/* * Copyright (C) 2002 Claudio Girardi * Copyright (C) 2005, 2006 Stefan Jahn * Copyright The KiCad Developers, see AUTHORS.txt for contributors. * * This program is free software; you can redistribute it and/or modify * it under the terms of the GNU General Public License as published by * the Free Software Foundation; either version 2 of the License, or (at * your option) any later version. * * This program is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU * General Public License for more details. * * You should have received a copy of the GNU General Public License * along with this package; see the file COPYING. If not, write to * the Free Software Foundation, Inc., 51 Franklin Street - Fifth Floor, * Boston, MA 02110-1301, USA. */ #include "c_microstrip.h" #include "transline.h" #include "units.h" C_MICROSTRIP::C_MICROSTRIP() { m_Name = "Coupled_MicroStrip"; Init(); } void C_MICROSTRIP::calcAnalyze() { m_calc.Analyse(); } void C_MICROSTRIP::calcSynthesize() { m_calc.Synthesize( SYNTHESIZE_OPTS::DEFAULT ); } void C_MICROSTRIP::showAnalyze() { std::unordered_map>& results = m_calc.GetAnalysisResults(); setProperty( Z0_E_PRM, results[TRANSLINE_PARAMETERS::Z0_E].first ); setProperty( Z0_O_PRM, results[TRANSLINE_PARAMETERS::Z0_O].first ); setProperty( ANG_L_PRM, results[TRANSLINE_PARAMETERS::ANG_L].first ); setResult( 0, results[TRANSLINE_PARAMETERS::EPSILON_EFF_EVEN].first, "" ); setResult( 1, results[TRANSLINE_PARAMETERS::EPSILON_EFF_ODD].first, "" ); setResult( 2, results[TRANSLINE_PARAMETERS::UNIT_PROP_DELAY_EVEN].first, "ps/cm" ); setResult( 3, results[TRANSLINE_PARAMETERS::UNIT_PROP_DELAY_ODD].first, "ps/cm" ); setResult( 4, results[TRANSLINE_PARAMETERS::ATTEN_COND_EVEN].first, "dB" ); setResult( 5, results[TRANSLINE_PARAMETERS::ATTEN_COND_ODD].first, "dB" ); setResult( 6, results[TRANSLINE_PARAMETERS::ATTEN_DILECTRIC_EVEN].first, "dB" ); setResult( 7, results[TRANSLINE_PARAMETERS::ATTEN_DILECTRIC_ODD].first, "dB" ); setResult( 8, results[TRANSLINE_PARAMETERS::SKIN_DEPTH].first / UNIT_MICRON, "µm" ); setResult( 9, results[TRANSLINE_PARAMETERS::Z_DIFF].first, "Ω" ); setErrorLevel( Z0_E_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::Z0_E].second ) ); setErrorLevel( Z0_O_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::Z0_O].second ) ); setErrorLevel( ANG_L_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::ANG_L].second ) ); setErrorLevel( PHYS_WIDTH_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_WIDTH].second ) ); setErrorLevel( PHYS_LEN_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_LEN].second ) ); setErrorLevel( PHYS_S_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_S].second ) ); } void C_MICROSTRIP::showSynthesize() { std::unordered_map>& results = m_calc.GetAnalysisResults(); setProperty( PHYS_WIDTH_PRM, results[TRANSLINE_PARAMETERS::PHYS_WIDTH].first ); setProperty( PHYS_S_PRM, results[TRANSLINE_PARAMETERS::PHYS_S].first ); setProperty( PHYS_LEN_PRM, results[TRANSLINE_PARAMETERS::PHYS_LEN].first ); setResult( 0, results[TRANSLINE_PARAMETERS::EPSILON_EFF_EVEN].first, "" ); setResult( 1, results[TRANSLINE_PARAMETERS::EPSILON_EFF_ODD].first, "" ); setResult( 2, results[TRANSLINE_PARAMETERS::UNIT_PROP_DELAY_EVEN].first, "ps/cm" ); setResult( 3, results[TRANSLINE_PARAMETERS::UNIT_PROP_DELAY_ODD].first, "ps/cm" ); setResult( 4, results[TRANSLINE_PARAMETERS::ATTEN_COND_EVEN].first, "dB" ); setResult( 5, results[TRANSLINE_PARAMETERS::ATTEN_COND_ODD].first, "dB" ); setResult( 6, results[TRANSLINE_PARAMETERS::ATTEN_DILECTRIC_EVEN].first, "dB" ); setResult( 7, results[TRANSLINE_PARAMETERS::ATTEN_DILECTRIC_ODD].first, "dB" ); setResult( 8, results[TRANSLINE_PARAMETERS::SKIN_DEPTH].first / UNIT_MICRON, "µm" ); setResult( 9, results[TRANSLINE_PARAMETERS::Z_DIFF].first, "Ω" ); setErrorLevel( Z0_E_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::Z0_E].second ) ); setErrorLevel( Z0_O_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::Z0_O].second ) ); setErrorLevel( ANG_L_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::ANG_L].second ) ); setErrorLevel( PHYS_WIDTH_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_WIDTH].second ) ); setErrorLevel( PHYS_LEN_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_LEN].second ) ); setErrorLevel( PHYS_S_PRM, convertParameterStatusCode( results[TRANSLINE_PARAMETERS::PHYS_S].second ) ); } void C_MICROSTRIP::getProperties() { TRANSLINE::getProperties(); m_calc.SetParameter( TRANSLINE_PARAMETERS::Z0_E, m_parameters[Z0_E_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::Z0_O, m_parameters[Z0_O_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::EPSILONR, m_parameters[EPSILONR_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::PHYS_WIDTH, m_parameters[PHYS_WIDTH_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::PHYS_LEN, m_parameters[PHYS_LEN_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::PHYS_S, m_parameters[PHYS_S_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::H, m_parameters[H_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::T, m_parameters[T_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::H_T, m_parameters[H_T_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::FREQUENCY, m_parameters[FREQUENCY_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::MURC, m_parameters[MURC_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::SKIN_DEPTH, m_parameters[SKIN_DEPTH_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::SIGMA, m_parameters[SIGMA_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::ROUGH, m_parameters[ROUGH_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::TAND, m_parameters[TAND_PRM] ); m_calc.SetParameter( TRANSLINE_PARAMETERS::ANG_L, m_parameters[ANG_L_PRM] ); } void C_MICROSTRIP::show_results() { }