The vector equation of the symmetrical form of equation of straight line (x-5/3) = (y+4/7) = (z-6/2) is

Question

The vector equation of the symmetrical form of equation of straight line (x-5/3) = (y+4/7) = (z-6/2) is (A)  vecr = (3 hati+7 hatj+2 hatk)+μ (5 hati+4j-6 hatk) (B)  vecr = (5 hati+4 hatj-6 hatk)+μ (3 hati+7j+2 hatk) (C)  vecr = (5 hati-4 hatj-6 hatk)+μ (3 hati-7j-2 hatk) (D)  vecr = (5 hati-4 hatj+6 hatk)+μ (3 hati+7j+2 hatk)

Tardigrade Admin · Accepted Answer

(x-5/3) = (y+4/7) = (z-6/2) have vector form = (x1 hati+y1 hatj+z1 hatk)+λ(a hati+b hatj+c hatk) Required equation in vector form is vecr = (5 hati-4 hatj+6 hatk)+μ (3 hati+7j+2 hatk)

Q. The vector equation of the symmetrical form of equation of straight line $\frac{x - 5}{3} = \frac{y + 4}{7} = \frac{z - 6}{2}$ is

$r = (3 \hat{i} + 7 \hat{j} + 2 \hat{k}) + μ (5 \hat{i} + 4 j - 6 \hat{k})$

$r = (5 \hat{i} + 4 \hat{j} - 6 \hat{k}) + μ (3 \hat{i} + 7 j + 2 \hat{k})$

$r = (5 \hat{i} - 4 \hat{j} - 6 \hat{k}) + μ (3 \hat{i} - 7 j - 2 \hat{k})$

$r = (5 \hat{i} - 4 \hat{j} + 6 \hat{k}) + μ (3 \hat{i} + 7 j + 2 \hat{k})$

$\frac{x - 5}{3} = \frac{y + 4}{7} = \frac{z - 6}{2}$ have vector form
$= (x_{1} \hat{i} + y_{1} \hat{j} + z_{1} \hat{k}) + λ (a \hat{i} + b \hat{j} + c \hat{k})$
Required equation in vector form is
$r = (5 \hat{i} - 4 \hat{j} + 6 \hat{k}) + μ (3 \hat{i} + 7 j + 2 \hat{k})$

Q. The vector equation of the symmetrical form of equation of straight line 3x−5​=7y+4​=2z−6​ is

r=(3i^+7j^​+2k^)+μ(5i^+4j−6k^)

r=(5i^+4j^​−6k^)+μ(3i^+7j+2k^)

r=(5i^−4j^​−6k^)+μ(3i^−7j−2k^)

r=(5i^−4j^​+6k^)+μ(3i^+7j+2k^)