globalchange  > 影响、适应和脆弱性
DOI: 10.1016/j.atmosres.2018.05.023
Scopus记录号: 2-s2.0-85048163103
论文题名:
Application of the extended quadrature method of moments as a multi-moment parameterization scheme for raindrops sedimentation
作者: Carneiro J.N.E.; Gonçalves G.F.N.; Mukhopadhyay A.
刊名: Atmospheric Research
ISSN: 1698095
出版年: 2018
卷: 213
起始页码: 97
结束页码: 109
语种: 英语
英文关键词: Extended quadrature method of moments ; Gamma distribution ; Raindrops ; Sedimentation
Scopus关键词: Drops ; Method of moments ; Parameterization ; Rain ; Sedimentation ; Size distribution ; Weather forecasting ; Drop size distribution ; Gamma distribution ; Kernel density function ; Numerical weather prediction models ; Parameterization schemes ; Quadrature method of moments ; Quadrature methods of moments ; Raindrops ; Numerical methods ; benchmarking ; climate modeling ; climate prediction ; cloud microphysics ; parameterization ; raindrop ; sedimentation ; size distribution ; spectral analysis
英文摘要: In numerical weather prediction models, previous approaches have employed bulk parameterization schemes based on presumed-number-density-functions or quadrature methods of moments (QMOM). In the present work, a new parameterization based on the extended quadrature method of moments (EQMOM) introduced in Yuan et al. (2012) is applied to the case of pure sedimentation of rain drops (one-dimensional “rain-shaft” test case). In EQMOM, the drop size distribution is represented by a weighted sum of kernel density functions, combining elements of quadrature and presumed functional form methods. In cloud microphysics, moment parameterization is frequently based on Gamma distributions, which guided the choice of the kernel shape employed here. EQMOM allows inclusion of a number of prognostic moments in the method (e.g. M(0)-M(6)), which improves flexibility in the representation of a continuous size distribution. QMOM and EQMOM up to order 3 were applied in two drop sedimentation test cases previously presented in the literature, in which initial states consist of different cloud heights and drop size distribution shapes. Results were compared to a spectral reference model using a number of transported bin sizes showing good agreement. The analysis was focused in the sedimentation induced errors obtained by the different approaches. In QMOM, size sorting due to different fall velocities generates step patterns in the moment profiles. With EQMOM, on the other hand, these artifacts are significantly suppressed. Furthermore, predictions of the number concentration, total liquid content, radar reflectivity, mass mean diameter and rain rates are shown to be greatly improved when EQMOM is employed. Quantitatively, EQMOM is capable of reducing global error measures by nearly one order of magnitude, when compared to results obtained by previous methods in a common benchmark, showing the great potential of the method in the field of meteorology. © 2018
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/108807
Appears in Collections:影响、适应和脆弱性
气候变化事实与影响

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作者单位: ISDB FlowtechRJ 22290-906, Brazil; Department of Mechanical Engineering, Federal University of Rio de Janeiro – UFRJRJ 21945-970, Brazil; Department of Mechanical Engineering, Jadavpur University, Kolkata, 700032, India

Recommended Citation:
Carneiro J.N.E.,Gonçalves G.F.N.,Mukhopadhyay A.. Application of the extended quadrature method of moments as a multi-moment parameterization scheme for raindrops sedimentation[J]. Atmospheric Research,2018-01-01,213
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