Thermal Performance Analysis of a High-Efficiency Ocean Thermal Energy Conversion System Utilizing a Proposed Power Cycle

被引:1
作者
Wu, Haoyu [1 ]
Peng, Jingping [1 ]
Ge, Yunzheng [1 ]
Liu, Lei [1 ]
Chen, Fengyun [1 ]
Liu, Weimin [1 ,2 ]
机构
[1] Minist Nat Resources, Inst Oceanog 1, Qingdao 266061, Shandong, Peoples R China
[2] Qingdao Natl Lab Marine Sci & Technol, Qingdao 266061, Shandong, Peoples R China
来源
JOURNAL OF APPLIED SCIENCE AND ENGINEERING | 2020年 / 23卷 / 03期
基金
中国国家自然科学基金;
关键词
OTEC; Rankine cycle; ammonia-water mixture; thermal cycle efficiency; net output; OTEC PLANT; OPTIMIZATION; GENERATION; WATER; SIMULATION;
D O I
10.6180/jase.202009_23(3).0012
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ocean thermal energy provides an eco-friendly and sustainable clean energy source; however, low system efficiency impedes the commercial application of ocean thermal energy conversion (OTEC). The present research proposes an OTEC cycle, which uses an ammonia-water mixture as a working fluid, and improves the thermal efficiency and net output of the OTEC system by recovering and using surplus heat based on regeneration and a vapor extraction mode. To evaluate the performance of the proposed cycle, the thermal model of the cycle was established based on the energy conservation and the laws of thermodynamics and by analyzing the cycle process. In addition, a performance comparison between the proposed cycle and the basic OTEC-Rankine cycle was performed. The results show that the mass fraction of working fluid, turbine inlet pressure, and cold and heat source temperatures affect the thermal cycle performance. With an increase in turbine inlet pressure, both the thermal cycle efficiency and net output increase initially and later drastically decrease under the same cold and heat source temperature. As a result, the highest efficiency and maximum net output are achieved under the corresponding optimal pressure. The thermal efficiency and net power output of the proposed cycle (5.5% and 8.19 kW) are both evidently higher than the Rankine cycle (4.6% and 6.47 kW) under uniform conditions.
引用
收藏
页码:475 / 486
页数:12
相关论文
共 47 条
[1]   Open-cycle OTEC systems with freshwater product: Effects of noncondensable gases on performance of condenser [J].
Amano, M ;
Tanaka, T .
ELECTRICAL ENGINEERING IN JAPAN, 2006, 154 (01) :29-35
[2]  
[Anonymous], HEAT TRANSFER ENG
[3]   LNG as cold heat source in OTEC systems [J].
Arcuri, N. ;
Bruno, R. ;
Bevilacqua, P. .
OCEAN ENGINEERING, 2015, 104 :349-358
[4]   Integration of renewable energy based multigeneration system with desalination [J].
Azhar, Muhammad Shuja ;
Rizvi, Ghaus ;
Dincer, Ibrahim .
DESALINATION, 2017, 404 :72-78
[5]   Theoretical and experimental research on the thermal performance of ocean thermal energy conversion system using the rankine cycle mode [J].
Chen, Fengyun ;
Liu, Lei ;
Peng, Jingping ;
Ge, Yunzheng ;
Wu, Haoyu ;
Liu, Weimin .
ENERGY, 2019, 183 :497-503
[6]   Analysis and optimization of the low-temperature solar organic Rankine cycle (ORC) [J].
Delgado-Torres, Agustin M. ;
Garcia-Rodriguez, Lourdes .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (12) :2846-2856
[7]   Experimental studies on a closed cycle demonstration OTEC plant working on small temperature difference [J].
Faizal, Mohammed ;
Ahmed, M. Rafiuddin .
RENEWABLE ENERGY, 2013, 51 :234-240
[8]   Sensitivity analysis and thermoeconomic comparison of ORCs (organic Rankine cycles) for low temperature waste heat recovery [J].
Feng, Yongqiang ;
Zhang, Yaning ;
Li, Bingxi ;
Yang, Jinfu ;
Shi, Yang .
ENERGY, 2015, 82 :664-677
[9]   Revisiting ocean thermal energy conversion [J].
Fujita, Rod ;
Markham, Alexander C. ;
Diaz Diaz, Julio E. ;
Martinez Garcia, Julia Rosa ;
Scarborough, Courtney ;
Greenfield, Patrick ;
Black, Peter ;
Aguilera, Stacy E. .
MARINE POLICY, 2012, 36 (02) :463-465
[10]   Construction of Simulation Model for OTEC Plant Using Uehara Cycle [J].
Goto, Satoru ;
Motoshima, Yoshiki ;
Sugi, Takenao ;
Yasunaga, Takeshi ;
Ikegami, Yasuyuki ;
Nakamura, Masatoshi .
ELECTRICAL ENGINEERING IN JAPAN, 2011, 176 (02) :1-13