Published January 24, 2022 | Version v1
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Fatigue database of high entropy alloys

  • 1. Department of Materials Science and Engineering, The University of Tennessee, Knoxville TN, USA
  • 2. Imagars LLC, Hillsboro OR, USA

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Description

Fatigue failure of metallic structures is of great concern to industrial applications. A material will not be able to practically useful if it is prone to fatigue failure. To take the advantage of lately emerged high entropy alloys (HEAs) for designing novel fatigue-resistant alloys, we compiled a fatigue database of HEAs from the literature reported till the yearend of 2021. The database is subdivided into three categories, i.e., low-cycle fatigue (LCF), high-cycle fatigue (HCF), and fatigue crack growth rate (FCGR), which contains 15, 23, and 28 distinct data records, respectively. Each data record in any of three categories is characteristic of a summary, which is comprised of alloy composition, key fatigue properties, and additional information influential to or interrelated with fatigue (e.g., material processing history, phase constitution, grain size, uniaxial tensile properties, and fatigue testing conditions), and an individual dataset, which makes up the original fatigue testing curve.

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References

Journal reference
Lu, K., Chauhan, A., Litvinov, D., Walter, M., Tirunilai, A. S., Freudenberger, J., Kauffmann, A., Heilmaier, M., & Aktaa, J. (2020). High-temperature low cycle fatigue behavior of an equiatomic CoCrFeMnNi high-entropy alloy. Materials Science and Engineering A, 791(May), 139781., doi: 10.1016/j.msea.2020.139781

Journal reference
Lu, K., Chauhan, A., Walter, M., Tirunilai, A. S., Schneider, M., Laplanche, G., Freudenberger, J., Kauffmann, A., Heilmaier, M., & Aktaa, J. (2021). Superior low-cycle fatigue properties of CoCrNi compared to CoCrFeMnNi. Scripta Materialia, 194, 113667., doi: 10.1016/j.scriptamat.2020.113667

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Shams, S. A. A., Jang, G., Won, J. W., Bae, J. W., Jin, H., Kim, H. S., & Lee, C. S. (2020). Low-cycle fatigue properties of CoCrFeMnNi high-entropy alloy compared with its conventional counterparts. Materials Science and Engineering A, 792(June), 139661., doi: 10.1016/j.msea.2020.139661

Journal reference
Shams, S. A. A., Kim, G., Won, J. W., Kim, J. N., Kim, H. S., & Lee, C. S. (2021). Effect of grain size on the low-cycle fatigue behavior of carbon-containing high-entropy alloys. Materials Science & Engineering A, 810(February), 140985., doi: 10.1016/j.msea.2021.140985

Journal reference
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Journal reference
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Journal reference
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Journal reference
Lu, K., Chauhan, A., Tirunilai, A. S., & Freudenberger, J. (n.d.). Deformation mechanisms of CoCrFeMnNi high-entropy alloy under low-cycle-fatigue loading. 1–27., doi: 10.1016/j.actamat.2021.117089

Journal reference
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Journal reference
Shukla, S., Wang, T., Cotton, S. and Mishra, R.S., 2018. Hierarchical microstructure for improved fatigue properties in a eutectic high entropy alloy. Scripta Materialia, 156, pp.105-109., doi: 10.1016/j.scriptamat.2018.07.022

Journal reference
Liu, K., Nene, S.S., Frank, M., Sinha, S. and Mishra, R.S., 2018. Metastability-assisted fatigue behavior in a friction stir processed dual-phase high entropy alloy. Materials Research Letters, 6(11), pp.613-619., doi: 10.1080/21663831.2018.1523240

Journal reference
Guennec, B., Kentheswaran, V., Perrière, L., Ueno, A., Guillot, I., Couzinié, J.P. and Dirras, G., 2018. Four-point bending fatigue behavior of an equimolar BCC HfNbTaTiZr high-entropy alloy: macroscopic and microscopic viewpoints. Materialia, 4, pp.348-360., doi: 10.1016/j.mtla.2018.09.040

Journal reference
Liu, K., Komarasamy, M., Gwalani, B., Shukla, S. and Mishra, R.S., 2019. Fatigue behavior of ultrafine grained triplex Al0. 3CoCrFeNi high entropy alloy. Scripta Materialia, 158, pp.116-120., doi: 10.1016/j.scriptamat.2018.08.048

