5. A massless string passes over a frictionless pulley and carries

mass m, hanging at one end and mass 'mz' connected by another

mass less sting to mass 'mz' at the other end as shown in figure.

Calculate the tension in the string joining the mass m2 and m3.

2m₁m₃g / (m₁ + m₂ + m₃)

Explanation:

I assume the figure is the one included in my answer.

Draw a free body diagram for each mass.

m₁ has a force T₁ up and m₁g down.

m₂ has a force T₁ up, T₂ down, and m₂g down.

m₃ has a force T₂ up and m₃g down.

Assume that m₁ accelerates up and m₂ and m₃ accelerate down.

Sum of the forces on m₁:

∑F = ma

T₁ - m₁g = m₁a

T₁ = m₁g + m₁a

Sum of the forces on m₂:

∑F = ma

T₁ - T₂ - m₂g = m₂ (-a)

T₁ - T₂ - m₂g = - m₂a

(m₁g + m₁a) - T₂ - m₂g = - m₂a

m₁g + m₁a + m₂a - m₂g = T₂

(m₁ - m₂) g + (m₁ + m₂) a = T₂

Sum of the forces on m₃:

∑F = ma

T₂ - m₃g = m₃ (-a)

T₂ - m₃g = - m₃a

a = g - (T₂ / m₃)

Substitute:

(m₁ - m₂) g + (m₁ + m₂) (g - (T₂ / m₃)) = T₂

(m₁ - m₂) g + (m₁ + m₂) g - ((m₁ + m₂) / m₃) T₂ = T₂

(m₁ - m₂) g + (m₁ + m₂) g = ((m₁ + m₂ + m₃) / m₃) T₂

m₁g - m₂g + m₁g + m₂g = ((m₁ + m₂ + m₃) / m₃) T₂

2m₁g = ((m₁ + m₂ + m₃) / m₃) T₂

T₂ = 2m₁m₃g / (m₁ + m₂ + m₃)