How do you solve #6+2(3j-2)=4(1+j)#? Algebra Linear Equations Multi-Step Equations with Like Terms 1 Answer Don't Memorise Feb 17, 2016 #j=1# Explanation: #6 + 2 (3j-2) = 4 (1+j)# #6 + 2 xx (3j) + 2 xx (-2) = 4 xx (1)+ 4 xx (j)# #6 + 6j - 4 = 4 + 4j# #2 + 6j = 4 + 4j# #6j - 4j = 4-2 # #2j = 2 # #j=2/2# #j=1# Answer link Related questions How do you solve multi step equations by combining like terms? How do you solve multi step equation #w + w + 12 = 40#? How do you solve #3p + 4p + 37 = 79#? How do you solve for f: #f-1+2f+f-3=-4#? How do you combine like terms? How do you combine like terms for #-7mn-2mn^2-2mn + 8#? How do you combine like terms for #3x^2 + 21x + 5x + 10x^2#? What is a term? How do you solve #3v+5-7v+18=17#? How do you solve for x in #5x + 7x = 72#? See all questions in Multi-Step Equations with Like Terms Impact of this question 1421 views around the world You can reuse this answer Creative Commons License