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Published in: Metallurgical and Materials Transactions A 10/2021

17-08-2021 | Original Research Article

Hierarchical Characteristics of Hydrogen-Assisted Crack Growth and Microstructural Strain Evolution in Tempered Martensitic Steels: Case of Quasi-cleavage Fracture

Authors: Tingshu Chen, Takahiro Chiba, Motomichi Koyama, Akinobu Shibata, Eiji Akiyama, Kenichi Takai

Published in: Metallurgical and Materials Transactions A | Issue 10/2021

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Abstract

The local plastic strain evolution associated with crack growth in hydrogen-assisted quasi-cleavage fracture was investigated using tempered lath martensitic steels. The quasi-cleavage crack grew via the following process. After crack initiation, the crack grew sharply to a certain length by repeated episodes of nano-void nucleation and coalescence. When the sharp crack tip intersected microstructural boundaries such as a lath or block, crack deflection/branching occurred. This was followed by crack tip blunting, which temporarily stopped crack growth. Further crack growth was possible via one of the following two routes: (1) sharp crack initiation/growth from the blunt crack tip, and (2) new crack initiation near the blunt crack tip. The newly formed cracks subsequently coalesced. Repetition of this multi-scale crack growth mechanism finally caused a quasi-cleavage fracture. Correspondingly, hierarchical crack morphologies were observed, which coincided with the lath martensitic microstructures and fractographic features. Furthermore, specific correlations were found between hydrogen-assisted cracking behavior and local plastic strain evolution at different spatial scales. Specifically, the largest plastic strain evolution occurred in the region where crack coalescence was observed. The second largest plastic strain evolution occurred when crack tip blunting occurred. Nanoscale local plasticity evolution around a sharp crack was also observed as an appearance of intense slip bands, indicating that the local plasticity played a key role in the hydrogen-related sharp crack growth.

