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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 .
In: Energy.
RePEc:eee:energy:v:48:y:2012:i:1:p:47-55.

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  1. Is District Heating a cost-effective solution to decarbonise Irish buildings?. (2024). Rogan, Fionn ; Daly, Hannah ; Petrovi, Stefan N ; Mc, Jason ; Balyk, Olexandr ; Smith, Andrew.
    In: Energy.
    RePEc:eee:energy:v:296:y:2024:i:c:s036054422400882x.

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  2. 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.
    In: Energy.
    RePEc:eee:energy:v:288:y:2024:i:c:s0360544223030360.

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  3. Dispatch strategies for large-scale heat pump based district heating under high renewable share and risk-aversion: A multistage stochastic optimization approach. (2024). Nielsen, Per Sieverts ; Siddique, Muhammad Bilal ; Scheller, Fabian ; Keles, Dogan.
    In: Energy Economics.
    RePEc:eee:eneeco:v:136:y:2024:i:c:s0140988324004729.

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  4. Optimal Installation of Heat Pumps in Large District Heating Networks. (2023). Verda, Vittorio ; Guelpa, Elisa ; Capone, Martina.
    In: Energies.
    RePEc:gam:jeners:v:16:y:2023:i:3:p:1448-:d:1054057.

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  5. Performance assessment of the novel coal-fired combined heat and power plant integrating with flexibility renovations. (2023). Song, Jiwei ; Wang, Congyu.
    In: Energy.
    RePEc:eee:energy:v:263:y:2023:i:pc:s0360544222027724.

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  6. Sustainable deployment of energy efficient district heating: city business model. (2023). Mendoza, Nora ; Blanco, Ana ; Pardo-Bosch, Francesc ; Pujadas, Pablo ; Tejedor, Blanca ; Libreros, Bibiana.
    In: Energy Policy.
    RePEc:eee:enepol:v:181:y:2023:i:c:s0301421523002860.

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  7. Impacts of earlier natural gas phase-out & heat-saving policies on district heating and the energy system. (2023). Jensen, Ida Grasted ; Rosendal, Mathias Berg ; Nielsen, Per Sieverts ; Siddique, Muhammad Bilal ; Keles, Dogan.
    In: Energy Policy.
    RePEc:eee:enepol:v:174:y:2023:i:c:s0301421523000265.

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  8. The impact of large-scale thermal energy storage in the energy system. (2023). Bramstoft, Rasmus ; Fan, Jianhua ; Jensen, Adam R ; Sneum, Daniel Moller ; Sifnaios, Ioannis.
    In: Applied Energy.
    RePEc:eee:appene:v:349:y:2023:i:c:s0306261923010279.

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  9. Benefits of integrating power-to-heat assets in CHPs. (2023). Yan, Jinyue ; Hou, Yichen ; Li, Hailong ; Gao, Shuang.
    In: Applied Energy.
    RePEc:eee:appene:v:335:y:2023:i:c:s0306261923001277.

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  10. Evaluation and Optimization of heat Pump Combined District Heating System: A Case Study of China. (2022). Liu, Zijian ; Zhang, Sirui ; Xia, Shiyao ; Yu, Zesheng ; Cheng, Ling ; Zheng, Wandong.
    In: Energies.
    RePEc:gam:jeners:v:15:y:2022:i:20:p:7622-:d:943185.

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  11. District heating system as the infrastructure for competition among producers in the heat market. (2022). Gatautis, Ramnas ; Lekaviius, Vidas ; Parait, Aura.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:169:y:2022:i:c:s1364032122007705.

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  12. Review and validation of EnergyPLAN. (2022). Ostergaard, P A ; Lund, H ; Mathiesen, B V ; Sorknas, P ; Thellufsen, J Z.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:168:y:2022:i:c:s136403212200613x.

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  13. Something is sustainable in the state of Denmark: A review of the Danish district heating sector. (2022). Werner, Sven ; Johansen, Katinka.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:158:y:2022:i:c:s1364032122000466.

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  14. Reviewing two decades of energy system analysis with bibliometrics. (2022). D'Andrea, M ; Scheller, F ; Weinand, J M ; Dominkovi, D F ; McKenna, R.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:153:y:2022:i:c:s1364032121010200.

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  15. Power transformers as excess heat sources – a case study for Denmark. (2022). McKenna, Russell ; Radoman, Uro ; Buhler, Fabian ; Petrovi, Stefan.
    In: Energy.
    RePEc:eee:energy:v:239:y:2022:i:pe:s0360544221026657.

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  16. Model predictive control for a heat booster substation in ultra low temperature district heating systems. (2022). Wang, Jiawei ; Thorsen, Jan Eric ; Smith, Kevin ; Hermansen, Rune ; Zong, YI.
    In: Energy.
    RePEc:eee:energy:v:238:y:2022:i:pa:s036054422101879x.

