EXPERIMENTAL STUDY ON THE COMBUSTION AND NOx EMISSION CHARACTERISTICS OF DME/LPG BLENDED FUEL USING COUNTERFLOW BURNER

Lee, D; Lee, J; Kim, HoY; Chun, CK; James, SC; Yoon, S

HERO ID

1553421

Reference Type

Journal Article

Year

2012

HERO ID 1553421
In Press No
Year 2012
Title EXPERIMENTAL STUDY ON THE COMBUSTION AND NOx EMISSION CHARACTERISTICS OF DME/LPG BLENDED FUEL USING COUNTERFLOW BURNER
Authors Lee, D; Lee, J; Kim, HoY; Chun, CK; James, SC; Yoon, S
Journal Combustion Science and Technology
Volume 184
Issue 1
Page Numbers 97-113
Abstract Dimethyl ether (DME) continues to be considered as an alternative fuel to conventional hydrocarbon fuels. Specifically, DME has been considered as a substitute fuel for liquefied petroleum gas (LPG) because the physical and chemical characteristics of DME are similar to those of LPG. However, the combustion performance for DME has not yet been established. In this study, the combustion and NOx-emission characteristics of LPG, DME, and an LPG/DME-blended fuel were experimentally investigated in a counterflow nonpremixed flame. The flame structure, flame temperature, NOx concentration, and distribution of OH radicals are reported. In this experimental study, the types of LPG used were butane 100%, butane 80% + propane 20%, and butane 75% + propane 25% by mass with DME mole fraction varied from 0 to 100 mole%. The experimental results indicated that the combustion and NOx emission characteristics of LPG fuels varied with the DME mole fraction. As the DME mole fraction increased, the flame thickness increased, but the flame length decreased. Also, the flame became wider, and its origin moved closer to the oxidizer nozzle with increasing DME mole fraction. In addition, as the DME mole fraction increased, the maximum flame temperature increased due to fast pyrolysis of DME as a result of the high oxygen content (similar to 35% by mass) in DME. Moreover, NOx concentration decreased with increasing DME mole fraction in all LPGs.
Doi 10.1080/00102202.2011.622319
Wosid WOS:000298379000007
Is Certified Translation No
Dupe Override No
Comments Source: Web of Science WOS:000298379000007
Is Public Yes
Keyword Counterflow burner; Distribution of OH radicals; DME/LPG blended fuel; Nonpremixed flame; NOx emission