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Acta Metall Sin  2006, Vol. 42 Issue (7): 681-688     DOI:
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Progress in Materials Characterization Technique Based on in Situ Neutron Diffraction
XU Pingguang; TOMOTA Yo
Graduate School of Science and Engineering;Ibaraki University; Hitachi 316-8511; Japan
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XU Pingguang; TOMOTA Yo. Progress in Materials Characterization Technique Based on in Situ Neutron Diffraction. Acta Metall Sin, 2006, 42(7): 681-688 .

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Abstract  Neutron diffraction is an atomic- or molecular-level characterization technique of material structures and microscopic movements because neutron is an electronic neutral subatomic particle with certain magnetic moment, strong penetration, more sensitive to light elements than X-ray and electron. The in situ neutron diffraction as one of materials four-dimensional characterization techniques has been reviewed with much emphasis on its applications to metallic materials science, such as residual stress evaluation, plastic deformation mechanism, solid phase transformation and nanometer clusters.
Key words:  Neutron scattering      In situ neutron diffraction      Phase transformation      Plastic deformation      Residual str     
Received:  30 November 2005     
ZTFLH:  O722.7  

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https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2006/V42/I7/681

[1] Bacon G E. Neutron Diffraction.Oxford:Clarendon Press, 1975: 1
[2] Niimura N,Torikai N,Uesaka M,Tomota Y,Sakuma T,Nishihara Y,Nakanishi T,Takatsuma T.Proc Ibaraki Symp on Industrial Applications of Neutron Science (hosted by Ibaraki-ken Govemment).Tsukuba,Japan, 2005: 9 (新村信雄,鸟饲直也,上坂 充,友田 阳,佐久间隆,西原美 一,中西友子,高妻孝光.茨城中性子产业利用ツソホヅヮム讲 演资料集(茨城主催).日本,筑波,2005:9)
[3] Chen D F, Gou C, Ye C T. Nucl Tech, 2005; 28(2): 127 (陈东风,勾 成,叶春堂.核技术, 2005;28(2):127)
[4] Tomota Y. Ferrum, 2004; 9: 544 (友田阳.ふぇらむ,2004;9:544)
[5] Tomota Y.CAMP-ISIJ, 2005; 18: 491
[6] Poulsen H F,Garbe S,Lorentzen T,Juul Jensen D, Poulsen F W,Andersen N H,Frello T,Feidenhans'l R, Graafsma H. J Synchrot Radiat, 1997; 4: 147
[7] Margulies L, Winther G, Poulen H F. Science, 2001; 291:2392
[8] Ohnuma M, Hono K, Linderoth S,Pedersen J S,Yoshizawa Y, Onodera H. Acta Mater, 2000 48: 4783
[9] Nakamura Y. J Magn Magn Mater,1999; 200: 634
[10] Allen D R, Sayers C M. NDT Int, 1981; 14: 263
[11] Hutchings M T,Withers P J,Holden T M, Lorentzen T. Introduction to the Characterization of Residual Stress by Neutron Diffraction.Boca Raton:Taylor and Francis Group, 2005: 1
[12] Jin X J, Shiota Y, Tomota Y,Matsushima,Suzuki H,Moriai A. CAMP-ISIJ, 2005; 18: 497
[13] Webster P J. In:Fitzpatrick M E,Lodini A, eds.,Analysis of Residual Stress by Diffraction Using Neutron and Synchrotron Radiation,London:Taylor and Francis Group, 2003: 209
[14] Shiota Y,Xu P G,Tomota Y,Suzuki H,Holden T M. Unpublished Work
[15] Donadille C,Valle R,Dervin P,Penelle R.Acta Metall, 1989; 37: 1547
[16] Sprauel J M. In: Fitzpatrick M E, Lodini A eds., Analysis of Residual Stress by Diffraction Using Neutron and Synchrotron Radiation.London:Taylor and Francis Group, 2003: 78
[17] Tomota Y, Lukas P, Harjo S, Park J H,Tsuchida N, Neov D. Acta Mater, 2003; 51: 819
[18] Tomota Y,Tokuda H,Adachi Y, Wakita M, Minakawa N, Moriai A, Morii Y. Acta Mater, 2004; 52: 5737
[19] Kanie A, Tomota Y,Suzuki T,Torii S,Kamiyama T. CAMP-ISIJ,2003;16:1453
[20] Ikeda K,Tomota Y,Suzuki J.CAMP-ISIJ,2006;19(3): 36
[21] Xu P G, Tomota Y, Lukas P,Muransky O,Adachi Y. Sci Eng A, accepted
[22] Xu P G, Tomota Y,Lukas P, Adachi Y.Iron Steel,2005; 40(suppl.): 234
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