An equation for instantaneous angular acceleration is given as:
$$
\alpha \equiv \lim_{\Delta t\to0}\frac{\Delta \omega}{\Delta t} = \frac{d\omega}{dt}
$$
The text I am reading says writing this equation in differential form
$$
dw = \alpha dt
$$
and integrating from $t_1$ = 0 to $t_f$ = $t$ gives
$$
\omega_f = \omega_i + \alpha t
$$
I am not exactly sure how the authors came to this. Any help would be much appreciated.
Best Answer
Start with \begin{align} \alpha(t) = \frac{d\omega}{dt}(t). \end{align} Integrate both sides from $t_i$ to $t_f$; \begin{align} \int_{t_i}^{t_f}dt\,\alpha(t) = \int_{t_i}^{t_f}dt\, \frac{d\omega}{dt}(t) = \omega(t_f) - \omega (t_i) \end{align} The second equality on the right follows from the fundamental theorem of calculus which basically says that if you integrate the derivative of a function, you recover the original function.
Now, if $\alpha(t)$ is constant in time, namely it has no dependence on $t$, then it can be pulled outside of the integral on the left, and we obtain \begin{align} \alpha\cdot(t_f-t_i) = \omega(t_f) -\omega(t_i) \end{align} Which is the desired identity.