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Featured researches published by Shigeo Hattori.


Journal of The Mechanics and Physics of Solids | 1997

Yield function development for aluminum alloy sheets

Frédéric Barlat; Yasushi Maeda; K. Chung; Masahiro Yanagawa; J.C. Brem; Yasuhiro Hayashida; Daniel J. Lege; Kuniaki Matsui; S.J. Murtha; Shigeo Hattori; R. Becker; S. Makosey

In this work, yield surfaces were measured for binary aluminum-magnesium sheet samples which were fabricated by different processing paths to obtain different microstructures. The yielding behavior was measured using biaxial compression tests on cubic specimens made from laminated sheet samples. The yield surfaces were also predicted from a polycrystal model using crystallographic texture data as input and from a phenomenological yield function usually suitable for polycrystalline materials. The experimental yield surfaces were found to be in good agreement with the polycrystal predictions for all materials and with the phenomenological predictions for most materials. However, for samples processed with high cold rolling reduction prior to solution heat treatment, a significant difference was observed between the phenomenological and the experimental yield surfaces in the pure shear region. In this paper, a generalized phenomenological yield description is proposed to account for the behavior of the solute strengthened aluminum alloy sheets studied in this work. It is subsequently shown that this yield function is suitable for the description of the plastic behavior of any aluminum alloy sheet.


International Journal of Plasticity | 1997

Yielding description for solution strengthened aluminum alloys

Frédéric Barlat; R. Becker; Yasuhiro Hayashida; Yasushi Maeda; Masahiro Yanagawa; K. Chung; J.C. Brem; Daniel J. Lege; Kuniaki Matsui; S.J. Murtha; Shigeo Hattori

In this work, yield surfaces were measured for binary aluminum-magnesium sheet samples which were fabricated by different processing paths to obtain different microstructures. The yielding behavior was measured using biaxial compression tests on cubic specimens made from laminated sheet samples. The yield surfaces were also predicted from a polycrystal model using crystallographic texture data as input and from a phenomenological yield function proposed previously. In general, experimental and predicted yield surfaces were found to be in relatively good agreement. However, for samples processed with high cold rolling reduction prior to solution heat treatment, a significant difference was observed between the phenomenological yield surface and the experimental/polycrystal yield surfaces in the pure shear region. In this paper, a refinement was proposed for the phenomenological yield description to account for the behavior of the solute strengthened aluminum alloy sheets studied in this work, and in general, for any sheet metal. This yield function was implemented into a finite element code and sample computations were carried out to assess the validity and the accuracy of this improved material description.


International Journal of Plasticity | 1998

Experimental analysis of aluminum yield surface for binary AlMg alloy sheet samples

Yasushi Maeda; Masahiro Yanagawa; Frédéric Barlat; K. Chung; Yasuhiro Hayashida; Shigeo Hattori; Kuniaki Matsui; J.C. Brem; Daniel J. Lege; S.J. Murtha; Takashi Ishikawa

Abstract In this work, the yield surfaces of binary aluminum-magnesium alloy sheet samples were measured using biaxial compression tests. Sheet samples of a given material were stacked and bonded together with epoxy and cubic compression specimens were machined out of the laminate. The yielding behavior was assumed to be independent of the hydrostatic pressure. In the analysis of the biaxial compression tests, the effects of friction and of the elasticity of the die were accounted for. These effects were studied with the aid of finite element method (FEM) simulations of the test which proved to be useful in avoiding systematic errors. The yield surfaces of three binary alloy sheet samples containing 5 wt% Mg but with different crystallographic textures were analyzed. The different textures resulted from processing under different thermomechanical conditions. The experimental yield surfaces were compared to predictions made with the Taylor-Bishop and Hill (TBH) model and with a phenomenological yield function. The experimental and polycrystal yield surfaces were found to be in fair agreement. The yield function was found to be a suitable description of the plastic behavio for only two of the materials studied.


Isij International | 1992

Prediction of Microstructure Distribution in the Through-thickness Direction during and after Hot Rolling in Carbon Steels.

Shigenobu Nanba; Mitsuru Kitamura; Masao Shimada; Masaaki Katsumata; Tsuyoshi Inoue; Hiroki Imamura; Yasushi Maeda; Shigeo Hattori


Isij International | 1991

Near Net Shape Forging of Titanium Alloy Turbine Blade

Akiyasu Morita; Shigeo Hattori; Kazuhito Tani; Atsushi Takemura; Yoshio Ashida


Archive | 2000

Al--Mg based alloy sheets with good press formability

Frédéric Barlat; J.C. Brem; Shigeo Hattori; Yasuhiro Hayashida; Daniel J. Lege; Yasushi Maeda; Kuniaki Matsui; Shawn J. Murtha; Masahiro Yanagawa; Kwansoo Chung; Narikazu Hashimoto


Archive | 1980

Manufacture of metallic belt

Yoshio Ashida; Shigeo Hattori; Koji Hosomi; Teruyuki Takahara; Hironaga Tsutsumi


Archive | 1987

Method for continuously manufacturing thin sheet of hard-to-work material

Shigeo Hattori; Yasushi Maeda; Tomiharu Matsushita


Archive | 1994

DEEP DRAW FORMING METHOD FOR METALLIC SHEET

Shigeo Hattori; Yasuhiro Hayashida; Yasushi Maeda; 恭志 前田; 重夫 服部; 康宏 林田


Archive | 1996

Method of fabricating probe unit

Shigeo Hattori; Toshiaki Yutori; Nobuhiro Hara; Kunihiko Nishioka; Masahiko Uchimura; Toshiaki Okumura; Masakazu Nakao

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Frédéric Barlat

Pohang University of Science and Technology

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K. Chung

Seoul National University

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