IP Library › Granted Patent US 12,637,743
Granted Patent B2
US 12,637,743 · App. 18/740,588 · Granted May 26, 2026

Low-alloyed magnesium alloy with high ductility and high damping capacities at room temperature and preparation method thereof

Inventors: Chuming Liu (Changsha, CN); Shunong Jiang (Changsha, CN); Yajie Ma (Changsha, CN); Yonghao Gao (Changsha, CN); Yingchun Wan (Changsha, CN)
Assignee: Central South University
C22C23/06C21D8/021C21D8/0273
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Quick Facts
Patent No.
US 12,637,743
App. No.
18/740,588
Granted
May 26, 2026
Kind
B2
Abstract

A low-alloyed magnesium (Mg) alloy with high ductility and high damping capacities at room temperature and a preparation method thereof are provided. The low-alloyed Mg alloy with high ductility and high damping capacities includes the following elements in percentage by mass: 0.5-1.5% of Gadolinium (Gd), 0.5-0.9% of Zinc (Zn), 0.3-0.6% of Zirconium (Zr), and the balance of Mg (Mg). By adding low-content Gd, Zn and Zr elements to a Mg matrix, the low-alloyed Mg alloy not only has effects of solid solution strengthening, precipitation strengthening and fine-grain strengthening, but also, under the interaction effect of a plurality of elements, promotes the non-basal dislocation slipping of Mg alloy, and stimulates the dislocation damping mechanism, thereby effectively improving the plasticity and damping properties of Mg alloy. The low-alloyed Mg alloy with high ductility and high damping capacities at room temperature has excellent plasticity and damping properties at room temperature.

Claims (17)

1 . A preparation method of a magnesium (Mg) alloy, wherein the Mg alloy consists of the following elements in percentage by mass:

0.6-1.4% of gadolinium (Gd),

0.6-0.8% of zinc (Zn),

035-0.55% of zirconium (Zr), and

a balance of Mg,

a mass ratio of the Gd to the Zn in the Mg alloy is 1.0≤Gd/Zn≤3.0, and

a mass percentage of impurity elements in the Mg alloy is equal to or less than 0.1%; and

the preparation method of the Mg alloy comprises the following steps:

(1) sequentially melting, refining, keeping static, and semi-continuous casting alloy raw materials to obtain a Mg alloy ingot, wherein the refining is performed by inflating with argon gas, the semi-continuous casting is performed under a mixed CO 2 and SF 6 gas atmosphere; and

(2) sequentially performing a homogenization annealing and an extrusion of the Mg alloy ingot obtained in the step (1) to obtain the Mg alloy;

wherein a temperature of the keeping static in the step (1) is 720-730° C., and a time of the keeping static is 30-90 min.

2 . The preparation method according to claim 1 , wherein the impurity elements comprise iron (Fe), silicon (Si), copper (Cu), and nickel (Ni), wherein a mass percentage of the Fe is equal to or less than 0.03%, a mass percentage of the Si is equal to or less than 0.03%, a mass percentage of the Cu is equal to or less than 0.01%, and a mass percentage of the Ni is equal to or less than 0.01%.

3 . The preparation method according to claim 1 , wherein a temperature of the refining in the step (1) is 720-730° C., and a time of the refining is 5-15 min.

4 . The preparation method according to claim 1 , wherein a temperature of the semi-continuous casting in the step (1) is 705-715° C., a speed of the semi-continuous casting is 100-300 mm/min, and a circulating water flow rate of the semi-continuous casting is 5-25 m 3 /h.

5 . The preparation method according to claim 1 , wherein a holding temperature of the homogenization annealing in the step (2) is 480-530° C., and a holding time of the homogenization annealing is 20-30 h.

6 . The preparation method according to claim 1 , wherein a temperature of the extrusion in the step (2) is 350-450° C., a ratio of the extrusion is equal to or greater than 20, and a speed of the extrusion is 0.2-10 m/min.

7 . The preparation method according to claim 1 , wherein the Mg alloy obtained in the step (2) has an ultimate tensile strength of 215-256 MPa, a tensile yield strength of 128-211 MPa, an elongation of 31.7-39.3% at room temperature, and a damping capacity (Q −1 ) of 0.02-0.035, wherein the damping capacity is expressed by the reciprocal Q −1 of the quality factor at a strain of 10 −3 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 12, 2024
From: LIU, CHUMING; JIANG, SHUNONG; MA, YAJIE; GAO, YONGHAO; WAN, YINGCHUN
To: CENTRAL SOUTH UNIVERSITY
Reel/Frame 067698/0655 →
Priority Claims (1)
CN 202310911580.9 · Jul 24, 2023 · national
Continuity (1)
Related Publication 20250034681A1 · Jan 30, 2025
References Cited (18)
CN 1851020A · 2006 [cited by applicant]
CN 101798651A · 2010 [cited by applicant]
CN 103421999A · 2013 [cited by examiner]
CN 105483485A · 2016 [cited by applicant]
CN 110863130A · 2020 [cited by examiner]
CN 111235450A · 2020 [cited by examiner]
CN 113444944A · 2021 [cited by examiner]
CN 115305396A · 2022 [cited by applicant]
JP 2012219325A · 2012 [cited by examiner]
WO 2012003522A2 · 2012 [cited by applicant]
English language machine translation of CN-113444944-A. Generated Oct. 3, 2025. (Year: 2025). [cited by examiner]
English language machine translation of CN-111235450-A. Generated Oct. 3, 2025. (Year: 2025). [cited by examiner]
English language machine translation of CN-110863130-A. Generated Oct. 3, 2025. (Year: 2025). [cited by examiner]
English language machine translation of JP-2012219325-A. Generated Oct. 3, 2025. (Year: 2025). [cited by examiner]
English language machine translation of CN-103421999-A. Generated Oct. 3, 2025. (Year: 2025). [cited by examiner]
GB/T 13665-2007, Test method for damping capacity of metallic damping materials-Torsion pendulum method and bending vibration method, China National Standarts, 2007, pp. 1-8, General Administration of Quality Supervisio… [cited by applicant]
GB/T228.1-2010, Metallic materials-Tensile testing-Part 1: Method of test at room temperature, China National Standarts, 2010, pp. 1-61, General Administration of Quality Supervision, Inspection and Quaratine of the Peo… [cited by applicant]
Shan Yu-Lang, et al., Effects of Gd content on properties of Mg-0.5Zn-0.4Zr-x Gd biodegradable magnesium alloys, Transactions of Materials and Heat Treatment, 2016, pp. 21-26, vol. 37, No. 6. [cited by applicant]