PGE/PoissonOrigin: Difference between revisions
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Example 1 [<math>n=3, \Gamma(n/2-1)=\pi^{1 / 2}</math>]: | |||
<table border="0" align="center" cellpadding="5"> | |||
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<td align="right"><math>u(\vec{x})</math></td> | |||
<td align="center"><math>=</math></td> | |||
<td align="left"><math> | |||
\int \biggl[ \frac{p(\vec{x}+\vec{y}) }{4\pi|\vec{y}|}\biggr] d^3\vec{y} \, ; | |||
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Example 2 [<math>n=4, \Gamma(n/2-1)=1</math>]: | |||
<table border="0" align="center" cellpadding="5"> | |||
<tr> | |||
<td align="right"><math>u(\vec{x})</math></td> | |||
<td align="center"><math>=</math></td> | |||
<td align="left"><math> | |||
\int \biggl[ \frac{p(\vec{x}+\vec{y}) }{4\pi^2|\vec{y}|^2}\biggr] d^4\vec{y} \, ; | |||
</math> | |||
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Example 3 [<math>n=5, \Gamma(n/2-1)=\sqrt{\pi}/2</math>]: | |||
<table border="0" align="center" cellpadding="5"> | |||
<tr> | |||
<td align="right"><math>u(\vec{x})</math></td> | |||
<td align="center"><math>=</math></td> | |||
<td align="left"><math> | |||
\int \biggl[ \frac{p(\vec{x}+\vec{y}) }{8\pi^2|\vec{y}|^3}\biggr] d^5\vec{y} \, . | |||
</math> | |||
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Latest revision as of 20:35, 17 December 2022
Origin of the Poisson Equation
We will follow closely the presentation found in §2.1 of [BT87] in deriving the,
According to Isaac Newton's inverse-square law of gravitation, the acceleration, , felt at any point in space, , due to the gravitational attraction of a distribution of mass, , is obtained by integrating over the accelerations exerted by each small mass element, , as follows:
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[BT87], p. 31, Eq. (2-2) |
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where, is the universal gravitational constant.
Step 1
In the astrophysics literature, it is customary to adopt the following definition of the,
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Scalar Gravitational Potential |
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[BT87], p. 31, Eq. (2-3) |
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(Note: As we have detailed in a separate discussion, throughout [EFE] Chandrasekhar adopts a different sign convention as well as a different variable name to represent the gravitational potential.) Recognizing that the gradient of the function, , with respect to is,
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[BT87], p. 31, Eq. (2-4) |
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and given that, in the above expression for the gravitational acceleration, the integration is taken over the volume that is identified by the primed , rather than the unprimed , coordinate system, we find that we may write the gravitational acceleration as,
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[BT87], p. 31, Eq. (2-5) |
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Step 2
Next, we realize that the divergence of the gravitational acceleration takes the form,
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[BT87], p. 31, Eq. (2-6) |
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Examining the expression inside the curly braces, we find that,
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Note: Ostensibly, this last expression is the same as equation 2-7 of [BT87], but apparently there is a typesetting error in the BT87 publication. As printed, the denominator of the first term on the right-hand side is , whereas it should be as written here. In an Errata to BT87, the authors have identified this error along with its correction as the first among a list of innocuous errors. |
When , we may cancel the factor from top and bottom of the last term in this equation to conclude that,
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when, |
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[BT87], p. 31, Eq. (2-8) |
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Therefore, any contribution to the integral must come from the point , and we may restrict the volume of integration to a small sphere … centered on this point. Since, for a sufficiently small sphere, the density will be almost constant through this volume, we can take out of the integral. Via the divergence theorem (for details, see appendix 1.B — specifically, equation 1B-42 — of [BT87]), the remaining volume integral may be converted into a surface integral over the small volume centered on the point and, in turn, this surface integral may be written in terms of an integral over the solid angle, , to give:
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[BT87], p. 32, Eq. (2-9b) |
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Step 3
Finally, combining the results of Step 1 and Step 2 gives the desired,
which serves as one of the principal governing equations in our examination of the Structure, Stability, & Dynamics of Self-Gravitating Fluids.
See Also
- Ulrich D. Jentschura & Jonathan Sapirstein (April, 2018), arXiv:1801.10224v2 [math-ph], Green Function of the Poisson Equation:
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Mark Viola (April 2021) Generalizations of Poisson's Equation -- Math Stack Exchange
"… we find the Green function for Poisson's equation, is given by "
where is the Dirac Delta. Hence, when the right-hand-side source function is spatially extended, … the solution of the Poisson's equation can be written as
Example 1 []:
Example 2 []:
Example 3 []:
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