How do you solve #10^(3x)+7=19#?

1 Answer
Aug 24, 2016

#x=(log12)/3#

Explanation:

The first thing we do is subtract 7 from both sides:

#10^(3x)=12#

Now we ad logarithms to both sides:

#log 10^(3x)=log12#

One of the properties of logarithms is that we can pull the exponent to the front, like this:

#3x*log10=log12#

Whenever you see a #log# without a base it is base 10 and one of the properties of logarithms is that any #log# of a number equal to its base is equal to 1.
#log_x x =1#

So #log_10 10 = 1#
leaving us with:

#3x=log 12#

so

#x=(log 12)/3#