Mathematics-Online problems: Solution to the problem of the (previous) week

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	Mathematics-Online problems:
	Solution to the problem of the (previous) week

Problem:

Rotating the cross section shown below around the

-axis produces a (not particularly stable) vase.

$\includegraphics[width=\linewidth]{vase.eps}$

$\displaystyle f(x)$ $\displaystyle =$ $\displaystyle \sqrt{x+1}$

$\displaystyle g(x)$ $\displaystyle =$ $\displaystyle \sqrt{x-2}$

To the nearest gram, what is the weight of the vase if it is made of glass having a density of $2.5\,$ g/cm?

Answer:

Solution:

Mass of the solid of revolution:

$\displaystyle m$	$\displaystyle =$	$\displaystyle 2.5\pi\left(\int_0^{10}{f(x)^2}\; dx -\int_2^{10}{g(x)^2}\; dx\right) {\text g}$
	$\displaystyle =$	$\displaystyle 2.5\pi\left(\int_0^{10}{x+1}\; dx -\int_2^{10}{x-2}\; dx\right) {\text g}$
	$\displaystyle =$	$\displaystyle 2.5\pi\cdot28\: {\text g}$
	$\displaystyle \approx$	$\displaystyle 220\: {\text g}$

[problem of the week]