数学高手请进，多谢！

醉酒当歌 · 发表于 2005-4-3 19:41

请教大家一道微分题，多谢！

d [(a+bx) ] /dx = -kc +s
where: only x and c are unknown, others are all known, requiire c = function of x, what is this function?

多谢了！

[ Last edited by 醉酒当歌 on 2005-4-3 at 07:56 PM ]

十年移民路_ · 发表于 2005-4-3 19:52

Originally posted by 醉酒当歌 at 2005-4-3 20:41:: [5 |% W" ]% E3 I; q; `
请教大家一道微分题，多谢！
: R) |" S; d! y% ?5 U0 S; G% `. l0 K) b& `6 }& }9 _/ r
d [(a+bx) ] /dx = -kc +s
; x5 f! s# B& t. V, H/ F5 x! j5 \where: only x and c are unknown, others are all known, requiire c = ?
7 u$ B$ {8 R/ O) M5 z+ E) B$ W4 @9 _
多谢了！

it is too easy:

d(a+bx)/dx = b

so

b=-kc+s

finally: c= (s-b)/k

醉酒当歌 · 发表于 2005-4-3 19:57

Originally posted by 十年移民路 at 2005-4-3 07:52 PM:
, H, [4 U/ `: e* J# c: d5 A5 Z* l# Pit is too easy:+ r3 x0 T4 @. `) Q( T5 f3 e9 c
$ i( ?) @2 ^) ?8 P
d(a+bx)/dx = b' C0 ^5 P1 E) j! ^9 \- j

! d1 T, `* U+ n( h* r' I# lso
8 r7 U* i2 ]6 R! F0 L  i5 X0 Y: s& c0 G. Z: H; H& H5 W7 ]7 O) j- L
b=-kc+s: ?) b7 c  h# l7 f1 u+ h
0 Q6 o- |: P8 k: S, E
finally:  c= (s-b)/k

the right side cannnot contain c, but b contains c, so it is still not solved.

十年移民路_ · 发表于 2005-4-3 20:51

Originally posted by 醉酒当歌 at 2005-4-3 20:41:% r6 [# Y) q$ d: L; u  K* N
请教大家一道微分题，多谢！
. p- `! Z5 s1 }0 M: w7 \" R$ |& u" n; [7 Q6 J
d [(a+bx) ] /dx = -kc +s
  N# @$ v4 f: N6 K% D. ~+ y$ ]where: only x and c are unknown, others are all known,  requiire c = function of x, what is this function?- k$ L( W5 M5 W) Z& _
0 a/ H3 {% ~4 B0 W
多谢了！( c1 }$ V6 K8 ?  h2 p( {  g

& z" t/ K& L' M# v[ Last edited by 醉酒 ...

sorry, did you post another question? your statement is still not clear.

a, b, s, k are constants? c means c(x) ?

please tell me.

醉酒当歌 · 发表于 2005-4-4 11:30

Originally posted by 十年移民路 at 2005-4-3 08:51 PM:
; H2 j/ w  m$ d0 d2 f4 U7 Z5 gsorry, did you post another question? your statement is still not clear.
  M& J! E/ r# P
( L  S: L; |* b- U  qa, b, s, k are  constants? c means c(x) ?
5 V# L+ y& p4 w. Q7 p' Z( T
7 T# O( u- ]5 j: L9 l+ R+ q# ^please tell me.

对不起，写错了，忘了变量c,应该是
d [(a+bx) c] /dx = -kc +s

多谢

十年移民路_ · 发表于 2005-4-4 18:36

Originally posted by 醉酒当歌 at 2005-4-4 12:30:
+ \0 \' M- G: K( v* _# M- D对不起，写错了，忘了变量c,应该是9 T- Y0 X- c/ [9 k
d [(a+bx) c] /dx = -kc +s
1 t7 \8 b6 j. R8 f3 Q9 i0 a% a7 q) C
多谢

do you mean it is:

d { (a+bx) C(x)}/dx = -k C(x) + s

where a, b, s are constants, you want to know what is C(x) ?

if so, this needs to solve the differential equation. please comfirm it first.

醉酒当歌 · 发表于 2005-4-4 18:43

Originally posted by 十年移民路 at 2005-4-4 06:36 PM:
) q3 F  x1 ?! K5 gdo you mean it is:
% C. e1 `! q/ D  }5 ~. Y$ n+ r" x- E8 Y1 a, w/ r9 w, ^
d { (a+bx) C(x)}/dx = -k C(x) + s
) ^2 L: M1 g% X  I
8 S1 O3 u6 u5 [2 G4 zwhere a, b, s are constants, you want to know what is C(x) ?1 u# N( E5 v2 q  O4 \

  g& R2 l, Z/ Hif so, this needs to solve the differential equation. please comfirm it fi ...

