Laminar burning velocities and lean flammability limits of H2/CO/CH4/CO2/air mixtures associated with gases vented out Li-ion batteries after thermal runaway
Artikel i vetenskaplig tidskrift, 2025

To explore major combustion characteristics of mixtures relevant to gases vented out Li-ion batteries, complex-chemistry simulations of laminar flames are performed for a wide range of H2/CO/CO2/CH4/air mixtures by varying equivalence ratio and mole fractions of these species. The simulations are done for different temperatures of unburned reactants, using three state-of-the-art chemical mechanisms and multicomponent diffusion model with Soret effect. The focus of the study is placed on the influence of concentrations of CO, CO2, and CH4 on the computed laminar flame speeds SL and a surrogate of lean flammability limit, i.e., equivalence ratio ϕ∗ associated with a small speed SL) = 5 cm/s. Results show that, first, both SL(ϕ) in lean mixtures and ϕ∗ depend weakly on mole fraction of CO in H2/CO blends. Second, an increase in ϕ and a decrease in SL(ϕ) in lean mixtures are more (less) pronounced when adding CH4 (CO2, respectively) to H2/CO blends. Accordingly, under certain conditions, fuel can reduce SL(ϕ) more than diluent. These observations are attributed to a larger (smaller) increase in the mole fraction of inert species when adding CH4 (CO2, respectively) to H2/CO blends but
retaining the same (low) equivalence ratio. Finally, results show that a large volume fraction of CO2 in gases vented out a battery does not exclude fire risks.

Lean flammability limit

Flammable jets

Laminar flame speed

Li-ion battery

Fire risk

Numerical simulations

Författare

Andrei Lipatnikov

Chalmers, Mekanik och maritima vetenskaper, Transport, energi och miljö

Results in Engineering

25901230 (eISSN)

Vol. 28 108274

Brandsäkerhet för litiumjonbatterier som en uppgift för en hållbar övergång från forskning om fossila bränslen till forskning om elektriska framdrivningssystem

Styrkeområde Energi, 2023-07-01 -- 2025-12-31.

Modellering av vätediffusionsförbränning

Chalmers styrkeområde Transport (2021-0040), 2022-07-01 -- 2024-07-31.

Drivkrafter

Hållbar utveckling

Styrkeområden

Energi

Fundament

Grundläggande vetenskaper

Ämneskategorier (SSIF 2025)

Energiteknik

DOI

10.1016/j.rineng.2025.108274

Mer information

Senast uppdaterat

2025-12-05