TY - JOUR
T1 - Influencing factors on thermoacoustic instability in combustion of arrayed micro-tubes
AU - Tian, Liang
AU - Ma, Xiao
AU - Duan, Runze
AU - Han, Xiao
AU - Feng, Wenbin
AU - Wang, Hongxin
N1 - Publisher Copyright:
© 2026 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC. This is an open access article under the CC BY license. http://creativecommons.org/licenses/by/4.0/
PY - 2026/4/9
Y1 - 2026/4/9
N2 - To elucidate the coupled effects of air preheat temperature, equivalence ratio, and Wobbe Index (WI) on thermoacoustic oscillation characteristics in micro-scale hydrogen combustion, systematic experiments were conducted using an arrayed micro-tube combustor. By adjusting WI, equivalence ratio (φ), and air preheat temperature, flame images and frequency spectra were acquired. Response surface methodology (RSM) was employed to construct a combustion instability map, enabling quantitative characterization of the influence of these three parameters on pressure oscillation amplitude. The results indicate that flames fueled by low- and medium-WI fuel exhibit periodic extinction–reignition processes, accompanied by a single dominant peak in the frequency spectrum and periodically distributed proper orthogonal decomposition (POD) modal energy, indicating typical thermoacoustic oscillations. The combustion oscillation intensity initially increases and then decreases with the equivalence ratio, peaking at φ ≈ 0.8. Flames with low WI (36.15 MJ m−3) are compact and exhibit high heat release intensity, triggering oscillations at φ = 0.8. Medium-WI fuel (48.3 MJ m−3) induce strong oscillations at φ ≥ 0.7, while high-WI fuel (60.44 MJ m−3) yields dispersed flames with reduced reactivity, weakening thermoacoustic coupling. Air preheating significantly suppresses acoustic feedback and broadens the stable operating range, with optimal stability achieved at 200 °C. The response surface analysis reveals significant nonlinear coupling among WI, equivalence ratio, and air preheat temperature, demonstrating their synergistic role in determining the stability boundaries of arrayed micro-tube combustion.
AB - To elucidate the coupled effects of air preheat temperature, equivalence ratio, and Wobbe Index (WI) on thermoacoustic oscillation characteristics in micro-scale hydrogen combustion, systematic experiments were conducted using an arrayed micro-tube combustor. By adjusting WI, equivalence ratio (φ), and air preheat temperature, flame images and frequency spectra were acquired. Response surface methodology (RSM) was employed to construct a combustion instability map, enabling quantitative characterization of the influence of these three parameters on pressure oscillation amplitude. The results indicate that flames fueled by low- and medium-WI fuel exhibit periodic extinction–reignition processes, accompanied by a single dominant peak in the frequency spectrum and periodically distributed proper orthogonal decomposition (POD) modal energy, indicating typical thermoacoustic oscillations. The combustion oscillation intensity initially increases and then decreases with the equivalence ratio, peaking at φ ≈ 0.8. Flames with low WI (36.15 MJ m−3) are compact and exhibit high heat release intensity, triggering oscillations at φ = 0.8. Medium-WI fuel (48.3 MJ m−3) induce strong oscillations at φ ≥ 0.7, while high-WI fuel (60.44 MJ m−3) yields dispersed flames with reduced reactivity, weakening thermoacoustic coupling. Air preheating significantly suppresses acoustic feedback and broadens the stable operating range, with optimal stability achieved at 200 °C. The response surface analysis reveals significant nonlinear coupling among WI, equivalence ratio, and air preheat temperature, demonstrating their synergistic role in determining the stability boundaries of arrayed micro-tube combustion.
KW - Arrayed micro-tube
KW - Micro-mixing combustion
KW - Preheated air
KW - Thermoacoustic oscillation
KW - Wobbe index
UR - https://www.scopus.com/pages/publications/105035667981
U2 - 10.1016/j.ijhydene.2026.154220
DO - 10.1016/j.ijhydene.2026.154220
M3 - 文章
AN - SCOPUS:105035667981
SN - 0360-3199
VL - 224
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
M1 - 154220
ER -