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    锆添加量对K465高温合金显微组织和性能的影响

    Effects of Zr Addition Amount on Microstructure and Properties of K465 Superalloy

    • 摘要: 采用真空感应熔炼工艺制备了不同锆添加量(0,0.005%,0.025%,0.050%,质量分数)的K465镍基高温合金,并进行1 210 ℃×4 h热处理,研究了锆添加量对合金显微组织、拉伸性能和高温持久性能的影响。结果表明:不同锆添加量试验合金中存在块状MC型碳化物、条状和颗粒状M6C型碳化物,以及γ/γ´共晶和显微疏松;当锆添加量不大于0.025%时,随锆添加量增加,颗粒状碳化物含量先基本不变后增加,块状和条状碳化物以及γ/γ´共晶和显微疏松含量无明显变化;当锆添加量增至0.050%时,条状和颗粒状碳化物含量急剧降低,块状碳化物、γ/γ´共晶和显微疏松含量均显著增加。随着锆添加量的增加,试验合金的室温抗拉强度无明显变化,断后伸长率先基本不变后降低,在975 ℃/225 MPa下的持久断裂时间先延长后缩短。锆的最佳添加量为0.025%,此时合金的持久断裂时间最长,为70 h,室温抗拉强度为1 020 MPa,断后伸长率为9%。

       

      Abstract: K465 nickel-based superalloy with different addition amounts (0, 0.005%, 0.025%, 0.050%, mass fraction) of Zr was prepared by vacuum induction melting, and then was subjected to heat treatment at 1 210 ℃ for 4 h. The effect of Zr addition amount on the microstructure, tensile properties, and high-temperature endurance property of the alloy was studied. The results show that block-shaped MC carbides, strip-shaped and granular M6C carbides, as well as γ/γ' eutectic and microporosity existed in the alloy with different Zr addition amounts. When the addition amount of Zr was not greater than 0.025%, with the increase of Zr addition amount, the content of granular carbides remained basically stable first and then increased, the content of block- and strip- shaped carbides, γ/γ' eutectic and microporosity showed no significant change. When the addition amount of Zr increased to 0.050%, the content of strip-shaped and granular carbides sharply decreased, and the content of block-shaped carbide, γ/γ' eutectic and microporosity significantly increased. With the increase of Zr addition amount, the tensile strength of the test alloy at room temperature showed no significant change, the percentage elongation after fracture remained basically stable first and then decreased, and the endurance rupture time at 975 ℃/225 MPa was prolonged first and then shortened. The optimal addition amount of Zr was 0.025%; the endurance rupture time of the alloy was the longest, which was 70 h, the tensile strength at room temperature was 1 020 MPa, and the percentage elongation after fracture was 9%.

       

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