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Solution:9 F( G) D4 o, S) H3 z
$ S5 @( a4 X0 a' W; N, bFrom: d{(a+bx)*C(x)}/dx =-k C(x) + s4 y. x6 K+ L4 i) E& ?: N
so:
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bC(x) + (a+bx) dC(x)/dx = -kC(x) +s/ ~: W+ ]" l- P; k
i.e.% k) A; U' G; P
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(a+bx) dC(x)/dx = -(k+b)C(x) +s' J2 X! G% L" r. B/ z" C8 Y
4 a( \2 m- O1 @* b) d/ \. ^3 E g4 i- T; ]( s; w9 a3 b
introduce a tranform: KC(x)+s =Y(x), where K=-(k+b) 9 J/ ^, E/ P+ T0 L* v
which means: KdC(x)/dx = dY(x)/dx or dC(x)/dx = (1/K)dY/dx
+ e9 n' @# U# `: e) W7 {therefore:
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{(a+bx)/K} dY(x)/dx=Y(x)
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from 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)
3 w) z" S5 O S! f2 Y* d. d8 }6 l8 i6 G4 G/ v- g( G1 \* k
so that: ln Y(x) =( K/b) ln(a+bx)
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# S$ T. G; t7 N) P# j8 p* c8 R+ s: }this means: Y(x) = (a+bx)^(K/b)0 \, y* M/ ^% e
by using early transform, we can have:
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-(k+b)C(x)+s = (a+bx)^(k/b+1)5 L, c5 b/ n5 a! u! i2 v; t! v# e& S
* b0 ^" m1 s8 X! _+ j) H) s+ i. wfinally:
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C(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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