Optimization of viscoelastic junctions with regard to transmission of wave energy

被引:5
作者
Nygren, T [1 ]
Lundberg, B
Andersson, LE
机构
[1] ABB Corp Res, SE-72178 Vasteras, Sweden
[2] Uppsala Univ, Angstrom Lab, SE-75121 Uppsala, Sweden
[3] Linkoping Univ, Dept Math, SE-58183 Linkoping, Sweden
基金
瑞典研究理事会;
关键词
D O I
10.1006/jsvi.2000.3250
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Reflection, transmission and dissipation of the energy of an incident extensional wave at a linearly viscoelastic junction between two uniform and collinear linearly elastic bars are considered. The junction consists of a finite number of uniform segments of the same material and length. The optimum shape of a junction with given material, length and number of segments which maximizes the energy transmission for given input and output bars and a given incident wave of finite duration is determined numerically with the use of a quasi-Newton method. Results are presented for rectangular incident waves of different durations and 40-segment junctions of standard linear solid material. In the special case of linearly elastic material, the optimum junctions have piece-wise constant characteristic impedances with a certain number of plateaux of equal lengths. These plateaux are independent of the number of segments provided that this number is an integral multiple of the number of plateaux. The optimum viscoelastic junctions have the appearance of deformed and displaced versions of their elastic counterparts. Thus, the plateaux of the elastic junctions are increasingly deformed and displaced with increased damping and, less markedly, with decreased response time of the material. The transitions between these plateaux of a junction appear to be discontinuous, similarly as in the case of elastic material. The apparent discontinuities become less notable with increased damping of the material. (C) 2001 Academic Press.
引用
收藏
页码:467 / 481
页数:15
相关论文
共 50 条
[41]   PROPAGATION OF SOUND ENERGY BY VIBRATION TRANSMISSION VIA STRUCTURAL JUNCTIONS [J].
BHATTACHARYA, MC ;
MULHOLLAND, KA ;
CROCKER, MJ .
JOURNAL OF SOUND AND VIBRATION, 1971, 18 (02) :221-+
[42]   Energy Markets: Optimization of Transmission Networks [J].
Vasin A.A. ;
Grigor’eva O.M. .
Computational Mathematics and Modeling, 2019, 30 (4) :413-426
[43]   Energy Markets: Optimization of Transmission Networks [J].
Vasin, Alexander ;
Grigoryeva, Olesya ;
Tsyganov, Nikita .
INTERNATIONAL JOURNAL OF PUBLIC ADMINISTRATION, 2019, 42 (15-16) :1311-1322
[44]   Design and optimization investigation on hydraulic transmission and energy storage system for a floating-array-buoys wave energy converter [J].
Sun, Pengyuan ;
Li, Qiang ;
He, Hongzhou ;
Chen, Hu ;
Zhang, Jun ;
Li, Hui ;
Liu, Dahui .
ENERGY CONVERSION AND MANAGEMENT, 2021, 235
[45]   ANALYSIS OF MAGNETOSTATIC WAVE ENERGY FLOWS IN FERROMAGNETIC LAYERS WITH REGARD TO THE LAGGING [J].
GOLOVKO, YD ;
ZAVISLYAK, IV ;
NUZHNYI, TV .
ZHURNAL TEKHNICHESKOI FIZIKI, 1990, 60 (05) :150-154
[46]   Seismic wave attenuation: Energy dissipation in viscoelastic crystalline solids [J].
Cooper, RF .
PLASTIC DEFORMATION OF MINERALS AND ROCKS, 2002, 51 :253-290
[47]   Extinction of elastic wave energy due to scattering in a viscoelastic medium [J].
Kim, JYF .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2003, 40 (17) :4319-4329
[48]   Anatomy of the atrioventricular junctions with regard to ventricular preexcitation [J].
Anderson, RH ;
Ho, SY .
PACE-PACING AND CLINICAL ELECTROPHYSIOLOGY, 1997, 20 (08) :2072-2076
[49]   Optimization of nonlinear wave energy converters [J].
Abdelkhalik, Ossama ;
Darani, Shadi .
OCEAN ENGINEERING, 2018, 162 :187-195
[50]   OPTIMIZATION OF THE CLAM WAVE ENERGY CONVERTER [J].
DUCKERS, LJ ;
LOCKETT, FP ;
LOUGHRIDGE, BW ;
PEATFIELD, AM ;
WEST, MJ ;
WHITE, PRS .
RENEWABLE ENERGY, 1994, 5 (5-8) :1464-1466