Influence of Full and Symmetrical Domains on the Numerical Flow around a SUBOFF Submarine Model using OpenFOAM

Publish Year: 1402
نوع سند: مقاله ژورنالی
زبان: English
View: 113

This Paper With 13 Page And PDF Format Ready To Download

  • Certificate
  • من نویسنده این مقاله هستم

استخراج به نرم افزارهای پژوهشی:

لینک ثابت به این Paper:

شناسه ملی سند علمی:

JR_JAFM-16-5_010

تاریخ نمایه سازی: 20 اسفند 1401

Abstract:

In this research, we consider the influence of two kinds of domain on the numerical flow around a submarine model. A fully appended SUBOFF submarine model was used, and the structure and characteristics of the flow were investigated under a full domain and a symmetrical domain arrangement. The numerical simulation was carried out using the OpenFOAM software, and the flow was numerically modelled as single-phase and incompressible. The SST k-ω turbulence model was used in both domains, together with an insensitive Spalding wall function to represent the boundary layer near the wall. The results showed that simulations in both the full and symmetrical domains could accurately predict the total resistance. Compared to the symmetrical domain, the resistance value obtained with the full domain was more precise; the symmetrical domain under coarse grid conditions had an error value of ۱.۳۴%, whereas the full domain using the same grid size had an error value of ۰.۶%. Hence, the full domain was superior in terms of predicting the resistance with a coarse grid. Next, the pressure coefficient comparison at the leading edge of the rudder was calculated, where = ۰.۹۲, and the symmetric domain was found to have a value of ۰.۰۷۴۷ whereas the full domain had a value of ۰.۲۳۶. Compared with the results from experiment (=۰.۳۰۲), the symmetric domain appears to give an underestimate for the pressure distribution at this position. In addition, the flow structures and properties in both domains differ, particularly in terms of the vortical structures generated by the sail and rudders. The simulation results for the full domain reveal that the flow around the SUBOFF model is asymmetric. The full domain was able to capture the flow structures in more detail than the symmetrical domain, and represented the velocity distribution at the propeller plane better. As a result, the full domain must be considered when carrying out propeller analysis and self-propulsion simulations.

Authors

N. V. A. Permadi

Department of Systems & Naval Mechatronic Engineering, National Cheng Kung University, Tainan, Taiwan

J. H. Chen

Department of Systems & Naval Mechatronic Engineering, National Cheng Kung University, Tainan, Taiwan

E. Sugianto

Department of Marine Engineering, Hang Tuah University, Surabaya, Indonesia

مراجع و منابع این Paper:

لیست زیر مراجع و منابع استفاده شده در این Paper را نمایش می دهد. این مراجع به صورت کاملا ماشینی و بر اساس هوش مصنوعی استخراج شده اند و لذا ممکن است دارای اشکالاتی باشند که به مرور زمان دقت استخراج این محتوا افزایش می یابد. مراجعی که مقالات مربوط به آنها در سیویلیکا نمایه شده و پیدا شده اند، به خود Paper لینک شده اند :
  • Atta, T., Z. Ali, S. F. Ali and E. Uddin ...
  • Barth, T. J. and D. C. Jespersen (۱۹۸۹). The design ...
  • Boache, J. (۱۹۹۴). Perspective: A method for uniform reporting of ...
  • Catalano, P., W. Meng, G. Iaccarino and P. Moin (۲۰۰۳). ...
  • Constantinescu, G. and K. Squires (۲۰۰۴). Numerical investigations of flow ...
  • Doğrul, A. (۲۰۱۹). Hydrodynamic investigation of a submarine moving under ...
  • Ellis, C. L., D. B. Clarke, D. Butler and P. ...
  • Gao, W., N. Daniel, L. Zhenxia and L. Yaguo (۲۰۱۸). ...
  • Huang, T., H. Liu, N. Groves, T. Forlini, J. Blanton ...
  • Islam, H. and C. G. Soares (۲۰۱۹). Uncertainty analysis in ...
  • ITTC (۲۰۱۱). Practical guidelines for ship cfd applications. In ITTC—Recommended ...
  • ITTC (۲۰۱۷). Uncertainly analysis in CFD verification and validation methodology ...
  • ITTC (۲۰۲۱). Guideline for VIV Testing. In ITTC—Recommended Procedures and ...
  • Lin, H. and C. Li (۲۰۲۰). The investigation of a ...
  • Lungu, A. (۲۰۱۹). DES-based computation of the flow around the ...
  • Menter, R. (۱۹۹۴). Two-equation eddy-viscosity turbulence models for engineering applications. ...
  • Pan, Y., H. Zhang and Q. Zhou (۲۰۱۲). Numerical Prediction ...
  • Pantokratoras, A. (۲۰۱۷). Progress in Computational Fluid Dynamics. Steady Flow ...
  • Paredes, J., T. Maria, H. Quintuña and R. Datla (۲۰۲۱). ...
  • Paudel, S. and N. Saenger (۲۰۱۷). Grid refinement study for ...
  • Pereira, S., G. Vaz, L. Eça, and S. Girimaji (۲۰۱۸). ...
  • Permadi, N. V. A. and E. Sugianto (۲۰۲۲). CFD Simulation ...
  • Pook, D. A., D. B. Clarke, M. Jones, H. Quick ...
  • Qiu, Y., K. Shi, X. Hou and F. Wei (۲۰۰۷). ...
  • Rajani, N., A. Kandasamy and S. Majumdar (۲۰۰۹). Numerical simulation ...
  • Roache, J. (۱۹۹۷). Quantification of uncertainty in computational fluid dynamics. ...
  • Roache, J. (۱۹۹۸). Verification of codes and calculations. AIAA Journal ...
  • Rocha, A. L., L. Eça and G. Vaz (۲۰۱۷). On ...
  • Roy, J. (۲۰۰۵). Review of code and solution verification procedures ...
  • Sadikin, A., Y. Nurul, K. Abdullah and M. Mohammed (۲۰۱۴). ...
  • Sugianto, E., J. H. Chen and N. V. A. Permadi ...
  • Takahashi, K. and S. Prasanta (۲۰۱۹). Fundamental CFD Study on ...
  • Toxopeus, S. (۲۰۰۸). Viscous-flow calculations for bare hull DARPA SUBOFF ...
  • Ueda, H. and O. Hinze (۱۹۷۵). Fine-structure turbulence in the ...
  • Versteeg, H. K. and W. Malalasekera (۲۰۰۷). An introduction to ...
  • Yen, C. H., U. J. Hui, Y. Y. We, A. ...
  • نمایش کامل مراجع