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Ceramic Sector Focusing on Waste Heat Recovery

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Ceramic Sector Focusing on Waste Heat Recovery ( ceramic-sector-focusing-waste-heat-recovery )

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Energies 2020, 13, 6096 21 of 24 101. Ros-Dosdá,T.;Fullana-i-Palmer,P.;Mezquita,A.;Masoni,P.;Monfort,E.HowcantheEuropeanceramic tile industry meet the EU’s low-carbon targets? A life cycle perspective. J. Clean. Prod. 2018, 199, 554–564. [CrossRef] 102. Rentz,O.;Schmittinger,A.;Jochum,R.;Schultmann,F.ExemplaryInvestigationintotheStateofPractical Realisation of Integrated Environmental Protection within the Ceramics Industry under Observance of the IPPC-Directive and the Development of BAT Reference Documents. Fr. Ger. Inst. Environ. 2001, 44–52. 103. Bhamu,J.;Sangwan,K.S.ReductionofPost-kilnRejectionsforimprovingSustainabilityinCeramicIndustry: A Case Study. Procedia Cirp 2015, 26, 618–623. [CrossRef] 104. Mezquita,A.;Monfort,E.;Ferrera,S.;Gabaldón-Estevan,D.Howtoreduceenergyandwaterconsumption in the preparation of raw materials for ceramic tile manufacturing: Dry versus wet route. J. Clean. Prod. 2017, 168, 1566–1570. [CrossRef] 105. Agnani,E.;Cavazutti,M.;Corticelli,M.A.Optimizationofrecuperativeburnersforindustrialkilnsthrough CFD simulation. In Proceedings of the ASME-ATI-UIT 2015 Conference on Thermal Energy Systems: Production, Storage, Utilization and the Environment, Napoli, Italy, 17–20 May 2015. 106. Borrell,A.;Salvador,M.D.AdvancedCeramicMaterialsSinteredbyMicrowaveTechnology.Sinter.Technol. Method Appl. 2018, 3–24. 107. Stubbing,T.Airlessdrying:Aquietrevolution.Glob.Ceram.Rev.1995,95,17–18. 108. Delpech,B.;Milani,M.;Montorsi,L.;Boscardin,D.;Chauhan,A.;Almahmoud,S.;Axcell,B.;Jouhara,H. Energy efficiency enhancement and waste heat recovery in industrial processes by means of the heat pipe technology: Case of the ceramic industry. Energy 2018, 158, 656–665. [CrossRef] 109. Delpech,B.;Axcell,B.;Jouhara,H.Experimentalinvestigationofaradiativeheatpipeforwasteheatrecovery in a ceramics kiln. Energy 2019, 170, 636–651. [CrossRef] 110. Mohammadi, A.M. Renewable Energy from Thermal: Electrical Power Generation in Ceramic and Tile Industry. Innov. Ener. Res. 2018, 7. [CrossRef] 111. Cruz, J.A.F. Optimização Energética dos Fornos de Uma Indústria do Setor Cerâmico; Instituto Superior de Engenharia do Porto: Porto, Lisbon, 2009. 112. Kaya, S.; Mançuhan, E.; Küçükada, K. Modelling and optimization of the firing zone of a tunnel kiln to predict the optimal feed locations and mass fluxes of the fuel and secondary air. Appl. Energy 2009, 86, 325–332. [CrossRef] 113. Refaey,H.A.;Abdel-Aziz,A.A.;Ali,R.K.;Abdelrahman,H.E.;Salem,M.R.Augmentationofconvectiveheat transfer in the cooling zone of brick tunnel kiln using guide vanes: An experimental study. Int. J. Sci. 2017, 122, 172–185. [CrossRef] 114. Kaya,S.;Küçükada,K.;Mançuhan,E.Model-basedoptimizationofheatrecoveryinthecoolingzoneofa tunnel kiln. Appl. Eng. 2008, 28, 633–641. [CrossRef] 115. TuaamahAl-Hasnawi,A.G.;Qayyum,A.;Specht,E.FlowMixingintheGapbetweentheCarsinTunnel Kilns. Energy Procedia 2017, 120, 635–642. [CrossRef] 116. Montorsi,I.;Milani,M.;Stefani,M.;Terzi,S.Numericalanalysisoftheexhaustgasesrecoveryfromaturbine CHP unit to improve the energy efficiency of a ceramic kiln. Therm. Sci. Eng. Prog. 2018, 5, 444–453. [CrossRef] 117. Monteiro,H.;Cruz,P.L.;Oliveira,M.C.;Iten,M.Technicalandeconomicalassessmentofwasteheatrecovery on a ceramic industry. Wastes: Solutions, Treatments and Opportunities III. In Proceedings of the 5th International Conference Wastes, Lisbon, Portugal, 4–6 September 2019. 118. Milani, M.; Montorsi, L.; Stefani, M.; Saponelli, R.; Lizzano, M. Numerical analysis of an entire ceramic kiln under actual operating conditions for the energy efficiency improvement. J. Env. Manag. 2017, 203, 1026–1037. [CrossRef] [PubMed] 119. Ribesse,S.;Lybaert,P.;Meunier,H.Numericalsimulationofgas-firedtunnelkilnsfortheceramicindustry,a tool for optimization. Proc. Eur. Appl. Res. Conf. Nat. Gas 1999, 438, 275–278. 120. Li, H.; Yang, H.; Yang, B.; Zhu, C.; Yin, S. Modelling and simulation of energy consumption of ceramic production chains with mixed flows using hybrid petri nets. Int. J. Prod. Res. 2018, 56, 3007–3024. [CrossRef] 121. Navalertporn, T.; Afzulpurkar, N.V. Optimization of tile manufacturing process using particle swarm optimization. Swarm Evol. Comput. 2011, 1, 97–109. [CrossRef] 122. Caglayan,H.;Caliskan,H.Investigationoftheenergyrecoveryintheburnersoftheceramicfactorykiln. Energy Procedia 2018, 144, 118–124. [CrossRef]

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