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The role of district heating in future renewable energy systems. (2010). Dyrelund, A. ; Mathiesen, B. V. ; Moller, B..
In: Energy.
RePEc:eee:energy:v:35:y:2010:i:3:p:1381-1390.

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  2. The role of solar district heat in the energy transition of the German heating sector. (2024). Ragwitz, Mario ; Fleiter, Tobias ; Popovski, Eftim.
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  3. Use of a low-cost phase change material emulsion in de-centralized thermal energy storage for district heating network enlargement. (2024). Verda, Vittorio ; Delgado, Monica ; Marin, Jose Maria ; Rinaldi, Giulia ; Lazaro, Ana.
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  4. Role of power-to-heat and thermal energy storage in decarbonization of district heating. (2024). Sihvonen, Ville ; Honkapuro, Samuli ; Riikonen, Juhani ; Jaanto, Jasmin ; Ollila, Iisa ; Price, Alisdair ; Gronman, Aki.
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  5. Leakage detection method of underground heating pipeline based on improved wavelet threshold function. (2024). Mu, Lianbo ; Li, Cheng ; Xu, Ziqiang ; Lan, Yuncheng ; Lu, Junhui ; Wang, Suilin.
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  6. District heating load patterns and short-term forecasting for buildings and city level. (2024). Xie, Zichan ; Wang, Haichao ; Hua, Pengmin ; Lahdelma, Risto.
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  7. Exploring the location and use of baseload district heating supply. What can current heat sources tell us about future opportunities?. (2024). Sorknas, Peter ; Nielsen, Steffen ; Moreno, Diana ; Mathiesen, Brian Vad ; Thellufsen, Jakob Zinck ; Lund, Henrik.
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  8. Assessing district heating potential at large scale: Presentation and application of a spatially-detailed model to optimally match heat sources and demands.. (2024). Persson, U ; Motta, M ; Spirito, G ; Muliere, G ; Fattori, F ; Denarie, A.
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  9. Sparse dynamic graph learning for district heat load forecasting. (2024). Wang, Zhijin ; Zhao, Yuan ; Fu, Yonggang ; Huang, Yaohui ; Liu, Xiufeng.
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  10. Innovative approaches for deep decarbonization of data centers and building space heating networks: Modeling and comparison of novel waste heat recovery systems for liquid cooling systems. (2024). Valisuo, Petri ; Lu, Xiaoshu ; Clements-Croome, Derek ; Zhang, Qunli.
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  11. The decarbonization pathway of power system by high-resolution model under different policy scenarios in China. (2024). Wang, BO ; Li, Jingyun ; Zheng, Yufeng ; Zhang, Bin ; Zhou, Zixuan ; Xu, Shuling ; Lu, Bin ; Hui, Ng Szu.
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  12. Design of a 5th Generation District Heating Substation Prototype for a Real Case Study. (2023). Pilotelli, Mariagrazia ; Lezzi, Adriano Maria ; Pasinelli, Daniele ; Martinazzoli, Gianni.
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  13. Grouped Charging of Decentralised Storage to Efficiently Control Collective Heating Systems: Limitations and Opportunities. (2023). Verhaert, Ivan ; Hellinckx, Peter ; Huybrechts, Thomas ; Ghane, Sara ; van Minnebruggen, Senne ; de Pauw, Margot ; Jacobs, Stef.
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  14. Optimal SOFC-CHP Installation Planning and Operation Model Considering Geographic Characteristics of Energy Supply Infrastructure. (2023). Akisawa, Atsushi ; Yamamoto, Hiromi ; Owaku, Takashi.
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  15. Review of heating and cooling technologies for buildings: A techno-economic case study of eleven European countries. (2023). Callegher, Claudio Zandonella ; Mitterrutzner, Benjamin ; Pezzutto, Simon ; Wilczynski, Eric ; Fraboni, Riccardo.
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  16. Synergies of electrical and sectoral integration: Analysing geographical multi-node scenarios with sector coupling variations for a transition towards a fully renewables-based energy system. (2023). Haas, Jannik ; Odai, Theophilus Nii ; Ghorbani, Narges ; Caldera, Upeksha ; Bogdanov, Dmitrii ; Aghahosseini, Arman ; Osorio-Aravena, Juan Carlos ; Breyer, Christian ; Muoz-Ceron, Emilio.
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  17. A data-driven method for heat loss estimation from district heating service pipes using heat meter- and GIS data. (2023). Nielsen, Brian Kongsgaard ; Bentsen, Fredrik ; Ostergaard, Peter Friis ; Fester, Jakob.
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  18. Fault and anomaly detection in district heating substations: A survey on methodology and data sets. (2023). Schmidt, Jochen ; Bucker, Dominikus ; Maier, Andreas ; Grimm, Sebastian ; Stecher, Dominik ; Neumayer, Martin.
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  19. Reducing heat losses from aging district heating pipes by using cured-in-place pipe liners. (2023). Wang, Rui ; Cao, Guoquan ; Fu, Lisong ; Zhang, Shujie ; Jing, Mengke.
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  20. A new quasi-dynamic load flow calculation for district heating networks. (2023). Kienberger, Thomas ; Greiml, Matthias ; Wallner, Stefan ; Steinegger, Josef.
    In: Energy.
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  21. Sustainable deployment of energy efficient district heating: city business model. (2023). Mendoza, Nora ; Blanco, Ana ; Pardo-Bosch, Francesc ; Pujadas, Pablo ; Tejedor, Blanca ; Libreros, Bibiana.
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  22. District heating as a flexibility service: Challenges in sector coupling for increased solar and wind power production in Sweden. (2023). Svensson, Inger-Lise ; Toren, Johan ; Broberg, Sarah ; Fernqvist, Niklas.
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  23. Toward transactive control of coupled electric power and district heating networks. (2023). Bhattacharya, Kankar ; Krebs, Stefan ; Tschuch, Nicolai ; Maurer, Jona ; Hohmann, Soren ; Caizares, Claudio.
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  24. Industrial excess heat and residential heating: Potentials and costs based on different heat transport technologies. (2022). Werner, Dorian ; Fritz, Markus.
    In: Working Papers Sustainability and Innovation.
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  25. The Human’s Comfort Mystery—Supporting Energy Transition with Light-Color Dimmable Room Lighting. (2022). Wiethe, Christian ; Wenninger, Simon.
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  26. Optimal Sharing Electricity and Thermal Energy Integration for an Energy Community in the Perspective of 100% RES Scenario. (2022). Casisi, Melchiorre ; Nadalon, Emanuele ; de Souza, Ronelly ; Reini, Mauro.
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  27. Analyzing Intersectoral Benefits of District Heating in an Integrated Generation and Transmission Expansion Planning Model. (2022). Schumann, Klemens ; Bottcher, Luis ; Schwaeppe, Henrik ; Moser, Albert ; Lozano, Paula Baquero ; Thams, Simon ; Halsig, Philipp ; Hein, Lukas.
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  29. Integration of Heat Pumps in Buildings and District Heating Systems—Evaluation on a Building and Energy System Level. (2022). Dermentzis, Georgios ; Magni, Mara ; Ochs, Fabian.
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  30. Sustainable Systems for the Production of District Heating Using Meat-Bone Meal as Biofuel: A Polish Case Study. (2022). Makara, Agnieszka ; Kowalski, Zygmunt.
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  31. A technical and economical comparison of excess heat transport technologies. (2022). Plotz, P ; Fritz, M ; Schebek, L.
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  33. Integration of flexibility potentials of district heating systems into electricity markets: A review. (2022). Hasrat, Imran Riaz ; Jensen, Peter Gjol ; Larsen, Kim Guldstrand ; Golmohamadi, Hessam.
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  34. Something is sustainable in the state of Denmark: A review of the Danish district heating sector. (2022). Werner, Sven ; Johansen, Katinka.
