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Micromechanics-based simulations of compressive and tensile testing on lime-based mortars

机译:基于微力学的石灰基砂浆压缩和拉伸试验模拟

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The purpose of this paper is to propose a continuum micromechanics model for the simulation of uniaxial compressive and tensile tests on lime-based mortars, in order to predict their stiffness, compressive and tensile strengths, and tensile fracture energy. In tension, we adopt an incremental strain-controlled form of the Mod-Tanaka scheme with a damageable matrix phase, while a simple.12 yield criterion is employed in compression. To reproduce the behavior of lime-based mortars correctly, the scheme must take into account shrinkage cracking among aggregates. This phenomenon is introduced into the model via penny-shaped cracks, whose density is estimated on the basis of particle size distribution combined with the results of finite element analyses of a single crack formation between two spherical inclusions. Our predictions show a good agreement with experimental data and explain the advantages of compliant crushed brick fragments, often encountered in ancient mortars, over stiff sand particles. The validated model provides a reliable tool for optimizing the composition of modern lime-based mortars with applications in conservation and restoration of architectural heritage. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文的目的是提出一个连续的微观力学模型来模拟石灰基砂浆的单轴压缩和拉伸试验,以预测其刚度,压缩和拉伸强度以及拉伸断裂能。在拉伸中,我们采用Mod-Tanaka方案的增量应变控制形式,具有可破坏的基质相,而在压缩中采用了一个简单的12屈服准则。为了正确再现石灰基砂浆的性能,该方案必须考虑集料之间的收缩裂缝。该现象通过一字形裂纹引入模型,该裂纹的密度是根据粒度分布以及两个球形夹杂物之间单个裂纹形成的有限元分析结果进行估算的。我们的预测与实验数据显示出良好的一致性,并解释了在古老的砂浆中经常遇到的柔顺碎砖碎片相对于坚硬砂粒的优势。经过验证的模型为优化现代石灰基砂浆的成分提供了可靠的工具,可用于建筑遗产的保护和修复。 (C)2016 Elsevier Ltd.保留所有权利。

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