Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
4980438 | Journal of Loss Prevention in the Process Industries | 2016 | 9 Pages |
Abstract
This article presents a numerical study of the explosive wave propagations from a 40Â cm long and 10.8Â cm diameter cylinder to smaller 1.7Â m and 2.6Â m long cylinders with 36Â mm diameters. Initially, the 40Â cm long cylinder was filled with 4% propane-air mixtures and ignited with a 1Â kJ sparking energy until the maximum temperature near the ignition source reached 2400/3000Â K. In the study, a 3D numerical model was established by combining compressible four-step reduced propane oxidation reaction kinetics with the k-Ï shear-stress transport (SST) turbulent model. In order to resolve the thin detonation wave front, a dynamically refined mesh near the high pressure gradient was adopted. The pressure gradient profiles, velocity magnitude contours, temperature contours and compressible wave propagation speeds across the tubes were then predicted using this 3D model.
Keywords
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Chemical Health and Safety
Authors
C. Luo, J. Zanganeh, B. Moghtaderi,