20.5 THE DIFFUSION EQUATION
written entirely in terms ofη,
4 ηd^2 f(η)
dη^2+(2+η)df(η)
dη=0.This is a straightforward ODE, which can be solved as follows. Writingf′(η)=
df(η)/dη, etc., we have
f′′(η)
f′(η)=−1
2 η−1
4⇒ ln[η^1 /^2 f′(η)] =−η
4+c⇒ f′(η)=A
η^1 /^2exp(−η4)⇒ f(η)=A∫ηη 0μ−^1 /^2 exp(−μ4)
dμ.If we now write this in terms of a slightly different variableζ=η^1 /^2
2=x
2(κt)^1 /^2,thendζ=^14 η−^1 /^2 dη, and the solution to (20.34) is given by
u(x, t)=f(η)=g(ζ)=B∫ζζ 0exp(−ν^2 )dν. (20.36)HereBis a constant and it should be noticed thatxandtappear on the RHSonly in the indefinite upper limitζ, and then only in the combinationxt−^1 /^2 .If
ζ 0 is chosen as zero thenu(x, t) is, to within a constant factor,§the error function
erf[x/2(κt)^1 /^2 ], which is tabulated in many reference books. Only non-negative
values ofxandtare to be considered here, so thatζ≥ζ 0.
Let us try to determine what kind of (say) temperature distribution and flowthis represents. For definiteness we takeζ 0 = 0. Firstly, sinceu(x, t) in (20.36)
depends only upon the productxt−^1 /^2 , it is clear that all pointsxat timestsuch
thatxt−^1 /^2 has the same value have the same temperature. Put another way, at
any specific timetthe region having a particular temperature has moved along
the positivex-axis a distance proportional to the square root oft.Thisisatypical
diffusionprocess.
Notice that, on the one hand, att= 0 the variableζ→∞andubecomesquite independent ofx(except perhaps atx= 0); the solution then represents a
uniform spatial temperature distribution. On the other hand, atx= 0 we have
thatu(x, t) is identically zero for allt.
§TakeB=2π− 1 / (^2) to give the usual error function normalised in such a way that erf(∞)=1.See
the Appendix.