TY - JOUR
T1 - Assessment of different full-spectrum correlated K-distribution methods in radiative heat transfer of NH3-H2 flames
AU - Liu, Guanghai
AU - Li, Ang
AU - Liu, Yuying
AU - Zhu, Jinyu
AU - Niu, Yulu
N1 - Publisher Copyright:
Copyright © 2024. Published by Elsevier Ltd.
PY - 2026/6
Y1 - 2026/6
N2 - Because of the strong radiative property of NH₃, the emission and absorption parts in radiative source term of ammonia-containing fuel flames are equally important, which is quite different from traditional hydrocarbon-air flames. Therefore, the conclusions of radiative property models applicable to traditional hydrocarbon-air flames cannot be extended to ammonia-containing fuel flames. In this work, the accuracy of five Full-Spectrum Correlated K-distribution (FSCK) methods, i.e., FSCK-1 (Modest et al., 2002), FSCK-2 (Cai et al., 2014), FSCK-3 (Liu et al., 2020), RC-FSK (Solovjov et al., 2018) and ω-ALDF RC-FSK (André F et al., 2022), is evaluated in 24 one-dimensional NH3-H2 flames in 6 different pressures and 4 two-dimensional NH3-H2 flames in 2 different pressures prior to engineering applications. The results show that owing to the partial invalidation of the correlated spectral assumption, all FSCK methods demonstrate distinct errors in the low-temperature ammonia-rich regions. FSCK-1 requires an appropriate reference temperature to ensure accuracy in high-temperature regions, whereas other FSCKs perform excellently here due to the conservation of emission part of radiative source term. ω-ALDF RC-FSK and FSCK-2 display errors in H₂O-containing low-temperature oxidizer regions, especially for high-pressure flames. To guarantee accuracy, no fewer than 32 Gauss nodes are required for ω-ALDF RC-FSK, whereas 16 nodes suffice for the other models.
AB - Because of the strong radiative property of NH₃, the emission and absorption parts in radiative source term of ammonia-containing fuel flames are equally important, which is quite different from traditional hydrocarbon-air flames. Therefore, the conclusions of radiative property models applicable to traditional hydrocarbon-air flames cannot be extended to ammonia-containing fuel flames. In this work, the accuracy of five Full-Spectrum Correlated K-distribution (FSCK) methods, i.e., FSCK-1 (Modest et al., 2002), FSCK-2 (Cai et al., 2014), FSCK-3 (Liu et al., 2020), RC-FSK (Solovjov et al., 2018) and ω-ALDF RC-FSK (André F et al., 2022), is evaluated in 24 one-dimensional NH3-H2 flames in 6 different pressures and 4 two-dimensional NH3-H2 flames in 2 different pressures prior to engineering applications. The results show that owing to the partial invalidation of the correlated spectral assumption, all FSCK methods demonstrate distinct errors in the low-temperature ammonia-rich regions. FSCK-1 requires an appropriate reference temperature to ensure accuracy in high-temperature regions, whereas other FSCKs perform excellently here due to the conservation of emission part of radiative source term. ω-ALDF RC-FSK and FSCK-2 display errors in H₂O-containing low-temperature oxidizer regions, especially for high-pressure flames. To guarantee accuracy, no fewer than 32 Gauss nodes are required for ω-ALDF RC-FSK, whereas 16 nodes suffice for the other models.
KW - Correlated-K implementation
KW - Full-Spectrum correlated K-distribution
KW - ammonia-containing fuel flames
UR - https://www.scopus.com/pages/publications/105036431822
U2 - 10.1016/j.applthermaleng.2026.130978
DO - 10.1016/j.applthermaleng.2026.130978
M3 - 文章
AN - SCOPUS:105036431822
SN - 1359-4311
VL - 298
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 130978
ER -