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Question
Find a point P on the line `(x + 5)/1 = (y + 3)/4 = (z - 6)/-9` such that its distance from point Q(2, 4, – 1) is 7 units. Also, find the equation of line joining P and Q.
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Solution
Given: `(x + 5)/1 = (y + 3)/4 = (z - 6)/-9 = λ`
x = λ − 5, y = 4λ − 3, z = −9λ + 6
P(λ − 5, 4λ − 3, −9λ + 6)
Given, PQ = 7
x1 = λ − 5, y1 = 4λ − 3, z1 = −9λ + 6
x2 = 2, y2 = 4, z2 = −1
So, `sqrt((x_2 - x_1)^2 + (y_2 - y_1)^2 + (z_2 + z_1)^2) = 7`
`sqrt((λ - 5 - 2)^2 + (4λ - 3 - 4)^2 + (-9λ + 6 + 1)^2) = 7`
`sqrt((λ - 7)^2 + (4λ - 7)^2 + (-9λ + 7)^2) = 7`
Squaring on both sides
λ2 + 49 − 14λ+ 16λ2 + 49 − 56λ + 81λ2 + 49 − 126λ = 49
98λ2 − 196λ + 98 = 0
98(λ2 − 2λ + 1) = 0
(λ − 1)2 = 0
λ = 1
∴ Cooridinates of p[1 − 5, 4(1) − 3, −9(1) + 6]
= −4, 1, −3
Equation of line PQ is
`(x - (-4))/(2 - (-4)) = (y - 1)/(4 - 1) = (z - (-3))/(-1-(-3))`
PQ: `(x + 4)/6 = (y - 1)/3 = (z + 3)/2`
