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L-PBF飞机液压流道悬垂结构表面粗糙度表征及氧化特性实验研究

李定波 刘晓超 王梦阳 焦宗夏 姚静

李定波,刘晓超,王梦阳,等. L-PBF飞机液压流道悬垂结构表面粗糙度表征及氧化特性实验研究[J]. 北京航空航天大学学报,2026,52(8):2887-2898
引用本文: 李定波,刘晓超,王梦阳,等. L-PBF飞机液压流道悬垂结构表面粗糙度表征及氧化特性实验研究[J]. 北京航空航天大学学报,2026,52(8):2887-2898
Li D B,Liu X C,Wang M Y,et al. Experimental investigation of overhang structure surface roughness characterization and oxidation characteristic in L-PBF aircraft hydraulic channels[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(8):2887-2898 (in Chinese)
Citation: Li D B,Liu X C,Wang M Y,et al. Experimental investigation of overhang structure surface roughness characterization and oxidation characteristic in L-PBF aircraft hydraulic channels[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(8):2887-2898 (in Chinese)

L-PBF飞机液压流道悬垂结构表面粗糙度表征及氧化特性实验研究

doi: 10.13700/j.bh.1001-5965.2025.0614
基金项目: 

国家自然科学基金(52205045); 航空科学基金(2022Z029051001);浙江省自然科学基金(LZ24E050006);航空航天结构力学及控制全国重点实验室(南京航空航天大学)研究基金(MCAS-E-0224G01);北京航空航天大学博士研究生卓越学术基金

详细信息
    通讯作者:

    E-mail:liuxiaochaoustb@163.com

  • 中图分类号: V229+.5

Experimental investigation of overhang structure surface roughness characterization and oxidation characteristic in L-PBF aircraft hydraulic channels

Funds: 

National Natural Science Foundation of China (52205045); Aeronautical Science Foundation of China (2022Z029051001); Zhejiang Provincial Natural Science Foundation of China (LZ24E050006); Research Fund of State Key Laboratory of Mechanics and Control for Aerospace Structures (Nanjing University of Aeronautics and Astronautics) (MCAS-E-0224G01); Academic Excellence Foundation of BUAA for PhD Students

More Information
  • 摘要:

    激光粉末床熔融(L-PBF)作为一种增材制造技术,已经成为制造复杂几何形状零件最具应用前景的技术之一。L-PBF技术虽然增加了飞机液压流道设计的自由度,但改善流道悬垂结构的表面质量和氧化行为仍是关键挑战。基于此,通过实验探究了激光功率密度、光斑直径和铺粉厚度等关键工艺参数对流道顶部悬垂结构表面粗糙度和氧化特性的影响规律,揭示了悬垂结构表面未完全熔融颗粒和微裂纹的成形机理。通过扫描电子显微镜(SEM)对悬垂结构表面的微观形貌进行表征,利用能量色散X射线光谱(EDS)表征氧元素在完全熔融和未完全熔融区域的分布,揭示不完全熔融与氧化之间的相关性。实验结果表明:较高的激光功率密度不仅会加剧表面粗糙度,同时会促进未完全熔融区域的氧化;对于直径10 mm的流道,光斑直径130 μm、铺粉厚度40 μm可以有效降低其顶部的表面粗糙度;未完全熔融区域的氧元素含量远大于未熔融区域和完全熔融区域;完全熔融区域和未完全熔融区域的氧元素含量均随着成形层数的增加呈下降趋势;使用新鲜粉末不仅可以降低悬垂结构表面粗糙度,还可以降低氧化物含量。研究成果为L-PBF技术在飞机液压流道的应用提供了理论依据和实验指导。

     

  • 图 1  TC4粉末的SEM图像

    Figure 1.  SEM image of TC4 powder

    图 2  TC4粉末粒径分布

    Figure 2.  Particle size distribution of TC4 powder

    图 3  圆形流道样品结构及悬垂结构样品结构

    Figure 3.  Structures of circular channel sample and overhang structure samples

    图 4  样品测量位置及测量仪器

    Figure 4.  Measuring position of samples and measuring instrument

    图 5  不同激光功率密度下流道顶部的表面平均粗糙度分布

    Figure 5.  Distribution of the surface average roughness at the top of channels for different laser power densities

