首页> 外文学位 >Reliability assessment of roof sheathing performance for typical north american roofs subjected to wind pressure.
【24h】

Reliability assessment of roof sheathing performance for typical north american roofs subjected to wind pressure.

机译:承受风压的典型北美屋顶的屋顶护套性能可靠性评估。

获取原文
获取原文并翻译 | 示例

摘要

Low-rise buildings encompass the majority of residential structures in the United States. Predominantly, this category of structures is constructed with dimension lumber. Investigations after natural disasters report that during high intensity wind pressures, low-rise buildings with wood-frame construction are at immense risk of damage with the first sign of damage initiated at the roof. Developing a comprehensive understanding of low-rise structures' behavior when exposed to wind loads is essential for maintaining public safety and preserving structural integrity during high winds. This study develops a better understanding of wind load distribution on the roofs of classified low-rise structures and presents a methodology for reliability assessment of roof sheathing performance for typical North American roofs in light wood frame structures subjected to wind pressures.;The first part of the study focuses on analyzing wind pressure distribution on the roof surface of a typical North American structure. Experimental data is obtained from a full-scale facility located at the University of New Brunswick, Fredericton, Canada. Two dimensional surface fitting is used to fit higher order curves to predict pressure variation across the roof of classified low-rise structures. Later, pressure coefficients are computed from the predicted pressure time histories and are then fitted with probability density functions (PDF). The developed pressure coefficients can be used for any location for which wind speed data is available in order to compute the roof wind loads.;The second part of the study consists of developing a methodology for reliability assessment of typical North American roofs and building shapes. This methodology can be used as a tool to predict and evaluate the performance of low-rise structures during high wind events. Stochastic finite element models of selected roof types are constructed for analytical Monte Carlo simulations. Probabilistic analyses are used to assess the effects of uncertainties which can have various possible sources. Employing probabilistic analysis allows us to account for the effects of uncertainties that influence the outcome of an analysis based on a set of input variables. Random input variables for this project include the nail withdrawal capacity, number and location of missing nails on roof panels due to workmanship, wind induced pressure coefficients, and wind speed and direction. Statistical distributions are used to describe and quantify the uncertain input variables.;Next the probability of roof failure is computed for a selected construction quality. Roof failure is defined by exceeding a maximum limiting displacement based on a construction quality. It should be noted that the computed probabilities of failure are based on the global geometric parameters selected for this study. The applicability of the developed methodology is evaluated by employing the presented methodology to predict the probability of roof failure for an inventory of low-rise structures subjected to wind speeds reported during Hurricane Andrew. Finally, the predicted probabilities of failure are compared with the probabilities of roof failure reported after Hurricane Andrew. Higher predicted probabilities of failure are obtained with the developed reliability assessment methodology. In the stochastic finite element simulations, all the structures are exposed to the maximum observed peak gust speed, whereas not all the structures in the region experienced the maximum reported wind speed during Hurricane Andrew; therefore, lower probabilities of failure are recorded for Hurricane Andrew.;Similarly, the developed reliability assessment methodology is utilized to compare the probability of roof sheathing failure for the computed pressure coefficients for the full-scale experimental structure and the ASCE/SEI7-10 pressure coefficients. ASCE/SEI7-10 pressure coefficients resulted in lower probabilities of failure than the experimental pressure coefficients.;The presented reliability assessment methodology can be used as a tool by Federal Emergency Management Agency 'FEMA' or insurance companies to evaluate/ predict the performance of low-rise structures during high wind events for a set of predefined random input variables such as fastener capacity, fastener workmanship, and wind pressure coefficients, velocity and direction. FEMA utilizes standardized methodologies for mitigation and cost analysis estimates for losses after disasters such as hurricanes, earthquakes, and floods.
机译:低层建筑物涵盖了美国的大多数住宅结构。这类结构主要是用尺寸木材建造的。自然灾害后的调查报告称,在高强度风压下,具有木结构建筑的低层建筑物极有遭受破坏的风险,屋顶出现破坏的第一个迹象。对暴露于风荷载下的低层结构的行为有一个全面的了解,对于维护公共安全和在大风时保持结构完整性至关重要。这项研究可以更好地理解分类的低层结构屋顶上的风荷载分布,并提出了一种评估北美轻型木框架结构中典型屋顶在风压下屋顶护套性能可靠性的方法。这项研究的重点是分析典型北美结构屋顶表面的风压分布。实验数据是从位于加拿大弗雷德里克顿的新不伦瑞克大学的一家大型工厂获得的。二维曲面拟合用于拟合高阶曲线,以预测经过分类的低层结构屋顶的压力变化。随后,从预测的压力时间历史记录中计算压力系数,然后将其与概率密度函数(PDF)拟合。开发的压力系数可用于可获得风速数据的任何位置,以计算屋顶的风荷载。研究的第二部分包括开发一种用于评估典型北美屋顶和建筑物形状的可靠性的方法。这种方法可以用作预测和评估高风事件期间低层结构性能的工具。构建了所选车顶类型的随机有限元模型,用于分析蒙特卡洛模拟。概率分析用于评估不确定因素的影响,不确定因素的来源可能多种多样。使用概率分析使我们能够基于一组输入变量来考虑不确定性的影响,这些不确定性会影响分析的结果。该项目的随机输入变量包括拔钉能力,由于工艺原因导致的钉子丢失和数量在屋顶面板上的位置,风致压力系数以及风速和风向。统计分布用于描述和量化不确定的输入变量。接下来,针对选定的建筑质量计算屋顶破坏的可能性。屋顶破坏是根据建筑质量超过最大极限位移来定义的。应当指出,计算出的失效概率是基于为这项研究选择的整体几何参数。通过使用提出的方法来评估在飓风安德鲁期间遭受风速影响的低层结构清单中屋顶失效的可能性,可以评估所开发方法的适用性。最后,将预测的故障概率与安德鲁飓风过后报告的屋顶故障概率进行了比较。通过开发的可靠性评估方法可以获得更高的预测故障概率。在随机有限元模拟中,所有结构都暴露于观测到的最大阵风速度,而并非该地区的所有结构在安德鲁飓风期间都经历了报告的最大风速。因此,对于安德鲁飓风,记录的较低的失效概率。同样,利用已开发的可靠性评估方法,可以比较针对全尺寸实验结构和ASCE / SEI7-10压力所计算出的压力系数,屋面护套失效的概率系数。 ASCE / SEI7-10压力系数导致的失效概率低于实验压力系数。;所提出的可靠性评估方法可以被联邦紧急事务管理局(FEMA)或保险公司用作评估/预测低压性能的工具。一组预定义的随机输入变量(例如紧固件的容量,紧固件的工艺以及风压系数,速度和方向)时,在大风事件中的高层建筑物。 FEMA利用标准化的方法来缓解和评估飓风,地震和洪水等灾害后的损失。

著录项

  • 作者

    Amini, Maral M.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 279 p.
  • 总页数 279
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号