镁-钆-银体系中三元化合物在 450 和 500 °C 下 0-50% Gd 成分范围内的相平衡和晶体结构

IF 15.8 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING Journal of Magnesium and Alloys Pub Date : 2024-12-19 DOI:10.1016/j.jma.2024.11.032
Qin Li, Honghui Xu, Lijun Zhang
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Moreover, seven ternary compounds (denoted as τ<sub>1</sub> to τ<sub>7</sub>) were found, and their crystal structures were refined by using Rietveld method. The τ<sub>1</sub> was identical to the previously reported X phase with a diamond-cubic structure, while the remaining six ternary compounds (τ<sub>2</sub> to τ<sub>7</sub>) were newly found. The seven ternary compounds (τ<sub>1</sub> to τ<sub>7</sub>) are among the space groups of Fd<span><span style=\"\"></span><span data-mathml='&lt;math xmlns=\"http://www.w3.org/1998/Math/MathML\"&gt;&lt;mover accent=\"true\" is=\"true\"&gt;&lt;mn is=\"true\"&gt;3&lt;/mn&gt;&lt;mo is=\"true\"&gt;&amp;#xAF;&lt;/mo&gt;&lt;/mover&gt;&lt;/math&gt;' role=\"presentation\" style=\"font-size: 90%; display: inline-block; position: relative;\" tabindex=\"0\"><svg aria-hidden=\"true\" focusable=\"false\" height=\"2.202ex\" role=\"img\" style=\"vertical-align: -0.235ex;\" viewbox=\"0 -846.5 570.5 947.9\" width=\"1.325ex\" xmlns:xlink=\"http://www.w3.org/1999/xlink\"><g fill=\"currentColor\" stroke=\"currentColor\" stroke-width=\"0\" transform=\"matrix(1 0 0 -1 0 0)\"><g is=\"true\"><g is=\"true\" transform=\"translate(35,0)\"><use xlink:href=\"#MJMAIN-33\"></use></g><g is=\"true\" transform=\"translate(0,197)\"><use x=\"-70\" xlink:href=\"#MJMAIN-AF\" y=\"0\"></use><use x=\"70\" xlink:href=\"#MJMAIN-AF\" y=\"0\"></use></g></g></g></svg><span role=\"presentation\"><math xmlns=\"http://www.w3.org/1998/Math/MathML\"><mover accent=\"true\" is=\"true\"><mn is=\"true\">3</mn><mo is=\"true\">¯</mo></mover></math></span></span><script type=\"math/mml\"><math><mover accent=\"true\" is=\"true\"><mn is=\"true\">3</mn><mo is=\"true\">¯</mo></mover></math></script></span>m (τ<sub>1</sub>), P4/nmm (τ<sub>2</sub>), P6<sub>3</sub>mc (τ<sub>3</sub>), P6<sub>3</sub>mc (τ<sub>4</sub>), Pmn2<sub>1</sub> (τ<sub>5</sub>), P<span><span style=\"\"></span><span data-mathml='&lt;math xmlns=\"http://www.w3.org/1998/Math/MathML\"&gt;&lt;mover accent=\"true\" is=\"true\"&gt;&lt;mn is=\"true\"&gt;6&lt;/mn&gt;&lt;mo is=\"true\"&gt;&amp;#xAF;&lt;/mo&gt;&lt;/mover&gt;&lt;/math&gt;' role=\"presentation\" style=\"font-size: 90%; display: inline-block; position: relative;\" tabindex=\"0\"><svg aria-hidden=\"true\" focusable=\"false\" height=\"2.202ex\" role=\"img\" style=\"vertical-align: -0.235ex;\" viewbox=\"0 -846.5 570.5 947.9\" width=\"1.325ex\" xmlns:xlink=\"http://www.w3.org/1999/xlink\"><g fill=\"currentColor\" stroke=\"currentColor\" stroke-width=\"0\" transform=\"matrix(1 0 0 -1 0 0)\"><g is=\"true\"><g is=\"true\" transform=\"translate(35,0)\"><use xlink:href=\"#MJMAIN-36\"></use></g><g is=\"true\" transform=\"translate(0,198)\"><use x=\"-70\" xlink:href=\"#MJMAIN-AF\" y=\"0\"></use><use x=\"70\" xlink:href=\"#MJMAIN-AF\" y=\"0\"></use></g></g></g></svg><span role=\"presentation\"><math xmlns=\"http://www.w3.org/1998/Math/MathML\"><mover accent=\"true\" is=\"true\"><mn is=\"true\">6</mn><mo is=\"true\">¯</mo></mover></math></span></span><script type=\"math/mml\"><math><mover accent=\"true\" is=\"true\"><mn is=\"true\">6</mn><mo is=\"true\">¯</mo></mover></math></script></span>2 m (τ<sub>6</sub>) and Pc (τ<sub>7</sub>). 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引用次数: 0

