Latest revision as of 19:36, 25 March 2026

BiPolytrope with n_c = 5 and n_e = 1 (Pt 1)[edit]

Eggleton, Faulkner & Cannon (1998) Analytic (n_c, n_e) = (5, 1)

Comment by J. E. Tohline on 30 March 2013: As far as I have been able to determine, this analytic structural model has not previously been published in a refereed, archival journal. Subsequent comment by J. E. Tohline on 23 June 2013: Last night I stumbled upon an article by Eagleton, Faulkner, and Cannon (1998) in which this identical analytically definable bipolytrope has been presented. Insight drawn from this article is presented in an additional subsection, below.

Here we construct a bipolytrope in which the core has an $n_{c} = 5$ polytropic index and the envelope has an $n_{e} = 1$ polytropic index. This system is particularly interesting because the entire structure can be described by closed-form, analytic expressions. In deriving the properties of this model, we will follow the general solution steps for constructing a bipolytrope that we have outlined elsewhere.

Steps 2 & 3[edit]

Based on the discussion presented elsewhere of the structure of an isolated $n = 5$ polytrope, the core of this bipolytrope will have the following properties:

$θ (ξ) = [1 + \frac{1}{3} ξ^{2}]^{- 1 / 2} \Rightarrow θ_{i} = [1 + \frac{1}{3} ξ_{i}^{2}]^{- 1 / 2};$

$\frac{d θ}{d ξ} = - \frac{ξ}{3} [1 + \frac{1}{3} ξ^{2}]^{- 3 / 2} \Rightarrow (\frac{d θ}{d ξ})_{i} = - \frac{ξ_{i}}{3} [1 + \frac{1}{3} ξ_{i}^{2}]^{- 3 / 2} .$

The first zero of the function $θ (ξ)$ and, hence, the surface of the corresponding isolated $n = 5$ polytrope is located at $ξ_{s} = \infty$ . Hence, the interface between the core and the envelope can be positioned anywhere within the range, $0 < ξ_{i} < \infty$ .

Step 4: Throughout the core (0 ≤ ξ ≤ ξ_i)[edit]

Specify: $K_{c}$ and $ρ_{0} \Rightarrow$
$ρ$	$=$	$ρ_{0} θ^{n_{c}}$	$=$	$ρ_{0} (1 + \frac{1}{3} ξ^{2})^{- 5 / 2}$
$P$	$=$	$K_{c} ρ_{0}^{1 + 1 / n_{c}} θ^{n_{c} + 1}$	$=$	$K_{c} ρ_{0}^{6 / 5} (1 + \frac{1}{3} ξ^{2})^{- 3}$
$r$	$=$	$[\frac{(n_{c} + 1) K_{c}}{4 π G}]^{1 / 2} ρ_{0}^{(1 - n_{c}) / (2 n_{c})} ξ$	$=$	$[\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{3}{2 π})^{1 / 2} ξ$
$M_{r}$	$=$	$4 π [\frac{(n_{c} + 1) K_{c}}{4 π G}]^{3 / 2} ρ_{0}^{(3 - n_{c}) / (2 n_{c})} (- ξ^{2} \frac{d θ}{d ξ})$	$=$	$[\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2} (\frac{2 \cdot 3}{π})^{1 / 2} [ξ^{3} (1 + \frac{1}{3} ξ^{2})^{- 3 / 2}]$

Equations (A2) from 📚 P. P. Eggleton, J. Faulkner, & R. C. Cannon (1998, MNRAS, Vol. 298, issue 3, pp. 831 - 834) — hereafter, EFC98 — present the same relations but adopt the following notations:*

$P$	$=$	$p_{0} θ^{6}$	$\Rightarrow$	$K_{c}$	$=$	$p_{0} ρ_{0}^{- 6 / 5};$
$ρ$	$=$	$ρ_{0} θ^{5}$	where:	$θ$	$=$	$a_{e f c} [a_{e f c}^{2} + r^{2}]^{- 1 / 2} = [1 + (\frac{r}{a_{e f c}})^{2}]^{- 1 / 2}$
$a_{e f c}^{2}$	$\equiv$	$\frac{18 p_{0}}{4 π G ρ_{0}^{2}}$	$\Rightarrow$	$a_{e f c}^{2}$	$=$	$\frac{18 K_{c} ρ_{0}^{6 / 5}}{4 π G ρ_{0}^{2}} = 3 [\frac{K_{c}}{G ρ_{0}^{4 / 5}} \cdot (\frac{3}{2 π})]$
			$\Rightarrow$	$a_{e f c}$	$=$	$\sqrt{3} [\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{3}{2 π})^{1 / 2} = \sqrt{3} (\frac{r}{ξ})$
			$\Rightarrow$	$\frac{r}{a_{e f c}}$	$=$	$\frac{ξ}{\sqrt{3}};$

Hence,

θ

=

[1 + \frac{ξ^{2}}{3}]^{- 1 / 2},

which matches our expression for the core's polytrope function, $θ$ .

