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1

Boman, Daniel B., Alexander W. Raymond, and Srinivas Garimella. Adsorption Heat Pumps. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-72180-0.

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2

Ng, Kim Choon, and Bidyut Baran Saha. Advances in adsorption technology. Edited by Saha Bidyut Baran and Ng Kim Choon. Nova Science Publishers, 2009.

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3

Freni, Angelo, Belal Dawoud, Lucio Bonaccorsi, et al. Characterization of Zeolite-Based Coatings for Adsorption Heat Pumps. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-09327-7.

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4

Sapienza, Alessio, Andrea Frazzica, Angelo Freni, and Yuri Aristov. Dynamics of Adsorptive Systems for Heat Transformation. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-51287-7.

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5

Jet Propulsion Laboratory (U.S.), ed. Gas adsorption/absorption heat switch: Final report of phase 1. The Laboratory, 1987.

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6

Dombrovsky, L. A. Thermal radiation in disperse systems: An engineering approach. Begell House, 2010.

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7

Shilyaev, Mihail, Elena Hromova, Aleksandr Bogomolov, A. Pavlenko, and V. Butov. Modeling of hydrodynamics and heat and mass transfer in dispersed media. INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1865376.

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The monograph presents methods for calculating the dehydration of wet granular materials in industrial centrifuges, filter presses and vacuum filters under the influence of gravitational forces, as well as by purging the granular layer with dry air with elevated temperature; physical and mathematical models of gas absorption and the theory of capturing submicron dust by condensation in foam, centrifugal bubbling apparatus and hollow nozzle scrubbers, packing columns and tubular absorbers; physical and mathematical models of dry adsorption of gases in packing columns and flues by injecting a dispersed adsorbent into the flow are presented, a method for determining the phase equilibrium constants of sorption processes based on the developed models is proposed; physical and mathematical modeling and analysis of the combustion process of dispersed solid ash fuel in a four-stage cyclone gorenje is carried out. the furnace.
 It can be useful in the educational process for a number of specialties, in particular thermal power engineering, chemical-technological, metallurgical profiles, environmentalists, as well as for researchers and graduate students and in engineering practice.
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8

Turner, Lynne. Improvement of activated charcoal-ammonia adsorption heat pumping/refrigeration cycles: Investigation of porosity andheat/mass transfer chacteristics. typescript, 1992.

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9

Davies, Gareth N. L. Heat driven adsorption cooling utilising enhanced effective thermal conductivity monolithic adsorbent generators for refrigeration and ice production in developing countries. typescript, 2000.

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10

Boman, Daniel B., Alexander W. Raymond, and Srinivas Garimella. Adsorption Heat Pumps: Fundamentals and Applications. Springer International Publishing AG, 2021.

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11

Boman, Daniel B., Alexander W. Raymond, and Srinivas Garimella. Adsorption Heat Pumps: Fundamentals and Applications. Springer International Publishing AG, 2022.

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12

Chakraborty, Anutosh, and Bidyut Baran Saha. Adsorption Heat Transformations: Theory, Design, and Modeling. Elsevier, 2023.

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13

Sapienza, Alessio. Dynamics of Adsorptive Systems for Heat Transformation: Optimization of Adsorber, Adsorbent and Cycle. Springer, 2018.

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14

Frazzica, Andrea, Angelo Freni, Belal Dawoud, Lucio Bonaccorsi, and Stefanie Chmielewski. Characterization of Zeolite-Based Coatings for Adsorption Heat Pumps. Springer London, Limited, 2015.

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15

Calabrese, Luigi, Andrea Frazzica, Angelo Freni, et al. Characterization of Zeolite-Based Coatings for Adsorption Heat Pumps. Springer, 2015.

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16

Sukhyy, Kostyantyn M., Elena A. Belyanovskaya, and Mikhailo P. Sukhyy. Technology Development for Adsorptive Heat Energy Converters. IGI Global, 2020.

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17

Sukhyy, Kostyantyn M., Elena A. Belyanovskaya, and Mikhailo P. Sukhyy. Technology Development for Adsorptive Heat Energy Converters: Emerging Research and Opportunities. IGI Global, 2020.

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18

Sukhyy, Kostyantyn M., Elena A. Belyanovskaya, and Mikhailo P. Sukhyy. Technology Development for Adsorptive Heat Energy Converters: Emerging Research and Opportunities. IGI Global, 2020.

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19

Sukhyy, Kostyantyn M., Elena A. Belyanovskaya, and Mikhailo P. Sukhyy. Technology Development for Adsorptive Heat Energy Converters: Emerging Research and Opportunities. IGI Global, 2020.

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20

Sukhyy, Kostyantyn M., Elena A. Belyanovskaya, and Mikhailo P. Sukhyy. Technology Development for Adsorptive Heat Energy Converters: Emerging Research and Opportunities. IGI Global, 2020.

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