    图 6  不同光斑直径下流道顶部的表面形貌

    Figure 6.  Surface morphology at the top of channels under different spot diameters

    图 7  不同光斑直径下流道顶部的表面平均粗糙度分布

    Figure 7.  Distribution of the surface average roughness at the top of channels for different spot diameters

    图 8  不同铺粉厚度下流道顶部的表面形貌

    Figure 8.  Surface morphology at the top of channels under different layer thicknesses

    图 9  不同铺粉厚度下流道顶部的表面平均粗糙度分布

    Figure 9.  Distribution of the surface average roughness at the top of channels for different layer thicknesses

    图 10  激光功率密度为32 J/mm3时流道悬垂结构侧边截面的表面形貌

    Figure 10.  Surface morphology of the side cross section of the channel overhang structure at the laser power density of 32 J/mm3

    图 11  单层悬垂结构侧边的表面形貌

    Figure 11.  Surface morphology of the side edges of single-layer overhanging structures

    图 12  单层悬垂结构表面形貌及元素分布

    Figure 12.  Surface morphology and element distribution of single-layer overhanging structures

    图 13  单层悬垂结构不同区域的氧元素含量

    Figure 13.  Oxygen content in different regions of single-layer overhanging structure

    图 14  单层悬垂结构表面的XRD测试结果

    Figure 14.  XRD test results of single-layer overhanging structure surface

    图 15  不同激光功率密度下单层悬垂结构的表面形貌

    Figure 15.  Surface morphology of the single-layer overhanging structure at different laser power densities

    图 16  激光功率密度对不同区域氧元素含量的影响

    Figure 16.  Effect of laser power density on oxygen content in different regions

    图 17  不同成形层数下悬垂结构的表面形貌及氧元素含量分布

    Figure 17.  Surface morphology and oxygen distribution of overhanging structure with different numbers of fabrication layers

    图 18  成形层数对不同区域氧元素含量的影响

    Figure 18.  Effect of numbers of fabrication layers on oxygen content in different regions

    图 19  不同批次粉末成形单层悬垂结构的表面形貌

    Figure 19.  Surface morphology of the single-layer overhanging structure manufactured by different batches of powder

    图 20  粉末批次对不同区域氧元素含量的影响

    Figure 20.  Effect of powder batches on oxygen content in different regions

    图 21  回收粉末的XRD测试结果

    Figure 21.  XRD test results of the recycled powder

    表  1  TC4粉末化学成分

    Table  1.   Chemical composition of the TC4 powders

    元素 质量分数
    Ti 余量
    Al 0.055~0.0675
    V 0.035~0.045
    Fe 0.0030
    Si 0.0015
    C 0.0008
    N 0.0002
    H 0.00005
    O 0.0010
    其他 0.0040
    下载: 导出CSV

    表  2  圆形流道样品加工参数

    Table  2.   Processing parameters for circular channel samples

    方案激光功率密度/(J·mm−3)光斑直径/μm铺粉厚度/μm点距/μm扫描间距/μm扫描策略
    166、55.5、53.5、48、46、39、35、33、3213040110110条带
    26690、110、130、15040110110条带
    36613020、40、60、80110110条带
    下载: 导出CSV

    表  3  悬垂结构样品加工参数

    Table  3.   Processing parameters for overhang structure samples

    方案激光功率/W扫描速度/(mm·s−1)成形层数点距/μm铺粉厚度/μm扫描间距/μm光斑直径/μm扫描策略
    13701700111040110130条带
    23201800111040110130条带
    32701900111040110130条带
    42202000111040110130条带
    537017001、2、3、4、5、6、7、8、9、1011040110130条带
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-09-03
  • 录用日期:  2025-10-03
  • 网络出版日期:  2025-10-14
  • 整期出版日期:  2026-08-31

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