Difference between revisions of "Eigenfunction Matching for a Circular Dock"
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The potential and its derivative must be continuous across the | The potential and its derivative must be continuous across the | ||
transition from open water to the plate covered region. Therefore, the | transition from open water to the plate covered region. Therefore, the | ||
− | potentials and their derivatives at <math>r=a</math> have to be equal | + | potentials and their derivatives at <math>r=a</math> have to be equal |
− | + | for each angle and we obtain | |
<center> | <center> | ||
<math> | <math> | ||
e_{n}I_{n}(k_{0}a)\phi_{0}\left( z\right) + \sum_{m=0}^{\infty} | e_{n}I_{n}(k_{0}a)\phi_{0}\left( z\right) + \sum_{m=0}^{\infty} | ||
a_{mn} K_{n}(k_{m}a)\phi_{m}\left( z\right) | a_{mn} K_{n}(k_{m}a)\phi_{m}\left( z\right) | ||
− | =\sum_{m= | + | =\sum_{m=0}^{\infty}b_{mn}I_{n}(\kappa_{m}a)\psi_{m}(z) |
</math> | </math> | ||
</center> | </center> | ||
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e_{n}k_{0}I_{n}^{\prime}(k_{0}a)\phi_{0}\left( z\right) +\sum | e_{n}k_{0}I_{n}^{\prime}(k_{0}a)\phi_{0}\left( z\right) +\sum | ||
_{m=0}^{\infty} a_{mn}k_{m}K_{n}^{\prime}(k_{m}a)\phi_{m}\left( z\right) | _{m=0}^{\infty} a_{mn}k_{m}K_{n}^{\prime}(k_{m}a)\phi_{m}\left( z\right) | ||
− | =\sum_{m= | + | =\sum_{m=0}^{\infty}b_{mn}\kappa_{m}I_{n}^{\prime}(\kappa_{m}a)\psi |
_{m}(z) | _{m}(z) | ||
</math> | </math> | ||
Line 223: | Line 223: | ||
<math> | <math> | ||
e_{n}I_{n}(k_{0}a)A_{0}\delta_{0l}+a_{ln}K_{n}(k_{l}a)A_{l} | e_{n}I_{n}(k_{0}a)A_{0}\delta_{0l}+a_{ln}K_{n}(k_{l}a)A_{l} | ||
− | =\sum_{m= | + | =\sum_{m=0}^{\infty}b_{mn}I_{n}(\kappa_{m}a)B_{ml} \,\,\,(8) |
</math> | </math> | ||
</center> | </center> | ||
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e_{n}k_{0}I_{n}^{\prime}(k_{0}a)A_{0}\delta_{0l}+a_{ln}k_{l}K_{n}^{\prime | e_{n}k_{0}I_{n}^{\prime}(k_{0}a)A_{0}\delta_{0l}+a_{ln}k_{l}K_{n}^{\prime | ||
}(k_{l}a)A_{l} | }(k_{l}a)A_{l} | ||
− | =\sum_{m= | + | =\sum_{m=0}^{\infty}b_{mn}\kappa_{m}I_{n}^{\prime}(\kappa_{m} |
a)B_{ml} \,\,\,(9) | a)B_{ml} \,\,\,(9) | ||
</math> | </math> | ||
Line 249: | Line 249: | ||
\left( k_{0}I_{n}^{\prime}(k_{0}a)-k_{0}\frac{K_{n}^{\prime}(k_{0} | \left( k_{0}I_{n}^{\prime}(k_{0}a)-k_{0}\frac{K_{n}^{\prime}(k_{0} | ||
a)}{K_{n}(k_{0}a)}I_{n}(k_{0}a)\right) e_{n}A_{0}\delta_{0l} | a)}{K_{n}(k_{0}a)}I_{n}(k_{0}a)\right) e_{n}A_{0}\delta_{0l} | ||
− | =\sum_{m= | + | =\sum_{m=0}^{\infty}\left( \kappa_{m}I_{n}^{\prime}(\kappa_{m} |
a)-k_{l}\frac{K_{n}^{\prime}(k_{l}a)}{K_{n}(k_{l}a)}I_{n}(\kappa | a)-k_{l}\frac{K_{n}^{\prime}(k_{l}a)}{K_{n}(k_{l}a)}I_{n}(\kappa | ||
_{m}a)\right) B_{ml}b_{mn}\,\,\,(10) | _{m}a)\right) B_{ml}b_{mn}\,\,\,(10) |
Revision as of 09:19, 21 May 2008
Introduction
We show here a solution for a dock on Finite Depth water.
