TY - JOUR
T1 - Unveiling the dependence of laser energy on ignition critical conditions in TC11 titanium alloy under high temperature airflow
AU - Li, Jianjun
AU - Xing, Peng
AU - Wang, Congzheng
AU - Jin, Pengfei
AU - Li, Yajun
AU - Zhang, Yuqi
AU - Wang, Yang
AU - He, Guangyu
AU - Zhang, Cheng
AU - Huang, Jinfeng
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/9/23
Y1 - 2025/9/23
N2 - The high combustion susceptibility of titanium alloys under high pressure and temperature airflow has emerged as a critical factor restricting its application in aeroengines. Herein, the effects of airflow pressure and flow rate on ignition critical conditions of TC11 alloy were systematically investigated by using a laser ignition system. Results showed that the combustion occurs within 2–4 s through heating, ignition, and stable combustion stages under laser. Crucially, ignition of TC11 alloy exhibited a strong dependence of laser-power. Below 238 W, the specimen resisted ignition even at temperatures over 1518.7 ± 20.4 K. In contrast, reaching the power threshold led to ignition at 1345.6 ± 23.3 K. Notably, with the increasing ambient pressure, both the critical laser power and ignition temperature further reduced, which followed well with the Frank-Kamenetskii (F-K) theory. According to the modified F-K model, the apparent activation energy (Ea=86.46 kJ/mol) for the ignition of TC11 was merely one-third of the thermal-oxidation activation energy (Eo=231.98 kJ/mol). Furthermore, the post-ignition microstructural evolution showed replacement of the protective oxide layer by dendritic multiphases mainly composed of TiO, α-Ti, β-Ti and TiO2. Such dependence of laser energy on ignition can be explained by the reaction transition shifted from a diffusion-oxidation mechanism to a multi-path reaction process involving peritectic reactions (L+α-Ti→TiO), leading to localized thermal runaway and ignition, induced by the thermal-shock disruption of passivation under high-energy laser stimulation.
AB - The high combustion susceptibility of titanium alloys under high pressure and temperature airflow has emerged as a critical factor restricting its application in aeroengines. Herein, the effects of airflow pressure and flow rate on ignition critical conditions of TC11 alloy were systematically investigated by using a laser ignition system. Results showed that the combustion occurs within 2–4 s through heating, ignition, and stable combustion stages under laser. Crucially, ignition of TC11 alloy exhibited a strong dependence of laser-power. Below 238 W, the specimen resisted ignition even at temperatures over 1518.7 ± 20.4 K. In contrast, reaching the power threshold led to ignition at 1345.6 ± 23.3 K. Notably, with the increasing ambient pressure, both the critical laser power and ignition temperature further reduced, which followed well with the Frank-Kamenetskii (F-K) theory. According to the modified F-K model, the apparent activation energy (Ea=86.46 kJ/mol) for the ignition of TC11 was merely one-third of the thermal-oxidation activation energy (Eo=231.98 kJ/mol). Furthermore, the post-ignition microstructural evolution showed replacement of the protective oxide layer by dendritic multiphases mainly composed of TiO, α-Ti, β-Ti and TiO2. Such dependence of laser energy on ignition can be explained by the reaction transition shifted from a diffusion-oxidation mechanism to a multi-path reaction process involving peritectic reactions (L+α-Ti→TiO), leading to localized thermal runaway and ignition, induced by the thermal-shock disruption of passivation under high-energy laser stimulation.
KW - Combustion behavior
KW - High temperature airflow
KW - Ignition temperature
KW - Laser ignition
KW - Titanium alloys
UR - https://www.scopus.com/pages/publications/105015300086
U2 - 10.1016/j.jallcom.2025.183622
DO - 10.1016/j.jallcom.2025.183622
M3 - 文章
AN - SCOPUS:105015300086
SN - 0925-8388
VL - 1040
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 183622
ER -