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:* T- P) R( U/ p, ^2 a) ^
请教大家一道微分题，多谢！
; @1 V$ |/ j8 R( c8 I" U8 s, j( Q
d [(a+bx) ] /dx = -kc +s 5 ]! _$ r6 }/ q' a2 i. M
where: only x and c are unknown, others are all known, requiire c = ?6 D/ p4 t5 R: P, L5 g
) q x- M/ k1 s: x6 }7 t4 ^8 ^
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:
$ n3 r0 S4 n( n  r$ ^' a% yit is too easy:
6 D% r9 s9 o" w4 v2 F. Q% o
3 p6 {. ?( n7 [/ p% ~4 id(a+bx)/dx = b. W8 Q( N( J; S( @% p' t6 {, \
0 P5 V( J: s+ E8 I  J9 i
so
7 |# O2 y- u, Y) W; L$ y# F$ N$ m  n
b=-kc+s. ?4 m6 `( k# X9 ?: f
' y) b3 Y$ e; z9 Q
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 20:41:1 b( g& b* _* C3 e
请教大家一道微分题，多谢！
9 |- a, u& C: I- I
$ u1 C9 [  C( f/ e& M3 R( q) @d [(a+bx) ] /dx = -kc +s
$ y0 P! r6 M; |8 R0 ]where: only x and c are unknown, others are all known,  requiire c = function of x, what is this function?
: w! {+ p. e3 e; N: ]
$ o+ G( g* D; n' H% v多谢了！
/ m! u2 Z* j; E1 `+ w3 i" e; |+ g5 @" U. {/ V  ]& P
[ 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:
8 X, A0 R4 d* j T3 }! t! fsorry, did you post another question? your statement is still not clear.
2 I3 J1 `) O2 h& \: q6 [+ n$ \; n1 Y1 ~- e! m" w3 {
a, b, s, k are constants? c means c(x) ?
; p8 ^# N* T* R+ A( H; a" b& l4 \
- A( ^' p. V3 \+ s' aplease 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:
, ]9 W# I( x3 R0 \6 n. l对不起，写错了，忘了变量c,应该是9 l1 U% j# N: [' i
d [(a+bx) c] /dx = -kc +s
8 Q( y! C, x/ _ f6 x& N }3 N2 E, ` @. ]1 b" ^; N# b
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:
, A& P7 X7 M- m! _/ {# b2 v0 Ido you mean it is:
* \4 O! L5 y' U. ~) Q. Z/ {, c, M% G' I  F: T& R# k
d { (a+bx) C(x)}/dx = -k C(x) + s
9 ]0 P' a3 `+ u' O/ o
4 D* f+ P8 Q8 r$ \  Y& d1 b1 Fwhere a, b, s are constants, you want to know what is C(x) ?" c" u3 }. ?& R, E

8 `; ^  c) {' D( H6 p9 iif 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:
: w% k$ N2 \0 M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 i+ s7 h$ b* X9楼的答案有点问题吧。  K/ |' u/ j# j0 b3 o
您说：4 g6 x" r5 d+ G

8 O6 D$ M( j6 Y4 g& Vd{(a+bx)*C(x)}/dx =-k C(x) + s2 A" [0 A1 n1 `! Y  W
so:
* W- H# j6 z6 abC(x) + (a+bx) dC(x)/dx  = -kC(x) +s8 U0 b: i! P  m! _$ u6 y9 {; ^
+ V3 P* S0 n3 [* e% m. n
也就是说您认为 d{(a+bx)*C(x)}/dx = bC(x) + (a+bx) dC(x)/dx
# h" M' v: s/ L5 H+ e' K6 F' ?但这是不正确的- _4 u% r1 M4 L
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' C& i8 }4 m+ S
....
3 }& q4 ?$ D& t+ ]1 Md{(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:/ ^* {9 x; C' K
这样算混淆了微分和导数的概念。
0 v3 \: d& H/ _: z1 \; e
5 p7 P9 \6 w% ]! D* B! P5 {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! _8 m/ y3 ?+ C2 D
1 T6 v. z# e: v0 n
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:
3 u) \0 L8 s. y# W, O, J) ]6 D这样算混淆了微分和导数的概念。
4 b( g4 m$ y! Y+ A0 V
1 F* A( |+ }6 p5 X# sd(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
8 i1 X5 M0 ^9 k( f4 |
/ g( o9 p5 |9 u  o# f# zAh, you made a mistake: it should be:
+ i/ W) ~  Y: n# x
+ e, e  H( ~1 Vd(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:
9 H0 Z2 U) i) l- y3 zYes, there should not be " ' " after "f" and "g", it is a typo. :D! \( M6 P2 ^+ T1 W7 ]. B% L

9 ?3 a% P. H% i2 J0 P: z. a7 Z3 ABut 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:
U- u) h1 w& I0 u" [- F
" S9 N, B6 B/ K0 b3 y1 S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。
# R% w G8 E. }3 J. u) Y# y( Y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:
0 {3 N& Y8 d* I5 o9 U( a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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