正在加载图片...
J Fail. Anal. and Preven. (2010)10: 399-407 4. Kuromoto, N.K., Guimaraes, A.S., Lepienski, C.M.: Superficial 15. Gong, Y, Cao, J, Meng, X.H., Yang, Z.-G. Pitting corrosion and internal hydrogenation effects on the fatigue life of austenitic on 316L pipes in terephthalic acid (TA)dryer. Mater. Corros steels. Mater. Sci. Eng. A 381(1-2). 216-222(2004) 60(11),899-908(2009) 5. Perng, T P, Altstetter, C.J. Hydrogen permeation and diffusion 16. Masuku, E.S., Mileham, A.R., ty, H, Bramley, A.N., in cryoformed AISI 301 stainless steel. Scripta Metall. 18(1), 67- Johal. C. Detassis. P: A finite mulation of the elec- 70(1984) oplating process. CIRP Ann. Tech.51(1),169172 6. Singh, D.D. N. Ghosh. R. Singh, B K: Fluoride induced coTo- sion of steel rebars in contact with alkaline solutions, cement 17. An, M.Z. Electroplating Theory and Technology. Harbin slurry and concrete mortars. Corr. Sci. 44(8), 1713-1735(2002) tute of Technology Press(2004)(in Chinese) 7. Ju, C P, Rigsbee, J M. The role of microstructure for hydrogen- 18. Chemical Machinery Research Institute of Ministry of Che induced blistering and stepwise cracking in a plain medium Industry: Manual of Corrosion and Protection. Chemical In carbon steel. Mater. Sci. Eng. 74(1), 47-53(1985 Press(1989)(in Chinese) 8. Wang, Y.., Yang, Z -G: Finite element analysis of residual 19. Li, D: Electrochemical Theory (Rev. ed. ) Beijing University of thermal stress in ceramic-lined composite pipe prepared by cen- eronautics and Astronautics Press(1999)(in Chinese trifugal-SHS. Mater Sci Eng. A 460-461. 130-134(2007) 20. Michler, T, Naumann, J. Coatings to reduce hydrogen envi- 9. Wang, Y.-F, Yang, Z.G.: A coupled finite element and meshfree ronment embrittlement of 304 austenitic stainless steel. Surf analysis of erosive wear. Tribol. Int. 42(2), 373-377(2009) Coat. Technol.203(13),1819-1828(2009) 10. Wang, Y -F, Yang, Z.-G.: Finite element model of erosive wear 21. Borchers, C, Michler, T, Pundt, A: Effect of hydrogen on the on ductile and brittle materials. Wear 265(5-6), 871-878(2008) mechanical properties of stainless steels. Adv. Eng. Mater. 10(1 I 1. Folkhard, E: Welding Metallurgy of Stainless Steels. Chemical 12. Wang, C Q, Yu, Y. Fang, Y, Li, T.J. In situ observation of 22. Nelson, H.G.: Testing for Hydrogen Environment Embrittlement: Primary and Secondary Influences, Hydrogen Embrittlement arbide precipitation and dissolution in strip cast 304 stainless Testing, pp. 152-170. ASTM Special Technical Publication steel. J. Iron Steel Res. 19(9), 42-46(2007)(in Chinese) 13. Bungardt, K, Kunze, E, Horn, E: Untersunchungen uber den 23. Ogorodnikova, O.V.: Comparison of hydrogen gas,atom- aufbau des systems eisen-chrom-kohlenstoff. Arch Eisenbutten- and ion-metal interactions. J. Nucl. Mater. 277(2-3), 30-42 wes29,193-203(1958) (2000) 14.Ji, L.N., Yang, Z.-G. Liu, J -S: Failure analysis on blind vias of 24. Woodtli, J, Kieselbach, R. Damage due to hydrogen embrittle PCB for novel mobile phones. J. Fail. Anal. Preven. 8(6), 524- nent and stress corrosion cracking. Eng. Fail. Anal. 7(6), 427- 53202008) Spring4. Kuromoto, N.K., Guimara˜es, A.S., Lepienski, C.M.: Superficial and internal hydrogenation effects on the fatigue life of austenitic steels. Mater. Sci. Eng. A 381(1–2), 216–222 (2004) 5. Perng, T.P., Altstetter, C.J.: Hydrogen permeation and diffusion in cryoformed AISI 301 stainless steel. Scripta Metall. 