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contributor authorWei, Yaochi
contributor authorMiller, Christopher
contributor authorOlsen, Daniel
contributor authorZhou, Min
date accessioned2022-02-06T05:36:44Z
date available2022-02-06T05:36:44Z
date copyright5/24/2021 12:00:00 AM
date issued2021
identifier issn0021-8936
identifier otherjam_88_9_091005.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4278393
description abstractThe ignition threshold of an energetic material (EM) quantifies the macroscopic conditions for the onset of self-sustaining chemical reactions. The threshold is an important theoretical and practical measure of material attributes that relate to safety and reliability. Historically, the thresholds are measured experimentally. Here, we present a new Lagrangian computational framework for establishing the probabilistic ignition thresholds of heterogeneous EM out of the evolutions of coupled mechanical-thermal-chemical processes using mesoscale simulations. The simulations explicitly account for microstructural heterogeneities, constituent properties, and interfacial processes and capture processes responsible for the development of material damage and the formation of hotspots in which chemical reactions initiate. The specific mechanisms tracked include viscoelasticity, viscoplasticity, fracture, post-fracture contact, frictional heating, heat conduction, reactive chemical heating, gaseous product generation, and convective heat transfer. To determine the ignition threshold, the minimum macroscopic loading required to achieve self-sustaining chemical reactions with a rate of reactive heat generation exceeding the rate of heat loss due to conduction and other dissipative mechanisms is determined. Probabilistic quantification of the processes and the thresholds are obtained via the use of statistically equivalent microstructure sample sets (SEMSS). The predictions are in agreement with available experimental data.
publisherThe American Society of Mechanical Engineers (ASME)
titlePrediction of Probabilistic Shock Initiation Thresholds of Energetic Materials Through Evolution of Thermal-Mechanical Dissipation and Reactive Heating
typeJournal Paper
journal volume88
journal issue9
journal titleJournal of Applied Mechanics
identifier doi10.1115/1.4051092
journal fristpage091005-1
journal lastpage091005-15
page15
treeJournal of Applied Mechanics:;2021:;volume( 088 ):;issue: 009
contenttypeFulltext


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