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Constitutive Law and Flow Mechanism in Diamond Deformation

机译:金刚石变形的本构规律和流动机理

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Constitutive laws and crystal plasticity in diamond deformation have been the subjects of substantial interest since synthetic diamond was made in 1950's. To date, however, little is known quantitatively regarding its brittle-ductile properties and yield strength at high temperatures. Here we report, for the first time, the strain-stress constitutive relations and experimental demonstration of deformation mechanisms under confined high pressure. The deformation at room temperature is essentially brittle, cataclastic, and mostly accommodated by fracturing on {111} plane with no plastic yielding at uniaxial strains up to 15%. At elevated temperatures of 1000°C and 1200°C diamond crystals exhibit significant ductile flow with corresponding yield strength of 7.9 and 6.3?GPa, indicating that diamond starts to weaken when temperature is over 1000°C. At high temperature the plastic deformation and ductile flow is meditated by the {111} dislocation glide and a very active {111} micro-twinning.. ? 2012 Macmillan Publishers Limited. All rights reserved
机译:自从1950年代制造人造金刚石以来,金刚石变形中的本构律和晶体可塑性一直是引起人们广泛关注的主题。然而,迄今为止,对其在高温下的脆韧性和屈服强度的定量了解甚少。在这里,我们首次报道了在受限高压下的应变-应力本构关系和变形机理的实验证明。室温下的变形基本上是脆性的,可分解的,并且大部分通过在{111}平面上破裂而得以适应,而在高达15%的单轴应变下没有塑性屈服。在1000°C和1200°C的高温下,金刚石晶体表现出明显的延性流动,相应的屈服强度分别为7.9和6.3?GPa,表明当温度超过1000°C时,金刚石开始变弱。在高温下,{111}位错滑移和非常活跃的{111}微孪晶可以冥想塑性变形和延性流动。 2012 Macmillan Publishers Limited。版权所有

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