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Literature
1.
2.
go back to reference Y. Tomita and K. Okabayashi: Metall. Trans. A., 1986, vol. 17, pp. 1203–9. .CrossRef Y. Tomita and K. Okabayashi: Metall. Trans. A., 1986, vol. 17, pp. 1203–9. .CrossRef
3.
go back to reference S. Morito, H. Tanaka, R. Konishi, T. Furuhara, and T. Maki: Acta Mater., 2003, vol. 51, pp. 1789–99. .CrossRef S. Morito, H. Tanaka, R. Konishi, T. Furuhara, and T. Maki: Acta Mater., 2003, vol. 51, pp. 1789–99. .CrossRef
4.
go back to reference C.A. Apple, R.N. Caron, and G. Krauss: Metall. Trans., 1974, vol. 5, pp. 593–9. .CrossRef C.A. Apple, R.N. Caron, and G. Krauss: Metall. Trans., 1974, vol. 5, pp. 593–9. .CrossRef
5.
go back to reference S. Morito, X. Huang, T. Furuhara, T. Maki, and N. Hansen: Acta Mater., 2006, vol. 54, pp. 5323–31. .CrossRef S. Morito, X. Huang, T. Furuhara, T. Maki, and N. Hansen: Acta Mater., 2006, vol. 54, pp. 5323–31. .CrossRef
6.
go back to reference S. Lynch: Corros. Rev., 2012, vol. 30, pp. 105–23. . S. Lynch: Corros. Rev., 2012, vol. 30, pp. 105–23. .
7.
go back to reference M. Nagumo: Fundamentals of Hydrogen Embrittlement. 1st ed. Springer, Tokyo, 2016.CrossRef M. Nagumo: Fundamentals of Hydrogen Embrittlement. 1st ed. Springer, Tokyo, 2016.CrossRef
8.
go back to reference Z.D. Harris, S.K. Lawrence, D.L. Medlin, G. Guetard, J.T. Burns, and B.P. Somerday: Acta Mater., 2018, vol. 158, pp. 180–92. .CrossRef Z.D. Harris, S.K. Lawrence, D.L. Medlin, G. Guetard, J.T. Burns, and B.P. Somerday: Acta Mater., 2018, vol. 158, pp. 180–92. .CrossRef
9.
go back to reference J. Li, C. Lu, L. Pei, C. Zhang, R. Wang, and K. Tieu: Comput. Mater. Sci., 2019, vol. 165, pp. 40–50. .CrossRef J. Li, C. Lu, L. Pei, C. Zhang, R. Wang, and K. Tieu: Comput. Mater. Sci., 2019, vol. 165, pp. 40–50. .CrossRef
10.
go back to reference A. Tehranchi, X. Zhou, and W.A. Curtin: Acta Mater., 2020, vol. 185, pp. 98–109. .CrossRef A. Tehranchi, X. Zhou, and W.A. Curtin: Acta Mater., 2020, vol. 185, pp. 98–109. .CrossRef
11.
go back to reference R.A. Oriani and P.H. Josephic: Acta Metall., 1974, vol. 22, pp. 1065–74. .CrossRef R.A. Oriani and P.H. Josephic: Acta Metall., 1974, vol. 22, pp. 1065–74. .CrossRef
12.
go back to reference I.M. Robertson, P. Sofronis, A. Nagao, M.L. Martin, S. Wang, D.W. Gross, and K.E. Nygren: Metall. Mater. Trans. B., 2015, vol. 46B, pp. 1085–103. .CrossRef I.M. Robertson, P. Sofronis, A. Nagao, M.L. Martin, S. Wang, D.W. Gross, and K.E. Nygren: Metall. Mater. Trans. B., 2015, vol. 46B, pp. 1085–103. .CrossRef
13.
go back to reference O. Barrera, D. Bombac, Y. Chen, T.D. Daff, E. Galindo-Nava, P. Gong, D. Haley, R. Horton, I. Katzarov, J.R. Kermode, C. Liverani, M. Stopher, and F. Sweeney: J. Mater. Sci., 2018, vol. 53, pp. 6251–90. .CrossRef O. Barrera, D. Bombac, Y. Chen, T.D. Daff, E. Galindo-Nava, P. Gong, D. Haley, R. Horton, I. Katzarov, J.R. Kermode, C. Liverani, M. Stopher, and F. Sweeney: J. Mater. Sci., 2018, vol. 53, pp. 6251–90. .CrossRef
14.
go back to reference H.K. Birnbaum and P. Sofronis: Mater. Sci. Eng. A., 1994, vol. 176, pp. 191–202. .CrossRef H.K. Birnbaum and P. Sofronis: Mater. Sci. Eng. A., 1994, vol. 176, pp. 191–202. .CrossRef
15.
go back to reference T. Matsumoto, J. Easrman, and H.K. Birnbaum: Scripta Mater., 1981, vol. 15, p. 5. . T. Matsumoto, J. Easrman, and H.K. Birnbaum: Scripta Mater., 1981, vol. 15, p. 5. .
