MATH 221

Arun Ram
Department of Mathematics and Statistics
University of Melbourne
Parkville, VIC 3010 Australia
aram@unimelb.edu.au

Last updated: 6 September 2014

Lecture 26

Computing Areas and Volumes

(1)	Carefully draw the region.
(2)	Slice it up; draw a typical slice.
(3)	Find the volume of a slice.
(4)	Add up the volumes of the slices with an integral.

Typical slices might look like:

\begin{matrix}  \end{matrix}

Calculate the area of the region bounded by the parabolas $y = x^{2}$ and $y^{2} = x .$ $\begin{matrix} \end{matrix} \begin{matrix} \end{matrix}$ Slice: $\begin{matrix} \end{matrix}$
Area of Slice: $L d x$
Add slices from $x = 0$ to $x = 1 .$ $\begin{matrix} \int_{x = 0}^{x = 1} L d x & = & \int_{x = 0}^{x = 1} (y_{upper} - y_{lower}) d x \\ = & \int_{x = 0}^{x = 1} (\sqrt{x} - x^{2}) d x \\ = & \frac{2}{3} x^{\frac{3}{2}} - \frac{x^{3}}{3} |_{x = 0}^{x = 1} \\ = & (\frac{2}{3} 1^{\frac{3}{2}} - \frac{1}{3}) - (\frac{2}{3} 0^{\frac{3}{2}} - \frac{0^{3}}{3}) \\ = & \frac{2}{3} - \frac{1}{3} = \frac{1}{3} . \end{matrix}$

Find the area of the region bounded by $y = - 1,$ $y = 2,$ $x = y^{3}$ and $x = 0 .$ $\begin{matrix} \end{matrix}$ $\begin{matrix} \begin{matrix} Type 1 slice: \begin{matrix} \end{matrix} \\ Area of slice: L_{1} d y \\ Add slices from y = 0 to y = 2 . \end{matrix} & \begin{matrix} Type 2 slice: \begin{matrix} \end{matrix} \\ Area of slice: L_{2} d y \\ Add slices from y = - 1 to y = 0 . \end{matrix} \end{matrix}$ $\begin{matrix} \int_{y = 0}^{y = 2} L_{1} d y + \int_{y = - 1}^{y = 0} L_{2} d y & = & \int_{y = 0}^{y = 2} x d y + \int_{y = - 1}^{y = 0} (- x) d y \\ = & \int_{y = 0}^{y = 2} y^{3} d y + \int_{y = - 1}^{y = 0} - y^{3} d y \\ = & \frac{y^{4}}{4} |_{y = 0}^{y = 2} + \frac{- y^{4}}{4} |_{y = - 1}^{y = 0} \\ = & (\frac{2^{4}}{4} - \frac{0}{4}) + (- \frac{0^{4}}{4} - (\frac{- {(- 1)}^{4}}{4})) \\ = & 2^{2} + \frac{1}{4} \\ = & 4 \frac{1}{4} . \end{matrix}$

Find the volume of a sphere of radius $r .$ $\begin{matrix} \end{matrix} \begin{matrix} Slice: \begin{matrix} \end{matrix} \\ Volume of slice: π R^{2} d y \\ Add slices from y = - r to y = r \end{matrix}$ $\begin{matrix} Volume of sphere & = & \int_{y = - r}^{y = 3} π R^{2} d y \\ = & \int_{y = - r}^{y = r} π x^{2} d y \\ = & \int_{y = - r}^{y = r} π (r^{2} - y^{2}) d y \\ = & π (r^{2} y - \frac{y^{3}}{3}) |_{y = - r}^{y = r} \\ = & π (r^{2} \cdot r - \frac{r^{3}}{3}) - π (r^{2} (- r) - \frac{{(- r)}^{3}}{3}) \\ = & π \frac{2}{3} r^{3} + π r^{3} - \frac{π r^{3}}{3} \\ = & \frac{2}{3} π r^{3} + \frac{2}{3} π r^{3} \\ = & \frac{4}{3} π r^{3} . \end{matrix}$

