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MECHANICAL ENGINEERING

Experimental investigation of the effect of two steps on the performance and longitudinal stability of a mono-hull high-speed craft

& | (Reviewing editor)
Article: 1790980 | Received 07 Apr 2020, Accepted 15 Jun 2020, Published online: 14 Jul 2020

References

  • Afriantoni, A., Romadhoni, R., & Santoso, B. (2020). Study on the stability of high-speed craft with step hull angle variations. In The 8th International and National Seminar on Fisheries and Marine Science. IOP Publishing.
  • Arai, M., & Matsunaga, K. (1989). A numerical and experimental study of bow flare slamming. Journal of the Society of Naval Architects of Japan, 166(166), 343–18. https://doi.org/10.2534/jjasnaoe1968.1989.166_343
  • Arai, M., & Tasaki, R. (1987). A numerical study of water entrance of two-dimensional wedges - effect of gravity, spray generation and vertical load. In Proceedings International Symposium on Practical Design of Ships and Mobile Units, 3rd.
  • Bakhtiari, M., Veysi, S., & Ghassemi, H. (2016). Numerical Modeling of the Stepped Planing Hull in Calm Water. International Journal of Engineering, 29(2), 236-245. http://www.ije.ir/article_72672.html
  • Chooran, R. T., Shafeghat, R., & Yoosefi, R. (2019). Numerical investigation of step depth effects on hydrodynamic performance of planing hull using dynamic mesh and two degree of freedom model. Journal of Mechanical Engineering, 3(2), 139–148. DOI: 10.22060/ajme.2019.14364.5723
  • Clement, E. P. (2003). A configuration for a stepped planing boat having minimum drag. David Taylor Model Basin, US Naval Surface Warfare Center.
  • Clement, E. P., & Pope, J. D. (1961). Stepless and stepped planing hulls graphs for performance prediction and design. David Taylor Model Basin, US Naval Surface Warfare Center.
  • Danielson, J., & Stromquist, J. (2012). Conceptual design of super yacht tender. Marine System Center for Naval Architecture, KTH University.
  • De Marco, A., Mancini, S., Miranda, S., Scognamiglio, R., & Vitiello, L. (2017). Experimental and numerical hydrodynamic analysis of a stepped planing hull. Journal of Applied Ocean Research, 64, 135–154. https://doi.org/10.1016/j.apor.2017.02.004
  • Deyzen, A. (2008). A nonlinear mathematical model for motions of a planing monohull in head seas [Paper Presentation]. Proceedings of the 6th International Conference on High Performance Marine Vehicles. Naples, Italy.
  • Dongmei, Y., Zhiyuan, S., Jiang, Y., & Gao, Z. (2019). A study on the air cavity under a stepped planing hull. Journal of Marine Science and Engineering, 7(12), 465–483. https://doi.org/10.3390/jmse7120468
  • Doustdar, M. M., & Kazemi, H. (2019). Effects of fixed and dynamic mesh methods on simulation of stepped planing craft. Journal of Ocean Engineering and Science, 4(1), 33–48. https://doi.org/10.1016/j.joes.2018.12.005
  • Faltinsen, O. M. (2005). Hydrodynamics of High-Speed Marine Vehicles. Cambridge University Press.
