How to solve this problem only using the kinematics of rotational motion?

This is a problem from my introductory physics textbook:

A wheel of moment of inertia $I$ and radius $r$ is free to rotate about its centre. A string is wrapped over its rim and a block of mass m is attached to the free end of the string. The system is released from rest. Find the speed of the block as it descends through a height $h$.

The answer in my book utilizes energy considerations, reasoning that "the gravitational potential energy lost by the block must be equal to the kinetic energy gained by the block and the wheel." Thus,

$$mgh=frac{mv^2}{2}+frac{Iv^2}{2r^2}$$
$$rightarrow v=sqrt{frac{2mgh}{m+I/r^2}}$$

My question is, is it possible to solve this question using only the equations of kinematics of rotational motion, viz. $$omega = omega_0+alpha t$$ $$Delta theta=omega_0t+1/2alpha t^2$$ $$omega^2=omega_0^2+2alpha Delta theta$$

---

As an analogy, consider the case when the wheel was massless. Then, the equation from energy considerations would have been: $$mgh=frac{mv^2}{2}$$

Solving the above, we get, $$v=sqrt{2gh}$$

When we use the equation $v^2=u^2+2gh$, setting $u=0$ for the system starting from rest, we again get, $v=sqrt{2gh}$.