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Microstructural evaluation and mechanical properties of Ir-Hf-Zr ternary alloys at room and high temperatures

机译:Ir-Hf-Zr三元合金在室温和高温下的显微组织评估和力学性能

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摘要

Iridium is one of the most promising base metals for future high-temperature structural materials. Attempts to improve the high-temperature strength of Ir have involved solid-solution hardening and coherent hardening. Hf and Zr having a larger atomic size misfit with Ir were found to be the most effective solid-solution hardening and coherent hardening elements on Ir. The idea of multi-component alloying Ir by Hf and Zr was used for the improvement of high-temperature properties of Ir-based alloys in this work. The results show that the monolithic saturated fcc phase has an outstanding Vickers hardness at room temperature, whereas a dual-phase fcc Ll_2 structure is favorable for high-temperature strength and creep resistance. With a dual-phase fcc Ll_2 structure composed mostly of fcc phase, the Ir-5Hf- 5Zr alloy has a 0.2 percent yield strength as high as 175 MPa, and a stable creep rate as low as 1.33 X 10~7 S~(-1) at a stress of 40 MPa even at 1950 deg C. Finally, a principle for the design of Ir-based alloy based upon the composition and microstructural morphology was discussed.
机译:铱是未来高温结构材料中最有前途的贱金属之一。尝试提高Ir的高温强度涉及固溶硬化和相干硬化。原子尺寸与Ir不匹配的Hf和Zr被发现是Ir上最有效的固溶硬化和相干硬化元素。在这项工作中,采用了通过Hf和Zr进行Ir多组分合金化的想法,以改善Ir基合金的高温性能。结果表明,整体式饱和fcc相在室温下具有出色的维氏硬度,而双相fcc Ll_2结构有利于高温强度和抗蠕变性。 Ir-5Hf-5Zr合金具有主要由fcc相组成的双相fcc Ll_2结构,其0.2%的屈服强度高达175 MPa,稳定的蠕变速率低至1.33 X 10〜7 S〜(- 1)甚至在1950摄氏度时在40 MPa的应力下。最后,讨论了基于成分和显微组织形态设计Ir基合金的原理。

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