An artillery shell is fired at an angle of 48.2 degrees above the horizontal ground with an initial speed of 1530 m/s. THe acceleration of gravity is 9.8 m/s^2. Find the total time and flight of the shell,neglecting air resistance.Answer in units of minutes.

Question

An artillery shell is fired at an angle of 48.2 degrees above the horizontal ground with an initial speed of 1530 m/s. THe acceleration of gravity is 9.8 m/s^2. Find the total time and  flight of the shell,neglecting air resistance.Answer in units of minutes.

Find its horizontal range,neglecting air resistance. Answer in units of km

Henry · Accepted Answer

Vo = 1530m/s @ 48.2 deg.

Vo(h) = 1530cos48.2 = 1020m/s.

Vo(v) = 1530sin48.2 = 1141m/s.

Vf = Vo(v) + gt,
Solve for t and get:
t = (Vf - Vo(v)) / g,
t = (0 - = 1141) / 9.8 = 116.4s = t(up) = t(down).

T = 2 * 116.4 = 232.8s = 3.9 min. =
total flight time.

Hor Range = Vo(h) * T,
Hor Range = 1020m/s * 232.8s = 237,456m
= 237.5km.