1.北京科技大学碳中和研究院,北京 100083
2.北京航空材料研究院 先进高温结构材料重点实验室, 北京 100095
孙佳怡(1998—),女,硕士;E-mail:sunjiayi_gin@163.com
王恩会(1990—),男,博士,副研究员;E-mail:wangenhui@ustb.edu.cn
收稿:2024-03-14,
纸质出版:2024-07-30
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孙佳怡,董龙沛,赵云松等.镍基单晶涡轮叶片定向凝固过程温度场数值模拟研究进展[J].特殊钢,2024,45(04):34-40.
Sun Jiayi,Dong Longpei,Zhao Yunsong,et al.Research Progress on Numerical Simulation of Temperature Field during Directional Solidification of Nickel-based Single Crystal Turbine Blades[J].Special Steel,2024,45(04):34-40.
孙佳怡,董龙沛,赵云松等.镍基单晶涡轮叶片定向凝固过程温度场数值模拟研究进展[J].特殊钢,2024,45(04):34-40. DOI: 10.20057/j.1003-8620.2024-00058.
Sun Jiayi,Dong Longpei,Zhao Yunsong,et al.Research Progress on Numerical Simulation of Temperature Field during Directional Solidification of Nickel-based Single Crystal Turbine Blades[J].Special Steel,2024,45(04):34-40. DOI: 10.20057/j.1003-8620.2024-00058.
作为先进航空发动机不可缺少的核心部件之一,镍基单晶涡轮叶片(简称单晶叶片)的空心结构尺寸精度、合金元素的分布均匀性和表面及内腔冶金质量等要求极为苛刻。研究发现,定向凝固过程中温度梯度的控制直接影响单晶叶片性能和质量,能否持续获得稳定热流成为定向凝固技术的关键。随着计算机技术的不断进步,数值模拟已经成为单晶叶片定向凝固研究的重要手段之一。首先,对单晶叶片制备技术进行了介绍,分析了定向凝固过程中的传热方式。其次,总结了数值模拟界面换热系数边界条件的优化方法,重点介绍了Beck非线性估算法和有限差分法在界面换热系数求解中的应用,证明了两种方法均可以对铸件/型壳间的界面换热系数进行求解,有效提升了温度场模拟的准确性。最后,对定向凝固过程温度场数值模拟的研究进展进行了追踪,总结归纳出了工艺参数对温度场的影响规律。基于对镍基单晶涡轮叶片定向凝固过程温度场数值模拟研究进展的分析,提出了定向凝固工艺优化方向以及相关技术后续的发展趋势,以促进单晶涡轮叶片的高质量研发。
As one of the indispensable core components of advanced aero-engine, nickel-based single crystal turbine blades (hereinafter referred to as single-crystal blades) have extremely demanding requirements in terms of dimensional accuracy of the hollow structure, uniformity of alloying element distribution, and metallurgical quality of the surface and inner cavity. It is found that the control of temperature gradient during directional solidification directly affects the performance and quality of single crystal blades, and whether the continuous acquisition of stable heat flow becomes the key of directional solidification .With the continuous progress of computer technology, numerical simulation has become one of the important methods of single crystal blade directional solidification research. Firstly, introduce the single crystal blade technology is introduced and the heat transfer method in the directional solidification process is then analyzed.Secondly, the optimization methods of boundary conditions of interfacial heat transfer coefficient for numerical simulation are summarized, focusing on the application of Beck's inverse method and finite difference method in the solution of interfacial heat transfer coefficient. The results proves that the two methods can be used to solve the interfacial heat transfer coefficient between castings/shells, where the accuracy of the simulation of the temperature field can be effectively improved.Finally, the research progress of numerical simulation of the temperature field during directional solidification is also traced, and the influence of process parameters on the temperature field is summarized. Based on the analysis of the research progress of numerical simulation of temperature field during directional solidification of nickel-based single crystal turbine blades, the optimization direction of the directional solidification process and the subsequent development trend of the related technology are proposed to promote the research and development process of single crystal turbine blades.
向 巧 , 黄劲东 , 胡晓煜 , 等 . 航空动力强国发展战略研究 [J]. 中国工程科学 , 2022 , 24 ( 2 ): 106 - 112 .
刘巧沐 , 李园春 . 航空发动机材料及工艺发展浅析 [J]. 航空动力 , 2021 ( 6 ): 9 - 12 .
