Stochastic Particle Trajectory Modeling Techniques for Spill and Search and Rescue Models

Author(s):  
Tatsu Isaji ◽  
Malcolm L. Spaulding ◽  
Arthur A. Allen
2014 ◽  
Vol 525 ◽  
pp. 222-226 ◽  
Author(s):  
Bo Lou ◽  
Hai Liang Diao ◽  
Si Ke Wu

Combustion in boiler blended with waste sludge can cause serious abrasion in the furnace. In this paper, Fluent6.3 was applied to establish three-dimensional numerical combustion model based on k-ε turbulence equations and Lagrangian stochastic particle trajectory to analyze a CFB (Circulating Fluidized Bed) boiler of a power plant in Guangdong province. The results show that anti-attritions will break the ring-core adherent regurgitation of the particles thus reducing erosion of particles made to the furnace wall. Furthermore, a setting of three anti-attrition ridges can prolongate the life of the wall by 2.49 times. Increasing numbers and the length of ridges are beneficial to wall, which should be limited shorter than 150mm duo to heat tube slagging, and implementing a shape of trapezoid instead of rectangle all are derived as enhancements to the feature of anti-attrition of CFB.


Atmosphere ◽  
2021 ◽  
Vol 12 (8) ◽  
pp. 977
Author(s):  
Helge Simon ◽  
Jannik Heusinger ◽  
Tim Sinsel ◽  
Stephan Weber ◽  
Michael Bruse

The number of studies evaluating flux or concentration footprints has grown considerably in recent years. These footprints are vital to understand surface–atmosphere flux measurements, for example by eddy covariance. The newly developed backwards trajectory model LaStTraM (Lagrangian Stochastic Trajectory Model) is a post-processing tool, which uses simulation results of the holistic 3D microclimate model ENVI-met as input. The probability distribution of the particles is calculated using the Lagrangian Stochastic method. Combining LaStTraM with ENVI-met should allow us to simulate flux and concentration footprints in complex urban environments. Applications and evaluations were conducted through a comparison with the commonly used 2D models Kormann Meixner and Flux Footprint Predictions in two different meteorological cases (stable, unstable) and in three different detector heights. LaStTraM is capable of reproducing the results of the commonly used 2D models with high accuracy. In addition to the comparison with common footprint models, studies with a simple heterogeneous and a realistic, more complex model domain are presented. All examples show plausible results, thus demonstrating LaStTraM’s potential for the reliable calculation of footprints in homogeneous and heterogenous areas.


2019 ◽  
Author(s):  
Yangcheng Luo ◽  
Michael A. Mischna ◽  
Yuk L. Yung ◽  
Armin Kleinböhl ◽  
Pin Chen

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