高温热处理对Al_xCoCrFeNi(0.5≤x≤0.8)高熵合金微观组织及力学性能的影响
Effect of high-temperature heat treatment on microstructure and mechanical properties of Al_xCoCrFeNi (0.5≤x≤0.8) high-entropy alloys
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文摘
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采用电弧熔炼法制备AlxCoCrFeN(i 0.5≤x≤0.8)高熵合金,研究1100 ℃高温热处理对合金微观组织和力学性能的影响。结果表明:铸态合金依次呈现为FCC枝晶组织(x=0.5和0.6)、类共晶组织(x=0.7)和BCC/B2枝晶组织(x= 0.8)。相应地,合金屈服强度和抗拉强度分别由291 MPa和733 MPa(x=0.5)提升至1004 MPa和1423 MPa(x=0.7),伸长率由39.7%(x=0.5)降低至6.8%(x=0.7)。经1100 ℃高温热处理,FCC枝晶相脱溶析出大量棒状B2相,可以提升合金强度,而BCC/B2调幅组织转变为FCC和B2双相组织(FCC相含量增加),可以提升合金塑性。因此,以FCC枝晶组织为主的Al_(0.5)CoCrFeNi合金高温热处理后屈服强度和抗拉强度分别提升至370 MPa和866 MPa,伸长率降低至30.1%。相比而言,Al_(0.6)CoCrFeNi合金调幅组织体积分数有所增加,两种相变对合金组织和性能影响均较大,故而热处理态合金力学性能基本不变。Al_(0.7)CoCrFeNi和Al_(0.8)CoCrFeNi合金调幅组织体积分数更高,热处理态合金均表现为FCC和B2双相组织,合金塑性提升,强度降低。其中热处理态Al_(0.7)CoCrFeNi合金伸长率提升至14.2%,屈服强度和抗拉强度分别降低至586 MPa和1092 MPa。 |
其他语种文摘
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Al_xCoCrFeNi (0.5≤x≤0.8) high-entropy alloys were prepared by arc-melting method and the effect of 1100 ℃ heat treatment on the microstructure and mechanical properties of the alloys was investigated. The results show that the as-cast Al_xCoCrFeNi (0.5≤x≤0.8) high-entropy alloys present FCC dendrite (x=0.5 and 0.6), “eutectic-like” structure (x=0.7) and BCC/B2 dendrite (x=0.8) morphologies successively as Al content increases. Correspondingly, the yield strength and tensile strength of the alloys increase from 291 MPa and 733 MPa (x=0.5) to 1004 MPa and 1423 MPa (x=0.7), respectively, and the elongation decreases from 39.7% (x=0.5) to 6.8% (x=0.7). After heat treatment at 1100 ℃, a large number of rod-like B2 phases are precipitated from the FCC dendrite region, which can improve the strength of heat-treated alloys, while the BCC/B2 spinodal structure transforms into FCC and B2 dual-phase structure, which can enhance the plasticity of heat-treated alloys. Therefore, the yield strength and tensile strength of heat-treated Al_(0.5)CoCrFeNi alloy with FCC dendrite morphology increase to 370 MPa and 866 MPa, respectively, and the elongation decreases to 30.1%. However, both phase transition behaviors have great influence on the microstructure and property of Al_(0.6)CoCrFeNi alloy due to the increasing fraction of spinodal structure. Therefore, the mechanical properties of heat-treated Al_(0.6)CoCrFeNi alloy are basically unchanged in comparison to that of the as-cast alloy. The as-cast Al_(0.7)CoCrFeNi and Al_(0.8)CoCrFeNi alloys contain higher fractions of spinodal structure, while the heattreated alloys present typical FCC and B2 dual-phase structure, resulting in an increase of plasticity but a decrease of strength. Correspondingly, the elongation of heat-treated Al_(0.7)CoCrFeNi alloy increases to 14.2%, and the yield strength and tensile strength decrease to 586 MPa and 1092 MPa, respectively. |
来源
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材料工程
,2024,52(1):249-258 【核心库】
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DOI
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10.11868/j.issn.1001-4381.2023.000067
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关键词
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高熵合金
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热处理
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相变
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微观组织
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力学性能
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地址
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北方工业大学机械与材料工程学院, 北京, 100144
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语种
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中文 |
文献类型
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研究性论文 |
ISSN
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1001-4381 |
学科
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金属学与金属工艺 |
基金
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国家自然科学基金项目
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北京市教委科技一般项目
;
北京市自然科学基金
;
北方工业大学青年毓优人才支持计划
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文献收藏号
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CSCD:7652210
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