Hybrid solar flameless combustion system: Modeling and thermodynamic analysis

In this paper, the idea of using flameless combustion in a hybrid solar combustion system is investigated by modeling and thermodynamically analyzing a gas turbine system. In this regard, a gas turbine system coupling with hybrid solar flameless combustion including heliostat solar field, central re...

Full description

Saved in:
Bibliographic Details
Main Authors: Hosseini, Seyed Ehsan, Barzegaravval, Hasan, Chehroudi, Bruce, Abdul Wahid, Mazlan
Format: Article
Published: Elsevier Ltd 2018
Subjects:
Online Access:http://eprints.utm.my/id/eprint/85888/
http://dx.doi.org/10.1016/j.enconman.2018.04.012
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.85888
record_format eprints
spelling my.utm.858882020-07-30T07:38:54Z http://eprints.utm.my/id/eprint/85888/ Hybrid solar flameless combustion system: Modeling and thermodynamic analysis Hosseini, Seyed Ehsan Barzegaravval, Hasan Chehroudi, Bruce Abdul Wahid, Mazlan TJ Mechanical engineering and machinery In this paper, the idea of using flameless combustion in a hybrid solar combustion system is investigated by modeling and thermodynamically analyzing a gas turbine system. In this regard, a gas turbine system coupling with hybrid solar flameless combustion including heliostat solar field, central receiver, flameless combustor and power generation system are modeled. In conditions that sun power is not adequate to heat up the combustion air over auto-ignition temperature of the fuel, air is passed through the first stage combustor. To provide a basic cycle for comparison, a common gas turbine with preheater is modeled as well. Energy and exergitic-based analyses of various systems are evaluated and environmental footprints reduction of proposed optimum cycle is assessed and compared to the basic case. The results illustrate that Nitrogen Oxides formation in hybrid solar flameless combustion is significantly lower than common gas turbine system. While the gas turbine with preheater generates 67 μg Nitrogen Oxides per kWh, hybrid solar combustion system produces less than 7 μg Nitrogen Oxides per kWh. In comparison to gas turbine system, fuel consumption decreases in hybrid solar flameless combustion system from 0.1875 kg/s to 0.16 kg/s (about 14.7%) when solar share is considered just 40%. Since the inlet air of flameless combustor is charged from solar heater outlet, increasing air temperature enhances the share of solar energy in the system which results in overall exergy reduction in the system. The proposed system shows significant environmental benefits and based on the available technologies, it is suitable for high temperature solar towers. Elsevier Ltd 2018-06 Article PeerReviewed Hosseini, Seyed Ehsan and Barzegaravval, Hasan and Chehroudi, Bruce and Abdul Wahid, Mazlan (2018) Hybrid solar flameless combustion system: Modeling and thermodynamic analysis. Energy Conversion and Management, 166 . pp. 146-155. ISSN 0196-8904 http://dx.doi.org/10.1016/j.enconman.2018.04.012
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Hosseini, Seyed Ehsan
Barzegaravval, Hasan
Chehroudi, Bruce
Abdul Wahid, Mazlan
Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
description In this paper, the idea of using flameless combustion in a hybrid solar combustion system is investigated by modeling and thermodynamically analyzing a gas turbine system. In this regard, a gas turbine system coupling with hybrid solar flameless combustion including heliostat solar field, central receiver, flameless combustor and power generation system are modeled. In conditions that sun power is not adequate to heat up the combustion air over auto-ignition temperature of the fuel, air is passed through the first stage combustor. To provide a basic cycle for comparison, a common gas turbine with preheater is modeled as well. Energy and exergitic-based analyses of various systems are evaluated and environmental footprints reduction of proposed optimum cycle is assessed and compared to the basic case. The results illustrate that Nitrogen Oxides formation in hybrid solar flameless combustion is significantly lower than common gas turbine system. While the gas turbine with preheater generates 67 μg Nitrogen Oxides per kWh, hybrid solar combustion system produces less than 7 μg Nitrogen Oxides per kWh. In comparison to gas turbine system, fuel consumption decreases in hybrid solar flameless combustion system from 0.1875 kg/s to 0.16 kg/s (about 14.7%) when solar share is considered just 40%. Since the inlet air of flameless combustor is charged from solar heater outlet, increasing air temperature enhances the share of solar energy in the system which results in overall exergy reduction in the system. The proposed system shows significant environmental benefits and based on the available technologies, it is suitable for high temperature solar towers.
format Article
author Hosseini, Seyed Ehsan
Barzegaravval, Hasan
Chehroudi, Bruce
Abdul Wahid, Mazlan
author_facet Hosseini, Seyed Ehsan
Barzegaravval, Hasan
Chehroudi, Bruce
Abdul Wahid, Mazlan
author_sort Hosseini, Seyed Ehsan
title Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
title_short Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
title_full Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
title_fullStr Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
title_full_unstemmed Hybrid solar flameless combustion system: Modeling and thermodynamic analysis
title_sort hybrid solar flameless combustion system: modeling and thermodynamic analysis
publisher Elsevier Ltd
publishDate 2018
url http://eprints.utm.my/id/eprint/85888/
http://dx.doi.org/10.1016/j.enconman.2018.04.012
_version_ 1674066223014346752
score 13.18916