Socratis
unread,May 27, 2012, 4:04:28 PM5/27/12You do not have permission to delete messages in this group
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Ora e' semplicissimo, spero.......
--- dy=1dz=cm --Intergrale del cono r=6x, h=8dz.
Formula per trovare V.T,cono. = (r^2*pi*8dz)/3
V=1dv---> (6x*6y*pi)/3*8dz = 4.71238898 cm^3
.
\/\/\/\/\/\/\/\/ 15V *dz = 70.68583471 cm^3, V.T.=301.59..cm^3
\/\/\/\/\/\/\/ 13V*dz = 61.26105674 cm^3
\/\/\/\/\/\/ 11V*dz = 51.83627878 cm^3
\/\/\/\/\/ 9V*dz = 42.41150082 cm^3 Sum.int.\0, 5dz\ = @
\/\/\/\/ 7V*dz = 32.98672286 cm^3
\/\/\/ 5V*dz = 23.56194490 cm^3
\/\/ 3V*dz = 14.13716694 cm^3
\/ V*dz = 4.712388980 cm^3
Naturalmente, la somma integrale del cono, da 0 a dy=dh=dz
si trova per (r^2*pi)/3*z)*(n)^2*dz
es : int \0, 5dz\ = (V)*5^2dz =117. 8097245.. cm^3 @
Spero di non aver commesso, errore, omissione)....
nel dubbio correggetemi. Grazie.Socratis.