Equation of plane containing the line (x-1/-3) = (y-3/2) = (z-2/1) and the point (0 , - 3, 4 ) is

Question

Equation of plane containing the line (x-1/-3) = (y-3/2) = (z-2/1) and the point (0 , - 3, 4 ) is (A) x+y+2z-5=0 (B) 2x-y+3z-15=0 (C) 2x+y+4z=13 (D) x+y-4z=13

Tardigrade Admin · Accepted Answer

Equation of plane containing the line a(x-1) +b (y-3)+c (z-2)=0 and -3a+2b+c=0 Using (0, -3, 4), we have a(-1)+b (-6)+c (2)=0 or a+6b-2c=0 and 3a-2b-c=0 ∴ (a/10) = (-b/-5)=(c/20) or (a/2) = (b/1) =(c/4) ∴ Required equation of plane is 2(x-1)+y-3+4(z-2)=0 ⇒ 2x+y+4z=13

Q. Equation of plane containing the line $\frac{x - 1}{- 3} = \frac{y - 3}{2} = \frac{z - 2}{1}$ and the point $(0, - 3, 4)$ is

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

$2 x - y + 3 z - 15 = 0$

$2 x + y + 4 z = 13$

$x + y - 4 z = 13$

Q. Equation of plane containing the line −3x−1​=2y−3​=1z−2​ and the point (0,−3,4) is

x+y+2z−5=0

2x−y+3z−15=0

2x+y+4z=13

x+y−4z=13

Equation of plane containing the line a(x−1)+b(y−3)+c(z−2)=0 and −3a+2b+c=0 Using (0,−3,4), we have a(−1)+b(−6)+c(2)=0 or a+6b−2c=0 and 3a−2b−c=0 ∴10a​=−5−b​=20c​ or 2a​=1b​=4c​ ∴ Required equation of plane is 2(x−1)+y−3+4(z−2)=0 ⇒2x+y+4z=13

Q. Equation of plane containing the line $\frac{x - 1}{- 3} = \frac{y - 3}{2} = \frac{z - 2}{1}$ and the point $(0, - 3, 4)$ is

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

$2 x - y + 3 z - 15 = 0$

$2 x + y + 4 z = 13$

$x + y - 4 z = 13$