J. Mater. Sci. Technol. ›› 2023, Vol. 161: 88-100.DOI: 10.1016/j.jmst.2023.03.035
• Research Article • Previous Articles Next Articles
Zhao Shena, Xiaoqin Zenga,*, Shengchuan Wub,*, Hongbing Yuc, Benjamin M. Jenkinsd, Phani Karamchedd, Michael P. Moodyd, Jianqiang Zhange, You Wangd,f, Sergio Lozano-Perezd,*
Received:
2022-11-27
Accepted:
2023-03-18
Published:
2023-10-20
Online:
2023-04-29
Contact:
*E-mail addresses: xqzeng@sjtu.edu.cn (X. Zeng), wusc@swjtu.edu.cn (S. Wu), Sergio.lozano-perez@materials.ox.ac.uk (S. Lozano-Perez)
Zhao Shen, Xiaoqin Zeng, Shengchuan Wu, Hongbing Yu, Benjamin M. Jenkins, Phani Karamched, Michael P. Moody, Jianqiang Zhang, You Wang, Sergio Lozano-Perez. The origin of different morphology of internal oxide precipitates in ferritic and austenitic steels[J]. J. Mater. Sci. Technol., 2023, 161: 88-100.
[1] C. Cabet, F. Dalle, E. Gaganidze, J. Henry, H. Tanigawa, J. Nucl. Mater. 523 (2019) 510-537. [2] I.G. Wright, R.B. Dooley, Int. Mater. Rev. 55 (2010) 129-167. [3] S.R.J.Saunders, M. Monteiro, F.Rizzo, Prog. Mater. Sci. 53 (2008) 775-837. [4] N. Birks, G.H. Meier, F.S. Pettit, Introduction to the high temperature oxidation of metals, Cambridge University Press, 2006. [5] D.J. Young, Elsevier, 2008. [6] T. Yang, X. Liu, X. Cheng, Nucl. Eng. Des. 249 (2012) 159-165. [7] J. Hofmeister, C. Waata, J. Starflinger, T. Schulenberg, E. Laurien, Nucl. Eng. Des. 237 (2007) 1513-1521. [8] R. Viswanathan, J.F. Henry, J. Tanzosh, G. Stanko, J. Shingledecker, B. Vitalis, R. Purgert, J. Mater. Eng.Perform. 14 (2005) 281-292. [9] Chunwen Sun, Rob Hui, Wei Qu, Sing Yick, Corros. Sci. 51 (2009) 2508-2523. [10] R. Viswanathan, J. Sarver, J.M. Tanzosh, J. Mater. Eng.Perform. 15 (2006) 255-274. [11] F. Abe, Sci. Technol. Adv. Mater. 9 (2008) 013002. [12] S.J. Zinkle, G.S. Was, Acta Mater. 61 (2013) 735-758. [13] C. Wagner, Z. Elektrochem. 63 (1959) 772-782. [14] K. Chen, L. Zhang, Z. Shen, X. Zeng, Corros. Sci. 200 (2022) 110212. [15] G.S. Was, P. Ampornrat, G. Gupta, S. Teysseyre, E.A. West, T.R. Allen, K. Srid-haran, L.Tan, Y. Chen, X. Ren, C. Pister, J. Nucl. Mater. 371 (2007) 176-201. [16] Z. Shen, J. Zhang, S. Wu, X. Luo, B.M. Jenkins, M.P. Moody, Ser-gio Lozano-Perez, X.Zeng, Acta Mater. 226 (2022) 117634. [17] X. Guo, Y. Fan, W. Gao, R. Tang, K. Chen, Z. Shen, L. Zhang, Ann. Nucl. Energy. 127 (2019) 351-363. [18] X. Luo, R. Tang, C. Long, Z. Miao, Q. Peng, C. Li, Nucl. Eng. Technol. 40 (2008) 147-154. [19] X. Guo, K. Chen, W. Gao, Z. Shen, P. Lai, L. Zhang, Corros. Sci. 127 (2017) 157-167. [20] X. Guo, K. Chen, W. Gao, Z. Shen, L. Zhang, Corros. Sci. 138 (2018) 297-306. [21] Z. Shen, L. Zhang, R. Tang, Q. Zhang, J. Nucl. Mater. 