Solution 5.5b
From Mechanics
(Difference between revisions)
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<math>\begin{align} | <math>\begin{align} | ||
| - | & N=mg-5000\cos {{65}^{\circ }}=500\times 9.8-5000\times 0.423 \\ | + | & N=mg-5000\cos {{65}^{\circ }}=500\times 9\textrm{.}8-5000\times 0\textrm{.}423 \\ |
& =4900-2113=2787\ \text{N} \\ | & =4900-2113=2787\ \text{N} \\ | ||
\end{align}</math> | \end{align}</math> | ||
Current revision
In the vertical direction the forces on the tank must be in equilibrium.
\displaystyle \uparrow \ -mg+N+5000\cos {{65}^{\circ }}=0
or
\displaystyle \begin{align} & N=mg-5000\cos {{65}^{\circ }}=500\times 9\textrm{.}8-5000\times 0\textrm{.}423 \\ & =4900-2113=2787\ \text{N} \\ \end{align}
