A novel method for the determination of frictional resistance coefficient for a plate with inhomogeneous roughness

被引:7
作者
Farkas, Andrea [1 ]
Degiuli, Nastia [1 ]
Martic, Ivana [1 ]
机构
[1] Univ Zagreb, Fac Mech Engn & Naval Architecture, Zagreb, Croatia
关键词
Frictional resistance coefficient; Friction velocity; Roughness; Inhomogeneous roughness; Homogeneous roughness; TURBULENT-BOUNDARY-LAYER; STEP CHANGE; HYDRODYNAMIC CHARACTERISTICS; SURFACE-ROUGHNESS; SHIP RESISTANCE; DRAG; SMOOTH;
D O I
10.1016/j.oceaneng.2021.109628
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Ship performance is largely influenced by roughness on immersed surfaces, which is mostly inhomogeneous. Therefore, the prediction of the effects of roughness on ship performance is of crucial importance. Even though it has several drawbacks, the Granville similarity law scaling method is widely reported in the literature for predicting the frictional resistance coefficient of a rough surface. Lately, the CFD approach based on a modified wall function approach has also been used, since it allows for a more comprehensive analysis of the effects of roughness. In this paper, a novel method for assessing the frictional resistance coefficient for rough surfaces is proposed. The proposed method can take into account the non-uniform distribution of friction velocity, as well as the roughness Reynolds number, and thus the non-uniform distribution of roughness function values can be predicted along a rough surface. Additionally, the proposed method can consider the non-uniform distribution of roughness and its effect on the frictional coefficient of a flat plate. Based on the proposed method, an in-house numerical code is developed, allowing for the rapid and accurate assessment of the frictional resistance coefficient for a rough surface. The applicability of the proposed method is demonstrated by comparison with the CFD approach for several surface conditions defined with different roughness function models and the longitudinal position of roughness. A comparison is made of two flat plates representing one containership and one tanker at two different speeds. The obtained relative deviations in the predicted frictional resistance coefficients for all surface conditions are lower than 2.5%. Therefore, it is demonstrated that the proposed method can be used for estimating the frictional resistance coefficient of various surface conditions defined with roughness function models and the longitudinal positions of roughness.
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页数:14
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共 57 条
  • [1] Review and comparison of methods to model ship hull roughness
    Andersson, Jennie
    Oliveira, Dinis Reis
    Yeginbayeva, Irma
    Leer-Andersen, Michael
    Bensow, Rickard E.
    [J]. APPLIED OCEAN RESEARCH, 2020, 99
  • [2] RESPONSE OF A TURBULENT BOUNDARY LAYER TO A STEP CHANGE IN SURFACE ROUGHNESS .1. SMOOTH TO ROUGH
    ANTONIA, RA
    LUXTON, RE
    [J]. JOURNAL OF FLUID MECHANICS, 1971, 48 (AUG27) : 721 - &
  • [3] RESPONSE OF A TURBULENT BOUNDARY-LAYER TO A STEP CHANGE IN SURFACE-ROUGHNESS .2. ROUGH-TO-SMOOTH
    ANTONIA, RA
    LUXTON, RE
    [J]. JOURNAL OF FLUID MECHANICS, 1972, 53 (JUN27) : 737 - &
  • [4] Biofouling: lessons from nature
    Bixler, Gregory D.
    Bhushan, Bharat
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2012, 370 (1967): : 2381 - 2417
  • [5] Bowden B., 1974, Resistance increments due to hull rougness associated with form factor extrapolation methods
  • [6] Rough-wall boundary layers: mean flow universality
    Castro, Ian P.
    [J]. JOURNAL OF FLUID MECHANICS, 2007, 585 : 469 - 485
  • [7] Cebeci T., 1977, Momentum Transfer in Boundary Layers
  • [8] Predicting the Drag of Rough Surfaces
    Chung, Daniel
    Hutchins, Nicholas
    Schultz, Michael P.
    Flack, Karen A.
    [J]. ANNUAL REVIEW OF FLUID MECHANICS, VOL 53, 2021, 53 : 439 - 471
  • [9] Practical added resistance diagrams to predict fouling impact on ship performance
    Demirel, Yigit Kemal
    Song, Soonseok
    Turan, Osman
    Incecik, Atilla
    [J]. OCEAN ENGINEERING, 2019, 186
  • [10] Effect of barnacle fouling on ship resistance and powering
    Demirel, Yigit Kemal
    Uzun, Dogancan
    Zhang, Yansheng
    Fang, Ho-Chun
    Day, Alexander H.
    Turan, Osman
    [J]. BIOFOULING, 2017, 33 (10) : 819 - 834