多谢你,你说对了,就是说用x的函数表示c. 也就是 c(x), 多谢你了。请帮忙。

十年移民路_ · 发表于 2005-4-4 19:17

answer:

C(x)=-(1/k) * {(a+bx)^(-k/b) } - (s/k)

十年移民路_ · 发表于 2005-4-4 22:26

this answer is the good one.

procedure:

From:  d{(a+bx)*C(x)}/dx =-k C(x) + s
so:

bC(x) + (a+bx) dC(x)/dx = -kC(x) +s
i.e.

(a+bx) dC(x)/dx  = -(k+b)C(x) +s

introduce a tranform: KC(x)+s =Y(x), where K=-(k+b)
which means: KdC(x)/dx = dY(x)/dx or dC(x)/dx = (1/K)dY/dx
therefore:

{(a+bx)/K} dY(x)/dx=Y(x)

from here, we can get:

dY(x)/Y(x) = [K/(a+bx)]dx  i.e. dY(x)/Y(x) = {K/b(a+bx)}d(a+bx)

so that: ln Y(x) =( K/b) ln(a+bx)

this means:  Y(x) = (a+bx)^(K/b)
by using early transform, we can have:

-(k+b)C(x)+s = (a+bx)^(k/b+1)

finally:

C(x)= -1/(k+b)*{[(a+bx)^(k/b+1)] - s)

醉酒当歌 · 发表于 2005-4-5 13:33

果然是高手，多谢了，打印出来好好研究一下。高等数学学得实在不好。你一定是工程师吧，而且数学相当好。再谢！

十年移民路_ · 发表于 2005-4-5 20:41

Originally posted by 醉酒当歌 at 2005-4-5 14:33:4 C& v, c8 y7 p- V
果然是高手，多谢了，打印出来好好研究一下。高等数学学得实在不好。你一定是工程师吧，而且数学相当好。再谢！

请你再仔细检查一遍小地方，但我可以保证方法和过程是没有问题的。
是的，我现在是注册工程师，在上大学时，曾把“基米多维奇”和“樊映川”两本习题集通做一遍。（共大约一万多题吧）。这种题真的不是难题。

龙舞九天 · 发表于 2005-4-6 18:34

9楼的答案有点问题吧。
您说：

d{(a+bx)*C(x)}/dx =-k C(x) + s
so:
bC(x) + (a+bx) dC(x)/dx = -kC(x) +s

也就是说您认为 d{(a+bx)*C(x)}/dx = bC(x) + (a+bx) dC(x)/dx
但这是不正确的
d{(a+bx)*C(x)}/dx 意思是说对 (a+bx)*C(x)/x 整个代数式求导数
并不是 (a+bx)*C(x) 的导数除以 x 的导数。
比如说 dx/dy = (x'y-xy')/y2
x' 意思是x的导数，y'意思是y的导数。分母是y的平方。
因此：

d{(a+bx)*C(x)}/dx =[xb*c(x)+x(a+bx)*c'(x)-(a+bx)*c(x)]/x2
最右边是x的平方。

所以您解的有问题。

[ Last edited by 龙舞九天 on 2005-4-6 at 07:35 PM ]

十年移民路_ · 发表于 2005-4-6 18:53

Originally posted by 龙舞九天 at 2005-4-6 19:34:
2 v# i, f. j0 r# ^1 b( m! ~9楼的答案有点问题吧。) K- Y% T* f( E' v* Q4 a
您说：' m2 |  z) T) a8 K! k7 K; H- s
; W5 D1 P$ d! @8 ]3 R8 V
d{(a+bx)*C(x)}/dx =-k C(x) + s" u+ ~7 D8 m9 F6 `, P
so:( f4 H  _6 c( ?0 Y9 y8 [
bC(x) + (a+bx) dC(x)/dx  = -kC(x) +s: l8 H8 R# t  w9 c: C' Y! N4 L
1 G* {6 z, S1 q& D5 Q
也就是说您认为 d{(a+bx)*C(x)}/dx = bC(x) + (a+bx) dC(x)/dx! w* |) X" u' K7 Y0 q
但这是不正确的4 y' Q9 G3 x* P) ]' d+ q
d{(a+bx)* ...

Please note here:

d{(a+bx)*C(x)}/dx means: df(x)/dx, where f(x) = (a+bx)*C(x)
it is a multiple, not division. Right ?

