CAREER: Glass/Polymeric Material Systems in Civil Infrastructure
CAREER: Glass/Polymeric Material Systems in Civil Infrastructure
批准号:
0239068
负责人:
Katerina Papoulia
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-02-15 至 2008-01-31
中文摘要
玻璃窗对建筑物居住者的生活质量很重要,但当爆炸荷载将窗户震碎时,窗户会对居住者构成危险。这对建筑安全来说是一个越来越重要的问题。此外,玻璃是除了窗户之外的一种有吸引力的结构材料,因为它具有独特的美学吸引力。该研究项目涉及无机(硅酸盐)和有机(聚合物)玻璃断裂和损伤的创新模型的开发,以及由玻璃和弹性体交替层合窗组成的夹层窗。主要关注的是速率依赖性和碎片大小和速度的准确预测。这些模型还将考虑实际问题,如框架和安装系统以及实际负载。需要解决的主要科学障碍是更好的速率依赖粘弹性和塑性模型,更有效和准确地使用内聚界面模型来明确建模动态裂纹扩展,以及新的均匀化程序,这些程序将在更粗的计算上更可行的网格上捕获非常精细的网格内聚有限元模拟结果。这些障碍都提出了有趣的技术问题;例如,在内聚接口模型的情况下,即使是元素大小的有效范围的基本问题目前也没有完全理解,并且将在本研究工作中加以阐明。计算模型将由工业和学术合作者通过实验室实验进行验证。研究中的一个重要主题是弥合各种时间尺度:考虑到的最快现象,即动态裂纹通过一个过程区长度的传播,发生在比表面损伤积累所需的时间间隔短约18个数量级的时间间隔内。因此,将特别注意能够对许多不同的时间尺度和频率做出准确预测的模型,以及可以避免需要非常小的步骤的均匀化技术。拟议的职业规划的教育方面包括发展本科生的工业经验,重组本科和研究生课程,以包括更多的材料强度,特别是非弹性强度的现代覆盖,创建一个新的高级结构系统本科课程,以涵盖非线性材料建模,并创建一个计算固体力学研究生研讨会,与拟议的研究直接联系。对于这些课程中的大多数,将开发基于工业实践的新案例研究以及为课堂使用量身定制的新计算机代码。该研究计划的成果包括能够更好地有效预测安全建筑中窗户安全性的计算模型和方法,更好地评估自然荷载(如阵风和小颗粒损坏)下的耐久性的模型,以及对断裂力学和加载率影响的新见解。该教育计划的成果将是,学生们对不同长度和时间尺度的材料(特别是非弹性和非线性)建模的目的和方法有更好的理解,新的面向教育的有限元代码在各种课堂设置中都很有用,并为K-12学生提供新的教学模块。
英文摘要
Glass windows are important for quality of life of a building's occupants, but windows can pose a hazard for the occupants when a blast load shatters them. This is a matter of increasing significance for building security. In addition, glass is an attractive structural material in settings other than windows because of its unique aesthetic appeal. This research project deals with the development of innovative models for fracture and damage to inorganic (silicate) and organic(Polymeric) glass, and to laminated windows composed of alternating layers of glass and elastomer. Chief concerns are rate dependence and accurate prediction of fragment size and velocity. The models will also account for practical issues like framing and mounting systems and realistic loads. The main scientific hurdles to be resolved are better models for rate-dependent viscoelasticity and plasticity, more efficient and accurate use of cohesive interface models for explicit modeling of dynamic crack growth, and new homogenization procedures that will capture the results of a very fine-grid cohesive finite element simulation on a coarser more computationally feasible mesh. Each of these hurdles poses interesting technical questions; for example, in the case of cohesive interface models, even the basic matter of valid ranges for the size of the elements is currently incompletely understood and will be elucidated in this research effort. The computational models will be verified using laboratory experiments by industrial and academic collaborators.An important theme in the research is bridging the various time scales: the fastest phenomenonunder consideration, namely the propagation of a dynamic cracks through one process-zone length, takes place over an interval that is about 18 orders of magnitude shorter than the interval required for surface damage to accumulate. Therefore, special attention will be paid to models that are able to make accurate predictions for many different time-scales and frequencies, and to homogenization techniques that can obviate the need for very small steps.The educational aspect of the proposed CAREER plan involves the development of industrialexperience for undergraduates, restructuring of an undergraduate and graduate course to include more modern coverage of strength of materials especially inelasticity, creation of a new undergraduate course on advanced structural systems to cover nonlinear material modeling, and creation of a graduate seminar on computational solid mechanics with direct links to the proposed research. For most of these courses, new case studies based on industrial practice and also new computer codes tailored for classroom use will be developed. Outcomes of the proposed research plan include computational models and methods better able to efficiently predict the safety of windows in a secure building, better models for assessing durability under naturally occurring loads like wind gusts and damage from small particles, and new insight into fracture mechanics and the effect of loading rate. Outcomes of tthe educational plan will be students with a better appreciation for the purposes and methods of modeling of materials (particularly inelastic and nonlinear) at different length and time scales, new educationally oriented finite element codes useful in a variety of classroom settings, and new instructional modules for outreach to K-12 students.
期刊论文(0)
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科研奖励(0)
会议论文
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