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首页> 外文期刊>Journal of Materials Science >Microstructure and mechanical properties of high boron white cast iron with about 4 wt% chromium
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Microstructure and mechanical properties of high boron white cast iron with about 4 wt% chromium

机译:铬含量约4 wt%的高硼白口铸铁的组织和力学性能

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摘要

The microstructure and mechanical properties of high boron white cast irons with about 4 wt% chromium before and after treating with rare earth magnesium alloy were studied in this article. The experimental results indicate that the cast irons comprise a dendritic matrix and interdendritic eutectic borides M2B and M′_(0.9)Cr_(1.1)B_(0.9) that distributed in the form of continuous network in as-cast condition. The matrix is made up of fine pearlite in the alloys with and without modification, but the grain size of the matrix is decreased greatly after modification. After water quenching at 1,303 K and tempering at 473 K, the matrix of the alloy mostly changes to lath-type martensite. For the alloy without modification the boride morphology remains almost unchanged after heat treatment. And a secondary precipitation of M_(23)(C,B)_6 compound appears in the central region of dentritic matrix grains. The morphology of the eutectic borides is changed to the form of isolated blocks after heat treatment and there is only little intragranular M_(23)(B,C)_6 particles in the matrix are found in the alloy modified with rare earth magnesium alloy. The modification by rare earth magnesium alloy can refine the primary austenite and the eutectic borides. Combined with a high austenitizing temperature the modification can improve the morphology of the borides which results in the improvement of toughness and tensile strength.
机译:本文研究了稀土镁合金处理前后含铬约4wt%的高硼白口铸铁的组织和力学性能。实验结果表明,铸铁包括一个枝晶基体以及枝晶间共晶硼化物M2B和M'_(0.9)Cr_(1.1)B_(0.9),它们在铸造状态下以连续网络的形式分布。基体由经过修饰和未经修饰的合金中的细珠光体组成,但是经修饰后,基体的晶粒尺寸大大减小。在1303 K的水淬和473 K的回火后,合金的基体大部分变为板条型马氏体。对于未经改性的合金,热处理后硼化物形态几乎保持不变。 M_(23)(C,B)_6化合物的二次沉淀出现在树枝状基体晶粒的中心区域。热处理后,共晶硼化物的形态变为孤立的块状,在稀土镁合金改性的合金中,基体中几乎没有颗粒内M_(23)(B,C)_6颗粒。稀土镁合金的改性可以细化原始奥氏体和低共熔硼化物。结合高奥氏体化温度,改性可以改善硼化物的形态,从而提高韧性和拉伸强度。

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