sponsored by the National Basic Research Program of China(973 Program,Grant No.2014CB046203);the National Natural Science Foundation of China(Grant No.11072140)
The hydroelastic response of a circular, very large floating structure(VLFS), idealized as a floating circular elastic thin plate, is investigated for the case of time-harmonic incident waves of the surface and interf...
supported by the National Basic Research Program of China(973 Program,Grant No.2014CB046203);the National Natural Science Foundation of China under(Grant No.11072140);the Shanghai Program for Innovative Research Team in Universities
The explicitly analytical solution is derived for the dispersion relation of the flexural-gravity waves in a two-layer fluid with a uniform current. The upper' fluid is covered by a thin plate with the presence of th...
supported by the National Natural Science Foundation of China (Grant No. 11072140)
An analytic approximation method known as the homotopy analysis method(HAM)is applied to study the nonlinear hydroelastic progressive waves traveling in an infinite elastic plate such as an ice sheet or a very large f...
supported by the National Natural Science Foundation of China (Grant No. 11072140);the State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University(Grant No. 0803);the Shanghai Program for Innovative Research Team in Universities
Generation of the transient flexural- and capillary-gravity waves by impulsive disturbances in a two-layer fluid is investi- gated analytically. The upper fluid is covered by a thin elastic plate or by an inertial sur...
supported by the National Natural Science Foundation of China (11072140);the State Key Laboratory of Ocean Engineering (Shanghai Jiao Tong University) (0803);The Shanghai Program for Innovative Research Team in Universities
Analytical solutions for the flexural-gravity wave resistances due to a line source steadily moving on the surface of an infinitely deep fluid are investigated within the framework of the linear po- tential theory. Th...
supported by the National Natural Science Foundation of China (Grant No. 11072140);the State Key Laboratory of Ocean Engineering (Shanghai Jiao Tong University) (Grant No. 0803);the Innovation Program of Shanghai Municipal Education Commission (Grant No.09YZ04);The Shanghai Program for Innovative Research Team in Universities is also acknowledged
An analytical method is developed for the hydroelastic interaction between surface incident waves and a thin elastic plate of arbitrary geometry floating on an inviscid fluid of finite depth in the framework of linear...