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A hoop is rolling without slipping along a horizontal surface with a forward speed of 5.50 m/s when it starts up a ramp that makes an angle of 25.0° with the horizontal. What is the speed of the hoop after
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A hoop is rolling without slipping along a horizontal surface with a forward speed of 5.50 m/s when it starts up a ramp that makes an angle of 25.0° with the horizontal. What is the speed of the hoop after it has rolled 3.00 m up as measured along the surface of the ramp

User Meouw
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1 Answer

4 votes

Answer:


v_f = 4.22 m/s

Step-by-step explanation:

As we know by energy conservation

initial total energy = final total energy

so we have


(1)/(2)mv^2 + (1)/(2)I\omega^2 = (1)/(2)mv_f^2 + (1)/(2)I\omega_f^2 + mgL sin\theta

so we have


v = R \omega


I = mR^2


mv_i^2 = mv_f^2 + mgL sin\theta


5.50^2 = v_f^2 + (9.81)(3) sin25


30.25 - 12.43 = v_f^2


v_f = 4.22 m/s

User Selcuk Akbas
by
5.3k points
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