Journal reference
Liu, K., Gwalani, B., Komarasamy, M., Shukla, S., Wang, T. and Mishra, R.S., 2019. Effect of nano-sized precipitates on the fatigue property of a lamellar structured high entropy alloy. Materials Science and Engineering: A, 760, pp.225-230., doi: 10.1016/j.msea.2019.06.012

Journal reference
Chlup, Z., Fintová, S., Hadraba, H., Kuběna, I., Vilémová, M. and Matějíček, J., 2019. Fatigue behaviour and crack initiation in CoCrFeNiMn high-entropy alloy processed by powder metallurgy. Metals, 9(10), p.1110., doi: 10.3390/met9101110

Journal reference
Tian, Y.Z., Sun, S.J., Lin, H.R. and Zhang, Z.F., 2019. Fatigue behavior of CoCrFeMnNi high-entropy alloy under fully reversed cyclic deformation. Journal of materials science & technology, 35(3), pp.334-340., doi: 10.1016/j.jmst.2018.09.068

Journal reference
Suzuki, K., Koyama, M., Hamada, S., Tsuzaki, K. and Noguchi, H., 2020. Planar slip-driven fatigue crack initiation and propagation in an equiatomic CrMnFeCoNi high-entropy alloy. International Journal of Fatigue, 133, p.105418., doi: 10.1016/j.ijfatigue.2019.105418

Journal reference
Kashaev, N., Ventzke, V., Petrov, N., Horstmann, M., Zherebtsov, S., Shaysultanov, D., Sanin, V. and Stepanov, N., 2019. Fatigue behaviour of a laser beam welded CoCrFeNiMn-type high entropy alloy. Materials Science and Engineering: A, 766, p.138358., doi: 10.1016/j.msea.2019.138358

Journal reference
Kim, Y.K., Ham, G.S., Kim, H.S. and Lee, K.A., 2019. High-cycle fatigue and tensile deformation behaviors of coarse-grained equiatomic CoCrFeMnNi high entropy alloy and unexpected hardening behavior during cyclic loading. Intermetallics, 111, p.106486., doi: 10.1016/j.intermet.2019.106486

Journal reference
Lee, G. T., Won, J. W., Lim, K. R., Kang, M., Kwon, H. J., Na, Y. S., & Choi, Y. S. (2020). Effect of Microstructural Features on the High-Cycle Fatigue Behavior of CoCrFeMnNi High-Entropy Alloys Deformed at Room and Cryogenic Temperatures. Metals and Materials International., doi: 10.1007/s12540-020-00786-7

Journal reference
Ghomsheh, M. Z., Khatibi, G., Weiss, B., Lederer, M., Schwarz, S., Steiger-Thirsfeld, A., Tikhonovsky, M. A., Tabachnikova, E. D., & Schafler, E. (2020). High cycle fatigue deformation mechanisms of a single phase CrMnFeCoNi high entropy alloy. Materials Science and Engineering A, 777(January), 139034., doi: 10.1016/j.msea.2020.139034

Journal reference
Kim, Y., Baek, M., Yang, S., & Lee, K. (2021). In-situ formed oxide enables extraordinary high-cycle fatigue resistance in additively manufactured CoCrFeMnNi high-entropy alloy. Additive Manufacturing, 38(December 2020), 101832., doi: 10.1016/j.addma.2020.101832

Journal reference
Tang, Z., Yuan, T., Tsai, C. W., Yeh, J. W., Lundin, C. D., & Liaw, P. K. (2015). Fatigue behavior of a wrought Al0.5CoCrCuFeNi two-phase high-entropy alloy. Acta Materialia, 99, 247–258., doi: 10.1016/j.actamat.2015.07.004

Journal reference
Liaw, P. K., Chen, S., Tseng, K.-K., Yeh, J.-W., Liu, T., & Meng, F. (2020). Remarkable High-Cycle Fatigue Resistance of the TiZrNbHfTa High-Entropy Alloy and Associated Mechanisms. SSRN Electronic Journal, 1–43., doi: 10.2139/ssrn.3708757