Calculus

course Phy 232

Question: `q001. The graph of a certain function is a smooth curve passing through the points (3, 5), (7, 17) and (10, 29).

Between which two points do you think the graph is steeper, on the average?

Why do we say 'on the average'?

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Your solution:

The slope between the points (3,5) and (7,17) is 3 and the slope between (7,17) and (10,29) is 4. Therefore, on average, the graph is steeper between the second two points. On average must be said because we do not know the instantaneous slope at each point. Therefore, while the steepness of the graph may be greater at certain points in the first interval, the steepness of the graph over the second interval is greater on average.

confidence rating #$&* 3

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Given Solution:

`aSlope = rise / run.

Between points (7, 17) and (10, 29) we get rise / run = (29 - 17) / (10 - 7) =12 / 3 = 4.

The slope between points (3, 5) and (7, 17) is 3 / 1. (17 - 5) / (7 -3) = 12 / 4 = 3.

The segment with slope 4 is the steeper. The graph being a smooth curve, slopes may vary from point to point. The slope obtained over the interval is a specific type of average of the slopes of all points between the endpoints.

2. Answer without using a calculator: As x takes the values 2.1, 2.01, 2.001 and 2.0001, what values are taken by the expression 1 / (x - 2)?

1. As the process continues, with x getting closer and closer to 2, what happens to the values of 1 / (x-2)?

2. Will the value ever exceed a billion? Will it ever exceed one trillion billions?

3. Will it ever exceed the number of particles in the known universe?

4. Is there any number it will never exceed?

5. What does the graph of y = 1 / (x-2) look like in the vicinity of x = 2?

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Your solution:

As x takes on the respective values, the function equals 10, 100, 1000, and 10000. As x becomes closer and closer to 2 the value of the function becomes greater and greater. The value will eventually exceed a billion, one trillion billion, and the number of known particles in the universe. In fact, there is no number that the function will not exceed. In the vicinity of x=2, the graph becomes a nearly vertical line that approaches x=2 but never reaches it. This happens because at x=2 the denominator becomes 0 and it is impossible to divide by zero.

confidence rating #$&* 3

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Given Solution:

`aFor x = 2.1, 2.01, 2.001, 2.0001 we see that x -2 = .1, .01, .001, .0001. Thus 1/(x -2) takes respective values 10, 100, 1000, 10,000.

It is important to note that x is changing by smaller and smaller increments as it approaches 2, while the value of the function is changing by greater and greater amounts.

As x gets closer in closer to 2, it will reach the values 2.00001, 2.0000001, etc.. Since we can put as many zeros as we want in .000...001 the reciprocal 100...000 can be as large as we desire. Given any number, we can exceed it.

Note that the function is simply not defined for x = 2. We cannot divide 1 by 0 (try counting to 1 by 0's..You never get anywhere. It can't be done. You can count to 1 by .1's--.1, .2, .3, ..., .9, 1. You get 10.You can do similar thing for .01, .001, etc., but you just can't do it for 0).

As x approaches 2 the graph approaches the vertical line x = 2; the graph itself is never vertical. That is, the graph will have a vertical asymptote at the line x = 2. As x approaches 2, therefore, 1 / (x-2) will exceed all bounds.

Note that if x approaches 2 through the values 1.9, 1.99, ..., the function gives us -10, -100, etc.. So we can see that on one side of x = 2 the graph will approach +infinity, on the other it will be negative and approach -infinity.

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Self-critique (if necessary): I failed to address how the graph behaves at it approaches two from the positive side. However, I now see how the graph would behave differently because the expression x-2 is negative rather than positive as it approaches from the right side.

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Self-critique rating #$&* 3

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Question: `q003. One straight line segment connects the points (3,5) and (7,9) while another connects the points (10,2) and (50,4). From each of the four points a line segment is drawn directly down to the x axis, forming two trapezoids. Which trapezoid has the greater area? Try to justify your answer with something more precise than, for example, 'from a sketch I can see that this one is much bigger so it must have the greater area'.

