1.9: Hemisferios

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Hemisferio sólido uniforme

La Figura I.4 servirá. El argumento es exactamente el mismo que para el cono. El volumen de la rebanada elemental es\( \pi y^{2} \delta x = \pi (a^{2} - x^{2} ) \delta x \) y el volumen del hemisferio es\( \frac{2 \pi a^{3}}{3} \) , por lo que la masa de la rebanada es

\(M \times \pi (a^{2}-x^{2}) \delta x \div (2 \pi a / 3) = \frac{3M(a^{2}-x^{2}) \delta x }{2a^{3}} \)

donde\( M \) is the mass of the hemisphere. The first moment of mass of the elemental slice is \( x \) times this, so the position of the centre of mass is

\( \overline{x} = \frac{3}{2a^3} \int_0^a x(a^{2}-x^{2})dx = \frac{3a}{8} \)

Concha hemisférica hueca.

Podemos notar para empezar que esperaríamos que el centro de masa estuviera más lejos de la base que para un hemisferio sólido uniforme.

Nuevamente, la Figura I.4 servirá. El área del anillo elemental es\( 2 \pi a \delta x\) (NOT \( 2 \pi y \delta x \)!) and the area of the hemisphere is \( 2 \pi a^{2} \) . Por lo tanto, la masa del anillo elemental es

\(M \times 2 \pi a \delta x \div (2 \pi a^{2}) = M \delta x / a\)

El primer momento de masa del anillo es x veces esto, por lo que la posición del centro de masa es

\( \overline{x} = \int_0^a \frac{xdx}{a} = \frac{a}{2} \)

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