Bluff-body effect on thermal and NOx emission characteristics in a micro-planar combustor fueled with premixed ammonia-oxygen

被引:45
作者
Cai, Tao [1 ]
Zhao, Dan [1 ]
E, Jiaqiang [2 ]
机构
[1] Univ Canterbury, Dept Mech Engn, Coll Engn, Private Bag 4800, Christchurch 8140, New Zealand
[2] Hunan Univ, Coll Mech & Vehicle Engn, Changsha 410082, Peoples R China
基金
新加坡国家研究基金会;
关键词
NOx emission; Ammonia; Bluff-body; Micro-combustion; Thermal performance; Dimensionless pressure loss; HYDROGEN COMBUSTION; BURNING VELOCITY; FLOW REACTOR; FLAMES; PERFORMANCE; METHANE/AIR; EFFICIENCY; REDUCTION; MIXTURES;
D O I
10.1016/j.cep.2020.107979
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this work, we examine the bluff body effect on thermal and NOx emission performance in a micro-planar combustor fueled with premixed ammonia/oxygen using three-dimensional numerical simulations. For this, a three-dimensional model is developed with a detailed chemical kinetic mechanism. The effects of 1) the presence/absence of the bluff-body, 2) its dimensionless height h and 3) its dimensionless axial location l are examined. It is found that the implementation of a bluff-body can significantly affects the thermal and NO emission characteristics. Up to 39.1 % reduction of NO formation and 41.6 K increase in the outer wall temperature (OWT) can be achieved as the bluff-body is optimized, when compared to the case in the absence of the bluff-body. Furthermore, increasing h leads to OWT being increased, but it can suppress the NO generation in some cases. In addition, increasing l is shown to be involved with a high OWT and a low NO concentration, mainly due to the variation in the flow field and thus heat transfer characteristics. Finally, the dimensionless pressure loss is strongly affected by the NH3 flow rate, and the dimensionless parameters h and l. This work reveals that implementing a proper designed bluff-body is an effective way to enhance thermal performance and reduce NOx emission.
引用
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页数:9
相关论文
共 47 条
[1]  
ANSYS Inc, 2017, ANSYS FLUENT US GUID
[2]   The effect of simplified transport modeling on the burning velocity of laminar premixed flames [J].
Bongers, H ;
De Goey, LPH .
COMBUSTION SCIENCE AND TECHNOLOGY, 2003, 175 (10) :1915-1928
[3]   Fuel rich ammonia-hydrogen injection for humidified gas turbines [J].
Bozo, M. Gutesa ;
Vigueras-Zuniga, M. O. ;
Buffi, M. ;
Seljak, T. ;
Valera-Medina, A. .
APPLIED ENERGY, 2019, 251
[4]   THERMAL NOX IN STRETCHED LAMINAR OPPOSED-FLOW DIFFUSION FLAMES WITH CO/H-2/N-2 FUEL [J].
DRAKE, MC ;
BLINT, RJ .
COMBUSTION AND FLAME, 1989, 76 (02) :151-167
[5]   Comparison of combustion efficiency between micro combustors with single- and double-layered walls: A numerical study [J].
Fan, Aiwu ;
Li, Linhong ;
Yang, Wei ;
Yuan, Zili .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2019, 137 :39-47
[6]   Enhancement of hydrogen combustion efficiency by helium dilution in a micro-combustor with wall cavities [J].
Fan, Aiwu ;
Xiang, Ying ;
Yang, Wei ;
Li, Linhong .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2018, 130 :201-207
[7]   Experimental investigation of stabilization and emission characteristics of ammonia/air premixed flames in a swirl combustor [J].
Hayakawa, Akihiro ;
Arakawa, Yoshiyuki ;
Mimoto, Rentaro ;
Somarathne, K. D. Kunkuma A. ;
Kudo, Taku ;
Kobayashi, Hideaki .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (19) :14010-14018
[8]   Entropy generation analysis of combustion process adopting blended propane/hydrogen fuels in micro-combustor [J].
Huang, Qiuhan ;
Tang, Aikun ;
Cai, Tao ;
Zhao, Dan ;
Zhou, Chen .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2019, 143
[9]   Ammonia- hydrogen combustion in a swirl burner with reduction of NOx emissions [J].
Hussein, Najlaa Ali ;
Valera-Medina, Agustin ;
Alsaegh, Ali Safa .
INNOVATIVE SOLUTIONS FOR ENERGY TRANSITIONS, 2019, 158 :2305-2310
[10]   Thermal performance of micro-combustors with baffles for thermophotovoltaic system [J].
Jiang, Dongyue ;
Yang, Wenming ;
Chua, Kian Jon ;
Ouyang, Jianyong .
APPLIED THERMAL ENGINEERING, 2013, 61 (02) :670-677