Question

What is the unit vector that is normal to the plane containing `(- 3 i + j -k)` and `(2i - 3 j +k )`?

Answer 1

`= (-2 hat i + hat j + 7 hat k)/(3 sqrt(6))`

Explanation:

you'll do this by calculating the vector cross product of these 2 vectors to get the normal vector

so `vec n = (- 3 i + j -k) times (2i - 3 j +k )`

`= det [(hat i, hat j , hat k), (-3,1,-1),(2,-3,1)]`

`= hat i (1*1 -( -3*-1)) - hat j(-3*1 - (-1*2) ) + hat k (-3*-3 - 2*1))`

`= -2 hat i + hat j + 7 hat k`

the unit normal is `hat n = (-2 hat i + hat j + 7 hat k)/(sqrt((-2)^2 + 1^2 +7^2))`

`= (-2 hat i + hat j + 7 hat k)/(3 sqrt(6))`

you could check this by doing a scalar dot product between the normal and each of the original vectors, should get zero as they are orthogonal.

so for example

`vec v_1 * vec n`

`= (- 3 i + j -k) * (-2i + j + 7k )`

`= 6 + 1 - 7 = 0`