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Wybrane problemy badawcze z zakresu modelowania przepływów powietrza, rozkładów temperatur oraz przestrzennego planowania centrów danych

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Warianty tytułu
EN
Selected research problems the scope of air flow modeling, temperature distribution and spatial planning of data centers
Konferencja
Computer Applications in Electrical Engineering (18-19.04.2016 ; Poznań, Polska)
Języki publikacji
PL
Abstrakty
PL
W pracy opisano wybrane problemy z zakresu modelowania przepływów powietrza, rozkładów temperatur oraz przestrzennego planowania serwerowni centrów danych. Dodatkowo, omówiono szczegółowo wybrane kierunki badań związane z szeroko pojętą problematyką obniżania kosztów zużycia energii w nowoczesnych serwerowniach poprzez odpowiednie zarządzenie przepływem ciepła w tego typu obiektach. Przedstawiono także trendy rozwojowe w zakresie ewolucji tego typu systemów. W pracy przedstawiono ponadto wybrane wyniki prac badawczo-rozwojowych, badań symulacyjnych oraz studiów literaturowych będących rezultatem projektu nr POIG.01.04.00-22-063/13 pn.: „Opracowanie aktywnego systemu zarządzania przepływem ciepła” zrealizowanego przez zespół Laboratorium Przetwarzania Obrazu i Dźwięku Sp. z o.o.
EN
This paper describes some problems of modeling air flow, temperature distribution and spatial planning in data centers. Additionally, we discussed in detail the selected lines of research related to the wider issue of reducing energy costs in modern data centers through appropriate management of the flow of heat in this type of objects. A trends in the evolution of such systems was analyzed. We also presented selected results of research and development, simulation studies and literature studies resulting from the project no. POIG.01.04.00-22-063/13.: The development of an active heat flow management system for data centres made by the team of the Laboratory of Sound and Image Processing LLC.
Rocznik
Tom
Strony
261--271
Opis fizyczny
Bibliogr. 26 poz., tab.
Twórcy
autor
  • Laboratorium Przetwarzania Obrazu i Dźwięku Sp. z o.o., Gdańsk
autor
  • Politechnika Gdańska
Bibliografia
  • [1] Ahern J.E., The Exergy Method of Energy Systems Analysis, John Wiley & Sons, 1980.
  • [2] Ayres R.U., Ayres L.W., Martinas K., Exergy, waste accounting, and life-cycle analysis. Energy 1998.
  • [3] Azapagic A., Life cycle assessment and its application to process selection, design, and optimisation. [In:] Chemical Engineering Journal, April 1999.
  • [4] Beitelmal A.H., Patel C.D., Thermo-fluids provisioning of a high performance high density data center. In: Distributed and Parallel Databases, 2007.
  • [5] Bieksa D., Martinaitis V., Sakmanas A.A., An estimation of exergy consumption paterns of energy-intensive building service systems, Journal of Civil Engineering and Management, 2006.
  • [6] Boucher T.D. et al., Viability of dynamic cooling control in a data center environment. In: Journal of electronic packaging, 2006.
  • [7] Cornelissen R., Hirs G.G., The value of the exergetic life cycle assessment besides the LCA. In: Energy Conversion and Management, June 2002.
  • [8] Creyts J.C., Extended Exergy Analysis: A Tool for Assessment of the Environmental Impact of Industrial Processes, PhD thesis, University of California, Berkeley 1998.
  • [9] Creyts J.C., Carey V.P., Use of extended exergy analysis to evaluate the environmental performance of machining processes, Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 1999.
  • [10] Cruz E. et al., Comparison of Numerical Modeling to Experimental Data in a Small Data Center Test Cell, ASME, 2009.
  • [11] Cruz E. et al., Comparison of numerical modeling to experimental data in a small, low power data center test cell, Proceedings of ASME IMECE conference, November 2009.
  • [12] Dewulf J. et al., Recycling rechargeable lithium ion batteries: Critical analysis of natural resource savings, Resources, Conservation and Recycling, 2010.
  • [13] World Commission on Environment and Development. Our Common Future, Report of the World Commission on Environment and Development. Published as Annex to General Assembly document A/42/427, Development and International Cooperation: Environment August 2, 1987.
  • [14] Esty D.C., et al., 2005 Environmental Sustainability Index: Benchmarking National Environmental Stewardship, New Haven: Yale Center for Environmental Law & Policy, 2005.
  • [15] Facanha C., Horvath A., Evaluation of Life-Cycle Air Emission Factors of Freight Transporation, Environmental Science & Technology 41/2007.
  • [16] Fontecchio M., Data center air recyling saves cash-strapped greenhouse, May 2009.
  • [17] Gondipalli S. et al., Effect of isolating cold aisles on rack inlet temperatures, 11th Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems (ITHERM). optional. optional. Orlando, FL, May 2008.
  • [18] Gondipalli S. et al., Optimization of cold aisle isolation designs for a data center with roofs and doors using slits, ASME 2009 InterPACK Conference collocated with the ASME 2009 Summer Heat Transfer Conference and the ASME 2009 3rd International Conference on Energy Sustainability (InterPACK2009). Volume 2. San Francisco, California, USA, July 2009.
  • [19] Goodland R., Daly H., Environmental sustainability: Universal and non negotiable, In: Ecological Applications, November 1996.
  • [20] Greenberg A. et al., The cost of a cloud: research problems in data center networks, In: ACM SIGCOMM Computer Communication Review (2008).
  • [21] Guo C. et al., BCube: a high performance, server-centric network architecture for modular data centers, ACM SIGCOMM Computer Communication Review. Volume 39, 2009.
  • [22] Gutowski T. et al., A thermodynamic characterization of manufacturing processes, In: Electronics & the Environment, Proceedings of the 2007 IEEE International Symposium on. IEEE, 2007.
  • [23] Hak T., Moldan B., Dahl A., Sustainability Indicators: A Scientific Assessment, Washington, D.C.: Island Press, 2007.
  • [24] Hamann H.F., Lopez V., Stepanchuk A., Thermal zones for more efficient data center energy management, Thermal and Thermomechanical Phenomena in Electronic Systems (ITherm), 2010 12th IEEE Intersociety Conference on. IEEE, 2010.
  • [25] Hannemann C.R. et al., Lifetime exergy consumption as a sustainability metric for enterprise servers, Proceedings of the ASME 2nd International Conference on Energy Sustainability. Jacksonville, Florida, August 2008.
  • [26] Al-Rabghi O.M., Hittle D.C., Energy simulation in buildings: overview and BLAST example, Energy conversion and Management, 2001.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a4e0c484-8a06-4d44-923b-746d0366f50f
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