Question #87521
a belt runs on a wheel of radius 30cm. during the time that wheel coasts uniformly to rest from an initial speed of 2.0revs/s, 25m of belt length passes over the wheel. find the deceleration of the wheel and the number of revolutions it turns while stopping.
1
Expert's answer
2019-04-05T10:26:41-0400

Number of turns:


n=l2πrn=\frac{l}{2\pi r}

The angle covered during deceleration 


θ=2πn=lr\theta=2\pi n=\frac{l}{ r}

The initial angular velocity


ω=2π(2)=4πω\omega=2\pi(2)=4\pi ω

Deceleration is


α=ω22θ=16π22250.3=0.95rad/s2\alpha=\frac{\omega^2}{2\theta}=\frac{16\pi^2}{2\frac{25}{0.3}}=0.95rad/s^2

The number of revolutions it turns while stopping


n=252π(0.3)=13n=\frac{25}{2\pi (0.3)}=13



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Comments

Assignment Expert
08.04.19, 16:32

Dear visitor, please use panel for submitting new questions

lloyd phiri
07.04.19, 07:42

Consider a woman lifting a 60N. Find the tension in her back muscle and compression in her spine muscle when her back is horizontal. Approximate the situation as shown in (b) and assume this upper part of her body to weigh 250N with the centre of gravity as indicated

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