196 lines
9.2 KiB
Markdown
196 lines
9.2 KiB
Markdown
---
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title: 18-scattering
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---
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§18. Scattering
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As already mentioned in §17, a complete calculation of the result of a
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collision between two particles (i.e. the determination of the angle x) requires
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the solution of the equations of motion for the particular law of interaction
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involved.
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We shall first consider the equivalent problem of the deflection of a single
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particle of mass m moving in a field U(r) whose centre is at rest (and is at
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the centre of mass of the two particles in the original problem).
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As has been shown in $14, the path of a particle in a central field is sym-
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metrical about a line from the centre to the nearest point in the orbit (OA
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in Fig. 18). Hence the two asymptotes to the orbit make equal angles (o,
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say) with this line. The angle X through which the particle is deflected as it
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passes the centre is seen from Fig. 18 to be
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X = -200.
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(18.1)
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A
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X
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to
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FIG. 18
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The angle do itself is given, according to (14.7), by
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(M/r2) dr
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(18.2)
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taken between the nearest approach to the centre and infinity. It should be
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recalled that rmin is a zero of the radicand.
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For an infinite motion, such as that considered here, it is convenient to
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use instead of the constants E and M the velocity Voo of the particle at infinity
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and the impact parameter p. The latter is the length of the perpendicular
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from the centre O to the direction of Voo, i.e. the distance at which the particle
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would pass the centre if there were no field of force (Fig. 18). The energy
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and the angular momentum are given in terms of these quantities by
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E = 1mvoo²,
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M = mpVoo,
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(18.3)
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§18
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Scattering
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49
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and formula (18.2) becomes
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dr
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(18.4)
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Together with (18.1), this gives X as a function of p.
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In physical applications we are usually concerned not with the deflection
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of a single particle but with the scattering of a beam of identical particles
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incident with uniform velocity Voo on the scattering centre. The different
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particles in the beam have different impact parameters and are therefore
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scattered through different angles X. Let dN be the number of particles
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scattered per unit time through angles between X and X + dx. This number
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itself is not suitable for describing the scattering process, since it is propor-
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tional to the density of the incident beam. We therefore use the ratio
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do = dN/n,
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(18.5)
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where n is the number of particles passing in unit time through unit area of
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the beam cross-section (the beam being assumed uniform over its cross-
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section). This ratio has the dimensions of area and is called the effective
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scattering cross-section. It is entirely determined by the form of the scattering
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field and is the most important characteristic of the scattering process.
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We shall suppose that the relation between X and P is one-to-one; this is
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so if the angle of scattering is a monotonically decreasing function of the
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impact parameter. In that case, only those particles whose impact parameters
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lie between p(x) and p(x) + dp(x) are scattered at angles between X and
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+ dx. The number of such particles is equal to the product of n and the
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area between two circles of radii P and p+dp, i.e. dN = 2mp dp n. The
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effective cross-section is therefore
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do = 2mp dp.
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(18.6)
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In order to find the dependence of do on the angle of scattering, we need
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only rewrite (18.6) as
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do = 2(x)|dp(x)/dx|dx
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(18.7)
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Here we use the modulus of the derivative dp/dx, since the derivative may
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be (and usually is) negative. t Often do is referred to the solid angle element
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do instead of the plane angle element dx. The solid angle between cones
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with vertical angles X and x+dx is do = 2n sin x dx. Hence we have from
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(18.7)
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do.
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(18.8)
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t If the function p(x) is many-valued, we must obviously take the sum of such expressions
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as (18.7) over all the branches of this function.
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50
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Collisions Between Particles
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§18
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Returning now to the problem of the scattering of a beam of particles, not
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by a fixed centre of force, but by other particles initially at rest, we can say
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that (18.7) gives the effective cross-section as a function of the angle of
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scattering in the centre-of-mass system. To find the corresponding expression
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as a function of the scattering angle 0 in the laboratory system, we must
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express X in (18.7) in terms of 0 by means of formulae (17.4). This gives
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expressions for both the scattering cross-section for the incident beam of
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particles (x in terms of 01) and that for the particles initially at rest (x in terms
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of O2).
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PROBLEMS
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PROBLEM 1. Determine the effective cross-section for scattering of particles from a perfectly
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rigid sphere of radius a (i.e. when the interaction is such that U = 8 for r < a and U = 0
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for r>a).
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SOLUTION. Since a particle moves freely outside the sphere and cannot penetrate into it,
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the path consists of two straight lines symmetrical about the radius to the point where the
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particle strikes the sphere (Fig. 19). It is evident from Fig. 19 that
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a sin to = a sin 1(-x) = a cos 1x.
