How do you solve: $-2x^2 + 8 = 0#?

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How do you solve: $-2x^2 + 8 = 0#?

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Answer 1 · 2017-03-24T01:54:34

See the entire solution process below:

Explanation:

First, subtract $8$ $color(red)(8)$ from each side of the equation to isolate the $x$ $x$ term while keeping the equation balanced:

$- 2 x^{2} + 8 - 8 = 0 - 8$ $-2x^2 + 8 - color(red)(8) = 0 - color(red)(8)$

$- 2 x^{2} + 0 = - 8$ $-2x^2 + 0 = -8$

$- 2 x^{2} = - 8$ $-2x^2 = -8$

Next, divide each side of the equation by $- 2$ $color(red)(-2)$ to isolate $x^{2}$ $x^2$ while keeping the equation balanced:

$\frac{- 2 x^{2}}{- 2} = \frac{- 8}{- 2}$ $(-2x^2)/color(red)(-2) = (-8)/color(red)(-2)$

$(color(red)(cancel(color(black)(-2)))x^2)/cancel(color(red)(-2)) = 4$

$x^2 = 4$

Now, take the square root of each side of the equation to solve for $x$ while keeping the equation balanced. Remember, the square root of a number produces both a negative and positive result:

$sqrt(x^2) = sqrt(4)$

$x = +-2$

Answer 2 · 2017-03-24T01:55:29

$x = 2 ,-2$

Explanation:

$-2 x^2 + 8 =0$

subtract $-8$ to both sides
$-2 x^2 + 8 - 8=0 -8$
$-2 x^2 = -8$

divide $-23$ to both sides
$(-2 x^2) /-2 = -8/-2$
$x^2 = 4$

square root both sides
$sqrt (x^2) = sqrt 4$
$x = +-2$

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How do you solve: $-2x^2 + 8 = 0#?

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