Newtons Laws EX 15

Helena Dedic

There are three forces acting on the block: ${\displaystyle F_{G}}$, ${\displaystyle F_{N}}$, ${\displaystyle F}$.

We can draw the diagram and the free body diagram.

Then compute the components of the three forces.

Forces	x-comp	y-comp
${\displaystyle F_{G}}$	10 cos(- 127°) = - 6 N	10 sin(- 127°) = - 8 N
${\displaystyle F_{N}}$	0	${\displaystyle F_{N}}$
${\displaystyle F}$	5 cos(- 37°) = 4 N	5 cos(- 37°) = - 3 N
${\displaystyle \sum {F}}$	m a = 1 a	0

Writing the equation for the x-component,

- 6 + 4 = a

we obtain ${\displaystyle a=-2m/s^{2}}$.

We don't need to calculate the normal force.

These findings, together with the equations of kinematics, allow us to compute displacement of the block over the first two seconds. Given the initial velocity ${\displaystyle v_{0}=4m/s}$, we can write the equation for the displacement

${\displaystyle \Delta x=v_{0x}t}$ + ½a${\displaystyle t^{2}}$ = 4 × 2 + ½ × (-2) × 22 = 4 m