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contributor authorSwain, Matthew Neill
contributor authorJordan, Oliver Patrick
contributor authorMackey, Travis Jamal
contributor authorSeemann, Patrick Shannon
contributor authorSamarajeewa, Hasitha
contributor authorSwain, Michael Robert
date accessioned2017-05-09T01:29:00Z
date available2017-05-09T01:29:00Z
date issued2016
identifier issn1528-8919
identifier othergtp_138_12_122803.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/161223
description abstractThis paper describes the development of a watercooled, lean burn, gaseous fueled engine designed for distributed power installations. Electric generators have become popular because they provide a portable supply of electrical power at consumer demand. They are used in critical need areas such as hospitals and airports, and have found their way into homes frequented with power outages or homes in remote locations. Gensets are available in a wide variety of sizes ranging from 1 kilowatt (kW) to thousands of kilowatts. In the midrange, the power sources are typically sparkignition, automotive type internal combustion engines. Since engines designed for automotive use are subject to different emission regulations, and are optimized for operation at revolutions per minute (RPM) and brake mean effective pressures (BMEPs) above that of electric generator engines, modifications can be made to optimize them for gensets. This work describes modifications which can be made during remanufacturing an automotive engine to optimize it for use as a generator engine. While the work recognizes the potential for cost savings from the use of remanufactured automotive engines over that of using new automotive engines and the majority of the design constraints were adopted to reduce engine cost, the main focus of the work is quantifying the increase in fuel efficiency that can be achieved while meeting the required EPA emission requirements. This paper describes the seven combustion chamber designs that were developed and tested during this work. Friction reduction was obtained in both valve train and journal bearing design. The engine optimized for fuel efficiency produced a maximum brake thermal efficiency (BTE) of 37.5% with خ»â€‰= 1.63. This yielded an EPA test cycle average brake specific fuel consumption (BSFC) of 325 g/kW hr. Modification of the spark advance and low load equivalence ratio to meet EPA Phase III emission standards resulted in an EPA test cycle average BSFC of 330 g/kW hr. When the engine used in this research was tested in its unmodified, automotive configuration under the EPA compliant test cycle, its EPA test cycle average BSFC was 443.4 g/kW hr. This is a 34% increase in fuel consumption compared to the modified engine.
publisherThe American Society of Mechanical Engineers (ASME)
titleModifications to Improve Fuel Consumption in the Remanufacture of Spark Ignition Engines for Electric Generators
typeJournal Paper
journal volume138
journal issue12
journal titleJournal of Engineering for Gas Turbines and Power
identifier doi10.1115/1.4033953
journal fristpage122803
journal lastpage122803
identifier eissn0742-4795
treeJournal of Engineering for Gas Turbines and Power:;2016:;volume( 138 ):;issue: 012
contenttypeFulltext


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