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Summary of Results from Testing a 30-kW-Microturbine and Combined Heat and Power (CHP) System

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Summary of Results from Testing a 30-kW-Microturbine and Combined Heat and Power (CHP) System ( summary-results-from-testing-30-kw-microturbine-and-combined )

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Federal Technology Alert Fig. 23. CO concentration vs air inlet temperature at 25- and 30-kW power output settings. (Source: “Environmental Aspects of Operation of a Gas-Fired Microturbine-Based CHP System,” Proceedings of the 19th Annual International Pittsburgh Coal Conference, Pittsburgh, PA, September 2002.) constant during the tests. The only flue gas pollutant significantly af­ fected by a change in microturbine air inlet temperature was CO. As shown in Fig. 23, at both 25- and 30-kW power output, the CO concentration levels decreased with higher air inlet temperatures. 7. THE TECHNOLOGY IN PERSPECTIVE The major benefits of a DER/CHP are (1) local control of power generation, (2) efficient use of waste heat, (3) increased overall efficiency, and (4) a reduction in emissions. Local power generation applications include continuous power generation, remote power generation for facilities isolated from the grid, cogeneration, provision of a peaking operation to reduce purchase of electricity during high-price periods, and provision of electrical service at a high level of reliability and quality. Technologies that can be driven by the DER waste heat in a CHP system include (1) chillers and desiccant dehumidifiers for space cooling and dehumidification, (2) steam generators for space heating, and (3) heat exchang­ ers for process and domestic hot water. These CHP systems can maximize energy efficiency, provide an option for central power generation, and improve electric power reliability and quality. FEDERAL ENERGY MANAGEMENT PROGRAM ––23

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