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Contrasting mechanical behavior in precipitation hardenable Al_xCoCrFeNi high entropy alloy microstructures: Single phase FCC vs. dual phase FCC-BCC

机译:沉淀可硬化Al_xCoCrFeNi高熵合金显微组织中的力学行为对比:单相FCC与双相FCC-BCC

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摘要

AlxCoCrFeNi is a prominent high entropy alloy system with varying crystal structure from FCC to BCC depending on aluminum content. The mechanical behavior of Al0.7CoCrFeNi with dual phase FCC + BCC microstructure has been compared with that of single phase FCC Al0.3CoCrFeNi. Both quasi-static and dynamic strain rate regimes were investigated. Hypo-eutectic Al0.7CoCrFeNi showed much higher strength due to fine lamellar microstructure with a large number of FCC-BCC interphase boundaries. But this also leads to lower strain rate sensitivity due to the long-range nature of these interfaces, overcoming them is indifferent with temperature elevation to assist slip, thus making them athermal barriers. Both these precipitation hardenable alloys were aged to induce precipitation of ordered L1(2) in the FCC phase. This coherent nano-scale L1(2) precipitate caused a significant increase in the yield strength of both single-phase and dual phase structures while reducing the strain rate sensitivity (SRS) only slightly. L1(2) precipitation in FCC matrix greatly enhanced twinning during dynamic deformation. Large-scale deformation twins were observed in coarse Al0.3CoCrFeNi FCC and FCC + L1(2) microstructures. The scale of deformation twins was much smaller in the dual phase Al0.7CoCrFeNi whose refined lamellae width retarded twinning. The lamellar structures, nevertheless, had higher work hardening due to their higher dislocation density storage capability.
机译:AlxCoCrFeNi是一种杰出的高熵合金体系,其晶体结构从FCC到BCC取决于铝含量。比较了具有双相FCC + BCC微结构的Al0.7CoCrFeNi的机械性能与单相FCC Al0.3CoCrFeNi的机械性能。准静态和动态应变率制度都进行了研究。亚共晶Al0.7CoCrFeNi由于具有大量FCC-BCC相间边界的精细层状微结构而显示出更高的强度。但是,由于这些界面的远距离特性,这也导致应变率敏感性降低,克服它们对于温度升高无关紧要,从而有助于滑动,从而使其成为无热屏障。将这两种可沉淀硬化的合金进行时效处理,以诱导有序L1(2)在FCC相中析出。这种相干的纳米级L1(2)沉淀物导致单相和双相结构的屈服强度显着提高,而应变速率灵敏度(SRS)仅略微降低。 FCC基质中的L1(2)沉淀大大增强了动态变形过程中的孪生。在粗糙的Al0.3CoCrFeNi FCC和FCC + L1(2)微观结构中观察到大规模形变孪晶。双相Al0.7CoCrFeNi的变形孪晶的尺寸要小得多,双相Al0.7CoCrFeNi的细晶片宽度延迟了孪晶。然而,由于层状结构具有较高的位错密度存储能力,因此具有较高的加工硬化性。

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