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1

La maldición de La Turbina: Y otros temas avileños. Ciego de Ávila, Cuba: Ediciones Ávila, 2015.

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2

Glinkina, L. A., and O. B. Adaeva. Russkiĭ i︠a︡zyk--istorii︠a︡ i sovremennostʹ: Materialy Mezhdunarodnoĭ nauchno-prakticheskoĭ konferent︠s︡ii pami︠a︡ti professora G.A. Turbina, 23-24 okti︠a︡bri︠a︡ 2002 g. Cheli︠a︡binsk: Cheli︠a︡binskiĭ gos. pedagog. universitet, 2002.

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3

Gao, Jie, Qun Zheng, Feng Lin, Chen Liang, and Yu Liu. Variable Geometry Turbine Technology for Marine Gas Turbines. Singapore: Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-6952-2.

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4

Soares, Claire. Microturbines. Burlington, Mass: Academic Press, 2007.

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5

Soares, Claire. Microturbines. Burlington, MA: Elsevier Butterworth-Heinemann, 2007.

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6

Barnard, Mark C. S. Pistons to blades: Small gas turbine developments by the Rover Company. Derby: Rolls-Royce Heritage Trust, 2003.

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7

American Society of Mechanical Engineers. Winter Meeting. Heat transfer in gas turbine engines - 1991: Presented at the Winter Annual Meeting of the American Society of Mechanical Engineers, Atlanta, Georgia, December 1-6, 1991. New York, N.Y: ASME, 1991.

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8

Gas turbines: A handbook of air, land, and sea applications. Amsterdan: Butterworth-Heinemann, 2008.

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9

Klein, William E. Model 0A wind turbine generator FMEA. [Washington, D.C: National Aeronautics and Space Administration, 1989.

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10

R, Lalli Vincent, United States. National Aeronautics and Space Administration., and United States. Dept. of Energy. Wind/Ocean Technologies Division., eds. Model 0A wind turbine generator FMEA. [Washington, D.C: National Aeronautics and Space Administration, 1989.

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11

United States. Dept. of Energy. Office of Energy Efficiency and Renewable Energy. Office of Industrial Technologies, Federal Energy Technology Center (U.S.), United States. Dept. of Energy. Office of Energy Efficiency and Renewable Energy, and United States. Office of Fossil Energy, eds. Advanced turbine systems: ATS : providing clean, affordable energy. Washington, D.C: U.S. Dept. of Energy, Office of Industrial Technologies, 1998.

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12

Chmielniak, Tadeusz. Turbiny gazowe. Wrocław: Zakład Narodowy im. Ossolińskich, 2001.

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13

United States. National Aeronautics and Space Administration., ed. Enhanced capabilities and updated users manual for axial-flow turbine preliminary sizing code TURBAN. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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14

United States. National Aeronautics and Space Administration., ed. Enhanced capabilities and updated users manual for axial-flow turbine preliminary sizing code TURBAN. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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15

Schmid, J. Performance of European wind turbines: A statistical evaluation from the European wind turbine database EUROWIN. London: Elsevier Applied Science, 1991.

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16

Epaltza, Aingeru. Agua turbia. 2nd ed. Hondarribia, Guipúzcoa [Spain]: Argitaletxe Hiru, 1995.

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17

Luna turbia. Madrid: Ediciones Torremozas, 2013.

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18

Beck, Douglas Stephen. Gas-turbine regenerators. New York: Chapman & Hall, 1996.

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19

Beck, Douglas Stephen. Gas-turbine regenerators. New York: Chapman & Hall, 1996.

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20

Development, North Atlantic Treaty Organization Advisory Group for Aerospace Research and. Erosion, corrosion and foreign object damage effects in gas turbines. Neuilly sur Seine, France: AGARD, 1994.

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21

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Erosion, corrosion and foreign object damage effects in gas turbines: Papers presented at the Propulsion and Energetics Panel (PEP) Symposium held in Rotterdam, The Netherlands, 25-28 April 1994. Neuilly-sur-Seine: AGARD, 1994.

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22

A, Spera David, ed. Wind turbine technology: Fundamental concepts of wind turbine engineering. New York: ASME Press, 1994.

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23

A, Spera David, ed. Wind turbine technology: Fundamental concepts of wind turbine engineering. 2nd ed. New York, NY: ASME Press, 2009.

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24

A, Spera David, and American Society of Mechanical Engineers., eds. Wind turbine technology: Fundamental concepts of wind turbine engineering. New York: ASME Press, 1998.

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25

Young, WC, and RS Roberton, eds. Turbine Oil Monitoring. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 1989. http://dx.doi.org/10.1520/stp1021-eb.

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26

Beck, Douglas Stephen, and David Gordon Wilson. Gas-Turbine Regenerators. Boston, MA: Springer US, 1996. http://dx.doi.org/10.1007/978-1-4613-1209-3.

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27

Lieuwen, Tim C., and Vigor Yang, eds. Gas Turbine Emissions. Cambridge: Cambridge University Press, 2013. http://dx.doi.org/10.1017/cbo9781139015462.

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28

Wagner, S. Wind turbine noise. Berlin: Springer, 1996.

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29

Wagner, Siegfried, Rainer Bareiß, and Gianfranco Guidati. Wind Turbine Noise. Berlin, Heidelberg: Springer Berlin Heidelberg, 1996. http://dx.doi.org/10.1007/978-3-642-88710-9.

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30

Medina, Ninct Luna. Turbina Hidráulica. Editorial Pax, 2012.

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31

Federici. Nika Turbina. lulu.com, 2018.

