A 3.0 kg puck slides due east on a horizontal frictionless surface at a constant speed of 4.5 m/s. Then a force of magnitude 6.0 N, directed due north, is applied for 1.5 s. Afterward, a. What is the northward component of the puck's velocity?

Question

Kristin Hurley

Physics

18 April, 15:30

A 3.0 kg puck slides due east on a horizontal frictionless surface at a constant speed of 4.5 m/s. Then a force of magnitude 6.0 N, directed due north, is applied for 1.5 s. Afterward, a. What is the northward component of the puck's velocity?

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Danna · Answer 1

3 m/s

The northward component of the puck's velocity is 3 m/s

Explanation:

Applying the impulse momentum equation;

Impulse = change in momentum

Ft = m (∆v)

∆v = Ft/m

F = force = 6.0 N due north

t = time = 1.5 s

m = mass = 3.0 kg

Substituting the values;

Change in velocity ∆v = (6 * 1.5) / 3.0 = 9/3

∆v = 3 m/s due north

And since the initial northward component of the puck's velocity is zero.

The final northward component of the puck's velocity is;

v = 0 + 3 m/s

v = 3 m/s

The northward component of the puck's velocity is 3 m/s