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प्रश्न
Find the equation of a straight line on which the perpendicular from the origin makes an angle of 30° with x-axis and which forms a triangle of area \[50/\sqrt{3}\] with the axes.
उत्तर
Let AB be the given line and OL = p be the perpendicular drawn from the origin on the line.
Here,
\[\alpha = {30}^\circ\]
So, the equation of the line AB is
\[xcos\alpha + ysin\alpha = p \]
\[ \Rightarrow x\cos {30}^\circ + y\sin {30}^\circ = p\]
\[ \Rightarrow \frac{\sqrt{3}x}{2} + \frac{y}{2} = p\]
\[ \Rightarrow \sqrt{3}x + y = 2p . . . (1)\]
Now, in triangles OLA and OLB
\[\cos {30}^\circ = \frac{OL}{OA}\text { and } \cos {60}^\circ = \frac{OL}{OB}\]
\[ \Rightarrow \frac{\sqrt{3}}{2} = \frac{p}{OA} \text { and }\frac{1}{2} = \frac{p}{OB}\]
\[ \Rightarrow OA = \frac{2p}{\sqrt{3}} \text { and} OB = 2p\]
It is given that the area of triangle OAB is \[50/\sqrt{3}\]
\[\therefore \frac{1}{2} \times OA \times OB = \frac{50}{\sqrt{3}}\]
\[ \Rightarrow \frac{1}{2} \times \frac{2p}{\sqrt{3}} \times 2p = \frac{50}{\sqrt{3}}\]
\[ \Rightarrow p^2 = 25\]
\[ \Rightarrow p = 5\]
Substituting the value of p in (1):
\[\sqrt{3}x + y = 10\]
Hence, the equation of the line AB is
\[x + \sqrt{3}y = 10\].
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