source: trunk/src/STAtmosphere.h @ 1709

Last change on this file since 1709 was 1709, checked in by Max Voronkov, 14 years ago

implemented hydrostatic model of the atmosphere

File size: 6.8 KB
Line 
1//#---------------------------------------------------------------------------
2//# STAtmosphere.h: Model of atmospheric opacity
3//#---------------------------------------------------------------------------
4//# Copyright (C) 2004
5//# ATNF
6//#
7//# The code is based on the Fortran code written by Bob Sault for MIRIAD.
8//# Converted to C++ by Max Voronkov. This code uses a simple model of the
9//# atmosphere and Liebe's model (1985) of the complex refractive index of
10//# air.
11//#
12//# The model of the atmosphere is one with an exponential fall-off in
13//# the water vapour content (scale height of 1540 m) and a temperature lapse
14//# rate of 6.5 mK/m. Otherwise the atmosphere obeys the ideal gas equation
15//# and hydrostatic equilibrium.
16//#
17//# This program is free software; you can redistribute it and/or modify it
18//# under the terms of the GNU General Public License as published by the Free
19//# Software Foundation; either version 2 of the License, or (at your option)
20//# any later version.
21//#
22//# This program is distributed in the hope that it will be useful, but
23//# WITHOUT ANY WARRANTY; without even the implied warranty of
24//# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General
25//# Public License for more details.
26//#
27//# You should have received a copy of the GNU General Public License along
28//# with this program; if not, write to the Free Software Foundation, Inc.,
29//# 675 Massachusetts Ave, Cambridge, MA 02139, USA.
30//#
31//# Correspondence concerning this software should be addressed as follows:
32//#        Internet email: Malte.Marquarding@csiro.au
33//#        Postal address: Malte Marquarding,
34//#                        Australia Telescope National Facility,
35//#                        P.O. Box 76,
36//#                        Epping, NSW, 2121,
37//#                        AUSTRALIA
38//#
39//# $Id: STAtmosphere.h 1346 2007-04-26 03:24:41Z mar637 $
40//#---------------------------------------------------------------------------
41
42#ifndef STATMOSPHERE_H
43#define STATMOSPHERE_H
44
45#include <vector>
46
47namespace asap {
48
49/**
50  * This class implements opacity/atmospheric brightness temperature model
51  * equivalent to the model available in MIRIAD. The actual math is a
52  * convertion of the Fortran code written by Bob Sault for MIRIAD.
53  * It implements a simple model of the atmosphere and Liebe's model (1985)
54  * of the complex refractive index of air.
55  *
56  * The model of the atmosphere is one with an exponential fall-off in
57  * the water vapour content (scale height of 1540 m) and a temperature lapse
58  * rate of 6.5 mK/m. Otherwise the atmosphere obeys the ideal gas equation
59  * and hydrostatic equilibrium.
60  *
61  * Note, the model includes atmospheric lines up to 800 GHz, but was not
62  * rigorously tested above 100 GHz and for instruments located at
63  * a significant elevation. For high-elevation sites it may be necessary to
64  * adjust scale height and lapse rate.
65  *
66  * @brief The ASAP atmosphere opacity model
67  * @author Max Voronkov
68  * @date $Date: 2010-03-17 14:55:17 +1000 (Thu, 26 Apr 2007) $
69  * @version
70  */
71class STAtmosphere {
72public:
73  /**
74   * Default Constructor (apart from optional parameters).
75   * The class set up this way will assume International Standard Atmosphere (ISA) conditions,
76   * except for humidity. The latter is assumed to be 50%, which seems more realistic for
77   * Australian telescopes than 0%.
78   * @param[in] wvScale water vapour scale height (m), default is 1540m to match MIRIAD's model
79   * @param[in] maxAlt maximum altitude of the model atmosphere (m), plane parallel layers are spread linearly up to
80   *            this height, default is 10000m to match MIRIAD.
81   * @param[in] nLayers number of plane parallel layers in the model (essentially for a numberical integration),
82   *            default is 50 to match MIRIAD.
83   **/
84  explicit STAtmosphere(double wvScale = 1540., double maxAlt = 10000.0, size_t nLayers = 50);
85   
86  /**
87   * Constructor with explicitly given parameters of the atmosphere
88   * @param[in] temperature air temperature at the observatory (K)
89   * @param[in] pressure air pressure at the observatory (Pascals)
90   * @param[in] humidity air humidity at the observatory (fraction)
91   * @param[in] lapseRate temperature lapse rate (K/m), default is 0.0065 K/m to match MIRIAD and ISA
92   * @param[in] wvScale water vapour scale height (m), default is 1540m to match MIRIAD's model
93   * @param[in] maxAlt maximum altitude of the model atmosphere (m), plane parallel layers are spread linearly up to
94   *            this height, default is 10000m to match MIRIAD.
95   * @param[in] nLayers number of plane parallel layers in the model (essentially for a numberical integration),
96   *            default is 50 to match MIRIAD.
97   **/
98  STAtmosphere(double temperature, double pressure, double humidity, double lapseRate = 0.0065,
99               double wvScale = 1540., double maxAlt = 10000.0, size_t nLayers = 50);
100   
101  /**
102   * Set the new weather station data, recompute the model
103   * @param[in] temperature air temperature at the observatory (K)
104   * @param[in] pressure air pressure at the observatory (Pascals)
105   * @param[in] humidity air humidity at the observatory (fraction)
106   **/
107  void setWeather(double temperature, double pressure, double humidity);
108
109protected:
110  /**
111   * Build the atmosphere model based on exponential fall-off, ideal gas and hydrostatic
112   * equilibrium. The model parameters are taken from the data members of this class.
113   **/
114  void recomputeAtmosphereModel();
115 
116  /**
117   * Obtain the number of model layers, do consistency check that everything is
118   * resized accordingly
119   * @retrun number of model layers
120   **/
121  size_t nLayers() const;
122 
123  /**
124   * Determine the saturation pressure of water vapour for the given temperature.
125   *
126   * Reference:
127   * Waters, Refraction effects in the neutral atmosphere. Methods of
128   * Experimental Physics, vol 12B, p 186-200 (1976).
129   *   
130   * @param[in] temperature temperature in K
131   * @return vapour saturation pressure (Pascals)
132   **/
133  static double wvSaturationPressure(double temperature);
134   
135private:
136 
137  // heights of all model layers
138  std::vector<double> itsHeights;
139 
140  // temperatures of all model layers
141  std::vector<double> itsTemperatures;
142 
143  // partial pressures of dry component for all model layers
144  std::vector<double> itsDryPressures;
145 
146  // partial pressure of water vapour for all model layers
147  std::vector<double> itsVapourPressures;
148 
149  /**
150   *  Atmosphere parameters
151   **/
152 
153  // ground level temperature (K)
154  double itsGndTemperature;
155 
156  // ground level pressure (Pascals)
157  double itsGndPressure;
158 
159  // ground level humidity (fraction)
160  double itsGndHumidity;
161 
162  // lapse rate (K/m)
163  double itsLapseRate;
164 
165  // water vapour scale height (m)
166  double itsWVScale;
167 
168  // altitude of the highest layer of the model (m)
169  double itsMaxAlt;
170};
171
172} // namespace asap
173
174#endif // #ifndef STATMOSPHERE_H
175
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