Write the equation of a line that is perpendicular to y=-0.3x. +6 and that passes through the point (3,-8)

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asked Dec 15, 2020 158k views

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Ahnbizcad · Answer 1 · 2020-12-22T04:33:37+0000

Answer:

$y=(x)/(0.3)-18 \ or \ 3y=10x-54$

is the equation of perpendicular line.

Explanation:

We are given , the equation of a line is
y=-0.3x. +6

We can deduce that the slope of the given line is
m=-0.3

The slope of its perpendicular line would be ,
m_p= (-1)/(m) =(1)/(0.3)

Now using the point slope form,
y-y1= m_p(x-x1)

Use the given point
$(3,-8) \ as\ (x1,y1)$ substituing these.

$y-(-8)= (1)/(0.3) (x-3)\\y+8=(x)/(0.3) -10\\y=(x)/(0.3) -18$

Therefore the required equation of a line that is perpendicular to y=-0.3x. +6 and that passes through the point (3,-8) is y=\frac{x}{0.3} -18[/tex]

Write the equation of a line that is perpendicular to y=-0.3x. +6 and that passes through the point (3,-8)

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