Governing Equations
We begin with the Frequency Domain Problem. We will use a cylindrical coordinate system, [math]\displaystyle{ (r,\theta,z) }[/math], assumed to have its origin at the centre of the circular plate which has radius [math]\displaystyle{ a }[/math]. The water is assumed to have constant finite depth [math]\displaystyle{ h }[/math] and the [math]\displaystyle{ z }[/math]-direction points vertically upward with the water surface at [math]\displaystyle{ z=0 }[/math] and the sea floor at [math]\displaystyle{ z=-h }[/math]. The boundary value problem can therefore be expressed as
[math]\displaystyle{ \Delta\phi=0, \,\, -H\lt z\lt 0, }[/math]
[math]\displaystyle{ \phi_{z}=0, \,\, z=-h, }[/math]
[math]\displaystyle{ \phi_{z}=0, \,\, z=0,\,r\lt a }[/math]
We must also apply the Sommerfeld Radiation Condition as [math]\displaystyle{ r\rightarrow\infty }[/math]. The subscript [math]\displaystyle{ z }[/math] denotes the derivative in [math]\displaystyle{ z }[/math]-direction.
Solution Method
Separation of variables
We now separate variables, noting that since the problem has circular symmetry we can write the potential as
[math]\displaystyle{ \phi(r,\theta,z)=\zeta(z)\sum_{n=-\infty}^{\infty}\rho_{n}(r)e^{i n \theta} }[/math]
Applying Laplace's equation we obtain
[math]\displaystyle{ \zeta_{zz}+\mu^{2}\zeta=0 }[/math]
so that:
[math]\displaystyle{ \zeta=\cos\mu(z+H) }[/math]
where the separation constant [math]\displaystyle{ \mu^{2} }[/math] must satisfy the Dispersion Relation for a Free Surface
[math]\displaystyle{ k\tan\left( kh\right) =-\alpha,\quad r\gt a }[/math]
and
[math]\displaystyle{ \kappa\tan(\kappa h)=0,\quad r\lt a }[/math]
Note that we have set [math]\displaystyle{ \mu=k }[/math] under the free surface and [math]\displaystyle{ \mu=\kappa }[/math] under the dock. We denote the positive imaginary solution of the Dispersion Relation for a Free Surface by [math]\displaystyle{ k_{0} }[/math] and the positive real solutions by [math]\displaystyle{ k_{m} }[/math], [math]\displaystyle{ m\geq1 }[/math]. The solutions of second equation will be denoted by [math]\displaystyle{ \kappa_{m} = m\pi/h }[/math], [math]\displaystyle{ m\geq 0 }[/math].