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Your solution:

The second trapezoid formed by the points (10,2) and (50,4) will have a greater area because the horizontal distance between the points is 40. This value is clearly much greater than the distance of 4 between the first two points. Therefore, while the first two points have greater vertical distances, the far greater horizontal distance between the second two points will cause the second trapezoid to have a greater area.

confidence rating #$&* 3

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Given Solution:

`aYour sketch should show that while the first trapezoid averages a little more than double the altitude of the second, the second is clearly much more than twice as wide and hence has the greater area.

To justify this a little more precisely, the first trapezoid, which runs from x = 3 to x = 7, is 4 units wide while the second runs from x = 10 and to x = 50 and hence has a width of 40 units. The altitudes of the first trapezoid are 5 and 9,so the average altitude of the first is 7. The average altitude of the second is the average of the altitudes 2 and 4, or 3. So the first trapezoid is over twice as high, on the average, as the first. However the second is 10 times as wide, so the second trapezoid must have the greater area.

This is all the reasoning we need to answer the question. We could of course multiply average altitude by width for each trapezoid, obtaining area 7 * 4 = 28 for the first and 3 * 40 = 120 for the second.However if all we need to know is which trapezoid has a greater area, we need not bother with this step.

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Self-critique (if necessary): OK

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Self-critique rating #$&* OK

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Question: `q004. If f(x) = x^2 (meaning 'x raised to the power 2') then which is steeper, the line segment connecting the x = 2 and x = 5 points on the graph of f(x), or the line segment connecting the x = -1 and x = 7 points on the same graph? Explain the basisof your reasoning.

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Your solution:

At the x values of 2, 5, -1, and 7, the y values are 4, 25, 1, and 49 respectively. Using the formula for slope, the steepness of the graph between 2 and 5 is found to be 7 while it is 6 between -1 and 7. Therefore, the line segment between 2 and 5 has a greater steepness.

confidence rating #$&* 3

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Given Solution:

`aThe line segment connecting x = 2 and the x = 5 points is steeper: Since f(x) = x^2, x = 2 gives y = 4 and x = 5 gives y = 25. The slope between the points is rise / run = (25 - 4) / (5 - 2) = 21 / 3 = 7.

The line segment connecting the x = -1 point (-1,1) and the x = 7 point (7,49) has a slope of (49 - 1) / (7 - -1) = 48 / 8 = 6.

The slope of the first segment is greater.

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Self-critique (if necessary): OK

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Self-critique rating #$&* OK

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Question: `q005. Suppose that every week of the current millenium you go to the jewler and obtain a certain number of grams of pure gold, which you then place in an old sock and bury in your backyard.Assume that buried gold lasts a long, long time ( this is so), that the the gold remains undisturbed (maybe, maybe not so), that no other source adds gold to your backyard (probably so), and that there was no gold in your yard before..

1. If you construct a graph of y = the number of grams of gold in your backyard vs. t = the number of weeks since Jan. 1, 2000, with the y axis pointing up and the t axis pointing to the right, will the points on your graph lie on a level straight line, a rising straight line, a falling straight line, a line which rises faster and faster, a line which rises but more and more slowly, a line which falls faster and faster, or a line which falls but more and more slowly?

2. Answer the same question assuming that every week you bury 1 more gram than you did the previous week.

{}3. Answer the same question assuming that every week you bury half the amount you did the previous week.

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Your solution:

For the initial given situation, the graph will be a rising straight line. However, if each week you bury 1 more gram of gold than the previous week, the graph will become a line that rises faster and faster because the amount of buried gold is no longer increasing at a constant rate, but rather at an increasing rate over time. If each week the amount of gold buried is decreased by half, then the line will rise but more and more slowly. This happens for the same reason as the previous situation. The buried gold is no longer increasing at a constant rate, but now it is increasing at a decreasing rate over time.

confidence rating #$&* 3

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Given Solution:

`a1. If it's the same amount each week it would be a straight line.

