The unit normal vector to the plane 3x+2y-2z=8√17 is

Question

The unit normal vector to the plane 3x+2y-2z=8√17 is (A)  (1/√3) ( hati+ hatj- hatk)  (B)  (1/√17) (3 hati+2 hatj-2 hatk)  (C)  (1/√13) (3 hati+2 hatj+2 hatk)  (D)  (1/√11) (3 hati+ hatj+ hatk)

Tardigrade Admin · Accepted Answer

We have the given equation of plane 3x+2y-2z=8√17 ⇒ (x hati+y hatj+z hatk).(3 hati+2 hatj-2 hatk)=8√17 Which is of the form vecr. vecn = d Where vecn is the normal vector to the plane. Thus, required unit normal vector. vecn=(| vecn|/| vecn|)=(3 hati+2 hatj-2 hatk/√9+4+4)=(1/√17) (3 hati+2 hatj-2 hatk)

Q. The unit normal vector to the plane $3 x + 2 y - 2 z = 817$ is

$\frac{1}{3} (\hat{i} + \hat{j} - \hat{k})$

$\frac{1}{17} (3 \hat{i} + 2 \hat{j} - 2 \hat{k})$

$\frac{1}{13} (3 \hat{i} + 2 \hat{j} + 2 \hat{k})$

$\frac{1}{11} (3 \hat{i} + \hat{j} + \hat{k})$

Q. The unit normal vector to the plane 3x+2y−2z=817​ is

3​1​(i^+j^​−k^)

17​1​(3i^+2j^​−2k^)

13​1​(3i^+2j^​+2k^)

11​1​(3i^+j^​+k^)

We have the given equation of plane 3x+2y−2z=817​ ⇒ (xi^+yj^​+zk^).(3i^+2j^​−2k^)=817​ Which is of the form r.n=d Where n is the normal vector to the plane. Thus, required unit normal vector. n=∣n∣∣n∣​=9+4+4​3i^+2j^​−2k^​=17​1​(3i^+2j^​−2k^)

Q. The unit normal vector to the plane $3 x + 2 y - 2 z = 817$ is

$\frac{1}{3} (\hat{i} + \hat{j} - \hat{k})$

$\frac{1}{17} (3 \hat{i} + 2 \hat{j} - 2 \hat{k})$

$\frac{1}{13} (3 \hat{i} + 2 \hat{j} + 2 \hat{k})$

$\frac{1}{11} (3 \hat{i} + \hat{j} + \hat{k})$