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爆炸荷载作用下钢管混凝土柱非线性分析

作者: 浏览数: 关键词: 荷载 混凝土 钢管 爆炸 分析

摘要:基于统一强度理论,推导了钢管混凝土柱的塑性极限弯矩和均布荷载作用下简支梁的极限位移。考虑爆炸反应过程中钢管混凝土柱质量和刚度改变产生的非线性影响,采用等效单自由度模型和逐步积分法,分析了爆炸荷载作用下钢管混凝土柱的动态响应。将理论计算结果与相关文献计算结果进行对比,验证了理论计算方法的正确性。研究结果表明:随着套箍系数的增大,塑性极限弯矩及极限位移增大;随着侧压系数的增大,塑性极限弯矩增大;考虑钢管对受压区混凝土抗压强度的提高比不考虑时塑性极限弯矩提高了12%~19%;提出的计算方法满足钢管混凝土柱抗爆分析的精度要求,可为钢管混凝土柱的抗爆设计和防护提供参考。

关键词:爆炸荷载;钢管混凝土柱;统一强度理论;塑性极限弯矩;等效单自由度模型;逐步积分法

中图分类号:TU398.1文献标志码:A

Abstract: The plastic ultimate moment of concretefilled steel tubular and the ultimate displacement of the simply supported beam under uniformly distributed load were derived based on unified strength theory. Considering nonlinear impact of mass and stiffness changed in the process of the reaction, the dynamic responses of concretefilled steel tubular columns under blast load were analyzed by the equivalent single degree of freedom model and step by step integration method. The results of this method were compared with relevant literatures and the accuracy of the method was verified. The study results show that the plastic ultimate moment and the ultimate displacement increase along with the increase of hoop coefficient; the plastic ultimate moment also increases along with the increase of lateral pressure coefficient; the plastic ultimate moment considering the improvement of the compressive strength of concrete increases 12%19% than that without considering the improvement. The proposed method is satisfied for the requirement of the analytical precision, and can be referred for the research and the safety of concretefilled steel tubular columns under blast load.

Key words: blast load; concretefilled steel tubular column; unified strength theory; plastic ultimate moment; equivalent single degree of freedom model; step by step integration method

0引言

近年来,爆炸恐怖活动的泛滥和易燃易爆气体引起的爆炸给社会生产和人民生命财产安全带来了严重的威胁。钢管混凝土柱作为建筑结构的主要承重构件,一旦发生破坏可能导致建筑结构整体坍塌,造成严重后果。因此,研究爆炸荷载作用下钢管混凝土柱的动态响应对建筑物的安全防护具有重要意义。采用等效单自由度模型对结构构件进行抗爆分析是实际工程中较为有效的理论分析方法[1],其中,Biggs利用能量守恒原理提出的等效单自由度计算方法可近似计算基本结构构件在爆炸荷载作用下的动力反应,计算结果较符合实际,在实际工程中得到了广泛的应用[25]。

本文基于统一强度理论,推导圆钢管混凝土柱的塑性极限弯矩和均布荷载作用下简支梁的极限位移。考虑爆炸反应过程中钢管混凝土柱质量和刚度改变产生的非线性影响,采用等效单自由度模型和逐步积分法,迭代求解爆炸荷载作用下钢管混凝土柱的最大位移。比较最大位移与极限位移的关系,判断钢管混凝土柱是否发生破坏,为爆炸荷载作用下钢管混凝土柱的抗爆研究提供参考。

1均布荷载下的塑性极限弯矩及破坏位移对于均布荷载作用下的圆钢管混凝土柱,假定[6]:①截面应变保持平面;②受压区由钢管和混凝土共同承受;③纤维屈服时,忽略拉区混凝土的抗拉强度;④不考虑材料的应变率效应。

5结语

(1)本文采用统一强度理论求解钢管混凝土柱的塑性极限弯矩,考虑了钢管对受压区混凝土抗压强度的提高作用;采用逐步积分法求解钢管混凝土柱的动态响应,考虑了反应过程中钢管混凝土柱质量和刚度改变产生的非线性影响。结果表明,本文方法具有较好的计算精度,且适用于任何材料特性的非线性形式。

(2)随着钢管对混凝土约束作用的提高,塑性极限弯矩随之增大,极限位移也随之增大;考虑钢管对受压区混凝土抗压强度的提高比不考虑时塑性极限弯矩提高了12%~19%。

(3)采用本文方法,可以判定在固定爆炸荷载作用下钢管混凝土柱是否发生破坏。参考文献:

References:[1]孙建运,李国强,陆勇.爆炸冲击荷载作用下SRC柱等效单自由度模型[J].振动与冲击,2007,26(6):8289,185.

