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Dive into the research topics where Hideo Kurihara is active.

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Featured researches published by Hideo Kurihara.


Polymer Journal | 2018

Elongation induced β- to α-crystalline transformation and microvoid formation in isotactic polypropylene as revealed by time-resolved WAXS/SAXS

Hideo Kurihara; Shinichi Kitade; Kazuyuki Ichino; Isamu Akiba; Kazuo Sakurai

AbstractTime-resolved synchrotron small- and wide-angle X-ray scattering (SAXS) and (WAXS) was carried out during the high-speed elongation of unoriented exclusively β-crystal-containing isotactic polypropylene, and the results were compared with those for α-crystal polypropylene. SAXS and WAXS indicated that there were three different stages in the deformation. In the first stage, microvoid formation started at the upper yield point, which is associated with lamellae perpendicular to the elongation. In the second stage, the meridional β-lamellar SAXS disappeared; the second stage results in a β–α polymorphous transformation that produces a highly oriented α-crystal parallel to the elongation direction. In this stage, equatorial SAXS remained intact mainly because of microvoid formation. In the third stage, we observed decreasing equatorial SAXS and re-emerged meridional SAXS. After the disappearance of the parallel lamellae, which indicates the depletion of the source for the β–α transformation, the remaining perpendicular lamellae became the transformation source. The perpendicular lamellae underwent inter- and intralamellar slipping and fragmentation and then unfolded to produce the oriented α-crystal. The β-crystal film contained many microvoids, which absorbed the stress. This means that the β- and α-crystals may not have been fully subjected to the applied stress, causing lower orientations for the α-crystals and the remaining β-crystals.Time-resolved synchrotron small- and wide-angle X-ray scattering was carried out during the high-speed elongation of unoriented exclusively β-crystal-containing isotactic polypropylene. In the first stage, microvoid formation started. In the second stage, separation of crystalline block, unfolding, and withdrawing of the crystalline chains were occurred. And then the β–α transformation produced a highly oriented α-crystal parallel to the elongation direction. In the third stage, lamellae underwent inter- and intralamellar slipping and fragmentation and then unfolded to produce the oriented α-crystal.


Archive | 1987

Fiber-reinforced rubber composition and production process and use thereof

Takeshi Takaki; Kouhei Kaijiri; Denichi Oda; Kunio Oda; Hideo Kurihara; Takeshi Tanabe


Archive | 1995

Fine fiber-reinforced thermoplastic elastomer composition and process for producing same

Shinji Yamamoto; Kazuyoshi Fujii; Hideo Kurihara; Tatsuo Wada


Polymer Journal | 1981

Monomer unit sequence distribution in partly-epoxidized trans-1,4-polyisoprene.

Osamu Hayashi; Tooru Takahashi; Hideo Kurihara; Haruo Ueno


Archive | 1994

FIBER-REINFORCED ELASTOMER AND ITS PRODUCTION

Kazuyoshi Fujii; Hideo Kurihara; Tatsuro Wada; Shinji Yamamoto; 達郎 和田; 新治 山本; 秀夫 栗原; 一良 藤井


Archive | 1984

Process for producing hydrophilic polymers

Osamu Hayashi; Hideo Kurihara; Yukio Matsumoto


Polymer Journal | 2014

Effects of melt annealing on the miscibility and crystallization of poly(butylene succinate)/poly(ethylene succinate) blends

Toshiyuki Kataoka; Kohji Hiramoto; Hideo Kurihara; Takayuki Ikehara


Archive | 1998

Resin composition reinforced with polyamide fibers and process for producing the same

Shinji Yamamoto; Hideo Kurihara; Kimio Nakayama; Yukihiko Asano


Archive | 1998

Polyamide fiber-reinforced elastomer composition and process for the production thereof

Shinji Yamamoto; Hideo Kurihara; Kimio Nakayama; Yukihiko Asano


Archive | 2010

Fiber-reinforced thermoplastic resin composition and method for producing the fiber-reinforced thermoplastic resin composition

Noriaki Chikuda; Hideo Kurihara; Shoji Yamaguchi; 将司 山口; 秀夫 栗原; 築田憲明

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Isamu Akiba

University of Kitakyushu

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Kazuo Sakurai

University of Kitakyushu

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