MHT CET · Maths · Three Dimensional Geometry
The parametric equations of a line passing through the points \(\mathrm{A}\) \((3,4,-7)\) and \(B(1,-1,6)\) are
- A \(\mathrm{x}=3+\lambda, \mathrm{y}=-1+4 \lambda, \mathrm{z}=-7+6 \lambda\)
- B \(\mathrm{x}=-2+3 \lambda, \mathrm{y}=-5+4 \lambda, \mathrm{z}=13-7 \lambda\)
- C \(\mathrm{x}=3-2 \lambda, \mathrm{y}=4-5 \lambda, \mathrm{z}=-7+13 \lambda\)
- D \(\mathrm{x}=3-2 \lambda, \mathrm{y}=4-5 \lambda, \mathrm{z}=-7+13 \lambda\)
Answer & Solution
Correct Answer
(D) \(\mathrm{x}=3-2 \lambda, \mathrm{y}=4-5 \lambda, \mathrm{z}=-7+13 \lambda\)
Step-by-step Solution
Detailed explanation
Equation of required line is
\(
\begin{aligned}
& \frac{x-3}{1-3}=\frac{y-4}{-1-4}=\frac{z+7}{6+7}=\lambda \ldots \text { (Say) } \\
& \therefore \frac{x-3}{-2}=\frac{y-4}{-5}=\frac{z+7}{13}=\lambda \\
& \therefore x=-2 \lambda+3, y=-5 \lambda+4, z=13 \lambda-7
\end{aligned}
\)
\(
\begin{aligned}
& \frac{x-3}{1-3}=\frac{y-4}{-1-4}=\frac{z+7}{6+7}=\lambda \ldots \text { (Say) } \\
& \therefore \frac{x-3}{-2}=\frac{y-4}{-5}=\frac{z+7}{13}=\lambda \\
& \therefore x=-2 \lambda+3, y=-5 \lambda+4, z=13 \lambda-7
\end{aligned}
\)
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