Newtons Laws EX 26

Since the bob is held in place, its acceleration is equal to zero. There are three forces acting on the bob: the force exerted by the spring ${\displaystyle F_{S}}$, the force exerted by the string ${\displaystyle F_{T}}$ and the force of gravity ${\displaystyle F_{G}}$. Assume that the mass of the bob is ${\displaystyle m}$ and then ${\displaystyle F_{G}=mg}$. We choose the coordinate system with the horizontal x-axis and draw the free body diagram. Given that the string makes a 30° angle with the vertical, the vector ${\displaystyle F_{T}}$ makes a 60° angle with the x-axis.

Next we compute the components of all forces. We begin by computing the magnitude of ${\displaystyle {\overrightarrow {F_{S}}}}$:

${\displaystyle F_{S}=kx=(3.92\times 10^{3})(2\times 10^{-2})=78.4N}$

Forces	x-component	y-component
${\displaystyle F_{S}}$	-78.4 N	0
${\displaystyle F_{G}}$	0	-mg
${\displaystyle F_{T}}$	${\displaystyle F_{T}\cos(60^{\circ })}$	${\displaystyle F_{T}\sin(60^{\circ })}$
${\displaystyle \Sigma F}$	0	0

The sum of the forces in the x-direction is zero:

${\displaystyle -78.4+F_{T}\cos(60^{\circ })=0}$

${\displaystyle F_{T}={78.4 \over \cos(60^{\circ })}={78.4 \over 0.5}=157N}$

The sum of the forces in the y-direction is zero:

${\displaystyle F_{T}\sin(60^{\circ })-mg=0}$

${\displaystyle m={F_{T}\sin(60^{\circ }) \over g}={0.87F_{T} \over g}={0.87(157) \over (10)}=13.7kg}$