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Solution:
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From: d{(a+bx)*C(x)}/dx =-k C(x) + s$ N4 a. I" H. J! q% A; n5 Z
so:
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bC(x) + (a+bx) dC(x)/dx = -kC(x) +s
0 {2 [( ?3 h. v- u8 Ti.e.
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(a+bx) dC(x)/dx = -(k+b)C(x) +s
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introduce a tranform: KC(x)+s =Y(x), where K=-(k+b) + B. X+ {" d" K7 G' \) _
which means: KdC(x)/dx = dY(x)/dx or dC(x)/dx = (1/K)dY/dx& p3 @8 k0 \$ D- Y2 e# w1 a
therefore:! l0 b+ S" x0 P8 k i2 [, D4 W
: E; o, C6 M# }" K! L1 w2 @{(a+bx)/K} dY(x)/dx=Y(x)
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from here, we can get:# I8 P# ?% e+ V/ Q( N X0 z3 q
5 U. U0 i: r, P" J- c) gdY(x)/Y(x) = [K/(a+bx)]dx i.e. dY(x)/Y(x) = K/b {(a+bx)}d(a+bx); y1 t$ `2 m+ G4 i3 Y v
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so that: ln Y(x) =( K/b) ln(a+bx)' a; _& r; I/ S! h5 D# H4 R
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this means: Y(x) = (a+bx)^(K/b)3 ?( X, ~: q/ }) l8 z8 l) {. r8 l
by using early transform, we can have:
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7 F2 @# l/ U1 ?9 w( P-(k+b)C(x)+s = (a+bx)^(k/b+1)
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finally:) w5 C4 T& Y" o0 K# ~4 n
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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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