Sloshing reduction with passive spring-mass baffles in partially filled containers

被引:3
作者
Gligor, D. [1 ]
Sanchez, P. Salgado [1 ]
Rodriguez, J. [1 ]
Martinez, U. [1 ]
机构
[1] Univ Politecn Madrid, Ctr Computat Simulat, E USOC, ETS Ingn Aeronaut & Espacio, Plaza Cardenal Cisneros 3, Madrid 28040, Spain
关键词
Sloshing; Moving baffles; Hydrodynamic forces; AIR-TRAPPING MECHANISM; RECTANGULAR TANK; VIBRATION; FLOWS;
D O I
10.1016/j.oceaneng.2024.118675
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
The potential for sloshing reduction of passive, moving baffles with translational motion constrained by springs is investigated numerically in partially filled containers. Simulations are based on the level-set formulation, considering water as the liquid under study and a baffle made of aluminum; this selection allows for direct validation of the model against experimental and analytical data. Depending on the filling ratio V is an element of (0 , 1) , which simply measures the volume of liquid relative to the total container size, one can find an optimal spring stiffness K ( V ) that minimizes the kinetic energy and decay time of the sloshing response when subjected to a pulse-like acceleration. Results show that moving baffles significantly reduce sloshing compared to their fixed counterparts, with decreases up to 84.6% in decay time, tau(d) . Frequency analyses for different V reveal one or two resonances in the range of 0.1-1.5 Hz whose amplitudes are directly influenced (lowered) by K , analogous to the behavior of Tuned Mass Dampers. For potential applications, the selection of K should look for an adequate sloshing response over the entire range of V , and account for both quasi-static and harmonic excitation, conveniently weighted in accord with the expected operational loads.
引用
收藏
页数:14
相关论文
共 46 条
[11]   The analysis of the Generalized-α method for non-linear dynamic problems [J].
Erlicher, S ;
Bonaventura, L ;
Bursi, OS .
COMPUTATIONAL MECHANICS, 2002, 28 (02) :83-104
[12]  
Faltinsen O. M., 2009, Sloshing
[13]   Multidimensional modal analysis of nonlinear sloshing in a rectangular tank with finite water depth [J].
Faltinsen, OM ;
Rognebakke, OF ;
Lukovsky, IA ;
Timokha, AN .
JOURNAL OF FLUID MECHANICS, 2000, 407 :201-234
[14]   Sloshing mitigation in microgravity with moving baffles [J].
Gligor, D. ;
Peromingo, C. ;
Sanchez, P. Salgado ;
Porter, J. ;
Fernandez, J. ;
Mendez, M. A. .
ACTA ASTRONAUTICA, 2024, 219 :639-652
[15]   Analytical and experimental evaluation on the effectiveness of upper mounted baffles with respect to commonly used baffles [J].
Goudarzi, M. A. ;
Sabbagh-Yazdi, S. R. .
OCEAN ENGINEERING, 2012, 42 :205-217
[16]   Investigation of sloshing damping in baffled rectangular tanks subjected to the dynamic excitation [J].
Goudarzi, M. A. ;
Sabbagh-Yazdi, S. R. ;
Marx, W. .
BULLETIN OF EARTHQUAKE ENGINEERING, 2010, 8 (04) :1055-1072
[17]   WHAT ARE C AND H-QUESTIONABLE - INEQUALITIES FOR THE ANALYSIS AND DESIGN OF FINITE-ELEMENT METHODS [J].
HARARI, I ;
HUGHES, TJR .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1992, 97 (02) :157-192
[18]   A comprehensive investigation on liquid sloshing of rectangular water tank with vertical baffles [J].
Huang, Peng .
OCEAN ENGINEERING, 2023, 288
[19]   Numerical simulations of sloshing flows with elastic baffles by using a particle-based fluid-structure interaction analysis method [J].
Hwang, Sung-Chul ;
Park, Jong-Chun ;
Gotoh, Hitoshi ;
Khayyer, Abbas ;
Kang, Kuk-Jin .
OCEAN ENGINEERING, 2016, 118 :227-241
[20]  
Ibrahim RA, 2005, LIQUID SLOSHING DYNAMICS: THEORY AND APPLICATIONS, P1, DOI 10.1017/CBO9780511536656