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Chinika Dangi

Publications and source records attributed to Chinika Dangi.

2 recordsLinked to original sources

Analytical characterization of self sustained nonlinear oscillators modelling human walking and bouncing

Researchers have developed hybrid Van der Pol Rayleigh Duffing type oscillators to model human induced forces; however, their analytical framework has largely relied on the Lindstedt Poincare perturbation method, energy balance approaches, and harmonic balance techniques. This paper aims to apply new mathematical tools to these existing models and address potential research gaps. An analytical proof for the stability of the limit cycle has been formulated by using the Krylov Bogolyubov perturbation method. The multiple scales method has been modified to highlight an iterative algorithm for determining the order of approximation required to capture nonlinear effects. The describing function method is utilised to formulate an alternate amplitude. Comparisons between first order amplitudes obtained from perturbation analysis and the describing function formulations reveal conditions under which the two approaches converge. These conditions are exploited to formulate additional constraints for the estimation of model parameters, offering a systematic alternative to purely optimisation based approaches.

nlin.AO

A numerical study on the influence of geometry on the rupture risk of abdominal aortic aneurysms

Abdominal aortic aneurysms (AAAs) are local dilatations in the abdominal aorta occurring due to weakening of arterial wall. The present work investigates the influence of the ratio of maximum transverse diameter to abdominal height (DHr) on rupture risk of AAA, using hemodynamics and AAA wall mechanics simulations. We have considered two idealized AAA geometries, AAA1 of higher DHr than AAA2. Two constitutive models, namely, Newtonian and Carreau-Yasuda models have been used for modelling blood as an incompressible fluid. Additionally, in order to describe the behaviour of AAA wall, three constitutive models, namely, linear elastic, Saint Venant Kirchhoff elastic and a phenomenological finite-strain model called Raghavan-Vorp elastic have been utilised. Numerical simulations of AAA biomechanics have been performed using solids4Foam, an open source package built on finite volume framework. Hemodynamic parameteric study reveals that AAA1 has lower time-averaged wall shear stress (TAWSS) and higher oscillatory shear index (OSI) compared to AAA2. Thus, AAA1 has increased susceptibility to thrombus deposition and, therefore, higher risk of AAA rupture. Furthermore, the peak wall stress of AAA1 is about 8% higher than that of AAA2. It is concluded that higher DHr leads to greater rupture risk.

physics.flu-dyn