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  17. The spatial and temporal mismatch phenomenon in solar space heating applications: status and solutions. (2022). Pei, Gang ; Hao, Yong ; Kwan, Trevor Hocksun ; Zhao, Bin ; Gao, Datong.
    In: Applied Energy.
    RePEc:eee:appene:v:321:y:2022:i:c:s0306261922006766.

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  18. Design and game-Theoretic analysis of community-Based market mechanisms in heat and electricity systems. (2021). Pinson, Pierre ; Kazempour, Jalal ; Mitridati, Lesia.
    In: Omega.
    RePEc:eee:jomega:v:99:y:2021:i:c:s0305048319305523.

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  19. Methodology for a global sensitivity analysis with machine learning on an energy system planning model in the context of thermal networks. (2021). D'Haeseleer, William ; Verschelde, Tars.
    In: Energy.
    RePEc:eee:energy:v:232:y:2021:i:c:s0360544221012354.

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  20. 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.
    In: Energy.
    RePEc:eee:energy:v:214:y:2021:i:c:s0360544220319794.

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  21. Open-source modeling of a low-carbon urban neighborhood with high shares of local renewable generation. (2021). Auer, Hans ; Zwickl-Bernhard, Sebastian.
    In: Applied Energy.
    RePEc:eee:appene:v:282:y:2021:i:pa:s0306261920315683.

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  22. Local Heating Networks with Waste Heat Utilization: Low or Medium Temperature Supply?. (2020). Hafner, Armin ; Rohde, Daniel ; Kauko, Hanne.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2020:i:4:p:954-:d:323066.

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  23. Potential of Thermal Energy Storage for a District Heating System Utilizing Industrial Waste Heat. (2020). Knudsen, Brage Rugstad ; Rohde, Daniel ; Kauko, Hanne ; Sund-Olsen, Terje.
    In: Energies.
    RePEc:gam:jeners:v:13:y:2020:i:15:p:3923-:d:392937.

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  24. 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.
    In: Energy.
    RePEc:eee:energy:v:213:y:2020:i:c:s036054422032137x.

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  25. 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.
    In: Energy.
    RePEc:eee:energy:v:199:y:2020:i:c:s0360544220305612.

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  26. Hot transformations: Governing rapid and deep household heating transitions in China, Denmark, Finland and the United Kingdom. (2020). Martiskainen, Mari ; Sovacool, Benjamin K.
    In: Energy Policy.
    RePEc:eee:enepol:v:139:y:2020:i:c:s0301421520300872.

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  27. From passive to active: Flexibility from electric vehicles in the context of transmission system development. (2020). Scheller, Fabian ; Jensen, Ida Grasted ; Bergaentzle, Claire ; Gunkel, Philipp Andreas.
    In: Applied Energy.
    RePEc:eee:appene:v:277:y:2020:i:c:s0306261920310382.

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  28. From passive to active: Flexibility from electric vehicles in the context of transmission system development. (2020). Bergaentzl, Claire ; Gunkel, Philipp Andreas ; Scheller, Fabian ; Jensen, Ida Graested.
    In: Papers.
    RePEc:arx:papers:2011.05830.

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  29. Energy Scenario Analysis for the Nordic Transport Sector: A Critical Review. (2019). Salvucci, Raffaele ; Petrovi, Stefan ; Balyk, Olexandr ; Uteng, Tanu Priya ; Wrke, Markus ; Karlsson, Kenneth.
    In: Energies.
    RePEc:gam:jeners:v:12:y:2019:i:12:p:2232-:d:239018.

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  30. 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.
    In: Energy.
    RePEc:eee:energy:v:188:y:2019:i:c:s0360544219317360.

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  31. 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.
    In: Energy.
    RePEc:eee:energy:v:180:y:2019:i:c:p:918-933.

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  32. Cost efficiency of district heating for low energy buildings of the future. (2019). Gudmundsson, O ; Hansen, C H ; Detlefsen, N.
    In: Energy.
    RePEc:eee:energy:v:177:y:2019:i:c:p:77-86.

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  33. Towards 4th generation district heating: Prediction of building thermal load for optimal management. (2019). Verda, Vittorio ; Marincioni, Ludovica ; Guelpa, Elisa.
    In: Energy.
    RePEc:eee:energy:v:171:y:2019:i:c:p:510-522.

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  34. Energy system impacts of grid tariff structures for flexible power-to-district heat. (2019). Bolkesjo, Torjus Folsland ; Tromborg, Erik ; Kirkerud, Jon Gustav ; Sandberg, Eli.
    In: Energy.
    RePEc:eee:energy:v:168:y:2019:i:c:p:772-781.

