| Author |
Message |
![[Post New]](/templates/default/images/icon_minipost_new.gif) 5 Apr 2008 14:40:37 IST
|
|
|
HCV part 1 page 135 Q.49
a small heavy block is attached to the lower end of a light rod of length l which can be rotated about its clamped upper end. what minimum horizontal velocity should the block be given so that it moves in a complete circle?
|
|
|
|
5 Apr 2008 14:47:29 IST
|
|
|
root(5gl)
|
this reply: 0 points
(with 0 
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 15:03:24 IST
|
|
|
hey is my ans rite????
tell me i'll post the solution
|
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 15:24:47 IST
|
|
|
@ tanmay yur answer is wrong. answer is 2  gl |
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 15:26:10 IST
|
|
|
oops i didnt read ques...
it's min horizontal velocity
|
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 15:26:29 IST
|
|
|
wait i'll try to solve
|
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 17:22:19 IST
|
|
|
if the particle moves in a citcle then the radius is 2l
therefore the work done against gravity =2mgl
2mgl=1/2mv^2
2gl=1/2v^2
rooot 4gl
=2 root gl
|
From shadows a light shall spring
Renewed shall be blade that's broken
The crown less again shall be king.
MY BLOG
http://my.opera.com/vu2rje/blog/ |
this reply: 2 points
(with 0
in 1 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 18:51:22 IST
|
|
|
oh how can the radius be 2l????
|
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 18:53:54 IST
|
|
|
sorry the radius is l
but at the highest position the block is at a dis tance 2l
so work done against gravity=2mgl
|
From shadows a light shall spring
Renewed shall be blade that's broken
The crown less again shall be king.
MY BLOG
http://my.opera.com/vu2rje/blog/ |
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
|
|
|
|
the radius is l and not 2l
now to complete a full circle the block must have enough energy to reach the topmost point
so 1/2mv^2 = mg(2l) (distance of topmost and initial bottommost point is 2l)
=> v = 2root(gl)
|
"Imagination is more important than knowledge."
|
this reply: 5 points
(with 1
in 1 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
5 Apr 2008 20:33:47 IST
|
|
|
probably your doubt is that why the answer is not  
see first of all lets consider the case of block attached to a thread
there at the topmost point
now for minimum velocity
hence
hence at bottommost point
NOW coming to the case given -->
at the topmost point the weight is already balanced because it is placed on the rod unlike in the string ,
hence
for minimum velocity
thus at bottommost point
|
Impossible To be Impossible is Impossible |
this reply: 0 points
(with 0
in 0 votes ) [?]
|
|
You have to be logged on to rate
|
|
|
|
|
Moderation Team
![[Up]](/templates/default/images/icon_up.gif "[Up]"){kind=icon}
1
