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探讨采用小异速比多道次异步轧制技术提高AZ31镁合金板材室温成形性能的可行性,研究异步轧制板材微观组织的特点、形成机理及其与成形性能间的内在联系。结果表明:多道次异步轧制所累积的剪切应变能有效促进压缩孪晶的交互作用,细化合金晶粒组织,削弱(0002)基面的织构强度;异步轧制AZ31镁合金板材后续退火处理后的室温伸长率和Erichsen值分别可达32%和6.14mm;(0002)基面织构减弱和塑性应变比的降低是板材室温成形性能提高的根本原因。 相似文献
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采用不同的轧制工艺,制备4种晶粒尺寸为7~18μm和不同强度基面织构的AZ31镁合金板材,通过单向拉伸试验和室温Erichsen试验,探讨晶粒尺寸与织构对镁合金板材室温成形性能的影响。结果表明:晶粒细化虽然增强了板材的力学性能,但不利于提高板材的胀形性能;基面织构的减弱使板材沿厚度方向变形能力增强,具有较好的胀形性能,但另一方面使板材的屈服强度降低。 相似文献
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异步轧制技术及其在镁合金中的应用 总被引:1,自引:0,他引:1
综述了异步轧制技术的原理、特点、研究及应用情况.从开展镁合金塑性加工新技术的研究出发,论述了目前变形镁合金异步轧制研究的情况,分析了异步轧制过程中镁合金的晶粒细化机理、变形机理及其织构等的变化规律.异步轧制可减弱镁合金板材的基面织构,使其晶粒得到细化,提高其力学性能.指出如果异步轧制技术能够成功地应用于镁合金的塑性成形,镁合金将具有越来越广阔的实际应用前景. 相似文献
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扫描电镜观察显示胫骨是一种由羟基磷灰石和胶原蛋白组成的自然生物陶瓷复合材料.羟基磷灰石具有层状的微结构并且平行于骨的表面排列.观察也显示这些羟基磷灰石层又是由许多羟基磷灰石片所组成,这些羟基磷灰石片具有长而薄的形状,也以平行的方式整齐排列.基于在胫骨中观察到的羟基磷灰石片的微结构特征,通过微结构模型分析及实验,研究了羟基磷灰石片平行排列微结构的最大拔出能.结果表明,羟基磷灰石片长而薄的形状以及平行排列方式增加了其最大拔出能,进而提高了骨的断裂韧性. 相似文献
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论述了CAD技术中参数化设计的三种建模方法,重点介绍了基于特征的参数化建模原理。在此基础上,分析机械设计中的机构结构,归纳出其零件的几何特征构成。设计了机构CAD图形库,并提出了该图形库生成步骤和人机交互界面。 相似文献
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采用激光辐照对FeCrAlW电弧喷涂层的组织进行致密化处理,借助扫描电镜和X衍射对涂层的组织进行了分析.测试了涂层的显微硬度.结果表明:涂层组织致密度提高,孔隙率明显降低.随着激光扫描速度的增加,涂层的显微硬度降低.在较低的扫描速度下,涂层与基体之间形成互熔区,涂层与基体之间产生良好的冶金结合. 相似文献
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C. Colinet 《Intermetallics》2003,11(11-12):1095
A large number of ab-initio calculations of energies of formation of intermetallic compounds have been performed in the last 15 years. The currently used methods are listed. The paper presents a review of the aluminium based compounds which have been studied. Comparisons of calculated and experimental enthalpies of formation are provided for aluminim-3d and-4d transition metal alloys at equiatomic composition. The modelling of the enthalpies of mixing of solid solutions based on a given lattice is described. 相似文献
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O. N. Vlasova N. N. Korneeva V. I. Eremenko O. Kh. Fatkullin N. M. Semenova S. N. Petrova D. D. Vaulin 《Metal Science and Heat Treatment》1991,33(12):924-931
Conclusions To provide a high level of mechanical properties in wrought blanks of cast ÉP741NP and ÉP962 alloys it is necessary to form controlled structures. A necklace-type structure formed in homogenizing isostatic treatment, subsequent thermomechanical working including alternation of the operations of deformation in the (+)-area and recrystallization anneals, and final heat treatment is preferable. The temperature conditions of all stages of thermomechanical working are strictly controlled, especially the final operation of deformation and heating for hardening. To eliminate hardening cracks and distortions it is necessary to use molten salts at t=600°C as quenchants. The use of multiple production operations makes it possible to significantly reduce the structural inhomogeneity related to inhertance of the original dendritic structure. However, the structure of the final semifinished product is nevertheless characterized by a difference in occurrence of the processes of polygonization and recrystallization between the former dendritic cells and the interdendritic spaces in deformation and heat treatment.To obtain structurally homogeneous blanks for gas turbine engine parts it is necessary to use basically new methods of remelting such as vacuum double electrode remelting and electron beam remelting with an intermediate vessel.Translated from Metallovedenie i Termicheskaya Obrabotka Metallov, No. 12, pp. 25–29, December, 1991. 相似文献