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Euc20191/Sub-Problem 2

Revision as of 11:32, 13 October 2025 by Yuhao2012 (talk | contribs)
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Problem

What integer $a$ satisfies $3<\frac{24}{a}<4$?

Solution

If $a=6$, then $\frac{24}{6}=4$ and if $a=8$, then $\frac{24}{8}=3$. So, $a$ has to be between $6$ and $8$, and therefore, it has to be $\boxed{7}$.

~Yuhao2012

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