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GEOTHERMAL POWER PRODUCTION Emmonak Alaska

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GEOTHERMAL POWER PRODUCTION Emmonak Alaska ( geothermal-power-production-emmonak-alaska )

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Running head: GEOTHERMAL POWER PRODUCTION 39 metallurgical consideration are discussed (Thain & Carey, 2008, pp. 49, 50). Next the issues of steam production, transmission and the inner operations of power production are covered with the assistance of detailed illustrations and water temperature charts. There are two main plants at Wairakei, Plant A and Plant B. Plant A uses multi- pressures: high pressure (HP), intermediate pressure (IP), and low pressure (LP) with the tips of its turbine blade reaching high speeds of 3,000 rpm. Plant B, on the other hand, uses medium pressure (MP) with the tips of its turbine blades reaching lower speeds of 1,500 rpm (Thain & Carey, 2008, p. 54). The auxiliary functions of non-condensable gas removal and its cooling water plant finish off this section. In addition, it addresses steam field issues, is in the format of a timeline that highlights the various stages of technical problems and solutions encountered from commissioning in 1958 until 2008 (Thain & Carey, 2008, p. 56). Production drilling, maintenance requirements, and technical challenges along with applications are covered. The binary and direct use applications are discussed in detail whereas they were not in the Nicaraguan article. Geothermal energy production, generally, is the result of a large scale and expensive project. This fact leads to one of the underlying factors: cost. As such, applications are geared toward commercial markets. Germany moved into the construction of large geothermal plants in the mid 1980s (Sanner, Mands & Sauer, 2003, p. 590). Heat pumps are a central element to the application of geothermal technology where the production of electricity is not the main focus (Sanner et al., p. 591). Sanner, Mands, and Sauer studied of how Germany used Ground Source Heat Pumps (GSHP) to cool as well as heat the German Air Traffic Control Headquarters in the center of

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