How do you find the slope of the tangent line for f(x) = 3x^2f(x)=3x2 at (1,3)?

1 Answer
Jim H
Aug 29, 2015

The slope is 66.

Explanation:

I will assume that you have not yet been taught the rules (shortcuts) for finding derivatives. So, we will use a definition.

The slope of the line tangent to the graph of the function ff at the point (a, f(a))(a,f(a)) can be defined in several ways (or using several notations). Two of the more common are:

lim_(xrarra) (f(x)-f(a))/(x-a) " " OR " " lim_(hrarr0) (f(a+h)-f(a))/h

(Each author,teacher,presenter needs to choose one definition as the 'official' definition. Many will immediately mention other possibilities as 'equivalents'.)

For this question we have f(x) = 3x^2 and a=1

We'll find:

lim_(xrarra) (f(x)-f(a))/(x-a)
(Note that substitution gets us the indeterminate form 0/0. We have some work to do.)

lim_(xrarr1) (f(x)-f(1))/(x-1) = lim_(xrarr1) (3x^2-3)/(x-1)

= lim_(xrarr1) (3(x^2-1))/(x-1)

= lim_(xrarr1) (3(x+1)(x-1))/(x-1)

The expression whose limit we want is equal to 3(x+1) for all x other than x=1. The limit doesn't care what happens when x is equal to 1, it wants to onow what happens when x is close to 1, so we get:

lim_(xrarr1) (3(x+1)(x-1))/(x-1) = lim_(xrarr1) 3(x+1) = 6

The slope of the tangent we were asked about is 6.

Short method

For f(x) = 3x^2, we get f'(x) = 3*2 x^(2-1) = 6x

The slope of the tangent at 1 is f'(1) = 6(1) =6

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