摘要

Gd和Ag的合金化可以显著提高镁合金的综合性能,精确的相平衡是先进合金设计的必要条件。然而,文献综述表明,在三元Mg-Gd-Ag体系相平衡的信息有限。因此,本文给出了Mg-Gd-Ag三元体系在0 ~ 50 at范围内的相平衡。结合电子探针显微分析和x射线衍射对66种平衡合金在450 °C和500 °C时的% Gd进行了研究,建立了450 °C和500 °C时的等温切片;Ag在GdMg3中具有较高的固溶性。此外,还发现了7个三元化合物(用τ1 ~ τ7表示),并用Rietveld法对它们的晶体结构进行了细化。τ1与先前报道的具有金刚石立方结构的X相相同,而其余六个三元化合物(τ2至τ7)是新发现的。这7个三元化合物(τ1 ~ τ7)分别属于Fd3¯3¯m (τ1)、P4/nmm (τ2)、P63mc (τ3)、P63mc (τ4)、Pmn21 (τ5)、P6¯6¯2 m (τ6)和Pc (τ7)的空间群。仔细地测定了它们的均匀性范围和晶格参数。测定了三个子系统二元化合物中第三元素的溶解度。本文所获得的Mg-Gd-Ag体系中三元化合物的相平衡和晶体结构可以作为建立热力学数据库和设计合金的基础。
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Phase equilibria and crystal structures of ternary compounds in the Mg–Gd–Ag system over a composition range of 0–50 at.% Gd at 450 and 500 °C
Alloying with Gd and Ag can significantly enhance the comprehensive properties of magnesium alloys, and accurate phase equilibria are a necessity for advanced alloy design. However, literature review reveals limited information on the phase equilibria in the ternary Mg–Gd–Ag system. Thus, in this paper, the phase equilibria of the ternary Mg–Gd–Ag system in the region of 0–50 at.% Gd at 450 °C and 500 °C were investigated by combining the electron probe microanalysis and X-ray diffraction of totally 66 equilibrated alloys, with two isothermal sections at 450 °C and 500 °C established accordingly; and relatively high solid solubility of Ag in GdMg3 was characterized. Moreover, seven ternary compounds (denoted as τ1 to τ7) were found, and their crystal structures were refined by using Rietveld method. The τ1 was identical to the previously reported X phase with a diamond-cubic structure, while the remaining six ternary compounds (τ2 to τ7) were newly found. The seven ternary compounds (τ1 to τ7) are among the space groups of Fd3¯m (τ1), P4/nmm (τ2), P63mc (τ3), P63mc (τ4), Pmn215), P6¯2 m (τ6) and Pc (τ7). Their homogeneity ranges and lattice parameters were carefully determined. The solubilities of the third elements in the binary compounds of the three subsystems were also well measured. It is anticipated that the presently obtained phase equilibria as well as the crystal structures of ternary compounds in the Mg–Gd–Ag system would serve as a foundation for developing thermodynamic database and alloy design in the near future.
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来源期刊
Journal of Magnesium and Alloys
Journal of Magnesium and Alloys Engineering-Mechanics of Materials
CiteScore
20.20
自引率
14.80%
发文量
52
审稿时长
59 days
期刊介绍: The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.
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