Picosecond laser ablation of nickel-based superalloy C263

被引:0
|
作者
N. G. Semaltianos
W. Perrie
J. Cheng
P. French
M. Sharp
G. Dearden
K. G. Watkins
机构
[1] University of Liverpool,Department of Engineering
[2] Aristotle University of Thessaloniki,Department of Physics
[3] Liverpool John Moores University,General Engineering Research Institute
来源
Applied Physics A | 2010年 / 98卷
关键词
79.20.Ds; 42.55.Xi; 68.37.Ps; 68.37.Hk;
D O I
暂无
中图分类号
学科分类号
摘要
Picosecond laser (10.4 ps, 1064 nm) ablation of the nickel-based superalloy C263 is investigated at different pulse repetition rates (5, 10, 20, and 50 kHz). The two ablation regimes corresponding to ablation dominated by the optical penetration depth at low fluences and of the electron thermal diffusion length at high fluences are clearly identified from the change of the surface morphology of single pulse ablated craters (dimples) with fluence. The two corresponding thresholds were measured as Fth(D1)1=0.68±0.02 J/cm2 and Fth(D2)1=2.64±0.27 J/cm2 from data of the crater diameters D1,2 versus peak fluence. The surface morphology of macroscopic areas processed with a scanning laser beam at different fluences is characterised by ripples at low fluences. As the fluence increases, randomly distributed areas among the ripples are formed which appear featureless due to melting and joining of the ripples while at high fluences the whole irradiated surface becomes grainy due to melting, splashing of the melt and subsequent resolidification. The throughput of ablation becomes maximal when machining at high pulse repetition rates and with a relatively low fluence, while at the same time the surface roughness is kept low.
引用
收藏
页码:345 / 355
页数:10
相关论文
共 50 条
  • [31] Laser Cladding of Ultra-Thin Nickel-Based Superalloy Sheets
    Gabriel, Tobias
    Rommel, Daniel
    Scherm, Florian
    Gorywoda, Marek
    Glatzel, Uwe
    MATERIALS, 2017, 10 (03):
  • [32] Hot Corrosion and Oxidation Behaviour of a Laser Processed Nickel-based Superalloy
    Narayanan, B. K.
    Duraiselvam, M.
    Natarajan, S.
    Khan, M. A.
    LASERS IN ENGINEERING, 2019, 43 (1-3) : 183 - 200
  • [33] Microstructure of nickel-based superalloy fabricated by selective laser melting in vacuum
    Sato N.
    Nakano S.
    Nagahari T.
    Nagoya T.
    Kakehi K.
    Funtai Oyobi Fummatsu Yakin/Journal of the Japan Society of Powder and Powder Metallurgy, 2020, 67 (03): : 121 - 124
  • [34] Research progress on selective laser melting processing for nickel-based superalloy
    Zhang, Maohang
    Zhang, Baicheng
    Wen, Yaojie
    Qu, Xuanhui
    INTERNATIONAL JOURNAL OF MINERALS METALLURGY AND MATERIALS, 2022, 29 (03) : 369 - 388
  • [35] Structuring of nanoporous nickel-based superalloy membranes via laser etching
    Naeth, O.
    Stephen, A.
    Roesler, J.
    Vollertsen, F.
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2009, 209 (10) : 4739 - 4743
  • [36] AN AUTOMATED SEGMENTATION FOR NICKEL-BASED SUPERALLOY
    Chuang, Hsiao-Chiang
    Huffman, Landis M.
    Comer, Mary L.
    Simmons, Jeff P.
    Pollak, Ilya
    2008 15TH IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING, VOLS 1-5, 2008, : 2280 - 2283
  • [37] MAGNESIUM DISTRIBUTION IN A NICKEL-BASED SUPERALLOY
    MA, P
    ZHU, J
    METALLOGRAPHY, 1986, 19 (01): : 115 - 118
  • [38] RECRYSTALLIZATION BEHAVIOUR OF A NICKEL-BASED SUPERALLOY
    Podany, Pavel
    Novy, Zbysek
    Dlouhy, Jaromir
    MATERIALI IN TEHNOLOGIJE, 2016, 50 (02): : 199 - 205
  • [39] Nickel-based superalloy - Designed for aerospace
    Jeniski, Richard A., Jr.
    Kennedy, Richard L.
    ADVANCED MATERIALS & PROCESSES, 2006, 164 (12): : 19 - 22
  • [40] Optimizing the Electrical Discharge Machining Process Parameters of the Nimonic C263 Superalloy: A Sustainable Approach
    Shastri, Renu Kiran
    Mohanty, Chinmaya Prasad
    Mishra, Umakant
    Hotta, Tapano Kumar
    Patil, Viraj Vishwas
    Prashanth, Konda Gokuldoss
    JOURNAL OF MANUFACTURING AND MATERIALS PROCESSING, 2024, 8 (03):