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Mesoscale modeling of nonlinear elasticity and fracture in ceramic polycrystals under dynamic shear and compression

机译:动态剪切和压缩下陶瓷多晶体非线性弹性和断裂的中尺度模型

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摘要

Dynamic deformation and failure mechanisms in polycrystalline ceramics are investigated through constitutive modeling and numerical simulation. Two ceramics are studied: silicon carbide (SiC, hexagonal crystal structure) and aluminum oxynitride (AlON, cubic crystal structure). Three dimensional finite element simulations incorporate nonlinear anisotropic elasticity for behavior of single crystals within polycrystalline aggregates, cohesive zone models for intergranular fracture, and contact interactions among fractured interfaces. Boundary conditions considered include uniaxial strain compression, uniaxial stress compression, and shear with varying confinement, all at high loading rates. Results for both materials demonstrate shear-induced dilatation and increasing shear strength with increasing confining pressure. Failure statistics for unconfined loading exhibit a smaller Weibull modulus (corresponding to greater scatter in peak failure strength) in AlON than in SiC, likely a result of lower prescribed cohesive fracture strength and greater elastic anisotropy in the former. In both materials, the predicted Weibull modulus tends to decrease with an increasing number of grains contained in the simulated microstructure.
机译:通过本构模型和数值模拟研究了多晶陶瓷的动态变形和破坏机理。研究了两种陶瓷:碳化硅(SiC,六方晶体结构)和氧氮化铝(AlON,立方晶体结构)。三维有限元模拟包括多晶聚集体中单晶行为的非线性各向异性弹性,晶间断裂的内聚区模型以及断裂界面之间的接触相互作用。所考虑的边界条件包括单轴应变压缩,单轴应力压缩和限制变化的剪切,所有这些都在高加载速率下进行。两种材料的结果均表明,随着围压的增加,剪切引起的膨胀和剪切强度增加。无限制载荷的失效统计数据显示,AlON的威布尔模量比SiC的威布尔模量小(对应于峰值失效强度的更大散布),这可能是前者规定的内聚断裂强度较低和弹性各向异性较大的结果。在两种材料中,随着模拟微观结构中晶粒数量的增加,预测的威布尔模量趋于降低。

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