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How do you solve #k^ { 2} + 23k + 12= - 120#?

1 Answer

Hamza The Syrian

Mar 27, 2018

#k=-11#
#or#
#k=-12#

Explanation:

#k^2+23k+12=-120#

#k^2+23k+12+120=0#

#k^2+23k+132=0#

#(k+11)(k+12)=0#

#k+11=0# ==> #k=-11#
#or#
#k+12=0# ==> #k=-12#

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