大变形和破坏时的动态响应机制,并阐明相关的阻尼机制,(2)开发改进和校准的计算模型,以及(3)提出新的实验策略,最大限度地提高模型校准分析的结果。这将提供计算模拟的模型,阐明了一些突出的岩土系统的响应机制,并提供建议的数据收集和有效的建模和模拟分析的实验指导方针。教育计划将数据分析工具,建模技术和计算机模拟引入本科和研究生课程,为学生提供以下方面的实践经验:(1)分析足尺和模型试验的实验数据,以及土木系统对环境荷载的响应记录,(2)建立和验证模型(从简化到复杂),和(3)开发和分析计算机模拟。学生们可以获得一套多学科的现场和实验室实验数据,以及在大地震期间记录的数据。课程发展结合了研究和教育,并通过使用工作室教室的方法建立了一个互动的学习环境。 (Sudio教室整合了讲座,实验室和复习课,从而提供了一个适当的基于发现的学习环境。 该项目将有助于开发一种综合方法来教学物理建模和计算模拟的范例。
英文摘要
9984754- ZeghalThis Faculty Early Career Development (CAREER) research and education project uses experimental data, earthquake records, and computational simulations to develop and calibrate analytical models of geotechnical and foundation-building systems under conditions of extreme dynamic loading and failure, such as is experienced during strong earthquake shaking. The educational component introduces into the civil engineering undergraduate and graduate curriculum the following: data analysis tools, modeling techniques (ranging from simple models to complex computer simulations), and case studies of physical and analytical model development.The analysis and modeling of massive geotechnical and foundation-building systems under extreme dynamic loading and failure conditions can rarely be conducted using full-scale experiments. Indeed, the cost of destructive experiments of such systems is usually prohibitive, in addition to being impractical. Response mechanisms and system properties for large deformations are therefore inferred from one or more of the following: laboratory investigations on small soil samples, scaled model experiments, and records of the response to extreme environmental loading conditions. Each one of these sources has provided valuable information over a distinct range of loading and system conditions, but in some instances the results are inconsistent. This research project uses experimental field and laboratory data, and data recorded during major earthquakes to: (1) evaluate the dynamic response mechanisms at large deformation and failure and to elucidate the associated damping mechanisms, (2) develop improved and calibrated computational models, and (3) propose new experimentation strategies that maximize the outcome of model calibration analyses. This will provide models for computational simulations, elucidate a number of salient response mechanisms of geotechnical systems, and provide recommend guidelines for data gathering and experimentation for effective modeling and simulation analyses. The educational plan introduces data analysis tools, modeling techniques, and computer simulations into the undergraduate and graduate programs, giving students hands-on experience in: (1) analyzing experimental data of full scale and model tests, as well as records of the response of civil systems to environmental loading, (2) building and validating models (ranging from simplified to complex), and (3) developing and analyzing computer simulations. The students have access to a multidisciplinary set of field and laboratory experimental data, and data recorded during major earthquakes. The curriculum development integrates research and education, and sets up an interactive learning environment through the use of the studio classroom approach. (Sudio classrooms integrate lecture, laboratory and recitation sessions, and thus provide an appropriate discovery-based learning environment.) This project will contribute to the development of a paradigm for an integrated approach to the teaching of physical modeling and computational simulations.
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会议论文
Collaborative Research: Validation of Constitutive and Numerical Modeling Techniques for Soil Liquefaction Analysis
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批准号:1635040
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项目类别:Standard Grant
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资助金额:$48.31万
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财政年份:2016
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负责人:Mourad Zeghal
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依托单位:
NEESR Planning/Collaborative Research: Liquefaction Experiments and Analysis Projects (LEAP) for Validation
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批准号:1344619
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项目类别:Standard Grant
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资助金额:$13.55万
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财政年份:2013
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负责人:Mourad Zeghal
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依托单位:
NEESR-II: Advanced Site Monitoring and Effective Characterization of Site Nonlinear Dynamic Properties and Model Calibration
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批准号:0830325
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项目类别:Standard Grant
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资助金额:$37.46万
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财政年份:2008
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负责人:Mourad Zeghal
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依托单位:
Toward Model-Based Simulation of Earthquake-Induced Soil Liquefaction Effects
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批准号:0084591
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项目类别:Standard Grant
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资助金额:$14.87万
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财政年份:2000
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负责人:Mourad Zeghal
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依托单位:
国内基金
海外基金
Identification and quantification of primary phytoplankton functional types in the global oceans from hyperspectral ocean color remote sensing
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批准号:--
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项目类别:--
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资助金额:160万元
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批准年份:2022
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负责人:李忠平
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依托单位: