The equation to the plane through the points (2, -1, 0), (3, -4, 5) parallel to a line with direction cosines proportional to (2, 3, 4 ) is 9x – 2y – 3z = k, where k is

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Solution

The correct option is A 20
Equation of plane through (2, -1, 0) is
a(x – 2) + b (y + 1) + c(z - 0) = 0 …..(i)
It also passes through (3, -4, 5), then
a – 3b + 5c = 0 ……(ii)
Given plane (i) is parallel to a line with direction cosines proportional to 2, 3, 4
2a + 3b + 4c = 0 ….. (iii)
From Eqs. (ii) and (iii), we get
$\frac{a}{9} = \frac{b}{- 2} = \frac{c}{- 3} = λ$ (say)
$∴ a = 9 λ, b = - 2 λ, C = - 3 λ$
Now, from Eq. (i)
$9 λ (x - 2) - 2 λ (y + 1) - 3 λ (z - 0) = 0$
$\Rightarrow 9 x - 2 λ - 3 z = 20$
$∴ k = 20$

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