首页> 外文期刊>International Journal of Refractory Metals & Hard Materials >Anomalous slip of ZrB2 ceramic grains during in-situ micropillar compression up to 500 degrees C
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Anomalous slip of ZrB2 ceramic grains during in-situ micropillar compression up to 500 degrees C

机译:在原位微米压缩期间ZRB2陶瓷颗粒的异常滑动最高可达500℃

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The anisotropic deformation behaviour of ZrB2 grains of basal and prismatic orientations in a polycrystalline ZrB2 sample was studied during in-situ micropillar compression at room temperature (RT), 350 degrees C and 500 degrees C. Micropillars were milled out of large grains by focused ion beam machining; the basal and prismatic orientations were previously identified using electron backscatter diffraction maps. The basal pillars showed brittle behaviour and cracking on the {10 (1) over bar0} and {2 (1) over bar(1) over bar0} type prismatic planes that lead to their collapse. For this orientation, the yield/rupture stress ranged between 8 and 14 GPa and it exceeded 12 GPa even at 500 degrees C. In the prismatic orientation, considerable plasticity was observed, showing a temperature dependent yield stress from 6 to 8 GPa at room temperature to similar to 2GPa at 500 degrees C. The activated slip system family was identified as {10 (1) over bar 01}< 11 (2) over bar3 > type for all of the test temperatures (RT, 350 degrees C and 500 degrees C). Analysis of the Schmid-factors revealed that the plasticity of the prismatic micropillars is controlled by the temperature dependence of the critical resolved shear stress of the {10 (1) over bar0}< 11 (2) over bar3 > slip systems. The brittleness of the basal micropillars was influenced by their defect structure (e.g. microcracks) and it was temperature independent due to the absence of slip activation.
机译:在室温(RT)的原位微漏压缩期间研究了多晶ZRB2样品中基础ZRB2样品中的基底和棱柱方向的各向异性变形行为,350℃和500℃,通过聚焦离子从大颗粒中碾碎微嘧粒子梁加工;先前使用电子反向散射衍射图识别基底和棱镜取向。基底柱在{10(1)上方的{10(1)上}}×10}型棱柱平面上的{2(1)}}×10(1)}型棱柱平面脆弱。对于这种取向,即使在500℃下,它在8-14GPa之间的产率/破裂应力范围为8至14gPa,并且在500℃下超过12GPa。在棱柱形取向中,观察到相当大的可塑性,在室温下显示温度依赖性屈服应力。在500摄氏度下类似于2GPa。对于所有测试温度(RT,350℃和500度),可激活的滑动系统系列被鉴定为{10(1)上方的条形图01} <11(2))。 C)。对施密区的分析表明,棱镜微粒的可塑性由{10(1)上方的μl×3(2)上的临界分辨剪切应力的温度依赖性控制。基底微米的脆性受到它们的缺陷结构(例如微裂纹)的影响,并且由于没有滑移激活而导致的温度无关。

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