21
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Brancato V.
, Gordeeva L.G.
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, Palomba V.
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Experimental Characterization of the LiCl/Vermiculite Composite for Sorption Heat Storage Applications
International Journal of Refrigeration. 2019.
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22
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Tokarev M.M.
, Gordeeva L.G.
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Adsorption Cycle “Heat From Cold” for Upgrading the Ambient Heat: The Testing a Lab-Scale Prototype with the Composite sorbent CaClBr/Silica
Applied Energy. 2018.
V.211. P.136-145. DOI: 10.1016/j.apenergy.2017.11.015
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23
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Grekova A.D.
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Composite “LiCl/MWCNT” as Advanced Water Sorbent for Thermal Energy Storage: Sorption Dynamics
Solar Energy Materials and Solar Cells. 2018.
V.176. P.273-279. DOI: 10.1016/j.solmat.2017.12.011
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24
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Grekova A.D.
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Analysis of Different Adsorption Heat Transformation Applications and Working Pairs for Climatic Regions of Russia
In compilation
International Symposium on Material Science and Engineering 2018: ISMSE 2018, Seoul, South Korea, 19–21 January 2018.
– American Institute of Physics.,
2018.
– ISBN 9780735416413. DOI: 10.1063/1.5030309
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25
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Henninger S.K.
, Ernst S-J.
, Gordeeva L.
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New Materials for Adsorption Heat Transformation and Storage
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V.110. NSI. P.59-68. DOI: 10.1016/j.renene.2016.08.041
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26
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Grekova A.D.
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Composite “LiCl/Vermiculite” as Advanced Water Sorbent for Thermal Energy Storage
Applied Thermal Engineering. 2017.
V.124. P.1401-1408. DOI: 10.1016/j.applthermaleng.2017.06.122
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27
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Girnik I.S.
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Dynamic Optimization of Adsorptive Chillers: Compact Layer vs. Bed of Loose Grains
Applied Thermal Engineering. 2017.
V.125. P.823-829. DOI: 10.1016/j.applthermaleng.2017.06.141
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28
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Grekova A.D.
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New Composite Sorbents of Water and Methanol “Salt in Anodic Alumina”: Evaluation for Adsorption Heat Transformation
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V.106. P.231-239. DOI: 10.1016/j.energy.2016.03.050
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29
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Grekova A.
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Composite Sorbents “Li/Ca Halogenides Inside Multi-Wall Carbon Nano-Tubes” for Thermal Energy Storage
Solar Energy Materials and Solar Cells. 2016.
V.155. P.176-183. DOI: 10.1016/j.solmat.2016.06.006
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30
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Grekova A.D.
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, Nikulin V.
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, Gordeeva L.G.
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New Composite Materials Based on Anodic Alumina for Adsorption Heat Transformers
In compilation
Sustainable Energy for a Resilient Future: proceedings of the 14th International Conference on Sustainable Energy Technologies – SET 2015, 25th to 27th August 2015, Nottingham UK.
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Grekova A.D.
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Gordeeva L.
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V.50. N2. P.1633-1638. DOI: 10.1016/j.applthermaleng.2011.07.040
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34
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Veselovskaya J.V.
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Novel Ammonia Sorbents ''Porous Matrix Modified by Active Salt" for Adsorptive Heat Transformation: 6. The Ways of Adsorption Dynamics Enhancement
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V.37. P.87-94. DOI: 10.1016/j.applthermaleng.2012.01.004
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35
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Grekova A.D.
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Novel Ammonia Sorbents “Porous Matrix Modified by Active Salt” For Adsorptive Heat Transformation: 5. Designing The Composite Adsorbent For Ice Makers
Applied Thermal Engineering. 2012.
V.37. P.80-86. DOI: 10.1016/j.applthermaleng.2012.01.005
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36
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Gordeeva L.
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Binary Salt Systems – An Efficient Tool for Designing Composite Sorbents Salt Inside Porous Matrix
In compilation
Proceedings of the International Symposium on Innovative Materials for Processes in Energy Systems 2010 : For Fuel Cells, Heat Pumps and Sorption Systems.
2010.
– C.3-10. – ISBN 9789810876142. DOI: 10.3850/978-981-08-7614-2_IMPRES002
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37
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Gordeeva L.G.
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Adsorption Properties of Composite Materials (LiCl + LiBr)/Silica
Microporous and Mesoporous Materials. 2009.
V.126. N3. P.262-267. DOI: 10.1016/j.micromeso.2009.06.015
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