The Rayleigh–Plesset equation can be derived entirely from first principles using the bubble radius as the dynamic parameter.[3] Consider a spherical bubble with time-dependent radius , where is time. Assume that the bubble contains a homogeneously distributed vapor/gas with a uniform temperate and pressure . Outside the bubble is an infinite domain of liquid with constant density and dynamic viscosity. Let the temperature and pressure far from the bubble be and . The temperature is assumed to be constant. At a radial distance from the center of the bubble, the varying liquid properties are pressure , temperature , and radially outward velocity . Note that these liquid properties are only defined outside the bubble, for .
Mass conservation
By conservation of mass, the inverse-square law requires that the radially outward velocity must be inversely proportional to the square of the distance from the origin (the center of the bubble).[5] Therefore, letting be some function of time,
In the case of zero mass transport across the bubble surface, the velocity at the interface must be
which gives that
In the case where mass transport occurs, the rate of mass increase inside the bubble is given by
with being the volume of the bubble. If is the velocity of the liquid relative to the bubble at , then the mass entering the bubble is given by
with being the surface area of the bubble. Now by conservation of mass , therefore . Hence
Therefore
In many cases, the liquid density is much greater than the vapor density, , so that can be approximated by the original zero mass transfer form , so that[5]
whereby substituting from mass conservation yields
Note that the viscous terms cancel during substitution.[5]Separating variables and integrating from the bubble boundary to gives
Boundary conditions
Let be the normal stress in the liquid that points radially outward from the center of the bubble. In spherical coordinates, for a fluid with constant density and constant viscosity,
Therefore at some small portion of the bubble surface, the net force per unit area acting on the lamina is
where is the surface tension.[5] If there is no mass transfer across the boundary, then this force per unit area must be zero, therefore
and so the result from momentum conservation becomes
whereby rearranging and letting gives the Rayleigh–Plesset equation[5]
Using dot notation to represent derivatives with respect to time, the Rayleigh–Plesset equation can be more succinctly written as
Solutions
Recently, analytical closed-form solution were found for the Rayleigh–Plesset equation when the surface tension is present due to the effects of capillarity. [6]
Also, for the special case, where surface tension and viscosity are neglected, high-order analytical approximations are also known.[7]
In the static case, the Rayleigh–Plesset equation simplifies, yielding to the Young-Laplace equation:
When only infinitesimal periodic variations in the bubble radius and pressure are considered, the RP equation also yields to the expression of the natural frequency of the bubble oscillation.
References
^Rayleigh, Lord (1917). "On the pressure developed in a liquid during the collapse of a spherical cavity". Phil. Mag. 34: 94–98.
^Plesset, M.S. (1949). "The dynamics of cavitation bubbles". ASME J. Appl. Mech. 16: 228–231.
^Mancas, Stefan C.; Rosu, Haret C. (7 August 2015). "Cavitation of spherical bubbles: closed-form, parametric, and numerical solutions". arXiv:1508.01157. {{cite journal}}: Cite has empty unknown parameter: |1= (help); Cite journal requires |journal= (help)
^Obreschkow, D.; Bruderer M.; Farhat, M. (5 June 2012). "Analytical approximations for the collapse of an empty spherical bubble". Physical Review E. 85. arXiv:1205.4202. doi:10.1103/PhysRevE.85.066303.