Thermodynamic analysis and multi objective optimization of kalina and absorption cycle for power and cooling driven by lahendong geothermal source

被引:2
作者
Nasruddin [1 ]
Monasari, Ratna [1 ]
Dewantoro, Bagus Rizky [1 ]
Attharik, Mochammad Ilham [1 ]
Wibowo, Agung Satrio [1 ]
Surachman, Arief [1 ]
机构
[1] Univ Indonesia, Dept Mech Engn, Depok 16424, Indonesia
来源
2ND INTERNATIONAL TROPICAL RENEWABLE ENERGY CONFERENCE (I-TREC) 2017 | 2018年 / 105卷
关键词
EXERGOECONOMIC ANALYSIS; COMBINED HEAT; RANKINE; PERFORMANCE; COEFFICIENT; EXERGY;
D O I
10.1088/1755-1315/105/1/012099
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Kalina cycle is a new concept in thermodynamics that convert heat energy into mechanical energy. The heat source in this system comes from the Lahendong geothermal source. The cycle is using a mixture of solution of two liquids with different boiling points for the working fluid. Water and ammonia are the most widely used combinations with a 30% - 70% ratio in this study. With the combined benefits of comparison ratios, the Kalina cycle is able to produce better exergy efficiency and exergoeconomoic compared to conventional Rankine cycle. Kalina cycle works on thermal efficiency around 40% - 60%. The objective of this study is to find optimization in exergy efficiency and exergoeconomoic based on Kalina cycle applied in Lahendong geothermal source used MATLAB-EES. The results showed that the optimal ammonia-water mixture occurred at 130.0626 degrees C, 2184.791 kPa, and 51.77% of basic solution can yield exergy value 2358.88517 W and use the cost 16994.9715 $/year.
引用
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页数:6
相关论文
共 27 条
[1]   Exergoeconomic analysis and optimization of combined heat and power production: A review [J].
Abusoglu, Aysegul ;
Kanoglu, Mehmet .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2009, 13 (09) :2295-2308
[2]   Exergo-environmental analysis of an integrated organic Rankine cycle for trigeneration [J].
Ahmadi, Pouria ;
Dincer, Ibrahim ;
Rosen, Marc A. .
ENERGY CONVERSION AND MANAGEMENT, 2012, 64 :447-453
[3]   Exergy, exergoeconomic and environmental analyses and evolutionary algorithm based multi-objective optimization of combined cycle power plants [J].
Ahmadi, Pouria ;
Dincer, Ibrahim ;
Rosen, Marc A. .
ENERGY, 2011, 36 (10) :5886-5898
[4]  
Bejan A., 1995, Thermal design and optimization
[5]   Thermodynamic analysis of a Kalina-based combined cooling and power cycle driven by low-grade heat source [J].
Cao, Liyan ;
Wang, Jiangfeng ;
Wang, Hongyang ;
Zhao, Pan ;
Dai, Yiping .
APPLIED THERMAL ENGINEERING, 2017, 111 :8-19
[6]   The coefficient of performance of a multi-temperature-level absorption heat transformer at maximum specific heating load [J].
Chen, JC .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1998, 31 (22) :3316-3322
[7]   Simultaneous optimization of integrated heat, mass and pressure exchange network using exergoeconomic method [J].
Dong, Ruifeng ;
Yu, Yunsong ;
Zhang, Zaoxiao .
APPLIED ENERGY, 2014, 136 :1098-1109
[8]  
Herold K.E., 2016, ABSORPTION CHILLERS, V2e ed
[9]  
Ibrahim R F, 2005, PROGR GEOTHERMAL ENE
[10]   Thermoeconomic assessment of a natural gas expansion system integrated with a co-generation unit [J].
Kostowski, Wojciech J. ;
Uson, Sergio .
APPLIED ENERGY, 2013, 101 :58-66