We define
[math]\displaystyle{ \phi_{m}\left( z\right) =\frac{\cos k_{m}(z+h)}{\cos k_{m}h},\quad m\geq0 }[/math]
as the vertical eigenfunction of the potential in the open water region and
[math]\displaystyle{ \psi_{m}\left( z\right) = \cos\kappa_{m}(z+h),\quad m\geq 0 }[/math]
as the vertical eigenfunction of the potential in the dock covered region. For later reference, we note that:
[math]\displaystyle{ \int\nolimits_{-h}^{0}\phi_{m}(z)\phi_{n}(z) d z=A_{m}\delta_{mn} }[/math]
where
[math]\displaystyle{ A_{m}=\frac{1}{2}\left( \frac{\cos k_{m}h\sin k_{m}h+k_{m}h}{k_{m}\cos ^{2}k_{m}h}\right) }[/math]
and
[math]\displaystyle{ \int\nolimits_{-h}^{0}\phi_{n}(z)\psi_{m}(z) d z=B_{mn} }[/math]
where
and
[math]\displaystyle{ \int\nolimits_{-h}^{0}\psi_{m}(z)\psi_{n}(z) d z=C_{m}\delta_{mn} }[/math]
where
We now solve for the function [math]\displaystyle{ \rho_{n}(r) }[/math]. Using Laplace's equation in polar coordinates we obtain
[math]\displaystyle{ \frac{\mathrm{d}^{2}\rho_{n}}{\mathrm{d}r^{2}}+\frac{1}{r} \frac{\mathrm{d}\rho_{n}}{\mathrm{d}r}-\left( \frac{n^{2}}{r^{2}}+\mu^{2}\right) \rho_{n}=0 }[/math]
where [math]\displaystyle{ \mu }[/math] is [math]\displaystyle{ k_{m} }[/math] or [math]\displaystyle{ \kappa_{m}, }[/math] depending on whether [math]\displaystyle{ r }[/math] is greater or less than [math]\displaystyle{ a }[/math]. We can convert this equation to the standard form by substituting [math]\displaystyle{ y=\mu r }[/math] to obtain
[math]\displaystyle{ y^{2}\frac{\mathrm{d}^{2}\rho_{n}}{\mathrm{d}y^{2}}+y\frac{\mathrm{d}\rho_{n} }{\rm{d}y}-(n^{2}+y^{2})\rho_{n}=0 }[/math]
The solution of this equation is a linear combination of the modified Bessel functions of order [math]\displaystyle{ n }[/math], [math]\displaystyle{ I_{n}(y) }[/math] and [math]\displaystyle{ K_{n}(y) }[/math] (Abramowitz and Stegun 1964). Since the solution must be bounded we know that under the plate the solution will be a linear combination of [math]\displaystyle{ I_{n}(y) }[/math] while outside the plate the solution will be a linear combination of [math]\displaystyle{ K_{n}(y) }[/math]. Therefore the potential can be expanded as
[math]\displaystyle{ \phi(r,\theta,z)=\sum_{n=-\infty}^{\infty}\sum_{m=0}^{\infty}a_{mn}K_{n} (k_{m}r)e^{i n\theta}\phi_{m}(z), \;\;r\gt a }[/math]
and
[math]\displaystyle{ \phi(r,\theta,z)=\sum_{n=-\infty}^{\infty}\sum_{m=0}^{\infty}b_{mn} I_{n}(\kappa_{m}r)e^{i n\theta}\psi_{m}(z), \;\;r\lt a }[/math]
where [math]\displaystyle{ a_{mn} }[/math] and [math]\displaystyle{ b_{mn} }[/math] are the coefficients of the potential in the open water and the plate covered region respectively.
Incident potential
The incident potential is a wave of amplitude [math]\displaystyle{ A }[/math] in displacement travelling in the positive [math]\displaystyle{ x }[/math]-direction. The incident potential can therefore be written as
[math]\displaystyle{ \phi^{\mathrm{I}} =\frac{A}{i\sqrt{\alpha}}e^{k_{0}x}\phi_{0}\left( z\right) =\sum\limits_{n=-\infty}^{\infty}e_{n}I_{n}(k_{0}r)\phi_{0}\left(z\right) e^{i n \theta} }[/math]
where [math]\displaystyle{ e_{n}=A/\left(i\sqrt{\alpha}\right) }[/math] (we retain the dependence on [math]\displaystyle{ n }[/math] for situations where the incident potential might take another form).
