Structures for Value Adding and Sustainable Energy Systems

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1 Circular Economy: More business and more environmental protection through Material Flow Management! Structures for Value Adding and Sustainable Energy Systems Local renewables Conference 2014 Prof. Dr. Peter Heck Managing Director IfaS Institute for applied Material Flow Management

2 Zero-Emission Campus Birkenfeld: An innovative model for education and research! Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

3 Zero Emission Campus 100% Renewable heat/cooling supply based on waste wood, biogas and solar thermal 100% Renewable electricity based on cogeneration and photovoltaic 100% Energy efficiency Waste Heat Recovery Cooling system based on geothermal and solar adsorption Rain water utilisation Passive and Plus-Energy Buildings Campus as a Biotope Zero Waste Water and Nutrient recovery in planning Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

4 New UCB-Communication Centre Passive house standard PV-installation with an installed capacity of 40 kwp 40 cm exterior insulation Triple-glased windows Air conditioning with 80 % heat recovery Adiabatic cooling of the conference room High efficient electric motors Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

5 IfaS in Numbers Non-Profit Research Institute Foundation in Professors 80 Employees Approx. 4 Mill Euro turnover 5 Departments Renewable Energy & Energy Efficiency Biomass and Cultural landscape Management Zero Emission and MFM Research Education International MFM Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

6 Afraid of Energiewende? Ambitious targest: 100% RE in Germany till % RE in Rhineland Palatinate till 2030 Quelle: SFV.de Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

7 Circular Economy with MFM approach Material / Energy Flows Financial Resources Potentials Activated Regional Resources Regional Added Value & SME businesses Discover Potentials! Optimise Processes! Create Added Value! 2010 Institut für angewandtes Stoffstrommanagement (IfaS)

8 Economics of German Energiewende Quelle: Fraunhofer 2013

9 Study: Germany 100 % Renewable Electricity and Heat FHG ISE, Nov Electricity, Heat,Mobility FHG ISE, Nov Quelle FHG ISE * Zahlen nicht direkt vergleichbar regenerativer Energiemix inklusive Speicher, Netze keine Importe / Exporte 100 % EE Yearly costs 120 Mrd. today 121 Mrd. regenerativer Energiemix inklusive Speicher, Netze % Emissionsminderung Yearly costs 173 Mrd. today * 260 Mrd. 9

10 MFM Key Material Flow Potentials in Regions Foto: IfaS Water/Waste Water, Urban Waste, Sewage Sludge Fossile Energy Sources Fossile End energy (electricity, heat, cold,) Renewable Energies Biomass Agricultural Waste Buildings and Infrastructure Waste Fats and Oils Traffic and Mobility Special aspects like Tourism Etc.. Foto: H.-G. Oed Institut für angewandtes Stoffstrommanagement Discover Potentials Optimise Processess Create Regional Added Value

11 Flow Chart Energy Positive WWTP

12 Cost comparison: conventional to ZE WWTP Cost Positions IST Energy Autarkic Investment Civil Construction Technology Engineering Concept Sum Investment Operational Costs Energy Costs (Electricity, Gas) /a - Other operation and maintainence /a /a Sum Operational Costs /a /a Quelle: Dipl.-Ing. Stefan Krieger, HYDRO-Ingenieure Energie & Wasser GmbH, 2011

13 Cash Flow Development Quelle: Dipl.-Ing. Stefan Krieger, HYDRO-Ingenieure Energie & Wasser GmbH, 2011

14 Wind energy potential in a German county Windenergieanlagen LK Birkenfeld Anlagen inst. Leistung Ertrag Jahr am Netz MW 53 GWh am Netz (Repowering vor 2020) 4 12 MW 36 GWh 2020 Ausbaupotenzial 1 50% des Gesamtpotenzials MW GWh Summe MW GWh Am Netz (Repowering vor 2020) 4 12 MW 36 GWh Am Netz (Repowering nach 2020) MW 105 GWh Ausbaupotenzial 1 50% des Gesamtpotenzials MW GWh 2030 Ausbaupotenzial 2 40% des Gesamtpotenzials MW GWh Summe von 2020 bis MW GWh Am Netz (Repowering vor 2020 und vor 2050) 4 18 MW 47 GWh Am Netz (Repowering nach 2020) MW 105 GWh Ausbaupotenzial 1 (1. Repowering) MW GWh 2050 Ausbaupotenzial 2 (inkl. Erneuerung) MW GWh Ausbaupotenzial 3 10% des Gesamtpotenzials MW 714 GWh Summe von 2030 bis MW GWh Anlagengruppen und Repoweringstrategie: Ausbaupotenzial Ausbau 1 50% bis 2020 Repow ering-maßnahmen vor 2020 nach 2020 Ausbau 2 40% bis 2030 Ausbau 3 10% bis Repow ering bis 2040 Anlagenleistung 3,0 MW 4,5 MW Ausbauszenario Windenergie LK Birkenfeld (keine w eitere Vergrößerung der Anlagen bei späteren Repow ering-maßnahmen) Today electricity demand in BIR county 385 Wh/a Potential of approx GWh/a

15 More Added Value! Where is the money? Money for purchase of fossil resources: (Quelle: Statistisches Bundesamt (2013); eigene Berechnung) in 2004: 40 billion Euro in 2005: 55 billion Euro in 2007: 64 billion Euro in 2009: 58 billion (economoc crisis) in 2012: 83 Mrd. Euro 2014 : ca. 100 billion Euro

16 Energy costs in our villages A village with 300 households creates energy costs of approximately per year In Germany these costs are increasing by 4 to 6% per year The village is losing purchasing power every year Why not starting to invest that money instead of spending it??

17 Economic impact till 2050 in the county of Saarlouis Invest: ca. 4,7 Mrd. Income and savings: ca. 14,4 Mrd. Costs: ca. 7,7 Mrd. RAV ca.11,6 billion Euro

18 Potential of RAV in different Counties Einwohner Fläche 630 km² 966 km² 476 km² 588 km² 864 km² 606 km²

19 Regional Added Value in RLP till ,2 billion citizen revenues 2,1 billion public revenues 18 billion TEUR Zusätzliche Wertschöpfungseffekte durch EE und Gebäudesanierung 2000 bis 2030 über eine Betriebsdauer von 20 Jahren 0 Rheinland-Pfalz Unternehmen Bürger Gemeinden Land Summe

20 Key results of the Climate Protection Concept: Implementation strategy electricity Internal electricity consumption and efficiency lead to fluctuation of demand Expansion of Renewables increases drastically (most of all wind energy) Coverage of 507% till 2020 (county as electricity exporter) Expansion of Renewable Electricity RES RES Electricity cons. Year Wind gas CHP Biogas CHP PV Wind

21 Implementation strategy heat Reduction of heat consumption till 2050 through improvements in efficiency 50% Successive expansion of renewable heat (2050 at approx. 90%) 100% renewable heat possible through RES electricity Implementation of innovative technologies (e.g. wind gas plants) Expansion of the share of heat from RES RES RES Wind gas CHP Heat cons. Year Heat pumps Biogas CHP Biomass (solid) Solar thermal

22 Approach & key considerations

23 ZERO Carbon Emissions Communities

24 A clever man solves problems, a wise man avoids them (Chinese proverb) Discover Potentials! Optimise Processes! Create Added Value! 2010 Institut für angewandtes Stoffstrommanagement (IfaS)

25 Thank you for your time and attention

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