Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules

Lean direct injection (LDI) combustion has a high potential as a low pollution combustion method for gas turbines. The present research aims to further investigate the discharge coefficient of an LDI module, axial swirler and convergent outlet under non-reaction and reaction conditions by theoretica...

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Main Authors: Han Yu, Pengfei Zhu, Jianqin Suo, Longxi Zheng
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/6/1603
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spelling doaj-5afadb138da54866866a0245947235762020-11-24T22:37:36ZengMDPI AGEnergies1996-10732018-06-01116160310.3390/en11061603en11061603Investigation of Discharge Coefficients for Single Element Lean Direct Injection ModulesHan Yu0Pengfei Zhu1Jianqin Suo2Longxi Zheng3School of Power and Energy, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Power and Energy, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Power and Energy, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Power and Energy, Northwestern Polytechnical University, Xi’an 710072, ChinaLean direct injection (LDI) combustion has a high potential as a low pollution combustion method for gas turbines. The present research aims to further investigate the discharge coefficient of an LDI module, axial swirler and convergent outlet under non-reaction and reaction conditions by theoretical, numerical and experimental methods. The functional relationship between the discharge coefficient of the LDI module, axial swirler and convergent outlet was established, and the effect of swirl angle (30°, 32°, 34°, 36°, 38°, 40°) and vane number (11, 12, 13, 14, 15, 16) on discharge coefficient was studied, and finally the differences in effective flow area of LDI combustor under different inlet conditions were analyzed. The results indicate that the flow separation on the suction side increases as the swirl angle increases, which leads to a decrease of the discharge coefficient of the axial swirler, however the discharge coefficient of the convergent outlet remains unchanged first and then decreases. As the vane number increases, the flow separation on the suction side decreases and the flow friction loss increases, so that the discharge coefficient of the axial swirler and convergent outlet will first increase with the increase of vane number and then decrease with further increases. The effective flow area of combustor changes as the conditions change, but it is approximately equal under high power conditions and normal temperature and pressure conditions.http://www.mdpi.com/1996-1073/11/6/1603LDI moduledischarge coefficientswirling airconvergent outlet
collection DOAJ
language English
format Article
sources DOAJ
author Han Yu
Pengfei Zhu
Jianqin Suo
Longxi Zheng
spellingShingle Han Yu
Pengfei Zhu
Jianqin Suo
Longxi Zheng
Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
Energies
LDI module
discharge coefficient
swirling air
convergent outlet
author_facet Han Yu
Pengfei Zhu
Jianqin Suo
Longxi Zheng
author_sort Han Yu
title Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
title_short Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
title_full Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
title_fullStr Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
title_full_unstemmed Investigation of Discharge Coefficients for Single Element Lean Direct Injection Modules
title_sort investigation of discharge coefficients for single element lean direct injection modules
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-06-01
description Lean direct injection (LDI) combustion has a high potential as a low pollution combustion method for gas turbines. The present research aims to further investigate the discharge coefficient of an LDI module, axial swirler and convergent outlet under non-reaction and reaction conditions by theoretical, numerical and experimental methods. The functional relationship between the discharge coefficient of the LDI module, axial swirler and convergent outlet was established, and the effect of swirl angle (30°, 32°, 34°, 36°, 38°, 40°) and vane number (11, 12, 13, 14, 15, 16) on discharge coefficient was studied, and finally the differences in effective flow area of LDI combustor under different inlet conditions were analyzed. The results indicate that the flow separation on the suction side increases as the swirl angle increases, which leads to a decrease of the discharge coefficient of the axial swirler, however the discharge coefficient of the convergent outlet remains unchanged first and then decreases. As the vane number increases, the flow separation on the suction side decreases and the flow friction loss increases, so that the discharge coefficient of the axial swirler and convergent outlet will first increase with the increase of vane number and then decrease with further increases. The effective flow area of combustor changes as the conditions change, but it is approximately equal under high power conditions and normal temperature and pressure conditions.
topic LDI module
discharge coefficient
swirling air
convergent outlet
url http://www.mdpi.com/1996-1073/11/6/1603
work_keys_str_mv AT hanyu investigationofdischargecoefficientsforsingleelementleandirectinjectionmodules
AT pengfeizhu investigationofdischargecoefficientsforsingleelementleandirectinjectionmodules
AT jianqinsuo investigationofdischargecoefficientsforsingleelementleandirectinjectionmodules
AT longxizheng investigationofdischargecoefficientsforsingleelementleandirectinjectionmodules
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