static equilibrium question (1 Viewer)

astroman · Jun 5, 2016

A meter stick is balanced on the 40 cm mark when a downward force of 1 N is applied at the 10 cm mark. What is the mass of the stick?

astroman · Jun 5, 2016

Ambility · Jun 5, 2016

To me, this is more of an engineering studies question than a physics question, but I'll give it a shot anyway.

Since the stick is in equilibrium, the clockwise torques must equal the counter-clockwise torque.

$\tau_{cw}=\tau_{ccw}$

In the diagram I made, the clockwise torques were the force at 10 cm and the mass (centred at 20 cm) and my counter-clockwise torque was the mass centred at 70 cm. These may be opposite in your diagram, you'll still get the same answer.

$\\$Let $m$ be the mass of the stick in kilograms.$\\\\\frac{40}{100}m\times 9.8\times 0.2+1\times 0.3=\frac{60}{100}m\times 9.8\times 0.3\\\\0.784m+0.3=1.764m\\0.98m=0.3\\m=0.31 $ kg$$

Fizzy_Cyst · Jun 5, 2016

Alternatively, noting the first 40cm on both sides would provide balancing torques and essentially cancel each other out you would be left with:

1 x 0.3 = 20/100m x 9.8 x 0.5

And you should get the exact same answer.

static equilibrium question (1 Viewer)

astroman

Well-Known Member

astroman

Well-Known Member

Ambility

Active Member

Fizzy_Cyst

Well-Known Member

Users Who Are Viewing This Thread (Users: 0, Guests: 1)