We start with an easy problem. An object travels in a straight line at a constant velocity of 5 ft/s for 10 seconds. How far away from its starting point is the object?
We approach this problem with the familiar “Distance Rate Time” equation. In this case, Distance = 5ft/s 10s 50 feet.
It is interesting to note that this solution of 50 feet can be represented graphically. Consider Figure 5.2.1, where the constant velocity of 5ft/s is graphed on the axes. Shading the area under the line from to gives a rectangle with an area of 50 square units; when one considers the units of the axes, we can say this area represents 50 ft.
Now consider a slightly harder situation (and not particularly realistic): an object travels in a straight line with a constant velocity of 5ft/s for 10 seconds, then instantly reverses course at a rate of 2ft/s for 4 seconds. (Since the object is traveling in the opposite direction when reversing course, we say the velocity is a constant ft/s.) How far away from the starting point is the object — what is its displacement?
Here we use “Distance Rate Time + Rate Time,” which is
Hence the object is 42 feet from its starting location.
We can again depict this situation graphically. In Figure 5.2.2 we have the velocities graphed as straight lines on and , respectively. The displacement of the object is
“Area above the -axis Area below the -axis,”
which is easy to calculate as feet.
Now consider a more difficult problem.
The velocity of an object moving straight up/down under the acceleration of gravity is given as , where time is given in seconds and velocity is in ft/s. When , the object had a height of 0 ft.
What was the initial velocity of the object?
What was the maximum height of the object?
What was the height of the object at time ?
SolutionIt is straightforward to find the initial velocity; at time , ft/s.
To answer questions about the height of the object, we need to find the object’s position function . This is an initial value problem, which we studied in the previous section. We are told the initial height is 0, i.e., . We know . To find , we find the indefinite integral of :
Since , we conclude that and .
To find the maximum height of the object, we need to find the maximum of . Recalling our work finding extreme values, we find the critical points of by setting its derivative equal to 0 and solving for :
(Notice how we ended up just finding when the velocity was 0ft/s.) The first derivative test shows this is a maximum, so the maximum height of the object is found at
The height at time is now straightforward to compute: it is ft.
While we have answered all three questions, let’s look at them again graphically, using the concepts of area that we explored earlier.
Figure 5.2.3 shows a graph of on axes from to . It is again straightforward to find . How can we use the graph to find the maximum height of the object?
Recall how in our previous work that the displacement of the object (in this case, its height) was found as the area under the velocity curve, as shaded in the figure. Moreover, the area between the curve and the -axis that is below the -axis counted as “negative” area. That is, it represents the object coming back toward its starting position. So to find the maximum distance from the starting point — the maximum height — we find the area under the velocity line that is above the -axis, i.e., from to . This region is a triangle; its area is
which matches our previous calculation of the maximum height.
Finally, to find the height of the object at time , we calculate the total signed area under the velocity function from to . This signed area is equal to , the displacement (i.e., signed distance) from the starting position at to the position at time . That is,
Displacement = Area above the -axis Area below -axis.
The regions are triangles, and we find
This also matches our previous calculation of the height at .
Notice how we answered each question in this example in two ways. Our first method was to manipulate equations using our understanding of antiderivatives and derivatives. Our second method was geometric: we answered questions looking at a graph and finding the areas of certain regions of this graph.
The above example does not prove a relationship between area under a velocity function and displacement, but it does indicate that there may be a relationship. Section 5.4 will fully establish fact that the area under a velocity function is displacement.
While Figure 5.2.2 shows the graph of a function that has a jump discontinuity, we will now focus on functions that are continuous. Given a graph of a continuous function , we will find that there is great use in computing the area between the curve and the -axis. Because of this, we need to define some terms. The total signed area from to under a continuous function is
(area under and above the -axis on )
(area above and under the -axis on ).
Let be continuous on a closed interval . The definite integral of on is the total signed area of on , denoted
where and are the bounds of integration.
By our definition, the definite integral gives the “signed area under .” We usually drop the word “signed” when talking about the definite integral, and simply say the definite integral gives “the area under ” or, more commonly, “the area under the curve.”
The previous section introduced the indefinite integral, which is related to antiderivatives. We have now defined the definite integral, which relates to areas under a curve. The two are very much related, as we’ll see when we learn the Fundamental Theorem of Calculus in Section 5.4. Recall that earlier we said that the “” symbol was an “elongated S” that represented finding a “sum.” In the context of the definite integral, this notation makes a bit more sense, as we are adding up areas under the function .
We practice using this notation.
