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Spherical and acicular representation of hydrates in a micromechanical model for cement paste: prediction of early-age elasticity and strength

机译:水泥浆体微力学模型中水合物的球形和针状表示:早期弹性和强度的预测

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Abstract Early-age stiffness and strength evolution of cement paste is studied in the framework of continuum micromechanics. Based on the self-consistent scheme, elastic and strength properties are upscaled from the scale of several micrometers up to the scale of several hundreds or thousands of micrometers. Four material phases are considered: clinker, hydration products, water and air. We assign a spherical geometry to clinker grains and pores, while we investigate both spherical and acicular (needle-type) shapes as geometrical rep_resentation of the micrometer-sized hydration products. As regards macroscopic poromechanical boundary conditions, two extreme cases are considered: drained conditions and sealed conditions, respectively. These choices allow for studying the influence of (i) the morphological representation of hydrates, and of (ii) the bulk stiffness of water, on the micromechanical prediction of early-age behavior of cement paste, including setting and the hydration-dependent evolutions of both elastic stiffness and uniaxial compressive strength. The newly proposed strength model is based on a von Mises-type elastic limit criterion for individual hydrates. Corresponding deviatoric stress peaks within hydrates are estimated through quadratic stress averages. In this way, the micromechanical strength criterion is formulated in terms of macroscopic loading (stresses or strains, respectively). Model-predicted elasticity and strength evolutions are compared with data from experimental testing of cement pastes with water_cement ratios ranging from 0.35 to 0.60. Satisfactory agreement between model predictions and experiments allows for two conclusions: the morphology of hydrates significantly influ_ences micromechanics-based elastic stiffness estimates of cement paste particularly at very early ages, whereas elastic properties of mature cement paste can be estimated reliably on the basis of both spherical or acicular shaped hydrates. The development of a reliable strength model, however, requires consideration of hydrates as non-spherical particles, no matter what age of cement paste is considered.
机译:摘要在连续体微观力学的框架下研究了水泥浆的早期刚度和强度演变。基于自洽方案,将弹性和强度特性从几微米的尺度提高到几百或数千微米的尺度。考虑了四个材料阶段:熟料,水合产物,水和空气。我们为熟料的颗粒和孔分配了球形几何形状,同时我们研究了球形和针状(针型)形状作为微米级水合产物的几何表示。至于宏观力学边界条件,考虑了两种极端情况:分别为排水条件和密封条件。这些选择允许研究(i)水合物的形态表示和(ii)水的体积刚度对水泥浆早期行为的微力学预测的影响,包括水泥的凝结和水合依赖性的演变。弹性刚度和单轴抗压强度。新提出的强度模型基于单个水合物的von Mises型弹性极限准则。水合物中相应的偏应力峰值通过二次应力平均值估算。这样,根据宏观载荷(分别为应力或应变)来制定微机械强度标准。将模型预测的弹性和强度演变与水灰比范围为0.35至0.60的水泥浆的实验测试数据进行比较。模型预测和实验之间令人满意的一致性可以得出两个结论:水合物的形态显着影响基于水泥浆的微观力学弹性刚度估算,尤其是在很早的年龄,而成熟水泥浆的弹性性能可以基于两个球形均可靠地估算。或针状水合物。然而,无论水泥浆龄如何,可靠的强度模型的开发都需要将水合物视为非球形颗粒。

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