Advertisements
Advertisements
प्रश्न
At any point (x, y) of a curve, the slope of the tangent is twice the slope of the line segment joining the point of contact to the point (- 4, -3). Find the equation of the curve given that it passes through (-2, 1).
Advertisements
उत्तर
The slope of the line having points (x, y) and (−4, −3) is given by
\[\frac{y + 3}{x + 4}\]
According to the question,
\[\frac{dy}{dx} = 2\left( \frac{y + 3}{x + 4} \right)\]
\[\Rightarrow \frac{1}{y + 3}dy = \frac{2}{x + 4}dx\]
Integrating both sides, we get
\[\int\frac{1}{y + 3}dy = 2\int\frac{1}{x + 4}dx\]
\[ \Rightarrow \log \left| y + 3 \right| = 2\log \left| x + 4 \right| + \log C\]
\[ \Rightarrow \log \left| y + 3 \right| = \log \left| C \left( x + 4 \right)^2 \right|\]
\[ \Rightarrow y + 3 = C \left( x + 4 \right)^2 \]
Since the curve passes through (-2, 1), it satisfies the equation of the curve.
\[ \therefore 1 + 3 = C \left( - 2 + 4 \right)^2 \]
\[ \Rightarrow C = 1\]
Putting the value of `C` in the equation of the curve, we get
\[y + 3 = \left( x + 4 \right)^2\]
