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Volume 1: Plant Operations, Maintenance and Life Cycle; Component Reliability and Materials Issues; Codes, Standards, Licensing and Regulatory Issues; Fuel Cycle and High Level Waste Management | 2006

Development and Application of Laser Peening System for PWR Power Plants

Masaki Yoda; Itaru Chida; Satoshi Okada; Makoto Ochiai; Yuji Sano; Naruhiko Mukai; Gaku Komotori; Ryoichi Saeki; Toshimitsu Takagi; Masanori Sugihara; Hirokata Yoriki

Laser peening is a process to improve residual stress from tensile to compressive in surface layer of materials by irradiating high-power laser pulses on the material in water. Toshiba has developed a laser peening system composed of Q-switched Nd:YAG laser oscillators, laser delivery equipment and underwater remote handling equipment. We have applied the system for Japanese operating BWR power plants as a preventive maintenance measure for stress corrosion cracking (SCC) on reactor internals like core shrouds or control rod drive (CRD) penetrations since 1999. As for PWRs, alloy 600 or 182 can be susceptible to primary water stress corrosion cracking (PWSCC), and some cracks or leakages caused by the PWSCC have been discovered on penetrations of reactor vessel heads (RVHs), reactor bottom-mounted instrumentation (BMI) nozzles, and others. Taking measures to meet the unconformity of the RVH penetrations, RVHs themselves have been replaced in many PWRs. On the other hand, it’s too time-consuming and expensive to replace BMI nozzles, therefore, any other convenient and less expensive measures are required instead of the replacement. In Toshiba, we carried out various tests for laser-peened nickel base alloys and confirmed the effectiveness of laser peening as a preventive maintenance measure for PWSCC. We have developed a laser peening system for PWRs as well after the one for BWRs, and applied it for BMI nozzles, core deluge line nozzles and primary water inlet nozzles of Ikata Unit 1 and 2 of Shikoku Electric Power Company since 2004, which are Japanese operating PWR power plants. In this system, laser oscillators and control devices were packed into two containers placed on the operating floor inside the reactor containment vessel. Laser pulses were delivered through twin optical fibers and irradiated on two portions in parallel to reduce operation time. For BMI nozzles, we developed a tiny irradiation head for small tubes and we peened the inner surface around J-groove welds after laser ultrasonic testing (LUT) as the remote inspection, and we peened the outer surface and the weld for Ikata Unit 2 supplementary. For core deluge line nozzles and primary water inlet nozzles, we peened the inner surface of the dissimilar metal welding, which is of nickel base alloy, joining a safe end and a low alloy metal nozzle. In this paper, the development and the actual application of the laser peening system for PWR power plants will be described.Copyright


ASME 2008 Pressure Vessels and Piping Conference | 2008

Master Curve Approach for Some Japanese Reactor Pressure Vessel Steels

Minoru Tomimatsu; Takashi Hirano; Seiji Asada; Ryoichi Saeki; Naoki Miura; Norimichi Yamashita; Akira Yonehara; Itaru Saito

The Master Curve Approach for assessing fracture toughness of reactor pressure vessel (RPV) steels has been accepted throughout the world. The Master Curve Approach using fracture toughness data obtained from RPV steels in Japan has been investigated in order to incorporate this approach into the Japanese Electric Association (JEA) Code 4206, “Method of Verification Tests of the Fracture Toughness for Nuclear Power Plant Components”. This paper presents the applicability of the Master Curve Approach for Japanese RPV steels.Copyright


Archive | 2006

Laser-based maintenance apparatus

Makoto Ochiai; Yoshiaki Ono; Takahiro Miura; Mitsuaki Shimamura; Masaki Yoda; Hidehiko Kuroda; Itaru Chida; Fukashi Osakata; Satoshi Yamamoto; Kentaro Tsuchihashi; Ryoichi Saeki


Archive | 2006

Laser shock hardening method and apparatus

Yuji Sano; Naruhiko Mukai; Masaki Yoda; Yoshiaki Ono; Ryoichi Saeki; Hideki Naito


Archive | 2006

Laser-based apparatus for ultrasonic flaw detection

Makoto Ochiai; Yoshiaki Ono; Takahiro Miura; Mitsuaki Shimamura; Masaki Yoda; Hidehiko Kuroda; Itaru Chida; Fukashi Osakata; Satoshi Yamamoto; Kentaro Tsuchihashi; Ryoichi Saeki; Masahiro Yoshida; Tetsuro Aikawa; Satoshi Okada; Toru Onodera; Akira Tsuyuki


Archive | 2012

LASER SHOCK HARDENING APPARATUS

Yuji Sano; Naruhiko Mukai; Masaki Yoda; Yoshiaki Ono; Ryoichi Saeki; Hideki Naito


Archive | 2006

Ultrasonic laser-based maintenance apparatus

Makoto Ochiai; Yoshiaki Ono; Takahiro Miura; Mitsuaki Shimamura; Masaki Yoda; Hidehiko Kuroda; Itaru Chida; Fukashi Osakata; Satoshi Yamamoto; Kentaro Tsuchihashi; Ryoichi Saeki; Masahiro Yoshida; Tetsuro Aikawa; Satoshi Okada; Toru Onodera; Akira Tsuyuki


Archive | 2006

Surface inspecting method using a surface wave

Makoto Ochiai; Yoshiaki Ono; Takahiro Miura; Mitsuaki Shimamura; Masaki Yoda; Hidehiko Kuroda; Itaru Chida; Fukashi Osakata; Satoshi Yamamoto; Kentaro Tsuchihashi; Ryoichi Saeki; Masahiro Yoshida; Tetsuro Aikawa; Satoshi Okada; Toru Onodera; Akira Tsuyuki


Volume 1B: Codes and Standards | 2018

Study on Promoting Use of Repair, Replacement and Mitigation Techniques in Maintenance Activities of Nuclear Power Plants

Koji Dozaki; Takayuki Aoki; Koji Koyama; Masanori Kanno; Ryoichi Saeki


Archive | 2006

Laserbasiertes Wartungsgerät unter Verwendung von Ultraschall

Makoto Ochiai; Yoshiaki Ono; Takahiro Miura; Mitsuaki Shimamura; Masaki Yoda; Hidehiko Kuroda; Itaru Chida; Fukashi Osakata; Satoshi Yamamoto; Kentaro Tsuchihashi; Ryoichi Saeki; Masahiro Yoshida; Tetsuro Aikawa; Satoshi Okada; Toru Onodera; Akira Tsuyuki

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