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प्रश्न
The distance of the point (-3, 2, 3) from the line passing through (4, 6, -2) and having direction ratios -1, 2, 3 is ______units.
पर्याय
2√17
4√17
2√19
4√19
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उत्तर
The distance of the point (-3, 2, 3) from the line passing through (4, 6, -2) and having direction ratios -1, 2, 3 is 2√19 units.
Explanation:
Let P ≡ (–3, 2, 3)
Equation of a line passing through (4, 6, –2) and having d.r.’s -1, 2, 3 are
\[\frac{x-4}{-1}=\frac{y-6}{2}=\frac{z+2}{3}\]
Let \[\frac{x-4}{-1}=\frac{y-6}{2}=\frac{z+2}{3}=\lambda\]
⇒ x = 4 − λ, y = 2λ + 6, z = 3λ − 2
Co-ordinations of point
Q = (4 − λ, 2λ + 6, 3λ − 2)
∴ the d.r’s of PQ are
(4 − λ − (−3), 6 + 2λ − 2, −2 + 3λ − 3)
= 7 − λ, 4 + 2λ, −5 + 3λ
Since PQ is perpendicular to the given lines
∴ −1(7 − λ) + (2)(4 + 2λ) + 3(−5 + 3λ) = 0
⇒ −7 + λ + 8 + 4λ − 15 + 9λ = 0
⇒ λ = 1
∴ Co-ordinates of Q are (3, 8, 1)
\[\therefore\quad\mathrm{PQ}=\sqrt{\left(3-\left(-3\right)\right)^2+\left(8-2\right)^2+\left(1-3\right)^2}\]
= √76
= 2 √19