Now, look at the EFC98 expression for the core's integrated mass.

$M_{r}$	$=$	$\frac{4 π ρ_{0} a_{e f c}^{3}}{3} \cdot \frac{r^{3}}{(a_{e f c}^{2} + r^{2})^{3 / 2}}$
	$=$	$\frac{4 π ρ_{0}}{3} [a_{e f c}^{3}] (r / a_{e f c})^{3} [1 + (r / a_{e f c})^{2}]^{- 3 / 2}$
	$=$	$\frac{4 π ρ_{0}}{3} [\frac{K_{c}}{G ρ_{0}^{4 / 5}} \cdot (\frac{3^{2}}{2 π})]^{3 / 2} \frac{ξ^{3}}{3^{3 / 2}} [1 + \frac{ξ^{2}}{3}]^{- 3 / 2}$
	$=$	$\frac{4 π}{3} (\frac{3}{2 π})^{3 / 2} [\frac{K_{c}^{3}}{G^{3}} \cdot \frac{ρ_{0}^{2}}{ρ_{0}^{12 / 5}}]^{1 / 2} ξ^{3} [1 + \frac{ξ^{2}}{3}]^{- 3 / 2}$
	$=$	$[\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2} (\frac{2 \cdot 3}{π})^{1 / 2} ξ^{3} (1 + \frac{ξ^{2}}{3})^{- 3 / 2}$

This expression matches ours.

Step 5: Interface Conditions[edit]

			Setting $n_{c} = 5$ , $n_{e} = 1$ , and $ϕ_{i} = 1 \Rightarrow$
$\frac{ρ_{e}}{ρ_{0}}$	$=$	$(\frac{μ_{e}}{μ_{c}}) θ_{i}^{n_{c}} ϕ_{i}^{- n_{e}}$	$=$	$(\frac{μ_{e}}{μ_{c}}) θ_{i}^{5}$
$(\frac{K_{e}}{K_{c}})$	$=$	$ρ_{0}^{1 / n_{c} - 1 / n_{e}} (\frac{μ_{e}}{μ_{c}})^{- (1 + 1 / n_{e})} θ_{i}^{1 - n_{c} / n_{e}}$	$=$	$ρ_{0}^{- 4 / 5} (\frac{μ_{e}}{μ_{c}})^{- 2} θ_{i}^{- 4}$
$\frac{η_{i}}{ξ_{i}}$	$=$	$[\frac{n_{c} + 1}{n_{e} + 1}]^{1 / 2} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{(n_{c} - 1) / 2} ϕ_{i}^{(1 - n_{e}) / 2}$	$=$	$3^{1 / 2} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{2}$
$(\frac{d ϕ}{d η})_{i}$	$=$	$[\frac{n_{c} + 1}{n_{e} + 1}]^{1 / 2} θ_{i}^{- (n_{c} + 1) / 2} ϕ_{i}^{(n_{e} + 1) / 2} (\frac{d θ}{d ξ})_{i}$	$=$	$3^{1 / 2} θ_{i}^{- 3} (\frac{d θ}{d ξ})_{i}$

Step 6: Envelope Solution[edit]

Adopting equation (8) of 📚 M. Beech (1988, Astrophysics and Space Science, Vol. 147, issue 2, pp. 219 - 227), the most general solution to the $n = 1$ Lane-Emden equation can be written in the form,

$ϕ = A [\frac{\sin (η - B)}{η}],$

where $A$ and $B$ are constants. The first derivative of this function is,

$\frac{d ϕ}{d η} = \frac{A}{η^{2}} [η \cos (η - B) - \sin (η - B)] .$

For purposes of determining the envelope mass — see the light-green text box in Step #8 below — note that,

- η^{2} \frac{d ϕ}{d η}

=

A [\sin (η - B) - η \cos (η - B)] .

