- #1
LBenson
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Homework Statement
A uniform circular steel disc of mass 20kg and diameter 0.4m has a radius of gyration equal to 0.14m. It is lifted vertically 2.0m, and placed on an incline. The flywheel is then released and rolls down the incline without slipping. Find :
a) the potential energy of the disc at the top of the incline (Ans= 392.4J)
b) the maximum linear velocity of the disc as it reaches the bottom of the incline
Homework Equations
E=1/2*I*w^2 (I being Inertia and w being Angular Velocity)
I=m*k^2 (K being the radius of gyration)
V=w*r (V = Linear Velocity)
The Attempt at a Solution
Ok so i worked out a) with no problems. this next part if giving me a bit of trouble though.
Here are the values i have:
Mass = 20kg
Diameter=0.4m
Radius of Gyration (k)=0.14m
P.E=392.4
Heres what i did:
First i worked out the inertia so so i can use the calculated value in the next bit
I=mk^2
I=20x0.14^2
I=0.392
Now because the disc doesn't slip i assumed the Potential Energy will = The energy at the bottom of the slope so i used
E=1/2*I*w^2
Re arrange for W
so
W^2=E/(1/2*I)
=392.4/0.196=2002.05
=(sqrt)2002.04
=44.74rads/s
Now since i needed the Linear velocity i used the relationship equation of:
V=w*r
V=44.74x0.2
V=8.946m/s
So where am i going wrong?
Cheers for any help
