TY - JOUR
T1 - ISORROPIAII
T2 - A computationally efficient thermodynamic equilibrium model for K+-Ca2+-Mg2+-NH4 +-Na+-SO42--NO3 --Cl--H2O aerosols
AU - Fountoukis, C.
AU - Nenes, A.
PY - 2007
Y1 - 2007
N2 - This study presents ISORROPIA II, a thermodynamic equilibrium model for the K+-Ca2+-Mg2+-NH4 +-Na+-SO42--NO3 --Cl--H2O aerosol system. A comprehensive evaluation of its performance is conducted against water uptake measurements for laboratory aerosol and predictions of the SCAPE2 thermodynamic module over a wide range of atmospherically relevant conditions. The two models agree well, to within 13% for aerosol water content and total PM mass, 16% for aerosol nitrate and 6% for aerosol chloride and ammonium. Largest discrepancies were found under conditions of low RH, primarily from differences in the treatment of water uptake and solid state composition. In terms of computational speed, ISORROPIA II was more than an order of magnitude faster than SCAPE2, with robust and rapid convergence under all conditions. The addition of crustal species does not slow down the thermodynamic calculations (compared to the older ISORROPIA code) because of optimizations in the activity coefficient calculation algorithm. Based on its computational rigor and performance, ISORROPIA II appears to be a highly attractive alternative for use in large scale air quality and atmospheric transport models.
AB - This study presents ISORROPIA II, a thermodynamic equilibrium model for the K+-Ca2+-Mg2+-NH4 +-Na+-SO42--NO3 --Cl--H2O aerosol system. A comprehensive evaluation of its performance is conducted against water uptake measurements for laboratory aerosol and predictions of the SCAPE2 thermodynamic module over a wide range of atmospherically relevant conditions. The two models agree well, to within 13% for aerosol water content and total PM mass, 16% for aerosol nitrate and 6% for aerosol chloride and ammonium. Largest discrepancies were found under conditions of low RH, primarily from differences in the treatment of water uptake and solid state composition. In terms of computational speed, ISORROPIA II was more than an order of magnitude faster than SCAPE2, with robust and rapid convergence under all conditions. The addition of crustal species does not slow down the thermodynamic calculations (compared to the older ISORROPIA code) because of optimizations in the activity coefficient calculation algorithm. Based on its computational rigor and performance, ISORROPIA II appears to be a highly attractive alternative for use in large scale air quality and atmospheric transport models.
UR - https://www.scopus.com/pages/publications/34548658342
U2 - 10.5194/acp-7-4639-2007
DO - 10.5194/acp-7-4639-2007
M3 - Article
AN - SCOPUS:34548658342
SN - 1680-7316
VL - 7
SP - 4639
EP - 4659
JO - Atmospheric Chemistry and Physics
JF - Atmospheric Chemistry and Physics
IS - 17
ER -