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Correction to Metals 2020, 10(3), 380.
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Correction

Correction: Lian et al. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380

1
Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
2
College of Material Science and Engineering, Chongqing University of Technology, Chongqing 400054, China
*
Authors to whom correspondence should be addressed.
Metals 2025, 15(6), 616; https://doi.org/10.3390/met15060616
Submission received: 12 May 2025 / Accepted: 22 May 2025 / Published: 30 May 2025

Error in Figure

In the original publication, there were mistakes in Figures 2d, 3, 4b, 5, 6d and 7b as published. Figures 2d, 4b and 6d were misused, which led to the individual data in Figures 3, 5 and 7b being incorrect. The corrected Figure 2, Figure 3, Figure 4, Figure 5, Figure 6 and Figure 7 appear below.

Text Correction

There were four errors in the original publication [1] because of the misuse of Figures 2d, 4b and 6d.
In Section 2. Experimental Procedure, Paragraph 2, the words “without lubrication” have been removed.
In Section 3.1. Microstructures Evolution, Paragraph 2, “18 µm” has been changed to “17.5 µm”.
In Section 3.2. Texture Evolution, Paragraph 1, the number “5.8” has been changed to “4.8”.
In Section 3.2. Texture Evolution, Paragraph 2, “Table 1” has been changed to “Figure 3”.
The authors state that the scientific conclusions are unaffected. This correction was approved by the Academic Editor. The original publication has also been updated.

Reference

  1. Lian, Y.; Liao, B.; Zhou, T.; Ge, W.; Shi, L.; Hu, L.; Yang, M.; Zhang, J. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380. [Google Scholar] [CrossRef]
Figure 2. Electron back-scatter diffraction (EBSD) results from the different samples without annealing: (a) upper surface of HTR sample; (b) mid-layer of HTR sample; (c) upper surface of HTR-CB sample; (d) mid-layer of HTR-CB sample, including inverse pole figure maps, boundary misorientation maps, kernel average misorientation maps and misorientation angle distributions.
Figure 2. Electron back-scatter diffraction (EBSD) results from the different samples without annealing: (a) upper surface of HTR sample; (b) mid-layer of HTR sample; (c) upper surface of HTR-CB sample; (d) mid-layer of HTR-CB sample, including inverse pole figure maps, boundary misorientation maps, kernel average misorientation maps and misorientation angle distributions.
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Figure 3. The number fraction of matrix grains with c-axis//ND and (10–12) twins in different states, and the HTR-s and HTR-CB-s are for upper surface of HTR and HTR-CB samples, and the HTR-m and HTR-CB-m are for mid-layer of HTR and HTR-CB samples, respectively.
Figure 3. The number fraction of matrix grains with c-axis//ND and (10–12) twins in different states, and the HTR-s and HTR-CB-s are for upper surface of HTR and HTR-CB samples, and the HTR-m and HTR-CB-m are for mid-layer of HTR and HTR-CB samples, respectively.
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Figure 4. Inverse pole figure maps of different samples after annealing: (a) upper surface of HTRA sample; (b) mid-layer of HTRA sample; (c) upper surface of HTR-CBA sample; (d) mid-layer of HTR-CBA sample.
Figure 4. Inverse pole figure maps of different samples after annealing: (a) upper surface of HTRA sample; (b) mid-layer of HTRA sample; (c) upper surface of HTR-CBA sample; (d) mid-layer of HTR-CBA sample.
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Figure 5. The average grain size of HTRA and HTR-CBA samples.
Figure 5. The average grain size of HTRA and HTR-CBA samples.
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Figure 6. (0002) Pole figures of the different samples without annealing: (a) upper surface of HTR sample; (b) mid-layer of HTR sample; (c) upper surface of HTR-CB sample; (d) mid-layer of HTR-CB sample.
Figure 6. (0002) Pole figures of the different samples without annealing: (a) upper surface of HTR sample; (b) mid-layer of HTR sample; (c) upper surface of HTR-CB sample; (d) mid-layer of HTR-CB sample.
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Figure 7. (0002) Pole figures of the different samples after annealing: (a) upper surface of HTRA sample; (b) mid-layer of HTRA sample; (c) upper surface of HTR-CBA sample; (d) mid-layer of HTR-CBA sample.
Figure 7. (0002) Pole figures of the different samples after annealing: (a) upper surface of HTRA sample; (b) mid-layer of HTRA sample; (c) upper surface of HTR-CBA sample; (d) mid-layer of HTR-CBA sample.
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MDPI and ACS Style

Lian, Y.; Liao, B.; Zhou, T.; Ge, W.; Shi, L.; Hu, L.; Yang, M.; Zhang, J. Correction: Lian et al. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380. Metals 2025, 15, 616. https://doi.org/10.3390/met15060616

AMA Style

Lian Y, Liao B, Zhou T, Ge W, Shi L, Hu L, Yang M, Zhang J. Correction: Lian et al. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380. Metals. 2025; 15(6):616. https://doi.org/10.3390/met15060616

Chicago/Turabian Style

Lian, Yong, Benhong Liao, Tao Zhou, Wenjun Ge, Laixin Shi, Li Hu, Mingbo Yang, and Jin Zhang. 2025. "Correction: Lian et al. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380" Metals 15, no. 6: 616. https://doi.org/10.3390/met15060616

APA Style

Lian, Y., Liao, B., Zhou, T., Ge, W., Shi, L., Hu, L., Yang, M., & Zhang, J. (2025). Correction: Lian et al. Microstructure and Mechanical Property of Mg-3Al-1Zn Magnesium Alloy Sheet Processed by Integrated High Temperature Rolling and Continuous Bending. Metals 2020, 10, 380. Metals, 15(6), 616. https://doi.org/10.3390/met15060616

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