Dynamics: Frictions within two blocks
Newton's law applications

N₁: is the normal force regarding the mass m₁,
N₂: is the normal force regarding the mass m₂,
F: is the force with which we move the block of the two masses,
a: is the acceleration of the system ( block = m₁ + m₂),
a₁: is the acceleration of the mass m₁,
a₂: is the acceleration of the mass m₂,
f₁₂: is the friction force of the body 1 on the body 2,
f₂₁: is the friction force of the body 2 on the body 1,
f_d2: is the friction force of the desk on the body 2,
f_2d: is the friction force of body 2 on the desk,
μ_s and μ_k: are the static and kinetic friction coefficient respectively, g: is the acceleration of gravity.
The two bodies of the system are made up from the same substance.

1. The condition to move the block:

The condition to move the block (m₁ + m₂) by exerting the force F is:
F > f_d2. That is:
F > μ_s(m₁ + m₂)g
or
μ_s < F/(m₁ + m₂)g

μ_s < F/(m₁ + m₂)g     (1)

2. The expressions of the friction forces:

They are:
f₂₁ = μ_sm₁g
f_d2 = μ_k(m₁ + m₂)g

f₂₁ = μ_sm₁g

f_d2 = μ_k(m₁ + m₂)g     (2)

3. The acceleration of the entire block:

The acceleration of the block is: a = (F - f_d2 )/(m₁ + m₂) = [F - μ_k(m₁ + m₂)g]/(m₁ + m₂)

a = [F - μ_k(m₁ + m₂)g]/(m₁ + m₂)     (3)

4. The acceleration of the part m₁ moving at right:

The acceleration of the part m₁ is:
a₁ = - f₂₁/m₁ = - [μ_km₁g]/m₁ = - μ_kg

a₁ = - μ_kg     (4)

5. The acceleration of the part m₂:

1. While the part m₁ is moving right:

The acceleration of the part m₂ is:
F + f₁₂ - f_d2 = m₂ a₂
a₂ = (F + f₁₂ - f_d2)/m₂ =
[F + μ_k m₁ g - (μ_k (m₁ + m₂) g )]/m₂
=[F + μ_k m₁ g - μ_km₁g - μ_k m₂ g]/m₂
= [F - μ_k m₂ g ]/m₂

2. While the part m₁ is moving left:

The acceleration of the part m₂ is:
F - f₁₂ - f_d2 = m₂ a₂
a₂ = (F - f₁₂ - f_d2)/m₂ =
[F - μ_k m₁ g - (μ_k (m₁ + m₂) g )]/m₂
= [F - μ_k m₁ g - μ_km₁g - μ_k m₂ g]/m₂
= [F - 2 μ_k m₁ g - μ_k m₂ g ]/m₂
= [F - μ_k (2 m₁ + m₂]g/m₂

The part m₁ is moving right:

a = [F - μ_k m₂ g ]/m₂

The part m₁ is moving left:

a = [F - μ_k (2 m₁ + m₂]g/m₂     (5)

6. The condition for that m₁ remains stick on m₂ :

This condition is satisfied when:
m₁ a >= f₂₁, a is the acceleration of the entire block 1 and 2 (formula (3)). That is :
m₁ a >= μ_km₁g
or
a/g >= μ_k
That is:
2 μ_k <= F/g(m₁ + m₂)

Finally,
μ_k <= F/2g(m₁ + m₂)

μ_k <= F/2g(m₁ + m₂)     (6)

7. The condition for that m₁ moves backward :

The part₁ will move backward if m₁a < f₂₁ that is:
μ_k > F/2g(m₁ + m₂)

μ_k > F/2g(m₁ + m₂)     (7)

8. Applications:

F = 30 Newtons
M₁ = 2 kg
M₁ = 4 Kg
What would be the values of μ_s and μ_k for the system to have different situations?

1.
The condition (1) is then:
μ_s < F/(m₁ + m₂)g
μ_s < 30/60 = 0.5
With any blocks of the friction coefficient greater than 0.5, the force F = 30 N will not move it.
a = a₁ = a₂= 0

2.
μ_s = 0.4 The system can move.
with a related μ_k= 0.3
The condition (7) is :
μ_k > F/2g(m₁ + m₂)
F/2g(m₁ + m₂ = 30/20x6 = 1/4 = 0.25
The answer is yes. Hence:
m₁ will move backward.

From the relationship (4), we have:
a₁ = [μ_km₁g]/m₁ = μ_kg = 3 m/s²

From the relationship (5), we have: a₂ = [F - μ_kg(2m₁ + m₂]/m₂ = 30 - 0.3 x 10 ( 2 x 2 + 4)/4 = (30 - 24 )/4 = 6/4 = 3/2 = 1.5 m/s²

3.
μ_k = 0.1
The relationship (6) gives the threshold:
μ_k = F/2g(m₁ + m₂)= 30/20x6 = 0.25
μ_k = 0.1 < 0.25,
then the two parts m₁ and m₂ will remains stick and move together with the following accelerations:
a₁ = μ_kg = 0.1 x 10 = 1.0 m/s²
a₂ = [F - μ_kg(2m₁ + m₂]/m₂
= 30 - 0.1 x 10 ( 2 x 2 + 4)/4 = 30 - 1.0 x 8 /4 = 22/4 = 11/2
= 5.5 m/s².


4.
μ_k = 0
μ_k = 0 < 0.25,
then the two parts m₁ and m₂ will remains stick and move together with the following acceleration (given by the relationship (3) with μ_k = 0):
a = F/(m₁ + m₂) = 30 /6 = 5 m/s².