Solution 4.7a
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(New page: <math>\begin{align} & \mathbf{F}=F\cos \alpha \mathbf{i}+F\sin \alpha \mathbf{j} \end{align}</math> <math>F1=100\ \text{N}</math> and <math>\alpha 1=30{}^\circ </math> this gives <...)
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Revision as of 13:37, 24 March 2010
\displaystyle \begin{align} & \mathbf{F}=F\cos \alpha \mathbf{i}+F\sin \alpha \mathbf{j} \end{align}
\displaystyle F1=100\ \text{N}
and
\displaystyle \alpha 1=30{}^\circ
this gives
\displaystyle \begin{align}
& \mathbf{F}1=100\cos 30{}^\circ
\mathbf{i}+100\sin 30{}^\circ
\mathbf{j}=100\times 0\textrm{.}866\mathbf{i}+100\times 0\textrm{.}5\mathbf{j} \\
& =86\textrm{.}6\mathbf{i}+50\mathbf{j}\ \text{N}\\
\end{align}
\displaystyle F2=50\ \text{N} and \displaystyle \alpha 2=-30{}^\circ this gives
\displaystyle \begin{align}
& \mathbf{F}2=50\cos \left( -30
\right) {}^\circ
\mathbf{i}+50\sin \left( -30 \right) {}^\circ
\mathbf{j}=50\times 0\textrm{.}866\mathbf{i}-50\times 0\textrm{.}50\mathbf{j} \\
& =43\textrm{.}3\mathbf{i}+25\mathbf{j} \ \text{N}\\
\end{align}
