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Detailed Analysis of the Solution Heat Treatment of a Third-Generation Single-Crystal Nickel-Based Superalloy CMSX-10K((R))

机译:第三代单晶镍基高温合金CMSX-10K(R)的固溶热处理的详细分析

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摘要

A detailed analysis of the response of as-cast third-generation single-crystal nickel-based superalloy CMSX-10K(A (R)) to solution heat treatment (SHT) has been carried out, alongside an SHT optimization exercise. The analysis was conducted through microstructural characterization, differential scanning calorimetry, and compositional homogeneity measurements, quantifying (i) the dissolution and microstructural evolution of the inter-dendritic constituents, (ii) the shift in thermo-physical characteristics of the material, and (iii) the change in compositional homogeneity across the microstructure, in order to gain further understanding of these phenomena during the progression of the SHT. During the early stages of SHT, the coarse cellular gamma'arrow gamma channel inter-dendritic constituents which were the last areas to solidify during casting, progressively dissolve; homogenization between these inter-dendritic areas and adjacent dendritic areas leads to a rapid increase in the incipient melting temperature T (IM). The fine gamma/gamma' morphology which were the first inter-dendritic constituents to solidify after primary gamma dendrite solidification were found to progressively coarsen; however, subsequent dissolution of these coarsened gamma/gamma' inter-dendritic areas did not result in significant increases in the T (IM) until the near-complete dissolution of these inter-dendritic areas. After the final SHT step, residual compositional micro-segregation could still be detected across the microstructure despite the near-complete dissolution of these remnant inter-dendritic areas; even so the T (IM) of the material approached the solidus temperature of the alloy.
机译:进行了铸态第三代单晶镍基高温合金CMSX-10K(A(R))对固溶热处理(SHT)的响应的详细分析,并进行了SHT优化。通过微观结构表征,差示扫描量热法和成分均一性测量进行分析,量化(i)树突间成分的溶解和微观结构演变,(ii)材料的热物理特性的变化,以及(iii) )整个微观结构的组成均匀性变化,以便在SHT进行过程中进一步了解这些现象。在SHT的早期阶段,在铸造过程中最后凝固的区域中,粗大的细胞γ'/窄伽马通道树突间成分逐渐溶解。这些树突间区域和相邻的树突区域之间的均质化导致初始熔融温度T(IM)的迅速增加。精细的γ/γ′形态是初次γ枝晶凝固后首先凝固的树突间成分,被发现逐渐变粗。但是,随后这些粗化的gamma / gamma'树突间区域的溶解不会导致T(IM)显着增加,直到这些树突间区域几乎完全溶解为止。在最后的SHT步骤之后,尽管这些残留的树突间区域几乎完全溶解,但仍可以在整个微观结构上检测到残留的成分微偏析。即使如此,材料的T(IM)仍接近合金的固相线温度。

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