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A
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to
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p
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&
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FIG. 19
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Substituting in (18.7) or (18.8), we have
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do = 1ma2 sin X do,
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(1)
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i.e. the scattering is isotropic in the C system. On integrating do over all angles, we find that
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the total cross-section o = na2, in accordance with the fact that the "impact area" which the
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particle must strike in order to be scattered is simply the cross-sectional area of the sphere.
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In order to change to the L system, X must be expressed in terms of 01 by (17.4). The
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calculations are entirely similar to those of $16, Problem 2, on account of the formal resemb-
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lance between formulae (17.4) and (16.5). For M1 < m2 (where M1 is the mass of the particle
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and m2 that of the sphere) we have
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do1,
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where do1 = 2n sin 01 d01. If, on the other hand, M2 < M1, then
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For m1 = M2, we have do = a²|cos 01| do1, which can also be obtained directly by sub-
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stituting X = 201 from (17.9) in (1).
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§18
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Scattering
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51
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For a sphere originally at rest, X = n-202 in all cases, and substitution in (1) gives
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do2 = a2|cos 02 do2.
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PROBLEM 2. Express the effective cross-section (Problem 1) as a function of the energy E
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lost by a scattered particle.
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SOLUTION. The energy lost by a particle of mass M1 is equal to that gained by the sphere of
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mass M2. From (17.5) and (17.7), € = E2' = [2m22m2/(m1+m2)2] voo2 sin21x = Emax sin21x,
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whence de = 1 mex sin X dx; substituting in (1), Problem 1, we have do = na2 de/emax. The
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scattered particles are uniformly distributed with respect to € in the range from zero to
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Emax.
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PROBLEM 3. Find the effective cross-section as a function of the velocity Uoo for particles
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scattered in a field U -rrn.
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SOLUTION. According to (10.3), if the potential energy is a homogeneous function of order
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k = -n, then similar paths are such that p ~v-2/n, or p = Voo-2/nf(x), the angles of deflec-
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tion X being equal for similar paths. Substitution in (18.6) gives do ~ Voo-4/n do.
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PROBLEM 4. Determine the effective cross-section for a particle to "fall" to the centre of
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a field U = -a/r2.
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SOLUTION. The particles which "fall" to the centre are those for which 2a > mp20002 (see
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(14.11)), i.e. for which the impact parameter does not exceed Pmax = (2a/mvoo). The
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effective cross-section is therefore o = Pmax2 = 2na/mvo².
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PROBLEM 5. The same as Problem 4, but for a field U = -a/rn (n 2, a > 0).
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SOLUTION. The effective potential energy Ueff = depends on r in the
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manner shown in Fig. 20. Its maximum value is
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Ueff
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U0
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FIG. 20
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The particles which "fall" to the centre are those for which U0 < E. The condition U0 = E
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gives Pmax, whence
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=
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PROBLEM 6. Determine the effective cross-section for particles of mass m1 to strike a sphere
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of mass m2 and radius R to which they are attracted in accordance with Newton's law.
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SOLUTION. The condition for a particle to reach the sphere is that rmin < R, where r'min
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is the point on the path which is nearest to the centre of the sphere. The greatest possible
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value of P is given by rmin = R; this is equivalent to Ueff(R) = E or
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= , where a = ymim2 (2 being the gravitational constant) and we have put m 22 M1 on
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the assumption that m2 > M1. Solving for pmax2, we finally obtain o = mR2(1+2ym2/Rvv3).
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52
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Collisions Between Particles
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§18
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When
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Voo
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8 the effective cross-section tends, of course, to the geometrical cross-section
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of the sphere.
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PROBLEM 7. Deduce the form of a scattering field U(r), given the effective cross-section
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as a function of the angle of scattering for a given energy E. It is assumed that U(r) decreases
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monotonically with r (a repulsive field), with U(0) > E and U(00) = 0 (O. B. FIRSOV 1953).
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SOLUTION. Integration of do with respect to the scattering angle gives, according to the
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formula
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(1)
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the square of the impact parameter, so that p(x) (and therefore x(p)) is known.
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We put
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s=1/r,
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=1/p2,
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[[1-(U|E)]
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(2)
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Then formulae (18.1), (18.2) become
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1/
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(3)
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where so(x) is the root of the equation xw2(so)-so2 = 0.
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Equation (3) is an integral equation for the function w(s), and may be solved by a method
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similar to that used in $12. Dividing both sides of (3) by (a-x) and integrating with respect
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to x from zero to a, we find
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so(a)
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dx ds
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so(a)
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ds
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or, integrating by parts on the left-hand side,
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This relation is differentiated with respect to a, and then so(a) is replaced by s simply;
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accordingly a is replaced by s2/w2, and the result is, in differential form,
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=
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(11/20)
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or
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dx
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This equation can be integrated immediately if the order of integration on the right-hand
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side is inverted. Since for S = 0 (i.e. r oo) we must have W = 1 (i.e. U = 0), we have,
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