  • Farsi, M., & Ghadimi, P. (2014a). Effect of flat deck on catamaran water entry through smoothed particle hydrodynamics. Institution of Mechanical Engineering Part M: Journal of Engineering for the Maritime Environment, 230(2), 267–280. DOI: 10.1177/1475090214563960
  • Farsi, M., & Ghadimi, P. (2014b). Finding the best combination of numerical schemes for 2D SPH simulation of wedge water entry for a wide range of deadrise angles. International Journal of Naval Architecture and Ocean Engineering, 6(3), 638–651. https://doi.org/10.2478/IJNAOE-2013-0202
  • Farsi, M., & Ghadimi, P. (2015). Simulation of 2D symmetry and asymmetry wedge water entry by smoothed particle hydrodynamics method. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 37(3), 821–835. https://doi.org/10.1007/s40430-014-0212-5
  • Feizi Chekab, M. A., Ghadimi, P., & Farsi, M. (2016). Investigation of three-dimensionality effects of aspect ratio on water impact of 3D objects using smoothed particle hydrodynamics method. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 38(7), 1987–1998. https://doi.org/10.1007/s40430-015-0367-8
  • Garland, W., & Maki, K. (2012). A numerical study of a two-dimensional stepped planing surface. Journal of Ship Production and Design, 28(2), 60–72. https://doi.org/10.5957/JSPD.28.2.120005
  • Ghadimi, P., Dashtimanesh, A., & Djeddi, S. R. (2012). Study of water entry of circular cylinder by using analytical and numerical solutions. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 34(3), 225–232. https://doi.org/10.1590/S1678-58782012000300001
  • Ghadimi, P., Feizi Chekab, A., & Dashtimanesh, A. (2014). Numerical simulation of water entry of different arbitrary bow sections. Journal of Naval Architecture & Marine Engineering, 11(2), 117–129. https://doi.org/10.3329/jname.v11i2.18724
  • Ghadimi, P., Loni, A., Nowruzi, H., Dashtimanesh, A., & Tavakoli, S. (2014). Parametric study of the effects of trim tabs on running trim and resistance of planing hulls. Advances in Shipping and Ocean Engineering, 3(1), 1–12.
  • Ghadimi, P., & Panahi, S. (2019). Numerical investigation of hydrodynamic forces acting on the non-stepped and double-stepped planing hulls during yawed steady motion. Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment, 233(2), 428–442. https://doi.org/10.1177/1475090217751549
  • Ghadimi, P., Panahi, S., & Tavakoli, S. (2019). Hydrodynamic study of a double‑stepped planing craft through numerical simulations. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 41(2). https://doi.org/10.1007/s40430-018-1501-1
  • Ghadimi, P., Saadatkhah, A., & Dashtimanesh, A. (2013). Analytical solution of wedge water entry by using Schwartz–Christoffel conformal mapping. International Journal of Modeling, Simulation and Scientific Computing, 2(3), 337–354. https://doi.org/10.1142/S1793962311000487
  • Ghadimi, P., Tavakoli, S., & Dashtimanesh, A. (2016a). An analytical procedure for time domain simulation of roll motion of the warped planing hulls. Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment, 230(4), 600–615. https://doi.org/10.1177/1475090215613536
  • Ghadimi, P., Tavakoli, S., & Dashtimanesh, A. (2016b). Coupled heave and pitch motions of planing hulls at non-zero heel angle. Applied Ocean Research, 59, 286–303. https://doi.org/10.1016/j.apor.2016.05.009
  • Ghadimi, P., Tavakoli, S., & Dashtimanesh, A. (2016c). Calm water performance of hard-chine vessels in semi-planing and planing regimes. Polish Maritime Research, 23(4), 23–45. https://doi.org/10.1515/pomr-2016-0068
  • Ghadimi, P., Tavakoli, S., Dashtimanesh, A., & Taghikhani, P. (2017a). Dynamic Response of a wedge through asymmetric free fall in 2 degrees of freedom. Journal of Engineering for the Maritime Environment, 233(1), 229–250. doi: 10.1177/1475090217733150
  • Ghadimi, P., Tavakoli, S., Dashtimanesh, A., & Zamanian, P. (2017b). Steady performance prediction of a heeled planing boat in calm water using asymmetric 2D+ T model. Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment, 231(1), 234–257. https://doi.org/10.1177/1475090216638680
  • Ghadimi, P., Tavakoli, S., Feizi Chekab, M. A., & Dashtimanesh, A. (2015). Introducing a particular mathematical model for predicting the resistance and performance of prismatic planing hulls in calm water by means of total pressure distribution. Journal of Naval Architecture and Marine Engineering, 12(2), 73–94. https://doi.org/10.3329/jname.v12i2.22351
  • Haase, H., Soproni, J. P., & Abdel-Maksoud, M. (2015). Numerical analysis of a planing boat in head waves using a 2D+T method. Journal of Ship Technology Research, 62(3), 131–139. https://doi.org/10.1179/2056711115Y.0000000003
  • Hasheminasab, H., Zeraatgar, H., Moradi, H., & Sakaki, A. (2019). Experimental study on water entry of twin wedges. Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment, 234(2), 388-398. https://doi.org/10.1177/1475090219889236.
