1个回答
展开全部
1) 令:x=tant , √(x^2+1)^3 = sec³t ,cost = 1/√(x^2+1) , dx = sec²t dt
∫1/√(x^2+1)^3 dx
=∫1/sec³t * (sec²t dt)
=∫cost dt
= sint + C
= tant*cost + C
= x/√(x^2+1) + C
2)令: x=t^6 ,
∫1/[√x + ³√x ] dx
=∫1/[t² + t³] (6t^5 dt)
= 6*∫t^3/[1 + t] dt
= 6*∫[(t^3+1)-1]/[1 + t] dt
= 6*∫[(t^2 - t +1) -1/(1+t) ]dt
= 2*t^3 - 3*t^2 + 6*t -6*ln(1+t) + C
= 2*√x - 3*³√x + 6*x^(1/6) - 6*ln(1+x^(1/6)) + C
∫1/√(x^2+1)^3 dx
=∫1/sec³t * (sec²t dt)
=∫cost dt
= sint + C
= tant*cost + C
= x/√(x^2+1) + C
2)令: x=t^6 ,
∫1/[√x + ³√x ] dx
=∫1/[t² + t³] (6t^5 dt)
= 6*∫t^3/[1 + t] dt
= 6*∫[(t^3+1)-1]/[1 + t] dt
= 6*∫[(t^2 - t +1) -1/(1+t) ]dt
= 2*t^3 - 3*t^2 + 6*t -6*ln(1+t) + C
= 2*√x - 3*³√x + 6*x^(1/6) - 6*ln(1+x^(1/6)) + C
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
