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Microstructural evolution of polycrystalline ice during confined creep testing

机译:密闭蠕变测试中多晶冰的微观结构演变

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The mechanical properties of polycrystalline ice I-h have been observed to change under an applied hydrostatic pressure comparable to that present near the bottom, of kilometer-thick ice sheets. To help determine the cause of these changes, we conducted confined creep testing of laboratory-prepared polycrystalline ice at pressures up to 20 MPa (equivalent to similar to 2000 m of overburden) and subsequent microstructural analysis of specimens deformed by creep using optical microscopy and scanning electron microscopy, including extensive electron backscatter diffraction mapping of crystal orientations. Microstructural observations of the creep-deformed specimens revealed smaller median grain sizes, less regular, and more interlocked grain shapes in specimens deformed at higher pressure compared with those deformed at atmospheric pressure. Variable pressure testing reveals little change in strain rate for pressures less than 15 MPa, leading to alternative hypotheses regarding the influence of confining pressure on the dislocation dynamics and associated creep behavior of polycrystalline ice. Our central hypothesis is that widely dissociated basal dislocations in ice begin to constrict after the confining pressure reaches a critical value. This critical pressure depends strongly on the (currently unknown) lattice dilatation induced in ice by the presence of stacking faults. Published by Elsevier B.V.
机译:已经观察到多晶冰I-h的机械性能在所施加的静水压力下发生变化,该静水压力与在千米厚的冰原的底部附近存在的静水压力相当。为了帮助确定这些变化的原因,我们在压力高达20 MPa(相当于上覆岩层2000 m)下对实验室制得的多晶冰进行了密闭蠕变测试,并随后使用光学显微镜和扫描仪对因蠕变变形的标本进行了显微结构分析电子显微镜,包括晶体取向的大量电子反向散射衍射图。与常压变形相比,蠕变变形样品的微观结构观察显示,在较高压力下变形的样品中位数较小,中规度较小且互锁的晶粒形状更大。可变压力测试表明,压力小于15 MPa时应变率几乎没有变化,从而导致了关于围压对多晶冰位错动力学和相关蠕变行为的影响的其他假设。我们的中心假设是,在约束压力达到临界值后,冰中广泛分离的基底位错开始收缩。该临界压力很大程度上取决于由于存在堆垛层错而在冰中引起的(目前未知)晶格膨胀。由Elsevier B.V.发布

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