A cannonball is fired horizontally from the top of a cliff. The cannon is at height H = 100 m above ground level, and the ball i

Question

2 years ago

5

A cannonball is fired horizontally from the top of a cliff. The cannon is at height H = 100 m above ground level, and the ball i

s fired with initial horizontal speed v0. Assume acceleration due to gravity to be g = 9.80 m/s2 .a. Assume that the cannon is fired at time t=0 and that the cannonball hits the ground at time tg. What is the y position of the cannonball at the time tg/2?b. Given that the projectile lands at a distance D = 200m from the cliff. Find the initial speed of the projectile, v0.c. What is the y position of the cannonball when it is at distance D/2 from the hill? If you need to, you can use the trajectory equation for this projectile, which gives y in terms of x directly:

Physics

1 answer:

Dmitry_Shevchenko [17] · Answer 1 · 2022-02-02T10:47:20+03:00

Answer:

a) At tg/2 the cannonball is 25 m below the launching point (75 m above the ground).

b) The initial speed of the projectile is 44.2 m/s.

c) When the x position of the cannonball is 100 m, the y position is 25 m below the launching point (75 m above the ground).

Explanation:

Hi there!

The equation of the position vector of the cannonball is the following:

r = (x0 + v0 · t, y0 + v0y · t + 1/2 · g · t²)

Where:

r = position vector of the ball.

x0 = initial positon of the ball.

v0 = initial horizontal velocity.

t = time.

y0 = initial vertical position.

v0y = initial vertical velocity.

g = acceleration due to gravity.

Let´s place the origin of the frame of reference at the launching point so that x0 and y0 = 0.

When the ball reaches the ground at t = tg, the vertical component of the position vector will be -100 m (see attached figure). Since the cannonball is fired horizontally, it has no initial vertical velocity, then, v0y = 0. Then, the equation of the vertical component of the position vector at t = tg will be:

-100 m = 1/2 · g · tg²

Solving for tg:

2 · (-100 m / g) = tg²

√(-200 m / -9.80 m/s²) = tg

tg = 4.52 s

At t = tg/2

y = 1/2 · g · tg²/4

y = 1/2 · g · (-200 m / 4 · g)

y = -25.0 m

At tg/2 the cannonball is 25 m below the launching point (75 m above the ground).

b) Using the equation of the horizontal component of the position vector, we can calculate the initial velocity:

x = x0 + v0 · t (x0 = 0)

at t = tg, x = 200 m

200 m = v0 · 4.52 s

200 m / 4.52 s = v0

v0 = 44.2 m/s

The initial speed of the projectile is 44.2 m/s

c) Let´s calculate the time at which the ball is at an horizontal position of x = 100 m.

x = v0 · t

x/v0 = t

100 m / 44.2 m/s = t

t = 2.26 s (notice that this time is tg/2)

We have already calculated the y position at that time:

y = -25.0 m

When the x position of the cannonball is 100 m, the y position is 25 m below the launching point (75 m above the ground).