Question

How do you solve `-2k ^ { 2} + 8= 0`?

Answer 1

`k=+2 or -2`

Explanation:

`-2k^2+8=0`

`-2k^2+8-8=0-8`

`-2k^2=-8`

`((-2k^2)/-2)=-8/-2`

`k^2=4`

`sqrt(k^2)= +-sqrt(4)`

`k=+-2`

Answer 2

`k=+-2`

Explanation:

`"subtract 8 from both sides of the equation"`

`rArr-2k^2=-8`

`"divide both sides by "-2`

`rArrk^2=4`

`color(blue)"take the square root of both sides"`

`rArrk=+-sqrt4larrcolor(blue)"note plus or minus"`

`rArrk=+-2`

Answer 3

`k=-2,2`

Explanation:

Solve:

`-2k^2+8=0`

Subtract `8` from both sides.

`-2k^2=-8`

Divide both sides by `-2`.

`k^2=(-8)/(-2)`

`k^2=8/2`

`k^2=4`

Take the square root of both sides.

`sqrt(k^2)=+-sqrt4`

Apply rule `sqrt(a^2)=a`.

`k=+-2`