What is the equation of the line perpendicular to 3x+y=6 that passes through the point (0,8)

Question

asked Sep 9, 2021 49.7k views

1 Answer

Marioosh · Answer 1 · 2021-09-15T12:00:33+0000

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3x + y = 6

y = - 3x + 6

The coefficient of x is the slope of the line , So the slope of the above equation is -3 .

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Remember from now on ,

Product of multiplying the slopes of two lines which are perpendicular to each other , is -1 .

Thus ;

( - 3) * (m) = - 1

m is the slope of the line which we want.

- 3m = - 1

Negatives simplifies

3m = 1

Divide sides by 3

$(3m)/(3) = (1)/(3) \\$

$m = (1)/(3) \\$

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We have following equation to find the point-slope form of the linear functions :

y - y(0) = m(x - x(0))

x(0) and y(0) are the coordinates of the point which the line passed through.

$y - 8 = (1)/(3) (x - 0) \\$

$y - 8 = (1)/(3) x \\$

Add sides 8

$y = (1)/(3) x + 8 \\$

Done....

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