shows two blocks connected by a cord (of negligible mass) that passes over a frictionless pulley (also of negligible mass). The arrangement is known as Atwood's machine. One block has mass m1 = 1.30 kg; the other has mass m2 = 2.80 kg. What are (a) the magnitude of the blocks' acceleration and (b) the tension in the cord?

a = 3.585 m/s^2

T = 17.4 N

Explanation:

Given:

- The mass of block 1 m1 = 1.30 kg

- The mass of block 2 m2 = 2.8 kg

- The acceleration of block-block system = a

- The tension in the cord = T

Find:

(a) the magnitude of the blocks' acceleration

(b) the tension in the cord?

Solution:

- In our coordinate systems, the acceleration of the block 1 equals the acceleration of the block 2. So we can express them as a common acceleration a. The equations of motion are:

m1*a = T - m1*g

m2*a = m2*g - T

- Adding the two equations together, we get the equation of motion for the whole system.

(m1+m2) * a = m2*g-m1*g

- Solving this equation for the acceleration, we have

a = (m2-m1) * g / (m1+m2)

a = (2.8-1.3) * 9.8 / (1.3+2.8)

a = 3.585 m/s^2

- Plugging the result into the equation of motion for block 1, we have

T = m1 * (a+g)

T = 1.3 * (3.585+9.8)

T = 17.4 N