How do you solve ${2.4}^{3 x + 1} = 9$ $2.4^(3x+1)= 9$ ?

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How do you solve ${2.4}^{3 x + 1} = 9$ $2.4^(3x+1)= 9$ ?

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Answer 1 · 2015-09-12T14:22:38

$x = \frac{log 9 - log 8}{6 log 2} = 0, 02832$ $x = (log9-log8)/(6log2)=0,02832$

Explanation:

Using laws of exponents and indices you may write the equation as
$2^{1} \cdot 2^{6 x} \cdot 2^{2} = 3^{2}$ $2^1*2^(6x)*2^2=3^2$
$therefore2^(6x+3)=3^2$
$therefore2^(6x)= (3^2)/(2^3)=9/8$
Now taking the logarithm on both sides and sing laws of logs we get
$6xlog2=log9-log8$
$therefore x = (log9-log8)/(6log2)=0,02832$

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How do you solve ${2.4}^{3 x + 1} = 9$ $2.4^(3x+1)= 9$ ?

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