2 Answers

Greenflow · Answer 1 · 2017-12-23T02:38:52+0000

Answer:

x = 3, -3, 2i and -2i where i is an imaginary number.

Explanation:

We can express the equation
x^4-5x^2-36=0 as
(x^2)^2-5x^2-36=0 , and we can make
y = x^2 . So, we have the equation
y^2-5y-36=0 ; to find the solutions of this last equation, we should find two numbers such that these numbers sum up to -5 and multiplied result in -36, these numbers are -9 and 4. Therefore
is equivalent to
(y-9)(y+4)=0 , but
y = x^2 , so,
(x^2-9)(x^2+4)=0 , i.e.,
(x+3)(x-3)(x^2+4)=0 . This last product is equal to zero when x = 3, x = -3 or
x^2=-4 ,
$x=\pm√(-4)$ , i.e.,
$x=\pm2i$ . Therefore the solutions of the equation
x^4-5x^2-36=0 are x = 3, -3, 2i and -2i where i is an imaginary number.