SUN Jianyun,LI Guoqiang,LU Yong.Equivalent Single Degree of Freedom Model of SCR Columns Under Blast Loading[J].Journal of Vibration and Shock,2007,26(6):8289,185.

[2]GANTES C J,PNEVMATIKOS N G.Elasticplastic Response Spectra for Exponential Blast Loading[J].International Journal of Impact Engineering,2004,30(3):323343.

[3]LI Q M,MENG H.Pressureimpulse Diagram for Blast Loads Based on Dimensional Analysis and Singledegreeoffreedom Model[J].Journal of Engineering Mechanics,2002,128(1):8792.

[4]LI Q M,MENG H.Pulse Loading Shape Effects on Pressureimpulse Diagram of an Elasticplastic,Singledegreeoffreedom Structural Model[J].International Journal of Mechanical Sciences,2002,44(9):19851998.

[5]史恒通,聂向东.单自由度系统在爆炸荷载作用下的弹塑性动力时程分析方法及应用[J].工业建筑,2010,40(增):201206,273.

SHI Hengtong,NIE Xiangdong.Method and Application of Elasticplastic Dynamic Time History Analysis for Single Degree of Freedom Systems Subjected to Blast Loading[J].Industrial Construction,2010,40(S):201206,273.

[6]钟善桐.钢管混凝土结构[M].北京:清华大学出版社,2003.

ZHONG Shantong.Concrete Filled Steel Tubular Structures[M].Beijing:Tsinghua University Press,2003.

[7]YU M H.Unified Strength Theory and Its Applications[M].Berlin:Springer,2004.

[8]蔡绍怀.现代钢管混凝土结构[M].北京:人民交通出版社,2003.

CAI Shaohuai.Modern Concrete Filled Steel Tube Structures[M].Beijing:China Communications Press,2003.

[9]孙建运.爆炸冲击荷载作用下钢骨混凝土柱性能研究[D].上海:同济大学,2006.

SUN Jianyun.Research on the Characteristics of SRC Columns Subjected to Blast Loading[D].Shanghai:Tongji University,2006.

[10]俞海洪,周世光.单自由度抗爆结构的非线性动力响应分析[J].医药工程设计,2013,34(3):4347.

YU Haihong,ZHOU Shiguang.Analysis of Nonlinear Dynamics Response in Single Freedom Blast Resistance Structure[J].Pharmaceutical & Engineering Design,2013,34(3):4347.

[11]薛建英,刘玉存,刘天生.钢管混凝土结构构件抗爆性能的试验研究[J].中北大学学报:自然科学版,2011,32(6):786790.

XUE Jianying,LIU Yucun,LIU Tiansheng.Experimental Study on Antiknock Performance of Concrete Filled Steel Tube[J].Journal of North University of China:Natural Science Edition,2011,32(6):786790.

[12]ASCE.Design of Blast Resistant Buildings in Petrochemical Facilities[M].New York:ASCE,1997.

[13]克拉夫 R W,彭津 J.结构动力学[M].王光远,译.北京:科学出版社,1983.

CLOUGH R W,PENZIEN J.Structural Dynamics[M].Translated by WANG Guangyuan.Beijing:Science Press,1983.

[14]吴鹏,赵均海,李艳,等.方钢管混凝土短柱轴压极限承载力研究[J].四川建筑科学研究,2013,39(3):813.

WU Peng,ZHAO Junhai,LI Yan,et al.Study on the Axial Ultimate Bearing Capacity of Square Concretefilled Steel Tubular Stub Columns[J].Sichuan Building Science,2013,39(3):813.

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