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Ordinary chondrite metallography: Part 1. Fe-Ni taenite cooling experiments

机译:普通球粒晶金相:第1部分。Fe-Ni钛矿冷却实验

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Cooling rate experiments were performed on P-free Fe-Ni alloys that are compositionally similar to ordinary chondrite metal to study the taenite → taenite + kamacite reaction. The role of taenite grain boundaries and the effect of adding Co and S to Fe-Ni alloys were investigated. In P-free alloys, kamacite nucleates at taenite/taenite grain boundaries, taenite triple junctions, and taenite grain corners. Grain boundary diffusion enables growth of kamacite grain boundary precipitates into one of the parent taenite grains. Likely, grain boundary nucleation and grain boundary diffusion are the applicable mechanisms For the development of the microstructure of much of the metal in ordinary chondrites. No intragranular (matrix) kamacite precipitates are observed in P-free Fe-Ni alloys. The absence of intragranular kamacite indicates that P-free, monocrystalline taenite particles will transform to martensite upon cooling. This transformation process could explain the metallography of zoneless plessite particles observed in H and L chondrites. In P-bearing Fe-Ni alloys and iron meteorites, kamacite precipitates can nucleate both on taenite grain boundaries and intragranularly as Widmanstatten kamacite plates. Therefore, P-free chondritic metal and P-bearing iron meteorite/pallasite metal are controlled by different chemical systems and different types of taenite transformation processes.
机译:在组成类似于普通球粒陨石金属的无磷Fe-Ni合金上进行了冷却速率实验,以研究石→en石+钾长石的反应。研究了钙钛矿晶界的作用以及在Fe-Ni合金中添加Co和S的作用。在不含P的合金中,金刚石在taenite / taenite晶界,taenite三重结和taenite晶角处成核。晶界扩散使长方铁矿晶界沉淀物生长成为母体钽铁矿晶粒之一。晶界形核和晶界扩散很可能是普通球粒陨石中许多金属的微观结构发展的适用机制。在不含P的Fe-Ni合金中未观察到晶内(基体)滑石沉淀。缺乏晶内的高岭石表明无P的单晶钙钛矿颗粒将在冷却后转变成马氏体。这种转变过程可以解释在H和L球粒陨石中观察到的无区块状磷灰石颗粒的金相。在含P的Fe-Ni合金和铁陨石中,滑石的沉淀物既可以在石的晶界上形成晶核,也可以作为Widmanstatten滑石的晶核成核。因此,无磷的软骨组织金属和含磷的陨石/钯铁金属是由不同的化学体系和不同类型的针铁矿转化过程控制的。

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