杨 浩 , 王方军 , 李 采 , 等 . 镍基高温合金的熔炼工艺研究进展 [J]. 特殊钢 , 2023 , 44 ( 3 ): 1 - 9 .
秦墨周 , 赵广迪 , 武金江 , 等 . 镍基高温合金U720Li在750 ℃不同氧化阶段的恒温氧化行为 [J]. 特殊钢 , 2024 , 45 ( 1 ): 12 - 17 .
Wang B X , Xia Y , Liu G H , et al . Numerical simulation of grain growth of directionally solidified DZ4125 alloy under varied blade orientations [J]. MATERIALS TRANSACTIONS , 2020 , 61 ( 8 ): 1663 - 1670 .
罗小雨 , 郭 靖 , 郭汉杰 , 等 . IN718镍基高温合金熔体脱氮和TiN析出热力学研究 [J]. 特殊钢 , 2024 , 45 ( 1 ): 33 - 41 .
沈 昀 , 郑 功 , 冯辰铭 . 熔模精密铸造技术研究进展 [J]. 精密成形工程 , 2019 , 11 ( 1 ): 54 - 62 .
Li Q , Song J X , Wang D G , et al . Effect of Cr, Hf and temperature on interface reaction between nickel melt and silicon oxide core [J]. Rare Metals , 2011 , 30 ( 1 ): 405 - 409 .
张 健 , 王 莉 , 王 栋 , 等 . 镍基单晶高温合金的研发进展 [J]. 金属学报 , 2019 , 55 ( 9 ): 1077 - 1094 .
何 波 , 周泓江 , 李建辉 , 等 . 镍基高温合金叶轮熔模铸造过程的数值模拟 [J]. 稀有金属 , 2016 , 40 ( 3 ): 227 - 235 .
夏 琨 , 徐向阳 , 段士伟 . 基于ProCAST的转子盘熔模铸造数值模拟研究 [J]. 铸造技术 , 2022 , 43 ( 5 ): 375 - 381 .
冀晓磊 , 孟晓东 , 张荣强 , 等 . 熔模铸造ZL114A铝合金凝固过程界面换热系数研究 [J]. 铸造技术: 1 - 6 .
李智锋 , 汪东红 , 吴文云 , 等 . 熔模铸造镍基高温合金件热应力场的数值模拟研究 [J]. 热加工工艺 , 2020 , 49 ( 7 ): 63 - 67 .
许庆彦 . 熔模铸造过程数值模拟研究进展 [J]. 铸造 , 2022 , 71 ( 7 ): 803 - 813 .
郑博远 , 吴一栋 , 陈晶阳 , 等 . K439B高温合金薄壁机匣试验件熔模精铸缺陷预测与工艺优化研究 [J]. 铸造技术 , 2023 , 44 ( 2 ): 147 - 152 .
王 妍 , 崔春娟 , 张 凯 , 等 . 定向凝固金属间化合物的研究进展 [J]. 材料导报 , 2022 , 36 ( 24 ): 135 - 142 .
Miller J D , Pollock T M . The effect of processing conditions on heat transfer during directional solidification via the bridgman and liquid metal cooling processes [J]. Metallurgical and Materials Transactions A , 2014 , 45 ( 1 ): 411 - 425 .
王建明 , 杨舒宇 . 镍基铸造高温合金 [M]. 北京 : 冶金工业出版社 , 2014 : 150 .
马德新 . 高温合金叶片单晶凝固技术的新发展 [J]. 金属学报 , 2015 , 51 ( 10 ): 1179 - 1190 .
刘红 . 工程材料 [M]. 北京 : 北京理工大学出版社 , 2019 : 393 .
问亚岗 , 崔春娟 , 田露露 , 等 . 定向凝固技术的研究进展与应用 [J]. 材料导报 , 2016 , 30 ( 3 ): 116 - 120 .
Yan X W , Xu Q Y , Tian G Q , et al . Multi-scale modeling of liquid-metal cooling directional solidification and solidification behavior of nickel-based superalloy casting [J]. Journal of Materials Science & Technology , 2021 , 67 : 36 - 49 .
许庆彦 , 夏鹄翔 . 镍基高温合金叶片定向凝固过程宏微观数值模拟研究进展 [J]. 航空发动机 , 2021 , 47 ( 4 ): 141 - 148 .
Yang H M , Pu Z M , Guo Z P , et al . A study of metal/die interfacial heat transfer behavior of vacuum die cast pure copper [J]. China Foundry , 2020 , 17 ( 3 ): 206 - 211 .
