∫(x^4+1)/x*(x^2+1)^2 dx 求不定积分
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∫(x^4+1)/x*(x^2+1)^2 dx 求不定积分
∫(x^4+1)/x*(x^2+1)^2 dx 求不定积分
∫(x^4+1)/x*(x^2+1)^2 dx 求不定积分
答案:Ln|x|+1/(x²+1)+C
分析:分子=(x²+1)²-2x²,故而原被积分式化为1/x-2x/(x²+1)²
前式的结果为Ln|x|
后式要作变化:-2xdx/(x²+1)²=-d(x²+1)/(x²+1)²,积分后1/(x²+1)
∫(x^4+1)/[x*(x^2+1)^2] dx
let
(x^4+1)/[x*(x^2+1)^2]≡ A/x + (B1x+B2)/(x^2+1) + (C1x+C2)/(x^2+1)^2
=>
(x^4+1)≡ A(x^2+1)^2 + (B1x+B2)x(x^2+1) + (C1x+C2)x
put x=0 , A=1
coef. of x^...
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∫(x^4+1)/[x*(x^2+1)^2] dx
let
(x^4+1)/[x*(x^2+1)^2]≡ A/x + (B1x+B2)/(x^2+1) + (C1x+C2)/(x^2+1)^2
=>
(x^4+1)≡ A(x^2+1)^2 + (B1x+B2)x(x^2+1) + (C1x+C2)x
put x=0 , A=1
coef. of x^4
A+B1=1
B1= 0
coef. of x^3
B2 =0
coef. of x => C2 =0
coef. of x^2
2A+C1 =0
C1 =-2
(x^4+1)/[x*(x^2+1)^2]≡ 1/x - 2x/(x^2+1)^2
∫(x^4+1)/[x*(x^2+1)^2] dx
=∫[1/x - 2x/(x^2+1)^2] dx
=lnx - ∫ [2x/(x^2+1)^2] dx
= lnx + 1/(x^2+1) + C
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