To determine the maximum height for the projectile, we can use the timeless kinematics equation [tex]V _{f} ^{2} -V_{i}^{2}=2a \Delta y[/tex] and plug in what we know. For [tex]V _{f} ^{2}[/tex], we know it is zero because at the highest location of flight, there is no vertical velocity. For [tex]V _{i} ^{2}[/tex], we know it is [tex](35sin(32))^{2}[/tex] since the vertical component is the sine of the velocity. We need to solve for [tex]y[/tex], so it is left as-is. Since the only acceleration is [tex]g[/tex], we can substitute -9.81 into it. Solving for the equation yields a solution of 17.55 m for [tex]\Delta y[/tex].
