Find the north and east components of the displacement from San Francisco to Sacramento shown in Figure 3.57.
Solution:
Consider the following figure.
Using the right triangle formed, we can solve for the east component and the north component. Let SE be the east component and SN be the north component of S.
\begin{align*}
S_E & = S \cos 45^\circ \\
& = \left( 123 \ \text{km} \right) \cos45^\circ \\
& = 86.974 \ \text{km} \\
& \approx 87.0 \ \text{km} \ \qquad \ {\color{DarkOrange} \left( \text{Answer} \right)}
\end{align*}\begin{align*}
S_N & = S \sin 45^\circ \\
& = \left( 123 \ \text{km} \right) \sin 45^\circ \\
& = 86.974 \ \text{km} \\
& \approx 87.0 \ \text{km} \ \qquad \ {\color{DarkOrange} \left( \text{Answer} \right)}
\end{align*}Therefore, the east and north components are equal at about 87.0 km.
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