A uniform rod AB has length 2 m and mass 50 kg - Edexcel - A-Level Maths Mechanics - Question 8 - 2013 - Paper 1

To determine the distance x, we use the conditions of equilibrium for moments about a point. Let R_C be the reaction at support C and R_D be the reaction at support D.

Since the rod is balanced, we have: $R_D = 2 R_C$

The total weight of the rod acts through its center of mass, which is at the midpoint (1m from A). Therefore, taking moments about point C:

$R_D imes (2 - 0.2) = 50 imes 1$

Substituting for R_D: $2 R_C (1.8) = 50$ $R_C = \frac{50}{3.6} = 13.89 ext{ N}$

Then, substituting back to find R_D: $R_D = 2(13.89) = 27.78 ext{ N}$

Now to find x:

Using the equation of vertical forces: $R_C + R_D = 50 \\ 13.89 + 27.78 = 50$

Thus: $x = 2 - 0.2 - 1 = 0.8 ext{ m}$