Question

A metal bar $70cm$ long and $4.00kg$ in mass supported on two knife-edges placed $10cm$ from each end. A $6.00kg$ load is suspended at $30cm$ from one end. Find the reactions at the knife-edges. (Assume the bar to be of uniform cross section and homogeneous.)

• A. $45N$ and $43N$
• B. $50N$ and $35N$
• C. $55N$ and $43N$
• D. $54N$ and $30N$

Answer 1

The correct option is A $45N$ and $43N$

Figure shows the rod AB, the positions of the knife edges $K_1$ and $K_2$, the centre of gravity of the rod at G and the suspended load at P.
Note the weight of the rod W acts as its centre of gravity G. The rod is uniform in cross section and homogenous$;$ hence G is at the centre of the rod$;AB=70$cm. $AG=35$cm, $AP=30$cm, $PG=5$cm, $A{K}_1=B{K}_2=10$cm and $K_{1}G=K_{2}G=25$cm. Also, $W=$ weight of the rod $=4.00$kg and $W_1=$ suspended load$=6.00$kg $;$ $R_1$ and $R_2$ are the normal reactions of the support at the knife edges.
For translational equilibrium of the rod, $R_1+R_2-W_1-W=0$ ....$\left(i\right)$
Note $W_1$ and $W$ act vertically down and $R_1$ and $R_2$ act vertically up.
For considering rotational equilibrium, we take moments of the forces. A convenient point to take moments of the forces is G. The moments of $R_2$ and $W_1$ are anticlockwise $(+ve)$, whereas the moment of $R_1$ is clockwise $(-ve)$.
For rotational equilibrium,
$-R_1\left(K_{1}G\right)+W_1\left(PG\right)+R_2\left(K_{2}G\right)=0$ $\left(ii\right)$
It is given that $W=4.00$g N and $W_1=6.00$g N, where $g=$ acceleration due to gravity. We take $g=9.8m/s^2$.
With numerical values inserted, from $\left(i\right)$
$R_1+R_2-4.00g-6.00g=0$
or $R_1+R_2=10.00gN$ $\left(iii\right)$
$=98.00N$
From $\left(ii\right),-0.25R_1+0.05W_1+0.25R_2=0$
or $R_1-R_2=1.2g$ $N=11.76N$ $\left(iv\right)$
From $\left(iii\right)$ and $\left(iv\right)$, $R_1=54.88N$,
$R_2=43.12N$
Thus the reactions of the support are about $55N$ at $K_1$ and $43N$ at $K_2$.