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    A comparative study of CFD and empirical approaches for environmental load coefficients

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    https://www.riss.kr/link?id=A110377153

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Accurate estimation of wind and current loads is essential for the maneuvering and station-keeping performance of modern vessels. Existing empirical approaches, such as Fujiwara's regression and DNV-ST-0111, are widely used during the early stages of design; however, their reliability for multihull vessels, particularly those with asymmetric superstructures, has not yet been fully verified. This study evaluates these methods using a 19.7 m Crew Transfer Vessel (CTV) catamaran as a case study. Surge (Cwx/Ccx), sway (Cwy/Ccy), and yaw moment (Cwn/Ccn) coefficients are computed over drift angles from 0◦ to 180◦ using steady RANS double-body simulations, complemented by URANS multiphase simulations to assess free-surface effects. Numerical accuracy is verified through mesh convergence and ITTC-based uncertainty analysis, yielding GCI values below 1–2%.
    The results show that Fujiwara's method significantly overestimates the longitudinal wind load (Cwx) by up to ~70% due to its inability to capture asymmetric separation and three-dimensional flow interactions, while also underpredicting stern-wind behavior. Although lateral forces and yaw trends are generally reproduced, notable deviations occur near peak loading conditions. For current loads, DNV-ST-0111 predicts overall trends reasonably well but underestimates yaw moments due to neglect of tunnel flow interaction and asymmetric pressure distribution. Free-surface effects are found to be negligible at the considered low Froude numbers, supporting the use of the double-body approach for efficient load prediction.
    Overall, this study provides a quantitative assessment of the limitations of widely used empirical approaches for multihull vessels and demonstrates the importance of resolving three-dimensional flow interactions for accurate load prediction. The results show CFD as a reliable tool for estimating environmental loads on catamaran configurations and provide a validated dataset that can support the development of improved prediction models.
    The CFD-based coefficients presented in this study provide a reference dataset for future model development and practical design applications.
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    Accurate estimation of wind and current loads is essential for the maneuvering and station-keeping performance of modern vessels. Existing empirical approaches, such as Fujiwara's regression and DNV-ST-0111, are widely used during the early stages of ...

    Accurate estimation of wind and current loads is essential for the maneuvering and station-keeping performance of modern vessels. Existing empirical approaches, such as Fujiwara's regression and DNV-ST-0111, are widely used during the early stages of design; however, their reliability for multihull vessels, particularly those with asymmetric superstructures, has not yet been fully verified. This study evaluates these methods using a 19.7 m Crew Transfer Vessel (CTV) catamaran as a case study. Surge (Cwx/Ccx), sway (Cwy/Ccy), and yaw moment (Cwn/Ccn) coefficients are computed over drift angles from 0◦ to 180◦ using steady RANS double-body simulations, complemented by URANS multiphase simulations to assess free-surface effects. Numerical accuracy is verified through mesh convergence and ITTC-based uncertainty analysis, yielding GCI values below 1–2%.
    The results show that Fujiwara's method significantly overestimates the longitudinal wind load (Cwx) by up to ~70% due to its inability to capture asymmetric separation and three-dimensional flow interactions, while also underpredicting stern-wind behavior. Although lateral forces and yaw trends are generally reproduced, notable deviations occur near peak loading conditions. For current loads, DNV-ST-0111 predicts overall trends reasonably well but underestimates yaw moments due to neglect of tunnel flow interaction and asymmetric pressure distribution. Free-surface effects are found to be negligible at the considered low Froude numbers, supporting the use of the double-body approach for efficient load prediction.
    Overall, this study provides a quantitative assessment of the limitations of widely used empirical approaches for multihull vessels and demonstrates the importance of resolving three-dimensional flow interactions for accurate load prediction. The results show CFD as a reliable tool for estimating environmental loads on catamaran configurations and provide a validated dataset that can support the development of improved prediction models.
    The CFD-based coefficients presented in this study provide a reference dataset for future model development and practical design applications.

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