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*Problem Find area surface *

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justin Taylor
justin Taylor am 18 Dez. 2011
x = ( 1-u )(3+cos v)cos(2pi*u)
y = ( 1-u )(3+cos v)sin(2pi*u)
z = 4u + ( 1-u )sinv.
D={(u,v)|0<=u<=1,0<=v<=2pi}
http://i1203.photobucket.com/albums/bb396/kidstar079/Capture-1.png
mycode
{ syms u v;
x = (1-u).*(3+cos(v)).*cos(pi*u);
y = (1-u).*(3+cos(v)).*sin(pi*u);
z = 8*u+( 1-u ).*sin(v);
F=[x,y,z];
ru=diff(F,[u]);
rv=diff(F,[v]);
ruv=ru.*rv;
druv=sqrt(ruv(1).^2+ruv(2).^2+ruv(3).^2);
S=int(int(druv,u,0,1),v,0,2*pi)
}

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Akzeptierte Antwort

bym
bym am 18 Dez. 2011
you are going to need:
a =feval(symengine,'linalg::crossProduct',ru,rv)% .* is not cross product!
b =feval(symengine,'norm',a,2)
once you get the integrand (b) then I would suggest you evaluate it numerically rather than symbolically. You can use
MatlabFunction()
to turn it into a function to pass to
dblquad
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bym
bym am 19 Dez. 2011
the expression is for the _cross_ product not _dot_ product.
Walter Roberson
Walter Roberson am 20 Dez. 2011
Some day I will learn, "Never feed them after Midnight". ;-)

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