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Study of Tapping Process of Ti6AI4V Using Finite Element (FE) Simulation

机译:使用有限元(FE)模拟Ti6ai4V的攻丝过程研究

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Finite element (FE) assisted numerical modeling approach is known as a popular approach to predict the machining performance of different machining operations. Tapping operation is a well-known manufacturing process that is used to cut threads efficiently. In the automotive and aerospace applications, precisely machined tapped holes are required in the small size deep holes. Tapping process creates thread in the hole and make it ready for fastening with other mating components. Tapping operation is considered as one of the most complex machining operations due to the presence of multi-flutes and multi-land involvement between the workpiece and cutter materials. The outcome of the tapping process results in the generation of threads and accepted as one of the most commonly employed in fastening methods for the joining of different machine components. Literature revealed that tapping process has been very rarely investigated using computational modeling approaches, as most of the available studies are experimental in nature. The experimental work for tapping operation can be very time and cost consuming because of the expensive fabrication of the cutting tools. It has also been observed experimentally that minor change in the threading profiles can generate significant difference in the cutting torque. A possible solution is to analyse the whole tapping operation using finite element (FE) assisted numerical simulation. Similarly, there will be limitation towards experiments if the workpiece material is expensive and difficult to cut. It is a common observation in metal cutting industry that most of the times cutting tap results in breakage when exposed to the higher magnitude of torque. The current study is aimed on the finite element based computational investigations on the tapping process using Ti6A14V as a workpiece material. High hot hardness and low thermal conductivity of the Ti6A14V also plays a significant role towards the poor machining performance of the threading tool. Ti6A14V is most commonly employed in the engineering applications where high strength to weight ratio and ability of operate at higher temperatures is required. Ti6A14V is mainly utilized in the automotive, aerospace, biomedical and petrochemical industries. It has been identified that tapping operation is very rarely studied machining operation in the metal cutting scientific community. Different tapping process conditions were investigated computationally using finite element (FE) approach and as a result cutting forces, torques and power consumed were observed. The study provides a useful understanding towards the tapping process mechanics with respect to different cutting parameters.
机译:有限元(FE)辅助数值建模方法被称为一种流行的方法来预测不同加工操作的加工性能。敲击操作是一种众所周知的制造过程,用于有效地切割线程。在汽车和航空航天应用中,小尺寸深孔需要精确加工的螺纹孔。挖掘过程在孔中创建螺纹,并准备好与其他配合组件一起紧固。攻丝操作被认为是由于工件和刀具材料之间的多槽和多陆参与的存在,所以成为最复杂的加工操作之一。攻丝过程的结果导致螺纹的产生,并被接受为用于连接不同机器部件的紧固方法中的最常用。文献揭示了利用计算建模方法非常很少调查攻丝过程,因为大多数可用研究都是实验性的。由于切割工具的昂贵制造,攻丝操作的实验工作可能是非常的和成本耗费。还在实验中观察到螺纹轮廓的微小变化可以产生显着的切割扭矩差异。可能的解决方案是使用有限元(FE)辅助数值模拟来分析整个攻丝操作。类似地,如果工件材料昂贵并且难以切割,则会有限制实验。这是金属切削工业中的常见观察,大部分时间切割在暴露于扭矩幅度较高时会破裂。目前的研究旨在使用Ti6a14V作为工件材料的攻丝过程的基于有限元的计算研究。 Ti6a14V的高热硬度和低导热率也起到螺纹工具的差的加工性能的显着作用。 Ti6a14v最常用于工程应用中,需要在高强度和在较高温度下操作能力的高度强度。 Ti6a14v主要用于汽车,航空航天,生物医学和石化行业。已经确定了攻丝操作非常易于研究金属切割科学界的加工操作。使用有限元(Fe)方法计算不同的攻丝工艺条件,并且随着结果,观察到的切割力,扭矩和消耗的功率。该研究对不同切削参数进行了攻丝过程力学提供了有用的理解。

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