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Solution:
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% [4 Z U& L1 J- hFrom: d{(a+bx)*C(x)}/dx =-k C(x) + s' A, g0 P: ?- W1 {5 A% }
so:) Y K; X* _7 _: Q( T# h' c
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bC(x) + (a+bx) dC(x)/dx = -kC(x) +s
8 z3 ^& p! O7 ]' Si.e." F0 f* H5 A) k2 Z( K) A
3 f1 h4 l b V ~; Z(a+bx) dC(x)/dx = -(k+b)C(x) +s: B( Y7 Z/ W+ v
8 J c# G2 r; U- s7 F8 r( |( `2 B" n
introduce a tranform: KC(x)+s =Y(x), where K=-(k+b)
; f# {0 [& J( p. \2 `1 Fwhich means: KdC(x)/dx = dY(x)/dx or dC(x)/dx = (1/K)dY/dx5 k0 |) B$ w- U; U/ e
therefore:1 p! X; s3 m9 u; F Z. [ A' }
" r2 Q8 P( E2 Q{(a+bx)/K} dY(x)/dx=Y(x)
8 A4 c% B: ]+ F$ G7 x
- }5 @ g" d. u7 E6 h P: _% _3 l B" Zfrom here, we can get:
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dY(x)/Y(x) = [K/(a+bx)]dx i.e. dY(x)/Y(x) = K/b {(a+bx)}d(a+bx) p0 I+ G4 F, l+ {" u
D- U0 E8 g+ V- {so that: ln Y(x) =( K/b) ln(a+bx)
% S7 z8 H" j, X& e$ o6 }2 X! [! Q! s# x1 P2 X2 U' f% x
this means: Y(x) = (a+bx)^(K/b)
. H W, B/ z$ |% K! gby using early transform, we can have:
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. _& b4 b g0 H+ S-(k+b)C(x)+s = (a+bx)^(k/b+1)
2 Y' z, p9 O' v0 e# {3 M
1 O6 h4 m$ ?! `3 c& C* n$ sfinally:
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4 n. N: y$ g' E+ mC(x)= -1/(k+b)*{[(a+bx)^(k/b+1)] - s) |
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发表于 2005-4-3 19:44
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