Real-World Applicationshard
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A projectile is launched from ground level with an initial velocity of 60 m/s at an angle θ\theta above the horizontal. The range formula is R=v02sin(2θ)gR = \frac{v_0^2 \sin(2\theta)}{g}, where g=10g = 10 m/s². If the projectile must clear a 15-meter-high wall located 180 meters away, what is the minimum launch angle (to the nearest degree) required?