A student decides to measure the muzzle velocity of a pellet shot from his gun. He points the gun horizontally. He places a target on a vertical wall a distance x away from the gun. The pellet hits the target a vertical distance y below the gun.

(a) Show that the position of the pellet when traveling through the air is given by y = Ax^2, where A is a constant.

(b) Express the constant A in terms of the initial velocity v and the free-fall acceleration g.

(c) If x = 3 m and y = 0.21 m, what is the initial speed of the pellet?

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moya1316 moya1316 · Answer 1 · 2020-02-06T12:25:44+01:00

Answer:

a) y = A x² , b) A = - ½ g / v₀², c) v₀ = 15.46 m / s

Explanation:

For this problem of two-dimensional kinematics, we will use that the time to reach the wall is the same

X axis

x = v₀ₓ t

t = x / v₀ₓ

Y Axis

y = [tex]v_{oy}[/tex] t - ½ g t²

As it shoots horizontally the vertical speed is zero

y = - ½ g t²

We replace

y = - ½ g (x / v₀ₓ)²

The initial speed is all horizontal

v₀ₓ = v₀

y = - ½ g / v₀² x²

y = A x²

b) the expression for the constant is

A = - ½ g / v₀²

c) we look for the initial speed

v₀² = - ½ g x² / y

As the object falls below the exit point its height is negative

v₀ = √ (- ½ 9.8 3²/ (-0.21))

v₀ = 15.46 m / s