2. Buying gold every week, the amount of gold will always increase. Since you buy more each week the rate of increase will keep increasing. So the graph will increase, and at an increasing rate.

3. Buying gold every week, the amount of gold won't ever decrease. Since you buy less each week the rate of increase will just keep falling. So the graph will increase, but at a decreasing rate. This graph will in fact approach a horizontal asymptote, since we have a geometric progression which implies an exponential function.

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Self-critique (if necessary): OK

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Self-critique rating #$&* OK

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Question: `q006. Suppose that every week you go to the jewler and obtain a certain number of grams of pure gold, which you then place in an old sock and bury in your backyard. Assume that buried gold lasts a long, long time, that the the gold remains undisturbed, and that no other source adds gold to your backyard.

1. If you graph the rate at which gold is accumulating from week to week vs. tne number of weeks since Jan 1, 2000, will the points on your graph lie on a level straight line, a rising straight line, a falling straight line, a line which rises faster and faster, a line which rises but more and more slowly, a line which falls faster and faster, or a line which falls but more and more slowly?

2. Answer the same question assuming that every week you bury 1 more gram than you did the previous week.

3. Answer the same question assuming that every week you bury half the amount you did the previous week.

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Your solution:

In the first situation, the graph will be a level straight line because it is essentially a graph of the first derivative of the amount of gold v. time graph. Therefore, because the amount of gold v. time graph is a rising straight line, the slope is constant and the first derivative graph will have a slope of zero. In the second situation, the graph will be a rising straight line because once again it is a derivative graph of the graph described in the previous question whose slope is increasing at a constant rate. Therefore, the slope of the derivative graph will be constant and the graph will be a straight line. The third situation is the same as the second. However, this graph will be a falling straight line because the slope of the original graph is decreasing at a constant rate rather than increasing.

confidence rating #$&* 3

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Given Solution:

`aThis set of questions is different from the preceding set. This question now asks about a graph of rate vs. time, whereas the last was about the graph of quantity vs. time.

Question 1: This question concerns the graph of the rate at which gold accumulates, which in this case, since you buy the same amount eact week, is constant. The graph would be a horizontal straight line.

Question 2: Each week you buy one more gram than the week before, so the rate goes up each week by 1 gram per week. You thus get a risingstraight line because the increase in the rate is the same from one week to the next.

Question 3. Since half the previous amount will be half of a declining amount, the rate will decrease while remaining positive, so the graph remains positive as it decreases more and more slowly. The rate approaches but never reaches zero.

STUDENT COMMENT: I feel like I am having trouble visualizing these graphs because every time for the first one I picture an increasing straight line

INSTRUCTOR RESPONSE: The first graph depicts the amount of gold you have in your back yard. The second depicts the rate at which the gold is accumulating, which is related to, but certainly not the same as, the amount of gold.

For example, as long as gold is being added to the back yard, the amount will be increasing (though not necessarily on a straight line). However if less and less gold is being added every year, the rate will be decreasing (perhaps along a straight line, perhaps not).

FREQUENT STUDENT RESPONSE

This is the same as the problem before it. No self-critique is required.

INSTRUCTOR RESPONSE

This question is very different that the preceding, and in a very significant and important way. You should have

self-critiqued; you should go back and insert a self-critique on this very important question and indicate your insertion by

preceding it with ####. The extra effort will be more than worth your trouble.

These two problems go to the heart of the Fundamental Theorem of Calculus, which is the heart of this course, and the extra effort will be well worth it in the long run. The same is true of the last question in this document.

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Self-critique (if necessary): For the third situation, I did not take into account that the amount of gold is not decreasing at a constant rate. Therefore, the derivative graph will not be a straight line.

