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Federal Technology Alert Fig. 8. Efficiency and exhaust temperature versus power output. (Source: “Integration of Distributed Energy Resources and Thermally-Activated Technologies,” DistribuTech Conference, Miami Beach, FL, February 2002.) Fig. 9. Effect of ambient temperature on power output. (Source: “CHP Integration (OR IES): Maximizing the Efficiency of Distributed Generation with Waste Heat Recovery,” Proceedings of the Power Systems 2003 Conference, Clemson, SC, March 2003.) Fig. 10. Effect of ambient temperature on exhaust temperature. (Source: “CHP Integration (OR IES): Maximizing the Efficiency of Distributed Generation with Waste Heat Recovery,” Proceedings of the Power Systems 2003 Conference, Clemson, SC, March, 2003.) positions—fully open, 1/4 closed, and 3/8 closed—and for the constant engine speed tests, the slide damper was varied over five settings. In both tests, the back-pressure was monitored by a pressure transducer also located in the exhaust duct. Because the microturbine was located outdoors, the microturbine’s air inlet temperature was dictated by outdoor conditions. 4.1 CONSTANT POWER OUTPUT DEMAND Tests were conducted at various power output demands and microturbine back-pressures (damper at three different positions of fully open, 1/4 closed, and 3/8 closed). At full power demand, the FEDERAL ENERGY MANAGEMENT PROGRAM –– 11PDF Image | Summary of Results from Testing a 30-kW-Microturbine and Combined Heat and Power (CHP) System
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