Enhacement in the dymanic response of a viscoelastic fluid flowing through a longitudinally vibrating tube
arXiv:physics/0107077 · doi:10.1103/PhysRevE.63.046304
Abstract
We analyzed effects of elasticity on the dynamics of fluids in porous media by studying a flow of a Maxwell fluid in a tube, which oscillates longitudinally and is subject to oscillatory pressure gradient. The present study investigates novelties brought about into the classic Biot's theory of propagation of elastic waves in a fluid-saturated porous solid by inclusion of non-Newtonian effects that are important, for example, for hydrocarbons. Using the time Fourier transform and transforming the problem into the frequency domain, we calculated: (A) the dynamic permeability and (B) the function that measures the deviation from Poiseuille flow friction as a function of frequency parameter . This provides a more complete theory of flow of Maxwell fluid through the longitudinally oscillating cylindrical tube with the oscillating pressure gradient, which has important practical applications. This study has clearly shown transition from dissipative to elastic regime in which sharp enhancements (resonances) of the flow are found.
Cited by in corpus (5)
- Non-Newtonian effects in the peristaltic flow of a Maxwell fluid
- Experimental Observation of Differences in the Dynamic Response of Newtonian and Viscoelastic Fluids
- Measurements of the bulk and interfacial velocity profiles in oscillating Newtonian and Maxwellian fluids
- Phenomenological model of propagation of the elastic waves in a fluid-saturated porous solid with non-zero boundary slip velocity
- Optimal behavior of viscoelastic flow at resonant frequencies