The shortest distance between the lines (x - 2/2)=(y - 3/2)=(z - 0/1) and (x + 4/- 1)=(y - 7/8)=(z - 5/4) lies in the interval

Question

The shortest distance between the lines (x - 2/2)=(y - 3/2)=(z - 0/1) and (x + 4/- 1)=(y - 7/8)=(z - 5/4) lies in the interval (A) [0,1] (B) [1,2] (C) [2,3] (D) [3,4]

Tardigrade Admin · Accepted Answer

Let, overset arrow a=2 hati+3 hatj overset arrow b=-4 hati+7 hatj+5 hatk ⇒ overset arrow b- overset arrow a=-6 hati+4 hatj+5 hatk overset arrow c=2 hati+2 hatj+ hatk overset arrow d=- hati+8 hatj+4 hatk ⇒ overset arrow c× overset arrow d=-9 hatj+18 hatk Hence, shortest distance =|(( overset arrow b - overset arrow a) ⋅ ( overset arrow c × overset arrow d)/| overset arrow c × overset arrow d|)| =|(-36+90/9 √5)|=(6/√5) ∈(2,3]

Q. The shortest distance between the lines $\frac{x - 2}{2} = \frac{y - 3}{2} = \frac{z - 0}{1}$ and $\frac{x + 4}{- 1} = \frac{y - 7}{8} = \frac{z - 5}{4}$ lies in the interval

$[0, 1]$

$[1, 2]$

$[2, 3]$

$[3, 4]$

Q. The shortest distance between the lines 2x−2​=2y−3​=1z−0​ and −1x+4​=8y−7​=4z−5​ lies in the interval

[0,1]

[1,2]

[2,3]

[3,4]

Q. The shortest distance between the lines $\frac{x - 2}{2} = \frac{y - 3}{2} = \frac{z - 0}{1}$ and $\frac{x + 4}{- 1} = \frac{y - 7}{8} = \frac{z - 5}{4}$ lies in the interval

$[0, 1]$

$[1, 2]$

$[2, 3]$

$[3, 4]$