454 (2014) 274-282. [22] Z. Shen, L. Zhang, R. Tang, Q. Zhang, J. Nucl. Mater. 458 (2015) 206-215. [23] J. Ju, Z. Shen, M. Kang, J. Zhang, J. Wang, Corros. Sci. 199 (2022) 110203. [24] S.M. Li, L.B. Fu, W.L. Zhang, W. Li, J. Sun, T.G. Wang, S.M. Jiang, J. Gong, C. Sun, J. Mater. Sci.Technol. 120 (2022) 65-77. [25] S. Zhang, H. Li, Z. Jiang, H. Feng, Z. Wen, J. Ren, P. Han, J. Mater. Sci.Technol. 115 (2022) 103-114. [26] K. Chen, Z. Liu, X. Guo, H. Wang, Z. Shen, X. Zeng, Corros. Sci. 195 (2022) 110019. [27] T.A. Listyawan, M.P. Agustianingrum, Y.S. Na, K.R. Lim, N. Park, J. Mater. Sci.Technol. 129 (2022) 115-126. [28] S. Penttilä, A. Toivonen, J. Li, W. Zheng, R. Novotny, J. Supercrit. Fluids 81 (2013) 157-163. [29] X. Kong, W. Sun, Q. Wang, M. Chen, T. Zhang, F. Wang, J. Mater. Sci.Technol. 131 (2022) 253-263. [30] G.S. Was, S. Teysseyre, Z. Jiao, Corrosion 62 (2006) 989-1005. [31] R. Novotny, P. Hähner, J. Siegl, P. Haušild, S. Ripplinger, S. Penttilä, A. Toivonen, J. Nucl. Mater. 409 (2011) 117-123. [32] X. Gao, X. Wu, Z. Zhang, H. Guan, E.H. Han, J. Supercrit. Fluids 42 (2007) 157-163. [33] H. Chen, R. Tang, C. Long, G. Le, Corros. Sci. 161 (2019) 108188. [34] Z. Shen, D. Tweddle, H. Yu, G. He, A. Varambhia, P. Karamched, F. Hofmann, A.J. Wilkinson, M.P. Moody, L. Zhang, S. Lozano-Perez, Acta Mater. 194 (2020) 321-336. [35] Y. Li, T. Xu, S. Wang, J. Yang, B. Fekete, J. Yang, A. Wu, J. Qiu, Y. Xu, D.D.Mac-donald, Oxid.Met. 92 (2019) 27-48. [36] Z. Shen, K. Chen, H. Yu, B. Jenkins, Y. Ren, N. Saravanan, G. He, X. Luo, P.A. Bagot, M.P. Moody, L. Zhang, Acta Mater. 194 (2020) 522-539. [37] K. Chen, L. Zhang, Z. Shen, Acta Mater. 194 (2020) 156-167. [38] L. Tan, X. Ren, T.R. Allen, Corros. Sci. 52 (2010) 1520-1528. [39] Y. Chen, K. Sridharan, T. Allen, Corros. Sci. 48 (2006) 2843-2854. [40] K. Yin, S. Qiu, R. Tang, Q. Zhang, L. Zhang, J. Supercrit. Fluids 50 (2009) 235-239. [41] L. Tan, M.T. Machut, K. Sridharan, T.R. Allen, J. Nucl. Mater. 371 (2007) 161-170. [42] J. Bischoff, A.T. Motta, J. Nucl. Mater. 424 (2012) 261-276. [43] J. Bischoff, A.T. Motta, J. Nucl. Mater. 430 (2012) 171-180. [44] I. Betova, M. Bojinov, P. Kinnunen, V. Lehtovuori, S. Peltonen, S. Penttilä, T. Saario, J. Electrochem. Soc. 153 (2006) 464. [45] L. Sun, W.P. Yan, Adv. Mater. Sci. Eng. 2017 (2017) 9154534. [46] N.Q. Zhang, H. Xu, B.R. Li, Y. Bai, D.Y. Liu, Corros. Sci. 56 (2012) 123-128. [47] J. Bischoff, A.T. Motta, C. Eichfeld, R.J. Comstock, G. Cao, T.R. Allen, J. Nucl. Mater. 441 (2013) 604-611. [48] L. Tan, Y. Yang, T.R. Allen, Corros. Sci. 48 (2006) 3123-3138. [49] J. Bischoff, A.T. Motta, R.J. Comstock, J. Nucl. Mater. 