Dhodare A , Ravanan P M , Dodiya N . A review on interfacial heat transfer coefficient during solidification in casting [J]. International Journal of Engineering Research and , 2017 , V6( 2 ): 464 - 467 .
Yang H Q , Shan Z D , Wang Y F , et al . Simulation of temperature field of A356 aluminum alloy in freeze casting [J]. Journal of Physics: Conference Series , 2020 , 1600 ( 1 ): 012045 .
刘志文 , 李落星 , 易 杰 , 等 . 6061铝合金与H13模具钢固体界面接触换热系数的反分析求解 [J]. 中国有色金属学报 , 2019 , 29 ( 4 ): 700 - 708 .
邓同生 , 李东升 , 李小强 , 等 . 基于有限元反求的热拉弯成形界面接触换热系数研究 [J]. 塑性工程学报 , 2018 , 25 ( 3 ): 235 - 241 .
Chang T , Zou C M , Wang H W , et al . Optimization of the interface heat transfer coefficient model based on the dynamic thermo-physical parameters in the pressure-temperature coupled field [J]. International Communications in Heat and Mass Transfer , 2020 , 110 : 104435 .
Bazhenov V E , Tselovalnik Y V , Koltygin A V , et al . Investigation of the interfacial heat transfer coefficient at the metal–mold interface during casting of an A356 aluminum alloy and AZ81 magnesium alloy into steel and graphite molds [J]. International Journal of Metalcasting , 2021 , 15 ( 2 ): 625 - 637 .
马岚波 , 税国彦 , 关 洋 , 等 . K4169合金-陶瓷型壳间界面传热系数研究 [J]. 特种铸造及有色合金 , 2021 , 41 ( 8 ): 1048 - 1052 .
Szeliga D , Kubiak K , Ziaja W , et al . Investigation of casting–ceramic shell mold interface thermal resistance during solidification process of nickel based superalloy [J]. Experimental Thermal and Fluid Science , 2017 , 87 : 149 - 160 .
Ali Rafique M M , Shah U . Modeling and simulation of heat transfer phenomenon related to mold heating during investment casting [J]. Engineering , 2020 , 12 ( 5 ): 291 - 314 .
周建新 , 殷亚军 , 沈旭 , 等 . 铸造充型凝固过程数值模拟系统及应用 [M]. 北京 : 机械工业出版社 , 2020 : 424 .
严平 . 战斗部及其毁伤原理 [M]. 北京 : 国防工业出版社 , 2020 : 386 .
Sun Z Z , Hu H , Niu X P . Determination of heat transfer coefficients by extrapolation and numerical inverse methods in squeeze casting of magnesium alloy AM60 [J]. Journal of Materials Processing Technology , 2011 , 211 ( 8 ): 1432 - 1440 .
张云光 , 李志强 , 王耀奇 , 等 . 2060铝锂合金冷模热成形界面换热系数确定的实验与算法 [J]. 航空学报 , 2021 , 42 ( 2 ): 423805 .
贾志宏 , 谢道存 , 张 弛 , 等 . 基于辐射散热的高温合金定向凝固温度场模拟 [J]. 铸造技术 , 2016 , 37 ( 10 ): 2149 - 2153 .
杨 亮 , 李嘉荣 , 金海鹏 , 等 . DD6单晶精铸薄壁试样定向凝固过程数值模拟 [J]. 材料工程 , 2014 , 42 ( 11 ): 15 - 22 .
Liao D M , Cao L , Chen T , et al . Radiation heat transfer model for complex superalloy turbine blade in directional solidification process based on finite element method [J]. China Foundry , 2016 , 13 ( 2 ): 123 - 132 .
周玉辉 , 黄清民 , 林荣川 . 单晶高温合金叶片定向凝固过程数值模拟 [J]. 特种铸造及有色合金 , 2021 , 41 ( 11 ): 1361 - 1365 .
杨振宇 , 陈 昊 , 胡松松 , 等 . 镍基单晶高温合金定向凝固初期温度场演化过程 [J]. 铸造 , 2020 , 69 ( 11 ): 1180 - 1184 .
王润楠 , 许庆彦 , 柳百成 . 计算机模拟技术在航空发动机涡轮叶片制造中的应用 [J]. 自然杂志 , 2017 , 39 ( 2 ): 79 - 86 .
Ren N , Li J , Wang B Q , et al . Design of variable withdrawal rate for superalloy single-crystal blade fabrication [J]. Materials & Design , 2021 , 198 : 109347 .
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