For , a nondegenerate transonic spherical flow in a power-law potential connected to infinity requires . For , every finite satisfies the local crossing condition; there is no finite upper bound. The uniformly valid inequality is .
Past exam of the mathematics course of the University of Cambridge 2015 iii Paper 57 1 b Solution Created 2026-10-03 Updated 2026-10-06
At a finite smooth sonic point , the equation from (a) requiresSet and . Substitution into the Bernoulli function givesAn inflow from a warm reservoir at infinity has ; an outflow reaching infinity has . Therefore a nondegenerate transonic spherical flow in a power-law potential requiresFor the usual range , the critical adiabatic exponent for spherical power-law flow is consequentlyThe printed assumption also permits . In that range the boxed inequality holds for every finite : there is no finite upper bound. Equivalently, take for . Extending the rational expression beyond would give an incorrect restriction.
The strict inequality also follows from local sonic-point slope discriminant analysis, including the potentially cold zero-energy endpoint. Put . Since mass conservation implies , differentiating the sonic point equation at yieldsIts discriminant is . Moreover, the logarithmic Mach number derivative at the sonic point isA genuine crossing has two distinct branches and a nonzero derivative. At equality the crossing degenerates. In particular, for and , mass conservation and the polytropic equation of state make the Mach number constant along the scale-invariant solution; a solution that is sonic there is sonic everywhere, rather than crossing an isolated sonic point.