Решения к Сборнику заданий по высшей математике Кузнецова Л.А. - 2. Дифференцирование. Зад.10 - Реферат

Задача 10
. Найти производную.

10.1.

y'= 1
*2-√5
thx
*√5/
ch
2
x
*(2-√5
thx
)+ √5/
ch
2
x
*(2+√5
thx
)
=

4√5 2+√5thx (2-√5thx)2

= 1 _

ch2
x(2-√5thx)

10.2.

y'= ch5
x-4ch3x
sh2
x
+ 3ch3
x-6chxsh2
x
+ 3chx
= 1
+ 3-3sh2
x
+ 3 _

4ch8
x 8ch4
x 8(1+sh2
x) 4ch5
x 8ch3
x 8chx

10.3.

1-√(thx)
+ 1+√(thx) _

y'= 1/2* 1-√(thx)
* 2√(thx)ch2
x 2√(thx)ch2
x
_ 1
=

1+√(thx) (1-√(thx))2
2√(thx)ch2
x

= √thx _

(1-th2
x)(ch2
x)

10.4.

√2-thx
+ √2+thx
2-th2
x
+ 2th2
x

y'= 3
*√2-thx
* ch2
x ch2
x
_ ch2
x ch2
x
=

8√2 √2+thx (√2-thx)2
4(2-th2
x)2

= 1 _

2ch2
x(2-th2
x)2

10.5.

y'= 1
+ 1-√2
thx
* √2(1-√2thx+1+√2thx)
=

2ch2
x 4√2(1+√2thx) ch2
x(1-√2thx)2

= 1-th2
x _

ch2
x(1-√2thx)2

10.6.

y'= _ 1
_ sh3
x-2shxch2
x
= 2ch3
x+2chx-sh2
x

4thxch2
x 2sh4
x 4sh3
xchx

10.7.

y'= a-√(1+a2
)thx
* √(1+a2
)thx(a-√(1+a2
)thx+a+√(1+a2
)thx)
=

2a√(1+a2
)(a+√(1+a2
)thx) (a-√(1+a2
)thx)2

= thx
= thx
= thx _

(a2
-(1+a2
)th2
x)ch2
x a2
ch2
x-(1+a2
)sh2
x a2
-sh2
x

10.8.

y'= 1-√2cthx
* √2(-1+√2cthx+1+√2cthx)
= √2cthx
=

18√2(1+√2cthx) sh2
x(1-√2cthx)2
9sh2
x(1-√2cthx)

= -√2cthx _

9(1+ch2
x)

10.9.

y'= 1
* ch2x/√(sh2x)-√(sh2x)(shx-chx)
=

1+sh2x/(shx-chx)2
chx-shx

= (chx-shx)(ch2x-sh2x(shx-chx))

√(sh2x)(ch2
x+sh2
x)

10.10.

y'= 2+sh2x
* -ch2x(2+sh2x)-ch2x(1-sh2x)
= ch2x _

6(1-sh2x) (2+sh2x)2
12-6sh2x-sh2
2x

10.11.

y'= 4
√(1-thx)3
* 1-thx+1+thx
= 1 _

44
√(1+thx)3
ch2
x(1-thx) 4ch2
x√(1+thx) 4
√(1-th2
x)

10.12.

y'= chx(1+chx)-sh2
x
= 1 _

(1+chx)2
1+chx

10.13.

y'= shx√(sh2x)-chxch2x/√(sh2x)
= shx-chxcth2x

sh2x

10.14.

y'= 3ch3x√(ch6x)-3sh6xsh3x/√(ch6x)
= 3sh3x-3th6xsh3x

ch6x

10.15.

y'= 16shxch3
x*ln(chx)+8ch3
xshx-16ch3
xshxln(chx)
= 4thx

2ch4
x

10.16.

y'= 2shxchx(12sh2
x+1)-24sh3
xchx
= 4chx

3sh4
x 3sh3
x

10.17.

y'= 2chxsh2
x-ch3
x
+ 3
= shx-1
+ 3 _

2ch4
x ch2
x√(1-th2
x) 2ch3
x ch2
x√(1-th2
x)

10.18.

y'= 1
* shx(1+3chx)-3shx(3+chx)
=

√8√(1-(3+chx)2
/(1+3chx)2
) (1+3chx)2

= -8shx
= -1 _

8(1+3chx)√(ch2
x-1) 1+3chx

10.19.

y'= 4-√8th(x/2)
* √8(4-√8th(x/2)+4+√8th(x/2))
=

√8(4+√8th(x/2)) 2ch2
(x/2)(4-√8th(x/2))2

= 1 _

ch2
(x/2)(4-√8th(x/2))

10.20.

y'= 1
_ shx(sh2
x-3chx-ch2
x)
= 1+chx _

8ch2
(x/2)th(x/2) 4sh2
x(3+chx) shx(3+chx)

10.21.

y'= -(3+5chx)(3shx(3+5chx)-5shx(5+3chx))
= 1

4(3+5chx)2
√(9+30chx+25ch2
x-25-30chx-9ch2
x)

10.22.

y'= -16ch5
xshx-4ch3
x(1-8ch2
x)
= -4ch2
xshx-1+8ch2
x

4ch8
x ch5
x

10.23.

y'= -2/sh2
x+1/sh4
x+ch3
x-2chxsh2
x
+ 5chx
= -2/sh2
x+1/sh4
x+1-sh2
x
+ 5_

2ch4
x 2+2sh2
x 2ch3
x 2chx

10.24.

y'= -16
+ sh4
x+3sh2
xch2
x
= 1-4sh2
x

3sh2
2x 3ch2
xsh6
x ch2
xsh4
x

10.25.

y'= chx
_ 1-sh2
x
= 1
_ 1-sh2
x

2+2sh2
x 2ch3
x 2ch2
x 2ch3
x

10.26.

y'= 3
+ shx – sh3
x-2shxch2
x
= 1+sh2
x

4ch2
(x/2)th(x/2) 2sh4
x shx

10.27.

y'= 2chxsh2
x-ch3
x
+ 2shxchx
_ 3chx
= sh2
x-1
+ 2chx
_ 3 _

2ch4
x sh4
x 2+2sh2
x 2ch3
x sh3
x 2chx

10.28.

y'= ch3
x-2chxsh2
x
+ chx
= 1 _

2ch4
x 2+2sh2
x ch3
x

10.29.

y'= ch3
x-2chxsh2
x
+ chx
= 1 _

2ch4
x 2+2sh2
x ch3
x

10.30.

y'= 2ch2
xshx-sh3
x
_ 1
= 1/sh3
x

2sh4
x 4ch2
(x/2)th(x/2)

10.31.

y'= -2
_ sh4
x-3ch2
xsh2
x
= 1/sh4
x

3sh2
x 3sh6
x

Обсуждение:

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Название реферата: Решения к Сборнику заданий по высшей математике Кузнецова Л.А. - 2. Дифференцирование. Зад.10

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