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  35. Reviewing two decades of energy system analysis with bibliometrics. (2022). D'Andrea, M ; Scheller, F ; Weinand, J M ; Dominkovi, D F ; McKenna, R.
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  36. Estimation of shallow geothermal potential to meet building heating demand on a regional scale. (2022). Krecher, Marc ; Miocic, Johannes M.
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  39. Biomass district heating system in Italy: A comprehensive model-based method for the assessment of energy, economic and environmental performance. (2022). Caputo, P ; Ferla, G.
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  41. Power transformers as excess heat sources – a case study for Denmark. (2022). McKenna, Russell ; Radoman, Uro ; Buhler, Fabian ; Petrovi, Stefan.
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  42. Optimizing pipe network design and central plant positioning of district heating and cooling System: A Graph-Based Multi-Objective genetic algorithm approach. (2022). On, Chi ; Nie, Ting ; Su, Lingqi ; Schwegler, Ben ; Jain, Rishee K ; Calvez, Philippe ; Yang, Zheng.
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  47. A New Modeling Approach for Low-Carbon District Energy System Planning. (2021). Rasoulian, Hadise ; Samadzadegan, Bahador ; Rezaei, Abolfazl ; Eicker, Ursula ; Sanei, Azin ; Abolhassani, Soroush Samareh ; Ranjbar, Saeed.
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  48. An Overview on Functional Integration of Hybrid Renewable Energy Systems in Multi-Energy Buildings. (2021). Russo, Mario ; di Fazio, Anna Rita ; Canale, Laura ; Dellisola, Marco ; Frattolillo, Andrea.
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  49. Exploring the Long-Term Development of the Ukrainian Energy System. (2021). Podolets, Roman ; Diachuk, Oleksandr ; Petrovi, Stefan N ; Balyk, Olexandr ; Boucenna, Mourad ; Grandal, Rune ; Buhler, Fabian ; Semeniuk, Andrii.
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  50. Evaluation of Integrated Concepts with CO 2 for Heating, Cooling and Hot Water Production. (2021). Hafner, Armin ; Pardias, Angel ; Smitt, Silje.
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  52. Residential net-zero energy buildings: Review and perspective. (2021). Skye, Harrison M ; Wei, WU.
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  53. Identifying key locations for shallow geothermal use in Vienna. (2021). Blum, Philipp ; Gotzl, Gregor ; Steiner, Cornelia ; Bayer, Peter ; Benz, Susanne A ; Menberg, Kathrin ; Tissen, Carolin.
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  54. Design and game-Theoretic analysis of community-Based market mechanisms in heat and electricity systems. (2021). Pinson, Pierre ; Kazempour, Jalal ; Mitridati, Lesia.
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  55. Optimal clean heating mode of the integrated electricity and heat energy system considering the comprehensive energy-carbon price. (2021). Du, Xiaoze ; Zhang, Fuxiang ; Ge, Zhihua ; Hao, Junhong.
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  56. Uncertainty-fully-aware coordinated dispatch of integrated electricity and heat system. (2021). Wu, Qiuwei ; Skalyga, Mikhail ; Zhang, Menglin.
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  57. Data informed physical models for district heating grids with distributed heat sources to understand thermal and hydraulic aspects. (2021). Borchiellini, Romano ; Verda, Vittorio ; Tereshchenko, Tymofii ; Shakerin, Mohammad ; Nord, Natasa.
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  58. Energy, economic, and environmental analysis of integration of thermal energy storage into district heating systems using waste heat from data centres. (2021). Hou, Juan ; Li, Haoran ; Nord, Natasa ; Ding, Yuemin ; Hong, Tianzhen.
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  59. Solar energy for sustainable heating and cooling energy system planning in arid climates. (2021). Shadi, Mehdi ; Khaledi, Arian ; Ansaripour, Shiva ; Golshanfard, Aminabbas ; Noorollahi, Younes.
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  60. Analysis and evaluation of the operation data for achieving an on-demand heating consumption prediction model of district heating substation. (2021). Lu, Shilei ; Wang, Chendong ; Han, Zhao ; Huang, KE ; Zhou, Zhihua ; Yuan, Jianjuan.
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  61. Joint and conditional dependence modelling of peak district heating demand and outdoor temperature: a copula-based approach. (2020). Di Lascio, F. Marta L. ; Righetti, Maurizio ; Menapace, Andrea ; Marta, F.
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  62. The Climate, Land, Energy, Water and Food Nexus Challenge in a Land Scarce Country: Innovations in the Netherlands. (2020). Linderhof, Vincent ; Polman, Nico ; Ramos, Eunice Pereira ; de Mesquita, Duarte ; Fokkinga, Dennis ; Laspidou, Chrysi.
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  63. Unified Energy Agents for Combined District Heating and Electrical Network Simulation. (2020). Mehlich, Jan ; Thommessen, Christian ; Loose, Nils ; Eicker, Stefan ; Derksen, Christian.
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  64. Willingness-to-Pay for District Heating from Renewables of Private Households in Germany. (2020). Grimm, Sebastian ; Profeta, Adriano ; Krikser, Thomas ; Huther, Heiko .
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  65. Classification of Measures for Dealing with District Heating Load Variations—A Systematic Review. (2020). Ili, Danica Djuri.
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  68. Reviewing Municipal Energy System Planning in a Bibliometric Analysis: Evolution of the Research Field between 1991 and 2019. (2020). Weinand, Jann Michael.
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  69. The Use of a Heat Pump in a Ventilation Unit as an Economical and Ecological Source of Heat for the Ventilation System of an Indoor Swimming Pool Facility. (2020). Szczechowiak, Edward ; Ratajczak, Katarzyna.
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  70. Electricity Generation from Renewable Energy Sources in Poland as a Part of Commitment to the Polish and EU Energy Policy. (2020). Terlikowski, Pawe ; Surma, Tomasz ; Paska, Jozef ; Zagrajek, Krzysztof.
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  71. Impact of wind penetration in electricity markets on optimal power-to-heat capacities in a local district heating system. (2020). Dui, Neven ; Pukec, Tomislav ; Ban, Marko ; Doroti, Hrvoje.
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  72. Smart energy cities in a 100% renewable energy context. (2020). Nielsen, Steen ; Sperling, K ; Djorup, S R ; Drysdale, D ; Chang, M ; Ostergaard, P A ; Sorknas, P ; Lund, H ; Thellufsen, J Z.
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  73. Mathematical modeling of multi-region premixed combustion of moist bamboo particles. (2020). Maghsoudi, Peyman ; Kaabinejadian, Amirreza ; Xu, Fei ; Bidabadi, Mehdi ; Sadeghi, Sadegh ; Homayounpour, Mohammad Mehdi.
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  74. The benefits of 4th generation district heating in a 100% renewable energy system. (2020). Sperling, Karl ; Djorup, Soren ; Nielsen, Steffen ; Lund, Henrik ; Thellufsen, Jakob Zinck ; Ostergaard, Poul Alberg ; Sorknas, Peter.
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  75. Impact of network modelling in the analysis of district heating systems. (2020). Guelpa, Elisa.
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  76. Increasing the integration of variable renewable energy in coal-based energy system using power to heat technologies: The case of Kosovo. (2020). Lund, Henrik ; Dui, Neven ; Pfeifer, Antun ; Meha, Drilon.
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  77. A renewable energy scenario for a new low carbon settlement in northern Italy: Biomass district heating coupled with heat pump and solar photovoltaic system. (2020). Ferla, Giulio ; del Pero, Claudio ; Caputo, Paola ; Aste, Niccolo ; Miglioli, Alessandro ; Leonforte, Fabrizio ; Huerto-Cardenas, Harold Enrique.
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  78. Reviewing energy system modelling of decentralized energy autonomy. (2020). McKenna, Russell ; Scheller, Fabian ; Weinand, Jann Michael.
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  79. Potential of integrating industrial waste heat and solar thermal energy into district heating networks in Germany. (2020). Holler, Stefan ; Stelter, Friederike ; Pelda, Johannes.
