Numerical computation and analysis of high-speed autonomous underwater vehicle (AUV) moving in head sea based on dynamic mesh

Fu-dong Gao , Cun-yun Pan , Xiao-jun Xu , Yan-yan Han

Journal of Central South University ›› 2012, Vol. 19 ›› Issue (11) : 3084 -3093.

PDF
Journal of Central South University ›› 2012, Vol. 19 ›› Issue (11) : 3084 -3093. DOI: 10.1007/s11771-012-1382-x
Article

Numerical computation and analysis of high-speed autonomous underwater vehicle (AUV) moving in head sea based on dynamic mesh

Author information +
History +
PDF

Abstract

Autonomous underwater vehicles (AUVs) navigating on the sea surface are usually required to complete the communication tasks in complex sea conditions. The movement forms and flow field characteristics of a multi-moving state AUV navigating in head sea at high speed were studied. The mathematical model on longitudinal motion of the high-speed AUV in head sea was established with considering the hydrodynamic lift based on strip theory, which was solved to get the heave and pitch of the AUV by Gaussian elimination method. Based on this, computational fluid dynamics (CFD) method was used to establish the mathematical model of the unsteady viscous flow around the AUV with considering free surface effort by using the Reynolds-averaged Navier-Stokes (RANS) equations, shear-stress transport (SST) k-w model and volume of fluid (VOF) model. The three-dimensional numerical wave in the computational field was realized through defining the unsteady inlet boundary condition. The motion forms of the AUV navigating in head sea at high speed were carried out by the program source code of user-defined function (UDF) based on dynamic mesh. The hydrodynamic parameters of the AUV such as drag, lift, pitch torque, velocity, pressure, and wave profile were got, which reflect well the real ambient flow field of the AUV navigating in head sea at high speed. The computational wave profile agrees well with the experimental phenomenon of a wave-piercing surface vehicle. The force law of the AUV under the impacts of waves was analyzed qualitatively and quantitatively, which provides an effective theoretical guidance and technical support for the dynamics research and shape design of the AUV in real complex environment.

Keywords

computational fluid dynamics / dynamic mesh / autonomous underwater vehicle (AUV) / motion / head sea / viscous flow field

Cite this article

Download citation ▾
Fu-dong Gao, Cun-yun Pan, Xiao-jun Xu, Yan-yan Han. Numerical computation and analysis of high-speed autonomous underwater vehicle (AUV) moving in head sea based on dynamic mesh. Journal of Central South University, 2012, 19(11): 3084-3093 DOI:10.1007/s11771-012-1382-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

BesshoM., KomatsuM., AnjohM.. On motions of a high speed planning boat in regular head sea [J]. Journal of the Society of Naval Architects of Japan, 1974, 135: 109-120

[2]

ZARNICK E E. A nonlinear mathematical model of motions of a planning boat in regular waves [R]. Maryland: Taylor Naval Ship Research and Development Centre, 1978: 1–77.

[3]

CaoH.-jian.Numerical simulation of planning craft’s resistance based on FLUENT [D], 2008HarbinHarbin Engineering University44-53

[4]

GuardoneA., IsolaD., QuarantaG.. Arbitrary Lagrangian Eulerian formulation for two-dimensional flows using dynamic meshes with edges wapping [J]. Journal of Computational Physics, 2011, 230: 7706-7722

[5]

HanZ.-z., WangG.-y., YanW.-ge.. Numerical simulation of viscosity resistance around a running amphibian vehicle [J]. Vehicle and Power Technology, 2003, 90(2): 6-10

[6]

HamidS. H., PabloC., FrederickS., NaoyaU., HirotadaH., ShinyaY., AkihikoM.. CFD, system-based and EFD study of ship dynamic instability events: Surf-riding, periodic motion, and broaching [J]. Ocean Engineering, 2011, 38: 88-110

[7]

XuG.-y., WangT., GuoQ.-shen.. Simulation of the amphibious vehicle’s ambient flow field based on CFD [J]. Ship and Boat, 2005, 4(2): 20-23

[8]

ChoiJ. E., MinK. S., KimJ. H., LeeS. B., SeoH. W.. Resistance and propulsion characteristics of various commercial ships based on CFD results [J]. Ocean Engineering, 2010, 37: 549-566

[9]

PanC.-y., WenX.-sen.. Research on transmission principle and kinematic analysis for involute spherical gear [J]. Chinese Journal of Mechanical Engineering, 2005, 415: 1-9

[10]

GaoF.-d., PanC.-y., XuH.-j., ZuoX.-bo.. Design and mechanical performance analysis of a new wheel propeller [J]. Chinese Journal of Mechanical Engineering, 2011, 24(5): 805-812

[11]

GaoF.-d., PanC.-y., YangZ., FengQ.-tao.. Nonlinear mathematics modeling and analysis of the vectored thruster autonomous underwater vehicle in 6-DOF motions [J]. Journal of Mechanical Engineering, 2011, 47(5): 93-100

[12]

DongW.-c., WuX.-g., XiaFei.. Mathematical model on longitudinal motion of high speed craft in heading sea considering effect of hydrodynamic lift [J]. Journal of Naval University of Engineering, 2005, 17(4): 32-37

[13]

MichioU., YoshiakiT., HiroshiS.. A prototype of submersible surface ship and its hydrodynamic characteristics [J]. Ocean Engineering, 2011, 38: 1686-1695

[14]

WajdiC., MeriemA., ZiedD.. Effect of the turbulence models on Rushton turbine generated flow in a stirred vessel [J]. Central European Journal of Engineering, 2011, 1(4): 380-389

[15]

ChenierE., EymardR., HerbinR.. A collocated finite volume scheme to solve free convection for general non-conforming grids [J]. Journal of Computational Physics, 2009, 228(6): 2296-2311

[16]

GaoF.-d., JiangL.-h., PanC.-yun.. Numerical calculation on hydrodynamic characteristics for the amphibious vehicle based on computational fluid dynamics [J]. Journal of Mechanical Engineering, 2009, 45(5): 134-139

AI Summary AI Mindmap
PDF

104

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/