From Step 5, above, we know the value of the function, $ϕ$ and its first derivative at the interface; specifically,

$ϕ_{i} = 1 a n d (\frac{d ϕ}{d η})_{i} = 3^{1 / 2} θ_{i}^{- 3} (\frac{d θ}{d ξ})_{i} a t η_{i} = 3^{1 / 2} ξ_{i} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{2} .$

From this information we can determine the constants $A$ and $B$ ; specifically,

$η_{i} - B = \tan^{- 1} (Λ_{i}^{- 1}) = \frac{π}{2} - \tan^{- 1} (Λ_{i}),$

$A = \frac{ϕ_{i} η_{i}}{\sin (η_{i} - B)} = ϕ_{i} η_{i} (1 + Λ_{i}^{2})^{1 / 2},$

where,

$Λ_{i} = \frac{1}{η_{i}} + \frac{1}{ϕ_{i}} (\frac{d ϕ}{d η})_{i} .$

Step 7[edit]

The surface will be defined by the location, $η_{s}$ , at which the function $ϕ (η)$ first goes to zero, that is,

$η_{s} = π + B = \frac{π}{2} + η_{i} + \tan^{- 1} (Λ_{i}) .$

Equations (A2) from 📚 Eggleton, Faulkner, & Cannon (1998) present the same relations but adopt the following notations:*

P

=

p_{0} θ^{6}

\Rightarrow

K_{c}

=

p_{0} ρ_{0}^{- 6 / 5};

Step 8: Throughout the envelope (η_i ≤ η ≤ η_s)[edit]

					Knowing: $K_{e} / K_{c}$ and $ρ_{e} / ρ_{0}$ from Step 5 $\Rightarrow$
$ρ$	$=$	$ρ_{e} ϕ^{n_{e}}$	$=$	$ρ_{0} (\frac{ρ_{e}}{ρ_{0}}) ϕ$	$=$	$ρ_{0} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{5} ϕ$
$P$	$=$	$K_{e} ρ_{e}^{1 + 1 / n_{e}} ϕ^{n_{e} + 1}$	$=$	$K_{c} ρ_{0}^{6 / 5} (\frac{K_{e} ρ_{0}^{4 / 5}}{K_{c}}) (\frac{ρ_{e}}{ρ_{0}})^{2} ϕ^{2}$	$=$	$K_{c} ρ_{0}^{6 / 5} θ_{i}^{6} ϕ^{2}$
$r$	$=$	$[\frac{(n_{e} + 1) K_{e}}{4 π G}]^{1 / 2} ρ_{e}^{(1 - n_{e}) / (2 n_{e})} η$	$=$	$[\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{K_{e} ρ_{0}^{4 / 5}}{K_{c}})^{1 / 2} (2 π)^{- 1 / 2} η$	$=$	$[\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 1} θ_{i}^{- 2} (2 π)^{- 1 / 2} η$
$M_{r}$	$=$	$4 π [\frac{(n_{e} + 1) K_{e}}{4 π G}]^{3 / 2} ρ_{e}^{(3 - n_{e}) / (2 n_{e})} (- η^{2} \frac{d ϕ}{d η})$	$=$	$[\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2} (\frac{K_{e} ρ_{0}^{4 / 5}}{K_{c}})^{3 / 2} (\frac{ρ_{e}}{ρ_{0}}) (\frac{2}{π})^{1 / 2} (- η^{2} \frac{d ϕ}{d η})$	$=$	$[\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 2} θ_{i}^{- 1} (\frac{2}{π})^{1 / 2} (- η^{2} \frac{d ϕ}{d η})$

n = 1 Polytropic Envelope

Let's verify the expression for the pressure by integrating the hydrostatic-balance equation,

$\frac{d P}{d r} = - \frac{G M_{r} ρ}{r^{2}}$

From our introductory discussion of the

Lane-Emden Equation

$\frac{1}{η^{2}} \frac{d}{d η} (η^{2} \frac{d ϕ}{d η}) = ϕ .$

we appreciate that, for this $n = 1$ envelope, $ϕ = A [\sin (η - B) / η]$ , in which case,

$ρ = [ρ_{0} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{5}] A [\frac{\sin (η - B)}{η}]$

and,

$r = [\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 1} θ_{i}^{- 2} (2 π)^{- 1 / 2} η .$

Combining these expressions with the differential expression for $M_{r}$ , namely, $d M_{r} / d r = 4 π r^{2} ρ$ , we find that,

