We have: A golf ball of mass 0.045 kg is hit off the tee at a speed of 45 m/s. The golf club was in contact with the ball for 5.0×10−3 s. Find (a) the impulse imparted to the golf ball,and (b) the average force exerted on the ball by the golf club???

(a) The impulse imparted to the golf ball can be calculated using the equation:Impulse=Change in momentum=Final momentum−Initial momentumThe momentum of an object is given by the product of its mass and velocity.Given:Mass of the golf ball (m) = 0.045 kgInitial velocity of the golf ball (u) = 0 m/s (assuming it was initially at rest)Final velocity of the golf ball (v) = 45 m/sTime of contact (Δt) = 5.0 * 10^-3 sThe initial momentum (pinitial) is given by:pinitial=m·u=0.045kg·0m/s=0kg·m/sThe final momentum (pfinal) is given by:pfinal=m·v=0.045kg·45m/s=2.025kg·m/sTherefore, the impulse imparted to the golf ball is:Impulse=pfinal−pinitial=2.025kg·m/s−0kg·m/s=2.025kg·m/s(b) The average force exerted on the ball by the golf club can be calculated using the equation:Average Force=ImpulseΔtGiven:Impulse = 2.025 kg*m/sTime of contact (Δt) = 5.0 * 10^-3 sSubstituting these values into the equation, we get:Average Force=2.025kg·m/s5.0×10−3s=405NTherefore, the average force exerted on the ball by the golf club is 405 Newtons (N).

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Rowan Bray

Answered question

2023-03-31

We have: A golf ball of mass 0.045 kg is hit off the tee at a speed of 45 m/s. The golf club was in contact with the ball for $5.0 \times 10^{- 3}$ s. Find (a) the impulse imparted to the golf ball,and (b) the average force exerted on the ball by the golf club

???

Answer & Explanation

duairceasrxtg

Beginner2023-04-01Added 6 answers

(a) The impulse imparted to the golf ball can be calculated using the equation:

Impulse = Change in momentum = Final momentum - Initial momentum

The momentum of an object is given by the product of its mass and velocity.
Given:
Mass of the golf ball (

m

) = 0.045 kg
Initial velocity of the golf ball (

u

) = 0 m/s (assuming it was initially at rest)
Final velocity of the golf ball (

v

) = 45 m/s
Time of contact (

Δ t

) = 5.0 * 10^-3 s
The initial momentum (

p_{initial}

) is given by:

p_{initial} = m \cdot u = 0.045 kg \cdot 0 m/s = 0 kg \cdot m/s

The final momentum (

p_{final}

) is given by:

p_{final} = m \cdot v = 0.045 kg \cdot 45 m/s = 2.025 kg \cdot m/s

Therefore, the impulse imparted to the golf ball is:

Impulse = p_{final} - p_{initial} = 2.025 kg \cdot m/s - 0 kg \cdot m/s = 2.025 kg \cdot m/s

(b) The average force exerted on the ball by the golf club can be calculated using the equation:

Average Force = \frac{Impulse}{Δ t}

Given:
Impulse = 2.025 kg*m/s
Time of contact (

Δ t

) = 5.0 * 10^-3 s
Substituting these values into the equation, we get:

Average Force = \frac{2.025 kg \cdot m/s}{5.0 \times 10^{- 3} s} = 405 N

Therefore, the average force exerted on the ball by the golf club is 405 Newtons (N).

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