392 (2009) 272-279. [50] X. Zhong, X. Wu, E.H. Han, Corros. Sci. 90 (2015) 511-521. [51] Z. Zhu, H. Xu, D. Jiang, X. Mao, N. Zhang, Corros. Sci. 113 (2016) 172-179. [52] X. Zhong, X. Wu, E.H. Han, J. Supercrit. Fluids 72 (2012) 68-77. [53] Z. Shen, K. Chen, X. Guo, L. Zhang, J. Nucl. Mater. 514 (2019) 56-65. [54] K. Li, Z. Wang, K. Song, K. Khanlari, X.S. Yang, Q. Shi, X. Liu, X. Mao, J. Mater. Sci.Technol. 125 (2022) 171-181. [55] H. Hu, Z. Zhou, M. Li, L. Zhang, M. Wang, S. Li, C. Ge, Corros. Sci. 65 (2012) 209-213. [56] A. Atkinson, R.I. Taylor, High Temperatures, High Pressures (Print) 14 (1982) 571-580. [57] A.M. Pritchard, N.E.W.Hartley, J.F. Singleton, A.E. Truswell, Corros. Sci. 20 (1980) 1-17. [58] M.R. Taylor, J.M. Calvert, D.G. Lees, D.B. Meadowcroft, Oxid. Met. 14 (1980) 499-516. [59] J. Robertson, M.I. Manning, Mater. Sci. Technol. 4 (1988) 1064-1071. [60] F.H. Stott, G.C. Wood, Mater. Sci. Technol. 4 (1988) 1072-1078. [61] R.A. Rapp. Kinetics, Corrosion 21 (1965) 382-401. [62] N. Otsuka, Y. Shida, H. Fujikawa, Oxid. Met. 32 (1989) 13-45. [63] R.C. Newman, F. Scenini, Corrosion 64 (2008) 721-726. [64] W. Zhao, Y. Kang, J.M.A.Orozco, B. Gleeson, Oxid. Met. 83 (2015) 187-201. [65] D.P. Whittle, Y. Shida, G.C. Wood, F.H. Stott, B.D. Bastow, Philos. Mag. A 46 (1982) 931-949. [66] D.L. Douglass, Oxid. Met. 44 (1995) 81-111. [67] D.J. Young, Mater. Sci. Forum 696 (2011) 1-11. [68] K. Chen, L. Zhang, S. Wu, Z. Shen, Scr. Mater. 197 (2021) 113814. [69] D. Du, K. Chen, L. Zhang, Z. Shen, Corros. Sci. 170 (2020) 108652. [70] L. Luo, M. Su, P. Yan, L. Zou, D.K. Schreiber, D.R. Baer, Z. Zhu, G. Zhou, Y. Wang, S.M. Bruemmer, Z. Xu, Nat. Mater. 17 (2018) 514-518. [71] D.G. Xie, Z.J. Wang, J. Sun, J. Li, E. Ma, Z.W. Shan, Nat. Mater. 14 (2015) 899-903. [72] A. King, G. Johnson, D. Engelberg, W. Ludwig, J. Marrow, Science 321 (2008) 382-385. [73] T.L. Burnett, P.J. Withers, Nat. Mater. 18 (2019) 1041-1049. [74] A.J. Wilkinson, D. Randman, Philos. Mag. 90 (2010) 1159-1177. [75] W. Pantleon, Scr. Mater. 58 (2008) 994-997. [76] J.F. Nye, Acta. Metall. 1 (1953) 153-162. [77] P.J. Konijnenberg, S. Zaefferer, D. Raabe, Acta Mater. 99 (2015) 402-414. [78] M.J. Hÿtch, E. Snoeck, R. Kilaas, Ultramicroscopy 74 (1998) 131-146. [79] A. Pratt, L. Lari, O. Hovorka, A. Shah, C. Woffinden, S.P. Tear, C. Binns, R. Kröger, Nat. Mater. 13 (2014) 26-30. [80] T. Chen, J.G. Gigax, L. Price, D. Chen, S. Ukai, E. Aydogan, S.A. Maloy, F.A.Gar-ner, L.Shao, Acta Mater. 116 (2016) 29-42. [81] J.W. Bai, P.P. Liu, Y.M. Zhu, X.M. Li, C.Y. Chi, H.Y. Yu, X.S. Xie, Q. Zhan, Mater. Sci. Eng. A 584 (2013) 57-62. [82] B. Appolaire, E. Aeby-Gautier, J.D.C.Teixeira, M. Dehmas, S.Denis, Philos. Mag. 90 (2010) 461-483. [83] G. Böhm, M. Kahlweit, Acta Metall. 