TY - JOUR
T1 - Hilbert formulas for r-analytic functions and the Stokes flow about a biconvex lens
AU - Zabarankin, Michael
AU - Ulitko, Andrei F.
PY - 2006/12
Y1 - 2006/12
N2 - The so-called r-analytic functions are a subclass of p-analytic functions and are defined by the generalized Cauchy-Riemann system with p(r,z) = r. In the system of toroidal coordinates, the real and imaginary parts of an r-analytic function are represented by Mehler-Fock integrals with densities, which are assumed to be meromorphic functions. Hilbert formulas, establishing relationships between those functions, are derived for the domain exterior to the contour of a biconvex lens in the meridional cross-section plane. The derivation extends the framework of the theory of Riemann boundary-value problems, suggested in our previous work, to solving the three-contour problem for the case of meromorphic functions with a finite number of simple poles. For numerical calculations, Mehler-Fock integrals with Hilbert formulas reduce to the form of regular integrals. The 3D problem of the axially symmetric steady motion of a rigid biconvex lens-shaped body in a Stokes fluid is solved, and the Hilbert formula for the real part of an r-analytic function is used to express the pressure in the fluid via the vorticity analytically. As an illustration, streamlines and isobars about the body, the vorticity and pressure at the contour of the body and the drag force exerted on the body by the fluid are calculated.
AB - The so-called r-analytic functions are a subclass of p-analytic functions and are defined by the generalized Cauchy-Riemann system with p(r,z) = r. In the system of toroidal coordinates, the real and imaginary parts of an r-analytic function are represented by Mehler-Fock integrals with densities, which are assumed to be meromorphic functions. Hilbert formulas, establishing relationships between those functions, are derived for the domain exterior to the contour of a biconvex lens in the meridional cross-section plane. The derivation extends the framework of the theory of Riemann boundary-value problems, suggested in our previous work, to solving the three-contour problem for the case of meromorphic functions with a finite number of simple poles. For numerical calculations, Mehler-Fock integrals with Hilbert formulas reduce to the form of regular integrals. The 3D problem of the axially symmetric steady motion of a rigid biconvex lens-shaped body in a Stokes fluid is solved, and the Hilbert formula for the real part of an r-analytic function is used to express the pressure in the fluid via the vorticity analytically. As an illustration, streamlines and isobars about the body, the vorticity and pressure at the contour of the body and the drag force exerted on the body by the fluid are calculated.
KW - Analytic function
KW - Biconvex lens
KW - Drag force
KW - Generalized Cauchy-Riemann system
KW - Hilbert formula
KW - Mehler-Fock integral transform
KW - Pressure
KW - Riemann boundary-value problem
KW - Stokes model
KW - Toroidal coordinates
KW - Vorticity
KW - r-Analytic function
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U2 - 10.1090/S0033-569X-06-01011-7
DO - 10.1090/S0033-569X-06-01011-7
M3 - Article
AN - SCOPUS:33846670176
SN - 0033-569X
VL - 64
SP - 663
EP - 693
JO - Quarterly of Applied Mathematics
JF - Quarterly of Applied Mathematics
IS - 4
ER -