∫dx/((2x²+1)*√(x²+1)),求不定积分
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∫1/(x²+x+1)² dx
= ∫1/[(x+1/明消拍桥稿2)²+3/4]² dx
令x+1/2=√3/2*tanθ,dx=√3/2*sec²θ dθ
sinθ=(x+1/2)/√(x²+x+1),cosθ=(√激羡3/2)/√(x²+x+1)
原式= (√3/2)∫sec²θ/(3/4*sec²θ)² dθ
= (√3/2)(16/9)∫sec²θ/sec⁴θ dθ
= 8/(3√3)*∫cos²θ dθ
= 4/(3√3)*∫(1+cos2θ) dθ
= 4/(3√3)*(θ+1/2*sin2θ) + C
= 4/(3√3)*arctan[(2x+1)/√3] + (2x+1)/[3(x²+x+1)] + C
= ∫1/[(x+1/明消拍桥稿2)²+3/4]² dx
令x+1/2=√3/2*tanθ,dx=√3/2*sec²θ dθ
sinθ=(x+1/2)/√(x²+x+1),cosθ=(√激羡3/2)/√(x²+x+1)
原式= (√3/2)∫sec²θ/(3/4*sec²θ)² dθ
= (√3/2)(16/9)∫sec²θ/sec⁴θ dθ
= 8/(3√3)*∫cos²θ dθ
= 4/(3√3)*∫(1+cos2θ) dθ
= 4/(3√3)*(θ+1/2*sin2θ) + C
= 4/(3√3)*arctan[(2x+1)/√3] + (2x+1)/[3(x²+x+1)] + C
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