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Question
Find the equation of the plane passing through the points (2, 2, –1), (3, 4, 2) and (7, 0, 6).
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Solution
The general equation of the plane passing through (2, 2, –1) is
a(x – 2) + b(y – 2) + c(z + 1) = 0 ...(i)
It will pass through (3, 4, 2) and (7, 0, 6), we get
a(3 – 2) + b(4 – 2) + c(2 + 1) = 0
a + 2b + 3c = 0 ...(ii)
And a(7 – 2) + b(0 – 2) + c(6 + 1) = 0
5a – 2b + 7c = 0 ...(iii)
Solving equations (ii) and (iii) by cross multiplication method, we get
`a/(14 - (-6)) = b/(15 - 7) = c/(-2 - 10)`
⇒ `a/20 = b/8 = c/(-12)`
⇒ `a/5 = b/2 = c/(-3) = λ` ...(Let)
a = 5λ, b = 2λ, c = –3λ
Substituting these values in equation (i), we get
5λ(x – 2) + 2λ(y – 2) – 3λ(z + 1) = 0
⇒ 5x – 10 + 2y – 4 – 3z – 3 = 0
⇒ 5x + 2y – 3z – 17 = 0
The required equation of plane is 5x + 2y – 3z = 17.