Consider the function given in Figure 5.2.4. Find:
Solution
is the area under on the interval . This region is a triangle, so the area is .
represents the area of the triangle found under the -axis on . The area is ; since it is found under the -axis, this is “negative area.” Therefore .
is the total signed area under on . This is .
is the area under on . This is sketched in Figure 5.2.5. Again, the region is a triangle, with height 5 times that of the height of the original triangle. Thus the area is
is the area under on the “interval” . This describes a line segment, not a region; it has no width. Therefore the area is 0.
This example illustrates some of the properties of the definite integral, given in Theorem 5.2.1.
So far, when we have computed a definite integral , we have required that . In practice, it is sometimes convenient to be able to compute for . To do so, we introduce the convention that for any and , . It will be clear why this makes sense after we introduce Riemann sums.
Let and be continuous on a closed interval that contains the values , , and , and let be a constant. The following hold:
We will justify these properties after introducing Riemann sums. For now, we note that properties 1 and 5 are illustrated in Example 5.2.2 and property 2 is our convention from above. To see why property 3 makes sense geometrically, consider the figure below:
Property 3 says that the total area under this curve should be the sum of the area under the curve from to and the area under the curve from to .
What if the picture were like the following?
Then we have
and we can apply property 2.
Consider the graph of a function shown in Figure 5.2.6. Answer the following: ††margin:
Which value is greater: or ?
Is greater or less than 0?
Which value is greater: or ?
Solution
has a positive value (since the area is above the -axis) whereas has a negative value. Hence is bigger.
is the total signed area under between and . Since the region below the -axis looks to be larger than the region above, we conclude that the definite integral has a value less than 0.
Note how the second integral has the bounds “reversed.” Therefore represents a positive number, greater than the area described by the first definite integral. Hence is greater.
The area definition of the definite integral allows us to use geometry to compute the definite integral of some simple functions.
Evaluate the following definite integrals:
Solution
It is useful to sketch the function in the integrand, as shown in Figure 5.2.7(a). We see we need to compute the areas of two regions, which we have labeled and . Both are triangles, so the area computation is straightforward:
Region lies under the -axis, hence it is counted as negative area (we can think of the triangle’s height as being “”), so
Recognize that the integrand of this definite integral describes a half circle, as sketched in Figure 5.2.7(b), with radius 3. Thus the area is:
Consider the graph of a velocity function of an object moving in a straight line, given in Figure 5.2.8, where the numbers in the given regions gives the area of that region. Assume that the definite integral of a velocity function gives displacement. Find the maximum speed of the object and its maximum displacement from its starting position.
SolutionSince the graph gives velocity, finding the maximum speed is simple: it looks to be 15ft/s.
At time , the displacement is 0; the object is at its starting position. At time , the object has moved backward 11 feet. Between times and , the object moves forward 38 feet, bringing it into a position 27 feet forward of its starting position. From to the object is moving backwards again, hence its maximum displacement is 27 feet from its starting position.
We can also analyze the displacement by drawing the path of the particle’s location as time varies, as in Figure 5.2.9.
The object starts at the origin, and moves to the left with a negative velocity 11 units. It then reverses direction and moves to the right with a positive velocity 38 units, arriving at 27. Finally, it reverses direction again and moves to the left with a negative velocity 11 units, ending at 26.
Watch the video:
Definite Integral as Area 2 — Breaking Up the Region from https://youtu.be/Z7uyQjcFSy4
In our examples, we have either found the areas of regions that have nice geometric shapes (such as rectangles, triangles and circles) or the areas were given to us. Consider Figure 5.2.10, where a region below is shaded. What is its area? The function is relatively simple, yet the shape it defines has an area that is not simple to find geometrically.
In the next section we will explore how to find the areas of such regions.
What is “total signed area”?
What is “displacement”?
What is ?
Give a single definite integral that has the same value as
.
In Exercises 5–10, a graph of a function is given. Using the geometry of the graph, evaluate the definite integrals.
In Exercises 11–14, a graph of a function is given; the numbers inside the shaded regions give the area of that region. Evaluate the definite integrals using this area information.
In Exercises 15–16, a graph of the velocity function of an object moving in a straight line is given. Answer the questions based on that graph.
In Exercises 19–22, let
and
Use these values to evaluate the given definite integrals.
Find non-zero values for and such that
In Exercises 23–26, let
and
Use these values to evaluate the given definite integrals.
Look at signed areas to show that for any continuous function and any and where , we have that .
In Exercises 29–32, evaluate the given indefinite integral.