Answer:
- Point of Inflection: Does not Exist
- f(x) is concave up when x∈(-∞,-6)
- f(x) is concave down when x∈(-6, ∞)
Explanation
We are to determine the intervals on which the function [TeX]f(x)=\frac{-7x^2-7}{x+6}[/TeX] is concave up or down and find the points of inflection.
A function f(x) is concave up in the intervals for which the second derivative of the function [TeX]\frac{d^{2}}{dx^{2}} > 0 [/TeX].
A function f(x) is concave down in the intervals for which the second derivative of the function [TeX]\frac{d^{2}}{dx^{2}} < 0 [/TeX].
Given [TeX]f(x)=\frac{-7x^2-7}{x+6}[/TeX]
We need to solve for the second derivative of the function.
The first derivative:
Using Quotient Rule:
[TeX]f^{'}(x)=\frac{14x(x+6)-(7x^2-7)}{(x+6)^{2}} [/TeX].
[TeX]f^{'}(x)=\frac{7x^2+84x+7}{(x+6)^{2}} [/TeX].
The Second derivative:
Similarly applying quotient rule:
[TeX]f^{''}(x )=\frac{(x+6)^{2}(14x+84)-( 7x^2+84x+7)(2x+12)}{(x+6)^{4}} [/TeX]
[TeX]f^{''}(x)=\frac{14(x+6) (x+6) (x+6) -14(x+6)(x^2+12x+1) }{(x+6)^{4}} [/TeX]
[TeX]f^{''}(x )=\frac{14(x+6) [(x+6) (x+6) -x^2+12x+1)] }{(x+6)^{4}} [/TeX]
[TeX]f^{''}(x)=\frac{490 }{(x+6)^{3}} [/TeX]
Now [TeX]f^{''}(x)=\frac{490 }{(x+6)^{3}} =0[/TeX] is 490, thus [TeX]f^{''}(x) =0[/TeX] does not have a solution,
However, we determine the point where [TeX]f^{''}(x) [/TeX] is undefined. This point is x=-6.
In the Interval, (-∞,-6), f(x) is concave Up and in the Interval (-6, ∞), f(x) is concave down. It has no Inflection point.