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  80. Multi-criteria comprehensive study on predictive algorithm of heating energy consumption of district heating station based on timeseries processing. (2020). Gao, Feng ; Zhou, Zhihua ; Deng, NA ; Zhang, JI ; Yuan, Jianjuan ; Wang, Chendong.
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  81. The effect of different parameters of the excess heat source on the levelized cost of excess heat. (2020). Dui, Neven ; Schneider, Daniel Rolph ; Pukec, Tomislav ; Dorai, Borna.
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  82. An iterative approach for optimal decarbonization of electricity and heat supply systems in the Great Britain. (2020). Raahemifar, Kaamran ; Fowler, Michael ; Jenkins, Nick ; Wu, Jianzhong ; Qadrdan, Meysam ; Haghi, Ehsan.
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  83. Designing the Heat Merit Order to determine the value of industrial waste heat for district heating systems. (2020). Rodin, Valerie ; Puschnigg, Stefan ; Moser, Simon.
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  84. Identification heat user behavior for improving the accuracy of heating load prediction model based on wireless on-off control system. (2020). Sheng, Ying ; Zhang, JI ; Lu, Shilei ; Wang, Chendong ; Tang, Huajie ; Zhou, Zhihua ; Yuan, Jianjuan.
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  85. Solar power or solar heat: What will upraise the efficiency of district heating? Multi-criteria analyses approach. (2020). Blumberga, Dagnija ; Pakere, Ieva.
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  86. Model reduction for Model Predictive Control of district and communal heating systems within cooperative energy systems. (2020). Shah, Nilay ; Odwyer, Edward ; Lyons, Ben.
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  87. Electrification of transport and residential heating sectors in support of renewable penetration: Scenarios for the Italian energy system. (2020). Manno, Michele ; Bellocchi, Sara ; Vellini, Michela ; Prina, Matteo Giacomo ; Noussan, Michel.
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  88. A holistic view on sector coupling. (2020). Schopf, Michael ; Korner, Marc-Fabian ; Keller, Robert ; Fridgen, Gilbert.
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  89. Heat demand in the Swedish residential building stock - pathways on demand reduction potential based on socio-technical analysis. (2020). Nykvist, Bjorn ; Savvidou, Georgia.
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  90. Hot transformations: Governing rapid and deep household heating transitions in China, Denmark, Finland and the United Kingdom. (2020). Martiskainen, Mari ; Sovacool, Benjamin K.
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  91. Heat and electricity market coordination: A scalable complementarity approach. (2020). Pinson, Pierre ; Kazempour, Jalal ; Mitridati, Lesia.
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  92. Modelling of national and local interactions between heat and electricity networks in low-carbon energy systems. (2020). Strbac, Goran ; Kuriyan, Kamal ; Pantaleo, Antonio Marco ; Aunedi, Marko ; Shah, Nilay.
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  93. Coupling the heating and power sectors: The role of centralised combined heat and power plants and district heat in a European decarbonised power system. (2020). Quoilin, Sylvain ; Pavievi, Matija ; Filippidou, Faidra ; Kavvadias, Konstantinos ; Jimenez-Navarro, Juan-Pablo.
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  94. Modeling of combined heat and power generation in the context of increasing renewable energy penetration. (2020). Bloess, Andreas.
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  95. Spatially-resolved urban energy systems model to study decarbonisation pathways for energy services in cities. (2020). Hawkes, Adam D ; Kerdan, Ivan Garcia ; Jalil-Vega, Francisca.
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  96. 5th Generation District Heating: A novel design approach based on mathematical optimization. (2020). Muller, Dirk ; Remmen, Peter ; Kivilip, Lukas ; Wirtz, Marco.
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  97. Automatic fouling detection in district heating substations: Methodology and tests. (2020). Guelpa, Elisa ; Verda, Vittorio.
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  98. STRATEGIC OPTIONS FOR THE DEVELOPMENT OF RENEWABLE ENERGY IN THE CONTEXT OF GLOBALIZATION. (2019). Andrei, Ovidiu Cristian ; Burlacu, Sorin ; Popescu, Maria-Loredana ; Diaconu, Amelia.
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  99. Cost-Effective Options for the Renovation of an Existing Education Building toward the Nearly Net-Zero Energy Goal—Life-Cycle Cost Analysis. (2019). Hu, Ming.
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  100. Interactive Buildings: A Review. (2019). Henze, Gregor P ; Fallahi, Zahra.
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  101. Optimized Design of the District Heating System by Considering the Techno-Economic Aspects and Future Weather Projection. (2019). Hakkaki-Fard, Ali ; Pour, Mohsen Saffari ; Kavian, Soheil.
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  102. Optimization and Multicriteria Evaluation of Carbon-neutral Technologies for District Heating. (2019). Capozzoli, Alfonso ; Abdollahi, Elnaz ; Pinto, Giuseppe ; Lahdelma, Risto ; Savoldi, Laura.
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  103. Autonomous Controller for Flexible Operation of Heat Pumps in Low-Voltage Distribution Network. (2019). Pillai, Jayakrishnan Radhakrishna ; Bak-Jensen, Birgitte ; Sinha, Rakesh.
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  104. An Influencing Parameters Analysis of District Heating Network Time Delays Based on the CFD Method. (2019). Shan, YU ; Zhao, Jing.
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  105. Modelling Influential Factors of Consumption in Buildings Connected to District Heating Systems. (2019). Maljkovic, Danica.
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  106. Sector Coupling in the North Sea Region—A Review on the Energy System Modelling Perspective. (2019). Islam, Md Nasimul.
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  107. Flexible Carbon Capture and Utilization technologies in future energy systems and the utilization pathways of captured CO2. (2019). Dominkovi, Dominik Franjo ; Skov, Iva Ridjan ; Mikuli, Hrvoje ; Wang, Xuebin ; Hidayah, Siti Nur ; Dui, Neven ; Tan, Raymond ; Manan, Zainuddin Abdul.
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  108. District cooling system via renewable energy sources: A review. (2019). Raza, Mohsin ; Inayat, Abrar.
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  109. Effects of solar field design on the energy, environmental and economic performance of a solar district heating network serving Italian residential and school buildings. (2019). Ciampi, Giovanni ; Ciervo, Antonio ; Rosato, Antonio ; Sibilio, Sergio.
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  110. Balancing Europe: Can district heating affect the flexibility potential of Norwegian hydropower resources?. (2019). Bozhkova, Kristina N ; Askeland, Kristine ; Sorknas, Peter.
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  111. Integration of a magnetocaloric heat pump in an energy flexible residential building. (2019). Veje, Christian ; Heiselberg, Per ; Filonenko, Konstantin ; Johra, Hicham ; Bahl, Christian ; Engelbrecht, Kurt ; Dallolio, Stefano.
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  112. Energy efficiency analysis of distillation for thermally regenerative salinity gradient power technologies. (2019). Yip, Ngai Yin ; la Mantia, Fabio ; Lamantia, Fabio ; Brogioli, Doriano .
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  113. Roadmap towards clean heating in 2035: Case study of inner Mongolia, China. (2019). Jiang, YI ; Zuo, Hetao ; Fang, Hao ; Xia, Jianjun ; Zhang, Yichi.
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  114. Multi-step ahead forecasting of heat load in district heating systems using machine learning algorithms. (2019). Liu, Jing ; Fang, Xiumu ; Chen, Xin ; Zhou, Zhigang ; Jiang, YI ; Xue, Puning.
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  115. Modelling and flexible predictive control of buildings space-heating demand in district heating systems. (2019). Sandou, Guillaume ; Aurousseau, Antoine ; Vallee, Mathieu ; Baviere, Roland ; Aoun, Nadine.
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  116. Thermo-fluid dynamic model of large district heating networks for the analysis of primary energy savings. (2019). Verda, Vittorio ; Sciacovelli, Adriano ; Guelpa, Elisa.
