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∫1 sinx

∫1/(sinx)dx =∫cscxdx =∫sinx/(1-cos²x) dx =-∫dcosx/(1-cos²x) =-1/2[∫dcosx/(1-cosx)+∫dcosx/(1+cosx)] = -1/2[∫-d(1-cosx)/(1-cosx)+∫d(1+cosx)/(1+cosx)] =-1/2ln(1+cosx)/ (1-cosx)+C =ln[(1-cosx)/sinx]+C =ln(cscx-cotx)+C

∫ dx/sinx = ∫ cscxdx = ln|cscx-cotx| + C = lntan(x/2) + C p + √(1+p^2) = e^(x/a), √(1+p^2) = e^(x/a) - p 1 + p^2 = e^(2x/a) - 2pe^(x/a) + p^2 e^(2x/a) -1 = 2pe^(x/a) p = (1/2)[e^(x/a) - e^(-x/a)] = sinh(x/a)

2+sinx=2sin(x/2)^2+2cos(x/2)^2+2sin(x/2)cos(x/2) dx/(2+sinx)=sec(x/2)^2dx/[2+2tan(x/2)^2+2tan(x/2)] =d(tan(x/2))/[1+tan(x/2)+tan(x/2)^2] 令u=tan(x/2) 原积分=∫du/(1+u+u^2) =∫d(u+1/2)/[3/4+(u+1/2)^2](用∫dx/(a^2+x^2)公式,取a=√3/...

92年考研数学第三大题的第四小题,正确答案4倍根号2减4。

先求不定积分 ∫1/sinx dx =∫sinx/sin²xdx =-∫1/sin²xdcosx =-∫1/(1-cos²x)dcosx =∫1/(cosx+1)(cosx-1)dcosx =∫[1/(cosx-1)-1/(cosx+1)]/2dcosx =[∫1/(cosx-1)dcosx-∫1/(cosx+1)dcosx]/2 =[∫1/(cosx-1)d(cosx-1)-∫1/(cosx+1)d(cos...

定积分作换元时必须得有反函数存在,在区间0到2π上,y=sinx没有反函数,所以不能直接用t=sinx来做

解:分子分母同除以(cosx)^2得: 然后套公式:

全天关机打三

这个是三角函数的不定积分,分母应先进性化简,计算步骤为: ∫1/(sinx+cosx)dx =∫dx/√2sin(x+π/4) =-(√2/2)∫dcos(x+π/4)/sin^2(x+π/4) =-(√2/4){∫dcos(x+π/4)/[1-cos(x+π/4)]+∫dcos(x+π/4)/[1+cos(x+π/4)]} =-(√2/4)ln{[1+cos(x+π/4)]/[1-cos...

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