Javascript must be enabled to continue!
Experimental study of the methane and producer gas blends in an optical spark ignition engine: Combustion characteristics, thermodynamics and emissions
View through CrossRef
Thermal processes and power generation systems may employ producer gas generated through gasification as an alternative to replace natural gas with lower carbon footprint. However, pure producer gas in engines is associated with a significant power derating that can be mitigated by blending it with other biofuels. This work evaluated the effects of methane and producer gas blends on the performance of a SI engine. The additions of methane were 10%, 25% and 50% on a molar basis. The results demonstrated that adding 25% methane to producer gas is enough to sustain the combustion reaction with good stability and a power derating of 10.8%. The addition of 50% methane to producer gas attains efficiency and combustion characteristics remarkably similar to pure natural gas with a power de-rating of 5.4%. Emissions indicated that carbon monoxide (CO) has decreased with the addition of methane to producer gas from 85 to 3.43 g/kWh, while nitrogen oxides ([Formula: see text]) emissions have increased from 0 to 8.85 g/kWh. In the case of unburned hydrocarbons (UHC), emissions did not considerably change before adding 25% methane to producer gas and stayed constant at approximately 10 g/kWh. Engines designed to run on natural-gas could use this mixture without significant modifications to the combustion chamber while decreasing NO
x
emissions.
Title: Experimental study of the methane and producer gas blends in an optical spark ignition engine: Combustion characteristics, thermodynamics and emissions
Description:
Thermal processes and power generation systems may employ producer gas generated through gasification as an alternative to replace natural gas with lower carbon footprint.
However, pure producer gas in engines is associated with a significant power derating that can be mitigated by blending it with other biofuels.
This work evaluated the effects of methane and producer gas blends on the performance of a SI engine.
The additions of methane were 10%, 25% and 50% on a molar basis.
The results demonstrated that adding 25% methane to producer gas is enough to sustain the combustion reaction with good stability and a power derating of 10.
8%.
The addition of 50% methane to producer gas attains efficiency and combustion characteristics remarkably similar to pure natural gas with a power de-rating of 5.
4%.
Emissions indicated that carbon monoxide (CO) has decreased with the addition of methane to producer gas from 85 to 3.
43 g/kWh, while nitrogen oxides ([Formula: see text]) emissions have increased from 0 to 8.
85 g/kWh.
In the case of unburned hydrocarbons (UHC), emissions did not considerably change before adding 25% methane to producer gas and stayed constant at approximately 10 g/kWh.
Engines designed to run on natural-gas could use this mixture without significant modifications to the combustion chamber while decreasing NO
x
emissions.
Related Results
Innovative developments in the field of intensification of fuel-air mixtures ignition
Innovative developments in the field of intensification of fuel-air mixtures ignition
The article discusses the intensification of fuel-air mixtures ignition in internal combustion engines with positive ignition. The conditions of operation of the spark plug in the ...
Evaluation of a Passive Prechamber Design to Enable Turbulent Jet Ignition in a Retrofitted Compressed Natural Gas Spark Ignition Engine: A Computational Fluid Dynamics–Based Analysis With Comparison Against the Conventional Spark Plug Mode
Evaluation of a Passive Prechamber Design to Enable Turbulent Jet Ignition in a Retrofitted Compressed Natural Gas Spark Ignition Engine: A Computational Fluid Dynamics–Based Analysis With Comparison Against the Conventional Spark Plug Mode
Abstract
Compressed natural gas (CNG) is a promising alternative fuel for spark ignition engines due to its widespread availability and potential to reduce CO2 em...
Characterization of Methane Number for Producer Gas Blends
Characterization of Methane Number for Producer Gas Blends
Producer gas, any of a variety of gases generated from biomass gasification, is a renewable gaseous fuel that can be burned in gas engines for power production. Producer gas consis...
Decarbonisation Innovation Approach to Address Global Methane Pledge
Decarbonisation Innovation Approach to Address Global Methane Pledge
Abstract
Aligned with UAE’s Net Zero Pledge and ADNOC’s Sustainability Targets 2030, ADNOC Gas has developed a robust decarbonization roadmap to accomplish 25%+ GHG ...
Quantifying Methane Emissions Through Process Simulations Model and Beyond
Quantifying Methane Emissions Through Process Simulations Model and Beyond
Abstract
Methane concentration in the atmosphere is increasing steadily and this increment is driving climate change and continue to rise. Although the estimates of ...
Optical Measurement of Spark Deflection Inside a Pre-chamber for Spark-Ignition Engines
Optical Measurement of Spark Deflection Inside a Pre-chamber for Spark-Ignition Engines
<div class="section abstract"><div class="htmlview paragraph">The start of combustion in a spark-ignited engine is highly dependent upon the conditions between the two ...
Experimental Study on Characteristics of Conical Spray and Combustion for Medium Speed D.I. Diesel Engine
Experimental Study on Characteristics of Conical Spray and Combustion for Medium Speed D.I. Diesel Engine
<div class="htmlview paragraph">This paper inverstigates a new way of conical spray for medium speed D. I. diesel engine, with which three different construction injectors we...
Research on Spark Induced Compression Ignition (SICI)
Research on Spark Induced Compression Ignition (SICI)
<div class="htmlview paragraph">Spark induced compression ignition (SICI) is a practical control technology for ignition enhancement in gasoline HCCI combustion. In this pape...