$M_{r} (η) - M_{c o r e}$	$=$	$\int_{r_{i}}^{r} 4 π r^{2} ρ d r$
	$=$	$4 π {[\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 1} θ_{i}^{- 2} (2 π)^{- 1 / 2}}^{3} [ρ_{0} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{5}] A \int_{η_{i}}^{η} η [\sin (η - B)] d η$
	$=$	$(\frac{2}{π})^{1 / 2} {(\frac{K_{c}}{G})^{3 / 2} ρ_{0}^{- 1 / 5} (\frac{μ_{e}}{μ_{c}})^{- 2}} θ_{i}^{- 1} A \int_{(υ_{i} + B)}^{(υ + B)} (υ + B) \sin (υ) d υ$
	$=$	$(\frac{2}{π})^{1 / 2} {(\frac{K_{c}}{G})^{3 / 2} ρ_{0}^{- 1 / 5} (\frac{μ_{e}}{μ_{c}})^{- 2}} θ_{i}^{- 1} A [\sin (η - B) - (η - B) \cos (η - B) - (B) \cos (η - B)]_{η_{i}}^{η}$
	$=$	$(\frac{2}{π})^{1 / 2} {(\frac{K_{c}}{G})^{3 / 2} ρ_{0}^{- 1 / 5} (\frac{μ_{e}}{μ_{c}})^{- 2}} θ_{i}^{- 1} A [\sin (η - B) - η \cos (η - B)]_{η_{i}}^{η}$

where we have temporarily utilized the variable shift, $υ \equiv (η - B)$ .

An examination of their equations (A3) reveals that EFC98 continue to use $θ$ to represent the polytropic function throughout the envelope — for clarity, we will attach the subscript $θ_{e f c}$ — whereas we use $ϕ$ . Henceforth we will assume that these functions are interchangeable, that is, $θ_{e f c} \leftrightarrow ϕ$ , and examine whether or not their various physical parameter expressions match ours.

Comment by J. E. Tohline: As detailed in the text, there appears to be a type-setting error in both of these expressions; as published by EFC98, the exponent on the coefficient of theta_i should be 6 and 5, respectively, whereas it appears as 4.

In their Eqs. (A3), EFC98 state that, throughout the envelope,

P

=

p_{0} θ_{c}^{4} θ_{e f c}^{2} = K_{c} ρ_{0}^{6 / 5} θ_{i}^{4} ϕ^{2}

and,

ρ

=

\frac{ρ_{0}}{α} \cdot θ_{c}^{4} θ_{e f c} = ρ_{0} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{4} ϕ,

where, in both expressions, we have replaced their label for the value of the polytropic function at the core-envelope interface, $θ_{c}$ , with our label, $θ_{i}$ . Both of their expressions match ours EXCEPT … NOTE: in both of their expressions, $θ_{i}$ is raised to the 4^th power whereas, according to our derivation, this interface value should be raised to the 6^th power in the expression for pressure and it should be raised to the 5^th power in the expression for the density. We are confident that our expressions are the correct ones and therefore presume that type-setting errors are present in both of the EFC98 expressions.

We state that the envelope's polytropic function has the form,

ϕ

=

- \frac{A}{η} \cdot \sin (B_{o u r s} - η),

where,

η

=

$[\frac{G ρ_{0}^{4 / 5}}{K_{c}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{2} (2 π)^{1 / 2} r .$

Again, as part of their set of (A3) equations, EFC98 define the parameter,

$β$	$=$	$\frac{3 θ_{c}^{2}}{α} [a_{e f c}]^{- 1}$
	$=$	$3 θ_{c}^{2} (\frac{μ_{e}}{μ_{c}}) {\sqrt{3} [\frac{K_{c}}{G ρ_{0}^{4 / 5}}]^{1 / 2} (\frac{3}{2 π})^{1 / 2}}^{- 1}$
	$=$	$[\frac{G ρ_{0}^{4 / 5}}{K_{c}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{2} (2 π)^{1 / 2} .$

This is the same expression that relates $r$ to $η$ in our derivation of the envelope's properties; specifically, for example, we can write,

η = β r .

And, rewriting the EFC98 expression for the envelope's polytropic function gives,

θ_{e f c}

=

$\frac{B_{e f c}}{r} \sin [β (r_{s} - r)] = \frac{β B_{e f c}}{η} \sin (η_{s} - η) .$

This matches our expression for the envelope's polytropic function after making the substitutions:

θ_{e f c} \to ϕ;

η_{s} \to B_{o u r s};

and

B_{e f c} \to - \frac{A}{β} \Rightarrow \frac{B_{e f c}}{r} = - \frac{A}{η} .

