Independent control of HVOF particle velocity and temperature

被引:50
|
作者
Hanson, TC [1 ]
Hackett, CM [1 ]
Settles, GS [1 ]
机构
[1] Penn State Univ, University Pk, PA 16802 USA
关键词
deposition; high velocity; HVOF; spray;
D O I
10.1361/105996302770349005
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Independent control of high velocity oxygen fuel (HVOF) spray particle velocity and temperature has not been possible in the past, confusing the effect of either parameter on coating properties. This study describes a method by which velocity and temperature may be varied independently. Commercial HVOF equipment that was fitted with a special conical supersonic nozzle having four distinct particle injection locations was used. The present results, which were predicted in simulations and demonstrated in experiments, revealed several pertinent facts. First, particle velocity is principally related to combustion chamber pressure and is relatively unaffected by other design or operating conditions. Second, particle temperature is related to particle residence time within the nozzle, which can be controlled by the choice of particle injection location. In these experiments, the impact velocity and temperature of stainless steel particles were controlled within the ranges 340 to 660 m/s and 1630 to 2160 K, respectively. This range of parameters produced significant variations in splat morphology, coating microstructure, and coating oxide content. Such particle control allows the effects of velocity and temperature on coating properties to be assessed and controlled independently. These results also have commercial application, potentially enabling the user to tailor particle impact velocity and temperature to achieve specific coating properties.
引用
收藏
页码:75 / 85
页数:11
相关论文
共 50 条
  • [31] Modeling and Control of High-Velocity Oxygen-Fuel (HVOF) Thermal Spray: A Tutorial Review
    Li, Mingheng
    Christofides, Panagiotis D.
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2009, 18 (5-6) : 753 - 768
  • [32] Effects of process parameters on molten particle speed and surface temperature and the properties of HVOF CrC/NiCr coatings
    Lih, Wei-Cheng
    Yang, S.H.
    Su, C.Y.
    Huang, S.C.
    Hsu, I.C.
    Leu, M.S.
    2000, Elsevier Sequoia SA, Lausanne, Switzerland (133-134)
  • [33] Effects of process parameters on molten particle speed and surface temperature and the properties of HVOF CrC/NiCr coatings
    Lih, Wei-Cheng
    Yang, S.H.
    Su, C.Y.
    Huang, S.C.
    Hsu, I.C.
    Leu, M.S.
    Surface and Coatings Technology, 2000, 133-134 : 54 - 60
  • [34] Independent Control of Drop Size and Velocity in Microfluidic Flow-Focusing Generators Using Variable Temperature and Flow Rate
    Stan, Claudiu A.
    Tang, Sindy K. Y.
    Whitesides, George M.
    ANALYTICAL CHEMISTRY, 2009, 81 (06) : 2399 - 2402
  • [35] Novel temperature and humidity independent control system
    Jiang, Yu
    Huang, Yi
    Ge, Tianshu
    Wang, Ruzhu
    Huagong Xuebao/CIESC Journal, 2014, 65 : 188 - 194
  • [36] TEMPERATURE INDEPENDENT CRITICAL VELOCITY FOR OSCILLATING DISK IN HE-II
    ROGER, RP
    HUSSEY, RG
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1969, 14 (11): : 1108 - &
  • [37] Two Sound Field Control Methods Based on Particle Velocity
    Wang, Song
    Zhang, Cong
    ELECTRONICS, 2022, 11 (14)
  • [38] The Effect of Torch Hardware on Particle Temperature and Particle Velocity Distributions in the Powder Flame Spray Process
    Hall, A.
    Urrea, D.
    Mccloskey, J.
    Beatty, D.
    Roemer, T.
    Hirschfeld, D.
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2010, 19 (04) : 824 - 827
  • [39] The Effect of Torch Hardware on Particle Temperature and Particle Velocity Distributions in the Powder Flame Spray Process
    A. Hall
    D. Urrea
    J. Mccloskey
    D. Beatty
    T. Roemer
    D. Hirschfeld
    Journal of Thermal Spray Technology, 2010, 19 : 824 - 827
  • [40] The velocity of a quantum particle in the case of real solutions of the time independent Schrödinger equation
    Feoli, A.
    INTERNATIONAL JOURNAL OF GEOMETRIC METHODS IN MODERN PHYSICS, 2024, 21 (13)