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材料导报  2018, Vol. 32 Issue (18): 3146-3153    https://doi.org/10.11896/j.issn.1005-023X.2018.18.009
  无机非金属及其复合材料 |
基于随机骨料模型的EPS混凝土粒子尺寸效应分析
胡俊, 王杰, 李兆瑞, 吴德义
安徽建筑大学土木工程学院,合肥 230601
Analysis of the Particle Size Effect of EPS Concrete Based on Random Aggregate Model
HU Jun, WANG Jie, LI Zhaorui, WU Deyi
School of Civil Engineering,Anhui Jianzhu University, Hefei 230601
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摘要 建立基于随机分布的EPS混凝土细观力学模型,对EPS混凝土的受压损伤破坏过程进行数值模拟,分析EPS混凝土的损伤破坏过程。研究表明,EPS混凝土的损伤破坏有两种形态,即延性破坏和脆性破坏。延性破坏与EPS颗粒的面积占有率、断裂过程区长度有关;脆性破坏与EPS颗粒的面积占有率、粒径大小以及颗粒间距有关。在EPS颗粒面积占有率较低的情况下,EPS混凝土的粒子尺寸效应对混凝土力学性能的影响较明显,在较高面积占有率的情况下,粒子尺寸效应对其影响较小。随着EPS颗粒面积占有率的增加,EPS混凝土损伤破坏由脆性破坏向延性破坏转变。建立基于损伤力学与断裂力学的粒子尺寸效应数学模型,用数值模拟进行验证,发现两者吻合较好。
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胡俊
王杰
李兆瑞
吴德义
关键词:  EPS混凝土  随机骨料  粒子尺寸效应  断裂过程区  几何特征长度    
Abstract: Micro-mechanics model of EPS concrete based on random distribution was built, compression and damage process of EPS concrete was simulated numerically to analyze the compression and damage process of EPS concrete. The results showed that the damage of EPS concrete had two failure forms include ductile failure and brittle failure. Ductile failure was related to area occupancy ratio and the fracture process zone length of EPS concrete. Meanwhile, brittle failure was related to area occupancy ratio, particle size and the spacing between particles of EPS concrete. The size-effect of EPS concrete had obvious effect on stress-strain of concrete when the area occupancy ratio of EPS concrete was low. However, the size-effect of EPS concrete had little effect on stress-strain of concrete when the area occupancy ratio of EPS concrete was high. The damage of EPS concrete turns from brittle failure to ductile failure along with the increase of the area occupancy ratio of EPS concrete. The mathematical model of particle size effect based on damage mechanics and fracture mechanics was built, and then validated by numerical simulation, which indicates that good agreement was obtained.
Key words:  EPS concrete    random aggregate    particle size effect    fracture process zone    geometric feature length
                    发布日期:  2018-10-18
ZTFLH:  TU528.0  
基金资助: 安徽省教育厅高校自然科学研究重点项目(KJ2017A486);国家自然科学基金(51478002;51674005)
作者简介:  胡俊:1973年生,博士,副教授,主要从事建筑材料研究 E-mail:jhu0805@163.com
引用本文:    
胡俊, 王杰, 李兆瑞, 吴德义. 基于随机骨料模型的EPS混凝土粒子尺寸效应分析[J]. 材料导报, 2018, 32(18): 3146-3153.
HU Jun, WANG Jie, LI Zhaorui, WU Deyi. Analysis of the Particle Size Effect of EPS Concrete Based on Random Aggregate Model. Materials Reports, 2018, 32(18): 3146-3153.
链接本文:  
http://www.mater-rep.com/CN/10.11896/j.issn.1005-023X.2018.18.009  或          http://www.mater-rep.com/CN/Y2018/V32/I18/3146
1 Bazant Z,Pfeiffer P A.Determination of fracture energy from size effect and brittleness number[J].ACI Materials Journal,1987,84(6):463.
2 Bazant Z P, Oh B H. Strain rate effect in rapid triaxial loading of concrete[J]. Journal of the Engineering Mechanics Division,1982,108(5):764.
3 Bazant Z P, Tabbara M R. Random particle models for fracture of aggregate or fiber composites[J]. Journal of Engineering Mechanics,1990,116(8):1686.
