The equation of the plane containing the straight line $\frac{x}{2} = \frac{y}{3} = \frac{z}{4}$ and perpendicular to the plane containing the straight lines $\frac{x}{3} = \frac{y}{4} = \frac{z}{2} and \frac{x}{4} = \frac{y}{2} = \frac{z}{3}$ is :

x + 2 y - 2 z = 0

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3 x + 2 y - 3 z = 0

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x - 2 y + z = 0

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5 x + 2 y - 4 z = 0

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Solution

The correct option is C $x - 2 y + z = 0$
Let the plane be $P_{1}$ containing the straight lines
$\frac{x}{3} = \frac{y}{4} = \frac{z}{2} and \frac{x}{4} = \frac{y}{2} = \frac{z}{3}$

$∴$ Vector normal to the plane $P_{1}$ is $_{1} = ∣ ∣ ∣ ∣ ∣ \begin{matrix} ^i & ^j & ^k 3 & 4 & 2 4 & 2 & 3 \end{matrix} ∣ ∣ ∣ ∣ ∣$

$= 8^i -^j - 10^k$

Let the required plane be $P_{2}$ which contains the line $\frac{x}{2} = \frac{y}{3} = \frac{z}{4}$
As plane $P_{2}$ is perpendicular to plane $P_{1}$
So, normal vector to the plane $P_{2}$ is $_{2} = ∣ ∣ ∣ ∣ ∣ \begin{matrix} ^i & ^j & ^k 8 & - 1 & - 10 2 & 3 & 4 \end{matrix} ∣ ∣ ∣ ∣ ∣$

$\Rightarrow_{2} = 26^i - 52^j + 26^k$

Plane $P_{2}$ passes through $(0, 0, 0)$
So, equation of plane $P_{2}$ is $26 x - 52 y + 26 z = 0$
$\Rightarrow x - 2 y + z = 0$

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Equation of Plane Containing Two Lines

Standard XII Mathematics

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The equation of the plane containing the straight line x2=y3=z4 and perpendicular to the plane containing the straight lines x3=y4=z2 and x4=y2=z3 is :

The equation of the plane containing the straight line $\frac{x}{2} = \frac{y}{3} = \frac{z}{4}$ and perpendicular to the plane containing the straight lines $\frac{x}{3} = \frac{y}{4} = \frac{z}{2} and \frac{x}{4} = \frac{y}{2} = \frac{z}{3}$ is :