Chapter 13: Problem 5
Explain why \(d z r d r d \theta\) is the volume of a small "box" in cylindrical coordinates.
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Chapter 13: Problem 5
Explain why \(d z r d r d \theta\) is the volume of a small "box" in cylindrical coordinates.
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Gravitational field due to spherical shell A point mass \(m\) is a distance \(d\)
from the center of a thin spherical shell of mass \(M\) and radius \(R .\) The
magnitude of the gravitational force on the point mass is given by the
integral
$$F(d)=\frac{G M m}{4 \pi} \int_{0}^{2 \pi} \int_{0}^{\pi} \frac{(d-R \cos
\varphi) \sin \varphi}{\left(R^{2}+d^{2}-2 R d \cos \varphi\right)^{3 / 2}} d
\varphi d \theta$$
where \(G\) is the gravitational constant.
a. Use the change of variable \(x=\cos \varphi\) to evaluate the integral and
show that if \(d>R,\) then \(F(d)=\frac{G M m}{d^{2}},\) which means the force is
the same as if the mass of the shell were concentrated
at its center.
b. Show that if \(d
Let \(f\) be a continuous function on \([0,1] .\) Prove that $$\int_{0}^{1} \int_{x}^{1} \int_{x}^{y} f(x) f(y) f(z) d z d y d x=\frac{1}{6}\left(\int_{0}^{1} f(x) d x\right)^{3}$$
In polar coordinates an equation of an ellipse with eccentricity \(0 < e < 1\) and semimajor axis \(a\) is \(r=\frac{a\left(1-e^{2}\right)}{1+e \cos \theta}\) a. Write the integral that gives the area of the ellipse. b. Show that the area of an ellipse is \(\pi a b,\) where \(b^{2}=a^{2}\left(1-e^{2}\right)\)
\(A\) thin rod of length \(L\) has a linear density given by \(\rho(x)=2 e^{-x / 3}\) on the interval \(0 \leq x \leq L\). Find the mass and center of mass of the rod. How does the center of mass change as \(L \rightarrow \infty ?\)
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