How do you solve $5^21 times 4^11 = 2 times 10^n$ ?

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How do you solve $5^21 times 4^11 = 2 times 10^n$ ?

3 Answers

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Answer 1 · 2016-06-28T07:50:45

$n=21$

Explanation:

As $5^21xx4^11=2xx10^n$ hence

$21log5+11log4=log2+n$

Hence $n=21log5+11log2^2-log2$

= $21log5+22log2-log2$

= $21log5+21log2$

= $21(log5+log2)$

= $21log10=21$

Answer 2 · 2016-06-28T07:51:05

$n = 21$

Explanation:

$5^21 * 4^11 = 2 * 10^n$

$(10/2)^21 * (2^2)^11 = 2 * 10^n$

$10^{21} * color{red}{(1/2)^21 * (2)^22} = 2 * 10^n$

$10^{21} * 2 = 2 * 10^n$

$n = 21$

Answer 3 · 2016-06-28T10:43:10

$n=21$

Explanation:

$5^{21}cdot 4^{11} = 2 cdot 10^n$
$5^{10}cdot 5^{10}cdot 4^{10} cdot 5 cdot 4 = 2 cdot 10^n$
$(5 cdot 5 cdot 4)^10cdot 5 cdot 4 = 2 cdot 10^n$
$100^10cdot 20 = 2 cdot 10^n$
$10^{20}cdot 20 = 2 cdot 10^n$
$2cdot 10^{21} = 2 cdot 10^n$
$n = 21$

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How do you solve $5^21 times 4^11 = 2 times 10^n$ ?

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How do you solve 5^21 times 4^11 = 2 times 10^n5^21 times 4^11 = 2 times 10^n?

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How do you solve $5^21 times 4^11 = 2 times 10^n$ ?