What is the value of n in the equation 0 = 18 + 128n2

Question

asked Dec 9, 2019 19.6k views

1 Answer

GeekLei · Answer 1 · 2019-12-13T19:32:00+0000

Consider the equation:

0= 18+128n^2

Subtracting '18' from both the sides of the equation, we get

0-18 = 18+128n^2-18

-18 = 128n^2

Dividing by '128' from both the sides of the equation, we get

(-18)/(128)= (128n^2)/(128)

$(-9)/(64)= {n^2}$

$n=\sqrt{(-9)/(64)}$

and

So, the values of 'n' are
n = (3i)/(8) and
n= (-3i)/(8) .