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毕业论文网 > 任务书 > 机械机电类 > 过程装备与控制工程 > 正文

基于微观组织的氢在双相不锈钢中扩散模拟任务书

 2020-05-05 05:05  

1. 毕业设计(论文)的内容和要求

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2. 参考文献

[1] A. Turnbull, R. B. Hutchings, Analysis of hydrogen atom transport in a two-phase alloy, Materials Science Engineering A. 177(1?) (1994) 161-171. [2] E. Owczarek, T. Zakroczymski, Hydrogen transport in a duplex stainless steel, Acta Materialia. 48(12) (2000) 3059-3070. [3] T. Zakroczymski, E. Owczarek, Electrochemical investigation of hydrogen absorption in a duplex stainless steel, Acta Materialia. 50(10) (2002) 2701-2713. [4] T. Zakroczymski, A. Glowacka, W. Swiatnicki, Effect of hydrogen concentration on the embrittlement of a duplex stainless steel, Corrosion Science. 47(6) (2005) 1403-1414. [5] W. C. Luu, P. W. Liu, J. K. Wu, Hydrogen transport and degradation of a commercial duplex stainless steel, Corrosion Science. 44(8) (2002) 1783-1791. [6] V. Olden, C. Thaulow, R. Johnsen, E. 豷tby, T. Berstad, Influence of hydrogen from cathodic protection on the fracture susceptibility of 25%Cr duplex stainless steel ?Constant load SENT testing and FE-modelling using hydrogen influenced cohesive zone elements, Engineering Fracture Mechanics. 76(7) (2009) 827-844. [7] V. Olden, A. Saai, L. Jemblie, R. Johnsen, FE simulation of hydrogen diffusion in duplex stainless steel, International Journal of Hydrogen Energy. 39(2) (2014) 1156-1163. [8] A. Sharrfeddin, S. M. Musa, F. M. Elshawesh, Role of structural orientation on the susceptibility of 2205 duplex stainless steel to hydrogen embrittlement, International Congress on Advances in Applied Physics Materials, American Institute of Physics. 1476 (2012)199-203. [9] E. Dabah, V. Lisitsyn, D. Eliezer, Performance of hydrogen trapping and phase transformation in hydrogenated duplex stainless steels, Materials Science Engineering A. 527(18?9) (2010) 4851-4857. [10] R. Silverstein, D. Eliezer, B. Glam, S. Eliezer, D. Moreno, Evaluation of hydrogen trapping mechanisms during performance of different hydrogen fugacity in a lean duplex stainless steel, Journal of Alloys Compounds. 648 (2015) 601-608. [11] R. Silverstein, D. Eliezer, Hydrogen trapping mechanism of different duplex stainless steels alloys, Journal of Alloys Compounds. 644 (2015) 280-286. [12] W. Brocks, R. Falkenberg, I. Scheider, Coupling aspects in the simulation of hydrogen-induced stress corrosion cracking, Procedia Iutam. 3(1) (2012) 11?4. [13] T. Mente, T. Boellinghaus, Numerical investigations on hydrogen-assisted cracking in duplex stainless steel microstructures, Cracking Phenomena in Welds IV. Springer International Publishing, 2016. [14] E. Nakamachia, N. N. Tamb, H. Morimotoc, Multi-scale finite element analyses of sheet metals by using SEM-EBSD measured crystallographic RVE models, International Journal of Plasticity. 23(3) (2007) 450-489. [15] J. Zhou, A. M. Gokhale, A. Gurumurthy, S.P. Bhat, Realistic microstructural RVE-based simulations of stress杝train behavior of a dual-phase steel having high martensite volume fraction, Materials Science Engineering A. 630 (2015) 107-115.

3. 毕业设计(论文)进程安排

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