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Heat and Mass Transfer in Energy Systems

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ISBN: 9783039219827 9783039219834 Year: Pages: 234 DOI: 10.3390/books978-3-03921-983-4 Language: English
Publisher: MDPI - Multidisciplinary Digital Publishing Institute
Subject: General and Civil Engineering --- Technology (General)
Added to DOAB on : 2020-01-30 16:39:46
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Abstract

In recent years, the interest of the scientific community towards efficient energy systems has significantly increased. One of the reasons is certainly related to the change in the temperature of the planet, which has increased by 0.76 °C with respect to preindustrial levels, according to the Intergovernmental Panel on Climate Change (IPCC), and is still increasing. The European Union considers it vital to prevent global warming from exceeding 2 °C with respect to pre-industrial levels, as it has been proven that this will result in irreversible and potentially catastrophic changes. These changes in climate are mainly caused by greenhouse gas emissions related to human activities, and can be drastically reduced by employing energy systems for the heating and cooling of buildings, as well as for power production, characterized by high efficiency levels and/or based on renewable energy sources. This Special Issue, published in the Energies journal, includes 13 contributions from across the world, including a wide range of applications such as hybrid residential renewable energy systems, desiccant-based air handling units, heat exchanges for engine WHR, solar chimney systems, and other interesting topics.

Keywords

bubble absorber --- absorption cooling --- ammonia-lithium nitrate --- plate heat exchanger --- bentonite buffer material --- Ca-type bentonite --- thermal conductivity --- predictive models --- thermosyphon --- two-phase flow --- startup --- phase change --- operating state --- visualization --- fast thermal simulation --- crude oil pipeline --- batch transportation --- body-fitted coordinate-based proper orthogonal decomposition reduced-order model (BFC-POD-ROM) --- transport scheme determination --- waste heat recovery --- exhaust steam --- heat exchanger --- protracted fin --- turbo-electric generator --- exhaust emissions --- R744 --- two-phase ejector --- refrigeration --- dynamic simulation --- low-order model --- object-oriented modelling --- desiccant wheel --- solar heating and cooling --- hygroscopic materials --- dynamic simulations --- energy and environmental analysis --- solar chimney --- air flow --- analytical and experimental solutions --- method of calculation --- steelmaking --- electric arc furnace --- consumption --- electric energy --- melting --- refining --- tapping --- modeling --- linear regression --- genetic programming --- renewables --- ancillary services --- hybrid systems --- thermal storage --- energy storage --- microgrids --- heat pump --- model predictive control --- optimization --- Biot number --- genetic algorithms --- drying --- air-cooled steam turbine generator --- single-channel ventilation --- backflow --- radial ventilation duct --- fluid field --- ground source heat pump --- numerical and experimental studies --- ground-air heat exchanger --- geothermal energy --- computational fluid dynamics --- spirally corrugated pipe

Sustainable Utilization of Metals: Processing, Recovery and Recycling

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ISBN: 9783039288854 / 9783039288861 Year: Pages: 388 DOI: 10.3390/books978-3-03928-886-1 Language: eng
Publisher: MDPI - Multidisciplinary Digital Publishing Institute
Subject: Technology (General) --- Economics
Added to DOAB on : 2020-06-09 16:38:57
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The high demand for advanced metallic materials raises the need for an extensive recycling of metals and such a sustainable use of raw materials. ""Sustainable Utilization of Metals - Processing, Recovery and Recycling"" comprises the latest scientific achievements in efficient production of metals and such addresses sustainable resource use as part of the circular economy strategy. This policy drives the present contributions, aiming on the recirculation of EoL-streams such as Waste Electric and Electronic Equipment (WEEE), multi-metal alloys or composite materials back into metal production. This needs a holistic approach, resulting in the maximal avoidance of waste. Considering both aspects, circular economy and material design, recovery and use of minor metals play an essential role, since their importance for technological applications often goes along with a lack of supply on the world market. Additionally, their ignoble character and low concentration in recycling materials cause an insufficient recycling rate of these metals, awarding them the status of “critical metals”. In order to minimize losses and energy consumption, this issue explores concepts for the optimization concerning the interface between mechanical and thermal pre-treatment and metallurgical processes. Such new approaches in material design, structural engineering and substitution are provided in the chapters.

Keywords

laterites --- scandium --- leaching --- precipitation --- solvent extraction --- manganese --- Zinc --- electrolytic lodes and scrapings --- electrolytic manganese --- metallurgy --- hydrometallurgy --- recycling --- sustainable development --- recycling --- spent catalysts --- zinc --- copper --- Bayan Obo --- REE–Nb–Fe ore --- carbothermal reduction --- kinetics --- NMC batteries --- recycling --- leaching --- solvent extraction --- selective precipitation --- hydrometallurgy --- Bayer process --- trace elements --- vanadium --- gallium --- rare earth elements --- lanthanum --- yttrium --- scandium --- karst bauxite --- bauxite residue --- red mud --- indium --- silver --- jarosite --- recycling --- industrial residue --- process development --- selective extraction --- simultaneous recovery --- pyrometallurgy --- lifetime of steel --- steel scrap --- circulation --- industry sector --- dynamic material flow model --- recycling rate --- material flow analysis --- gold --- copper --- WPCBs --- leaching --- physical separation --- Tin recovery --- steelmaking dust --- zinc recycling --- alkaline leaching --- electric arc furnace --- Li-ion battery --- recycling --- pyrolysis --- microwave assisted pyrolysis --- battery pre-treatment --- super-gravity --- rheorefining --- aluminum alloy --- tramp element --- separation --- jarosite residue --- pyrometallurgy --- circular economy --- slag valorization --- metal recovery --- closed-loop circulation --- environmentally friendly process --- enrichment of Ti --- preparation for recovery --- reduction of Co --- precipitation --- thermal treatment --- hydrometallurgy --- recycling --- cold-bonded briquettes --- blast furnace --- desulfurization --- basic oxygen furnace --- dust --- sludge --- fines --- scandium --- anti-solvent crystallization --- solvent extraction --- precipitation --- ammonium scandium hexafluoride --- chemical equilibrium diagram --- aluminium purification --- iron removal --- intermetallic formation --- polythermal section --- cerium --- flotation --- glass polishing waste --- gravity separation --- leaching --- precipitation --- rare-earths --- recycling --- reuse --- solvent extraction --- neodymium --- dimethyl sulfoxide --- electrodeposition --- bauxite residue --- red mud --- ionic liquids --- scandium recovery --- titanium recovery --- NdFeB magnets --- rare earth elements --- recycling --- recycling potential --- neodymium --- dysprosium --- WPCB --- melting behavior --- flash smelting --- cementation --- copper removal --- cavitation --- pyrolysis --- smartphone --- displays --- halogenation --- indium --- volatilization --- thermodynamics --- recycling --- magnesium --- refining --- recycling --- ultra-high purity --- vacuum distillation --- condensation --- oxygen-depolarized cathodes --- silver leaching --- cryogenic pre-treatment --- negative activation energy --- polishing waste --- rare earths --- waste utilization --- characterization --- leaching --- n/a

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eng (1)

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2020 (2)