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全库铺设沥青混凝土面板水库的抗震设计(英文) 被引量:2

ASEISMIC DESIGN OF RESERVOIR FACED WHOLLY WITH ASPHALT CONCRETE
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摘要 介绍在建中日本最大规模的全库铺设沥青混凝土面板水库的抗震设计。基于水库所处的地形、地质及堤体填筑条件,首先对水库整体进行三维有限元动力分析,从总体上掌握水库的地震反应特性;然后对变形较大的断面进行详细的二维动力分析,获得面板的最大动应变。同时,通过大量室内试验,确定满足施工要求的沥青混凝土配合比及其物理力学特性。根据面板的材料特性及其构造特点,提出二级抗震设防的极限状态设计法,并对该水库面板的抗震性能进行校核。 The aseismic design of the reservoir faced wholly with asphalt concrete under construction is addressed, which is the largest one in Japan for this type of reservoir. Due to the complex geomorphologic features and geological structures of the site as well as the complicated construction processes of embankments, general response characteristics of the entire reservoir were firstly investigated by 3D dynamic analyses, and then the maximum strains of the asphalt concrete facing for typical cross-sections of the reservoir with potentially great deformation were determined by detailed 2D dynamic analyses. The results show as follows: (1) both acceleration and strain are with a similar distribution character independent on the direction of the seismic excitation, concentrating in the high banking areas of the main dam, the left-side bank, and from the subsidiary dam to the right-side bank; (2) maximum values of acceleration and strain occur in the main dam although they slightly vary with the excitation direction of the seismic motion:(3) a 2D analytical result is slightly greater than that of a 3D analytical result; and (4) maximum strains of the facing for Levels 1 and 2 seismic waves considering the regional factors of this reservoir site are 0.019% and 0.030%, respectively. At the same time, a series of material tests of asphalt concrete mixtures, including mix design and mechanical behavior, are carded out to obtain an appropriate mix proportion. According to the results of numerical analyses and material tests, the seismic safety of the facing was evaluated by using the proposed limit state design method based on the concept of two-level seismic motions and the characteristics of facing structure. The evaluating result indicated that the facing satisfies the safety criterion during Levels 1 and 2 seismic motions at the reservoir site.
出处 《岩石力学与工程学报》 EI CAS CSCD 北大核心 2006年第8期1550-1562,共13页 Chinese Journal of Rock Mechanics and Engineering
关键词 水库工程 沥青混凝土面板 堆石料 地震 动力特性 极限状态设计 reservoir engineering asphalt concrete facing rockfill earthquake dynamic behaviors limit state design
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参考文献12

  • 1赵剑明,常亚屏,陈宁.强震区高混凝土面板堆石坝地震残余变形与动力稳定分析[J].岩石力学与工程学报,2004,23(z1):4547-4552. 被引量:14
  • 2党发宁,胡再强,谢定义.深厚覆盖层上高土石坝的动力稳定分析[J].岩石力学与工程学报,2005,24(12):2041-2047. 被引量:17
  • 3Lysmer J, Udaka T, Tsai C F, et al. FLUSH--a computer program for approximate 3D analysis of soil-structure interaction problems. Rep.No. EERC75/30[R]. Berkeley: University of California, 1976.
  • 4Sawada Y, Takahashi T, Sakurai A, et al. The distribution characteristics of material properties and the dynamic behaviors of rockfill. Research Report No. 378008[R]. Tokyo: Central Research Institute of Electric Power Industry, 1978.
  • 5Kanai K, Hirano K, Yoshizawa S, et al. Observation of strong earthquake motions in the Matushiro area: part 1[J]. Bulletin of Earthquake Research Institute, 1966, 44:1 269 - 1 296.
  • 6Tamura C, Okamoto S, Mizukoshi T, et al. Maximum acceleration of earthquake motion at rock ground[J]. Bulletin ERS, 1984, 17.. 63 -80.
  • 7Annaka T, Yamatani A, Momobayashi N, et al. Discussion about the formula to estimate the maximum acceleration at the foundation with the earthquake observation records in Kanto and its surrounding regions[A]. In:Proceedings of the 19th Conference for Earthquake Engineering[C]. Tokyo: Japan Society of Civil Engineers, 1987. 129 - 132.
  • 8Irikura K. Prediction of strong acceleration motions using empirical Green's function[A]. In:the 7th Japan Earthquake Symposium[C].Tokyo: Japan Society of Civil Engineers, 1986. 151 - 156.
  • 9Monismith C L, Creegan P J. Asphalt-concrete Water Barriers for Embankment Dams[M]. New York:ASCE Press, 1996.
  • 10Japan Road Association: Manual for Asphalt Pavement[M]. Maruzen:[s. n. ], 1995.56 - 58.

二级参考文献16

  • 1杨荣.瀑布沟高土石坝三维非线性分析[J].应用基础与工程科学学报,1995,3(3):38-45. 被引量:17
  • 2汪闻韶 金崇磐 王克成.土石坝的抗震计算和模型试验及原型观测.水利学报,1987,(12).
  • 3[4]中国水利水电科学研究院.积石峡水电站工程混凝土面板堆石坝坝料动力特性试验研究[R].北京:中国水利水电科学研究院,2004
  • 4[6]Serff N, Seed H B, Makdisi F I, et al. Earthquake induced deformations of earth dams(EERC/76-4)[R]. Earthquake Engineering Research Center, UniversityofCalifomia, Berkeley, 1976
  • 5[7]Taniguchi E, Whiteman R V, Marr W A. Prediction of earthquakeinduced deformation ofearthdams[J]. Soils and Foundations, 1983,23(4): 50~58
  • 6张丙印 于玉贞 张建民.高土石坝的若干关键技术问题[A]..见:中国土木工程学会第九届土力学及岩土工程学术会议论文集[C].北京:清华大学出版社,2003.163-186.
  • 7黄文熙.高土石坝科研工作中的几个问题[J].水利水电技术,1982,14(4):1-10.
  • 8党发宁 鞠花 谢定义.对饱和土动力固结方程的再认识[A]..见:第六届全国土动力学学术会议论文集[C].北京:中国建筑工业出版社,2002.741-745.
  • 9党发宁 鞠花.粘土心墙土石坝震后破坏的机理分析[A]..见:中国岩石力学与工程学会第七次学术会议论文集[C].北京:中国科学技术出版社,2002.283-286.
  • 10谢定义.土动力学[M].西安:西安交通大学出版社,1990..

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