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  117. Thermal Transients in District Heating Systems. (2019). Novitsky, Nikolai N ; Chertkov, Michael .
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  118. Coal or electricity? An evolutionary game approach to investigate fuel choices of urban heat supply systems. (2019). Mei, Shengwei ; Chen, Laijun ; Fang, Yujuan ; Liu, Feng ; Huang, Shaowei ; Wei, Wei.
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  119. The role and costs of large-scale heat pumps in decarbonising existing district heating networks – A case study for the city of Herten in Germany. (2019). Aydemir, Ali ; Popovski, Eftim ; Steinbach, Jan ; Buchele, Richard ; Bellstadt, Daniel ; Fleiter, Tobias.
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  120. A framework for assessing the technical and economic potential of shallow geothermal energy in individual and district heating systems: A case study of Slovenia. (2019). Stanii, D ; Stegnar, Gaper ; Mere, S ; Urbani, A ; Prestor, J ; Pestotnik, S ; Iman, J ; Esen, M.
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  121. Network constrained economic dispatch of integrated heat and electricity systems through mixed integer conic programming. (2019). Tang, Weichu ; HUANG, SHAOJUN ; Li, Canbing ; Wu, Qiuwei.
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  122. Cost efficiency of district heating for low energy buildings of the future. (2019). Gudmundsson, O ; Hansen, C H ; Detlefsen, N.
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  123. Optimisation and analysis of system integration between electric vehicles and UK decentralised energy schemes. (2019). Proeglhoef, Rafael ; Chakrabarti, Auyon ; Shah, Nilay ; Markides, Christos N ; Acha, Salvador ; Mariaud, Arthur ; Lambert, Romain ; Turu, Gonzalo Bustos.
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  124. Thermal load prediction in district heating systems. (2019). Marincioni, Ludovica ; Guelpa, Elisa ; Verda, Vittorio ; Deputato, Stefania ; Capone, Martina.
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  125. Compact physical model for simulation of thermal networks. (2019). Verda, Vittorio ; Guelpa, Elisa.
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  126. Evaluation of environmental and energy effects of biomass district heating by a wide survey based on operational conditions in Italy. (2019). Ferrari, Simone ; Ferla, Giulio ; Caputo, Paola.
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  127. Towards 4th generation district heating: Prediction of building thermal load for optimal management. (2019). Verda, Vittorio ; Marincioni, Ludovica ; Guelpa, Elisa.
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  128. Gas and electricity supply implications of decarbonising heat sector in GB. (2019). Sansom, Robert ; Strbac, Goran ; Jenkins, Nick ; Fazeli, Reza ; Qadrdan, Meysam .
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  129. Industrial excess heat recovery in district heating: Data assessment methodology and application to a real case study in Milano, Italy. (2019). Denarie, A ; Motta, M ; Calderoni, M ; Muschera, M.
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  130. A data-driven approach for discovering heat load patterns in district heating. (2019). Sant, Anita ; Nowaczyk, Sawomir ; Calikus, Ece ; Werner, Sven ; Gadd, Henrik .
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  131. Modeling framework for planning and operation of multi-modal energy systems in the case of Germany. (2019). Heger, H J ; Wyrwoll, L ; Paulus, S ; Hoffrichter, A ; Most, D ; Muller, C ; Kuppers, M ; Huber, M ; Duckheim, M ; Metzger, M ; Beulertz, D ; Kulms, T ; Trageser, M ; Schnettler, A ; Schmitt, C.
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  132. Estimation of renewable-based steam costs. (2019). Jimenez-Gutierrez, Arturo ; Martin, Mariano ; Perez-Uresti, Salvador I.
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  133. Two-Level Evolutionary Multi-objective Optimization of a District Heating System with Distributed Cogeneration. (2018). Pinamonti, Piero ; Costanzo, Stefano ; Casisi, Melchiorre ; Reini, Mauro.
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  134. Evaluation of Excess Heat Utilization in District Heating Systems by Implementing Levelized Cost of Excess Heat. (2018). Pukec, Tomislav ; Novosel, Tomislav ; Dorai, Borna ; Dui, Neven.
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  135. Energy Analysis of Cascade Heating with High Back-Pressure Large-Scale Steam Turbine. (2018). Sun, Shimeng ; Zhang, Fuxiang ; Ge, Zhihua ; Du, Xiaoze ; He, Jie.
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  136. Life Cycle Cost of Heat Supply to Areas with Detached Houses—A Comparison of District Heating and Heat Pumps from an Energy System Perspective. (2018). Dotzauer, Erik ; Myhren, Jonn Are ; Gustafsson, Moa Swing.
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  137. Energy Efficiency Analysis Carried Out by Installing District Heating on a University Campus. A Case Study in Spain. (2018). san Jose, Julio F ; Rey-Hernandez, Javier M ; Marina, Ana M ; Crespo, Raquel Mata.
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  138. A state of art review on the district heating systems. (2018). Mazhar, Abdur Rehman ; Shukla, Ashish ; Liu, Shuli.
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  139. The challenging paradigm of interrelated energy systems towards a more sustainable future. (2018). Ribeiro, L A ; Soares, N ; Ferreira, J P ; Bastos, J ; Pereira, G I ; Oliveira, G ; Rodrigues, E ; Castanheira, E ; Garcia, R ; Du, C ; Miguel, P ; Caldeira, C ; Ahovi, N ; Carvalho, A L ; Figueiredo, N C ; Martins, A G.
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  140. Advanced low-carbon energy measures based on thermal energy storage in buildings: A review. (2018). Lizana, Jesus ; Ortiz, Carlos ; Barrios-Padura, Angela ; Chacartegui, Ricardo.
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  141. Siting enhanced geothermal systems (EGS): Heat benefits versus induced seismicity risks from an investor and societal perspective. (2018). , Theresa ; Trutnevyte, Evelina.
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  142. The direct interconnection of the UK and Nordic power market – Impact on social welfare and renewable energy integration. (2018). Zakeri, Behnam ; Syri, Sanna ; Mathiesen, Brian Vad ; Keppo, Ilkka ; Zeyringer, Marianne ; Price, James.
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  143. Optimal planning of capacities and distribution of electric heater and heat storage for reduction of wind power curtailment in power systems. (2018). Gou, Xing ; Min, Yong ; Xu, Fei ; Qi, Jun ; Wang, Xiao-Hai ; Chen, Lei ; Ma, Huan ; Hu, Kang .
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  144. Improved thermal transient modeling with new 3-order numerical solution for a district heating network with consideration of the pipe walls thermal inertia. (2018). Wang, Hai ; Meng, Hua.
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  145. Heat Roadmap Europe: Identifying local heat demand and supply areas with a European thermal atlas. (2018). Moller, Bernd ; Connolly, David ; Grundahl, Lars ; Persson, Urban ; Wiechers, Eva.
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  146. Spatio-temporal optimization of a future energy system for power-to-hydrogen applications in Germany. (2018). Welder, Lara ; Stolten, Detlef ; Robinius, Martin ; Grube, Thomas ; Kotzur, Leander ; Ryberg, Severin D.
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  147. Solar power and heat production via photovoltaic thermal panels for district heating and industrial plant. (2018). Pakere, Ieva ; Blumberga, Dagnija ; Lauka, Dace .
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  148. Technical and economic feasibility of sustainable heating and cooling supply options in southern European municipalities-A case study for Matosinhos, Portugal. (2018). Popovski, Eftim ; Fernandes, Eduardo Oliveira ; Leal, Vitor ; Santos, Hugo ; Fleiter, Tobias .
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  149. Renewable heating strategies and their consequences for storage and grid infrastructures comparing a smart grid to a smart energy systems approach. (2018). Lund, Henrik.
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  150. Challenges and potentials for low-temperature district heating implementation in Norway. (2018). Nord, Natasa ; Tereshchenko, Tymofii ; Kauko, Hanne ; Love, Elise Kristine.
