What is the equation of the line normal to f(x)=x^2-x at x=-2?

1 Answer
mason m
Jun 24, 2016

y=1/5x+32/5

Explanation:

The normal line will intersect the curve at (-2,f(-2)). Since f(-2)=(-2)^2-(-2)=6, we know the normal line passes through the point (2,6).

To find the slope of the normal line, first find the slope of the tangent line at that point by finding the value of the derivative at x=-2. Then, since the normal line is perpendicular to the tangent line, take the opposite reciprocal of the slope of the tangent line.

Through the power rule, we see that f'(x)=2x-1. We then see that the slope of the tangent line at x=-2 is f'(-2)=2(-2)-1=-5.

The slope of the normal line is then -1/(-5)=1/5.

Using the point (-2,6) and slope of 1/5, we can write the equation of the line from y=mx+b:

6=1/5(-2)+b" "=>" "b=32/5

The normal line is:

y=1/5x+32/5

Graphed are f(x) and the normal line:

graph{(y-x^2+x)(-y+1/5x+32/5)=0 [-15.61, 12.86, -1.46, 12.77]}

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