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IEEE Transactions on Applied Superconductivity | 2012

Novel Type of Aluminum-Alloy Jacketed

Masahiro Sugimoto; Hitoshi Shimizu; Hirokazu Tsubouchi; Toshiya Okada; Toshirou Sakai; Toshio Ushiyama; K. Takahata; H. Tamura; T. Mito

New process to compose a reacted Nb3Sn superconducting cable with aluminum-alloys has been developed by using friction stir welding (FSW) technique. The FSW joining process, which takes place in the solid phase below the melting point of the materials, has considerable advantages such as a high strength of welding zone and much lower distortion due to both small heat affects and reliable control of joining depth as compared with conventional welding method. In order to realize practical aluminum-alloy jacketed Nb3Sn superconductors, we have carried out elemental researches by using FSW technique. For a fabrication of aluminum-alloy jacketed Nb3Sn superconductor of a dimension 17 mmw × 4.9 mmt a Rutherford type superconducting cable having 18 reacted Nb3Sn strands of diameter 1.0 mm was assembled into a set of channel and fitting-cover made of aluminum-alloy A6061-T6 with filling material indium. Then, their joining parts were connected by using the FSW technique. The measurement on critical current (Ic) of the fabricated Nb3Sn superconductor achieved over 9.5 kA at 8 T, 4.26 K even after bending with a radius of 150 mm in a flatwise direction, which showed no degradation in comparison with Ic values multiplied by number of strands in the cable. As the results, we succeeded in developing novel type of aluminum-alloy jacketed Nb3Sn superconductors manufactured by FSW technique, which have large current capacity, sufficient allowable bending strains for a coil winding and improved contact between a cable and an aluminum-alloy jacket. The developed superconductors will be applicable to react-and-wind superconducting magnets having very large current at high magnetic field such as nuclear fusion reactors and detectors for high energy physics of the next generation.


Archive | 1997

{\rm Nb}_{3}{\rm Sn}

Toshiya Okada; Tomiharu Okita; Yasuhiro Okuri; Kiichi Yamashita


Archive | 1994

Superconductors Manufactured by Friction Stir Welding Technique

Toshiya Okada; Tomiharu Okita; Mikihiro Sugimori; 俊哉 岡田; 幹弘 杉森; 富晴 沖田


Archive | 2005

Weld bonding method

Ryo Shoji; Takayuki Sotome; Toshiya Okada; Yoji Hirano


Archive | 2004

Resistance welding method of metal sheet and resistance welding equipment

Yoji Hirano; Toshiya Okada; Takayuki Saotome; Satoru Shoji; 貴之 五月女; 俊哉 岡田; 洋二 平野; 了 東海林


Archive | 2014

Cast aluminum alloy compressor wheel for a turbocharger

Toshiya Okada; Tetsuya Takamoto; Shoma Kudo


Archive | 2013

COMPRESSOR IMPELLER MADE OF ALUMINUM ALLOY CASTING FOR TURBOCHARGER HAVING EXCELLENT HEAT RESISTANT STRENGTH

Shoma Kudo; 聖真 工藤; Takashi Koase; 小阿瀬 崇; Toshiya Okada; 俊哉 岡田; Yasunori Koike; 保則 小池; Tetsuya Takamoto; 徹也 高本; Nobutaka Suzuki; 鈴木 信隆; Satoshi Tamai; 聡志 玉井; Toru Nakazawa; 中澤 済; Katsutomo Tsukahara; 克智 塚原; Masayuki Kanazawa; 正幸 金澤; Naofumi Mimura; 直史 三村; Keigo Iizawa; 慶吾 飯澤; Yutaka Kobayashi; 小林 豊


Archive | 2012

Liquid container and liquid-consuming device

Masahiro Sugimoto; Hirokazu Tsubouchi; Hitoshi Shimizu; Toshiya Okada; Toshirou Sakai; Kazuya Takahata; H. Tamura; Toshiyuki Mito


Archive | 2012

液体収容体、液体消費装置、液体供給システム、液体収容体ユニット

Toshiro Sakai; 利郎 境; Toshiya Okada; 俊哉 岡田


Archive | 2011

COMPOSITE SUPERCONDUCTOR, AND METHOD FOR PRODUCING COMPOSITE SUPERCONDUCTOR

Tatsuya Sakiyama; 達也 崎山; Yasunobu Miyazaki; 康信 宮崎; Toshiya Okada; 俊哉 岡田

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Tomiharu Okita

The Furukawa Electric Co.

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Hitoshi Shimizu

The Furukawa Electric Co.

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Toshirou Sakai

The Furukawa Electric Co.

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Yoji Hirano

The Furukawa Electric Co.

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K. Takahata

Graduate University for Advanced Studies

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Kazuya Takahata

The Furukawa Electric Co.

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