十年移民路_ · 发表于 2005-4-6 18:56

但这是不正确的
d{(a+bx)*C(x)}/dx 意思是说对 (a+bx)*C(x)/x 整个代数式求导数
并不是 (a+bx)*C(x) 的导数除以 x 的导数。

no "x" in that position.

gnome-kde · 发表于 2005-4-6 19:30

d{(a+bx)*C(x)}/dx 意思是说对 (a+bx)*C(x)/x 整个代数式求导数
7 P/ B2 j& X8 G+ | X q/ N....8 Q9 p! K& q# g; {+ x
d{(a+bx)*C(x)}/dx =[xb*c(x)+x(a+bx)*c'(x)-(a+bx)*c(x)]/x2

这样算混淆了微分和导数的概念。

d(f(x))/dx = f'(x), d(f(x)g(x))/dx = f'(x) d(g(x))/dx + g'(x) d(f(x))/dx 这是基本的微分四则运算

If h(x)=(a+bx)*C(x)/x, then d(h(x))/dx = d{(a+bx)*C(x)/x}/dx = h'(x) = [xb*c(x)+x(a+bx)*c'(x)-(a+bx)*c(x)]/x2 (应该对吧，我也没验算)

[ Last edited by gnome-kde on 2005-4-6 at 08:31 PM ]

十年移民路_ · 发表于 2005-4-6 19:45

Originally posted by gnome-kde at 2005-4-6 20:30:+ [8 }- z( o4 V- ?5 C* Y; |7 ]
这样算混淆了微分和导数的概念。8 p/ }/ Y& U$ `+ W7 P5 J
, F0 f) d4 V, ^7 a# v$ V# N
d(f(x))/dx = f'(x), d(f(x)g(x))/dx = f'(x) d(g(x))/dx + g'(x) d(f(x))/dx 这是基本的微分四则运算
* B4 u* E& |( f3 F: s* g* ^3 h1 O! B) a! q2 g+ ?( H
If h(x)=(a+bx)*C(x)/x, then d(h(x))/dx = d{(a+bx)*C(x)/x}/dx = h ...

这样算混淆了微分和导数的概念。

d(f(x))/dx = f'(x), d(f(x)g(x))/dx = f'(x) d(g(x))/dx + g'(x) d(f(x))/dx 这是基本的微分四则运算

Ah, you made a mistake: it should be:

d(f(x)g(x))/dx = f(x) d(g(x))/dx + g(x) d(f(x))/dx

If h(x)=(a+bx)*C(x)/x, then d(h(x))/dx = d{(a+bx)*C(x)/x}/dx = h'(x) = [xb*c(x)+x(a+bx)*c'(x)-(a+bx)*c(x)]/x2 (应该对吧，我也没验算)

for h(x)=(a+bx)*C(x)/x, you are right, But, no x there, it is:

h(x)=(a+bx)*C(x)

gnome-kde · 发表于 2005-4-6 19:51

Originally posted by 十年移民路 at 2005-4-6 08:45 PM:
" v% }  x% v/ U" w# ]0 L) d这样算混淆了微分和导数的概念。2 K! y0 z" @" z! \5 G0 b# H3 M4 u
& L% E+ S& L2 R: @) H6 Z/ j4 ]
d(f(x))/dx = f'(x), d(f(x)g(x))/dx = f'(x) d(g(x))/dx + g'(x) d(f(x))/dx 这是基本的微分四则运算& {  A3 [2 m2 S0 s% A9 y
5 Z/ P5 X9 Q. c, @6 h
Ah, you made a mistake: it should be:9 I: b4 h8 n9 X( @* \; K
7 b) c6 z- q3 k  }* H
d(f(x)g(x)) ...

Yes, there should not be " ' " after "f" and "g", it is a typo. :D

But for the left part, I am not intented to show you are wrong but "龙舞九天" is wrong.

十年移民路_ · 发表于 2005-4-6 20:05

Originally posted by gnome-kde at 2005-4-6 20:51:5 ~6 n2 t0 o! i Z; r
Yes, there should not be " ' " after "f" and "g", it is a typo. :D
$ |; H8 v% m3 ]4 }& ~* @6 S W* W' r2 f& W$ ?8 [
But for the left part, I am not intented to show you are wrong but "龙舞九天" is wrong.

Thanks, I am happy here to discuss math.

醉酒当歌 · 发表于 2005-4-6 22:24

Originally posted by 十年移民路 at 2005-4-5 08:41 PM:! o- K' k7 [( y5 z3 B
) T& ? l9 r, J
请你再仔细检查一遍小地方，但我可以保证方法和过程是没有问题的。
9 t2 P) D. |* ?, G% a3 b$ ]是的，我现在是注册工程师，在上大学时，曾把“基米多维奇”和“樊映川”两本习题集通做一遍。（共大约一万多题吧）。这种题真的 ...

佩服！是不是微分方程如果不能transform就不能求解了，有没有现成的微分方程求解公式？

十年移民路_ · 发表于 2005-4-7 20:44

Originally posted by 醉酒当歌 at 2005-4-6 23:24:
& p9 m" Q6 ?4 A( U# t佩服！是不是微分方程如果不能transform就不能求解了，有没有现成的微分方程求解公式？

理论上，只有很少的几类”齐次常微分方程“可以写出其”封闭的解析解“。不作变换，微分方程是非齐次的，可能不太容易作到。一般地说，没有什么现成的微分方程求解公式。但对”线性定常齐次微分方程“是有一个较方便的解法。

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