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Solution:1 ~; l* ^3 e, L0 `3 l
% \0 r8 A" j$ T9 ~+ H) Y! Q7 g( hFrom: d{(a+bx)*C(x)}/dx =-k C(x) + s
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bC(x) + (a+bx) dC(x)/dx = -kC(x) +s
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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)
) p% M& n0 |% T/ ?9 J5 j) j" @which means: KdC(x)/dx = dY(x)/dx or dC(x)/dx = (1/K)dY/dx) Q0 ?/ ~+ P. M$ F
therefore:$ u4 p, s4 C! q. F, t0 M
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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)0 Z9 {( V: `* ]1 U. b
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so that: ln Y(x) =( K/b) ln(a+bx)
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this means: Y(x) = (a+bx)^(K/b)
. u& R; R: C1 F9 Z$ Qby using early transform, we can have:, r! Q9 s1 K5 F
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-(k+b)C(x)+s = (a+bx)^(k/b+1)& }' e4 |! X; @9 w$ S6 P" t7 J
6 V3 t r$ M1 k1 G* z% F! S0 Nfinally:8 `3 K( L; o" O, x0 e
8 \1 L# A- z0 N' }, FC(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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