CFD analysis on bioliquid co-firing with heavy fuel oil in a 400 MWe power plant with a wall-firing boiler

被引:16
作者
Park, Jong Keun [1 ]
Park, Sangbin [1 ,2 ]
Ryu, Changkook [1 ]
Baek, Se Hyun [2 ]
Kim, Young Ju [2 ]
Park, Ho Young [2 ]
机构
[1] Sungkyunkwan Univ, Sch Mech Engn, Suwon 16419, South Korea
[2] KEPCO Res Inst, Clean Power Generat Lab, Daejeon 34056, South Korea
关键词
Bioliquid; Boiler; Co-firing; Computational fluid dynamics; Heavy fuel oil; Palm oil residue; GLYCEROL COMBUSTION; VEGETABLE-OILS; BIO-OILS; EMISSIONS; BIODIESEL; BIOMASS; BLENDS;
D O I
10.1016/j.applthermaleng.2017.06.104
中图分类号
O414.1 [热力学];
学科分类号
摘要
Liquid biomass derived from food processing, biodiesel production, or fast pyrolysis has good potential for use as fuel to displace diesel or heavy fuel oil (HFO) for heat and power, and a major demonstration was successfully conducted in a 400 MWe HFO-fired power plant with a wall-firing boiler configuration using a BL blend of palm oil, its residue, and animal fat at a 20% co-firing ratio. When compared to a condition with HFO as fuel, the heat transfer rate on the membrane wall significantly decreased, and that of the convective heat exchangers in the upper furnace increased. This trend was different from what was observed at two smaller plants of 100 and 75 MWe, both with a tangential-firing boiler. This study uses computational fluid dynamics (CFD) to investigate the reason for the difference in the heat transfer characteristics. In both boiler types, bioliquid (BL) combustion led to lower soot concentrations and a corresponding decrease in radiation. This directly reduced the heat absorption on the furnace wall by approximately 5% at 20%-BL co-firing in the wall-firing boiler, and it was predicted further decrease linearly by 14% at 100%-BL firing. However, the tangential-firing boilers had less than a 1% decrease in measured heat absorption on the furnace wall at 100%-BL firing. Such differences were attributable to the gas flow pattern of the two boiler configurations. The burner tilting and flue gas recirculation of the tangential-firing boilers also contributed to successful operation at 100%-BL firing. The conclusions indicate that without effective measures to control the heat absorption distribution, the capability of a wall-firing boiler for BL combustion is limited to low co-firing ratios. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1247 / 1256
页数:10
相关论文
共 50 条
[41]   Effect of biomass co-firing position on combustion and NOX emission in a 300-MWe coal-fired tangential boiler [J].
Tu, Yaojie ;
Li, Jianlan ;
Chang, Dongfeng ;
Hu, Bo .
ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2022, 17 (01)
[42]   Spatial optimisation of oil palm biomass co-firing for emissions reduction in coal-fired power plant [J].
Idris, Muhammad Nurariffudin Mohd ;
Hashim, Haslenda ;
Razak, Nurul Hanim .
JOURNAL OF CLEANER PRODUCTION, 2018, 172 :3428-3447
[43]   Exergy Analysis of a Biomass Co-Firing Based Pulverized Coal Power Generation System [J].
Mehmood, Shoaib ;
Reddy, Bale V. ;
Rosen, Marc A. .
INTERNATIONAL JOURNAL OF GREEN ENERGY, 2015, 12 (05) :461-478
[44]   Characterization of dried sewage sludge for co-firing in coal power plant by using thermal gravimetric analysis [J].
Hyuk Im ;
Cheol Gyu Kim .
Journal of Material Cycles and Waste Management, 2017, 19 :1044-1051
[45]   Characterization of dried sewage sludge for co-firing in coal power plant by using thermal gravimetric analysis [J].
Im, Hyuk ;
Kim, Cheol Gyu .
JOURNAL OF MATERIAL CYCLES AND WASTE MANAGEMENT, 2017, 19 (03) :1044-1051
[46]   Technical-economic-environmental analysis of biomass direct and indirect co-firing in pulverized coal boiler in China [J].
Mo, Wenyu ;
Du, Kuan ;
Sun, Yi ;
Guo, Minruo ;
Zhou, Chao ;
You, Mo ;
Xu, Jun ;
Jiang, Long ;
Wang, Yi ;
Su, Sheng ;
Hu, Song ;
Xiang, Jun .
JOURNAL OF CLEANER PRODUCTION, 2023, 426
[47]   Numerical Study of Co-firing Biomass with Lean Coal under Air-Fuel and Oxy-fuel Conditions in a Wall-Fired Utility Boiler [J].
Li, Debo ;
Lv, Qiang ;
Feng, Yongxin ;
Wang, Chang'an ;
Liu, Xuan ;
Du, Yongbo ;
Zhong, Jun ;
Che, Defu .
ENERGY & FUELS, 2017, 31 (05) :5344-5354
[48]   THERMO-ECONOMIC ANALYSIS OF MICROALGAE CO-FIRING PROCESS FOR FOSSIL FUEL-FIRED POWER PLANTS [J].
Ma, Jian ;
Hemmers, Oliver .
ES2010: PROCEEDINGS OF ASME 4TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, VOL 1, 2010, :691-700
[49]   A comparative exergoeconomic analysis of two biomass and co-firing combined power plants [J].
Soltani, S. ;
Mahmoudi, S. M. S. ;
Yari, M. ;
Morosuk, T. ;
Rosen, M. A. ;
Zare, V. .
ENERGY CONVERSION AND MANAGEMENT, 2013, 76 :83-91
[50]   Numerical investigations on overfire air design for improved boiler operation and lower NOx emission in commercial wall-firing coal power plants [J].
Kang, Woosuk ;
Jo, Hyunbin ;
Lee, Jongwook ;
Jang, Kyehwan ;
Ryu, Changkook .
APPLIED THERMAL ENGINEERING, 2023, 219