Rate constant for the H˙ + H2O → ˙OH + H2 reaction at elevated temperatures measured by pulse radiolysis

Author:

Muroya Y.123ORCID,Yamashita S.453,Lertnaisat P.673,Sanguanmith S.8910,Meesungnoen J.8910,Jay-Gerin J.-P.8910ORCID,Katsumura Y.45367ORCID

Affiliation:

1. Department of Beam Materials Science, The Institute of Scientific and Industrial Research, Osaka University

2. Ibaraki

3. Japan

4. Nuclear Professional School, School of Engineering, The University of Tokyo

5. Tokai-mura, Naka-gun

6. Department of Nuclear Engineering and Management, School of Engineering, The University of Tokyo, Hongo 7-3-1, Bunkyo-ku

7. Tokyo

8. Département de Médecine Nucléaire et de Radiobiologie, Faculté de Médecine et des Sciences de la Santé, Université de Sherbrooke

9. Sherbrooke

10. Canada

Abstract

Maintaining the structural integrity of materials in nuclear power plants is an essential issue associated with safe operation.

Publisher

Royal Society of Chemistry (RSC)

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

Reference37 articles.

1. A. O. Allen , The Radiation Chemistry of Water and Aqueous Solutions , D. Van Nostrand Co. Ltd , New York , 1961

2. I. Draganic and Z. D.Draganic , The Radiation Chemistry of Water , Academic Press , New York , 1971

3. J. W. T. Spinks and R. J.Woods , An Introduction to Radiation Chemistry , John Wiley & Sons , New York , 1976

4. G. V. Buxton , The Radiation Chemistry of Liquid Water: Principles and Applications in Charged Particle and Photon Interactions with Matter , ed. A. Mozumder and Y. Hatano , 2004 , ch. 12, pp. 331–363

5. Remodeling of the Oxidant Species During Radiolysis of High-Temperature Water in a Pressurized Water Reactor

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