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690 MPa级高强钢焊缝金属强韧化机理
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作者 亢天佑 孙磊 +3 位作者 王杏华 张玉祥 王任甫 张由景 《焊接学报》 北大核心 2025年第7期114-120,共7页
制备了两个不同类型屈服强度为690 MPa级焊缝金属,开展了微观组织分析和力学性能测试,研究了焊缝金属的强韧化机理.结果表明,传统690 MPa级焊缝金属镍当量(Ni_(eq))较小,枝晶间区域合金元素偏析不明显,焊缝金属形成以粗大的粒状贝氏体(g... 制备了两个不同类型屈服强度为690 MPa级焊缝金属,开展了微观组织分析和力学性能测试,研究了焊缝金属的强韧化机理.结果表明,传统690 MPa级焊缝金属镍当量(Ni_(eq))较小,枝晶间区域合金元素偏析不明显,焊缝金属形成以粗大的粒状贝氏体(grain bainite, GB)为主的相对均一组织,由于粗大的GB对裂纹扩展的阻力较小,其低温韧性较差.通过提高Ni_(eq)的方法制备了新型690 MPa级焊缝金属,其Ni_(eq)较大,Mn,Ni在枝晶间区域显著偏析导致枝晶间过冷奥氏体的稳定性大于枝晶干,形成了枝晶干为针状铁素体(acicular ferrite, AF),枝晶间为板条马氏体(lath martensite,LM)的复相组织.在复相组织中AF为主要的韧化相,LM为主要的强化相,焊缝金属的屈服强度为738 MPa,-50℃冲击吸收能量为122 J,实现了良好的强韧性匹配. 展开更多
关键词 690 MPa级高强钢 焊缝金属 复相组织 合金偏析 强韧化机理
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Microstructural evolution of 2026 aluminum alloy during homogenization 被引量:8
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作者 JIANG Ding-bang PAN Qing-lin +2 位作者 HUANG Zhi-qi HU Quan LIU Zhi-ming 《Journal of Central South University》 SCIE EI CAS CSCD 2018年第3期490-498,共9页
The microstructural evolution of 2026 aluminum alloy during homogenization treatment was investigated by optical microscopy(OM),scanning electron microscopy(SEM),energy dispersive X-ray spectrometry(EDS),differential ... The microstructural evolution of 2026 aluminum alloy during homogenization treatment was investigated by optical microscopy(OM),scanning electron microscopy(SEM),energy dispersive X-ray spectrometry(EDS),differential scanning calorimetry(DSC)and X-ray diffraction(XRD).The results show that severe dendritic segregation exists in the as-cast 2026 alloy and the main secondary phases at grain boundary are S(Al2CuMg)andθ(Al2Cu)phases.Elements Cu,Mg and Mn distribute unevenly from grain boundary to the inside of as-cast alloy.With the increase of homogenization temperature or the prolongation of holding time,the residual phases gradually dissolve into the matrixα(Al)and all the elements become more homogenized.According to the results of microstructural evolution,differential scanning calorimetry and X-ray diffraction,the optimum homogenization parameter is at 490°C for 24 h,which is consistent with the result of homogenization kinetic analysis. 展开更多
关键词 2026 aluminum alloy dendritic segregation HOMOGENIZATION microstructure evolution homogenization kinetics
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Directional migration behavior of cerium during sintering process of mischmetal doped cemented carbide 被引量:4
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作者 张立 陈述 +2 位作者 熊湘君 余贤旺 王元杰 《Journal of Central South University of Technology》 EI 2008年第1期6-10,共5页
Three observation methods were used to investigate the existing form and the behavior of rare earth during the sintering process of high activity mischmetal (RE, with lanthanum and cerium) doped WC-8%Co-0.048%RE(ma... Three observation methods were used to investigate the existing form and the behavior of rare earth during the sintering process of high activity mischmetal (RE, with lanthanum and cerium) doped WC-8%Co-0.048%RE(mass fraction) alloy with low carbon-containing level by scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDXS), considering the fact that the addition amount of rare earth in the alloy is very minute. The directional migration process and mechanism of cerium were discussed. First, the sinter skin (surface) is observed. oxide on the sinter skin, and lanthanum in these cerium observed, and lanthanum containing phase/micro-zone in It is shown that there exists a dispersedly distributed cerium containing enrichment positions is very minute. Secondly, the polished section is the alloy is identified. Finally, based on the fact that the fracture of cemented carbide is resulted from the heterogeneous phase or other defects within the microstructure, the fracture surface is observed and cerium containing phase/micro-zone in the fracture source approximately 260 μm from the surface is identified. These combined observations reveal adequately the fact that lanthanum and cerium get separated and cerium predominantly migrates towards the surface during the sintering process. 展开更多
关键词 cemented carbide rare earth surface segregation directional migration liquid phase sintering
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