What is the equation of the line tangent to # f(x)=x(x-3)^2 # at # x=2 #?
2 Answers
Explanation:
Find the point the tangent line will intercept:
#f(2)=2(2-3)^2=2(-1)^2=2#
The tangent line will pass through the point
To find the slope of the tangent line, find the value of the derivative at
To find
#f'(x)=(x-3)^2d/dx[x]+xd/dx[(x-3)^2]#
Find the value of each derivative. The second will require a simple application of the chain rule. Alternatively, you could say that
#f'(x)=(x-3)^2(1)+x(2(x-3))#
This can be simplified.
#f'(x)=x^2-6x+9+2x^2-6x#
#f'(x)=3x^2-12x+9#
Note that the derivative also could have been found through distribution of
#f(x)=x(x^2-6x+9)#
#f(x)=x^3-6x^2+9x#
#f'(x)=3x^2-12x+9#
Regardless of how you got there, the derivative is the same. Now that we have the derivative, we can find the slope of the tangent line:
#f'(2)=3(2^2)-12(2)+9=12-24+9=-3#
The tangent line passes through the point
#y-2=-3(x-2)#
or
#y=-3x+8#
Graphed are the original function and its tangent line:
graph{(x(x-3)^2-y)(y+3x-8)=0 [-1, 5, -2.526, 6.364]}
y + 3x - 8 = 0
Explanation:
The equation of the tangent is : y - b = m(x - a )
where m= gradient and (a , b ) a point on the line.
m and (a , b ) are required to be found. The gradient of tangent
is f'(x) and a = 2 . To find b substitute x = 2 into f(x).
Differentiate using
# color(blue)(" product and chain rules ")# f'(x)
# = x d/dx(x-3)^2 + (x-3)^2 d/dx (x) #
# = x [2(x-3) d/dx(x-3)] + (x-3)^2 .1#
# = 2x(x-3) .1 + (x-3)^2 # = (x-3)(2x + x - 3 )= 3 (x-3)(x-1)
now m = f'(2) = 3(2-3)(2-1) = -3
and b = f(2) =
# 2(-1)^2 = 2# equation is : y-2 = -3(x-2)
so y - 2 = -3x + 6
hence y + 3x - 8 = 0