An infinite dimensional system of equations
The potential and its derivative must be continuous across the transition from open water to the plate covered region. Therefore, the potentials and their derivatives at [math]\displaystyle{ r=a }[/math] have to be equal for each angle and we obtain
[math]\displaystyle{ e_{n}I_{n}(k_{0}a)\phi_{0}\left( z\right) + \sum_{m=0}^{\infty} a_{mn} K_{n}(k_{m}a)\phi_{m}\left( z\right) =\sum_{m=0}^{\infty}b_{mn}I_{n}(\kappa_{m}a)\psi_{m}(z) }[/math]
and
[math]\displaystyle{ e_{n}k_{0}I_{n}^{\prime}(k_{0}a)\phi_{0}\left( z\right) +\sum _{m=0}^{\infty} a_{mn}k_{m}K_{n}^{\prime}(k_{m}a)\phi_{m}\left( z\right) =\sum_{m=0}^{\infty}b_{mn}\kappa_{m}I_{n}^{\prime}(\kappa_{m}a)\psi _{m}(z) }[/math]
for each [math]\displaystyle{ n }[/math]. We solve these equations by multiplying both equations by [math]\displaystyle{ \phi_{l}(z) }[/math] and integrating from [math]\displaystyle{ -H }[/math] to [math]\displaystyle{ 0 }[/math] to obtain:
[math]\displaystyle{ e_{n}I_{n}(k_{0}a)A_{0}\delta_{0l}+a_{ln}K_{n}(k_{l}a)A_{l} =\sum_{m=0}^{\infty}b_{mn}I_{n}(\kappa_{m}a)B_{ml} \,\,\,(8) }[/math]
and
[math]\displaystyle{ e_{n}k_{0}I_{n}^{\prime}(k_{0}a)A_{0}\delta_{0l}+a_{ln}k_{l}K_{n}^{\prime }(k_{l}a)A_{l} =\sum_{m=0}^{\infty}b_{mn}\kappa_{m}I_{n}^{\prime}(\kappa_{m} a)B_{ml} \,\,\,(9) }[/math]
Equation (8) can be solved for the open water coefficients [math]\displaystyle{ a_{mn} }[/math]
[math]\displaystyle{ a_{ln}=-e_{n}\frac{I_{n}(k_{0}a)}{K_{n}(k_{0}a)}\delta_{0l}+\sum _{m=-2}^{\infty}b_{mn}\frac{I_{n}(\kappa_{m}a)B_{ml}}{K_{n}(k_{l}a)A_{l}} }[/math]
which can then be substituted into equation (9) to give us
[math]\displaystyle{ \left( k_{0}I_{n}^{\prime}(k_{0}a)-k_{0}\frac{K_{n}^{\prime}(k_{0} a)}{K_{n}(k_{0}a)}I_{n}(k_{0}a)\right) e_{n}A_{0}\delta_{0l} =\sum_{m=0}^{\infty}\left( \kappa_{m}I_{n}^{\prime}(\kappa_{m} a)-k_{l}\frac{K_{n}^{\prime}(k_{l}a)}{K_{n}(k_{l}a)}I_{n}(\kappa _{m}a)\right) B_{ml}b_{mn}\,\,\,(10) }[/math]
for each [math]\displaystyle{ n }[/math]. Together with equations (6) and (7) equation (10) gives the required equations to solve for the coefficients of the water velocity potential in the plate covered region.