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  35. Cost sensitivity of optimal sector-coupled district heating production systems. (2019). Dahl, Magnus ; Andresen, Gorm B ; Brun, Adam.
    In: Energy.
    RePEc:eee:energy:v:166:y:2019:i:c:p:624-636.

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  36. A data-driven approach for discovering heat load patterns in district heating. (2019). Sant, Anita ; Nowaczyk, Sawomir ; Calikus, Ece ; Werner, Sven ; Gadd, Henrik .
    In: Applied Energy.
    RePEc:eee:appene:v:252:y:2019:i:c:13.

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  37. Power-to-heat for renewable energy integration: A review of technologies, modeling approaches, and flexibility potentials. (2018). Zerrahn, Alexander ; Schill, Wolf-Peter ; Bloess, Andreas.
    In: EconStor Open Access Articles.
    RePEc:zbw:espost:200120.

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  38. 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.
    In: Energies.
    RePEc:gam:jeners:v:11:y:2018:i:12:p:3266-:d:185087.

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  39. Recent Advances in the Analysis of Sustainable Energy Systems. (2018). Wang, Qiuwang ; Costa, Mario ; Calise, Francesco ; Dui, Neven ; Zhang, Xiliang.
    In: Energies.
    RePEc:gam:jeners:v:11:y:2018:i:10:p:2520-:d:171336.

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  40. Expanding the horizons of power-to-heat: Cost assessment for new space heating concepts with Wind Powered Thermal Energy Systems. (2018). Cao, Karl-Kien ; Thess, Andre ; Sperber, Evelyn ; Nitto, Alejandro Nicolas.
    In: Energy.
    RePEc:eee:energy:v:164:y:2018:i:c:p:925-936.

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  41. Synergies of sector coupling and transmission reinforcement in a cost-optimised, highly renewable European energy system. (2018). Brown, T ; Greiner, M ; Schramm, S ; Kies, A ; Schlachtberger, D.
    In: Energy.
    RePEc:eee:energy:v:160:y:2018:i:c:p:720-739.

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  42. Utilizing thermal building mass for storage in district heating systems: Combined building level simulations and system level optimization. (2018). Dominkovi, D F ; Rode, C ; Heller, A ; Munster, M ; Gianniou, P.
    In: Energy.
    RePEc:eee:energy:v:153:y:2018:i:c:p:949-966.

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  43. 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 .
    In: Energy.
    RePEc:eee:energy:v:153:y:2018:i:c:p:311-323.

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  44. Influence of different technologies on dynamic pricing in district heating systems: Comparative case studies. (2018). Dominkovi, Dominik Franjo ; Pedersen, Allan Schroder ; Syri, Sanna ; Wahlroos, Mikko.
    In: Energy.
    RePEc:eee:energy:v:153:y:2018:i:c:p:136-148.

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  45. Pathway and restriction in district heating systems development towards 4th generation district heating. (2018). Ziemele, Jelena ; Blumberga, Dagnija ; Cilinskis, Einars.
    In: Energy.
    RePEc:eee:energy:v:152:y:2018:i:c:p:108-118.

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  46. 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.
    In: Energy.
    RePEc:eee:energy:v:151:y:2018:i:c:p:715-728.

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  47. Power-to-heat for renewable energy integration: A review of technologies, modeling approaches, and flexibility potentials. (2018). Zerrahn, Alexander ; Schill, Wolf-Peter ; Bloess, Andreas .
    In: Applied Energy.
    RePEc:eee:appene:v:212:y:2018:i:c:p:1611-1626.

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  48. Modelling support policies and renewable energy sources deployment in the Hungarian district heating sector. (2017). .
    In: Energy & Environment.
    RePEc:sae:engenv:v:28:y:2017:i:1-2:p:70-87.

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  49. Review of district heating and cooling systems for a sustainable future. (2017). Lake, Andrew ; Beyerlein, Steven ; Rezaie, Behanz.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:67:y:2017:i:c:p:417-425.

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  50. Modelling and optimising the marginal expansion of an existing district heating network. (2017). , Romain ; Markides, Christos N ; Acha, Salvador ; Shah, Nilay ; Delangle, Axelle.
    In: Energy.
    RePEc:eee:energy:v:140:y:2017:i:p1:p:209-223.

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  51. The role of heat storages in facilitating the adaptation of district heating systems to large amount of variable renewable electricity. (2017). Hast, Aira ; Rinne, Samuli ; Kiviluoma, Juha ; Syri, Sanna.
    In: Energy.
    RePEc:eee:energy:v:137:y:2017:i:c:p:775-788.

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  52. The potential of power-to-heat in Swedish district heating systems. (2017). Lauenburg, Patrick ; Schweiger, Gerald ; Rantzer, Jonatan ; Ericsson, Karin .
    In: Energy.
    RePEc:eee:energy:v:137:y:2017:i:c:p:661-669.

