ClearCCTrue
New member
- Joined
- Feb 8, 2014
- Messages
- 3
The Perimeter of a Isosceles triangle is 6cm. Find the lengths of t he sides of the triangle that maximum the area.
Heres what I tried so far, I drew a triangle with two lengths 'x' and one length 'y', where y is the base.
SO i got the Perimeter equation to be :
6 = 2x + y
y = 6 - 2x
(Since thats the entire base, the base length of one congruent triangle is (3 - x)
Then I proceeded to use pythagorean theorem in order to get the height of one of the congruent triangles
so, x^2 = (3-x)^2 + h^2
h^2 + 9 - 6x + = 0
thus I got h = sqrt(9-6x)
And I know, the area equation being:
A = xh/2
So I plugged the values in:
= x(sqrt(9-6x))/2
= sqrt(9x - 6x^2)/2
= (9x-6x^2)^1/2 (ALl divided by 2)
I Proceeded to derive and set it to zero, but I got a completely different answer from the actual which is '2'.
Any input would be very much appreciated!!!!
Heres what I tried so far, I drew a triangle with two lengths 'x' and one length 'y', where y is the base.
SO i got the Perimeter equation to be :
6 = 2x + y
y = 6 - 2x
(Since thats the entire base, the base length of one congruent triangle is (3 - x)
Then I proceeded to use pythagorean theorem in order to get the height of one of the congruent triangles
so, x^2 = (3-x)^2 + h^2
h^2 + 9 - 6x + = 0
thus I got h = sqrt(9-6x)
And I know, the area equation being:
A = xh/2
So I plugged the values in:
= x(sqrt(9-6x))/2
= sqrt(9x - 6x^2)/2
= (9x-6x^2)^1/2 (ALl divided by 2)
I Proceeded to derive and set it to zero, but I got a completely different answer from the actual which is '2'.
Any input would be very much appreciated!!!!