  • Judge, C., Troesch, A., & Perlin, M. (2004). Initial water impact of a wedge at vertical and oblique angles. Journal of Engineering Mathematics, 48(3–4), 279–303. https://doi.org/10.1023/B:engi.0000018187.33001.e1
  • Judge, C. Q., & Judge, J. A. (2013). Measurement of hydrodynamic coefficients on a planing Hull using forced roll oscillations. Journal of Ship Research, 57(2), 112–124. https://doi.org/10.5957/JOSR.57.2.120020
  • Karafiath, G., & Fisher, S. (1987). The effect of Stern Wedges on Ship Powering Performance. Journal of Naval Engineers Journal, 99(3), 27–38. https://doi.org/10.1111/j.1559-3584.1987.tb02113.x
  • Karimi, M. H., Seif, M. S., & Abbaspoor, M. (2013). An experimental study of interceptor’s effectiveness on hydrodynamic performance of high-speed planing crafts. Polish Maritime Research, 2(78), 21–29. https://doi.org/10.2478/pomr-2013-0013
  • Kazemi, H., Salari, M., Nowruzi, H., & Najafi, A. (2019). Hydrodynamics analysis of stepped planing hull under different physical and geometrical conditions. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 41(9), 360–372. https://doi.org/10.1007/s40430-019-1866-9
  • Lee, E., Pavkov, M., & Mccue-Weil, W. (2014). The Systematic variation of step configuration and displacement for a double-step planing craft. Journal of Ship Production and Design, 30(2), 89–97. https://doi.org/10.5957/JSPD.30.2.130040
  • Loni, A., Ghadimi, P., Nowruzi, H., & Dashtimanesh, A. (2013). Developing a computer program for mathematical investigation of stepped planning hull characteristics. International Journal of Physical Research, 1(2), 34–47. https://doi.org/10.14419/ijpr.v1i2.839
  • Lotfi, P., Ashrafizaade, M., & Kowsari, E. R. (2015). Numerical investigation of a stepped planing hull in calm water. Journal of Ocean Engineering, 94, 103–110. https://doi.org/10.1016/j.oceaneng.2014.11.022
  • Morabito, M. G. (2015). Prediction of planing hull side forces in yaw using slender body oblique impact theory. Ocean Engineering, 101, 47–57. https://doi.org/10.1016/j.oceaneng.2015.04.014
  • Najafi, A., & Nowruzi, H. (2019). On hydrodynamic analysis of stepped planing crafts. Journal of Ocean Engineering and Science, 4(3), 238–251. https://doi.org/10.1016/j.joes.2019.04.007
  • Qin, H., Zhao, L., & Shen, J. (2011). A modified Logvinovich model for hydrodynamic loads on an asymmetric wedge entering water with a roll motion. Journal of Marine Science and Application, 10(2), 184–189. https://doi.org/10.1007/s11804-011-1058-1
  • Sajedi, S. M., Ghadimi, P., Sheikholeslami, M., & Ghassemi, M. A. (2019). Experimental and numerical analyses of wedge effects on the rooster tail and porpoising phenomenon of a high-speed planing craft in calm water. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 233(13), 4637–4652. https://doi.org/10.1177/0954406219833722
  • Savitsky, D. (1964). Hydrodynamic design of planing hulls. Journal of the Society of Naval Architects and Marine Engineers, 1(4), 71–95.
  • Savitsky, D., & Morabito, M. (2010). Surface wave contours associated with the fore body wake of stepped planing hulls. Marine Technology, 47(1), 1–16.
  • Sebastiani, L., Bruzzone, D., & Gualeni, P. (2008). A practical method for the prediction of planing craft motions in regular and irregular waves. In Proceedings of the ASME 27th International Conference on Offshore Mechanics and Arctic Engineering. ASME.