Numerical Solution
To solve the system of equations (10) together with the boundary conditions (6 and 7) we set the upper limit of [math]\displaystyle{ l }[/math] to be [math]\displaystyle{ M }[/math]. We also set the angular expansion to be from [math]\displaystyle{ n=-N }[/math] to [math]\displaystyle{ N }[/math]. This gives us
[math]\displaystyle{ \phi(r,\theta,z)=\sum_{n=-N}^{N}\sum_{m=0}^{M}a_{mn}K_{n}(k_{m}r)e^{i n\theta }\phi_{m}(z), \;\;r\gt a }[/math]
and
[math]\displaystyle{ \phi(r,\theta,z)=\sum_{n=-N}^{N}\sum_{m=-2}^{M}b_{mn}I_{n}(\kappa _{m}r)e^{i n\theta}\psi_{m}(z), \;\;r\lt a }[/math]
Since [math]\displaystyle{ l }[/math] is an integer with [math]\displaystyle{ 0\leq l\leq M }[/math] this leads to a system of [math]\displaystyle{ M+1 }[/math] equations. The number of unknowns is [math]\displaystyle{ M+3 }[/math] and the two extra equations are obtained from the boundary conditions for the free plate (6) and (7). The equations to be solved for each [math]\displaystyle{ n }[/math] are
[math]\displaystyle{ \left( k_{0}I_{n}^{\prime}(k_{0}a)-k_{0}\frac{K_{n}^{\prime}(k_{0} a)}{K_{n}(k_{0}a)}I_{n}(k_{0}a)\right) e_{n}A_{0}\delta_{0l} =\sum_{m=-2}^{M}\left( \kappa_{m}I_{n}^{\prime}(\kappa_{m}a)-k_{l} \frac{K_{n}^{\prime}(k_{l}a)}{K_{n}(k_{l}a)}I_{n}(\kappa_{m}a)\right) B_{ml}b_{mn} }[/math]
[math]\displaystyle{ \sum_{m=-2}^{M}(\beta\kappa_{m}^{4}+1-\alpha\gamma)^{-1}b_{mn} \left( \kappa_{m}^{2}I_{n}(\kappa_{m}a)-\frac{1-\nu}{a}\left( \kappa _{m}I_{n}^{\prime}(\kappa_{m}a)-\frac{n^{2}}{a}I_{n}(\kappa_{m}a)\right) \right) =0 }[/math]
and
[math]\displaystyle{ \sum_{m=-2}^{M}(\beta\kappa_{m}^{4}+1-\alpha\gamma)^{-1}b_{mn} \left( \kappa_{m}^{3}I_{n}^{\prime}(\kappa_{m}a)+n^{2}\frac{1-\nu}{a^{2} }\left( \kappa_{m}I_{n}^{\prime}(\kappa_{m}a)+\frac{1}{a}I_{n}(\kappa _{m}a)\right) \right) =0 }[/math]
It should be noted that the solutions for positive and negative [math]\displaystyle{ n }[/math] are identical so that they do not both need to be calculated. There are some minor simplifications which are a consequence of this which are discussed in more detail in Zilman and Miloh 2000.
The Shallow Depth Theory of Zilman and Miloh 2000
The shallow water theory of Zilman and Miloh 2000 can be recovered by simply setting the depth shallow enough that the shallow water theory is valid and setting [math]\displaystyle{ M=0 }[/math]. If the shallow water theory is valid then the first three roots of the dispersion equation for the ice will be exactly the same roots found in the shallow water theory by solving the polynomial equation. The system of equations has four unknowns (three under the plate and one in the open water) exactly as for the theory of Zilman and Miloh 2000.
Numerical Results
We present solutions for a plate of radius [math]\displaystyle{ a=100 }[/math]. The wavelength is [math]\displaystyle{ \lambda=50 }[/math] (recall that [math]\displaystyle{ \alpha=2\pi/\lambda\tanh\left( 2\pi H/\lambda\right) }[/math]), [math]\displaystyle{ \beta=10^{5} }[/math] and [math]\displaystyle{ \gamma=0 }[/math]. We compare with the method presented in Meylan 2002 for an arbitrary shaped plate modified to compute the solution for finite depth. The circle is represented in this scheme by square panels which are arranged to, as nearly as possible, form a circular shape.
Figure 1 shows the real part (a and c) and imaginary part (b and d) of the displacement for depth [math]\displaystyle{ H=25 }[/math]. The number of points in the angular expansion is [math]\displaystyle{ N=16 }[/math]. The number of roots of the dispersion equation is [math]\displaystyle{ M=8 }[/math]. Plots (a) and (b) are calculated using the circular plate method described here. Plots (c) and (d) are calculated using an arbitrary shaped plate method, with the panels shown being the actual panels used in the calculation. We see the expected agreement between the two methods.
