Comparison of a 4000-reaction chemical mechanism with the carbon bond IV and an adjusted carbon bond IV-EX mechanism using SMVGEAR II

被引:16
作者
Liang, JY [1 ]
Jacobson, MZ [1 ]
机构
[1] Stanford Univ, Dept Civil & Environm Engn, Stanford, CA 94305 USA
关键词
D O I
10.1016/S1352-2310(99)00486-0
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The well-known carbon bond IV (CBIV) chemical mechanism (33 species, 81 reactions) is compared with an adjusted carbon bond mechanism (ACBM) (109 species, 233 reactions) and a more explicit master chemical mechanism (MCM) (1427 species, 3911 reactions) in tests of their predictions of O-3, NOx( = NO + NO2), HCHO, HNO3, H2O2, and peroxyacetlynitrate (PAN). The ACBM was developed from a fourth mechanism, the expanded carbon bond mechanism (CBM-EX), by explicitly including the decomposition of C2H6, C3H8, and C3H6 All three mechanisms tested were updated with the inorganic chemistry from the ACBM and implemented into the sparse-matrix, ordinary differential equation solver, SMVGEAR II. Sparse-matrix treatment in SMVGEAR II reduced the number of calculations during matrix decomposition for the MCM by a factor of 15,000 (99.995%), or from an estimated 154 h to 37 s of cpu time per simulation day in one grid cell on an SGI origin 2000, in comparison with a full-matrix solution. Computer time for each mechanism was linearly proportional to the number of species in the mechanism. It is shown that the three mechanisms agreed closely when aromatic concentrations were initially low in comparison with alkane, alkene, and aldehyde initial concentrations. When aromatic concentrations were initially high (higher than that observed in urban air), the yields of O-3, HCHO, and PAN differed significantly among the three mechanisms although the daily maximum concentrations of these species agreed better. The aromatic representation in MCM appears to lead to systematic overprediction of ozone, according to a comparison with smog chamber data. For initial conditions taken from measurements at nine sites in Los Angeles, the daily maximum concentrations of O-3, HCHO, PAN, and H2O2 predicted by the three mechanisms differed by 30-50%, 10-40%, 15-40%, and 60-80%, respectively. The relative differences between the daytime series of O-3, HCHO, H2O2, and PAN predicted by the three mechanisms were 7-68%, 7-46%, 35-150%, and 10-64%, respectively. The use of the aromatic scheme of ACBM in MCM significantly reduced the disagreement with respect to ozone. The measurement of H2O2 in smog chamber experiments would be useful in validating chemical mechanisms. (C) 2000 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:3015 / 3026
页数:12
相关论文
共 30 条
[1]   Comparison of the chemical schemes of the EMEP MSC-W and IVL photochemical trajectory models [J].
Andersson-Sköld, Y ;
Simpson, D .
ATMOSPHERIC ENVIRONMENT, 1999, 33 (07) :1111-1129
[2]   AN UPDATED CHEMICAL MECHANISM FOR HYDROCARBON/NOX/SO2 PHOTO-OXIDATIONS SUITABLE FOR INCLUSION IN ATMOSPHERIC SIMULATION-MODELS [J].
ATKINSON, R ;
LLOYD, AC ;
WINGES, L .
ATMOSPHERIC ENVIRONMENT, 1982, 16 (06) :1341-1355
[3]   Evaluated kinetic, photochemical and heterogeneous data for atmospheric chemistry .5. IUPAC Subcommittee on Gas Kinetic Data Evaluation for Atmospheric Chemistry [J].
Atkinson, R ;
Baulch, DL ;
Cox, RA ;
Hampson, RF ;
Kerr, JA ;
Rossi, MJ ;
Troe, J .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1997, 26 (03) :521-1011
[4]   A DETAILED MECHANISM FOR THE GAS-PHASE ATMOSPHERIC REACTIONS OF ORGANIC-COMPOUNDS [J].
CARTER, WPL .
ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS, 1990, 24 (03) :481-518
[5]   SENSITIVITY OF URBAN AIRSHED MODEL RESULTS FOR TEST FUELS TO UNCERTAINTIES IN LIGHT-DUTY VEHICLE AND BIOGENIC EMISSIONS AND ALTERNATIVE CHEMICAL MECHANISMS - AUTO OIL AIR-QUALITY IMPROVEMENT RESEARCH-PROGRAM [J].
CHOCK, DP ;
YARWOOD, G ;
DUNKER, AM ;
MORRIS, RE ;
POLLACK, AK ;
SCHLEYER, CH .
ATMOSPHERIC ENVIRONMENT, 1995, 29 (21) :3067-3084
[6]  
DeMore W.B., 1997, CHEM KINETICS PHOTOC
[7]   A COMPARISON OF 3 PHOTOCHEMICAL OXIDANT MECHANISMS [J].
DODGE, MC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1989, 94 (D4) :5121-5136
[8]  
Gery M. W., 1988, EPA600388012
[9]   A PHOTOCHEMICAL KINETICS MECHANISM FOR URBAN AND REGIONAL SCALE COMPUTER MODELING [J].
GERY, MW ;
WHITTEN, GZ ;
KILLUS, JP ;
DODGE, MC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1989, 94 (D10) :12925-12956
[10]   DEVELOPMENT AND TESTING OF A NEW VARIABLE SCALE AIR-POLLUTION MODEL - ACDEP [J].
HERTEL, O ;
CHRISTENSEN, J ;
RUNGE, EH ;
ASMAN, WAH ;
BERKOWICZ, R ;
HOVMAND, MF ;
HOV, O .
ATMOSPHERIC ENVIRONMENT, 1995, 29 (11) :1267-1290