INNER SURFACE ROUGHNESS EVOLUTION AND SLIP DEFORMATION OF MICRO METAL TUBE DURING HOLLOW SINKING

1,6 SUEMATSU Saki
Co-authors:
1 KISHIMOTO Takuma 1 SAKAGUCHI Hayate 4 TASHIMA Kenichi 5 KAJINO Satoshi 5 GONDO Shiori 1,2,3 SUZUKI Shinsuke
Institutions:
1 Department of Applied Mechanics and Aerospace Engineering, Faculty of Science and Engineering, Waseda University, Shinjuku, Tokyo, Japan
2 Department of Materials Science, Faculty of Science and Engineering, Waseda University, Shinjuku, Tokyo, Japan
3 Kagami Memorial Research Institute for Materials Science and Technology, Waseda University, Shinjuku, Tokyo, Japan
4 Factory-Automation Electronics Inc., Osaka, Osaka, Japan
5 Advanced Manufacturing Research Institute, Department of Electronics and Manufacturing, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki, Japan
6 suematsu_s@asagi.waseda.jp
Conference:
30th Anniversary International Conference on Metallurgy and Materials, Brno, Czech Republic, EU, May 26 - 28, 2021
Proceedings:
Proceedings 30th Anniversary International Conference on Metallurgy and Materials
Pages:
282-287
ISBN:
978-80-87294-99-4
ISSN:
2694-9296
Published:
15th September 2021
Proceedings of the conference have already been published in Scopus and we are waiting for evaluation and potential indexing in Web of Science.
Metrics:
676 views / 363 downloads
Abstract

This study aimed to clarify the effect of the activity of the multiple slip systems on the height change of each grain of the inner surface of tube during the hollow sinking. A stainless steel tube with an outer diameter of 1.50 mm, and a wall thickness of 0.045 mm, which had only one grain across the wall thickness, was used as a starting material. The starting material was drawn without an inner tool in a single pass. The height unevenness and crystal orientation of the inner surface of the drawn tube were examined in the same measurement area using a laser microscope and an electron back scattered diffraction, respectively. The Schmid factor was calculated for each grain using the crystal orientation and the stress state which is the tensile and compressive in the drawing and transversal directions, respectively. The grains were generally convex when the calculated strain was positive, vice versa. The calculated strain is the sum of the deformations of the multiple slip systems with large Schmid factors where slip strain  was replaced with the Schmid factor. It was suggested that the height unevenness of the inner surface of the grains are caused by the multiple slip deformation in the drawing of micro metal tubes with a small number of grains across the wall thickness. Therefore, it is expected that the unevenness of the grains can be simply predicted.

Keywords: Hollow sinking, cold drawing, crystal deformation, EBSD, surface roughening

© This is an open access article distributed under the Creative Commons Attribution License which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

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