A rectangle is inscribed with its base on the x-axis and its upper corners on the parabola #y=6-x^2#. What are the dimensions of such a rectangle with the greatest possible area? thanks for any help!?

1 Answer
Noah G
Jun 19, 2018

Height: #4# units
Width #2sqrt(2)#

Explanation:

Start by sketching #y=6 -x^2#. Then draw a rectangle beneath it. You will notice that the width is #2x# and the height is #6-x^2#. Area is given by length times width, so the area function will be #A=2x(6-x^2) =12x - 2x^3#.

Now you differentiate to find the maximum.

#A’ =12 -6x^2#

Find critical numbers by setting #A’ # to #0#.

#x =+-sqrt(2)#

The derivative is negative at #x=2# and positive at #x=1#, which justifies that the rectangle with width of #sqrt(2)# has maximal area.

The height will be #y(sqrt(2)) = 6-(sqrt(2))^2) = 4#

Hopefully this helps!

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