一种增材制备镍基高温合金的强化和脆化机理研究

Jinghao Xu, H. Gruber, R. Boyd, Shuang Jiang, R. Peng, J. Moverare
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引用次数: 56

摘要

摘要γ′相强化镍基高温合金是高温工程中最重要的双相合金体系之一。激光粉末床熔合IN738LC高温合金在原位状态下的拉伸性能与热处理后的状态相比,具有良好的强度和塑性。在构建的样品中促进了由弱织构、亚微米细胞结构和位错细胞壁组成的微观结构层次。热处理后,根据热处理工艺的不同,二次相γ′析出大小和分数不同。在室温拉伸试验中,变形机制主要是在构建样品中位错的平面滑移,而在γ′强化样品中,位错通过Orowan环绕过沉淀。在构建样品中由于位错亚结构产生了非凡的强化效果,使屈服强度增加了372 MPa。我们的计算结果与实验所得的三种不同条件下的屈服强度一致。显著的是,γ′强化试样的加工硬化率高于原状试样,但会出现过早失效。实验结果表明,γ′强化试样的脆性机制是由晶粒内部区域的高位错硬化引起的,这降低了晶粒对进一步塑性应变的适应能力,导致晶粒间过早开裂。在此基础上,详细讨论了镍基高温合金的强化微观机制和强度与塑性的双面效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Strengthening and Embrittlement Mechanisms of an Additively Manufactured Nickel-Base Superalloy
Abstract The γ′ phase strengthened Nickel-base superalloy is one of the most significant dual-phase alloy systems for high-temperature engineering applications. The tensile properties of laser powder-bed-fused IN738LC superalloy in the as-built state have been shown to have both good strength and ductility compared with its post-thermal treated state. A microstructural hierarchy composed of weak texture, sub-micron cellular structures and dislocation cellular walls was promoted in the as-built sample. After post-thermal treatment, the secondary phase γ′ precipitated with various size and fraction depending on heat treatment process. For room-temperature tensile tests, the dominated deformation mechanism is planar slip of dislocations in the as-built sample while dislocations bypassing the precipitates via Orowan looping in the γ′ strengthened samples. The extraordinary strengthening effect due to the dislocation substructure in the as-built sample provides an addition of 372 MPa in yield strength. The results of our calculation are in agreement with experimental yield strength for all the three different conditions investigated. Strikingly, the γ′ strengthened samples have higher work hardening rate than as-built sample but encounter premature failure. Experimental evidence shows that the embrittlement mechanism in the γ′ strengthened samples is caused by the high dislocation hardening of the grain interior region, which reduces the ability to accommodate further plastic strain and leads to premature intergranular cracking. On the basis of these results, the strengthening micromechanism and double-edge effect of strength and ductility of Nickel-base superalloy is discussed in detail.
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