AbstractIt has long been recognized that coordinate coupling in damped linear systems is a considerable barrier to analysis and design. In the absence of viscous damping, a linear system possesses classical normal modes, which constitute a linear coordinate transformation that decouples the undamped system. This process of decoupling the equation of motion of a dynamical system is a time-honored procedure termed modal analysis. A viscously damped linear system cannot be decoupled by modal analysis unless it also possesses a full set of classical normal modes, in which case the system is said to be classically damped. Rayleigh showed that a system is classically damped if its damping matrix is a linear combination of its inertia and stiffnes...
peer reviewedIn case of non-diagonal modal damping, normal modes of vibration do not decouple modal...
It is well known that the free motion of a single-degree-of-freedom damped linear dynamical system c...
Linear second-order ordinary differential equations arise from Newton's second law combined with Hoo...
AbstractIt has long been recognized that coordinate coupling in damped linear systems is a considera...
It has long been recognized that coordinate coupling in damped linear systems is a considerable barr...
The purpose of this paper is to extend classical modal analysis to decouple any viscously damped lin...
Decoupling a second-order linear dynamical system requires that one develop a transformation that si...
The purpose of this paper is to extend classical modal analysis to decouple any viscously damped lin...
The principal coordinates of a non-classically damped linear system are coupled by non-zero off-diag...
A common approximation in the analysis of non-classically damped systems is to ignore the off-diagon...
A common approximation in the analysis of non-classically damped systems is to ignore the off-diagon...
Coordinate coupling in linear dynamical systems is a known barrier to analysis and design.Using rece...
It has recently been reported that any viscously damped linear system can be decoupled in the config...
The analysis of nongyroscopic damped (viscous) linear dynamic systems is presented. Discrete system...
An exact solution method for general, non-proportional damping time history response for piece-wise ...
peer reviewedIn case of non-diagonal modal damping, normal modes of vibration do not decouple modal...
It is well known that the free motion of a single-degree-of-freedom damped linear dynamical system c...
Linear second-order ordinary differential equations arise from Newton's second law combined with Hoo...
AbstractIt has long been recognized that coordinate coupling in damped linear systems is a considera...
It has long been recognized that coordinate coupling in damped linear systems is a considerable barr...
The purpose of this paper is to extend classical modal analysis to decouple any viscously damped lin...
Decoupling a second-order linear dynamical system requires that one develop a transformation that si...
The purpose of this paper is to extend classical modal analysis to decouple any viscously damped lin...
The principal coordinates of a non-classically damped linear system are coupled by non-zero off-diag...
A common approximation in the analysis of non-classically damped systems is to ignore the off-diagon...
A common approximation in the analysis of non-classically damped systems is to ignore the off-diagon...
Coordinate coupling in linear dynamical systems is a known barrier to analysis and design.Using rece...
It has recently been reported that any viscously damped linear system can be decoupled in the config...
The analysis of nongyroscopic damped (viscous) linear dynamic systems is presented. Discrete system...
An exact solution method for general, non-proportional damping time history response for piece-wise ...
peer reviewedIn case of non-diagonal modal damping, normal modes of vibration do not decouple modal...
It is well known that the free motion of a single-degree-of-freedom damped linear dynamical system c...
Linear second-order ordinary differential equations arise from Newton's second law combined with Hoo...