What's the value of the integral? # intintint_omega(sqrt(1-x^2-4y^2-9z^3)dxdydz) Omega:{ x^2+4y^2+9z^3<=1; x,y,z>=0}#

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Answer 1 · 2018-06-10T03:50:48

No idea.

Let

#I=intintintsqrt(1-x^2-4y^2-9z^3)dxdydz#

Sine #x^2+4y^2+9z^3≤1#, take the series expansion of the square root:

#I=intintintsum_(n=0)^oo((1/2),(n))(-x^2-4y^2-9z^3)^ndxdydz#

Apply the trinormial expansion:

#I=intintintsum_(n=0)^oo((1/2),(n))(-1)^nsum_(i+j+k=n)(n!)/(i!*j!*k!)(x^2)^i(4y^2)^j(9z^3)^kdxdydz#

Separate the variables:

#I=sum_(n=0)^oosum_(i+j+k=n)((1/2),(n))(n!)/(i!*j!*k!)(-1)^n4^j9^k(intx^(2i)dx)(inty^(2j)dy)(intz^(3k)dz)#

Integrate directly:

#I=sum_(n=0)^oosum_(i+j+k=n)((1/2),(n))(n!)/(i!*j!*k!)(-1)^n4^j9^k(x^(2i+1)/(2i+1))(y^(2j+1)/(2j+1))(z^(3k+1)/(3k+1))+C#

Hence

#I=sum_(n=0)^oosum_(i+j+k=n)((1/2),(n))(n!)/(i!*j!*k!)((-1)^n4^j9^k)/((2i+1)(2j+1)(3k+1))x^(2i+1)y^(2j+1)z^(3k+1)+C#