By Tian Huang (ed.), Dawei Zhang (ed.), Bin Lin (ed.), Anping Xu (ed.), Yanling Tian (ed.), Weiguo Gao (ed.)

ISBN-10: 161344706X

ISBN-13: 9781613447062

This e-book includes chosen papers from the 14th foreign production convention, IMCC2011, held in China. The papers reveal the most recent advancements within the box of fabrics production know-how: from basics to new applied sciences and purposes. specifically, those papers disguise the themes of complicated production expertise and gear, materials-forming technological know-how and expertise, digital  Read more...

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Q. H. J. Zhu: International Journal of Abrasive Technology Vol. 1 (2007), p. Q. -C. Jen and L. 39 Finite Element Modeling of the Broaching Process of Inconel718 Y. L. Y. cn Keywords: Finite element modeling, Inconel718, Cutting forces, Chip curling process, Gullet-to-chip area ratio Abstract. 2D finite element modeling of the broaching process of Inconel718 was conducted by using the commercial software. Models between cutting forces and cutting parameters were obtained. In addition, a general understanding of the effects of two machining variables rake angle and rising per tooth on chip curling process and gullet-to-chip area ratio, was also obtained.

5. It is confirmed that up to the distance z < 140 µm, the temperature rise was not sufficient to generate the phase transformation. There was an unsteady 18 Advances in Materials Manufacturing Science and Technology XIV region (zu) where the hardened layer thickness varied prior to reaching a constant value (δ). The prediction (Fig. 5(a)) shows that zu = 600 µm and δ = 70 µm agree well with the experimental results (Fig. 5(b)) of zu = 400 µm δ = 65 µm. Conclusions A finite element heat transfer model incorporating a moving heat source has been developed to predict the temperature field in traverse cylindrical grinding.

5mm), the grinding wheel contacted entirely with the workpiece by the wheel width regardless the positions θ. It is found that in this zone (Fig. 4(a)), the above conditions for the martensitic transformation were satisfied with the peak temperatures reaching at the same value (≈ 1,050oC). These will enable the generation of a hardened layer with uniformity in thickness. 5mm (Fig. 5mm (Fig. 4(c)). 5mm), the peak temperatures were below the Ac3. Material cannot be hardened but experiences an annealing process.

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