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12th International Conference on Nuclear Engineering, Volume 1 | 2004

A New Concept of the 4S Reactor and Thermal Hydraulic Characteristics

Yoshihisa Nishi; Nobuyuki Ueda; Izumi Kinoshita; Tomonari Koga; Satoshi Nishimura; Tsugio Yokoyama; Shigeki Maruyama; Kimitaka Kimura; Shigeo Kasai

CRIEPI (Central Research Institute of Electric Power Industry) has been developing the 4S reactor (Super Safe, Small and Simple reactor) for application to dispersed energy supply and multipurpose use, with Toshiba Corporation [1,2,3,4]. Electrical output of the 4S reactor is from 10MW to 50MW, and burn-up reactivity loss is regulated by neutron reflectors. The reflector that surrounds the core is gradually lifted up to control the reactivity according to core burn-up. 30year core lifetime without refueling can be achieved with the 10MW 4S (4S-10M) reactor. All temperature feedback reactivity coefficients, including coolant void reactivity, of the 4S-10M are negative during the 30year lifetime. A neutron absorption rod is set at the center of the reactor core with the ultimate shutdown rod. The neutron absorption rod used during the former 14 years is moved to the upper part of the reactor core, and the operation is continued through the latter 16 years. The pressure loss of the reactor core is lower than 2kg/cm2 to enable effective utilization of the natural circulation force, and the average burn-up rate is 76GWD/t. To suppress the influence of the scale disadvantage, loop-type reactor design is one of the candidates for the 4S-10M. The size of the reactor vessel can be miniaturized by adopting the loop type design (4S-10ML). In the 4S-10ML design, integrated equipment which includes primary and secondary electromagnetic pumps (EMPs), an intermediate heat exchanger (IHX) and a steam generator (SG) is adopted and collocated by the reactor vessel. The decay heat removal systems of 4S-10ML consist of the reactor vessel air cooling system (RVACS) and SGACS (a similar system to the RVACS, with air cooling of the outside of the integrated equipment vessel). They are completely passive systems. To decrease the construction cost of the reactor building, a step mat structure and the horizontal aseismic structure are adopted. 4S-10ML has unique features in the cooling systems such as integrated equipment and two separate passive decay heat removal systems which operate at the same time. To evaluate the design feasibility, the transition analyses were executed by the CERES code developed by CRIEPI [5]. In this paper, the design concept of 4S-10ML, and the results of the plant transition analyses are described.© 2004 ASME


Progress in Nuclear Energy | 2008

Hydrogen production by high temperature electrolysis with nuclear reactor

Seiji Fujiwara; Shigeo Kasai; Hiroyuki Yamauchi; Kazuya Yamada; Shinichi Makino; Kentaro Matsunaga; Masato Yoshino; Tsuneji Kameda; Takashi Ogawa; Shigeki Momma; Eiji Hoashi


Progress in Nuclear Energy | 2005

Sodium cooled small fast long-life reactor 4S

Nobuyuki Ueda; Izumi Kinoshita; Akio Minato; Shigeo Kasai; Tsugio Yokoyama; Shigeki Maruyama


International Journal of Hydrogen Energy | 2014

Hydrogen electrical energy storage by high-temperature steam electrolysis for next-millennium energy security

Shigeo Kasai


Archive | 2009

Power storage system, and operation method thereof

Yoshiyasu Ito; Tsuneji Kameda; Shigeo Kasai; Kentaro Matsunaga; Akiko Suyama; Yasuo Takagi; Kazuya Yamada; Masato Yoshino; 常治 亀田; 義康 伊藤; 正人 吉野; 和矢 山田; 健太郎 松永; 重夫 笠井; 章子 須山; 康夫 高木


Archive | 2008

Steam electrolytic apparatus and steam electrolytic method

Masato Yoshino; Kentaro Matsunaga; Seiji Fujiwara; Hiroyuki Yamauchi; Shigeo Kasai


Archive | 2012

Electrical power storage system using hydrogen and method for storing electrical power using hydrogen

Shoko Suyama; Yoshiyasu Ito; Shigeo Kasai; Yasuo Takagi; Tsuneji Kameda; Kentaro Matsunaga; Masato Yoshino; Daisuke Horikawa; Kazuya Yamada


Archive | 2007

System and method for electrolyzing high temperature steam

Seiji Fujiwara; Shigeo Kasai; Hakaru Ogawa; 斗 小川; 重夫 笠井; 斉二 藤原


Archive | 2006

High-temperature steam electrolyzer

Toshie Aizawa; Seiji Fujiwara; Shigeo Kasai; Hiroyuki Ota; Hiroyuki Yamauchi; 裕之 大田; 博之 山内; 利枝 相澤; 重夫 笠井; 斉二 藤原


Archive | 2010

Hydrogen energy storage system and hydrogen energy storage method

Shoko Suyama; 須山章子; Yoshiyasu Ito; 伊藤義康; Shigeo Kasai; 笠井重夫; Yasuo Takagi; 高木康夫; Tsuneji Kameda; 亀田常治; Kentaro Matsunaga; 松永健太郎; Masato Yoshino; 吉野正人; Daisuke Horikawa; 堀川大介; Kazuya Yamada; 山田和矢

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