工艺变量对AA 2024冷挤压质量特性影响的实验研究

IF 1.1 Q4 ENGINEERING, MECHANICAL
None K.A. Francy, None C.S. Rao
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引用次数: 0

摘要

挤压工艺在制造业中有许多应用,因为它能够生产出高质量的产品。挤压过程可分为热挤压和冷挤压。冷正向挤压是在室温下进行的,并且具有改善机械特性的额外好处。在挤压过程中,金属在强压力下通过具有特定形状的模孔被压缩。该过程受模具角度、冲孔速度、润滑等几个工艺变量的影响,在很大程度上影响挤压力要求、微观结构和产品质量。因此,本实验工作的重点是圆坯挤压生产圆柱棒材。研究冷挤压过程中材料的行为和输入工艺参数的重要性是本工作的主要目标。由于AA 2024合金在海军和飞机结构中的广泛应用,因此采用该合金进行了试验。不同的模具角度(10°,20°&30°)以及冲床速度(1.6 mm/min, 3.2 mm/min和4.8 mm/min)和润滑剂(硫化钼(MoS2),硬脂酸锌和润滑脂)选择作为输入参数。挤压过程的输出响应是挤压力、位移、时间和表面粗糙度。根据弹性变形最大位置的流动应力曲线计算挤压力。结果表明,增大冲孔速度和模角可增大挤压力。利用电子背散射衍射分析研究了不同模角下的微观组织演变和晶粒细化情况。在30°模角下,显微组织表现为晶粒细化。同样值得注意的是,在冲孔速度超过4.8毫米/分钟的30°模角下,损伤是显著的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental investigation on the effect of process variables for the quality characteristics of AA 2024 processed in cold extrusion
Extrusion process has many applications in manufacturing industries due to its ability to produce products of high quality. Extrusion process can be classified into hot extrusion and cold extrusion. The cold forward extrusion is carried out at ambient temperature and has the additional benefit of improved mechanical characteristics. The metarial is compressed under intense pressure through a die orifice with a specific shape during the extrusion process. This process is effected by a few process variables, including die angle, punch speed, and lubrication are in greater extent towards the extrusion force requirement, microstructure and the product quality. Hence, the present experimental work focuses on extrusion of circular billet to produce cylindrical rod. Studying the behaviour of the material and the importance of the input process parameters during the cold extrusion process is the primary goal of this work. The experiments are carried out with AA 2024 alloy because of its wide applications in navy and aircraft structures. The varying die angles (10°, 20° & 30°) as well as punch speed (1.6 mm/min, 3.2 mm/min and 4.8 mm/min) and lubricants (molybdium sulphide (MoS2), zinc stearate and grease) chosen as input parameters. The out put responses of this extrusion process are extrusion force, displacement, time and surface roughness. Extrusion forces are calculated based on flow stress curves at the locations of greatest elastic deformation. The results shows that increasing the punch speed and die angle increases the extrusion force. The microstructure evolutions and grain refinement at different die angles are examined using electron back scatter diffraction analysis. At 30° die angle, the microstructure showed grain refinement. It is also noted that the damage is significant at 30° die angle with a punch speed above 4.8 mm/min.
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来源期刊
自引率
0.00%
发文量
42
审稿时长
20 weeks
期刊介绍: The Journal of Mechanical Engineering & Sciences "JMES" (ISSN (Print): 2289-4659; e-ISSN: 2231-8380) is an open access peer-review journal (Indexed by Emerging Source Citation Index (ESCI), WOS; SCOPUS Index (Elsevier); EBSCOhost; Index Copernicus; Ulrichsweb, DOAJ, Google Scholar) which publishes original and review articles that advance the understanding of both the fundamentals of engineering science and its application to the solution of challenges and problems in mechanical engineering systems, machines and components. It is particularly concerned with the demonstration of engineering science solutions to specific industrial problems. Original contributions providing insight into the use of analytical, computational modeling, structural mechanics, metal forming, behavior and application of advanced materials, impact mechanics, strain localization and other effects of nonlinearity, fluid mechanics, robotics, tribology, thermodynamics, and materials processing generally from the core of the journal contents are encouraged. Only original, innovative and novel papers will be considered for publication in the JMES. The authors are required to confirm that their paper has not been submitted to any other journal in English or any other language. The JMES welcome contributions from all who wishes to report on new developments and latest findings in mechanical engineering.
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