scholarly journals Data centres in future European energy systems—energy efficiency, integration and policy

2019 ◽  
Vol 13 (1) ◽  
pp. 129-144 ◽  
Author(s):  
Carolina Koronen ◽  
Max Åhman ◽  
Lars J Nilsson

AbstractEnd-use efficiency, demand response and coupling of different energy vectors are important aspects of future renewable energy systems. Growth in the number of data centres is leading to an increase in electricity demand and the emergence of a new electricity-intensive industry. Studies on data centres and energy use have so far focused mainly on energy efficiency. This paper contributes with an assessment of the potential for energy system integration of data centres via demand response and waste heat utilization, and with a review of EU policies relevant to this. Waste heat utilization is mainly an option for data centres that are close to district heating systems. Flexible electricity demand can be achieved through temporal and spatial scheduling of data centre operations. This could provide more than 10 GW of demand response in the European electricity system in 2030. Most data centres also have auxiliary power systems employing batteries and stand-by diesel generators, which could potentially be used in power system balancing. These potentials have received little attention so far and have not yet been considered in policies concerning energy or data centres. Policies are needed to capture the potential societal benefits of energy system integration of data centres. In the EU, such policies are in their nascent phase and mainly focused on energy efficiency through the voluntary Code of Conduct and criteria under the EU Ecodesign Directive. Some research and development in the field of energy efficiency and integration is also supported through the EU Horizon 2020 programme. Our analysis shows that there is considerable potential for demand response and energy system integration. This motivates greater efforts in developing future policies, policy coordination, and changes in regulation, taxation and electricity market design.

Author(s):  
Yaroslav Chudnovsky ◽  
Mikhail Gotovsky ◽  
Valentin Arefiev ◽  
Mark Greenman ◽  
Victor Fomin ◽  
...  

Energy efficiency improvement and waste heat utilization in power generation and energy intensive industrial applications are in the main focus of the researchers and engineers nowadays. A great deal of experience was gained by the industrial leaders such as ORMAT, Siemens, Caterpillar, Turboden, and others. However, the commercially and semi-commercially available systems for waste heat utilization have certain restrictions that limit the utilization cycle efficiency to approximately 18%. The paper presents an innovative concept of waste heat utilization system that allows reaching the utilization cycle efficiency up to 28–30% employing low-boiling media such as butane, propane, pentane and others. Applying such a concept to Distributed Generation systems the overall energy efficiency could be boost up to 58–60% and further up to 90% in case of CHP production.


2011 ◽  
pp. 1-16
Author(s):  
Maytinee Vatanakul ◽  
Elizabet Cruz ◽  
Kerry McKenna ◽  
Rory Hynes ◽  
Jim Sarvinis

2021 ◽  
Vol 111 (01-02) ◽  
pp. 25-30
Author(s):  
Ghada Elserafi ◽  
Fabian Borst ◽  
Adrian von Hayn ◽  
Stefan Schmitt ◽  
Matthias Weigold

Im Rahmen des Projekts LoTuS wird die Bauteiltrocknung untersucht und hinsichtlich der Energieeffizienz optimiert. Zu diesem Zweck wird eine energieeffiziente Durchlaufreinigungsanlage als Forschungsanlage entwickelt und in Betrieb genommen. Zur Steigerung der Energieeffizienz wird eine Wärmerückgewinnung aus verschiedenen Anlagenkomponenten und deren Nutzung in maschineninternen Prozessen untersucht. Hierzu werden verschiedene Abwärmenutzungskonzepte simuliert und bewertet, um diese bereits bei der Anlagenkonstruktion zu berücksichtigen.   The objective of the LoTuS project is to investigate and optimize parts drying, including the development and construction of a throughput cleaning machine as a research prototype. To increase energy efficiency, the waste heat of various machine components as well as their utilization in internal machine processes are examined. Different waste utilization schemes are simulated and assessed and then considered during machine construction.


2014 ◽  
Vol 900 ◽  
pp. 805-809
Author(s):  
Ming Rong Han ◽  
Long Qiang Huang ◽  
Jian Guo Yin

Taking the waste heat utilization of sintering circular cooler in Chongqing Iron & Steel Co.,Ltd as an example, the problems of the system have been analyzed and some measures have been presented based on the theory of total energy system in this paper. The result shows the main reasons that the generated energy can only reach the design value of 60% are lower energy grade because of oversintering or undersintering of sinter, the air leakage of waste gas recovery system of sintering circular cooler, frequent short interruption of sinter flow and so on. Some measures which can improve the energy grade of waste heat of sintering circular cooler and increase the generating capacity have been proposed. These measures involve controlling the end point of sintering, improving the operation level of main process, improving sealing technology of the system, recycling the heat of the boiler outlet flue gas, cascading utilization of the heat of third section of the sintering circular cooler, valuing the conversion and utilization between the various forms of energy, such as work, heat, the internal energy of working medium.


1989 ◽  
Vol 19 (3) ◽  
pp. 211-229 ◽  
Author(s):  
Robert N. Amundsen ◽  
John D. Keenan

1989 ◽  
Vol 19 (2) ◽  
pp. 95-114 ◽  
Author(s):  
John D. Keenan ◽  
Robert N. Amundsen

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