18(1), 67– 70 (1984) 6. Singh, D.D.N., Ghosh, R., Singh, B.K.: Fluoride induced corro￾sion of steel rebars in contact with alkaline solutions, cement slurry and concrete mortars. Corr. Sci. 44(8), 1713–1735 (2002) 7. Ju, C.P., Rigsbee, J.M.: The role of microstructure for hydrogen￾induced blistering and stepwise cracking in a plain medium carbon steel. Mater. Sci. Eng. 74(1), 47–53 (1985) 8. Wang, Y.-F., Yang, Z.-G.: Finite element analysis of residual thermal stress in ceramic-lined composite pipe prepared by cen￾trifugal-SHS. Mater. Sci. Eng. A 460–461, 130–134 (2007) 9. Wang, Y.-F., Yang, Z.-G.: A coupled finite element and meshfree analysis of erosive wear. Tribol. Int. 42(2), 373–377 (2009) 10. Wang, Y.-F., Yang, Z.-G.: Finite element model of erosive wear on ductile and brittle materials. Wear 265(5–6), 871–878 (2008) 11. Folkhard, E.: Welding Metallurgy of Stainless Steels. Chemical Industry Press (2004) (in Chinese) 12. Wang, C.Q., Yu, Y., Fang, Y., Li, T.J.: In situ observation of carbide precipitation and dissolution in strip cast 304 stainless steel. J. Iron Steel Res. 19(9), 42–46 (2007) (in Chinese) 13. Bungardt, K., Kunze, E., Horn, E.: Untersunchungen u¨ber den aufbau des systems eisen-chrom-kohlenstoff. Arch Eisenbu¨tten￾wes 29, 193–203 (1958) 14. Ji, L.-N., Yang, Z.-G., Liu, J.-S.: Failure analysis on blind vias of PCB for novel mobile phones. J. Fail. Anal. Preven. 8(6), 524– 532 (2008) 15. Gong, Y., Cao, J., Meng, X.-H., Yang, Z.-G.: Pitting corrosion on 316L pipes in terephthalic acid (TA) dryer. Mater. Corros. 60(11), 899–908 (2009) 16. Masuku, E.S., Mileham, A.R., Hardisty, H., Bramley, A.N., Johal, C., Detassis, P.: A finite element simulation of the elec￾troplating process. CIRP Ann. Manuf. Tech. 51(1), 169–172 (2002) 17. An, M.Z.: Electroplating Theory and Technology. Harbin Insti￾tute of Technology Press (2004) (in Chinese) 18. Chemical Machinery Research Institute of Ministry of Chemical Industry: Manual of Corrosion and Protection. Chemical Industry Press (1989) (in Chinese) 19. Li, D.: Electrochemical Theory (Rev. ed.). Beijing University of Aeronautics and Astronautics Press (1999) (in Chinese) 20. Michler, T., Naumann, J.: Coatings to reduce hydrogen envi￾ronment embrittlement of 304 austenitic stainless steel. Surf. Coat. Technol. 203(13), 1819–1828 (2009) 21. Borchers, C., Michler, T., Pundt, A.: Effect of hydrogen on the mechanical properties of stainless steels. Adv. Eng. Mater. 10(1– 2), 11–23 (2008) 22. Nelson, H.G.: Testing for Hydrogen Environment Embrittlement: Primary and Secondary Influences, Hydrogen Embrittlement Testing, pp. 152–170. ASTM Special Technical Publication (1974) 23. Ogorodnikova, O.V.: Comparison of hydrogen gas-, atom￾and ion-metal interactions. J. Nucl. Mater. 277(2–3), 30–42 (2000) 24. Woodtli, J., Kieselbach, R.: Damage due to hydrogen embrittle￾ment and stress corrosion cracking. Eng. Fail. Anal. 7(6), 427– 450 (2000) J Fail. Anal. and Preven. (2010) 10:399–407 407 123
<<向上翻页
©2008-现在 cucdc.com 高等教育资讯网 版权所有