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首页> 外文期刊>La Metallurgia Italiana >Microstructural, texture, plastic anisotropy and superplasticity development of ZK60 alloy during equal channel angular extrusion processing
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Microstructural, texture, plastic anisotropy and superplasticity development of ZK60 alloy during equal channel angular extrusion processing

机译:等通道角挤压加工过程中ZK60合金的组织,织构,塑性各向异性和超塑性发展

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摘要

In this study, equal channel angular pressing (ECAP) was exploited to refine the grain size of a ZK60 magnesium alloy in multi-processing steps, namely at temperatures of 250℃, 200℃ and 150℃, producing an ultrafine-grained (UFG) structure. The microstructural development and texture evolution during ECAP were systemically investigated by electron backscattered diffraction (EBSD) analysis. The microstructure of the ECAP processed alloy was remarkably refined to an average grain size of 600 nm. During ECAP process the original fiber texture of the as-extruded alloy was gradually weakened and eventually replaced by a stronger texture component coinciding with ECAP shear plane. The ECAP processed material showed a proper balance of tensile as well as compression strength and tensile ductility at room temperature. Yield strength of 273 and 253 MPa in tension and compression, respectively, ultimate tensile strength of 298 MPa and fracture elongation of about 30% were obtained in the UFG alloy. A transition from ductile–brittle to ductile fracture consisting of very fine and equiaxed dimples was also found in the ECAP processed material. Compared to the as-received alloy, a combination of grain refinement and texture development in the UFG alloy gave rise to a notable reduction in mechanical asymmetric behavior at room temperature. The superplastic behavior of the as-extruded and ECAP processed alloy was also investigated at 200℃ with strain rate of 1.0×10~(-3) s~(-1). The concurrent effect of grain boundary sliding and favorable basal texture in the UFG alloy led to an achievement of elongation value of about 300% while, under similar testing conditions, the elongation of about 140% was obtained in the as-extruded alloy.
机译:在这项研究中,利用等通道角挤压(ECAP)在多个处理步骤中(即在250℃,200℃和150℃的温度下)细化ZK60镁合金的晶粒尺寸,从而生产出超细晶粒(UFG)结构体。通过电子背散射衍射(EBSD)分析系统地研究了ECAP期间的微结构发展和织构演变。经ECAP处理的合金的显微组织显着细化为600 nm的平均晶粒尺寸。在ECAP过程中,挤压合金的原始纤维质地逐渐减弱,并最终被与ECAP剪切平面一致的更强的质地成分所取代。经ECAP处理的材料在室温下显示出拉伸,压缩强度和拉伸延展性的适当平衡。在UFG合金中,拉伸和压缩时的屈服强度分别为273和253 MPa,极限拉伸强度为298 MPa,断裂伸长率约为30%。在ECAP处理的材料中,还发现了由韧性-脆性到韧性断裂的过渡,其中包括非常细小的等轴凹窝。与原样合金相比,UFG合金中晶粒细化和织构发展的结合显着降低了室温下的机械不对称行为。还在200℃,应变率为1.0×10〜(-3)s〜(-1)的条件下研究了经挤压和ECAP处理的合金的超塑性行为。 UFG合金的晶界滑动和良好的基础织构共同作用导致伸长率值达到约300%,而在类似的测试条件下,挤压后合金的伸长率达到约140%。

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