Difference between revisions of "1996 AHSME Problems/Problem 13"
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− | If Sunny runs at a rate of <math>s</math> for <math>h</math>. Then the distance covered is <math>s*h</math>. Now we know that moonbeam runs <math>m</math> times as fast than sunny So moonebeam runs at the rate of <math>ms</math>. Now moonbeam gave sunny a haeadstart of <math>h</math> meters . So he will catch on Sunny at the rate of <math>s(m-1</math>)<math> . At time </math>\frac{h}{m-1}<math> Moon beam will catch on Sunny.Now we are asked how much in meters he have to run to catch on Sunny.That is </math>\frac{hm}{m-1}$. | + | If Sunny runs at a rate of <math>s</math> for <math>h</math>. Then the distance covered is <math>s*h</math>. Now we know that moonbeam runs <math>m</math> times as fast than sunny So moonebeam runs at the rate of <math>ms</math>. Now moonbeam gave sunny a haeadstart of <math>h</math> meters . So he will catch on Sunny at the rate of <math>s(m-1</math>)<math> . At time </math>\frac{h}{m-1}<math> |
+ | Moon beam will catch on Sunny.Now we are asked how much in meters he have to run to catch on Sunny.That is | ||
+ | </math>\frac{hm}{m-1}$. | ||
===Solution 2=== | ===Solution 2=== |
Revision as of 15:21, 9 June 2019
Problem
Sunny runs at a steady rate, and Moonbeam runs times as fast, where is a number greater than 1. If Moonbeam gives Sunny a head start of meters, how many meters must Moonbeam run to overtake Sunny?
Solution
Solution 1
If Sunny runs at a rate of for . Then the distance covered is . Now we know that moonbeam runs times as fast than sunny So moonebeam runs at the rate of . Now moonbeam gave sunny a haeadstart of meters . So he will catch on Sunny at the rate of )\frac{h}{m-1}\frac{hm}{m-1}$.
Solution 2
Note that is a length, while is a dimensionless constant. Thus, and cannot be added, and and are not proper answers, since they both contain .
Thus, we only concern ourselves with answers .
If is a very, very large number, then Moonbeam will have to run just over meters to reach Sunny. Or, in the language of limits:
, where is the distance Moonbeam needs to catch Sunny at the given rate ratio of .
In option , when gets large, the distance gets large. Thus, is not a valid answer.
In option , when gets large, the distance approaches , not as desired. This is not a valid answer. (In fact, this is the distance Sunny runs, which does approach as Moonbeam gets faster and faster.)
In option , when gets large, the ratio gets very close to, but remains just a tiny bit over, the number . Thus, when you multiply it by , the ratio in option gets very close to, but remains just a tiny bit over, . Thus, the best option out of all the choices is .
Solution 3
Assume that Sunny originally runs at a unit speed, and thus Moonbeam runs at a rate of .
Choose a new reference frame where Sunny is still, and Moonbeam runs at a rate of . In this new reference frame, the distance to be run is still .
Moonbeam runs this distance in a time of
Returning to the original reference frame, if Moonbeam runs for seconds, Moonbeam will cover a distance of , which is option .
See also
1996 AHSME (Problems • Answer Key • Resources) | ||
Preceded by Problem 12 |
Followed by Problem 14 | |
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All AHSME Problems and Solutions |
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