Question

Two intersecting lines lying in plane $P_1$ have equations $\frac{x-1}{1}=\frac{y-3}{2}=\frac{z-4}{3}$ and $\frac{x-1}{2}=\frac{y-3}{3}=\frac{z-4}{1}.$ If the equation of plane $P_2$ is $7x-5y+z-6=0$ , then the distance between planes $P_1$ and $P_2$ is

• A. $\frac{11}{5\sqrt{3}}$
• B. $\frac{2}{\sqrt{3}}$
• C. $\frac{1}{\sqrt{3}}$
• D. $\frac{7}{5\sqrt{3}}$

Answer 1

Answer: (B)

Equation of plane $P_1$ is $\left|\begin{array}{ccc}x-1& y-3& z-4\\ 1& 2& 3\\ 2& 3& 1\end{array}\right|=0$
$\left(x-1\right)\left(-7\right)-\left(y-3\right)\left(-5\right)+\left(z-4\right)\left(-1\right)=0$
$7x-5y+z+4=0$
So, distance between planes $P_1\&P_2$ is $=\left|\frac{10}{\sqrt{49+25+1}}\right|=\frac{10}{5\sqrt{3}}$
$=\frac{2}{\sqrt{3}}$