16.
17.
18.
go back to reference K. Takai, H. Shoda, H. Suzuki, and M. Nagumo: Acta Mater., 2008, vol. 56, pp. 5158–67. .CrossRef K. Takai, H. Shoda, H. Suzuki, and M. Nagumo: Acta Mater., 2008, vol. 56, pp. 5158–67. .CrossRef
19.
20.
go back to reference A. Tehranchi and W.A. Curtin: ICF 2017 14th Int Conf. Fract., 2017, vol. 1, pp. 644–5. . A. Tehranchi and W.A. Curtin: ICF 2017 14th Int Conf. Fract., 2017, vol. 1, pp. 644–5. .
21.
go back to reference Z. Tarzimoghadam, D. Ponge, J. Klöwer, and D. Raabe: Acta Mater., 2017, vol. 128, pp. 365–74. .CrossRef Z. Tarzimoghadam, D. Ponge, J. Klöwer, and D. Raabe: Acta Mater., 2017, vol. 128, pp. 365–74. .CrossRef
22.
go back to reference A. Nagao, M. Dadfarnia, B.P. Somerday, P. Sofronis, and R.O. Ritchie: J. Mech. Phys. Solids., 2018, vol. 112, pp. 403–30. .CrossRef A. Nagao, M. Dadfarnia, B.P. Somerday, P. Sofronis, and R.O. Ritchie: J. Mech. Phys. Solids., 2018, vol. 112, pp. 403–30. .CrossRef
23.
go back to reference A. Nagao, C.D. Smith, M. Dadfarnia, P. Sofronis, and I.M. Robertson: Acta Mater., 2012, vol. 60, pp. 5182–9. .CrossRef A. Nagao, C.D. Smith, M. Dadfarnia, P. Sofronis, and I.M. Robertson: Acta Mater., 2012, vol. 60, pp. 5182–9. .CrossRef
24.
go back to reference A. Nagao, C.D. Smith, M. Dadfarnia, P. Sofronis, and I.M. Robertson: Procedia. Mater. Sci., 2014, vol. 3, pp. 1700–5. .CrossRef A. Nagao, C.D. Smith, M. Dadfarnia, P. Sofronis, and I.M. Robertson: Procedia. Mater. Sci., 2014, vol. 3, pp. 1700–5. .CrossRef
25.
go back to reference A. Shibata, H. Takahashi, and N. Tsuji: ISIJ Int., 2012, vol. 52, pp. 208–12. .CrossRef A. Shibata, H. Takahashi, and N. Tsuji: ISIJ Int., 2012, vol. 52, pp. 208–12. .CrossRef
26.
go back to reference A. Shibata, T. Matsuoka, A. Ueno, and N. Tsuji: Int. J. Fract., 2017, vol. 205, pp. 73–82. .CrossRef A. Shibata, T. Matsuoka, A. Ueno, and N. Tsuji: Int. J. Fract., 2017, vol. 205, pp. 73–82. .CrossRef
27.
go back to reference A. Shibata, T. Murata, H. Takahashi, T. Matsuoka, and N. Tsuji: Metall. Mater. Trans. A., 2015, vol. 46A, pp. 5685–96. .CrossRef A. Shibata, T. Murata, H. Takahashi, T. Matsuoka, and N. Tsuji: Metall. Mater. Trans. A., 2015, vol. 46A, pp. 5685–96. .CrossRef
28.
go back to reference A. Shibata, Y. Momotani, T. Murata, T. Matsuoka, M. Tsuboi, and N. Tsuji: Mater. Sci. Technol. (UK)., 2017, vol. 33, pp. 1524–32. .CrossRef A. Shibata, Y. Momotani, T. Murata, T. Matsuoka, M. Tsuboi, and N. Tsuji: Mater. Sci. Technol. (UK)., 2017, vol. 33, pp. 1524–32. .CrossRef
29.
go back to reference M. Yu and T.E. Power: ISIJ Int., 2013, vol. 13086, pp. 1–4. . M. Yu and T.E. Power: ISIJ Int., 2013, vol. 13086, pp. 1–4. .
30.
go back to reference K. Ogawa, Y. Matsumoto, H. Suzuki, and K. Takai: ISIJ Int., 2019, vol. 59, pp. 1705–14. .CrossRef K. Ogawa, Y. Matsumoto, H. Suzuki, and K. Takai: ISIJ Int., 2019, vol. 59, pp. 1705–14. .CrossRef
31.
go back to reference M. Ohori, T. Chiba, Y. Matsumoto, H. Suzuki, and K. Takai: IOP Conf. Ser. Mater. Sci. Eng., 2018, vol. 461, p. 012062. .CrossRef M. Ohori, T. Chiba, Y. Matsumoto, H. Suzuki, and K. Takai: IOP Conf. Ser. Mater. Sci. Eng., 2018, vol. 461, p. 012062. .CrossRef
32.
go back to reference M. Calcagnotto, D. Ponge, E. Demir, and D. Raabe: Mater. Sci. Eng. A., 2010, vol. 527, pp. 2738–46. .CrossRef M. Calcagnotto, D. Ponge, E. Demir, and D. Raabe: Mater. Sci. Eng. A., 2010, vol. 527, pp. 2738–46. .CrossRef
