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区域为:(x-1)²+y²≤4,以(1,0)为圆心,2为半径的圆.
先积y,
∫∫ x²dxdy
=∫[-1---->3] dx ∫[-√(3-x²+2x)----->√(3-x²+2x)] x²dy
=2∫[-1---->3] x²√(3-x²+2x)dx
=2∫[-1---->3] x²√(4-(x-1)²)dx
令x-1=2sinu,则√(4-(x-1)²)=2cosu,dx=2cosudu,u:0---->π/2
=2∫[-π/2---->π/2] (2sinu+1)²*2cosu*2cosudu
=32∫[-π/2---->π/2] sin²ucos²udu + 8∫[-π/2---->π/2] cos²udu
=8∫[-π/2---->π/2] sin²2u du + 4∫[-π/2---->π/2] (1+cos2θ)du
=4∫[-π/2---->π/2] (1-cos4u) du + 4π
=4(u-(1/4)sin4u) + 4π [-π/2---->π/2]
=8π
先积y,
∫∫ x²dxdy
=∫[-1---->3] dx ∫[-√(3-x²+2x)----->√(3-x²+2x)] x²dy
=2∫[-1---->3] x²√(3-x²+2x)dx
=2∫[-1---->3] x²√(4-(x-1)²)dx
令x-1=2sinu,则√(4-(x-1)²)=2cosu,dx=2cosudu,u:0---->π/2
=2∫[-π/2---->π/2] (2sinu+1)²*2cosu*2cosudu
=32∫[-π/2---->π/2] sin²ucos²udu + 8∫[-π/2---->π/2] cos²udu
=8∫[-π/2---->π/2] sin²2u du + 4∫[-π/2---->π/2] (1+cos2θ)du
=4∫[-π/2---->π/2] (1-cos4u) du + 4π
=4(u-(1/4)sin4u) + 4π [-π/2---->π/2]
=8π
1年前
7
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