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Effect of aggregate shapes on local fields in 3D mesoscale simulations of the concrete creep behavior

机译:混凝土蠕变行为的3D中尺度模拟中骨料形状对局部场的影响

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Describing accurately the creep behavior of concrete is of significant importance for the evaluation of the long-term performance of structures. In this regard, a finer characterization of mesostructure effects and material non-linearity provides very insightful information. In this work, the effects of aggregate shapes on the creep response are studied using numerical simulations on 3D mesoscopic samples. The main focus is put on the assessment of the representativeness of generated samples versus real specimens obtained by tomography. Several mesostructures are generated by randomly distributing aggregates with different geometries, from simple spheres to realistic ones extracted from tomography. Creep simulations with finite element (FE) and Fast Fourier Transform (FFT) methods are then performed on different spatial refinements. Moreover, a classical linear viscoelastic (VE) and a viscoelastic-viscoplastic (VE-VP) behavior able to reproduce non-recoverable strains are adopted for describing the matrix behavior, to assess the relevance of a more accurate model. It is shown that numerical samples generated with tomographic aggregates may be regarded as a good approximation of the real specimen, while more 'isotropic' shapes, especially spherical, lead to significant differences at both local and macroscopic levels. Results obtained with FE and FFT methods are very close, indicating that while FFT is well adapted, FE remains attractive in this context. Finally, notable differences are observed between VE and VP response due to the development of residual strains in the matrix and correspondingly more limited strain redistribution, which indicates that VP-like models should be preferred to capture accurately the creep features at mesoscale.
机译:准确地描述混凝土的蠕变行为对于评估结构的长期性能非常重要。在这方面,介观结构效应和材料非线性的更精细表征提供了非常有见地的信息。在这项工作中,使用数值模拟在3D介观样品上研究了聚集体形状对蠕变响应的影响。主要重点放在评估生成的样本与层析成像所获得的真实样本之间的代表性。通过随机分布具有不同几何形状的聚集体(从简单球体到层析成像中提取的真实球体),可以生成几种介观结构。然后,在不同的空间细化条件下使用有限元(FE)和快速傅立叶变换(FFT)方法进行蠕变仿真。此外,采用能够再现不可恢复应变的经典线性粘弹性(VE)和粘弹性-粘塑性(VE-VP)行为来描述基质行为,以评估更准确模型的相关性。结果表明,用层析成像聚集体生成的数值样本可被视为真实样本的良好近似,而更多的“各向同性”形状,尤其是球形,会导致局部和宏观水平上的显着差异。用FE和FFT方法获得的结果非常接近,这表明尽管FFT很好地适应了,但FE在这种情况下仍然很有吸引力。最后,由于基质中残余应变的发展以及相应的更有限的应变重新分布,在VE和VP响应之间观察到显着差异,这表明应首选VP样模型来精确捕获中尺度的蠕变特征。

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