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Microstructure Induced Shear Instability Criterion During High-Speed Machining of Ti–6Al–4V

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TLDR
In this paper, a microstructure induced shear instability has been investigated using an analytical tool to unveil the deformation behavior in correlation with microstructural characteristics (grain sizes, phase fractions and microhardness) and process parameters; temperature, strain and strain rate.
Abstract
The microstructure attributes are responsible for the deformation mechanism of material which induces shear instability primarily in difficult-to-machine material like Ti6Al4V. Consequently, the dynamic cutting force yields serrations in the chip morphology. Therefore, microstructure induced shear instability has been investigated in the present work using an analytical tool to unveiled the deformation behaviour in correlation with microstructural characteristics (grain sizes, phase fractions and microhardness) and process parameters; temperature, strain and strain rate. The combined effect of feed rate and high cutting speed was found to enhance the strain localization phenomena, which leads to a more pronounced cracking, inducing dynamic cutting force. Segmentation frequency and force-frequency correlation imply that there is a significant transition exhibit from static to dynamic nature of cutting force. The segmentation frequency of the equiaxed microstructure is lowest among the rest at lower cutting speed, which reveals the shear instability dependency on the microstructure. Grain size effect restricts the dislocation movement at the higher cutting speed which led to a larger strain in as-received microstructure followed by equiaxed and fully lamellar microstructure.

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Advancements in material removal mechanism and surface integrity of high speed metal cutting: A review

TL;DR: In this paper, the effect of cutting dynamics on the machining process is discussed and a thorough review on pros and cons of HSMC can help to effectively utilize its advantages and circumvent its shortcomings.
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Thermophysical investigations of Mango seed oil as a novel cutting fluid: A sustainable approach towards waste to value addition

TL;DR: In this article , a novel lubricant has been extracted from mango (Mangifera indica L.) seeds using the soxhlet technique, and the obtained results were compared with edible and non-edible oils, such as sunflower oil (SFO) and mahua seed oil (MaSO) respectively.
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In-Situ Investigation of Resin Shrinkage in the Composite Manufacturing Environment

TL;DR: In this article, a novel approach is developed for measuring the resin shrinkage and strain evolution of an epoxy resin (EPON-862) in the composite manufacturing environment, where the resin is cured in a custom designed autoclave with borosilicate viewports, while digital image correlation (DIC) is used to analyze the strain evolution throughout the cure cycle.
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The machinability of stainless steel 316L fabricated by selective laser melting: typical cutting responses, white layer and evolution of chip morphology

TL;DR: In this article , the machinability of SLMed stainless steel 316 L in hard turning processes through comparison with the machining of wrought 316 L parts has been investigated, and the authors have also revealed how cutting depth affects the plastic deformation in machining SLMed 316 L.
References
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Journal ArticleDOI

Material instability under localized severe plastic deformation during high speed turning of titanium alloy Ti-6.5AL-2Zr-1Mo-1V

TL;DR: In this paper, the material instability and corresponding microstructures during the serrated chip formation of titanium alloy Ti-65AL-2Zr-1Mo-1V by high speed turning was investigated.
Journal ArticleDOI

Onset and evolution of discontinuously segmented chip flow in ultra-high-speed cutting Ti-6Al-4V

TL;DR: In this article, the authors used the momentum diffusion-based shear band evolution model to predict the discontinuity of chip flow in Ti-6Al-4V with a maximum cutting speed of 210 m/s.
Journal ArticleDOI

Grain size dependence of the strain rate sensitivity and activation energy of high temperature deformation of a microduplex stainless steel

TL;DR: In this article, the influence of grain size on the high temperature deformation behavior of a microduplex stainless steel was investigated using tensile tests, and it was shown that a decrease in grain size increases the strain rates at which the material can be deformed without loss of superplasticity.
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