4 Weibull W. A statistical distributions function of wide applicability[J]. Journal of Applied Mechanics,1951,13(2):293.
5 Hillerborg A, Modeer M, Peterson P E. Analysis of crack formation and crack growth in concrete by means of fracture mechanics and finite elements[J]. Cement and Concrete Research,1976,6(6):773.
6 Du Min, Jin Liu, Li Dong, et al. Experimental study of the influence of coarse aggregate size on the size effect of concrete flexural strength[J]. Journal of Beijing University of Technology,2016,42(6):912(in Chinese).
杜敏,金浏,李冬,等.粗骨料粒径对混凝土弯拉强度尺寸效应影响的试验研究[J].北京工业大学学报,2016,42(6):912.
7 Su Jie,Fang Zhi.Scale effect on cubic compressive strength of ordinary concrete and high-strength concrete[J]. Journal of Building Materials,2013,16(6):1078(in Chinese).
苏捷,方志.普通混凝土与高强混凝土抗压强度的尺寸效应[J].建筑材料学报,2013,16(6):1078.
8 Liu Zengchen,Jiang Li,Cheng Wanwan, et al. The dimensional effect of compressive strength and splitting tensile strength of high strength concrete[J]. Science Technology and Engineering,2015,15(30):209(in Chinese).
刘增晨,蒋利,成莞莞,等.高强混凝土抗压抗拉强度的尺寸效应[J].科学技术与工程,2015,15(30):209.
9 Zhang Weiping,Wang Hao,Gu Xianglin.Effects of orandomly distribued aggretagates onthermal properties of concrete[J]. Journal of Building Materials,2017,20(2):168(in Chinese).
张伟平,王浩,顾祥林.粗骨料随机分布对混凝土导热性能的影响[J].建筑材料学报,2017,20(2):168.
10 Mills N J, Stampfli R,Marone F, et al. Finite element micromecha-nics model of impact compression of closed-cell polymer foams[J]. International Journal of Solids and Structures,2009,46(3-4):677.
11 Peng Ruidong, Ling Tianlong,Yang Yongming, et al. Research on the numerical simulation of complex porous materials based on ANSYS[J]. Highlights of Sciencepaper Online,2010,3(15):1584(in Chinese).
彭瑞东,凌天龙,杨永明,等.基于ANSYS的复杂多孔材料数值模拟方法研究[J].中国科技论文在线精品论文,2010,3(15):1584.
12 Guo Zhenhai, Zhang Xiuqin, et al. Experimental investigation of the complete stress-strain curve of concrete[J]. Journal of Building Structures,1982,1(1):1(in Chinese).
过镇海,张秀琴,等.混凝土应力-应变全曲线试验研究[J].建筑结构学报,1982,1(1):1.
13 Bazant Z. Size effect in blunt fracture: Concrete,rock,metal[J]. Journal of Mechanical Engineering-Home,1984,110(4):518.
14 Pijaudier-Cabot G, Bazant Z. Nonlocal damage theory[J]. Journal of Mechanical Engineering-Home,1987,113(10):1512.
15 Bazant Z P,Novak D.Probabilistic nonlocal theory for quasibrittle fracture initiation and size effect[J].Journal of Engineering Mecha-nics,2000,126(2):166.
16 De Larrard F,Tondat P. Sur la contribution de latopologie du squelettegranulaire a la resistance en compression du beton[J].Materials and Structures,1993,26(9):505.
17 Le Roy R,Parant E, Boulay C. Taking into account the inclusions’ size in lightweight concrete compressive strength prediction[J]. Cement and Concrete Research,2005,35(4):770.
18 Mazars J. Application de la mécanique de l’endommagement au comportement non linéaire et à la rupture du béton de structure[D].Pa-ris: Universite Paris,1984:1.
19 Li Jie, Ren Xiaodan. A Review on the constitutive model for static and dynamic damage of concrete[J].Advances in Mechanics,2010,40(3):284(in Chinese).
李杰,任晓丹.混凝土静力与动力损伤本构模型研究进展述评[J].力学进展,2010,40(3):284.
20 Wang E, Shrive N. A 3-D ellipsoidal flaw model for brittle fracture in compression[J].International Journal of Solids and Structures,1999,36(27):4089.
21 Miled K, Sab K, Roy R L. Particle size effect on EPS lightweight concrete compressive strength: Experimental investigation and mo-deling[J]. Mechanics of Materials,2007,39(3):222.
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