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  151. Spatiotemporal and economic analysis of industrial excess heat as a resource for district heating. (2018). Buhler, Fabian ; Elmegaard, Brian ; Karlsson, Kenneth ; Holm, Fridolin Muller ; Petrovi, Stefan.
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  152. Influence of the building shape on the energy performance of timber-glass buildings located in warm climatic regions. (2018). Premrov, Miroslav ; Leskovar, Vesna egarac ; Igart, Maja.
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  153. Multi-objective optimization algorithm coupled to EnergyPLAN software: The EPLANopt model. (2018). Prina, Matteo Giacomo ; Sparber, Wolfram ; Vaccaro, Roberto ; Pernetti, Roberta ; Oberegger, Ulrich Filippi ; Moser, David ; Manzolini, Giampaolo ; Garegnani, Giulia ; Cozzini, Marco .
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  154. A robust optimization approach for integrated community energy system in energy and ancillary service markets. (2018). Zhou, Yizhou ; Chen, Sheng ; Zang, Haixiang ; Cheung, Kwok W ; Sun, Guoqiang ; Wei, Zhinong.
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  155. Thermo-economic sensitivity analysis by dynamic simulations of a small Italian solar district heating system with a seasonal borehole thermal energy storage. (2018). Ciampi, Giovanni ; Sibilio, Sergio ; Rosato, Antonio.
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  156. Energy flexible building through smart demand-side management and latent heat storage. (2018). Lizana, Jesus ; Chacartegui, Ricardo ; Renaldi, Renaldi ; Friedrich, Daniel.
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  157. Thermal request optimization in district heating networks using a clustering approach. (2018). Guelpa, Elisa ; Verda, Vittorio ; Deputato, Stefania.
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  158. Housing stock in cold-climate countries: Conversion challenges for net zero emission buildings. (2018). Asaee, Rasoul S ; Merida, Walter ; Blomerus, Paul ; Herrera, Omar E ; Sharafian, Amir.
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  159. Environmental and economic assessment of borehole thermal energy storage in district heating systems. (2018). Welsch, Bastian ; Schebek, Liselotte ; Sass, Ingo ; Bar, Kristian ; Schulte, Daniel O ; Gollner-Volker, Laura.
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  160. Power-to-heat for renewable energy integration: A review of technologies, modeling approaches, and flexibility potentials. (2018). Zerrahn, Alexander ; Schill, Wolf-Peter ; Bloess, Andreas .
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  161. A greenhouse gas abatement framework for investment in district heating. (2018). Bjornebo, Lars ; Gurian, Patrick L ; Spatari, Sabrina.
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  162. Spatially resolved model for studying decarbonisation pathways for heat supply and infrastructure trade-offs. (2018). Jalil-Vega, F ; Hawkes, A D.
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  163. Modelling support policies and renewable energy sources deployment in the Hungarian district heating sector. (2017). .
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  164. Water-Thermal Energy Production System: A Case Study from Norway. (2017). Rethun, Torbjorn ; Idso, Johannes.
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  165. Linking the Power and Transport Sectors—Part 1: The Principle of Sector Coupling. (2017). Heuser, Philipp ; Otto, Alexander ; Robinius, Martin ; Stolten, Detlef ; Peters, Ralf ; Markewitz, Peter ; Grube, Thomas ; Ryberg, David S ; Syranidis, Konstantinos ; Welder, Lara.
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  166. Simulation versus Optimisation: Theoretical Positions in Energy System Modelling. (2017). Ostergaard, Poul Alberg ; Arler, Finn ; Lund, Henrik ; Karnoe, Peter ; Mathiesen, Brian Vad ; Connolly, David ; Hvelplund, Frede.
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  167. Optimization of Hybrid Energy Storage Systems at the Building Level with Combined Heat and Power Generation. (2017). Yan, Gangui ; Liu, Huanan ; Yu, Dongmin ; le Blond, Simon ; Jiang, Jing.
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  168. Simulation Models to Size and Retrofit District Heating Systems. (2017). Sartor, Kevin.
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  169. Reconciling qualitative storylines and quantitative descriptions: An iterative approach. (2017). Foxon, Timothy ; Thomson, Murray ; Hammond, Geoff ; Leach, Matthew ; Emmanuel-Yusuf, Damiete ; Galloway, Stuart ; Barton, John ; O'Grady, Ine ; Robertson, Elizabeth .
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  170. Are district heating systems and renewable energy sources always an environmental win-win solution? A life cycle assessment case study in Tuscany, Italy. (2017). Frey, Marco ; Rizzi, Francesco ; Bartolozzi, Irene .
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  171. Energy hub: From a model to a concept – A review. (2017). Mohammadi-Ivatloo, Behnam ; Noorollahi, Younes ; Yousefi, Hossein.
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  172. Large heat pumps in Swedish district heating systems. (2017). Averfalk, Helge ; Werner, Sven ; Gong, Mei ; Persson, Urban ; Ingvarsson, Paul .
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  173. District energy network (DEN), current global status and future development. (2017). Rismanchi, B.
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  174. On heat pumps in smart grids: A review. (2017). Fischer, David ; Madani, Hatef.
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  175. Influence of internal thermal mass on the indoor thermal dynamics and integration of phase change materials in furniture for building energy storage: A review. (2017). Johra, Hicham ; Heiselberg, Per .
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  176. Trends of European research and development in district heating technologies. (2017). Sayegh, M A ; Piekarska, K ; Jouhara, H ; Nannou, T ; Miniewicz, M ; Jadwiszczak, P ; Danielewicz, J.
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  177. Review of district heating and cooling systems for a sustainable future. (2017). Lake, Andrew ; Beyerlein, Steven ; Rezaie, Behanz.
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  178. Emissions from a domestic two-stage wood-fired hydronic heater: Effects of non-homogeneous fuel decomposition. (2017). Richter, Joseph P ; Desjardin, Paul E ; Mollendorf, Joseph C ; Weisberger, Joshua M.
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  179. Utilizing data center waste heat in district heating – Impacts on energy efficiency and prospects for low-temperature district heating networks. (2017). Syri, Sanna ; Wahlroos, Mikko ; Parssinen, Matti ; Manner, Jukka.
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  180. Optimization modeling for smart operation of multi-source district heating with distributed variable-speed pumps. (2017). Haijian, Zhou ; Zhu, Tong ; Wang, Hai.
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  181. Sustainability of heat energy tariff in district heating system: Statistic and dynamic methodologies. (2017). Ziemele, Jelena ; Blumberga, Dagnija ; Gravelsins, Armands.
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  182. Cost optimal sizing of smart buildings energy system components considering changing end-consumer electricity markets. (2017). Kohrn, Markus ; Wolisz, Henryk ; Schutz, Thomas ; Blanke, Tobias ; Hagenkamp, Markus ; Muller, Dirk ; Wesseling, Mark.
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  183. Peak-shaving in district heating systems through optimal management of the thermal request of buildings. (2017). Verda, Vittorio ; Guelpa, Elisa ; Barbero, Giulia ; Sciacovelli, Adriano.
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  184. Smart energy and smart energy systems. (2017). Connolly, David ; Lund, Henrik ; Mathiesen, Brian Vad ; Ostergaard, Poul Alberg.
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  185. A novel conceptual model facilitating the derivation of agent-based models for analyzing socio-technical optimality gaps in the energy domain. (2017). , Johanna ; Hidalgo, Diego I ; Marz, Steven ; Drewing, Emily ; Hemkendreis, Christian ; Hinker, Jonas.
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  186. A novel oxygen carrier for chemical looping reforming: LaNiO3 perovskite supported on montmorillonite. (2017). Li, Lin ; Zhang, Qian ; Wang, Kaiqiang ; Jiang, BO ; Song, Yongchen.
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  187. Thermoeconomic analysis of heat and electricity prosumers in residential zero-energy buildings in Finland. (2017). Delgado, Benjamin Manrique ; Siren, Kai ; Hasan, Ala ; Cao, Sunliang .
