SSC/Structure/BiPolytropes/51RenormaizePart2: Difference between revisions
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<math>\mathcal{m}_\mathrm{surf}^{-1}~ \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} | <math>\mathcal{m}_\mathrm{surf}^{-1}~ \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} | ||
A\biggl[ \sin(\eta-B) - \eta\cos(\eta-B) \biggr] \, ,</math> | A\biggl[ \sin(\eta-B) - \eta\cos(\eta-B) \biggr] \, ,</math> and, | ||
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<math> | <math> | ||
\biggl(\frac{1}{4\pi}\biggr) | |||
\mathcal{m}_\mathrm{surf}^{-1}~ \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} | \mathcal{m}_\mathrm{surf}^{-1}~ \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} | ||
A\biggl[ \ | A\biggl[ \eta\cos(\eta-B) -\sin(\eta-B) \biggr] \cdot | ||
\biggl[ | \biggl[ | ||
\mathcal{m}_\mathrm{surf}^{-2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{3} \theta^{-2}_i (2\pi)^{-1/2}\eta | \mathcal{m}_\mathrm{surf}^{-2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{3} \theta^{-2}_i (2\pi)^{-1/2}\eta | ||
\biggr]^{-4} | \biggr]^{-4} | ||
</math> | |||
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<td align="center"><math>=</math></td> | |||
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<math> | |||
\biggl(\frac{1}{2^4\pi^2} \cdot \frac{2}{\pi} \cdot 2^4 \pi^4\biggr)^{1 / 2} | |||
\mathcal{m}_\mathrm{surf}^{7}~ \theta^{7}_i | |||
A\biggl[ \eta\cos(\eta-B) -\sin(\eta-B) \biggr] \cdot | |||
\biggl[ | |||
\biggl( \frac{\mu_e}{\mu_c} \biggr)^{-12} \eta^{-4} | |||
\biggr] | |||
</math> | |||
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<td align="center"><math>=</math></td> | |||
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<math> | |||
\biggl( 2\pi\biggr)^{1 / 2} | |||
\mathcal{m}_\mathrm{surf}^{7}~ \theta^{7}_i \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-12} \cdot | |||
\frac{A}{\eta^4}\biggl[ \eta\cos(\eta-B) -\sin(\eta-B) \biggr] \cdot | |||
</math> | </math> | ||
</td> | </td> | ||
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</table> | </table> | ||
As a cross-check … | |||
==Example Models Along BiPolytrope Sequence 0.3100== | ==Example Models Along BiPolytrope Sequence 0.3100== | ||
Revision as of 14:49, 19 August 2022
Radial Oscillations in (nc,ne) = (5,1) Bipolytropes
Logically, this chapter extends the discussion — specifically the subsection titled, Try Again — found in the "Ramblings" chapter in which we introduced a total-mass-based renormalization of models along sequences of bipolytropes.
Building Each Model
Basic Equilibrium Structure
Most of the details underpinning the following summary relations can be found here.
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Note that, for a given specification of the molecular-weight ratio, , and the interface location, , in which case,
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Additional Relations
Core
The analytically prescribed radial pressure gradient in the core can be obtained as follows.
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Also,
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Hence,
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For comparison, in hydrostatic balance we expect …
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This matches our earlier expression, as it should.
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Takeaway Expression
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Envelope
Given that, for the envelope,
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and, |
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we deduce that,
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As a cross-check …
Example Models Along BiPolytrope Sequence 0.3100
For the case of and , we consider here the examination of models with three relatively significant values of the core/envelope interface:
- Model D : Approximate location along the sequence of the model with the maximum fractional core radius.
- Model C : Approximate location along the sequence of the onset of fundamental-mode instability.
- Model A : Exact location along the sequence of the model with the maximum fractional core mass.
Model C
Here we examine a discrete representation of a model along the sequence whose core/envelope interface is located a .
See Also
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Appendices: | VisTrailsEquations | VisTrailsVariables | References | Ramblings | VisTrailsImages | myphys.lsu | ADS | |