34.
go back to reference M.L. Martin, J.A. Fenske, G.S. Liu, P. Sofronis, and I.M. Robertson: Acta Mater., 2011, vol. 59, pp. 1601–6. .CrossRef M.L. Martin, J.A. Fenske, G.S. Liu, P. Sofronis, and I.M. Robertson: Acta Mater., 2011, vol. 59, pp. 1601–6. .CrossRef
35.
go back to reference L. Cho, P.E. Bradley, D.S. Lauria, M.L. Martin, M.J. Connolly, J.T. Benzing, E.J. Seo, K.O. Findley, J.G. Speer, and A.J. Slifka: Acta Mater., 2021, vol. 206, p. 116635. .CrossRef L. Cho, P.E. Bradley, D.S. Lauria, M.L. Martin, M.J. Connolly, J.T. Benzing, E.J. Seo, K.O. Findley, J.G. Speer, and A.J. Slifka: Acta Mater., 2021, vol. 206, p. 116635. .CrossRef
36.
go back to reference T. Neeraj, R. Srinivasan, and J. Li: Acta Mater., 2012, vol. 60, pp. 5160–71. .CrossRef T. Neeraj, R. Srinivasan, and J. Li: Acta Mater., 2012, vol. 60, pp. 5160–71. .CrossRef
37.
go back to reference T.T. Huynh, M. Koyama, Y. Takahashi, S. Hamada, K. Tsuzaki, and H. Noguchi: Scripta Mater., 2020, vol. 178, pp. 99–103. .CrossRef T.T. Huynh, M. Koyama, Y. Takahashi, S. Hamada, K. Tsuzaki, and H. Noguchi: Scripta Mater., 2020, vol. 178, pp. 99–103. .CrossRef
38.
go back to reference D. Asari, S. Mizokami, M. Fukahori, and K. Takai: Mater. Sci. Eng. A., 2020, vol. 780, p. 139209. .CrossRef D. Asari, S. Mizokami, M. Fukahori, and K. Takai: Mater. Sci. Eng. A., 2020, vol. 780, p. 139209. .CrossRef
39.
go back to reference T. Ohmura, A.M. Minor, E.A. Stach, and J.W. Morris: J. Mater. Res., 2004, vol. 19, pp. 3626–32. .CrossRef T. Ohmura, A.M. Minor, E.A. Stach, and J.W. Morris: J. Mater. Res., 2004, vol. 19, pp. 3626–32. .CrossRef
40.
go back to reference L. Morsdorf, O. Jeannin, D. Barbier, M. Mitsuhara, D. Raabe, and C.C. Tasan: Acta Mater., 2016, vol. 121, pp. 202–14. .CrossRef L. Morsdorf, O. Jeannin, D. Barbier, M. Mitsuhara, D. Raabe, and C.C. Tasan: Acta Mater., 2016, vol. 121, pp. 202–14. .CrossRef
41.
go back to reference A. Laureys, T. Depover, R. Petrov, and K. Verbeken: Mater. Sci. Eng. A., 2017, vol. 690, pp. 88–95. .CrossRef A. Laureys, T. Depover, R. Petrov, and K. Verbeken: Mater. Sci. Eng. A., 2017, vol. 690, pp. 88–95. .CrossRef
43.
go back to reference K. Saito, T. Hirade, and K. Takai: Metall. Mater. Trans. A., 2019, vol. 50A, pp. 5091–102. .CrossRef K. Saito, T. Hirade, and K. Takai: Metall. Mater. Trans. A., 2019, vol. 50A, pp. 5091–102. .CrossRef
44.
go back to reference D. Guedes, L. Cupertino Malheiros, A. Oudriss, S. Cohendoz, J. Bouhattate, J. Creus, F. Thébault, M. Piette, and X. Feaugas: Acta Mater., 2020, vol. 186, pp. 133–48. .CrossRef D. Guedes, L. Cupertino Malheiros, A. Oudriss, S. Cohendoz, J. Bouhattate, J. Creus, F. Thébault, M. Piette, and X. Feaugas: Acta Mater., 2020, vol. 186, pp. 133–48. .CrossRef
Metadata
Title
Hierarchical Characteristics of Hydrogen-Assisted Crack Growth and Microstructural Strain Evolution in Tempered Martensitic Steels: Case of Quasi-cleavage Fracture
Authors
Tingshu Chen
Takahiro Chiba
Motomichi Koyama
Akinobu Shibata
Eiji Akiyama
Kenichi Takai
Publication date
17-08-2021
Publisher
Springer US
Published in
Metallurgical and Materials Transactions A / Issue 10/2021
Print ISSN: 1073-5623
Electronic ISSN: 1543-1940
DOI
https://doi.org/10.1007/s11661-021-06423-1

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