p建筑结构的倒塌安全统一针对性的风险抗震设计毕业论文外文翻译.doc
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1、【精品文档】如有侵权,请联系网站删除,仅供学习与交流p建筑结构的倒塌安全统一针对性的风险抗震设计 毕业论文外文翻译.精品文档.外文文献翻译 英文Uniform-risk-targeted seismic design for collapse safety of building structuresSHI Wei, LU XinZheng & YE LiePing*Key Laboratory of Civil Engineering Safety and Durability of Education Ministry, Department of Civil Engineering, T
2、singhua University, Beijing 100084, ChinaReceived June 8 , 2011; accepted January 6, 2012; published online March 28, 2012SeismicAbstract :Seismic design should quantitatively evaluate and control the risk of earthquake-induced collapse that a building structure may experience during its design serv
3、ice life. This requires taking into consideration both the collapse resistant capacity of the building and the earthquake ground motion demand. The fundamental concept of uniform-risk-targeted seismic design and its relevant assessment process are presented in this paper. The risks of earthquake-ind
4、uced collapse for buildings located in three seismic regions with the same prescribed seismic fortification intensity but different actual seismic hazards are analyzed to illustrate the engineering significance of uniform-risk-targeted seismic design. The results show that with Chinas current seismi
5、c design method, the risk of earthquake-induced collapse of buildings varies greatly from site to site. Additional research is needed to further develop and implement the uniform-risk-targeted seismic design approach proposed in this paper. Keywords building structure, collapse safety, collapse resi
6、stant capacity, seismic hazard, uniform-risk-targeted seismic designCitation: Shi W, Lu X Z, Ye L P. Uniform-risk-targeted seismic design for collapse safety of building structures. Sci China Tech Sci, 2012, 55: 1481-1488, doi: 10.1007/s11431-012-4808-71 IntroductionInvestigations on earthquake dama
7、ge show that the collapse of building structures is the primary source of casualties and property losses during and after a severe earthquake. Therefore, ensuring the collapse safety of building structures is a critical objective of earthquake engineering 1, 2. In recent years, collapse fragility an
8、alysis (CFA) 35 based on incremental dynamic analysis (IDA) 6 has been widely used due to its excellent capacity in quantitatively evaluating resistance to earthquake-induced collapse. Through combining the results of a collapse fragility analysis with information on the seismic hazard of the site w
9、here the building is located, the risk of earthquake-induced collapse of the investigated building during its entire design service life can be quantitatively evaluated and controlled. This is the fundamental concept of uniform-risk-targeted seismic design 7, 8. The risk of earthquake-induced collap
10、se is measured by the total probability that the building may collapse due to earthquakes in Y years (e.g., 50 years). The objective of uniform-risk-targeted seismic design is to ensure that all buildings throughout a nation should have a uniform acceptable level of risk of earthquake-induced collap
11、se, although they may be located in different seismic regions with different seismic hazards.Seismic design of building structures in China is performed according to the seismic zonation map of China. As a simplified expression of the seismic hazard, the seismic zonation map identifies the seismic f
12、ortification intensity for each seismic region as well as the corresponding ground motion values for design purposes. The current Chinese seismic zonation map is defined on the basis of earthquakes with a 10% probability of being exceeded in 50 years (referred to as the fortification-level earthquak
13、e) 9, 10, while the collapse-prevention-level ground motion values are extrapolated from the fortification-level values 9, 10. Although current Chinese seismic design based on the fortification-level earthquake already takes into account the safety requirements to prevent the earthquake-induced coll
14、apse, it sometimes fails to comprehensively account for the variation in seismic hazard due to the complex nature of earthquake mechanisms. Specifically, it is likely that in some regions, the extrapolated collapse-prevention-level ground motion values cannot satisfy the exceedance probability of 2%
15、 in 50 years as required in the Chinese Code for Seismic Design of Buildings 9. Consequently, buildings in some regions that are designed in accordance with the code 9 may have a high risk of earthquake-induced collapse. Furthermore, even if the ground motion values for collapseprevention-level eart
16、hquakes were accurately defined using a seismic hazard analysis, the collapse risk of building structures still would not be geographically uniform throughout the nation because the hazard of a mega-earthquake (i.e., an earthquake more intensive than the collapse-prevention-level earthquake) 1 is di
17、fferent for different regions.Before 1997, the seismic zonation of the United States was mapped based on the earthquakes with an exceedance probability of 10% in 50 years. Since 1997, the maximum considered earthquake (MCE), corresponding to an exceedance probability of 2% in 50 years, has been defi
18、ned as the baseline for the seismic zonation of the United States. Recently, some adjustments have been applied to MCE ground motions to achieve a uniform collapse risk of 1% collapse probability in 50 years 7. The development of the current seismic zonation map of the United States provides a good
19、model for future seismic zonation mapping of China.This paper first presents the basic concept of IDA-based collapse fragility analysis. Second, three cities with the same seismic fortification intensity but different seismic hazards are selected for analysis. The collapse risks of a given reinforce
20、d concrete (RC) frame structure located in each of the three cities are predicted and compared. The result shows that though the three cities have the same seismic fortification intensity, the collapse risks of the same building in the three cities are quite different. Additional research is require
21、d to develop the uniform-risk-targetedseismic design approach proposed in this paper.2 Collapse fragility analysis based on IDA2.1 Basic processCollapse fragility analysis 35 based on IDA 6 involves the following four steps: (a) subjecting a structural model to a set of Ntotal earthquake ground moti
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