●■◆关于极限的数学题(弱智级)◆●■1.x →0 lim(tan2x-sinx)/x 2.x →0 lim(cosx-cos3x)/x的平方 3.x →0 lim [tan(2x+x的3次方)]/sin(x-x的平方)4.x →正无穷大 lim x*sin(2/x)5.x →0 lim(2arcsinx)/3x6.x →0 (tanx-
来源:学生作业帮助网 编辑:六六作业网 时间:2024/12/24 01:40:39
●■◆关于极限的数学题(弱智级)◆●■1.x →0 lim(tan2x-sinx)/x 2.x →0 lim(cosx-cos3x)/x的平方 3.x →0 lim [tan(2x+x的3次方)]/sin(x-x的平方)4.x →正无穷大 lim x*sin(2/x)5.x →0 lim(2arcsinx)/3x6.x →0 (tanx-
●■◆关于极限的数学题(弱智级)◆●■
1.x →0 lim(tan2x-sinx)/x 2.x →0 lim(cosx-cos3x)/x的平方
3.x →0 lim [tan(2x+x的3次方)]/sin(x-x的平方)
4.x →正无穷大 lim x*sin(2/x)
5.x →0 lim(2arcsinx)/3x
6.x →0 (tanx-sinx)/sinx的3次方
请高手详解 谢谢
●■◆关于极限的数学题(弱智级)◆●■1.x →0 lim(tan2x-sinx)/x 2.x →0 lim(cosx-cos3x)/x的平方 3.x →0 lim [tan(2x+x的3次方)]/sin(x-x的平方)4.x →正无穷大 lim x*sin(2/x)5.x →0 lim(2arcsinx)/3x6.x →0 (tanx-
1.x→0lim(tan2x-sinx)/x
=x→0lim(2cosx/cos2x-1)*sinx/x =1
(因为x→0时,2cosx/cos2x=2,sinx/x=1)
2.x →0 lim(cosx-cos3x)/x的平方
=x→0lim(cosx-cos3x)/x^2(罗比达法则,上下同时求导)
=x→0lim(-sinx+3sin3x)/2x(再用一次罗比达法则)
=x→0lim(-cosx+3cos3x)/2=1
3.x→0lim[tan(2x+x的3次方)]/sin(x-x的平方)
=x→0lim[tan(2x+x^3)]/sin(x-x^2)(用罗比达法则)
=x→0lim[sec^2(2x+x^3)(2+3x^2)]/cos(x-x^2)(1-2x)
=2 (x→0,sec^2(2x+x^3)=1,cos(x-x^2)=1)
4.x→正无穷大lim x*sin(2/x)
=x→正无穷大lim sin(2/x)/(1/x)
=t(=1/x)→0lim2*sin(2t)/(2t)=2
5.x→0lim(2arcsinx)/3x(用罗比达法则)
=x→0lim(2/√(1-x^2))/3
=2/3
6.x→0lim(tanx-sinx)/sinx的3次方
=x→0lim(tanx-sinx)/sin^3x(用罗比达法则)
=x→0lim(sec^2x-cosx)/3sin^2xcosx
=x→0lim(sec^2x-cosx)/3sin^2x(用罗比达法则)
=x→0lim(2secxtanxsecx+sinx)/6sinxcosx(用罗比达法则)
=x→0lim(2tanx+sinx)/6sinx(用罗比达法则)
=x→0lim(2sec^2x+cosx)/6cosx
=1/2