From above, our expression for the integrated mass throughout the envelope is,

$M_{r} (η) - M_{c o r e} = - A [\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 2} θ_{i}^{- 1} (\frac{2}{π})^{1 / 2} [\sin (B - η) + η \cos (B - η)]_{η_{i}}^{η} .$

According to EFC98,

$M_{r}$	$=$	$\frac{4 π ρ_{0} α}{9} [B_{e f c} a_{e f c}^{2}] {\sin [β (r_{s} - r)] + β r \cos [β (r_{s} - r)]}$
	$=$	$\frac{4 π ρ_{0}}{9} (\frac{μ_{e}}{μ_{c}})^{- 1} [- \frac{A a_{e f c}^{2}}{β}] [\sin (B - η) + η \cos (B - η)]$
	$=$	$- A \cdot \frac{4 π ρ_{0}}{9} (\frac{μ_{e}}{μ_{c}})^{- 1} [\sin (B - η) + η \cos (B - η)] {[\frac{G ρ_{0}^{4 / 5}}{K_{c}}]^{1 / 2} (\frac{μ_{e}}{μ_{c}}) θ_{i}^{2} (2 π)^{1 / 2}}^{- 1} {3 [\frac{K_{c}}{G ρ_{0}^{4 / 5}} \cdot (\frac{3}{2 π})]}$
	$=$	$- A \cdot (\frac{2}{π})^{1 / 2} (\frac{μ_{e}}{μ_{c}})^{- 2} θ_{i}^{- 2} [\sin (B - η) + η \cos (B - η)] [\frac{K_{c}^{3}}{G^{3} ρ_{0}^{2 / 5}}]^{1 / 2}$

We see that our expression for the envelope mass matches the one presented in equation (A3) of EFC98 except for two things:

The exponent of $θ_{i}$ is "-2" in their publication whereas the exponent is "-1" in our derived expression; Why is this?
Our expression explicitly indicates that the final bracketed term should be evaluated at two separate radial locations (η_i and η).

Related Discussions[edit]

Polytropes emdeded in an external medium
Constructing BiPolytropes
Bonnor-Ebert spheres
- Bonnor-Ebert Mass according to Wikipedia
- Link has disappeared: A MATLAB script to determine the Bonnor-Ebert Mass coefficient developed by Che-Yu Chen as a graduate student in the University of Maryland Department of Astronomy
Schönberg-Chandrasekhar limiting mass
Relationship between Bonnor-Ebert and Schönberg-Chandrasekhar limiting masses

SSC/Structure/BiPolytropes/Analytic51: Difference between revisions

Latest revision as of 19:36, 25 March 2026

Contents

BiPolytrope with n_c = 5 and n_e = 1 (Pt 1)[edit]

Steps 2 & 3[edit]

Step 4: Throughout the core (0 ≤ ξ ≤ ξ_i)[edit]

Step 5: Interface Conditions[edit]

Step 6: Envelope Solution[edit]

Step 7[edit]

Step 8: Throughout the envelope (η_i ≤ η ≤ η_s)[edit]

Related Discussions[edit]

