Concordia University Montreal February 8th Manfred Hegger energy+ Energy-efficient and energy-producing buildings in Germany
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1 Concordia University Montreal February 8th 2013 Manfred Hegger energy+ Energy-efficient and energy-producing buildings in Germany
2 Intro Technische Universität Darmstadt, Energy Efficient Building Design Unit
3 ee Technische Universität Darmstadt Department of Architecture Energy Efficient Building Design Unit Unit founded in 2001 University Course Teaching and Further Education Activities Research and Consultancy Work from 2005: ee-concept founded as Spin-off run by former Unit Members from 2008: Bachelor and Master Courses replacing Diploma Course. from 2012: second foundation funded chair Sustainable Building Design 4 Teaching Staff 15 Academic Research Staff 20 Student Research Assistants 4 External Lecturers
4 ee key competences teaching activities Sustainable Building Design Life-cycle of Buildings Construction Materials Energy-efficient Architecture Methodology of the Architectural Design Process research Life-cycle Costing Integration of Renewable Energy Systems into Architecture Evaluation of Sustainability in Architecture consulting Sustainability Advice and Auditing, CO 2 -Reduction Projects Energy Concepts for new and existing Buildings Consulting to national and intenational Institutions (UIA, UNEP, EU)
5 Intro HHS Planer + Architekten AG
6 Hegger Hegger Schleiff HHS Planer+Architekten AG 1980 founded as Partnership (BGB) Doris Hegger, Manfred Hegger, Günter Schleiff 1999 foundation of Eurolabors Integrated Laboratories Planning (AG) 2001 change to closely held Stock Company (AG) stocks in the hands of the members of the office 5 Directors 35 Staff
7 HHS key competences Fields of Work Master Planning, Programming, Feasibility Studies Urban Planning Integral Architectural Design, General Planning Major Subjects Sustainability in Architecture Energy Efficient Architectural Design Innovation, Building Research Major Types of Building Office and Industrial Buildings Educational and Research Buildings Public Buildings Housing
8 Sustainable Architecture?
9 DGNB LEED CA BREEAM LEED HQE TQ MINERGIE-ECO CASBEE SICES LEED VAE EEWH LEED IN LEED BR Green Star Green Star NZ International Certification Systems
10 Objectives of the German System (DGNB) To develop and promote materials, means and solutions for planning, construction and operation processes of buildings to meet the criteria of sustainability To develop and award a quality label for sustainable building To create a built infrastructure that is environmentally friendly, resource efficient and profitable, benefitting health, comfort and performance of the users The German DGNB System Objectives
11 Number of Buildings Voluntary Incentive System Bronze Silver Gold Legal Regulations Building Performance The German DGNB System A vountary incentive system
12 6 areas of evaluation 49 criteria The German DGNB System holistic buidling evaluation
13 2. DGNB Certification System for Sustainable Building Weighting of evaluation areas Protection Area Natural Environment Natural Resources Health Economic Value Social & Cultural Values Protection Goal Protection of the Environment Protection of Natural Resources Decreased Life-Cycle Costs Guarantee of Economical Value Assurance of Health & Thermal Comfort People-friendly Surroundings / Guarantee of Social and Cultural Value Assessment Ecological Economical Sociocultural Quality Quality and Functional Quality 22,5% 22,5% Technical Quality Process Quality 22,5% 22,5% 10,0% Site Quality The German DGNB System Evaluation Areas/Weighting
14 2. DGNB Certification System for Sustainable Building Ecological quality Economical quality Sociocultural & functional quality Technical quality Process quality Site quality The German DGNB System Criteria
15 Independent, transparent certification system Objective Criteria and Benchmarks Identifies interdependencies in order to address conflicts Calculation of Eco-balance via Environmental Product Declarations (EPD s) Transparent Risk Management Pre-Certificate goal definition and integrated planning at an early stage Goal-oriented system, not focused on specific measures Calculation of Life Cycle Costing (LCC) and -Analysis (LCA) Breakdown of results Sustainable = Economical (win-win situation) The German DGNB System 2nd generation Certification System
16 Materiality
17 1995 Gründerzentrum Hamm - Re-cycle Eco Centre Hamm (HHS)
18 Eco Centre Hamm (HHS) Flexibility, Energy Efficiency
19 Eco Centre Hamm (HHS) Recycle
20 Eco Centre Hamm (HHS) Integrated Hot Air collector
21 2004 Hospital extension - Reduce Materiality Reduce MVRDV; Erweiterung eines Krankenhauses