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  188. Real operation data analysis on district heating load patterns. (2017). Noussan, Michel ; Poggio, Alberto ; Jarre, Matteo.
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  189. Smart thermal grid with integration of distributed and centralized solar energy systems. (2017). Yang, Libing ; Sibilio, Sergio ; Rosato, Antonio ; Entchev, Evgueniy.
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  190. District heating systems based on low-carbon energy technologies in Mediterranean areas. (2017). Lizana, Jesus ; Chacartegui, Ricardo ; Soltero, Victor M ; Ortiz, Carlos.
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  191. Responding to policy change: New business models for renewable energy cooperatives – Barriers perceived by cooperatives’ members. (2017). Herbes, Carsten ; Gericke, Naomi ; Blazejewski, Susanne ; Rognli, Judith ; Brummer, Vasco .
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  192. Analysis of energy development sustainability: The example of the lithuanian district heating sector. (2017). Kveselis, Vaclovas ; Masaitis, Sigitas ; Dzenajaviien, Eugenija Farida .
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  193. Industrial excess heat for district heating in Denmark. (2017). Elmegaard, Brian ; Buhler, Fabian ; Petrovi, Stefan ; Karlsson, Kenneth.
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  194. Decarbonizing the electricity grid: The impact on urban energy systems, distribution grids and district heating potential. (2017). Morvaj, Boran ; Carmeliet, Jan ; Evins, Ralph .
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  195. A novel model for steam transportation considering drainage loss in pipeline networks. (2017). Wang, Hai ; Deng, Wanli ; Zhu, Tong.
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  196. Power-to-Heat for Renewable Energy Integration: Technologies, Modeling Approaches, and Flexibility Potentials. (2017). Zerrahn, Alexander ; Schill, Wolf-Peter ; Bloess, Andreas.
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  198. A magyarországi távhő-szabályozás modellezése. A megújuló energiára alapozott hőtermelés. (2016). Mezsi, Andras ; Torcsik, Agnes ; Kacsor, Enik ; Beothy, Akos.
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  199. Life Cycle Assessment of Steel Produced in an Italian Integrated Steel Mill. (2016). di Capua, Rosa ; Arcese, Gabriella ; Tassielli, Giuseppe ; Notarnicola, Bruno ; Renzulli, Pietro A.
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  200. Local Alternative for Energy Supply: Performance Assessment of Integrated Community Energy Systems. (2016). Chaves-Ávila, José ; Koirala, Binod Prasad ; Herder, Paulien M ; Hakvoort, Rudi A ; Gomez, Tomas.
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  201. Long Term Expected Revenue of Wind Farms Considering the Bidding Admission Uncertainty. (2016). Yousefi, Gholamreza ; Bashi, Mazaher Haji ; Pillai, Jayakrishnan Radhakrishna ; Bak, Claus Leth.
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  202. Comparing drivers, barriers, and opportunities of business models for renewable energies: A review. (2016). Picot, Arnold ; Engelken, Maximilian ; Welpe, Isabell M ; Drescher, Marcus ; Romer, Benedikt.
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  203. Effects of district heating networks on optimal energy flow of multi-carrier systems. (2016). Shabanpour-Haghighi, Amin ; Seifi, Ali Reza.
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  204. A review of renewable energy applications in buildings in the hot-summer and warm-winter region of China. (2016). Li, Dayao ; He, Jiang.
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  205. Energetic communities for community energy: A review of key issues and trends shaping integrated community energy systems. (2016). Friege, Jonas ; Koirala, Binod Prasad ; Herder, Paulien M ; Hakvoort, Rudi A ; Koliou, Elta .
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  206. The implications of heat electrification on national electrical supply-demand balance under published 2050 energy scenarios. (2016). Quiggin, Daniel ; Buswell, Richard .
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  207. Thermoeconomic cost assessment in future district heating networks. (2016). Verda, Vittorio ; Kona, Albana ; Caccin, Marco .
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    RePEc:eee:energy:v:117:y:2016:i:p2:p:485-491.

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  208. Optimising urban energy systems: Simultaneous system sizing, operation and district heating network layout. (2016). Carmeliet, Jan ; Evins, Ralph ; Morvaj, Boran .
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  209. Technical, economic and environmental investigation of using district heating to prepare domestic hot water in Chinese multi-storey buildings. (2016). Zhang, Lipeng ; Svendsen, Svend ; Li, Hongwei ; Gudmundsson, Oddgeir ; Thorsen, Jan Eric ; Xia, Jianjun .
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  210. Comparison of district heating expansion potential based on consumer-economy or socio-economy. (2016). Moller, Bernd ; Grundahl, Lars ; Nielsen, Steffen ; Lund, Henrik.
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  211. Heat supply planning for the ecological housing community Munksøgård. (2016). Petrovi, Stefan N ; Naraa, Rikke ; Karlsson, Kenneth B.
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  212. Heat Roadmap Europe: Identifying the balance between saving heat and supplying heat. (2016). Thellufsen, Jakob Zinck ; Drysdale, David ; Lund, Henrik ; Connolly, David ; Hansen, Kenneth .
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  213. Impact of Germanys energy transition on the Nordic power market – A market-based multi-region energy system model. (2016). Zakeri, Behnam ; Welsch, Manuel ; Mathiesen, Brian V ; Connolly, David ; Syri, Sanna ; Virasjoki, Vilma .
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  214. Evaluation of the potential of natural gas district heating cogeneration in Spain as a tool for decarbonisation of the economy. (2016). Soltero, V M ; Velazquez, R ; Ortiz, C ; Chacartegui, R.
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  215. Residential heat pumps in the future Danish energy system. (2016). Petrovi, Stefan N ; Karlsson, Kenneth B.
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  216. Energy planning of district heating for future building stock based on renewable energies and increasing supply flexibility. (2016). Tereshchenko, Tymofii ; Nord, Natasa.
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  217. Optimal planning of heat supply systems in urban areas. (2016). Stennikov, Valery A ; Iakimetc, Ekaterina E.
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  218. Current and future prospects for heat recovery from waste in European district heating systems: A literature and data review. (2016). Persson, Urban ; Munster, Marie .
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  219. Influence of the building shape on the energy performance of timber-glass buildings in different climatic conditions. (2016). Premrov, Miroslav ; Mihali, Klara ; Leskovar, Vesna egarac .
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  220. Sustainability assessment of one industrial region: A combined method of emergy analysis and IPAT (Human Impact Population Affluence Technology). (2016). Yu, Xiaoman ; Sun, LU ; Tian, XU ; Ma, Zhixiao ; Liu, Zuoxi ; Ulgiati, Sergio ; Dong, Huijuan ; Geng, Yong.
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  221. A novel PSO (Particle Swarm Optimization)-based approach for optimal schedule of refrigerators using experimental models. (2016). Ranjbar, Hossein ; Iman-Eini, Hossein ; Hatami, Alireza ; Farzamkia, Saleh .
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  222. Optimal operation of large district heating networks through fast fluid-dynamic simulation. (2016). Toro, Claudia ; Verda, Vittorio ; Sciacovelli, Adriano ; Guelpa, Elisa ; Melli, Roberto ; Sciubba, Enrico.
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  223. Influence of system design on heat distribution costs in district heating. (2016). Thalmann, S ; Nussbaumer, T.
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  224. The role of actor-networks in the early stage mobilisation of low carbon heat networks. (2016). Ambrose, Aimee ; Pinder, James ; Eadson, Will .
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  225. Selecting the optimum pressure drop per unit length of district heating piping network based on operating strategies. (2016). Jie, Pengfei ; Xie, Shangqun ; Rong, Xian ; Kong, Xiangfei.
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  226. Optimization framework for distributed energy systems with integrated electrical grid constraints. (2016). Morvaj, Boran ; Carmeliet, Jan ; Evins, Ralph .
