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Articles

Drag reduction design and research of high-speed amphibious vehicle’s deformable track wheels

ORCID Icon, , ORCID Icon, &
Pages 970-979 | Received 28 Mar 2022, Accepted 20 Jun 2022, Published online: 29 Jun 2022

References

  • Behara S, Arnold A, Martin JE, Harwood CM, Carrica PM. 2020. Experimental and computational study of operation of an amphibious craft in calm water. Ocean Eng. 209:107460. doi: 10.1016/j.oceaneng.2020.107460
  • Bratan S, Abdulov S, Trusevich I, Volkov A, Gorbatyuk S, Leonov S, Roshchupkin S. 2018. Ensuring the amphibious capabilities of the amphibious vehicle based on the hydrodynamic buoyancy principle. MATEC Web of Conferences. p. 224.
  • Dogrul A, Song S, Demirel YK. 2020. Scale effect on ship resistance components and form factor. Ocean Eng. 209:107428. doi: 10.1016/j.oceaneng.2020.107428
  • Duan L, Yao K, Pan X, Hou Z. 2015. Tian X. Study on force characteristics and resistance for water by amphibious vehicle. Proceedings of the International Conference on Mechanical Engineering & Intelligent Systems.
  • Ehrlich IR, Kamm IO, Worden G. 1970. Water performance of amphibious vehicles. Part I—drag and water speeds. J Terramechanics. 7:61–102. doi: 10.1016/0022-4898(70)90133-3
  • Helvacioglu S, Helvacioglu IH, Tuncer B. 2011. Improving the river crossing capability of an amphibious vehicle. Ocean Eng. 38:2201–2207. doi: 10.1016/j.oceaneng.2011.10.001
  • Kemp JA. 2001. Modeling and simulation in support of operational test and evaluation for the Advanced Amphibious Assault Vehicle (AAAV). In.
  • Latorre R, Arana J. 2011. Reduction of amphibious vehicle resistance and Bow swamping by fitting a wave cancellation Bow plate. Nav Eng J. 123:81–89. doi: 10.1111/j.1559-3584.2010.00265.x
  • Lee S-J, Lee T-I, Lee J-J, Nam W, Suh J-C. 2017. Hydrodynamic characteristics of a hydrofoil-assisted amphibious vehicle. J Sh Res. 61:15–22. doi: 10.5957/jsr.2017.61.1.15
  • Liu BL, Xu XJ, Pan DB. 2022. Drag reduction configuration analysis of the grooves on amphibious vehicles walking mechanism. Proc Inst Mech Eng Part C: J Mech Eng Sci. 236(11):5994–6006. doi: 10.1177/09544062211065380
  • Liu Z, Liu W, Chen Q, Luo F, Zhai S. 2020. Resistance reduction technology research of high speed ships based on a new type of bow appendage. Ocean Eng. 206:107246. doi: 10.1016/j.oceaneng.2020.107246
  • Mansoori M, Fernandes AC. 2015. Hydrodynamics of the interceptor on a 2-D flat plate by CFD and experiments. J Hydrodyn. 27:919–933. doi: 10.1016/S1001-6058(15)60555-8
  • Nakisa M, Maimu A, Ahmed YM, Behrouzi F, Tarmizi A. 2017. Numerical estimation of shallow water effect on multipurpose amphibious vehicle resistance. J Nav Architect Mar Eng. 14(1):1–8. doi: 10.3329/jname.v14i1.26523
  • Pan D, Xu X, Liu B. 2021. Influence of flanks on resistance performance of high-speed amphibious vehicle. J Mar Sci Eng. 9:1260. doi: 10.3390/jmse9111260
  • Sigmund S, el Moctar O. 2018. Numerical and experimental investigation of added resistance of different ship types in short and long waves. Ocean Eng. 147:51–67. doi: 10.1016/j.oceaneng.2017.10.010
  • Si-zhong C, Zhi-cheng W, Lin Y, Bin Z. 2009. Survey of the Technology for advancing aquatic-speed of wheeled amphibian military vehicle. Vehicle & Power Technology. 61–64.
  • Song K-W, Guo C-Y, Gong J, Li P, Wang L-Z. 2018. Influence of interceptors, stern flaps, and their combinations on the hydrodynamic performance of a deep-vee ship. Ocean Eng. 170:306–320. doi: 10.1016/j.oceaneng.2018.10.048
  • Song K-W, Guo C-Y, Wang C, Sun C, Li P, Wang W. 2019. Numerical analysis of the effects of stern flaps on ship resistance and propulsion performance. Ocean Eng. 193:106621. doi: 10.1016/j.oceaneng.2019.106621
  • Sun C, Xu X, Wang W, Xu H. 2020. Influence on stern flaps in resistance performance of a caterpillar track amphibious vehicle. IEEE Access. 8:123828–123840. doi: 10.1109/ACCESS.2020.2993372
  • Sun C, Xu X, Zou T. 2022. Investigation on trim control of semi-planing amphibious cargo truck using experimental and numerical approaches. Proc Inst Mech Eng Part C: J Mech Eng Sci. 236(3):1322–1333. doi: 10.1177/09544062211021445
  • Terziev M, Tezdogan T, Incecik A. 2019. A geosim analysis of ship resistance decomposition and scale effects with the aid of CFD. Appl Ocean Res. 92:101930. doi: 10.1016/j.apor.2019.101930
  • Tezdogan T, Demirel YK, Kellett P, Khorasanchi M, Incecik A, Turan O. 2015. Full-scale unsteady RANS CFD simulations of ship behaviour and performance in head seas due to slow steaming. Ocean Eng. 97:186–206. doi: 10.1016/j.oceaneng.2015.01.011
  • Trindade MV. 2002. AAAV: more than a better AAV. Marines. 30:16.
  • Tsai J, Hwang J. 2004. Study on the compound effects of interceptor with stern flap for two fast monohulls. Proceedings of the Oceans’ 04 MTS/IEEE Techno-Ocean'04 (IEEE Cat No 04CH37600): IEEE.
  • Villa D, Brizzolara S, Vatteroni G. 2009. A systematic CFD analysis of flaps/interceptors hydrodynamic performance. Proceedings of the Proceeding of 10th International Conference on Fast Sea Transportation, Fast.
  • Wang J, Zou L, Wan D. 2017. CFD simulations of free running ship under course keeping control. Ocean Eng. 141:450–464. doi: 10.1016/j.oceaneng.2017.06.052
  • Wang Z, X-p LU. 2006. Research on high speed surface warship with bulbous bow. J Hydrodyn Ser A. 21:789–795.
  • Xing T, Stern F. 2010. Factors of safety for Richardson extrapolation. J Fluids Eng. 132:061403. doi: 10.1115/1.4001771

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