12 (1964) 641-648. [84] F. Gesmundo, P. Castello, F. Viani, C. Roos, Oxid. Met. 49 (1998) 237-260. [85] D. Jullian, A. Prillieux, J. Zhang, D.J. Young, Mater. Corros. 68 (2017) 197-204. [86] L.S. Darken, Trans. ASM 54 (1961) 600-642. [87] J.B. Leblond, Oxid. Met. 75 (2011) 93-101. [88] W. Zhao, Y. Kang, J.M.A.Orozco, B. Gleeson, Oxid. Met. 83 (2015) 187-201. [89] A. Martinez-Villafane, F.H. Stott, J.G.Chacon-Nava, G.C. Wood, Oxid. Met. 57 (2002) 267-279. [90] H.W. Yen, C.Y. Chen, T.Y. Wang, C.Y. Huang, J.R. Yang, Mater. Sci. Technol.-Lond. 26 (2010) 421-430. [91] S. Shanmugam, R.D.K. Misra, T. Mannering, D. Panda, S.G. Jansto, Mater. Sci. Eng. A 437 (2006) 436-445. [92] D.A. Porter, K.E. Easterling, London, 1992. [93] T. Terachi, T. Yamada, T. Miyamoto, K. Arioka, K. Fukuya, J. Mater. Sci.Technol. 45 (2008) 975-984. [94] H.E. Evans, Int. Mater. Rev. 40 (1995) 1-40. [95] H. Zhou, J. Qu, M. Cherkaoui, Mech. Mater. 42 (2010) 63-71. [96] L. Bradley, G.C. Wood, F.H. Stott, In. Mater. Sci. Forum 251 (1997) 341-348. [97] B. Pieraggi, R.A. Rapp, Acta Metall. 36 (1988) 1281-1289. [98] S. Guruswamy, S.M. Park, J.P. Hirth, R.A. Rapp, Oxid. Met. 26 (1986) 77-100. [99] A.M. Huntz, Mater. Sci. Eng. A 201 (1995) 211-228. [100] D.R. Clarke, Acta Mater. 51 (2003) 1393-1407. [101] A.M. Limarga, D.S. Wilkinson, G.C. Weatherly, Scr. Mater. 50 (2004) 1475-1479. [102] A. Naoumidis, H.A. Schulze, W. Jungen, P. Lersch, J. Eur. Ceram. Soc. 7 (1991) 55-63. [103] T.D. Nguyen, J. Zhang, D.J. Young, Corros. Sci. 112 (2016) 110-127. [104] H.J. Grabke, I. Wolf, Mater. Sci. Eng. 87 (1987) 23-33. |
[1] | Wenbin Liu, Ting Zheng, Xuezheng Ruan, Zhenyong Man, Haoyue Xue, Laiming Jiang, Fuping Zhang, Guorong Li, Jiagang Wu. Synergy of lead vacancies and morphotropic phase boundary to promote high piezoelectricity and temperature stability of PBZTN ceramics [J]. J. Mater. Sci. Technol., 2023, 137(0): 1-7. |
[2] | Jianbao Zhang, Dexu Cui, Xin Li, Yixuan He, Haifeng Wang, Weimin Liu. Revealing the phase-transformation path in a FeCoNiSnx eutectic high entropy alloy system by crystallographic orientation relationships [J]. J. Mater. Sci. Technol., 2023, 156(0): 92-106. |
[3] | Liangting He, Xu Wang, Jiaze Li, Wangshuai Xiang, Fuxue Yan, Bailing Jiang, Qiaodan Hu. Can orientations of directionally solidified dual-phase Al2O3/YAG eutectics be induced by single-phase sapphire seeds? [J]. J. Mater. Sci. Technol., 2023, 142(0): 216-224. |
[4] | Bo Xiao, Jixun Zhang, Shaofei Liu, Yilu Zhao, Lianyong Xu, C.T. Liu, Tao Yang. Off-stoichiometry-guided design of high-strength chemically complex intermetallic-based alloys with outstanding ductility [J]. J. Mater. Sci. Technol., 2023, 160(0): 28-33. |