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  53. Performance of ultra low temperature district heating systems with utility plant and booster heat pumps. (2017). Markussen, Wiebke Brix ; Thorsen, Jan Eric ; Ommen, Torben ; Elmegaard, Brian.
    In: Energy.
    RePEc:eee:energy:v:137:y:2017:i:c:p:544-555.

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  54. Hourly optimization and sizing of district heating systems considering building refurbishment – Case study for the city of Zagreb. (2017). Dui, Neven ; Pukec, Tomislav ; Novosel, Tomislav ; Pavievi, Matija.
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    RePEc:eee:energy:v:137:y:2017:i:c:p:1264-1276.

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  55. Power-to-heat as a flexibility measure for integration of renewable energy. (2017). Kirkerud, Jon Gustav ; Tromborg, Erik ; Bolkesjo, Torjus Folsland.
    In: Energy.
    RePEc:eee:energy:v:128:y:2017:i:c:p:776-784.

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  56. Methodology to analyze combined heat and power plant operation considering electricity reserve market opportunities. (2017). Haakana, Juha ; Partanen, Jarmo ; Lassila, Jukka ; Tikka, Ville .
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  57. Smart thermal grid with integration of distributed and centralized solar energy systems. (2017). Yang, Libing ; Sibilio, Sergio ; Rosato, Antonio ; Entchev, Evgueniy.
    In: Energy.
    RePEc:eee:energy:v:122:y:2017:i:c:p:471-481.

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  58. Energy modelling towards low carbon development of Beijing in 2030. (2017). Zhao, Guangling ; Chen, Sha ; Jiang, Kejun ; Guerrero, Josep M.
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  59. Industrial excess heat for district heating in Denmark. (2017). Elmegaard, Brian ; Buhler, Fabian ; Petrovi, Stefan ; Karlsson, Kenneth.
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    RePEc:eee:appene:v:205:y:2017:i:c:p:991-1001.

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  60. 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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  62. A magyarországi távhő-szabályozás modellezése. A megújuló energiára alapozott hőtermelés. (2016). Mezsi, Andras ; Torcsik, Agnes ; Kacsor, Enik ; Beothy, Akos.
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  63. 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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  64. Heat supply planning for the ecological housing community Munksøgård. (2016). Petrovi, Stefan N ; Naraa, Rikke ; Karlsson, Kenneth B.
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  65. 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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  66. Residential heat pumps in the future Danish energy system. (2016). Petrovi, Stefan N ; Karlsson, Kenneth B.
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  67. Method for reducing excess heat supply experienced in typical Chinese district heating systems by achieving hydraulic balance and improving indoor air temperature control at the building level. (2016). Zhang, Lipeng ; Svendsen, Svend ; Li, Xiaopeng ; Thorsen, Jan Eric ; Gudmundsson, Oddgeir .
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  68. Integration of large-scale heat pumps in the district heating systems of Greater Copenhagen. (2016). Morales, Juan M ; Elmegaard, Brian ; Ommen, Torben ; Munster, Marie ; Bach, Bjarne ; Werling, Jesper .
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  69. Renewable-based heat supply of multi-apartment buildings with varied heat demands. (2015). le Truong, Nguyen ; Gustavsson, Leif ; Dodoo, Ambrose.
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  70. Exergy transition planning for net-zero districts. (2015). Kilki, Iir.
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  71. The possibilities of combined heat and power production balancing large amounts of wind power in Finland. (2015). Rinne, S. ; Syri, S..
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  72. Modeling of non-linear CHP efficiency curves in distributed energy systems. (2015). Milan, Christian ; Mashayekh, Salman ; Cardoso, Gonalo ; Stadler, Michael .
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  73. 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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  74. 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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  75. Optimal utilisation of heat demand in district heating system—A case study. (2014). Gebremedhin, Alemayehu .
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  76. Heat pumps in combined heat and power systems. (2014). Elmegaard, Brian ; Markussen, Wiebke Brix ; Ommen, Torben.
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  77. 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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  78. Comparison of linear, mixed integer and non-linear programming methods in energy system dispatch modelling. (2014). Elmegaard, Brian ; Markussen, Wiebke Brix ; Ommen, Torben.
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  80. 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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  82. A geographic method for high resolution spatial heat planning. (2014). Nielsen, Steffen .
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  84. Heat Roadmap Europe: Identifying strategic heat synergy regions. (2014). Moller, B. ; Persson, U. ; Werner, S..
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  87. GIS based analysis of future district heating potential in Denmark. (2013). Moller, Bernd ; Nielsen, Steffen .
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  88. Energy policymaking in Denmark: Implications for global energy security and sustainability. (2013). Sovacool, Benjamin K..
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