scholarly journals Model of heat losses from underground heat distribution system

2017 ◽  
Author(s):  
Mária Čarnogurská ◽  
Miroslav Příhoda ◽  
Romana Dobáková ◽  
Tomáš Brestovič
2016 ◽  
Vol 18 (1) ◽  
pp. 5-16 ◽  
Author(s):  
Georg K. Schuchardt

Abstract Thermal Storages and Thermal Accumulators are an important component within District Heating (DH) systems, adding flexibility and offering additional business opportunities for these systems. Furthermore, these components have a major impact on the energy and exergy efficiency as well as the heat losses of the heat distribution system. Especially the integration of Thermal Storages within ill-conditioned parts of the overall DH system enhances the efficiency of the heat distribution. Regarding an illustrative and simplified example for a DH system, the interactions of different heat storage concepts (centralized and decentralized) and the heat losses, energy and exergy efficiencies will be examined by considering the thermal state of the heat distribution network.


2017 ◽  
Vol 38 (2) ◽  
pp. 61-79
Author(s):  
Andrzej Ziębik ◽  
Paweł Gładysz

AbstractThe paper is devoted to explication of one of the advantages of heat and electricity cogeneration, rarely considered in technical literature. Usually attention is paid to the fact that heat losses of the heat distribution network are less severe in the case of cogeneration of heat in comparison with its separate production. But this conclusion is also true in other cases when the internal consumption of heat is significant. In this paper it has been proved in the case of two examples concerning trigeneration technology with an absorption chiller cooperating with a combined heat and power (CHP) plant and CHP plant integrated with amine post-combustion CO2processing unit. In both considered cases it might be said that thanks to cogeneration we have to do with less severe consequences of significant demand of heat for internal purposes.


Energy ◽  
2017 ◽  
Vol 140 ◽  
pp. 850-860 ◽  
Author(s):  
Julio Efrain Vaillant Rebollar ◽  
Eline Himpe ◽  
Jelle Laverge ◽  
Arnold Janssens

Author(s):  
Alina Galimshina ◽  
Maliki Moustapha ◽  
Alexander Hollberg ◽  
Guy Wagner ◽  
Pierryves Padey ◽  
...  

Renovation of the building stock in Europe is urgent to decrease the environmental impact from the building sector and meet the United Nations climate action goals. However, it is often hard to define a robust scenario for a renovation due to numerous uncertainties, which occur during the production, operation and end-of-life stage. One can cite the loss of performance of insulation and heating systems, the replacement time of installation or the future energy prices as well as the future climate. The replacement of oil boilers with heat pumps has shown a good performance regarding costs and greenhouse gas emissions. However, due to the flow and return temperature differences, often the current heat distribution system needs to be replaced as well, which is normally done with conventional radiators or floor heating. In this paper, we analyse a new possibility of a heat distribution system with earth plastered wall. We develop a methodology on the integrated assessment of life cycle assessment (LCA) and life cycle cost analysis (LCCA) for the renovation scenarios and adapt the analysis of the heat pump renovation solution with conventional radiators system and the earth plastered wall for two typical residential buildings located in Switzerland. Through rigorous statistical treatment, we then propagate the possible sources of uncertainty and perform the uncertainty quantification using polynomial chaos expansion to compare the distributions of two outcomes. The results show that the solution with the earth plaster has lower overall environmental impacts and costs. It has also been noticed that the solution with the earth plaster is more robust in investment cost and embodied emissions compared to the solution with the conventional radiators.


2004 ◽  
Vol 9 (2) ◽  
pp. 130-136 ◽  
Author(s):  
Morgan Fröling ◽  
Camilla Holmgren ◽  
Magdalena Svanström

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