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THE CALCULUS CRUSADERSAccumulation Functions: The Beetles

Question

.:. THE QUESTION .:.

E(t) is the rate of which the beetles rush into

the chamber, whereas L(t) is the rate of which the beetles rush out of the chamber. Both E(t) and L(t) are measured in beetles per minute.


At t = 0, Jamie hears the noise of the beetles. The beetles start rushing in and out of the chamber at t = 1.84.

However, Bench estimates that everyone must escape the chamber until t = 15.17.

(After t = 15.17, the beetles would have filled up the chamber completely.)


a) How many beetles have entered the chamber at t = 10?

b) With all these beetles filling up the chamber,

Bench, Jamie, and Zeph have limited space. 3

m3 of the chamber is filled up for every beetle

that enters the chamber until t = 10. After t =

10, 5 m3 of the chamber is filled up for every

beetle that enters the chamber. How many cubic

metres of the chamber would be filled up with

beetles at t = 15.17?


c) Let H(t) for 1.84 ≤ t ≤ 15.17. Determine H’(10) and explain the meaning of H’(10).

d) At what time, during 1.84 ≤ t ≤ 15.17, will H(t) reach a maximum?

PART AHow many beetles have entered the chamber at t

= 10?

.:. THE SOLUTION .:.

E(t) is measured in beetles per minute. To obtain an answer in beetles, we multiply beetles per minute by a change in time. This is the definition of an integral. This way of thinking is called a unit analysis.


We know the domain is 1.84 ≤ t ≤ 15.17. We

know the upper limit of what we are

integrating is t = 10.

PART BWith all these beetles filling up the chamber, Bench, Jamie, and Zeph have limited space. 3 m3 of the chamber is filled up for every beetle that enters the chamber until t = 10. After t = 10, 5 m3 of the chamber is filled up for every beetle that enters the chamber. How many cubic metres of the chamber would be filled up with beetles at t = 15.17?


NOTE THAT:

“3 m3 of the chamber is filled up for every beetle that enters the chamber until t = 10. After t = 10, 5 m3 of the chamber is filled up for every beetle that enters the chamber.”

.:. THE SOLUTION .:.Because of the statement written in the question, the rates of the chamber filling up with beetles are two different rates. Therefore, we integrate the function E(t) from the intervals where beetles would accumulate at the rate of 3m3 and 5m3.

PART CLet H(t) for 1.84 ≤ t ≤ 15.17. Determine H’(10) and explain the meaning of H’(10).


H(t) is defined as the integral of the difference of L(x) and E(x).

(Integrating beetles per minutes gives us beetles as discussed in Part A.)


We are to determine H’(t). In this case, we

are differentiating an anti derivative. (Note

the "∫".) Differentiation and anti

differentiation can be seen as inverse

processes of each other; The derivative of x2

is 2x; an antiderivative of 2x is x2.


Not only are we differentiating an

antiderivative, we’re differentiating an

accumulation function, a function that

measures the accumulating area

under a graph.


The derivative of an accumulation function is the original function, by The Second Fundamental Theorem of Calculus.

The Second Fundamental Theorem of Calculus:

If f is continuous in a closed interval, A’(x) = f(x), where A(x) is the accumulation function and f(x) is the original function.


We can see there is a function within a function in s(t). (Note there are two variables, t and x.)

To differentiate a function within a function, we use The Chain Rule.


The Chain Rule: [fg]’(x) = f’(g(x))g’(x)


Since H’(t) is a transcendental function, a function that contains an exponential function and a trigonometric function, we cannot apply the algebra we know to solve for the roots of v’(t), so we have to use our calculator and solve numerically.


H’(10) is the rate at which the number of beetles in the chamber is changing. The number of beetles in the chamber is increasing at approximately beetles per minute.

PART DAt what time, during 1.84 ≤ t ≤ 15.17, will H(t) reach a maximum?


By The First Derivative Test, the critical point of a derivative indicates the original function has a local extrema.

.:. THE SOLUTION .:. The First Derivative Test If c is a critical number and if f’ changes

sign at x = c, then f has a local minimum at x = c if f’ is

negative to the left of c and positive to the right of c;

f has a local maximum at c if f’ is positive to the left of c and negative to the right of c.


Using our calculator’s features to determine roots and intersections, we find that t = 1.8400082 minutes.


By The Extreme Value Theorem, the endpoints are considered local extrema too. (In this case, the critical number found previously is also an endpoint.)

The Extreme Value Theorem If the function f is continuous on the

interval [a, b], then there exist numbers c and d in [a,b] such that for all x in [a, b], f(c) ≤ f(x) and f(d) ≥ f(x).


Looking at all the local extrema, we find that H(15.17) yields the largest number, the absolute maximum.

AA

AA

H!!!! B

EETLES

!

beetles! run!

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