For a wheel of radius $R$ on an horizontal plane, the "rolling without slipping condition" is given by $$\Delta s =\Delta l$$ with $\Delta l$ being the distance travelled on the plane. $\Delta l$, because of the constance of $R$, equals the displacement $\Delta s$ of the center of mass.
My question concerns a wheel deflating over time (with a fixed law $R(t)$). How to write down the rolling without slipping condition?
Edit
Citing JoDraX answer, I'm elaborating a little my question
The deflation of the wheel actually only affects the vertical component of the wheel's position, so $$dR^2+R^2d\theta^2=ds^2$$ but $dl=Rd\theta$ and $\dot{l}=R\dot{\theta}$ still, as it would with a wheel of fixed radius.
with $l$ the distance travelled along the plane. Now, generalizing a little, does the wheel rolling on an incline of costant slope make any difference? I don't think so, because $dR^2$ , $dl^2$, $ds^2$ are constant with respect to global rotation.
Arbitrary ramp
Now, if the incline has a fixed shape (i.e. skating ramps) $\gamma(x)$, how to write the rolling without slipping condition?
So far, I have found what follows: $$dl^2=[1+(\frac{d\gamma}{dx})^2]dx^2$$ $$ds^2=dr^2+r^2d\theta^2$$
And $dl=rd\theta$ (hence $\dot{l}=r\dot{\theta}$) holds exactly as for the flat surface. I carried forward my question, because it is in fact a part of a bigger problem, presented here (I offered a bounty on it):