[5] | Zongde Kou, Xuteng Li, Rong Huang, Lixia Yang, Yanqing Yang, Tao Feng, Si Lan, Gerhard Wilde, Qingquan Lai, Song Tang. Stress-induced phase transformation and phase boundary sliding in Ti: An atomically resolved in-situ analysis [J]. J. Mater. Sci. Technol., 2023, 152(0): 30-36. |
[6] | Gang Niu, Hatem S. Zurob, R.D.K. Misra, Huibin Wu, Yu Zou. Strength-ductility synergy in a 1.4 GPa austenitic steel with a heterogeneous lamellar microstructure [J]. J. Mater. Sci. Technol., 2022, 106(0): 133-138. |
[7] | Chunyang Gao, Yixiao Jiang, Tingting Yao, Ang Tao, Xuexi Yan, Xiang Li, Chunlin Chen, Xiu-Liang Ma, Hengqiang Ye. Atomic origin of magnetic coupling of antiphase boundaries in magnetite thin films [J]. J. Mater. Sci. Technol., 2022, 107(0): 92-99. |
[8] | Tingting Zhang, Yuanyuan Gong, Bin Wang, Dongyu Cen, Feng Xu. Crystallography of the martensitic transformation between Ni2In-type hexagonal and TiNiSi-type orthorhombic phases [J]. J. Mater. Sci. Technol., 2022, 104(0): 59-66. |
[9] | J.W. Liang, Y.F. Shen, R.D.K. Misra, P.K. Liaw. High strength-superplasticity combination of ultrafine-grained ferritic steel: The significant role of nanoscale carbides [J]. J. Mater. Sci. Technol., 2021, 83(0): 131-144. |
[10] | Xuefei Huang, Baoqin Fu, Weigang Huang. Newly observed irrational crystallographic features of non-basal Mg2Sn precipitates in a Mg-4Sn alloy aged at 160 °C [J]. J. Mater. Sci. Technol., 2021, 77(0): 237-243. |
[11] | Fusen Yuan, Geping Li, Fuzhou Han, Yingdong Zhang, Ali Muhammad, Wenbin Guo, Jie Ren, Chengze Liu, Hengfei Gu, Gaihuan Yuan. A new type face-centered cubic zirconium phase in pure zirconium [J]. J. Mater. Sci. Technol., 2021, 81(0): 236-239. |
[12] | Jinliang Wang, Minghao Huang, Jun Hu, Chenchong Wang, Wei Xu. EBSD investigation of the crystallographic features of deformation-induced martensite in stainless steel [J]. J. Mater. Sci. Technol., 2021, 69(0): 148-155. |
[13] | Qiuzhi Gao, Ziyun Liu, Huijun Li, Hailian Zhang, Chenchen Jiang, Aimin Hao, Fu Qu, Xiaoping Lin. High-temperature oxidation behavior of modified 4Al alumina-forming austenitic steel: Effect of cold rolling [J]. J. Mater. Sci. Technol., 2021, 68(0): 91-102. |
[14] | Kaustubh Bawane, Kathy Lu, Xian-Ming Bai, Jing Hu, Meimei Li, Peter M. Baldo, Edward Ryan. Microstructural evolution of a silicon carbide-carbon coated nanostructured ferritic alloy composite during in-situ Kr ion irradiation at 300°C 450°C [J]. J. Mater. Sci. Technol., 2021, 71(0): 75-83. |
[15] | Yinling Zhang, Zhuo Chen, Shoujiang Qu, Aihan Feng, Guangbao Mi, Jun Shen, Xu Huang, Daolun Chen. Multiple α sub-variants and anisotropic mechanical properties of an additively-manufactured Ti-6Al-4V alloy [J]. J. Mater. Sci. Technol., 2021, 70(0): 113-124. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||