求解高数不定积分
3个回答
展开全部
a<0 同理 可等到积分=负四分之派
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?
展开全部
x = asinθ、dx = acosθ dθ
∫[0→a] dx/[x + √(a² - x²)]
= ∫[0→π/2] acosθ/[asinθ + acosθ] dθ
= (1/2)∫[0→π/2] 2cosθ/[sinθ + cosθ] dθ
= (1/2)∫[0→π/2] [(sinθ + cosθ) - (sinθ - cosθ)]/(sinθ + cosθ) dθ
= (1/2)∫[0→π/2] dθ - (1/2)∫[0→π/2] d(- cosθ - sinθ)/(sinθ + cosθ)
= θ/2 |[0→π/2] + (1/2)∫ d(sinθ + cosθ)/(sinθ + cosθ)
= π/4 + (1/2)ln[sinθ + cosθ] |[0→π/2]
= π/4 + (1/2){ln(1 + 0) - ln(0 + 1)}
= π/4
∫[0→a] dx/[x + √(a² - x²)]
= ∫[0→π/2] acosθ/[asinθ + acosθ] dθ
= (1/2)∫[0→π/2] 2cosθ/[sinθ + cosθ] dθ
= (1/2)∫[0→π/2] [(sinθ + cosθ) - (sinθ - cosθ)]/(sinθ + cosθ) dθ
= (1/2)∫[0→π/2] dθ - (1/2)∫[0→π/2] d(- cosθ - sinθ)/(sinθ + cosθ)
= θ/2 |[0→π/2] + (1/2)∫ d(sinθ + cosθ)/(sinθ + cosθ)
= π/4 + (1/2)ln[sinθ + cosθ] |[0→π/2]
= π/4 + (1/2){ln(1 + 0) - ln(0 + 1)}
= π/4
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
展开全部
先通分,再计算,我不太方便做,你看看。
追问
这怎么个通分法
追答
等下,我下去做下,
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
更多回答(1)
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
