A meter stick is balanced at the 50 cm mark. You tie a 20 N weight at the 20 cm mark. Where should a 30 N weight be placed so the meter stick will again be balanced?

Question

asked Jun 21, 2020 73.2k views

1 Answer

Schrodingrrr · Answer 1 · 2020-06-25T10:51:11+0000

Answer:

20 cm to the right of the center or 20+50 = 70 cm from the left side.

Step-by-step explanation:

The length of meter stick is 1 m = 100 cm

Balance point on 50 cm

From the center the 20 N weight is 50-20 = 30 cm

Torque is obtained when force is multiplied with the distance

As the force is conserved we have

$(20)/(30)* 30=20\ cm$

The distance will be 20 cm to the right of the center or 20+50 = 70 cm from the left side.