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  227. Prosumers in district heating networks – A Swedish case study. (2016). Brange, Lisa ; Lauenburg, Patrick ; Englund, Jessica .
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  228. Evaluation of the cost of using power plant reject heat in low-temperature district heating and cooling networks. (2016). Colmenar-Santos, Antonio ; Collado-Fernandez, Eduardo ; Borge-Diez, David ; Rosales-Asensio, Enrique.
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  229. Unpacking Big Systems - Natural Language Processing meets Network Analysis. A Study of Smart Grid Development in Denmark. (2015). Jurowetzki, Roman .
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  230. Biogas Power Plants in Poland—Structure, Capacity, and Spatial Distribution. (2015). Lewandowska, Aleksandra ; Szymaska, Daniela.
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  231. Waste Energy Recovery from Natural Gas Distribution Network: CELSIUS Project Demonstrator in Genoa. (2015). Brunenghi, Margherita Marr ; Devia, Francesco ; Borelli, Davide ; Spoladore, Alessandro ; Schenone, Corrado.
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  232. Wind Integration into Energy Systems with a High Share of Nuclear Power—What Are the Compromises?. (2015). Syri, Sanna ; Rinne, Samuli ; Zakeri, Behnam.
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  233. Exergy transition planning for net-zero districts. (2015). Kilki, Iir.
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  234. Comparative analysis of the district heating systems of two towns in Croatia and Denmark. (2015). Ulig-Toki, Dario ; Larsen, Jesper Moller ; Krklec, Robert ; Mathiesen, Brian Vad ; Dorai, Borna ; Krajai, Goran.
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  235. The wasted energy: A metric to set up appropriate targets in our path towards fully renewable energy systems. (2015). Vinagre, Juan Jose ; Rodriguez, Ana Belen ; Wilby, Mark Richard .
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  236. Multi-objective operation management of a multi-carrier energy system. (2015). Shabanpour-Haghighi, Amin ; Seifi, Ali Reza.
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  237. Online hydraulic calculation and operation optimization of industrial steam heating networks considering heat dissipation in pipes. (2015). Xue, Minghua ; Wang, Xuguang ; Wu, Dingfei ; Feng, Hongcui ; Zhong, Wei.
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  238. Forecasting of consumers heat load in district heating systems using the support vector machine with a discrete wavelet transform algorithm. (2015). Shamshirband, Shahaboddin ; Petkovi, Dalibor ; Proti, Milan ; Raos, Miomir ; ivkovi, Ljiljana ; Unar, Jawed Akhtar ; Kiah, Laiha Mat ; Abbasi, Almas .
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  239. Heat roadmap China: New heat strategy to reduce energy consumption towards 2030. (2015). Mathiesen, Brian Vad ; Wang, YU ; Zhang, Xiliang ; Xiong, Weiming ; Lund, Henrik.
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  240. Optimal allocation of energy storage in a co-optimized electricity market: Benefits assessment and deriving indicators for economic storage ventures. (2015). Das, Trishna ; Krishnan, Venkat.
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  241. Comparing the value of bioenergy in the heating and transport sectors of an electricity-intensive energy system in Norway. (2015). Hagos, Dejene Assefa ; Bolkesjo, Torjus Folsland ; Gebremedhin, Alemayehu .
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  242. Energy supply and urban planning projects: Analysing tensions around district heating provision in a French eco-district. (2015). Gabillet, Pauline .
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  243. Genetic optimization of multi-plant heat production in district heating networks. (2015). Fang, Tingting ; Lahdelma, Risto.
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  244. Geospatial assessment of potential bioenergy crop production on urban marginal land. (2015). Saha, Mithun ; Eckelman, Matthew J.
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  245. Renewables, nuclear, or fossil fuels? Scenarios for Great Britain’s power system considering costs, emissions and energy security. (2015). Pfenninger, Stefan ; Keirstead, James.
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  246. Optimal energy mix for transitioning from fossil fuels to renewable energy sources – The case of the Mexican electricity system. (2015). Vidal-Amaro, Juan Jose ; Sheinbaum-Pardo, Claudia ; Ostergaard, Poul Alberg.
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  247. Modeling of non-linear CHP efficiency curves in distributed energy systems. (2015). Milan, Christian ; Mashayekh, Salman ; Cardoso, Gonalo ; Stadler, Michael .
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  248. Dispatch of fuel cells as Transmission Integrated Grid Energy Resources to support renewables and reduce emissions. (2015). Shaffer, Brendan ; Samuelsen, Scott ; Tarroja, Brian.
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  249. Smart Energy Systems for coherent 100% renewable energy and transport solutions. (2015). Moller, B. ; Nielsen, S. ; Karnoe, P. ; ostergaard, P. A. ; Sperling, K. ; Ridjan, I. ; Wenzel, H. ; Lund, H. ; Hvelplund, F. K. ; Connolly, D. ; Mathiesen, B. V..
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  250. Future power market and sustainable energy solutions – The treatment of uncertainties in the daily operation of combined heat and power plants. (2015). Andersen, Anders N. ; Sorknas, Peter ; Lund, Henrik.
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  251. Energy sustainability, stakeholder conflicts, and the future of hydrogen in Denmark. (2014). Sovacool, Benjamin K. ; Andreasen, Kristian Peter .
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  252. Energy security in Bangladesh perspective—An assessment and implication. (2014). Islam, Aminul ; Taufiq-Yap, Yun Hin ; Mridha, Moniruzzaman ; Mondal, Md. Alam Hossain, ; Moniruzzaman, M. ; Chan, Eng-Seng .
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  253. A survey of district heating systems in the heating regions of northern China. (2014). Li, Han ; Zheng, Xuejing ; Xu, Xin ; You, Shijun.
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  254. Implementation of different policy strategies promoting the use of wood fuel in the Latvian district heating system: Impact evaluation through a system dynamic model. (2014). Barisa, Aiga ; Dzene, Ilze ; Romagnoli, Francesco ; Blumberga, Dagnija.
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  255. A comparative exergy and exergoeconomic analysis of a residential heat supply system paradigm of Japan and local source based district heating system using SPECO (specific exergy cost) method. (2014). Baldvinsson, Ivar ; Nakata, Toshihiko .
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  256. Electricity generation analyses in an oil-exporting country: Transition to non-fossil fuel based power units in Saudi Arabia. (2014). Farnoosh, Arash ; Percebois, Jacques ; Lantz, Frederic.
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  257. CO2 emissions accounting: Whether, how, and when different allocation methods should be used. (2014). Levihn, Fabian .
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  258. 4th Generation District Heating (4GDH). (2014). Mathiesen, Brian Vad ; Werner, Sven ; Svendsen, Svend ; Wiltshire, Robin ; Thorsen, Jan Eric ; Lund, Henrik ; Hvelplund, Frede.
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  259. Wind power idle capacity in a panel of European countries. (2014). Marques, António ; Fuinhas, José ; Flora, Rui .
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  260. Value of flexible consumption in the electricity markets. (2014). Biegel, Benjamin ; Harbo, Silas ; Andersen, Palle ; Hansen, Lars Henrik ; STOUSTRUP, Jakob .
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  261. Envisioning a renewable electricity future for the United States. (2014). Mulcahy, David ; Mai, Trieu ; Baldwin, Samuel F. ; Hand, Maureen M..
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  262. Economic feasibility of district heating delivery from industrial excess heat: A case study of a Swedish petrochemical cluster. (2014). Morandin, Matteo ; Harvey, Simon ; Hackl, Roman.
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  263. MES (multi-energy systems): An overview of concepts and evaluation models. (2014). Mancarella, Pierluigi.
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  264. Heat Roadmap Europe: Identifying strategic heat synergy regions. (2014). Moller, B. ; Persson, U. ; Werner, S..
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  265. How Danish communal heat planning empowers municipalities and benefits individual consumers. (2014). Chittum, Anna ; Ostergaard, Poul Alberg.