22 Materiality Lightness MVRDV; Erweiterung eines Krankenhauses
23 2010 Hessen-Campus - Re-use Hessencampus Wolfhagen (HHS) From former barracks/tank shelter
24 Hessencampus Wolfhagen (HHS) into vocational training centre
25 2013 Energy Bunker Hamburg Re-use Energy Bunker Hamburg (HHS)
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27 Vorprodukte-Herstellung Herstellung Rohstoff-Abbau Entsorgung Recycling Nutzungsphase Quelle: PE International / IBP Uni Stuttgart Materiality Materials Life Cycle 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
28 Materiality Materials Choice, Eco-Balance Data Quelle: Baustoffatlas
29 Materiality Information
30 Energy in Use
31 2000 Akademie Mont-Cenis Herne Akademie Mont-Cenis Herne (Jourda/HHS Architekten)
32 Akademie Mont-Cenis Herne (Jourda/HHS Architekten) Access for all Jourda+Perraudin/ HHS Planer & Architekten; Fortbildungsakademie
33 Akademie Mont-Cenis Herne (Jourda/HHS Architekten) New spaces
34 Akademie Mont-Cenis Herne (Jourda/HHS Architekten) BIPV
35 Akademie Mont-Cenis Herne (Jourda/HHS Architekten) Surplus energy
36 Akademie Mont-Cenis Herne (HHS Architekten) Energy Park
37 Energy Demand Development of total energy demand for housing
38 Energy gains 2000 Energy losses Time Energy State of the art
39 Energiegewinne 2000 Energieverluste Time Energy The future of building
40 Other renewable Solar thermal Solar electrical Wind Biomass Water power Nuclear Natural Gas Coal Oil Grafikquelle: eigene Darstellung Informationsquelle: Wissenschaftlicher Beirat Globale Umweltveränderungen WBGU Energy The future of global energy provision
41 Globale Energiepotenziale RENEWABLE ENERGY RESOURCES/a FOSSIL ENERGY RESOURCES total World Energy Use 16 TW per year Natural gas 215 TW total Wind TW per year Waves TW per year Petroleum 240 TW total Solar TWper year Otec 3-11 TW per year Uranium TW total Biomass 2-6 TW per year Tides 0.3 TW year Geothermal TW per year Hydro 3-4 TW per year Coal 900TW total Quelle: Velux Model Home 2020 Energy Available resources
42 Design and Build
43 2007 Solar Decathlon TU Darmstadt 2015 Prototype Home - Solar Decathlon 2007, Washington (TU Darmstadt)
44 2015 Prototype Home - Solar Decathlon 2007 Communication
45 Eingang/Arbeitsplatz Wohnzone 2015 Prototype Home - Solar Decathlon 2007 Adaptability
46 2015 Prototype Home - Solar Decathlon 2007 Space Economy
47 Essbereich Schlafbereich 2015 Prototype Home - Solar Decathlon 2007 Materials Economy
48 Bad 2015 Prototype Home - Solar Decathlon 2007 Adaptability
49 2015 Prototype Home - Solar Decathlon 2007 Energy producing louvers
50 Building design means. Compact building form. Highly insulated (Vacuum Insulation). Passive solar gains. Heat storage (PCM). Natural ventilation 2015 Prototype Home - Solar Decathlon 2007 Passive Means
51 Technical means. Photovoltaic cells. Solar thermal collectors. Heat pump/heat recovery 2015 Prototype Home - Solar Decathlon 2007 Active Means
52 09 Energy Balance (Energiebilanz) 2015 Prototype Home - Solar Decathlon 2007 Energy balance
53 2015 Prototype Home - Solar Decathlon 2007
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55 2009 Plusenergiehaus BMVBS Plus Energy Exhibition Building of German Federal Government Touring Germany
56 Plus Energy Exhibition Building Details
57 2009 Solar Decathlon TU Darmstadt 2015 Prototype Home - Solar Decathlon, Washington 2009 (TU Darmstadt)
58 2015 Prototype Home - Solar Decathlon 2009 Spatial Concept
59 Solar Decathlon 2009 ground floor 2015 Prototype Home - Solar Decathlon 2009 Ground Floor
60 Solar Decathlon 2009 longitudinal section 2015 Prototype Home - Solar Decathlon 2009 Section
61 Solar Decathlon energy concept 2015 Prototype Home - Solar Decathlon 2009 Heating and Ventilation
62 2015 Prototype Home - Solar Decathlon 2009 Design and Build
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64 2015 Prototype Home - Solar Decathlon 2009 Assembly on the Mall
65 2015 Prototype Home - Solar Decathlon 2009 Energy producing facades
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68 Solar Decathlon 2009 ready to compete 2015 Prototype Home - Solar Decathlon 2009 Interior
69 2015 Prototype Home - Solar Decathlon 2009
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71 Gains: 400 kwh Use: 260 kwh 2015 Prototype Home - Solar Decathlon 2009 Weather Data, Energy Gains and Use 12. März 2010 Fachbereich Architektur Entwerfen und Energieeffizientes Bauen Prof. Manfred Hegger 88
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73 Solar Decathlon 2009 Solar Power 30. May h
74 2015 Prototype Home - Solar Decathlon 2009 Result
75 2015 Prototype Home - Solar Decathlon 2009 Monitoring on Campus
