AN ACCURATE AND EFFICIENT RADIATION ALGORITHM FOR MIDDLE ATMOSPHERE MODELS

被引:0
|
作者
ZHU, X
机构
关键词
D O I
10.1175/1520-0469(1994)051<3593:AAAERA>2.0.CO;2
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
An accurate, efficient, and user-friendly radiation algorithm is developed for calculating net radiative heating rate in middle atmosphere models. The Curtis matrix interpolation scheme originally developed by Zhu is adopted with explicit temperature dependence for the calculation of the CO2 15-mu m band atmospheric cooling rate. The O-3 9.6-mu m band cooling rate is calculated by a Curtis matrix interpolation and includes variations of temperature and ozone mixing ratio. The water vapor cooling rate by the rotational band and the 6.3-mu m vibrational band is calculated by interpolation to the H2O mixing ratio variation. All Curtis matrices are referenced to a basic state and calculated by correlated k distributions derived from line-by-line integrations. The solar heating rate by O-3 and O-2 is based on Strobel's parameterization and updated with solar fluxes and absorption cross-sectional data. A 6-point Gaussian quadrature is used to compute the diurnal average of the solar heating rate for two-dimensional models. The algorithm produces errors of less than 5% in cooling rate and less than 3% in heating rate in the region of 35-65 km where the radiative processes play a major role. Yet the computation time required for this algorithm is comparable to a scale-dependent Newtonian cooling parameterization. In addition, a unified overview of the relation among the exact line-by-line integration, the correlated k distribution, and the classical random band models is given, and the great superiority of the correlated k method over the classical random band models for nonhomogeneous atmospheres is demonstrated. The author also suggest least-squares fitting band model parameters to a line-by-line integrated k distribution.
引用
收藏
页码:3593 / 3614
页数:22
相关论文
共 50 条
  • [41] An accurate and efficient algorithm to model the agglomeration of macroscopic particles
    Klahn, Emil
    Grosshans, Holger
    JOURNAL OF COMPUTATIONAL PHYSICS, 2020, 407
  • [42] An efficient and accurate algorithm for autonomous envelope following with applications
    Zhang, TR
    Feng, D
    ICCAD-2005: INTERNATIONAL CONFERENCE ON COMPUTER AIDED DESIGN, DIGEST OF TECHNICAL PAPERS, 2005, : 614 - 617
  • [43] An efficient and accurate multi-camera calibration algorithm
    Lei, BJ
    Hendriks, EA
    VISION, MODELING, AND VISUALIZATION 2003, 2003, : 135 - 142
  • [44] HapCUT: an efficient and accurate algorithm for the haplotype assembly problem
    Bansal, Vikas
    Bafna, Vineet
    BIOINFORMATICS, 2008, 24 (16) : I153 - I159
  • [45] An Efficient and Accurate Object Detection Algorithm And Its Application
    Jiang Libiao
    Li Xiaojun
    PROCEEDINGS OF 2020 IEEE 5TH INFORMATION TECHNOLOGY AND MECHATRONICS ENGINEERING CONFERENCE (ITOEC 2020), 2020, : 661 - 666
  • [46] An Accurate and Efficient Sampling Algorithm for Capacitive Touch Panels
    Akhtar, Humza
    Kemao, Qian
    2016 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE PROCEEDINGS, 2016, : 968 - 973
  • [47] An efficient retrieving algorithm for accurate capacitive position sensors
    deJong, GW
    Meijer, GCM
    SENSORS AND ACTUATORS A-PHYSICAL, 1997, 58 (01) : 75 - 84
  • [48] DisCoveR: accurate and efficient discovery of declarative process models
    Back, Christoffer Olling
    Slaats, Tijs
    Hildebrandt, Thomas Troels
    Marquard, Morten
    INTERNATIONAL JOURNAL ON SOFTWARE TOOLS FOR TECHNOLOGY TRANSFER, 2022, 24 (04) : 563 - 587
  • [49] DisCoveR: accurate and efficient discovery of declarative process models
    Christoffer Olling Back
    Tijs Slaats
    Thomas Troels Hildebrandt
    Morten Marquard
    International Journal on Software Tools for Technology Transfer, 2022, 24 : 563 - 587
  • [50] Accurate and efficient solution of distributed dynamical system models
    Balzano, Andrea
    Tronci, Stefania
    Baratti, Roberto
    20TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2010, 28 : 421 - 426