求二重积分 ∫(0,1)x^2dx∫(x,1)e^(-y^2)dy
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∫(-2→2)x*ln(1+e^x)dx
=∫(-2→0)x*ln(1+e^x)dx +∫(0→2)x*ln(1+e^x)dx
∫(-2→0)x*ln(1+e^x)dx
设y=-x,x=-y
原式=∫(2→0)(-y)*ln[1+e^(-y)]d(-y)
=∫(2→0)y*ln[1+e^(-y)]dy
=∫(2→0)y*ln[(e^y+1)/e^y]dy
=∫(2→0)y*ln(e^y+1)dy -∫(2→0)y*ln(e^y)dy
=-∫(0→2)y*ln(1+e^y)dy +∫(0→2)y^2dy
即∫(-2→0)x*ln(1+e^x)dx=-∫(0→2)x*ln(1+e^x)dx +∫(0→2)x^2dx
故∫(-2→2)x*ln(1+e^x)dx
=∫(-2→0)x*ln(1+e^x)dx +∫(0→2)x*ln(1+e^x)dx
=-∫(0→2)x*ln(1+e^x)dx +∫(0→2)x^2dx +∫(0→2)x*ln(1+e^x)dx
=∫(0→2)x^2dx
=[x^3/3]|(0→2)
=2^3/3
=8/3
=∫(-2→0)x*ln(1+e^x)dx +∫(0→2)x*ln(1+e^x)dx
∫(-2→0)x*ln(1+e^x)dx
设y=-x,x=-y
原式=∫(2→0)(-y)*ln[1+e^(-y)]d(-y)
=∫(2→0)y*ln[1+e^(-y)]dy
=∫(2→0)y*ln[(e^y+1)/e^y]dy
=∫(2→0)y*ln(e^y+1)dy -∫(2→0)y*ln(e^y)dy
=-∫(0→2)y*ln(1+e^y)dy +∫(0→2)y^2dy
即∫(-2→0)x*ln(1+e^x)dx=-∫(0→2)x*ln(1+e^x)dx +∫(0→2)x^2dx
故∫(-2→2)x*ln(1+e^x)dx
=∫(-2→0)x*ln(1+e^x)dx +∫(0→2)x*ln(1+e^x)dx
=-∫(0→2)x*ln(1+e^x)dx +∫(0→2)x^2dx +∫(0→2)x*ln(1+e^x)dx
=∫(0→2)x^2dx
=[x^3/3]|(0→2)
=2^3/3
=8/3
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