Two-step low-temperature oxidation for thermal stability analysis of a combustible sphere

Thermal stability of reactive materials in a stockpile which spontaneously ignites is investigated in this article. The stockpile is modeled in a spherical domain assumed to be of a constant thermal conductivity. The energy equation is modified to a partial differential equation that is most suitabl...

Full description

Bibliographic Details
Main Authors: Ramoshweu S. Lebelo, Kholeka C. Moloi, Kazeem O. Okosun, Mirirai Mukamuri, Samuel O. Adesanya, Mohana S. Muthuvalu
Format: Article
Language:English
Published: Elsevier 2018-12-01
Series:Alexandria Engineering Journal
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016818300802
Description
Summary:Thermal stability of reactive materials in a stockpile which spontaneously ignites is investigated in this article. The stockpile is modeled in a spherical domain assumed to be of a constant thermal conductivity. The energy equation is modified to a partial differential equation that is most suitable to analyze thermal stability of the combusting material. This is carried out by looking at the behavior of the temperature as selected parameters embedded in the governing equation are varied. The governing equation is solved numerically by using the Finite Difference Method (FDM). The results are given graphically and discussed appropriately to provide an understanding of the complicated combustion process. Keywords: Thermal conductivity, Low-temperature oxidation, Spontaneous ignition, Sphere, Finite Difference Method
ISSN:1110-0168