Answer to Question #252953 in Mechanics | Relativity for Njh

Question #252953

A car travels 7km to east and then 4km in a direction 60° north of east.Find the magnitude and direction of the Car's displacement vector relative to positive x axis.

Expert's answer

Let's first find $x$ - and $y$ -components of the car's resultant displacement:

d_x=7\ km\cdot cos0^{\circ}+4\ km\cdot cos60^{\circ}=9\ km,

d_y=7\ km\cdot sin0^{\circ}+4\ km\cdot sin60^{\circ}=3.46\ km.

We can find the magnitude of the car's resultant displacement from the Pythagorean theorem:

d=\sqrt{d_x^2+d_y^2}=\sqrt{(9\ km)^2+(3.46\ km)^2}=9.64\ km.

We can find the direction of the resultant displacement from the geometry:

\theta=tan^{-1}({\dfrac{d_y}{d_x}}),

\theta=tan^{-1}({\dfrac{3.46\ km}{9\ km}})=21^{\circ}\ N\ of\ E.

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