Navigation menu

@@ Line 1: / Line 1: @@
 __FORCETOC__
-=BiPolytrope with n<sub>c</sub> = 5 and n<sub>e</sub> = 1=
+=BiPolytrope with n<sub>c</sub> = 5 and n<sub>e</sub> = 1 (Pt 1)=
 <table border="1" align="center" width="100%" colspan="8">
 <tr>
@@ Line 131: / Line 131: @@
 <table border="1" align="center" cellpadding="5" width="80%"><tr><td align="left">
-Equations (A2) from {{ EFC98 }} present the same relations but adopt the following notations:<font color="red" size="+2"><b>*</b></font>
+Equations (A2) from {{ EFC98full }} &#8212; hereafter, {{ EFC98hereafter }} &#8212; present the same relations but adopt the following notations:<font color="red" size="+2"><b>*</b></font>
 <table border="0" align="center" cellpadding="5">
@@ Line 235: / Line 235: @@
    <td align="right">&nbsp;</td>
    <td align="center"><math>=</math></td>
-   <td align="left"><math>\biggl[ \frac{K_c^3}{G^3\rho_0^{2/5}} \biggr]\biggl( \frac{2\cdot 3}{\pi} \biggr)^{1 / 2}
+   <td align="left"><math>\biggl[ \frac{K_c^3}{G^3\rho_0^{2/5}} \biggr]^{1 / 2}\biggl( \frac{2\cdot 3}{\pi} \biggr)^{1 / 2}
 \xi^3 \biggl(1 + \frac{\xi^2}{3} \biggr)^{-3/ 2}</math></td>
 </tr>
@@ Line 345: / Line 345: @@
+<table border="1" align="center" width="80%"  cellpadding="5"><tr><td align="left" bgcolor="lightgreen">
+For purposes of determining the envelope mass &#8212; see the light-green text box in [[#Step_8:_Throughout_the_envelope_(ηi_≤_η_≤_ηs)|Step #8]] below &#8212; note that,
+<table border="0" align="center" cellpadding="8">
+<tr>
+  <td align="right"><math>-\eta^2 \frac{d\phi}{d\eta}</math></td>
+  <td align="center"><math>=</math></td>
+  <td align="left"><math>A\biggl[\sin(\eta-B) - \eta\cos(\eta - B)  \biggr]\, .</math></td>
+</tr>
+</table>
+</td></tr></table>
+<!--
 <table border="1" align="center" cellpadding="5" width="80%"><tr><td align="left">
@@ Line 363: / Line 377: @@
 </td></tr></table>
+-->
 From Step 5, above, we know the value of the function, <math>\phi</math> and its first derivative at the interface; specifically,
@@ Line 525: / Line 539: @@
 </div>
+<table border="1" align="center" width="80%"  cellpadding="5"><tr><td align="left" bgcolor="lightgreen">
+<div align="center">'''n = 1 Polytropic Envelope'''</div>
+Let's verify the expression for the pressure by integrating the hydrostatic-balance equation,
+<div align="center">
+{{Math/EQ_SShydrostaticBalance01}}
+</div>
+From our [[SSC/Structure/Polytropes|introductory discussion]] of the
+<div align="center">
+<span id="LaneEmdenEquation"><font color="#770000">'''Lane-Emden Equation'''</font></span>
+<br />
+<math>
+\frac{1}{\eta^2} \frac{d}{d\eta}\biggl(\eta^2 \frac{d\phi}{d\eta} \biggr) = \phi \, .
+</math>
+</div>
+we appreciate that, for this <math>n=1</math> envelope, <math>\phi = A[\sin(\eta-B)/\eta]</math>, in which case,
+<div align="center">
+<math>\rho = \biggl[\rho_0 \biggl( \frac{\mu_e}{\mu_c} \biggr) \theta^{5}_i \biggr] A \biggl[ \frac{\sin(\eta - B)}{\eta} \biggr]</math>
+</div>
+and,
+<div align="center">
+<math>
+r = \biggl[ \frac{K_c}{G \rho_0^{4/5}} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-1} \theta^{-2}_i (2\pi)^{-1/2}\eta \, .
+</math>
+</div>
+Combining these expressions with the differential expression for <math>M_r</math>, namely, <math>dM_r/dr = 4\pi r^2 \rho</math>, we find that,
+<table align="center" border="0" cellpadding="5">
+<tr>
+  <td align="right">
+<math>
+~M_r(\eta) - M_\mathrm{core}
+</math>
+  </td>
+  <td align="center">
+<math>~=</math>
+  </td>
+  <td align="left">
+<math>
+~\int_{r_i}^r 4\pi r^2 \rho~ dr
+</math>
+  </td>
+</tr>
+<tr>
+  <td align="right">
+&nbsp;
+  </td>
+  <td align="center">
+<math>~=</math>
+  </td>
+  <td align="left">
+<math>
+~4\pi \biggl\{ \biggl[ \frac{K_c}{G \rho_0^{4/5}} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-1} \theta^{-2}_i (2\pi)^{-1/2} \biggr\}^3
