Waste heat recovery cycles integration into a net-Zero emission solar-thermal multi-generation system; Techno-economic analysis and ANN-MOPSO optimization

被引:0
|
作者
Singh, Pradeep Kumar [1 ]
Basem, Ali [2 ]
Dara, Rebwar Nasir [3 ,4 ]
Shaban, Mohamed [5 ]
Samad, Sarminah [6 ]
Ghandour, Raymond [7 ]
Almadhor, Ahmad [8 ]
Babiker, Samah G. [9 ]
Shernazarov, Iskandar [10 ]
Alsayer, Ibrahim A. [11 ]
机构
[1] GLA Univ, Inst Engn & Technol, Dept Mech Engn, Mathura 281406, UP, India
[2] Warith Al Anbiyaa Univ, Fac Engn, Karbala 56001, Iraq
[3] Salahaddin Univ Erbil, Coll Sci, Dept Earth Sci & Petr, Erbil 44002, Iraq
[4] Knowledge Univ, Coll Engn, Dept Petr Engn, Erbil, Iraq
[5] Islamic Univ Madinah, Fac Sci, Dept Phys, Madinah 42351, Saudi Arabia
[6] Princess Nourah bint Abdulrahman Univ, Coll Business Adm, Dept Management, Riyadh 11671, Saudi Arabia
[7] Amer Univ Middle East, Coll Engn & Technol, Egaila 54200, Kuwait
[8] Jouf Univ, Coll Comp & Informat Sci, Dept Comp Engn & Networks, Sakakah, Saudi Arabia
[9] Red Sea Univ, Fac Appl Sci, Dept Elect Phys, Port Sudan, Sudan
[10] Tashkent State Pedag Univ, Dept Chem & Its Teaching Methods, Tashkent, Uzbekistan
[11] Northern Border Univ, Engn Coll, Dept Chem & Mat Engn, Ar Ar 91431, Saudi Arabia
关键词
Waste heat recovery; Heat energy; Solar-based system; Fuel cell; Multi-generation system; Multi-objective optimization; PEAK LOAD MANAGEMENT; ENERGY SYSTEM; POWER-GENERATION; HYDROGEN;
D O I
10.1016/j.csite.2024.105690
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents a novel solar-powered multi-generation system (MGS) integrated with a fuel cell, designed to enhance both sustainability and operational reliability. A significant limitation of solar energy is its intermittency, as sunlight is only available during specific hours of the day. To address this constraint, hydrogen energy is incorporated into the system to facilitate continuous operation through the fuel cell. The proposed MGS efficiently utilizes waste heat recovery cycles to simultaneously produce electricity, fresh water, cooling, and heating. The system consists of parabolic trough solar collectors, a steam Rankine cycle, an organic Rankine cycle, an absorption chiller, a reverse osmosis desalination unit, and a fuel cell coupled with an organic Rankine cyclethermoelectric generator. Upon validating the primary components, the system is thoroughly evaluated in terms of energy, exergy, and economic performance, and a parametric study is conducted to assess the influence of key operational parameters. The analysis identifies the solar cycle as having the highest irreversibility, accounting for 55.2 %, and the highest cost rate, contributing 44.1 % among the subsystems. To optimize the system's performance, an artificial neural network is integrated with a multi-objective particle swarm optimization algorithm to reduce computational time from approximately 16 h to 4 min. Finally, under optimal conditions, the system achieves an exergy efficiency of 31.69 %, freshwater production of 19.53 kg/s, cooling production of 441.6 kW, and a total cost rate of $87.2/h.
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页数:20
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