Mathematics

# how i can solve this square of binomial (3z+2k)2?

### Answers

#### Jadeandrews260

4 years ago

You can solve this by the 1st identity which is (a+b)=a^2+b^2+2ab
(3z)^2+(2k)^2+2*3z*2k
=9z^2+4k^2+12kz

#### Gracie216

4 years ago

$(3z+2k)^2=(3z)^2+2\cdot 3z\cdot 2k +(2k)^2 = 9z^2 + 12kz +4k^2$