[879] | 1 | //--------------------------------------------------------------------------
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| 2 | // File and Version Information:
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[909] | 3 | // $Id: derivblackbody.cc,v 1.3 2000-04-13 14:10:44 ansari Exp $
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[879] | 4 | //
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| 5 | // Description:
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| 6 | // Aim of the class: To give the derivative spectrum
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| 7 | // The unity used here is W/m^2/Hz/sr
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| 8 | //
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| 9 | // History (add to end):
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| 10 | // Sophie Oct, 1999 - creation
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| 11 | //
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| 12 | //------------------------------------------------------------------------
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| 13 |
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| 14 | //---------------
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| 15 | // C++ Headers --
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| 16 | //---------------
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| 17 | #include "machdefs.h"
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| 18 | #include <iostream.h>
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| 19 | #include <math.h>
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| 20 | #include "derivblackbody.h"
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| 21 |
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[909] | 22 |
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| 23 |
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| 24 | /*! \class SOPHYA::DerivBlackBody <BR>
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| 25 | * This class corresponds to the emission spectrum of a
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| 26 | * dipole (since its emission spectrum is the derivation
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| 27 | * of a blackbody spectrum wrt the temperature).
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| 28 | */
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| 29 |
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| 30 | /*! Constructor: needs a temperature. Otherwise set to ConvTools::tcmb */
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[879] | 31 | DerivBlackBody::DerivBlackBody(double temperature)
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| 32 | : RadSpectra(10., 10000.)
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| 33 | {
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| 34 | _temperature = temperature;
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| 35 | }
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| 36 |
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| 37 |
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| 38 | DerivBlackBody::~DerivBlackBody()
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| 39 | {
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| 40 | }
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| 41 |
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[909] | 42 | /*!
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| 43 | The flux function is the derivation of the BlackBody
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| 44 | flux function wrt the temperature (used e.g. for a Dipole)
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| 45 | \f[
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| 46 | I_\nu = {2 h_{pl} (1.10^9*\nu)^3 {h_{pl}1.10^9*\nu \over k T^2}
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| 47 | {e^{{h_{pl}(1.10^9*\nu) \over kT}}\over c^2 (e^{{h_{pl}(1.10^9*\nu) \over kT}} -1)^2}}
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| 48 | \f]
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| 49 | */
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[879] | 50 | double
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| 51 | DerivBlackBody::flux(double nu) const
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| 52 | {
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| 53 | if(nu < -1.e99) nu = -1.e99;
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| 54 | if(nu > 1.e99) nu = 1.e99;
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| 55 | double temperature = getTemperature();
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| 56 | if(nu==0.) return 0.;
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| 57 | double hpl = ConvTools::hpl;
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| 58 | double cel = ConvTools::cel;
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| 59 | double kb = ConvTools::kb;
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| 60 | double puiss1 = nu*pow(10,9);
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| 61 | if(puiss1 > 1.e99) puiss1=1.e99;
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| 62 | if(puiss1 < -1.e99) puiss1=-1.e99;
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| 63 | double puiss2 = hpl*nu*pow(10,9)/(kb*temperature);
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| 64 | if(puiss2 > 1.e99) puiss2=1.e99;
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| 65 | if(puiss2 < -1.e99) puiss2=-1.e99;
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| 66 |
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| 67 | double result=
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| 68 | (2*hpl* pow( puiss1 ,3))*(hpl*puiss1/kb)*(1/(temperature*temperature))
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| 69 | *exp(puiss2)
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| 70 | /(pow(cel,2)*pow(( (exp(puiss2)-1)),2));
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[893] | 71 | // result = 1500e3*result/400e6;
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[879] | 72 | return result;
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| 73 | }
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| 74 |
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| 75 |
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| 76 | void
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| 77 | DerivBlackBody::Print(ostream& os) const
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| 78 | {
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| 79 | os << "DerivBlackBody::Print Temp= " << getTemperature()
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| 80 | << " - Fmin,Fmax= " << minFreq() << "," << maxFreq() << endl;
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| 81 | os << "MeanFreq= " << meanFreq() << " Emission= " << flux(meanFreq()) << endl;
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| 82 | os << "PeakFreq= " << peakFreq() << " Emission= " << flux(peakFreq()) << endl;
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| 83 |
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| 84 | }
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| 85 |
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| 86 | /*
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| 87 | void
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| 88 | DerivBlackBody::WriteSelf(POutPersist& s)
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| 89 | {
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| 90 | s.PutR8(this->getTemperature());
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| 91 | s.PutR8(this->minFreq());
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| 92 | s.PutR8(this->maxFreq());
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| 93 | }
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| 94 |
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| 95 | void
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| 96 | DerivBlackBody::ReadSelf(PInPersist& s)
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| 97 | {
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| 98 | s.GetR8(_temperature);
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| 99 | s.GetR8(_numin);
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| 100 | s.GetR8(_numax);
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| 101 | cout << " Temperature - minFreq - maxFreq " << endl;
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| 102 | cout << _temperature << "-" << _numin << "-" << _numax << endl;
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| 103 | }
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| 104 |
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| 105 | */
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