+\biggl[\rho_0 \biggl( \frac{\mu_e}{\mu_c} \biggr) \theta^{5}_i \biggr] A
+\int_{\eta_i}^{\eta} \eta\biggl[ \sin(\eta - B) \biggr]
+~ d\eta
+</math>
+  </td>
+</tr>
+<tr>
+  <td align="right">
+&nbsp;
+  </td>
+  <td align="center">
+<math>~=</math>
+  </td>
+  <td align="left">
+<math>
+\biggl(\frac{2}{\pi}\biggr)^{1 / 2}\biggl\{ \biggl( \frac{K_c}{G } \biggr)^{3/2}\rho_0^{-1/5} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \biggr\}\theta^{-1}_i A
+\int_{(\upsilon_i + B)}^{(\upsilon+B)} (\upsilon + B)\sin(\upsilon)~ d\upsilon
+</math>
+  </td>
+</tr>
+<tr>
+  <td align="right">
+&nbsp;
+  </td>
+  <td align="center">
+<math>~=</math>
+  </td>
+  <td align="left">
+<math>
+\biggl(\frac{2}{\pi}\biggr)^{1 / 2}\biggl\{ \biggl( \frac{K_c}{G } \biggr)^{3/2}\rho_0^{-1/5} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \biggr\}\theta^{-1}_i A
+\biggl[\sin(\eta - B) - (\eta - B)\cos(\eta - B) - ( B)\cos(\eta - B)\biggr]_{\eta_i}^{\eta}
+</math>
+  </td>
+</tr>
+<tr>
+  <td align="right">
+&nbsp;
+  </td>
+  <td align="center">
+<math>~=</math>
+  </td>
+  <td align="left">
+<math>
+\biggl(\frac{2}{\pi}\biggr)^{1 / 2}\biggl\{ \biggl( \frac{K_c}{G } \biggr)^{3/2}\rho_0^{-1/5} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \biggr\}\theta^{-1}_i A
+\biggl[\sin(\eta - B) - \eta \cos(\eta - B) \biggr]_{\eta_i}^{\eta}
+</math>
+  </td>
+</tr>
+</table>
+where we have temporarily utilized the variable shift, <math>\upsilon \equiv (\eta - B)</math>.
+</td></tr></table>
 <table border="1" align="center" cellpadding="5" width="80%"><tr><td align="left">
@@ Line 557: / Line 684: @@
    <td align="right"><math>\phi</math></td>
    <td align="center"><math>=</math></td>
-   <td align="left"><math>-\frac{A}{\eta} \cdot \sin(B-\eta) \, ,</math></td>
+   <td align="left"><math>-\frac{A}{\eta} \cdot \sin(B_\mathrm{ours}-\eta) \, ,</math></td>
 </tr>
 </table>
@@ Line 573: / Line 700: @@
 </table>
-{{ EFC98hereafter }} state that,
+Again, as part of their set of (A3) equations, {{ EFC98hereafter }} define the parameter,
 <table border="0" align="center" cellpadding="5">
 <tr>
-   <td align="right"><math>\theta_\mathrm{efc}</math></td>
+   <td align="right"><math>\beta </math></td>
-  <td align="center"><math>=</math></td>
-  <td align="left"><math>\frac{B_\mathrm{efc}}{r} \cdot \sin[\beta(r_s - r)] \, ,</math></td>
-</tr>
-</table>
-where,
-<table border="0" align="center" cellpadding="5">
-<tr>
-  <td align="right"><math>\beta ~r</math></td>
    <td align="center"><math>=</math></td>
    <td align="left">
-<math>\frac{3\theta_c^2}{\alpha } \biggl[a_\mathrm{efc}\biggr]^{-1} r</math>
+<math>\frac{3\theta_c^2}{\alpha } \biggl[a_\mathrm{efc}\biggr]^{-1} </math>
    </td>
 </tr>
@@ Line 600: / Line 717: @@
    <td align="left">
 <math>3 \theta_c^2 \biggl(\frac{\mu_e}{\mu_c}\biggr)
-\biggl\{\sqrt{3} \biggl[ \frac{K_c }{G \rho_0^{4/5}} \biggr]^{1 / 2} \biggl( \frac{3}{2\pi}\biggr)^{1 / 2}\biggr\}^{-1} r
+\biggl\{\sqrt{3} \biggl[ \frac{K_c }{G \rho_0^{4/5}} \biggr]^{1 / 2} \biggl( \frac{3}{2\pi}\biggr)^{1 / 2}\biggr\}^{-1}
 </math>
    </td>
@@ Line 609: / Line 726: @@
    <td align="center"><math>=</math></td>
    <td align="left">
-<math>\biggl[ \frac{G \rho_0^{4/5}}{K_c} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr) \theta^{2}_i (2\pi)^{1 / 2}~r \, .</math>
+<math>\biggl[ \frac{G \rho_0^{4/5}}{K_c} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr) \theta^{2}_i (2\pi)^{1 / 2} \, .</math>
    </td>
 </tr>
 </table>
-We therefore conclude that <math>\beta r = \eta</math>, and  <math>\beta r_s = B</math>.  If, as we assume to be the case, <math>\theta_\mathrm{efc} = \phi</math>, it must also be the case that,
+This is the same expression that relates <math>r</math> to <math>\eta</math> in our derivation of the envelope's properties; specifically, for example, we can write,
