Published August 2018 | Version v1
Journal article

4E analysis and multi-objective optimization of a CCHP cycle based on gas turbine and ejector refrigeration

  • 1. School of Mechanical Engineering, Iran University of Science and Technology (IUST), Narmak, Tehran 16844 (Iran, Islamic Republic of)
  • 2. Institute for Sustainability, Energy and Environment (iSEE),University of Illinois at Urbana-Champaign (UIUC), Urbana, IL 61801 (United States)
  • 3. Center of Excellence in Design and Optimization of Energy Systems, School of Mechanical Engineering, College of Engineering, University of Tehran, P.O. Box: 11155-4563, Tehran (Iran, Islamic Republic of)

Description

Highlights: • A novel Combined Cooling, Heating, and Power cycle (CCHP) is proposed. • Comprehensive 4E analysis of the CCHP system is reported. • Parametric study is presented to determine the effects of various design parameters on the system performance. • Thermo-economic Multi-objective optimization is applied by Genetic Algorithm. In this research paper, the performance of a new configuration of a Combined Cooling, Heating and Power (CCHP) cycle including a Brayton cycle, a Rankine cycle, an ejector refrigeration cycle, and a domestic water heater is studied by utilization of 4E (energy, exergy, economic and environmental) analysis. Firstly, performance evaluation of the cycle is carried out using exergy and energy as a potential tool. In addition, an environmental assessment is applied to address the environmental impacts of the new multi-generation cycle and compare with the simple Brayton cycle. Results demonstrate that the CCHP cycle has greater exergy and energy efficiencies compared to a simple Brayton cycle. Moreover, the effects of several major design variables on the performance of the cycle are studied and the findings are presented. The major design parameters are gas turbine inlet temperature, compressor pressure ratio, heat recovery steam generator (HRSG) pressures, HRSG pinch point temperatures and regenerator effectiveness. In order to optimize the cycle and find the optimal selection of these design variable, two objective functions namely levelized total annual cost and exergy efficiency are defined and a multi-objective optimization is implemented. Based on the optimization outcomes, optimal points are found and the respective Pareto front is plotted. Comparing CCHP cycle to corresponding Brayton cycle, it is revealed that the CCHP cycle has higher exergy efficiency (7%) and energy efficiency (12%) rather than Brayton cycle.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.applthermaleng.2018.05.075

Additional details

Identifiers

DOI
10.1016/j.applthermaleng.2018.05.075;
PII
S1359431118310998;

Publishing Information

Journal Title
Applied Thermal Engineering
Journal Volume
141
Journal Page Range
p. 516-530
ISSN
1359-4311
CODEN
ATENFT

INIS

Optional Information

Copyright
Copyright (c) 2018 Elsevier Ltd. All rights reserved.