76 The Next Scale
77 2009 SMA Solar Inverter Factory CO 2 -neutral factory Kassel 2009 (HHS)
78 CO 2 -neutral factory Kassel 2009 (HHS) starting operation
79 CO 2 -neutral factory Kassel 2009 (HHS) Work Space Qualities
80 CO 2 -neutral factory Kassel 2009 (HHS) Loading area
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83 CO 2 -neutral factory Kassel 2009 (HHS) Production Process
84 2010 Solar Academy Constantin Meyer
85 2010 SMA Solar Academy Solar Academy Niestetal (HHS) Energy Self-sufficient Building
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92 Solarakademie Niestetal (HHS) Energy-producing Roof and Facade
93 Solarakademie Niestetal (HHS) Sustainable Building Construction
94 Solarakademie Niestetal (HHS) New Architectural Imagery
95 Solarakademie Niestetal (HHS) New Architectural Imagery
96 2013 Climate House Frankfurt 118 Klimahaus Frankfurt-Niederrad (HHS) Von Norden
97 119 Klimahaus Frankfurt-Niederrad (HHS)
98 2013 The Active Urban House, Frankfurt HHS Planer + Architekten AG
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104 Grundriss Regelgeschoss
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108 Energy Concept
109 Wärmequelle Abwasser Quelle: STZ-EGS
110 Energy balance: End energy
111 Energy balance: primary energy
112 Nutzerinterface - Startseite Starting Page Information for all Units Energy Status Total Available Balances by year/month in %, kwh, Best performer/average/ worst performer by year, month, day Recommendations Energy Source E-car rental access Quelle: FGee, TU Darmstadt
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114 Nutzerinterface - Verbrauch Current Consumption According to 10 min. measurement Indication of appliance with highest consumption Quelle: FGee, TU Darmstadt
115 Nutzungsprofile - Elektromobilität E-Mobility Available Cars/models Cruising ranges Charging conditions Quelle: FGee, TU Darmstadt
116 Refurbishing Sustainably
117 2010 Model Home 2020 Hamburg
118 2020 Model Home Existing House, Garden View 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
119 Visualisierungen 2020 Model Home Street view 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
120 2020 Model Home Garden view
121 2020 Model Home Energy Concept 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
122 Bau Bau CO 2 ÄQ (kg/m 2 a) CO 2 ÄQ (kg/m 2 a) Be tri eb ohne energ etisch e Sa nieru ng Be tri eb ohne energ etisch e Sa nieru ng Betrieb CO 2 -neutral Betrieb CO 2 -neutral a a 2020 Model Home CO 2 -Emissions over Time
123 2020 Model Home CO 2 -Emissions Refurbiished : New Home 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
124 2020 Model Home CO 2 -Emissions of Building Elements 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
125 2020 Model Home CO 2 -Balance of Life Cycle 18. Februar 2013 Fachbereich Architektur Institut Entwerfen und Energieeffizientes Bauen Prof. Manfred
126 2020 Model Home Remodelled Building New Stairways
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133 Refurbush New Buiding Plus Energy Buildings from prototype to standard? Single family homes Multi familly homes Commercial/educational Single family homes Multi family homesr
134 energy+ city
135 Our challenges
136 Challenges Land use 129 ha/d
137 Challenges I Space Demand 19m 2 44m 2
138 40 % Challenges CO 2 emissions
139 Challenges Mineral Resource use 50 %
140 Challenges Waste, missing materials cycles 60 %
141 Ressourcenknappheit 43 years Expected Life Time of Oil Resources Challenges Limited Resources
142 Urbanisierung 70% Global Population living in Cities (2050) Challenges Urbanisation
143 Bevölkerungsentwicklung 9,2 Bil. Global Population 2050 Challenges Population Growth
144 +0,8 Increase of average temperature during last 100 years Challenges Climate Change
145 Ressourcenschonendes Bauen Energieeffizient Bauen moreover, the EU member states shall safeguard until 31. December 2018, all new buildings to produce as much energy as they consume [ ] Challenges Political goals - EU 2019
146 With sustainable architecture and engineering we can deliver a decisive contribution to a necessary change in utilizing our limited natural resources We need to... come to an ecological chance by changing our ways to plan and design our cities and buildings, We want... the future-safe city, We aim at... ressource-saving architecture und engineering, We call for... A sharpened focus on sustainable development, We will... Produce credible dedication to these aims by our personal commitment,. Challenges Setting new professional goals accepting change of paradigm
147 Thank you for your attention!
BUILDING INTEGRATED PHOTOVOLTAIC Best Practices from Germany
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