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Volume Integrals

A volume integral takes the form

$\displaystyle \int\!\int\!\int_V f(x,y,z)\,dV,$ (A.98)

where $ V$ is some volume, and $ dV = dx \,dy \,dz$ is a small volume element. The volume element is sometimes written $ d^{\,3}{\bf r}$ , or even $ d\tau$ .

As an example of a volume integral, let us evaluate the center of gravity of a solid pyramid. Suppose that the pyramid has a square base of side $ a$ , a height $ a$ , and is composed of material of uniform density. Let the centroid of the base lie at the origin, and let the apex lie at $ (0,\,0,\,a)$ . By symmetry, the center of mass lies on the line joining the centroid to the apex. In fact, the height of the center of mass is given by

$\displaystyle \overline{z} = \left. \int\!\int\!\int z\,dV\right/ \int\!\int\!\int dV.$ (A.99)

The bottom integral is just the volume of the pyramid, and can be written

$\displaystyle \int\!\int\!\int dV$ $\displaystyle = \int_0^a dz \int_{-(a-z)/2}^{(a-z)/2} dy\int_{-(a-z)/2}^{(a-z)/2} dx= \int_0^a (a-z)^2\,dz$    
  $\displaystyle =\int_0^a (a^{\,2}-2\,a\,z+z^{\,2})\,dz = \left[a^{\,2}\,z-a\,z^{\,2}+z^{\,3}/3\right]_0^a= \frac{1}{3}\,a^{\,3}.$ (A.100)

Here, we have evaluated the $ z$ -integral last because the limits of the $ x$ - and $ y$ - integrals are $ z$ -dependent. The top integral takes the form

$\displaystyle \int\!\int\!\int z\,dV$ $\displaystyle = \int_0^a z\,dz \int_{-(a-z)/2}^{(a-z)/2} dy\int_{-(a-z)/2}^{(a-z)/2} dx = \int_0^a z\,(a-z)^2\,dz$    
  $\displaystyle =\int_0^a (z\,a^{\,2}-2\,a\,z^{\,2}+z^{\,3})\,dz= \left[a^{\,2}\,z^{\,2}/2-2\,a\,z^{\,3}/3+z^4/4\right]_0^a$    
  $\displaystyle = \frac{1}{12}\,a^{\,4}.$ (A.101)

Thus,

$\displaystyle \bar{z} = \left.\frac{1}{12}\,a^4\right/\frac{1}{3}\,a^3 = \frac{1}{4}\,a.$ (A.102)

In other words, the center of mass of a pyramid lies one quarter of the way between the centroid of the base and the apex.


next up previous
Next: Gradient Up: Vectors and Vector Fields Previous: Vector Surface Integrals
Richard Fitzpatrick 2016-01-22