Basis for ensuring fire and explosion safety by modern innovative methods of pre-preparation process equipment

2016 ◽  
Vol 25 (10) ◽  
pp. 41-47
Author(s):  
V. P. Nazarov ◽  
Ya. V. Korotovskikh ◽  
S. A. Shvyrkov ◽  
A. P. Petrov
2021 ◽  
Vol 29 (6) ◽  
pp. 75-83
Author(s):  
V. N. Filippov ◽  
G. I. Petrov ◽  
Yu. N. Shebeko ◽  
S. V. Bespalco ◽  
I. K. Sergeev

Introduction. The problem of fire and explosion safety of liquefied hydrocarbon gas transportation arose in the 1970s. The task was set to design new generation tanks having improved technical and economic parameters and indicators to ensure fire and explosion safety. The co-authors have conducted the analysis of regulatory documentation covering the fire and explosion safety of hydrocarbon gas transportation tanks, which shows the absence of any unified policy in the design of cars designated for hazardous cargoes. Hence, a number of models, having no or insufficiently effective protective devices, are produced. Therefore, the issues of fire and explosion safety were understudied in the earlier research works on design of railroad cars, and the problem has not been resolved. Principal actions aimed at the fire and explosion safety of hydrocarbon gas transportation tanks were implemented by the Russian University of Transport (MIIT). Statistical information on fire hazardous failures and fleet tank accidents, as well as their detailed investigation has been collected. Tank barrel vulnerabilities have been identified; reliability and durability assessment methods have been developed. Priorities for improving the pressurized tank design are outlined. The following items of work have been performed: ● analysis of statistical data on hazardous cargo transportation accidents, ● development of fire hazard emergency scenarios; ● improvement of “Railroad car analysis and design regulations”, ● development of mathematical models designated for the analysis of tanks, ● identification of an unstable temperature field inside a tank barrel, if in the seat of fire, using non-linear heat conduction equations and the finite element method (FEM), ● identification of the stress-strain state of a tank barrel during a fire. Conclusions. Following the completion of the work performed by the Russian University of Transport (MIIT), hydrocarbon gas tanks have obtained a better barrel emergency impact protection. A unified policy in the design of cars for hazardous cargoes is needed and regulatory documentation requirements must be harmonized.


Author(s):  
Roman Shavaliev ◽  
Rinat Yagudin ◽  
Daniil Valeev ◽  
Elena Elizareva ◽  
Roman Marvanov

Objective: To ensure industrial safety for autogas filling stations operated in town, analyzing the current status of the issue and identifying accident causes are performed. Methods: It is shown that most motor vehicles are not designed to use liquefied gas as a fuel and consequently converted to fit gas cylinders for using liquefied petroleum gases (LPG) making the hazard to people much higher and contributing to autogas filling station chain growth. As the filling station process involves highly flammable gases, such facilities may be referred to as fire and explosion hazardous. Results: Making a selection of a typical autogas filling station based on systems analysis methods and also approved methods, an emergency is simulated with a gas-air mixture explosion in implementing a worst-case scenario (LPG escape resulting from a destroyed tank truck forming a primary gas-vapor cloud with the gas-air mixture exploding): injurious effects and potential impact are assessed. It is identified that within a 50 m radius there is a risk that people may be affected and also that buildings and structures placed in close vicinity to it be damaged, which causes a special threat if located close to other autogas filling stations. As one of the primary goals for safe operation of autogas filling stations is keeping rated operating conditions for process equipment components, a number of early preventive measures has to be taken, which would allow avoiding any emergencies. Practical importance: Following the patent study, a dusty cloud generation device based on an explosion overpressure triggering mechanism for explosion containment is contemplated and proposed and its location and operating conditions are recommended, which will make the facility better protected from fire and explosion hazards.


Sign in / Sign up

Export Citation Format

Share Document