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  266. Heat planning for fossil-fuel-free district heating areas with extensive end-use heat savings: A case study of the Copenhagen district heating area in Denmark. (2014). Harrestrup, M. ; Svendsen, S..
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  267. Heat Roadmap Europe: Combining district heating with heat savings to decarbonise the EU energy system. (2014). Moller, B. ; Persson, U. ; Boermans, T. ; Werner, S. ; Nielsen, S. ; ostergaard, P. A. ; Lund, H. ; Trier, D. ; Connolly, D. ; Mathiesen, B. V..
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  268. Achieving low return temperatures from district heating substations. (2014). Gadd, Henrik ; Werner, Sven.
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  269. Potential for increased wind-generated electricity utilization using heat pumps in urban areas. (2014). Waite, Michael ; Modi, Vijay.
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  270. Simulation and optimization of a CHP biomass plant and district heating network. (2014). Sartor, K. ; Quoilin, S. ; Dewallef, P..
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  271. Towards a flexible energy system – A case study for Inland Norway. (2014). Gebremedhin, Alemayehu ; Hagos, Dejene Assefa ; Zethraeus, Bjorn .
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  272. Energy saving potential of utilizing natural ventilation under warm conditions – A case study of Mexico. (2014). Oropeza-Perez, Ivan ; Ostergaard, Poul Alberg.
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  273. Smart district heating networks – A simulation study of prosumers’ impact on technical parameters in distribution networks. (2014). Calven, Alexandra ; Lauenburg, Patrick ; Brand, Lisa ; Englund, Jessica ; Landersjo, Henrik .
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  274. Economic and environmental based operation strategies of a hybrid photovoltaic–microgas turbine trigeneration system. (2014). Basrawi, Firdaus ; Yamada, Takanobu ; Obara, Shinya .
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  275. Carbon constrained design of energy infrastructure for new build schemes. (2014). Wu, J. ; Jenkins, N. ; Rees, M. T. ; Abeysekera, M..
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  276. The Exergetic, Environmental and Economic Effect of the Hydrostatic Design Static Pressure Level on the Pipe Dimensions of Low-Energy District Heating Networks. (2013). Svendsen, Svend ; Tol, Hakan brahim .
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  277. Energy system investment model incorporating heat pumps with thermal storage in buildings and buffer tanks. (2013). Hedegaard, Karsten ; Balyk, Olexandr .
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  278. Renewable-based low-temperature district heating for existing buildings in various stages of refurbishment. (2013). Brand, Marek ; Svendsen, Svend.
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  279. Determinants of user satisfaction with solar home systems in rural Bangladesh. (2013). Komatsu, Satoru ; Kaneko, Shinji ; Morinaga, Akane ; Ghosh, Partha Pratim .
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  280. Business optimal design of a grid-connected hybrid PV (photovoltaic)-wind energy system without energy storage for an Easter Islands block. (2013). Sauma, E. ; Yanine, F. ; Caballero, F..
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  281. GIS-based assessment of the district heating potential in the USA. (2013). Wagner, Fabian ; Schopp, Wolfgang ; Cofala, Janusz ; Gils, Hans Christian.
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  282. GHG (Greenhouse Gases) emission inventory and mitigation measures for public district heating plants in the Republic of Serbia. (2013). Vuievi, Biljana ; Markovi, Zoran ; Baki, Vukman ; Turanjanin, Valentina ; Stefanovi, Predrag ; Jovanovi, Marina ; Cvetinovi, Dejan .
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  283. GIS based analysis of future district heating potential in Denmark. (2013). Moller, Bernd ; Nielsen, Steffen .
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  284. Heat pumps versus combined heat and power production as CO2 reduction measures in Finland. (2013). Rinne, S. ; Syri, S..
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  285. Energy consumption and economic analyses of a district heating network. (2013). Bagdanavicius, Audrius ; Jenkins, Nick ; Pirouti, Marouf ; Wu, Jianzhong ; Ekanayake, Janaka .
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  286. Experimental and CFD simulation of heat efficiency improvement in geothermal spas. (2013). Saevarsdottir, Gudrun ; Jalilinasrabady, Saeid ; Itoi, Ryuichi ; Valdimarsson, Pall ; Palsson, Halldor .
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  287. District heating in the Netherlands today: A techno-economic assessment for NGCC-CHP (Natural Gas Combined Cycle combined heat and power). (2013). Patel, M. K. ; Klaassen, R. E..
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  288. Zero energy buildings and sustainable development implications – A review. (2013). Lam, Joseph C. ; Yang, Liu ; Li, Danny H. W., .
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  289. Assessment of Chinas renewable energy contribution during the 12th Five Year Plan. (2013). Raczkowski, Chris ; Zhou, Nan ; Hong, Lixuan ; Fridley, David .
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  290. Energy policymaking in Denmark: Implications for global energy security and sustainability. (2013). Sovacool, Benjamin K..
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  291. Historical daily gas and electrical energy flows through Great Britains transmission networks and the decarbonisation of domestic heat. (2013). Kelly, Nicolas J. ; Ding, Yulong ; Wilson, I. A. Grant, ; Rennie, Anthony J. R., ; Eames, Philip C. ; Hall, Peter J..
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  292. Energetic and economic evaluations of geothermal district heating systems by using ANN. (2013). Keeba, Ali ; Yabanova, smail ; Yumurtac, Mehmet ; Alkan, Mehmet Ali .
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  293. Electric vehicles and large-scale integration of wind power – The case of Inner Mongolia in China. (2013). Lund, Henrik ; Chen, Zhe ; Liu, Wen ; Hu, Weihao.
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  294. Heat savings and heat generation technologies: Modelling of residential investment behaviour with local externalities. (2012). Klinge Jacobsen, Henrik ; Zvingilaite, Erika .
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  295. Development of an integrated methodology for the energy needs of a major urban city: The case study of Athens, Greece. (2012). Xydis, G..
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  296. Modelling and simulation of a wind-hydrogen CHP system with metal hydride storage. (2012). Zini, Gabriele ; Pedrazzi, Simone ; Tartarini, Paolo .
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  297. The technical and economic implications of integrating fluctuating renewable energy using energy storage. (2012). Mathiesen, B. V. ; Leahy, M. ; Lund, H. ; Pican, E. ; Connolly, D..
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  298. The role of district heating in the future Danish energy system. (2012). Lindboe, Hans Henrik ; Morthorst, Poul Erik ; Munster, Marie ; Bregnbak, Lars ; Werling, Jesper ; Larsen, Helge V. ; Ravn, Hans .
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  299. The role of municipal energy planning in the regional energy-planning process. (2012). Brandoni, Caterina ; Polonara, Fabio.
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  300. Medium term development prospects of cogeneration district heating systems in transition country – Croatian case. (2012). Lonar, D. ; Ridjan, I..
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  301. Excess heat production of future net zero energy buildings within district heating areas in Denmark. (2012). Moller, Bernd ; Nielsen, Steffen .
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  302. Limiting biomass consumption for heating in 100% renewable energy systems. (2012). Mathiesen, Brian Vad ; Lund, Henrik ; Connolly, David.
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  303. Wind power integration using individual heat pumps – Analysis of different heat storage options. (2012). Mathiesen, Brian Vad ; Heiselberg, Per ; Hedegaard, Karsten ; Lund, Henrik.
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  304. District heating (DH) network design and operation toward a system-wide methodology for optimizing renewable energy solutions (SMORES) in Canada: A case study. (2012). Rosa, Dalla A. ; Svendsen, S. ; Boulter, R. ; Church, K..
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  305. Numerical analysis of a medium scale latent energy storage unit for district heating systems. (2012). Sciacovelli, Adriano ; Verda, Vittorio ; Colella, Francesco .
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  306. Energy and exergy analysis of low temperature district heating network. (2012). Li, Hongwei ; Svendsen, Svend.
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  307. Modeling of pipe break accident in a district heating system using RELAP5 computer code. (2012). Kaliatka, A. ; Valinius, M..
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