Levelized electricity costing per carbon dioxide intensity of an organic Rankine cycle by using a water hyacinth-municipal solid waste fuel

被引:10
作者
Intaniwet, Akarin [1 ]
Chaiyat, Nattaporn [1 ]
机构
[1] Maejo Univ, Sch Renewable Energy, Chiang Mai 50290, Thailand
关键词
Organic Rankine cycle; Levelized electricity cost; Levelized electricity cost per carbon dioxide intensity; Performance curve; Life cycle assessment; POWER-GENERATION; THAILAND; HEAT; OPTIMIZATION; MANAGEMENT; SYSTEM; ENERGY; ORC;
D O I
10.1016/j.energy.2017.07.135
中图分类号
O414.1 [热力学];
学科分类号
摘要
The potential of using a new type of water hyacinth and municipal solid waste at the ratio of 50:50 %wt as a heat source for a 20 kW(e) organic Rankine cycle has been determined in terms of energy, economic and environment aspects (3E model). From the testing results, it was found that the thermal performance of the ORC efficiency shows a linear correlation with the temperature different of heat source and heat sink at amplified by 8-9%. Levelized electricity costing from a water hyacinth-MSW-ORC (WMORC) system was determined to be 0.086 USD/kWh. The environmental impacts, 0.172 kg CO2-eq of greenhouse gas emission was estimated from the utilization of 1 kg of the new fuel. The LCA of the WMORC system was 0.6078 kg CO2-eq for the electrical energy generation of 1 kWh. In the 3E model assessment, a new parameter of Levelized electricity costing per carbon dioxide intensity was defined and was found to be 0.052 USD. kg CO2-eq/kWh(2), which was 20% lower compared to 0.065 USD. kg CO2-eq/kWh(2) from the standard power plant in Thailand. Thus, this technique is an alternative sustainable solution to tackle the energy crisis, to limit waste as well as to reduce CO2 emission in Thailand. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:76 / 88
页数:13
相关论文
共 22 条
[1]   Comparative energetic analysis of high-temperature subcritical and transcritical Organic Rankine Cycle (ORC). A biomass application in the Sibari district [J].
Algieri, Angelo ;
Morrone, Pietropaolo .
APPLIED THERMAL ENGINEERING, 2012, 36 :236-244
[2]  
Ananpadit V, CARBON FOOTPRINT EVA
[3]  
[Anonymous], 2006, ENERGY, V2
[4]   Technical and economical analysis of a solar-geothermal hybrid plant based on an Organic Rankine Cycle [J].
Astolfi, Marco ;
Xodo, Luca ;
Romano, Matteo C. ;
Macchi, Ennio .
GEOTHERMICS, 2011, 40 (01) :58-68
[5]   Experimental investigation of a biomass-fuelled micro-scale tri-generation system with an organic Rankine cycle and liquid desiccant cooling unit [J].
Jradi, M. ;
Riffat, S. .
ENERGY, 2014, 71 :80-93
[6]  
Kiely G., 1996, Environmental Engineering
[7]   Status of Using Biomass Gasification for Heat and Power in Thailand [J].
Laohalidanond, Krongkaew ;
Chaiyawong, Palita ;
Kerdsuwan, Somrat .
2015 INTERNATIONAL CONFERENCE ON ALTERNATIVE ENERGY IN DEVELOPING COUNTRIES AND EMERGING ECONOMIES, 2015, 79 :385-390
[8]   Updating and testing of a Finnish method for mixed municipal solid waste composition studies [J].
Liikanen, M. ;
Sahimaa, O. ;
Hupponen, M. ;
Havukainen, J. ;
Sorvari, J. ;
Horttanainen, M. .
WASTE MANAGEMENT, 2016, 52 :25-33
[9]   Environmental impacts and benefits of organic Rankine cycle power generation technology and wood pellet fuel exemplified by electric arc furnace steel industry [J].
Lin, Yi-Pin ;
Wang, Wen-Hsian ;
Pan, Shu-Yuan ;
Ho, Chang-Ching ;
Hou, Chin-Jen ;
Chiang, Pen-Chi .
APPLIED ENERGY, 2016, 183 :369-379
[10]   Investigation of a two stage Rankine cycle for electric power plants [J].
Liu, Bo ;
Riviere, Philippe ;
Coquelet, Christophe ;
Gicquel, Renaud ;
David, Franck .
APPLIED ENERGY, 2012, 100 :285-294