Difference between revisions of "1952 AHSME Problems/Problem 33"

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== Solution 1==
 
== Solution 1==
<math>\fbox{}</math>
 
  
 
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Assume that the side length of the square is 4 units. Then the perimeter for both shapes is is 4 * 4 = 16 units. Since the perimeter of a circle is 2πr, then 2πr =16 and r = 8/π, which is about 2.5. The area of a circle is πr^2 so (2.5^2)*π = 6.25π or about 19.6. This is more than the area of the square, which is 4^2 =16. So the answer is <math>\fbox{B}</math>.
Assume that the side length of the square is 4 units. Then the perimeter for both shapes is is 4 *3 = 12 units. Since the perimeter of a circle is 2 pi r, then 2 pi r =12 and r is 12/pi which is about 4. the area of a circle is pi r^2 so 4^2 pi =16 pi or about 48. This is more than the area of the square, which is 4^2 =16. So the answer is B.
 
  
 
== See also ==
 
== See also ==

Revision as of 21:30, 12 April 2020

Problem

A circle and a square have the same perimeter. Then:

$\text{(A) their areas are equal}\qquad\\ \text{(B) the area of the circle is the greater} \qquad\\ \text{(C) the area of the square is the greater} \qquad\\ \text{(D) the area of the circle is } \pi \text{ times the area of the square}\qquad\\ \text{(E) none of these}$

Solution 1

Assume that the side length of the square is 4 units. Then the perimeter for both shapes is is 4 * 4 = 16 units. Since the perimeter of a circle is 2πr, then 2πr =16 and r = 8/π, which is about 2.5. The area of a circle is πr^2 so (2.5^2)*π = 6.25π or about 19.6. This is more than the area of the square, which is 4^2 =16. So the answer is $\fbox{B}$.

See also

1952 AHSC (ProblemsAnswer KeyResources)
Preceded by
Problem 32
Followed by
Problem 34
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All AHSME Problems and Solutions

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