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冻融混凝土的动态力学性能及粘弹性损伤本构模型

Dynamic Mechanical Properties and Visco-Elastic Damage Constitutive Model of Freeze-thawed Concrete.

作者信息

Li Yan, Zhai Yue, Liang Wenbiao, Li Yubai, Dong Qi, Meng Fandong

机构信息

School of Geology Engineering and Geomatics, Chang'an University, Xi'an 710054, China.

School of Civil Engineering, Chang'an University, Xi'an 710061, China.

出版信息

Materials (Basel). 2020 Sep 12;13(18):4056. doi: 10.3390/ma13184056.

Abstract

To study the dynamic mechanical characteristics and constitutive relation of concrete materials under freeze-thaw (FT) cycle conditions, C35 concrete was taken as the research object in this paper, and FT tests were carried out with a freeze-thaw range of -20-20 °C and a freeze-thaw frequency up to 50 times. By using the separated Hopkinson pressure bar (SHPB) system, impact compression tests of concrete specimens under different FT cycle actions were developed, then the dynamic fracture morphology, fracture block distribution, stress-strain curve, peak stress and other dynamic mechanical properties of concrete were analyzed, and the influence law of FT action and strain rate was obtained. Through introducing the freeze-thaw deterioration damage factor and the stress damage variable, the dynamic visco-elastic damage constitutive equation of freeze-thawed concrete was constructed based on component combination theory. Furthermore, the damage evolution process and mechanism of freeze-thawed concrete materials were revealed. The research results show that the dynamic mechanical properties of concrete under a freeze-thaw environment are the combined results of the freeze-thaw deterioration effect and the strain rate strengthening effect. The dynamic visco-elastic damage constitutive model established in this paper can effectively describe the dynamic mechanical properties of freeze-thawed concrete, and has the characteristics of few parameters and good effect. The stress damage evolution path of concrete goes backward with the increase of FT cycles and the development speed gradually slows down. The greater the difference in FT cycles, the greater the difference in stress damage path.

摘要

为研究冻融(FT)循环条件下混凝土材料的动态力学特性及本构关系,本文以C35混凝土为研究对象,进行了冻融温度范围为-20-20℃、冻融次数达50次的冻融试验。利用分离式霍普金森压杆(SHPB)系统,开展了不同冻融循环作用下混凝土试件的冲击压缩试验,进而分析了混凝土的动态断裂形态、破碎块分布、应力-应变曲线、峰值应力等动态力学性能,得出了冻融作用和应变率的影响规律。通过引入冻融劣化损伤因子和应力损伤变量,基于组分组合理论建立了冻融混凝土的动态粘弹性损伤本构方程。此外,揭示了冻融混凝土材料的损伤演化过程及机理。研究结果表明,冻融环境下混凝土的动态力学性能是冻融劣化效应和应变率强化效应共同作用的结果。本文建立的动态粘弹性损伤本构模型能够有效描述冻融混凝土的动态力学性能,具有参数少、效果好的特点。混凝土的应力损伤演化路径随冻融循环次数的增加而向后发展,且发展速度逐渐减慢。冻融循环次数差异越大,应力损伤路径差异越大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/247f/7560436/a147c310848e/materials-13-04056-g001.jpg

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