- #1
call-me-kiko
- 5
- 0
A solid sphere of radius R is placed at a height of 30cm on a 15 deg slope. It is released and rolls, without slipping to the bottom.
a) From what height should circular hoop of radius R be released in order to equal the sphere's speed at the bottom?
First i started with the sphere
mgh=.5mv2 +.5Iw2
I=.5mR2
w=v/r
so
mgh=.5mv2+.25mv2
gh=.75v2
h=30
v2 =40g
next the hoop
the only difference is we don't know h and I is different
I=mR2
so gh=v2
therefore setting them equal, h=40.
However the answer is 43. I did neglect to include R in the height because both objects have this height R. However when i included R into h. I found 40+(1/3)R=h which leave me know where.
Any ideas? There is no mention of friction...
a) From what height should circular hoop of radius R be released in order to equal the sphere's speed at the bottom?
First i started with the sphere
mgh=.5mv2 +.5Iw2
I=.5mR2
w=v/r
so
mgh=.5mv2+.25mv2
gh=.75v2
h=30
v2 =40g
next the hoop
the only difference is we don't know h and I is different
I=mR2
so gh=v2
therefore setting them equal, h=40.
However the answer is 43. I did neglect to include R in the height because both objects have this height R. However when i included R into h. I found 40+(1/3)R=h which leave me know where.
Any ideas? There is no mention of friction...