Difference between revisions of "Mock AIME 3 Pre 2005 Problems/Problem 6"

(Solution 2)
(Solution 2)
 
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&= \sum_{n=1}^{9800}(\frac{\sqrt{n+\sqrt{n^2-1}}}{n+\sqrt{n^2-1}})\cdot(\frac{n-\sqrt{n^2-1}}{n-\sqrt{n^2-1}}) \\
 
&= \sum_{n=1}^{9800}(\frac{\sqrt{n+\sqrt{n^2-1}}}{n+\sqrt{n^2-1}})\cdot(\frac{n-\sqrt{n^2-1}}{n-\sqrt{n^2-1}}) \\
 
&= \sum_{n=1}^{9800}(\sqrt{n+\sqrt{n^2-1}})\cdot(\sqrt{n+\sqrt{n^2-1}})^2 \\
 
&= \sum_{n=1}^{9800}(\sqrt{n+\sqrt{n^2-1}})\cdot(\sqrt{n+\sqrt{n^2-1}})^2 \\
&= \sum_{n=1}^{9800}\sqrt{n-\sqrt{n^2-1}}
+
&= \sum_{n=1}^{9800}\sqrt{n-\sqrt{n^2-1}} \\
 
\end{align*}</cmath>
 
\end{align*}</cmath>
 
Now we can assume that
 
Now we can assume that
 
<cmath>\sqrt{n+\sqrt{n^2-1}}=a+b\sqrt{c}</cmath>
 
<cmath>\sqrt{n+\sqrt{n^2-1}}=a+b\sqrt{c}</cmath>
 
<cmath>\sqrt{n-\sqrt{n^2-1}}=a-b\sqrt{c}</cmath>
 
<cmath>\sqrt{n-\sqrt{n^2-1}}=a-b\sqrt{c}</cmath>
for some <math>a</math>, <math>b</math>, <math>c</math>. Then we have
+
for some <math>a</math>, <math>b</math>, <math>c</math>.  
 +
 
 +
Squaring the first equation yields
 +
<cmath>n+\sqrt{n^2-1}=a^2+b^2c+2ab\sqrt{c}</cmath>
 +
which gives the system of equations
 +
<cmath>n=a^2+b^2c</cmath>
 +
<cmath>\sqrt{n^2-1}=2ab\sqrt{c}</cmath>
 +
calling them equations <math>A</math> and <math>B</math>, respectively.
 +
 
 +
Also we have
 +
<cmath>\frac{1}{\sqrt{n+\sqrt{n^2-1}}}=\sqrt{n-\sqrt{n^2-1}}</cmath>
 
<cmath>\frac{1}{a+b\sqrt{c}}=a-b\sqrt{c}</cmath>
 
<cmath>\frac{1}{a+b\sqrt{c}}=a-b\sqrt{c}</cmath>
 
<cmath>a^2-b^2c=1</cmath>
 
<cmath>a^2-b^2c=1</cmath>
 +
which obtains equation <math>C</math>.
 +
 +
Adding equations <math>A</math> and <math>C</math> yields
 +
<cmath>2a^2=n+1</cmath>
 +
<cmath>a=\sqrt{\frac{n+1}{2}}</cmath>
 +
Squaring equation <math>B</math> and substituting yields
 +
<cmath>4a^2b^2c=n^2-1</cmath>
 +
<cmath>2\cdot(n+1)\cdot b^2c=n^2-1</cmath>
 +
<cmath>b^2c=\frac{(n-1)(n+1)}{2\cdot(n+1)}</cmath>
 +
<cmath>b\sqrt{c}=\sqrt{\frac{n-1}{2}}</cmath>
 +
 +
Thus we obtain the telescoping series
 +
<cmath>\begin{align*}
 +
S &= \sum_{n=1}^{9800}a-b\sqrt{c} \\
 +
&= \sum_{n=1}^{9800}\sqrt{\frac{n+1}{2}}-\sqrt{\frac{n-1}{2}} \\
 +
\end{align*}</cmath>
 +
 +
Simplifying the sum we are left with
 +
<cmath>\begin{align*}
 +
S &= -\sqrt{\frac{1}{2}}+\sqrt{\frac{9800}{2}}+\sqrt{\frac{9801}{2}} \\
 +
&= -\frac{\sqrt{2}}{2}+\frac{99\sqrt{2}}{2}+70 \\
 +
&= 70+49\sqrt{2} \\
 +
\end{align*}</cmath>
 +
 +
Thus <math>p+q+r=70+49+2=\boxed{121}</math>.
 +
 +
 +
~ Nafer
  
 
==See Also==
 
==See Also==

Latest revision as of 13:48, 29 November 2019

Problem

Let $S$ denote the value of the sum

\[\sum_{n = 1}^{9800} \frac{1}{\sqrt{n + \sqrt{n^2 - 1}}}\]

$S$ can be expressed as $p + q \sqrt{r}$, where $p, q,$ and $r$ are positive integers and $r$ is not divisible by the square of any prime. Determine $p + q + r$.