The table below shows the values of the coefficients
[math]\displaystyle{ b_{mn} }[/math] for the case for previous case ([math]\displaystyle{ \lambda=50 }[/math],
[math]\displaystyle{ a=100 }[/math], [math]\displaystyle{ \beta=10^5 }[/math], [math]\displaystyle{ \gamma=0 }[/math], and [math]\displaystyle{ H=25 }[/math]). The very rapid
decay of the higher evanescent modes is apparent. This shows how efficient this method of
solution is since only a small number of modes are required.
[math]\displaystyle{ b_{mn} }[/math] [math]\displaystyle{ n=0 }[/math] [math]\displaystyle{ n=1 }[/math] [math]\displaystyle{ n=2 }[/math] [math]\displaystyle{ n=3 }[/math] [math]\displaystyle{ m=-2 }[/math] [math]\displaystyle{ 1.32 \!\times\!10^{-1}-9.71 \!\times\!10^{-1}i }[/math] [math]\displaystyle{ 6.85 \!\times\!10^{-1} -6.37 \!\times\!10^{-1}i }[/math] [math]\displaystyle{ 2.95 \!\times\!10^{-1}-1.12 \!\times\!10^{0}i }[/math] [math]\displaystyle{ 6.09 \!\times\!10^{-1} -4.95 \!\times\!10^{-1}i }[/math] [math]\displaystyle{ m=-1 }[/math] [math]\displaystyle{ -6.38 \!\times\!10^{-5}+1.47 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ -3.92 \!\times\!10^{-3} + 3.99 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ 1.41 \!\times\!10^{-3}+2.82 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ -4.28 \!\times\!10^{-3} +3.89 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ m=0 }[/math] [math]\displaystyle{ -3.29 \!\times\!10^{-4}+1.43 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ 4.26 \!\times\!10^{-3} -3.62 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ -2.62 \!\times\!10^{-3}+1.76 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ 4.68 \!\times\!10^{-3} -3.39 \!\times\!10^{-3}i }[/math] [math]\displaystyle{ m=1 }[/math] [math]\displaystyle{ 4.31 \!\times\!10^{-7}-3.18 \!\times\!10^{-6}i }[/math] [math]\displaystyle{ -6.64 \!\times\!10^{-6} -7.14 \!\times\!10^{-6}i }[/math] [math]\displaystyle{ 2.07 \!\times\!10^{-7}-7.89 \!\times\!10^{-7}i }[/math] [math]\displaystyle{ -6.30 \!\times\!10^{-6} -7.74 \!\times\!10^{-6}i }[/math] [math]\displaystyle{ m=2 }[/math] [math]\displaystyle{ 6.79 \!\times\!10^{-13}-5.01 \!\times\!10^{-12}i }[/math] [math]\displaystyle{ -5.78 \!\times\!10^{-12}-6.21 \!\times\!10^{-12}i }[/math] [math]\displaystyle{ 8.87 \!\times\!10^{-13}-3.38 \!\times\!10^{-12}i }[/math] [math]\displaystyle{ -5.54 \!\times\!10^{-12}-6.81 \!\times\!10^{-12}i }[/math] [math]\displaystyle{ m=3 }[/math] [math]\displaystyle{ 1.35 \!\times\!10^{-18}-9.95 \!\times\!10^{-18}i }[/math] [math]\displaystyle{ -9.69 \!\times\!10^{-18}-1.04 \!\times\!10^{-17}i }[/math] [math]\displaystyle{ 1.94 \!\times\!10^{-18}-7.39 \!\times\!10^{-18}i }[/math] [math]\displaystyle{ -9.37 \!\times\!10^{-18}-1.15 \!\times\!10^{-17}i }[/math]