Question

How do you find a unit vector parallel to the xz plane and perpendicular to i - 2j + 3k?

Answer 1

`+- 1/sqrt 10<3, 0,-1>`

Explanation:

Unit vector in the direction making angles

`alpha, beta and gamma` with the positive x, y and z

axes is .

`< cos alpha, cos beta, cos gamma>`.

If the vector is parallel to xz-plane, `beta` is a right angle.

So, `cos beta = 0`.

And so, the required vector is `< cos alpha, 0, cos gamma>` that is

perpendicular to `<1, -2, 3>`.

The dot product

#< cos alpha, 0, cos gamma>.<1, -2, 3>=0, giving

`cos alpha +3 cos gamma = 0`, and so, `cos gamma =-1/3 cos alpha`. .

Thus, any such vector is `cos alpha<1, 0, -1/3>`, and for unit vector,

`cos alpha =+-3/sqrt 10`.

The answer is `+- 1/sqrt 10<3, 0. -1>`.