Chapter 25 : Motion of Connected Bodies 515
We know that the normal reaction on the inclined surface due to body of mass m 2 (as shown in
Fig. 25.11).
= m 2 g cos α
∴ Frictional force = μ m 2 g cos α
This frictional force will act in the opposite direction to the motion of the body of mass 2.
First of all, consider the motion of body 1 of mass m 1 , which is coming down. We know that
the forces acting on it are m 1 .g (downwards) and T (upwards). As the body is moving downwards,
therefore, resultant force
= m 1 g – T ...(i)
Since the body is moving downwards with an acceleration (a), therefore force acting on
this body
= m 1 a ...(ii)
Equating equations (i) and (ii),
m 1 g – T = m 1 a ...(iii)
Now consider the motion of the body 2 of mass m 2 , which is moving upwards on inclined
surface. We know that the forces acting on it, along the plane, are T (upwards), m 2 .g sin α (down-
wards) and force of friction μ.m 2 .g (downwards). As the body is moving upwards, therefore resultant
force
= T – m 2 g sin α – μ m 2 g cos α ...(iv)
Since this body is moving upwards along the inclined surface with an acceleration (a) there-
fore force acting on this body
= m 2 a ...(v)
Equating the equations (iv) and (v),
T – m 2 g sin α – μ m 2 g cos α = m 2 a ...(vi)
Adding equations (iii) and (vi),
m 1 g – m 2 g sin α – μ m 2 g cos α = m 1 a + m 2 a
g (m 1 – m 2 sin α – μ m 2 cos α) = a (m 1 + m 2 )
( 12 2 )12gm msin mcos
a
mm−α−μ α
=
+
From equation (iii) we find that
T = m 1 g – m 1 a = m 1 (g – a)
Substituting the value of a in the above equation,() 12 2
1
12gm msin mcos
Tmg
mm⎡⎤−α−μ α
=−⎢⎥
⎢⎥⎣⎦+12 2
1
12sin cos
1mm m
mg
mm⎡⎤−α−μ α
=−⎢⎥
⎢⎥⎣⎦+1212 2
1
12mm mmsin mcos
mg
mm⎡⎤+−+ α+μ α
= ⎢⎥
⎢⎥⎣⎦+12 ()
12mm g1sin cos
mm+α+μ α
=
+