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Aluminum as energy carrier: Feasibility analysis and current technologies overview. (2011). Zhuk, A. Z. ; Vlaskin, M. S. ; Shkolnikov, E. I..
In: Renewable and Sustainable Energy Reviews.
RePEc:eee:rensus:v:15:y:2011:i:9:p:4611-4623.

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  3. Iron as a sustainable chemical carrier of renewable energy: Analysis of opportunities and challenges for retrofitting coal-fired power plants. (2022). Hasse, C ; Janicka, J ; Scholtissek, A ; Rocha, R C ; Debiagi, P.
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  5. Hydrogen-Rich Gas Produced by the Chemical Neutralization of Reactive By-Products from the Screening Processes of the Secondary Aluminum Industry. (2021). Borrini, Daniele ; Orlando, Andrea ; Ercoli, Roberto ; Renzulli, Alberto ; Bicocchi, Gabriele ; Tassi, Franco.
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  11. Lithium as energy carrier: CFD simulations of LI combustion in a 100MW slag tap furnace. (2018). Maas, Pascal ; Schmid, Gunther ; Taroata, Dan ; Fischer, Peter ; Scherer, Viktor ; Schiemann, Martin .
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  12. Facile hydrogen production from Al-water reaction promoted by choline hydroxide. (2017). Wang, Hongqi ; Cao, Jianwei ; Gong, Xuzhong ; Shi, Zhihao .
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  13. Magnesium/air combustion at pilot scale and subsequent PM and NOx emissions. (2017). Brilhac, Jean-Franois ; Tahtouh, Toni ; Leyssens, Gontrand ; Guezet, Olivier ; Allano, Sylvain ; Tschamber, Valerie ; Garra, Patxi ; Allgaier, Olivier ; Schonnenbeck, Cornelius .
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  14. Metal-water combustion for clean propulsion and power generation. (2017). Higgins, Andrew J ; Goroshin, Samuel ; Vickery, James ; Soo, Michael ; Georges, William ; Bergthorson, Jeffrey M ; Yavor, Yinon ; Palecka, Jan ; Frost, David L.
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  15. A review on lithium combustion. (2016). Schiemann, Martin ; Schmid, Gunther ; Taroata, Dan ; Scherer, Viktor ; Fischer, Peter ; Bergthorson, Jeffrey .
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  16. Experimental researches on hydrogen generation by aluminum with adding lithium at high temperature. (2015). Yang, Weijuan ; Cen, Kefa ; Zhou, Junhu ; Wang, Zhihua ; Liu, Jianzhong ; Zhang, Tianyou .
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  17. Experimental study on the effect of low melting point metal additives on hydrogen production in the aluminum–water reaction. (2015). Yang, Weijuan ; Cen, Kefa ; Liu, Jianzhong ; Shi, Wei ; Zhou, Junhu ; Zhang, Tianyou .
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  18. Direct combustion of recyclable metal fuels for zero-carbon heat and power. (2015). Bergthorson, J M ; Jarvis, D J ; Frost, D L ; Palecka, J ; Julien, P ; Soo, M J ; Goroshin, S.
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  43. Assessing the energy implications of replacing car trips with bicycle trips in Sheffield, UK. (2011). Wild, A. ; Lovelace, R. ; Watson, M. ; Beck, S. B. M., .
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  44. Net energy yield from production of conventional oil. (2011). Dale, Michael ; Krumdieck, Susan ; Bodger, Pat .
    In: Energy Policy.
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  45. Global oil depletion: A review of the evidence. (2010). Sorrell, Steve ; Brandt, Adam ; Bentley, Roger ; Miller, Richard ; Speirs, Jamie.
    In: Energy Policy.
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  46. Oil futures: A comparison of global supply forecasts. (2010). Sorrell, Steve ; Speirs, Jamie ; Bentley, Roger ; Miller, Richard .
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  47. What might be the energy demand and energy mix to reconcile the worlds pursuit of welfare and happiness with the necessity to preserve the integrity of the biosphere?. (2010). Jess, Andreas .
    In: Energy Policy.
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  48. Global energy crunch: How different parts of the world would react to a peak oil scenario. (2010). Friedrichs, Jorg .
    In: Energy Policy.
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  49. The transition to renewables: Can PV provide an answer to the peak oil and climate change challenges?. (2010). Forest, Andrew S. ; Lloyd, Bob .
    In: Energy Policy.
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  50. Can the South African transport system surmount reduced crude oil availability?. (2010). Wakeford, J. J. ; Vanderschuren, M. J. W. A, ; Lane, T. E..
    In: Energy Policy.
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