 <table border="0" align="center" cellpadding="5">
 <tr>
-   <td align="right"><math>\frac{B_\mathrm{efc}}{r}</math></td>
+   <td align="right" bgcolor="pink"><math>\eta = \beta r \, .</math></td>
-  <td align="center"><math>=</math></td>
-  <td align="left">
-<math>-\frac{A}{\eta } </math>
-  </td>
 </tr>
+</table>
+And, rewriting the {{ EFC98hereafter }}  expression for the envelope's polytropic function gives,
+<table border="0" align="center" cellpadding="5">
 <tr>
-   <td align="right"><math>\Rightarrow ~~~ B_\mathrm{efc}</math></td>
+   <td align="right"><math>\theta_\mathrm{efc}</math></td>
    <td align="center"><math>=</math></td>
    <td align="left">
-<math>-\frac{A}{\beta } \, .</math>
+<math>
+\frac{B_\mathrm{efc}}{r} \sin\biggl[ \beta(r_s - r) \biggr]
+=
+\frac{\beta B_\mathrm{efc}}{\eta}\sin(\eta_s - \eta) \, .
+</math>
    </td>
+</tr>
+</table>
+This matches our expression for the envelope's polytropic function after making the substitutions:
+<table border="0" align="center" cellpadding="5">
+<tr>
+  <td align="center" bgcolor="pink"><math>\theta_\mathrm{efc} ~\rightarrow~ \phi \, ;</math></td>
+  <td align="center">&nbsp; &nbsp; &nbsp; &nbsp;</td>
+  <td align="center" bgcolor="pink"><math>\eta_s ~\rightarrow~ B_\mathrm{ours} \, ;</math></td>
+  <td align="center">&nbsp; &nbsp; &nbsp; &nbsp; and &nbsp; &nbsp; &nbsp; &nbsp;</td>
+  <td align="center" bgcolor="pink"><math>B_\mathrm{efc} ~\rightarrow~ -\frac{A}{\beta } ~~\Rightarrow
+~~ \frac{B_\mathrm{efc}}{r} = -\frac{A}{\eta }\, .</math></td>
 </tr>
 </table>
@@ Line 636: / Line 769: @@
 ----
-Our expression for the integrated mass throughout the envelope is,
+From above, our expression for the integrated mass throughout the envelope is,
 <table border="0" align="center" cellpadding="5">
 <tr>
-   <td align="right"><math>M_r</math></td>
+   <td align="right" bgcolor="lightgreen">
-  <td align="center"><math>=</math></td>
+<math>M_r (\eta) - M_\mathrm{core} = -A \biggl[ \frac{K_c^3}{G^3 \rho_0^{2/5}} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} \biggl[\sin(B - \eta) + \eta\cos(B - \eta) \biggr]_{\eta_i}^{\eta} \, .</math>
-  <td align="left">
-<math>\biggl[ \frac{K_c^3}{G^3 \rho_0^{2/5}} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} \biggl\{- A \biggl[ \eta\cos(\eta-B) - \sin(\eta-B) \biggr]\biggr\}</math>
-  </td>
-</tr>
-<tr>
-  <td align="right">&nbsp;</td>
-  <td align="center"><math>=</math></td>
-  <td align="left">
-<math>-A \biggl[ \frac{K_c^3}{G^3 \rho_0^{2/5}} \biggr]^{1/2} \biggl( \frac{\mu_e}{\mu_c} \biggr)^{-2} \theta^{-1}_i \biggl( \frac{2}{\pi} \biggr)^{1/2} \biggl[\sin(B - \eta) + \eta\cos(B - \eta) \biggr] \, .</math>
    </td>
 </tr>
@@ Line 717: / Line 840: @@
 </tr>
 </table>
+We see that our expression for the envelope mass matches the one presented in equation (A3) of {{ EFC98hereafter }} except for two things:
+<ol><li>The exponent of <math>\theta_i</math> is "-2" in their publication whereas the exponent is "-1" in our derived expression; <font color="red">Why is this?</font>
+</li>
+<li>Our expression explicitly indicates that the final bracketed term should be evaluated at two separate radial locations (&eta;<sub>i</sub> and &eta;).</li></ol>
 </td></tr></table>

SSC/Structure/BiPolytropes/Analytic51: Difference between revisions

Latest revision as of 19:36, 25 March 2026

BiPolytrope with nc = 5 and ne = 1 (Pt 1)[edit]

Steps 2 & 3[edit]

Step 4: Throughout the core (0 ≤ ξ ≤ ξi)[edit]

Step 5: Interface Conditions[edit]

Step 6: Envelope Solution[edit]

Step 7[edit]

Step 8: Throughout the envelope (ηi ≤ η ≤ ηs)[edit]

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BiPolytrope with n_c = 5 and n_e = 1 (Pt 1)[edit]

Step 4: Throughout the core (0 ≤ ξ ≤ ξ_i)[edit]

Step 8: Throughout the envelope (η_i ≤ η ≤ η_s)[edit]