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Self-critique rating #$&* 3

``q007. If the depth of water in a container is given, in centimeters, by 100 - 2 t + .01 t^2, where t is clock time in seconds, then what are the depths at clock times t = 30, t = 40 and t = 60? On the average is depth changing more rapidly during the first time interval or the second?

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Your solution:

Time Depth

30 49

40 36

60 16

Interval 1 = (49-36) / (30-40) = -1.3 cm / sec

Interval 2 = (36-16) / (40-60) = -1 cm / sec

The depth is changing more rapidly during the first interval.

confidence rating #$&* 3

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Given Solution:

`aAt t = 30 we get depth = 100 - 2 t + .01 t^2 = 100 - 2 * 30 + .01 * 30^2 = 49.

At t = 40 we get depth = 100 - 2 t + .01 t^2 = 100 - 2 * 40 + .01 * 40^2 = 36.

At t = 60 we get depth = 100 - 2 t + .01 t^2 = 100 - 2 * 60 + .01 * 60^2 = 16.

49 cm - 36 cm = 13 cm change in 10 sec or 1.3 cm/s on the average.

36 cm - 16 cm = 20 cm change in 20 sec or 1.0 cm/s on the average.

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Self-critique (if necessary): OK

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Self-critique rating #$&* OK

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Question: `q008. If the rate at which water descends in a container is given, in cm/s, by 10 - .1 t, where t is clock time in seconds, then at what rate is water descending when t = 10, and at what rate is it descending when t = 20? How much would you therefore expect the water level to change during this 10-second interval?

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Your solution:

At t=10 the rate would be 10-.1*10=9 cm / s and at t=20 the rate would be 10-.1*20=8 cm / s. It can be assumed that the rate over the 10 second interval would simply be the average of the two rates, or 8.5 cm / s. Therefore, the level would decrease by 85 cm.

confidence rating #$&* 3

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Given Solution:

`aAt t = 10 sec the rate function gives us 10 - .1 * 10 = 10 - 1 = 9, meaning a rate of 9 cm / sec.

At t = 20 sec the rate function gives us 10 - .1 * 20 = 10 - 2 = 8, meaning a rate of 8 cm / sec.

The rate never goes below 8 cm/s, so in 10 sec the change wouldn't be less than 80 cm.

The rate never goes above 9 cm/s, so in 10 sec the change wouldn't be greater than 90 cm.

Any answer that isn't between 80 cm and 90 cm doesn't fit the given conditions..

The rate change is a linear function of t. Therefore the average rate is the average of the two rates, or 9.5 cm/s.

The average of the rates is 8.5 cm/sec. In 10 sec that would imply a change of 85 cm.

STUDENT RESPONSES

The following, or some variation on them, are very common in student comments. They are both very good questions. Because of the importance of the required to answer this question correctly, the instructor will typically request for a revision in response to either student response:

• I don't understand how the answer isn't 1 cm/s. That's the difference between 8 cm/s and 9 cm/s.

• I don't understand how the answer isn't 8.5 cm/s. That's the average of the 8 cm/s and the 9 cm/s.

INSTRUCTOR RESPONSE

A self-critique should include a full statement of what you do and do not understand about the given solution. A phrase-by-phrase analysis of the solution is not unreasonable (and would be a good idea on this very important question), though it wouldn't be necessary in most situations.

An important part of any self-critique is a good question, and you have asked one. However a self-critique should if possible go further. I'm asking that you go back and insert a self-critique on this very important question and indicate your insertion by preceding it with ####, before submitting it. The extra effort will be more than worth your trouble.

This problem, along with questions 5 and 6 of this document, go to the heart of the Fundamental Theorem of Calculus, which is the heart of this course, and the extra effort will be well worth it in the long run.

You should review the instructions for self-critique, provided at the link given at the beginning of this document.

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Self-critique (if necessary): OK

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Self-critique rating #$&* OK

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