2
ext Self 2GM
W U
R
A geostationary satellite goes around the earth
in west-east direction. The time period a
geostationary satellite is 24 hours. The angle
between the equatorial plane and the orbital plane
of geostationary satellite is 0 .
The block shall topple about its edge through
O. The torque FL of the applied force is clockwise.
The torque MgL/2 of the weight is anticlockwise.
Applying condition for rotational equilibrium./2 0
2mg
FL mgL or FFrom the conservation of energy
1 1
2 2mgh= mv^2 Iω^2As the cord does not slip v=r2 2 2 22 2 2
.
mgh mgh mgh
mr mk mr I I mr
Let v be the velocity of COM of ring just after
the impulse is applied and v’ its velocity when pure
rolling starts. Angular velocity of the ring atthis instant will bev'
r.From impulse = change in linear momentum, we
haveJ = mv (^) v = J/m
Between the two positions shown in the figure,
force of friction on the ring acts backwards. Angular
momentum of the ring about bottom most point
will remain conserved
Li Lf
mvr mv r I'
mv r' mr^2 v r'/ 2 ' mv r
'
2 2
v J
v
m
Tension in the string when bob passes through
lowest point
2
( )
mv
T mg mg mv v r
r
Putting v 2 gh and
2 2
T 2
we get T m g( 2 ) gh
If v' are the velocities of the block of mass M
and (M+m) while passing from the mean position
when executing SHM.
Using law of conservation of linear momentum, we
have
mv ( ) 'M m v
or v' /( )mv Mm
Also, maximum PE = maximum KE
(^1) '2 (^1) ( ) '
2 2
kA Mm v
1/
'
( )
M m mv
A
k M m
( )
mv
M m k
x x1 2 3x x
2sin 2 3sin 2cos 3sint t t t
3 3cost
(5 2 3)sin (2 3 3)cos t t
x Asin( ) t
Where A 68 32 3 and
tan^1 2 3 3
5 2 3
x11.1sin( 31.54) t^0
x5sint and y 5cos 5sint t 2
So these two are perpendicular SHMs with same
amplitude (and frequency) and their phase
difference is.
2
So the path will be a circle of radius
5 units.
(^) TV^1 constant
7.Sol:
8.Sol:
9.Sol:
10.Sol:
11.Sol:
12.Sol:
13.Sol:
14.Sol:
15.Sol:
5/3 1
5/3 1
2
8
(300)
27
V
V T
2 2/
(300)^328
27
V
V T