Difference between revisions of "2021 JMPSC Invitationals Problems/Problem 8"

 
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We let <math>a=(x+y)</math> and <math>b=(20x+21y)</math> to get the new system of equations <cmath>a^2b=12 \qquad (1)</cmath> <cmath>ab^2=18 \qquad(2).</cmath> Multiplying these two, we have <math>(ab)^3=12 \cdot 18</math> or <cmath>ab=6 \qquad (3).</cmath> We divide <math>(3)</math> by <math>(1)</math> to get <math>a=2</math> and divide <math>(2)</math> by <math>(1)</math> to get <math>b=3</math>. Recall that <math>a=x+y=2</math> and <math>b=20x+21y=3</math>. Solving the system of equations <cmath>x+y=2</cmath> <cmath>20x+21y=3,</cmath> we get <math>y=-37</math> and <math>x=39</math>. This means that <cmath>21x+20y=20x+21y+x-y=3+39-(-37)=\boxed{79}.</cmath> ~samrocksnature
 
We let <math>a=(x+y)</math> and <math>b=(20x+21y)</math> to get the new system of equations <cmath>a^2b=12 \qquad (1)</cmath> <cmath>ab^2=18 \qquad(2).</cmath> Multiplying these two, we have <math>(ab)^3=12 \cdot 18</math> or <cmath>ab=6 \qquad (3).</cmath> We divide <math>(3)</math> by <math>(1)</math> to get <math>a=2</math> and divide <math>(2)</math> by <math>(1)</math> to get <math>b=3</math>. Recall that <math>a=x+y=2</math> and <math>b=20x+21y=3</math>. Solving the system of equations <cmath>x+y=2</cmath> <cmath>20x+21y=3,</cmath> we get <math>y=-37</math> and <math>x=39</math>. This means that <cmath>21x+20y=20x+21y+x-y=3+39-(-37)=\boxed{79}.</cmath> ~samrocksnature
  
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==Solution 2==
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Each number shares are factor of <math>6</math>, which means <math>(x+y)(20x+21y)=6</math>, or <math>x+y=2</math> and <math>20x+21y=3</math>. We see <math>y=-37</math> and <math>x=39</math>, so <math>39(21)-20(37)=\boxed{79}</math>
  
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~Geometry285
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== Solution 3 ==
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Multiplying the equations together, we get
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<cmath>(x+y)^3(20x+21y)^3=2^3 \cdot 3^3 \implies (x+y)(20x+21y)=6</cmath>Therefore,
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<cmath>x+y=2 \implies 20x+20y=40</cmath><cmath>20x+21y=3</cmath>Subtracting the equations, we get <math>y=-37</math> and <math>x=39</math>, therefore, <math>21 (39) - 20 (37) =\boxed{79}</math>
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- kante314 -
  
 
==See also==
 
==See also==

Latest revision as of 09:07, 12 July 2021

Problem

Let $x$ and $y$ be real numbers that satisfy \[(x+y)^2(20x+21y) = 12\] \[(x+y)(20x+21y)^2 = 18.\] Find $21x+20y$.

Solution

We let $a=(x+y)$ and $b=(20x+21y)$ to get the new system of equations \[a^2b=12 \qquad (1)\] \[ab^2=18 \qquad(2).\] Multiplying these two, we have $(ab)^3=12 \cdot 18$ or \[ab=6 \qquad (3).\] We divide $(3)$ by $(1)$ to get $a=2$ and divide $(2)$ by $(1)$ to get $b=3$. Recall that $a=x+y=2$ and $b=20x+21y=3$. Solving the system of equations \[x+y=2\] \[20x+21y=3,\] we get $y=-37$ and $x=39$. This means that \[21x+20y=20x+21y+x-y=3+39-(-37)=\boxed{79}.\] ~samrocksnature

Solution 2

Each number shares are factor of $6$, which means $(x+y)(20x+21y)=6$, or $x+y=2$ and $20x+21y=3$. We see $y=-37$ and $x=39$, so $39(21)-20(37)=\boxed{79}$

~Geometry285

Solution 3

Multiplying the equations together, we get \[(x+y)^3(20x+21y)^3=2^3 \cdot 3^3 \implies (x+y)(20x+21y)=6\]Therefore, \[x+y=2 \implies 20x+20y=40\]\[20x+21y=3\]Subtracting the equations, we get $y=-37$ and $x=39$, therefore, $21 (39) - 20 (37) =\boxed{79}$

- kante314 -

See also

  1. Other 2021 JMPSC Invitationals Problems
  2. 2021 JMPSC Invitationals Answer Key
  3. All JMPSC Problems and Solutions

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