phy 042: electricity and magnetism laplace’s equation prof. hugo beauchemin 1
TRANSCRIPT
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PHY 042: Electricity and Magnetism
Laplace’s equation
Prof. Hugo Beauchemin
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Introduction I Typical problem in E&M:
A set of conductors are maintained at a given potential to shape a field outside the conductors in order to perform some task. We need to know what is the field created.
Example: drift chambers Knowing the electric field allows to compute drift time, and
therefore to determine particle trajectories in the detector (tracks)
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Introduction II In the previous example: we don’t know the charge
distribution nor the total charge, but we know the voltage on the conductors because they are maintained by hand
We can find the E-field everywhere using Laplace’s equation
A potential that doesn’t fully satisfy Laplace’s equation together with a certain set of boundary conditions in a region of space where there is no charge is not an electrostatics potential
To fully appreciate the gain in generality provided by the Gauss’ equation (+ Helmholtz’ theorem) in its differential form, the development of more in-depth mathematical tools to solve the Laplace’s equation is needed
The techniques apply equally well to Quantum and Newtonian mechanics, astronomy, fluid mechanics, heat theory
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A 1D intuition To get an intuition about solving the Laplace’s equation,
let study the 1D case
Two undetermined constants Using the boundary conditions specified in a concrete
experiment (problem), we can solve for m and b and get a unique solution
E.g.: {V(0), V(L)}, {V(0), V’(0)}, {V(0), V’(L)}, etc.
The solution has two simple but important properties:
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Solution satisfied the superposition principle Similar to stationary wave solutions …
2. The solution has no max nor min, except at the end points
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Higher dimensions Laplace’s equation now becomes a partial differential
equation
The general solution is not expressible with just 2 arbitrary constants It generally needs an finite number of free constants
There are no simple general solution: case by case
The two properties in 1D are generalizable to higher dimensions The value of V at r is the average of V over a spherical
surface of radius R centered on r This is used to get numerical solutions to Laplace’s equation
V cannot have any local min nor max, except at boundaries
Will use these two properties to show that:
A set of boundary conditions suffices to uniquely find V from Poisson/Laplace
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How to solve Laplace? Once again, there is no general solution to the equation and
the number of constants to be fixed completely depends on the boundary conditions and thus on the problem to be solved
But there are many different methods that can be used to solve different classes of problems, classes that each account for many different experimental setups and contexts.
There are problems that are formally and mathematically related to each others such that the same techniques of solving Laplace can be used for all of them.
Problems (situations, setups) where V or s is specified on the boundary and V must be determined inside the interior:
Solve by a method called: separation of variables
Still very general: this corresponds to many concrete devices such as drift chamber detectors where an E-field is produced
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Types of boundary conditions
The separation of variables method applies when either V or s is specified on the boundary.
Means two very different things
1. Empirically: Two very different experimental preparations:
Fixing V means grounding a conductor or attaching it to a battery
Fixing s means charging a conductor, and maintaining the charge distribution constant
2. Mathematically: two different formalisms for fixing V or s:
V=V0 solution is known at some x0 Dirichlet conditions
s=s0 derivative of solution is known at x0 Neumann conditions
For conductors, just need to know Qtot (theorem)
With a complete set of Dirichlet and/or Neumann
conditions the solution to Laplace’s equation is unique
A generic exampleProblem:
Two infinite grounded metal plates parallel to the XZ plane at y=0 and y=a, and an infinite strip insulated from the two plates situated at x=0 and maintained at a fixed potential V0(y)
Find V between plates
V=0
V=0
y
z
x
V=V0(y)
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1. Find boundary conditions
3. Get general solutions to each separated diff. eqn.
2. Apply separation of variables
4. Apply boundary conditions to fix free constants
Solution
Problem:
Two infinite grounded metal plates parallel to the XZ plane at y=0 and y=a, and an infinite strip insulated from the two plates situated at x=0 and maintained at a fixed potential V0(y)
Find V between plates
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A generic solution Solving the Laplace’s equation with the method of separation of
variables for the above 2D problem yields the general solution:
Use boundary conditions specific to this problem to fix A,B,C,D, k
After having applied 3 of the boundary conditions, we are left with a family of solutions to Laplace’s equation with these boundaries
The sum of solutions is a solution to Laplace’s equation, with different boundary conditions Remember V3 in our proof of uniqueness
Fourier series provide THE solution to our generic problem
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Another generic example: spherical
symmetry I Laplace’s equation takes a different form:
Assume again separation of variables (with azimuthal symmetry):
An eigenvalue problem Remember spherical harmonics
l is an integer number Remember quantization of angular momentum
Solution for Q(q): Legendre’s polynomial
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Spherical symmetry II Solution to R(r):
guesses from limiting cases: and
If this is a solution, then this is the solution…
From this intuitive approach, we have as a general solution:
We then need specific boundary conditions to fix Al, Bl
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Example: hollow sphere An hollow sphere of radius R is maintained
at a potential V0(q) on its external surface
Boundary conditions
Inside Outside
V(0,q)<∞ V(∞,q)<∞
V(R,q)=V0(q) V(R,q)=V0(q)
Generally, the potential V0 applied to the sphere is not a Legendre’s polynomial, but any functions decided by the experimenter
⇒ Need to use Fourier again
Assume V0(q) = ksin2(q/2)
V0=ksin2q/2
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Another example Grounded hollow sphere in
an constant external electric field:
The solution is:
First term: external field contribution
Second term: contribution due to the induced charge
The induced charge is:
Positive at the top, negative at the bottom
E=E0 z