The equation of the plane passing through the point (1, 2, -3) and perpendicular to the planes 3 x+y-2 z=5 and 2 x-5 y-z=7 is

Question

The equation of the plane passing through the point (1, 2, -3) and perpendicular to the planes 3 x+y-2 z=5 and 2 x-5 y-z=7 is (A) 3 x-10 y-2 z+11=0 (B) 6 x-5 y-2 z-2=0 (C) 11 x+y+17 z+38=0 (D) 6 x-5 y+2 z+10=0

Tardigrade Admin · Accepted Answer

Normal vector: | hati& hatj& hatk 3&1&-2 2&-5&-1| = -11 hati - hatj + 17 hatk So drs of normal to the required plane is <11,1,17> plane passes through (1,2,-3) So eq n of plane: 11(x-1)+1(y-2)+17(z+3)=0 ⇒ 11 x+y+17 z+38=0

Q. The equation of the plane passing through the point (1, 2, -3) and perpendicular to the planes $3 x + y - 2 z = 5$ and $2 x - 5 y - z = 7$ is

$3 x - 10 y - 2 z + 11 = 0$

$6 x - 5 y - 2 z - 2 = 0$

$11 x + y + 17 z + 38 = 0$

$6 x - 5 y + 2 z + 10 = 0$

Q. The equation of the plane passing through the point (1, 2, -3) and perpendicular to the planes 3x+y−2z=5 and 2x−5y−z=7 is

3x−10y−2z+11=0

6x−5y−2z−2=0

11x+y+17z+38=0

6x−5y+2z+10=0

Normal vector : ∣∣​i^32​j^​1−5​k^−2−1​∣∣​ =−11i^−j^​+17k^ So drs of normal to the required plane is <11,1,17> plane passes through (1,2,-3) So eq n of plane: 11(x−1)+1(y−2)+17(z+3)=0 ⇒11x+y+17z+38=0

Q. The equation of the plane passing through the point (1, 2, -3) and perpendicular to the planes $3 x + y - 2 z = 5$ and $2 x - 5 y - z = 7$ is

$3 x - 10 y - 2 z + 11 = 0$

$6 x - 5 y - 2 z - 2 = 0$

$11 x + y + 17 z + 38 = 0$

$6 x - 5 y + 2 z + 10 = 0$