Solution

Notice that $\sqrt{n + \sqrt{n^2 - 1}} = \frac{1}{\sqrt{2}}\sqrt{2n + 2\sqrt{(n+1)(n-1)}} = \frac{1}{\sqrt{2}}\left(\sqrt{n+1}+\sqrt{n-1}\right)$. Thus, we have

\[\sum_{n = 1}^{9800} \frac{1}{\sqrt{n + \sqrt{n^2 - 1}}}\] \[= \sqrt{2}\sum_{n = 1}^{9800} \frac{1}{\sqrt{n+1}+\sqrt{n-1}}\] \[= \frac{1}{\sqrt{2}}\sum_{n = 1}^{9800} \left(\sqrt{n+1}-\sqrt{n-1}\right)\]

This is a telescoping series; note that when we expand the summation, all of the intermediary terms cancel, leaving us with $\frac{1}{\sqrt{2}}\left(\sqrt{9801}+\sqrt{9800}-\sqrt{1}-\sqrt{0}\right) = 70 + 49\sqrt{2}$, and $p+q+r=\boxed{121}$.


Solution 2

Simplifying the expression yields \begin{align*} S &= \sum_{n=1}^{9800}\frac{1}{\sqrt{n+\sqrt{n^2-1}}} \\ &= \sum_{n=1}^{9800}\frac{\sqrt{n+\sqrt{n^2-1}}}{n+\sqrt{n^2-1}} \\ &= \sum_{n=1}^{9800}(\frac{\sqrt{n+\sqrt{n^2-1}}}{n+\sqrt{n^2-1}})\cdot(\frac{n-\sqrt{n^2-1}}{n-\sqrt{n^2-1}}) \\ &= \sum_{n=1}^{9800}(\sqrt{n+\sqrt{n^2-1}})\cdot(\sqrt{n+\sqrt{n^2-1}})^2 \\ &= \sum_{n=1}^{9800}\sqrt{n-\sqrt{n^2-1}} \\ \end{align*} Now we can assume that \[\sqrt{n+\sqrt{n^2-1}}=a+b\sqrt{c}\] \[\sqrt{n-\sqrt{n^2-1}}=a-b\sqrt{c}\] for some $a$, $b$, $c$.

Squaring the first equation yields \[n+\sqrt{n^2-1}=a^2+b^2c+2ab\sqrt{c}\] which gives the system of equations \[n=a^2+b^2c\] \[\sqrt{n^2-1}=2ab\sqrt{c}\] calling them equations $A$ and $B$, respectively.

Also we have \[\frac{1}{\sqrt{n+\sqrt{n^2-1}}}=\sqrt{n-\sqrt{n^2-1}}\] \[\frac{1}{a+b\sqrt{c}}=a-b\sqrt{c}\] \[a^2-b^2c=1\] which obtains equation $C$.

Adding equations $A$ and $C$ yields \[2a^2=n+1\] \[a=\sqrt{\frac{n+1}{2}}\] Squaring equation $B$ and substituting yields \[4a^2b^2c=n^2-1\] \[2\cdot(n+1)\cdot b^2c=n^2-1\] \[b^2c=\frac{(n-1)(n+1)}{2\cdot(n+1)}\] \[b\sqrt{c}=\sqrt{\frac{n-1}{2}}\]

Thus we obtain the telescoping series \begin{align*} S &= \sum_{n=1}^{9800}a-b\sqrt{c} \\ &= \sum_{n=1}^{9800}\sqrt{\frac{n+1}{2}}-\sqrt{\frac{n-1}{2}} \\ \end{align*}

Simplifying the sum we are left with \begin{align*} S &= -\sqrt{\frac{1}{2}}+\sqrt{\frac{9800}{2}}+\sqrt{\frac{9801}{2}} \\ &= -\frac{\sqrt{2}}{2}+\frac{99\sqrt{2}}{2}+70 \\ &= 70+49\sqrt{2} \\ \end{align*}

Thus $p+q+r=70+49+2=\boxed{121}$.


~ Nafer

See Also

Mock AIME 3 Pre 2005 (Problems, Source)
Preceded by
Problem 5
Followed by
Problem 7
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