神马作文网求∫1/[x^2根号(x^2+1)]dx的不定积分
来源:学生作业帮 编辑:神马作文网作业帮 分类:数学作业 时间:2024/11/11 09:02:26
求∫1/[x^2根号(x^2+1)]dx的不定积分
![求∫1/[x^2根号(x^2+1)]dx的不定积分](/uploads/image/z/2592804-12-4.jpg?t=%E6%B1%82%E2%88%AB1%2F%5Bx%5E2%E6%A0%B9%E5%8F%B7%EF%BC%88x%5E2%2B1%EF%BC%89%5Ddx%E7%9A%84%E4%B8%8D%E5%AE%9A%E7%A7%AF%E5%88%86)
x=tana
dx=sec²ada
原式=∫sec²ada/tan²a*seca
=∫secada/tan²a
=∫da/sina
∫sinada/sin²a
=∫dcosa/(cos²a-1)
=(1/2)[∫dcosa/(cosa-1)-∫dcosa/(cosa+1)]
=(1/2)(ln|cosa-1|-ln|cosa+1|)+C
=(1/2)ln|(cosa-1)/(cosa+1)|+C
=(1/2)ln|(cosa-1)²/sin²a|+C
=ln|(cosa-1)/sina|+C
=ln|cota-csca|+C
=ln|1/x-√[1+(1/x)²]|+C
=ln|[1-√(x²+1)]/x|+C
dx=sec²ada
原式=∫sec²ada/tan²a*seca
=∫secada/tan²a
=∫da/sina
∫sinada/sin²a
=∫dcosa/(cos²a-1)
=(1/2)[∫dcosa/(cosa-1)-∫dcosa/(cosa+1)]
=(1/2)(ln|cosa-1|-ln|cosa+1|)+C
=(1/2)ln|(cosa-1)/(cosa+1)|+C
=(1/2)ln|(cosa-1)²/sin²a|+C
=ln|(cosa-1)/sina|+C
=ln|cota-csca|+C
=ln|1/x-√[1+(1/x)²]|+C
=ln|[1-√(x²+1)]/x|+C
求不定积分∫x根号1-x^2dx
求不定积分∫dx/x[根号1-(ln^2)x]
∫x*根号4x^2-1 dx 求不定积分
求不定积分dx/(x*根号下(1-x^2))
求∫1/[x^2根号(x^2+1)]dx的不定积分
求∫1dx/根号(x^2-x+1)的不定积分
求∫x/根号(1-x^2)dx的不定积分
(dx)/(1+根号x)的不定积分怎么求?[(1+lnx)/(xlnx)^2]dx的不定积分呢?
(dx)/(1 根号x)的不定积分怎么求?[(1 lnx)/(xlnx)^2]dx的不定积分呢?
求不定积分x ∫(1-x^2)/x根号下x dx
求不定积分(3-x)/根号(1+x+x^2)dx
求(arcsinx)^2/根号(1-x^2)dx的不定积分