the bicycle race
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The Bicycle Race. Dr. Spackman October 21, 2013. Goal: Find the “ideal” value of k (Carol’s speed) so that the support car can catch her and, at the instant the support car is alongside, their speeds are the same. Support car position. Carol’s position. We want to find k so that . - PowerPoint PPT PresentationTRANSCRIPT
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The Bicycle RaceDr. Spackman
October 21, 2013
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Goal: Find the “ideal” value of k (Carol’s speed) so that the support car can catch her and, at the instant the support car is
alongside, their speeds are the same.
Carol’s position
Support car position
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We want to find k so that
In other words:
and
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We want to find k so that
In other words:
and
Substituting the value of k given by the second equation into the first, rearranging and factoring, yields:
and thus
Since t=0 corresponds to k=0 (in which case Carol is not racing at all), the onlymeaningful solution is t=5, in which case k=25/3.
![Page 5: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/5.jpg)
We want to find k so that
In other words:
and
Substituting the value of k given by the second equation into the first, rearranging and factoring, yields:
and thus
Since t=0 corresponds to k=0 (in which case Carol is not racing at all), the onlymeaningful solution is t=5, in which case k=25/3.
Therefore, in order for the support car to catch Carol at the instant they have thesame speed, Carol must be traveling at 25/3 meters per second, and the drinkhand-off occurs exactly 5 seconds after Carol passes the refreshment station.
![Page 6: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/6.jpg)
We want to find k so that
In other words:
and
Substituting the value of k given by the second equation into the first, rearranging and factoring, yields:
and thus
Since t=0 corresponds to k=0 (in which case Carol is not racing at all), the onlymeaningful solution is t=5, in which case k=25/3.
Therefore, in order for the support car to catch Carol at the instant they have thesame speed, Carol must be traveling at 25/3 meters per second, and the drinkhand-off occurs exactly 5 seconds after Carol passes the refreshment station.
NOTE: The cubic polynomial has a double root at t=0.We’ll address that later.
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Just for fun, let’s find out what would happen if Carol were travelling faster or slower than the ideal speed of 25/3 m/sec. by solving the equation C(t)=S(t) for t.
Rearranging
produces
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Just for fun, let’s find out what would happen if Carol were travelling faster or slower than the ideal speed of 25/3 m/sec. by solving the equation C(t)=S(t) for t.
Rearranging
produces
Applying the quadratic formula yields solutions
![Page 9: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/9.jpg)
Just for fun, let’s find out what would happen if Carol were travelling faster or slower than the ideal speed of 25/3 m/sec. by solving the equation C(t)=S(t) for t.
Rearranging
produces
Applying the quadratic formula yields solutions
Therefore, if k>25/3, there are no times (after t=0) that the support car and Carol are in the same position—Carol is travelling too fast for the support car to catch up!And if 0<k<25/3, there are two times when Carol and the support car are in the same position; in other words if Carol is going too slowly the support car passes her(going too fast to safely pass the drink), and then Carol passes the support car (whichis now travelling too slowly to safely pass the drink).
![Page 10: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/10.jpg)
Just for fun, let’s find out what would happen if Carol were travelling faster or slower than the ideal speed of 25/3 m/sec. by solving the equation C(t)=S(t) for t.
Rearranging
produces
Applying the quadratic formula yields solutions
Therefore, if k>25/3, there are no times (after t=0) that the support car and Carol are in the same position—Carol is travelling too fast for the support car to catch up!And if 0<k<25/3, there are two times when Carol and the support car are in the same position; in other words if Carol is going too slowly the support car passes her(going too fast to safely pass the drink), and then Carol passes the support car (whichis now travelling too slowly to safely pass the drink).
NOTE: When k=25/3, the equation has a double root of t=5. An explanation will follow.
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Let’s see what these findings look like graphically. First, here is the support car’s position function graphed with Carol’s position
function at her ideal speed of 25/3 m/sec.
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Next, here is what the two position graphs look like when Carol’s speed is 10 meters per second.
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And here is the support car’s position function graphed with Carol’s position function, assuming her speed is lower than 25/3
—here her speed is 7 meters per second.
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Finally, there were two instances where we encountered a cubic polynomial with a double root: the support car’s position function
and the cubic polynomial equation expressing the times that Carol and the supportcar meet when Carol is travelling at ideal speed
From the first, we can deduce that both S(0)=0 and S’(0)=0.From the second we deduce that both C(5)=S(5) and C’(5)=S’(5).
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Finally, there were two instances where we encountered a cubic polynomial with a double root: the support car’s position function
and the cubic polynomial equation expressing the times that Carol and the supportcar meet when Carol is travelling at ideal speed
From the first, we can deduce that both S(0)=0 and S’(0)=0.From the second we deduce that both C(5)=S(5) and C’(5)=S’(5).
In general, if P(x) is a cubic polynomial with a double root at x=a, then bothP(a)=0 and P’(a)=0.Proof:
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Finally, there were two instances where we encountered a cubic polynomial with a double root: the support car’s position function
and the cubic polynomial equation expressing the times that Carol and the supportcar meet when Carol is travelling at ideal speed
From the first, we can deduce that both S(0)=0 and S’(0)=0.From the second we deduce that both C(5)=S(5) and C’(5)=S’(5).
In general, if P(x) is a cubic polynomial with a double root at x=a, then bothP(a)=0 and P’(a)=0.Proof: A cubic polynomial with a double root at x=a must have the form
![Page 17: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/17.jpg)
Finally, there were two instances where we encountered a cubic polynomial with a double root: the support car’s position function
and the cubic polynomial equation expressing the times that Carol and the supportcar meet when Carol is travelling at ideal speed
From the first, we can deduce that both S(0)=0 and S’(0)=0.From the second we deduce that both C(5)=S(5) and C’(5)=S’(5).
In general, if P(x) is a cubic polynomial with a double root at x=a, then bothP(a)=0 and P’(a)=0.Proof: A cubic polynomial with a double root at x=a must have the form
Then by the Product Rule,
![Page 18: The Bicycle Race](https://reader035.vdocument.in/reader035/viewer/2022062305/568162a1550346895dd31ad4/html5/thumbnails/18.jpg)
Finally, there were two instances where we encountered a cubic polynomial with a double root: the support car’s position function
and the cubic polynomial equation expressing the times that Carol and the supportcar meet when Carol is travelling at ideal speed
From the first, we can deduce that both S(0)=0 and S’(0)=0.From the second we deduce that both C(5)=S(5) and C’(5)=S’(5).
In general, if P(x) is a cubic polynomial with a double root at x=a, then bothP(a)=0 and P’(a)=0.Proof: A cubic polynomial with a double root at x=a must have the form
Then by the Product Rule,
Since both P(x) and P’(x) have (x-a) as a factor, they both have x=a as a root.
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Got it!