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32

Wadzek contra la turbina de vapor. Madrid: Impedimenta, 2011.

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33

L, Stajn R. Dnevnik sumasshedshej mumii (per. s angl. Turbina I.V.). Rosmen, 2004.

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34

L, Stajn R. Kanikuly v dzhunglyakh (per. s angl. Turbina I.V.). Rosmen, 2002.

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35

Nakarmi, K. Diseno y Fabricacion de Una Turbina de Flujo Cruzado. Practical Action Publishing, 1997.

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36

L, Stajn R. Lift v nikuda: Triller dlya detej (per. s angl. Turbina I.V.). Rosmen, 2003.

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37

L&K International Training. Gas Turbine Power Generation: Operation Gas Turbines. Institute of Electrical & Electronics Enginee, 1999.

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38

Wolf, E. L. Wind, hydro and tides Fully sustainable energy. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0008.

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Wind-turbine science and technology is outlined, following the work of Betz. Rotor design, blade construction and aspects of electric power generation are described, principally for large horizontal-axis devices, with some mention of vertical axis wind turbines. Hydropower and pumped storage are treated, with mention of Francis and Kaplan turbines. A summary of tidal energy is included. We now go into detail on some aspects of these topics. As these forms of energy come either from the Sun (in an indirect fashion) or from the motion of the Earth and Moon, they are available on an indefinite term into the future.
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39

Parker, Philip M. The 2007-2012 World Outlook for Turbines, Turbine Generators, and Turbine Generator Sets. ICON Group International, Inc., 2006.

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40

Feng, Lin, Yu Liu, Jie Gao, Chen Liang, and Qun Zheng. Variable Geometry Turbine Technology for Marine Gas Turbines. Springer, 2023.

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41

L&K International Training. Gas Turbine Power Generation: Aero - Derivative Gas Turbines. Institute of Electrical & Electronics Enginee, 1999.

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42

The 2006-2011 World Outlook for Accessories for Turbines, Turbine Generators, and Turbine Generator Sets. Icon Group International, Inc., 2005.

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43

Soares, Claire. Microturbines: Applications for Distributed Energy Systems. Elsevier Science & Technology Books, 2011.

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44

ICON, Group International Inc. The 2000-2005 Outlook for Turbines and Turbine Generator Sets in Europe. Icon Group International, 2001.

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45

ICON, Group International Inc. The 2000-2005 Outlook for Turbines and Turbine Generator Sets in Africa. Icon Group International, 2001.

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46

ICON, Group International Inc. The 2000-2005 Outlook for Turbines and Turbine Generator Sets in Asia. Icon Group International, 2001.

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47

Inc, ICON Group International. The 2000-2005 Outlook for Turbines and Turbine Generator Sets in Oceana. Icon Group International, 2001.

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48

Bañuelos García, Francisco H., Michael Ring, Edgar G. Mendoza Baldwin, and Rodolfo Silva Casarín. Foundation Design for Marine Turbines on Rocky Soils. EPOMEX-UAC, 2021. http://dx.doi.org/10.26359/epomex.cemie012021.

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Un elemento fundamental para un sistema de turbinas marinas que funcionan mediante la acción corrientes marinas es la cimentación, la cual absorbe un gran porcentaje del costo total del proyecto, en algunos casos presentándose valores de hasta el 35 %, por consiguiente, es necesario poner especial énfasis en el diseño de estas estructuras. En general, la mayoría de los procedimientos de diseño para cimentaciones o sistemas de anclajes están enfocados principalmente en suelos arenosos y arcillosos. Sin embargo, existen sitios donde predominan principalmente los suelos rocosos en los cuales las corrientes marinas son propicias para instalar este tipo de dispositivos. Por tal motivo, en esta obra se propone un procedimiento de diseño de anclajes mediante pilotes de acero, y de peso muerto (apm) de concreto para suelos rocosos. El procedimiento se concentra en determinar las dimensiones principales del ancla, sin considerar detalles específicos como la conexión ojal-ancla. El procedimiento consiste en tres fases, la primera se enfoca en el diseño preliminar a través de ecuaciones prácticas del diseño de estructuras “ordinarias”, o bien mediante la experiencia del diseñador. La segunda consiste en evaluar la capacidad estructural del elemento prediseñado; y finalmente en la tercera se evalúa la capacidad geotécnica del anclaje considerando suelo rocoso. Los sistemas de anclajes están diseñados con las formulaciones establecidas tanto en documentos técnicos como códigos de diseño para este tipo de estructuras. Para exponer la aplicación de este procedimiento se realizó el diseño de cada tipo de anclaje, un pilote y un apm, como sitio de instalación se consideró el Canal de Cozumel. Los resultados de diseño mostraron que las dimensiones (y por ende el peso) del apm es significativamente mayor que el pilote de acero para las características de la turbina considerada. Típicamente, los anclajes mediante pilotes son más eficientes, en lo que respecta al peso del elemento, además de que se pueden utilizar en suelos inclinados. Sin embargo, especialmente en suelos marinos rocosos con corrientes significativas su instalación es más complicada, ya que se tiene que considerar equipo y mano de obra costosa en comparación con los apm. Por lo tanto, la elección de la cimentación depende en gran medida de las condiciones y características del suelo marino del proyecto. En esta obra se presenta un procedimiento simplificado de diseño, con el cual se puede evaluar de manera rápida y eficiente sistemas de anclajes en suelos rocosos.
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49

Smith, Ken. Turbinia. Newcastle Libraries & Information Service, 1996.

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50

Consensus for the Lay-up of Boilers, Turbines, Turbine Condensers, and Auxiliary Equipment. ASME, 2002.

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