New insight into NH3-H2 mutual inhibiting effects and dynamic regimes at low-intermediate temperatures

被引:28
|
作者
Manna M.V. [1 ,2 ]
Sabia P. [1 ]
Sorrentino G. [2 ]
Viola T. [1 ]
Ragucci R. [1 ]
de Joannon M. [1 ]
机构
[1] Istituto di Scienze e Tecnologie per l'Energia e la Mobilità sostenibili - Consiglio Nazionale delle Ricerche, Napoli
[2] Dipartimento di Ingegneria Chimica, dei Materiali e della Produzione Industriale - Università degli studi di Napoli Federico II, Napoli
关键词
Ammonia-hydrogen oxidation; Combustion regimes; Jet stirred reactor; Thermo-kinetic instabilities;
D O I
10.1016/j.combustflame.2021.111957
中图分类号
学科分类号
摘要
The hydrogen effect as a “fuel enhancer” on ammonia oxidation features is a relevant topic for ammonia-based energy conversion systems. For the most, scientific literature is focused on high temperature ammonia-hydrogen oxidation chemistry, whereas few works focus on low-intermediate temperatures (900–1350 K), relevant for non-conventional low-temperature combustion processes. Recently, low-intermediate and the shift to high-temperature ammonia oxidation chemistry has been characterized through experimental tests in a Jet Stirred Flow Reactor (JSFR) by the same authors, with the identification of thermo-kinetic instabilities. In addition, the ammonia effect on hydrogen oxidation chemistry has been addressed through a mutual inhibiting interaction for low-intermediate temperatures. Given this background, this work investigates the hydrogen effects on ammonia oxidation and thermo-kinetic instabilities from low-intermediate to high temperatures in a JSFR, parametrically varying the H2 inlet concentration. Maps of combustion behaviours (Tin- ϕ) are then drawn up, on the basis of experimental evidences, in the range 1200K<Tin<1350 K, and 0.2 <ϕ<1.2. Results show H2 only moderately enhances the reactivity of the system for the investigated conditions. Consequently, dynamic regime areas in Tin-ϕ maps are slightly shifted towards lower Tin and restricted to a narrower ϕ range. Numerical simulations were able to predict the main NH3/H2 oxidation features, albeit low-intermediate temperature oxidation chemistry description is very mechanism-dependent. Nonetheless, the H2-NH3 mutual inhibiting interaction oxidation chemistry is congruently addressed: NH3 acts as OH radical scavenger, thus partially inhibiting the direct H2 oxidation, whereas H2 re-coverts back NH2 radicals to NH3, through the reaction NH2+H2=NH3+H. The same reaction produces the sole H radicals able to feed the high-temperature branching reaction of the H2/O2 sub-system. Same concluding remarks on the NH3/NH3––H2 oxidation chemistry open issues are then reported. © 2021
引用
收藏
相关论文
共 50 条
  • [1] New insight into NH3-H2 mutual inhibiting effects and dynamic regimes at low-intermediate temperatures
    Manna, Maria Virginia
    Sabia, Pino
    Sorrentino, Giancarlo
    Viola, Tullio
    Ragucci, Raffaele
    de Joannon, Mara
    COMBUSTION AND FLAME, 2022, 243
  • [2] New insight into NH 3-H 2 mutual inhibiting effects and dynamic regimes at low-intermediate temperatures
    Manna, Maria Virginia
    Sabia, Pino
    Sorrentino, Giancarlo
    Viola, Tullio
    Ragucci, Raffaele
    de Joannon, Mara
    COMBUSTION AND FLAME, 2022, 243
  • [3] Low-temperature nitridation of iron layers in NH3-H2 mixtures
    van Voorthuysen, EHD
    Feddes, B
    Chechenin, NG
    Inia, DK
    Vredenberg, AM
    Boerma, DO
    PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 2000, 177 (01): : 127 - 133
  • [4] Transport and reactivity effects of H2 additive on NO formation of NH3-H2 counterflow diffusion flames
    Wei, Zhilong
    Zhang, Xiang
    Wang, Lei
    Song, Pengfei
    Chen, Lei
    Zhang, Meng
    Zhen, Haisheng
    FUEL, 2024, 375
  • [5] Reaction of NH+, NH2+, and NH3+ ions with H2 at low temperatures The pathway to ammonia production in the interstellar medium
    Rednyk, S.
    Roucka, S.
    Kovalenko, A.
    Tran, T. D.
    Dohnal, P.
    Plasil, R.
    Glosik, J.
    ASTRONOMY & ASTROPHYSICS, 2019, 625
  • [6] Proton conductivity in mixed cation phosphate, KMg1-xH2x(PO3)•yH2O, with a layered structure at low-intermediate temperatures
    Matsuda, Yasuaki
    Ueda, Naoya
    Funakoshi, Kousei
    Nakajima, Jun
    Mori, Daisuke
    Taminato, Sou
    Higashimoto, Shinya
    DALTON TRANSACTIONS, 2021, 50 (22) : 7678 - 7685
  • [7] New Insight into the Effects of NH3 on SO2 Poisoning for In Situ Removal of Metal Sulfates in Low-Temperature NH3-SCR over an Fe-V Catalyst
    Mu, Jincheng
    Li, Xinyong
    Wang, Xinyang
    Fan, Shiying
    Yin, Zhifan
    Li, Zeyu
    Tade, Moses O.
    Liu, Shaomin
    JOURNAL OF PHYSICAL CHEMISTRY C, 2020, 124 (39): : 21396 - 21406
  • [8] An experimental and kinetic modeling study on the low and intermediate temperatures oxidation of NH3/O2/Ar, NH3/H2/O2/Ar, NH3/CO/O2/Ar, and NH3/CH4/O2/Ar mixtures in a jet-stirred reactor
    Zhou, Shangkun
    Yang, Wenjun
    Zheng, Shijie
    Yu, Shilin
    Tan, Houzhang
    Cui, Baochong
    Wang, Jinhua
    Deng, Shuanghui
    Wang, Xuebin
    COMBUSTION AND FLAME, 2023, 248
  • [9] The effects of H2O on a vanadium-based catalyst for NH3-SCR at low temperatures: a quantitative study of the reaction pathway and active sites
    Liu, Kuo
    Yan, Zidi
    He, Hong
    Feng, Qingcai
    Shan, Wenpo
    CATALYSIS SCIENCE & TECHNOLOGY, 2019, 9 (20) : 5593 - 5604
  • [10] PROTON MAGNETIC RESONANCE IN CU(NH3)4SO4.H2O AT VERY LOW TEMPERATURES
    SAITO, S
    KANDA, E
    SCIENCE REPORTS OF THE RESEARCH INSTITUTES TOHOKU UNIVERSITY SERIES A-PHYSICS CHEMISTRY AND METALLURGY, 1966, S 18 : 460 - +