  • Shademani, R., & Ghadimi, P. (2017a). Numerical assessment of turbulence effects on forces, spray parameters, and secondary impact in wedge water entry problem using k-epsilon method. Scientia Iranica, 24(1), 223–236. https://doi.org/10.24200/sci.2017.4028
  • Shademani, R., & Ghadimi, P. (2017b). Asymmetric Water Entry of Twin Wedges with Different Deadrises, Heel Angles, and Wedge Separations using Finite Element Based Finite Volume Method and VOF. Journal of Applied Fluid Mechanics, 10(1), 353–368. https://doi.org/10.18869/acadpub.jafm.73.238.26185
  • Shademani, R., & Ghadimi, P. (2017c). Estimation of water entry forces, spray parameters and secondary impact of fixed width wedges at extreme angles using finite element based finite volume and volume of fluid methods. Brodogradnja, 67(1), 101–124. https://hrcak.srce.hr/154718
  • Shademani, R., & Ghadimi, P. (2017d). Parametric investigation of the effects of deadrise angle and demi-hull separation on impact forces and spray characteristics of catamaran water entry. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 39(6), 1989–1999. https://doi.org/10.1007/s40430-016-0679-3
  • Sun, H., & Faltinsen, O. M. (2007). Asymmetric water entry of a bow-flare ship section with roll angle. In Proceedings of the IUTAM symposium on fluid-structure interaction in ocean engineering. Hamburg (pp. 285–296).
  • Svahn, D. (2009) Performance prediction of hulls with transverse steps. MSc Thesis, KTH.
  • Taunton, D. J., Hudson, D. A., & Shenoi, R. A. (2010). Characteristics of a series of high-speed hard chine planing hulls part 1: Performance in calm water. International Journal of Small Craft Technology, 152, B55–B75. doi:10.3940/rina.ijsct.2010.b2.96
  • Taunton, D. J., Hudson, D. A., & Shenoi, R. A. (2011). Characteristics of a series of high-speed hard chine planing hills- Part 2: Performance in waves. International Journal of Small Craft Technology, 153(1), B1–B22. doi:10.3940/rina.ijsct.2011.b1.97
  • Tavakoli, S., Ghadimi, P., & Dashtimanesh, A. (2017). A nonlinear mathematical model for coupled heave, pitch, and roll motions of a high-speed planing hull. Journal of Engineering Mathematics, 104(1), 157–194. https://doi.org/10.1007/s10665-016-9878-2
  • Tavakoli, S., Ghadimi, P., Dashtimanesh, A., & Sahoo, P. K. (2015). Determination of hydrodynamic coefficients related to roll motion of high-speed planing hulls. In Proceedings of the 13th International Conference on Fast Sea Transportation.
  • Tsai, J., Hwang, J., & Chou, S. (2003). Study on the compound effects of interceptor with stern flap for two fast Monohulls with transom stern, In Proceedings of the 7th International Conference on Fast Sea Transportation (pp. 23–28).
  • Vitiello, L., & Miranda, S. (2014). Propulsive performance analysis of a stepped hull by model test results and sea trial data. In High Speed Marine Vehicles Symposium.
  • Vitiello, L., Miranda, S., Balsamo, F., Bove, A., & Caldarella, S. (2012). Stepped hulls: Model experimental tests and sea trial data. InProceedings of the 17th International Conference on Ships and Shipping Research.
  • Widmark, C., & Marine, D. L. (2001). Interceptor steering an efficient means of providing directional control of waterjet propelled craft. In Paper presented at the RINA International Conference, Waterjet Propulsion III.
  • Yettou, E., Desrochers, A., & Champoux, Y. (2007). A new analytical model for pressure estimation of symmetrical water impact of a rigid wedge at variable velocities. Journal of Fluids Structure, 23(3), 501–522. https://doi.org/10.1016/j.jfluidstructs.2006.10.001
  • Yettou, E. L.-M., Desrochers, A., & Champoux, Y. (2006). Experimental study on the water impact of a symmetrical wedge. Journal of Fluid Dynamics Research, 38(1), 47–66. https://doi.org/10.1016/j.fluiddyn.2005.09.003
  • Zarnick, E. E. (1978) A nonlinear mathematical model of motions of a planing boat in regular waves. David Taylor Naval Ship Research and Development Center. Report No. 78/032.
  • Zheng, K., & Zhao, X. (2020). Numerical Simulation of water exit and entry using a modified host-cell immersed boundary method. In Proceedings of the 10th International Conference on Asian and Pacific Coasts (pp. 1107–1113).
  • Zou, J., Lu, S., Jiang, Y., Sun, H., & Li, Z. (2019). Experimental and numerical research on the influence of stern flap mounting angle on double-stepped planing hull hydrodynamic performance. Journal of Marine Science and Engineering, 94(10), 103–110. https://doi.org/10.3390/jmse7100346