Compute $\int_{- a}^{a} \sqrt{a^{2} - x^{2}} d x .$

If $x = a sin θ,$ then $\begin{matrix} \int_{- a}^{a} \sqrt{a^{2} - x^{2}} d x & = & \int_{- a}^{a} \sqrt{a^{2} - a^{2} {sin}^{2} θ} d x \\ = & \int_{x = - a}^{x = a} \sqrt{a^{2} {cos}^{2} θ} d x \\ = & \int_{x = - a}^{x = a} a cos θ d x \\ = & \int_{x = - a}^{x = a} a cos θ \frac{d x}{d θ} d θ \\ = & \int_{x = - a}^{x = a} a cos θ a cos θ d θ \\ = & \int_{x = - a}^{x = a} a^{2} {cos}^{2} θ d θ \\ = & \int_{x = - a}^{x = a} \frac{1}{2} a^{2} ({cos}^{2} θ + {cos}^{2} θ) d θ \\ = & \int_{x = - a}^{x = a} \frac{1}{2} a^{2} ({cos}^{2} θ + 1 - {sin}^{2} θ) d θ \\ = & \int_{x = - a}^{x = a} \frac{1}{2} a^{2} ({cos}^{2} θ - {sin}^{2} θ + 1) d θ \\ = & \int_{x = - a}^{x = a} \frac{1}{2} a^{2} (cos 2 θ + 1) d θ \\ = & \frac{1}{2} a^{2} (\frac{sin 2 θ}{2} + θ) |_{x = - a}^{x = a} \\ = & \frac{1}{2} a^{2} (\frac{sin 2 θ}{2} + θ) |_{sin θ = - 1}^{sin θ = 1} \\ = & \frac{1}{2} a^{2} (\frac{sin 2 θ}{2} + θ) |_{θ = - \frac{π}{2}}^{θ = \frac{π}{2}} \\ = & \frac{1}{2} a^{2} (\frac{sin π}{2} + \frac{π}{2}) - \frac{1}{2} a^{2} (\frac{sin (- π)}{2} - \frac{π}{2}) \\ = & \frac{1}{2} a^{2} \frac{π}{2} - \frac{1}{2} a^{2} (- \frac{π}{2}) \\ = & \frac{π a^{2}}{4} . \end{matrix}$

Compute $\int_{x = - a}^{x = a} \sqrt{a^{2} - x^{2}} d x .$ $\begin{matrix} \end{matrix} \begin{matrix} Slice: \begin{matrix} \end{matrix} \\ Area of slice: L d x \\ Area slices from x = - a to x = a . \end{matrix}$ $\begin{matrix} \frac{π a^{2}}{2} & = & Area of semicircle \\ = & \int_{x = - a}^{x = a} L d x \\ = & \int_{x = - a}^{x = a} y d x \\ = & \int_{x = - a}^{x = a} \sqrt{a^{2} - x^{2}} d x . \end{matrix}$ So $\frac{π a^{2}}{2} = \int_{x = - a}^{x = a} \sqrt{a^{2} - x^{2}} d x .$

Find the volume of a right circular cone of height $h$ and radius $r .$ $\begin{matrix} \end{matrix} \begin{matrix} Slice: \begin{matrix} \end{matrix} \\ Volume of slice: 2 π R H d x \\ Add slices from x = 0 to x = r \end{matrix}$ $\begin{matrix} \int_{x = 0}^{x = r} 2 π R H d x & = & \int_{x = 0}^{x = r} 2 π x y d x \\ = & \int_{x = 0}^{x = r} 2 π x (- \frac{h}{r} x + h) d x \\ = & \int_{x = 0}^{x = r} (- \frac{2 π h}{r} x^{2} + 2 π h x) d x \\ = & - \frac{2 π h}{r} \frac{x^{3}}{3} + π h x^{2} |_{x = 0}^{x = r} \\ = & (- \frac{2 π h}{r} \frac{r^{3}}{3} + π h r^{2}) - (- 0 + 0) \\ = & - \frac{2}{3} π r^{2} h + π r^{2} h \\ = & \frac{1}{3} π r^{2} h . \end{matrix}$

Notes and References

These are a typed copy of Lecture 26 from a series of handwritten lecture notes for the class MATH 221 given on November 8, 2000.

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