Learning Outcomes
- Find the surface area of a solid of revolution
The concepts we used to find the arc length of a curve can be extended to find the surface area of a surface of revolution. Surface area is the total area of the outer layer of an object. For objects such as cubes or bricks, the surface area of the object is the sum of the areas of all of its faces. For curved surfaces, the situation is a little more complex. Let [latex]f(x)[/latex] be a nonnegative smooth function over the interval [latex]\left[a,b\right].[/latex] We wish to find the surface area of the surface of revolution created by revolving the graph of [latex]y=f(x)[/latex] around the [latex]x\text{-axis}[/latex] as shown in the following figure.
As we have done many times before, we are going to partition the interval [latex]\left[a,b\right][/latex] and approximate the surface area by calculating the surface area of simpler shapes. We start by using line segments to approximate the curve, as we did earlier in this section. For [latex]i=0,1,2\text{,…},n,[/latex] let [latex]P=\left\{{x}_{i}\right\}[/latex] be a regular partition of [latex]\left[a,b\right].[/latex] Then, for [latex]i=1,2\text{,…},n,[/latex] construct a line segment from the point [latex]({x}_{i-1},f({x}_{i-1}))[/latex] to the point [latex]({x}_{i},f({x}_{i})).[/latex] Now, revolve these line segments around the [latex]x\text{-axis}[/latex] to generate an approximation of the surface of revolution as shown in the following figure.
Notice that when each line segment is revolved around the axis, it produces a band. These bands are actually pieces of cones (think of an ice cream cone with the pointy end cut off). A piece of a cone like this is called a frustum of a cone.
To find the surface area of the band, we need to find the lateral surface area, [latex]S,[/latex] of the frustum (the area of just the slanted outside surface of the frustum, not including the areas of the top or bottom faces). Let [latex]{r}_{1}[/latex] and [latex]{r}_{2}[/latex] be the radii of the wide end and the narrow end of the frustum, respectively, and let [latex]l[/latex] be the slant height of the frustum as shown in the following figure.
We know the lateral surface area of a cone is given by
where [latex]r[/latex] is the radius of the base of the cone and [latex]s[/latex] is the slant height (see the following figure).
Since a frustum can be thought of as a piece of a cone, the lateral surface area of the frustum is given by the lateral surface area of the whole cone less the lateral surface area of the smaller cone (the pointy tip) that was cut off (see the following figure).
The cross-sections of the small cone and the large cone are similar triangles, so we see that
Solving for [latex]s,[/latex] we get
Then the lateral surface area (SA) of the frustum is
Let’s now use this formula to calculate the surface area of each of the bands formed by revolving the line segments around the [latex]x\text{-axis}\text{.}[/latex] A representative band is shown in the following figure.
Note that the slant height of this frustum is just the length of the line segment used to generate it. So, applying the surface area formula, we have
Now, as we did in the development of the arc length formula, we apply the Mean Value Theorem to select [latex]{x}_{i}^{*}\in \left[{x}_{i-1},{x}_{i}\right][/latex] such that [latex]{f}^{\prime }({x}_{i}^{*})=\frac{(\text{Δ}{y}_{i})}{\text{Δ}x}.[/latex] This gives us
Furthermore, since [latex]f(x)[/latex] is continuous, by the Intermediate Value Theorem, there is a point [latex]{x}_{i}^{**}\in \left[{x}_{i-1},{x}_{i}\right][/latex] such that [latex]f({x}_{i}^{**})=\left(\frac{1}{2}\right)\left[f({x}_{i-1})+f({x}_{i})\right],[/latex] so we get
Then the approximate surface area of the whole surface of revolution is given by
This almost looks like a Riemann sum, except we have functions evaluated at two different points, [latex]{x}_{i}^{*}[/latex] and [latex]{x}_{i}^{**},[/latex] over the interval [latex]\left[{x}_{i-1},{x}_{i}\right].[/latex] Although we do not examine the details here, it turns out that because [latex]f(x)[/latex] is smooth, if we let [latex]n\to \infty ,[/latex] the limit works the same as a Riemann sum even with the two different evaluation points. This makes sense intuitively. Both [latex]{x}_{i}^{*}[/latex] and [latex]{x}_{i}^{**}[/latex] are in the interval [latex]\left[{x}_{i-1},{x}_{i}\right],[/latex] so it makes sense that as [latex]n\to \infty ,[/latex] both [latex]{x}_{i}^{*}[/latex] and [latex]{x}_{i}^{**}[/latex] approach [latex]x.[/latex] Those of you who are interested in the details should consult an advanced calculus text.
Taking the limit as [latex]n\to \infty ,[/latex] we get
As with arc length, we can conduct a similar development for functions of [latex]y[/latex] to get a formula for the surface area of surfaces of revolution about the [latex]y\text{-axis}.[/latex] These findings are summarized in the following theorem.
Surface Area of a Surface of Revolution
Let [latex]f(x)[/latex] be a nonnegative smooth function over the interval [latex]\left[a,b\right].[/latex] Then, the surface area of the surface of revolution formed by revolving the graph of [latex]f(x)[/latex] around the [latex]x[/latex]-axis is given by
Similarly, let [latex]g(y)[/latex] be a nonnegative smooth function over the interval [latex]\left[c,d\right].[/latex] Then, the surface area of the surface of revolution formed by revolving the graph of [latex]g(y)[/latex] around the [latex]y\text{-axis}[/latex] is given by
Example: Calculating the Surface Area of a Surface of Revolution 1
Let [latex]f(x)=\sqrt{x}[/latex] over the interval [latex]\left[1,4\right].[/latex] Find the surface area of the surface generated by revolving the graph of [latex]f(x)[/latex] around the [latex]x\text{-axis}.[/latex] Round the answer to three decimal places.
Try It
Let [latex]f(x)=\sqrt{1-x}[/latex] over the interval [latex]\left[0,\frac{1}{2}\right].[/latex] Find the surface area of the surface generated by revolving the graph of [latex]f(x)[/latex] around the [latex]x\text{-axis}.[/latex] Round the answer to three decimal places.
Watch the following video to see the worked solution to the above Try It.
Example: Calculating the Surface Area of a Surface of Revolution 2
Let [latex]f(x)=y=\sqrt[3]{3x}.[/latex] Consider the portion of the curve where [latex]0\le y\le 2.[/latex] Find the surface area of the surface generated by revolving the graph of [latex]f(x)[/latex] around the [latex]y\text{-axis}.[/latex]
Try It
Let [latex]g(y)=\sqrt{9-{y}^{2}}[/latex] over the interval [latex]y\in \left[0,2\right].[/latex] Find the surface area of the surface generated by revolving the graph of [latex]g(y)[/latex] around the [latex]y\text{-axis}.[/latex]
Watch the following video to see the worked solution to the above Try It.