Weidong Gong
Caterpillar Inc.
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Featured researches published by Weidong Gong.
Journal of Engineering for Gas Turbines and Power-transactions of The Asme | 2004
S. R. Krishnan; Kalyan K. Srinivasan; Satbir Singh; Stuart R. Bell; K. C. Midkiff; Weidong Gong; Scott B. Fiveland; Martin L. Willi
The performance and emissions of a single-cylinder natural gas fueled engine using a pilot ignition strategy have been investigated. Small diesel pilots (2-3% on an energy basis), when used to ignite homogeneous natural gas-air mixtures, are shown to possess the potential for reduced NO X emissions while maintaining good engine performance. The effects of pilot injection timing, intake charge pressure, and charge temperature on engine performance and emissions with natural gas fueling were studied. With appropriate control of the above variables, it was shown that full-load engine-out brake specific NO X emissions could be reduced to the range of 0.07-0.10 g/kWh from the baseline diesel (with mechanical fuel injection) value of 10.5 g/kWh. For this NO X reduction, the decrease in fuel conversion efficiency from the baseline diesel value was approximately one to two percentage points. Total unburned hydrocarbon (HC) emissions and carbon monoxide (CO) emissions were higher with natural gas operation. The nature of combustion under these conditions was analyzed using heat release schedules predicted from measured cylinder pressure data. The importance of pilot injection timing and inlet conditions on the stability of engine operation and knock are also discussed.
International Joint Power Generation Conference collocated with TurboExpo 2003 | 2003
Kalyan K. Srinivasan; S. R. Krishnan; Satbir Singh; K. Clark Midkiff; Stuart R. Bell; Weidong Gong; Scott B. Fiveland; Martin L. Willi
High nitrogen oxides (NOx ) and particulate matter (PM) emissions restrict future use of conventional diesel engines for efficient, low-cost power generation. The advanced low pilot ignited natural gas (ALPING) engine described here has potential to meet stringent NOx and PM emissions regulations. It uses natural gas as the primary fuel (95 to 98 percent of the fuel energy input here) and a diesel fuel pilot to achieve compression ignition. Experimental measurements are reported from a single cylinder, compression-ignition engine employing highly advanced injection timing (45°–60°BTDC). The ALPING engine is a promising strategy to reduce NOx emissions, with measured full-load NOx emissions of less than 0.25 g/kWh and identical fuel economy to baseline straight diesel operation. However, unburned hydrocarbons were significantly higher for ALPING operation. Engine stability, as measured by COV, was 4–6 percent for ALPING operation compared to 0.6–0.9 percent for straight diesel.Copyright
Design and Control of Diesel and Natural Gas Engines for Industrial and Rail Transportation Applications | 2003
Kalyan K. Srinivasan; S. R. Krishnan; Sabir Singh; K. Clark Midkiff; Stuart R. Bell; Weidong Gong; Scott B. Fiveland; Martin L. Willi
The Advanced Low Pilot Ignited Natural Gas (ALPING) engine is proposed as an alternative to diesel and conventional dual fuel engines. Experimental results from full load operation at a constant speed of 1700 rev/min are presented in this paper. The potential of the ALPING engine is realized in reduced NOx emissions (less than 0.2 g/kWh) at all loads accompanied by fuel conversion efficiencies comparable to straight diesel operation. Some problems at advanced injection timings are recognized in high unburned hydrocarbon (HC) emissions (25 g/kWh), poor engine stability reflected by high COVimep (about 6 percent), and tendency to knock. This paper focuses on the combustion aspects of low pilot ignited natural gas engines with particular emphasis on advanced injection timings (45°–60°BTDC).Copyright
Design, Application, Performance and Emissions of Modern Internal Combustion Engine Systems and Components | 2002
S. R. Krishnan; Kalyan K. Srinivasan; Weidong Gong; Scott B. Fiveland; Satbir Singh; Stuart R. Bell; K. Clark Midkiff; Martin L. Willi
The performance and emissions of a single-cylinder, natural gas fueled engine using a pilot ignition strategy have been investigated. Small diesel pilots (2–3 percent on an energy basis), when used to ignite homogeneous natural gas-air mixtures, are shown to possess the potential for reduced NOx emissions while maintaining good engine performance. The effect of pilot injection timing, intake charge pressure, and charge temperature on engine performance and emissions with natural gas fueling was studied. With appropriate control of the above variables, engine-out brake specific NOx emissions could be reduced to the range of 0.07–0.10 g/kWh from the baseline diesel (with mechanical fuel injection) value of 10.5 g/kWh. For this NOx reduction, the decrease in fuel conversion efficiency from the baseline diesel value was approximately 1–2 percent. Total unburned hydrocarbon (HC) emissions and carbon monoxide (CO) emissions were higher with natural gas operation. Heat release schedules obtained from measured cylinder pressure data are also presented. The importance of pilot injection timing and inlet conditions on the stability of engine operation and knock are also discussed.Copyright
Archive | 2002
Martin L. Willi; Brett M. Bailey; Scott B. Fiveland; Weidong Gong
Archive | 2005
Brett M. Bailey; Scott B. Fiveland; Weidong Gong
Archive | 2008
Weidong Gong; Martin Leo Willi; Balamurugesh Thirunavukarasu
Archive | 2005
Weidong Gong; John D. Goddard; Martin L. Willi; Scott B. Fiveland
Archive | 2008
David T. Montgomery; Weidong Gong; Wade J. Robel; James J. Driscoll
Archive | 2008
Martin L. Willi; Scott B. Fiveland; David T. Montgomery; Weidong Gong