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• high levels of reliability • modularity that permits incremental additions in capacity • potentially very low capital cost (on a $ / kW installed basis) as a result of mass production economies (not possible with the central station paradigm) • the capture of waste heat that can then be used at the site through combined heat and power (CHP) systems • minimal environmental footprints, particularly in CHP systems • customer control (not practical in the large, impersonal, and often remote existing system) Hydrogen Systems. Hydrogen has long been a widely produced, widely consumed commodity in our industrial society. However, its use as a fuel replacing natural gas and oil, although recognized as a possibility, has not been pursued because of the perceived difficulty of establishing a distribution infrastructure. But with advances in technology, distributed generation of hydrogen for use in direct-combustion applications, as well as in fuel cells, will not only be feasible, but will also be increasingly attractive economically. This article describes some of the developments in technology that are making these two paradigm shifts possible and the most significant barriers to their large-scale market penetration. Distributed Generation Systems Emerging technologies for the distributed generation of electric power and related control and system-integration technologies are categorized in Figure 1. In the last decade, substantial technical progress has been made in many of the areas shown in this figure. The technical developments described briefly below are all leading toward the commercial introduction of small-scale, distributed generation systems that offer customers economical, 2PDF Image | Microgeneration Technology : Shaping Energy Markets
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