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Towards a Standard for Carbon Accounting: a view from CIBSE Hywel Davies CIBSE Technical Director and Stuart Macpherson  Irons Foulner Consulting Engineers
Current Standards Activity ,[object Object],[object Object],[object Object],[object Object],[object Object]
PAS 2050 ,[object Object],[object Object],[object Object]
Directives ,[object Object],[object Object],[object Object]
Carbon Accounting? ,[object Object],[object Object]
Westminster carbon counting conference, ICE, 24 January 2008 ,[object Object],[object Object],[object Object],[object Object]
Wider implications  Benchmarking needs: ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
We need to save real carbon,  not virtual carbon
The Credibility Gap for a green building award winner
Saving energy and CO 2  in a hurry,   using the multiplier effect   ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Use renewable supplies   AND   make buildings efficient in use
Making Performance Visible  with building energy certificates ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Passing on carbon + energy BPF Landlord’s statement ,[object Object],[object Object],[object Object],[object Object],[object Object]
Passing on carbon + energy  BPF Landlord’s statement
Drilling down further to assign realistic priorities
Drilling down even further: actual versus predicted for lighting
Comparing corporate performance on climate change – what metrics? Dr. Craig Mackenzie Director, Carbon Benchmarking Project University of Edinburgh Business School
The scope for low cost reductions Source: Vattenfal
Breakdown of the Tesco footprint Add note on fridge energy? Refrigeration  Tesco CSR Report 2007
Direct CO2e emissions No  Data
Relative carbon intensity? NB: this slide does not give an accurate comparison of performance No  Data
Meaningful comparison? NB: this slide does not give an accurate comparison of performance Food  processing  business Food non-food split Food- non-food split Food non-food split Use of  biodiesel Green tariff electricity Green tariff electricity Data  estimated Data  incomplete No  Data
An alternative strategy Add note on fridge energy? Refrigeration  Tesco CSR Report 2007 % f-gas  leakage pa KWh/linear meter of refrigeration Diesel litres/pallet delivered Average store energy rating % electricity from renewables  weighted for additionality
Carbon Counting for Neighbourhoods and Cities Dr Rajat Gupta Department of Architecture [email_address] Westminster Carbon Counting Conference 24 January 2008, London
Core methodologies used in DECoRuM Underlying physically-based energy models: BREDEM –12 linked to SAP 2001. Cost-benefit analysis approach
Outputs from DECoRuM
Framework for baseline predictions DECoRuM baseline energy model estimates energy consumption and CO 2  emissions  of individual dwellings as the basic component for calculation, and then aggregates these to an urban scale.
Oxford case study: DECoRuM baseline energy & CO 2  model © Rajat Gupta, Oxford Brookes University, Oxford, UK.
In conclusion Top down approaches Are they complementary to each other? What do we need to adopt for cities to be able to estimate baseline emissions, predict potential emission reductions, and take action? Bottom-up models
 
10 20 30 40 50 2000 2010 2020 2030 2040 2050 1990 Carbon dioxide emissions (MtCO 2 ) Draft London Plan targets 15% 20% 25% 30% 60% Today (+0.7 ° C already) Stern indicates the London Plan targets will not be sufficient 60% 90% New evidence? 2025
London: Where emissions come from: 21% 7% Emissions from London Domestic Commercial (inc. public sector) Industrial Ground-based Transport
Responsibility for Delivering 30% CO2 Cuts by 2025 Source: LECI; GLA analysis ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Solar Cities: 2 nd  International Conference 2006
LOW CARBON WOLVERCOTE
Principles of carbon counting for buildings in use   ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Carbon Dioxide Emissions will include:   (Source:Robert Cohen) Probably the most ‘correct’ approach is to split the scores into four categories: - Direct and measurable -  Indirect, pro-rated on the bases of purchases -  Indirect, not pro-rated and attributed to the industrial sectors - Fixed infrastructure, not pro-rated and attributable to government policy . Peter Harper, Centre for Alternative technology DIRECT EMISSIONS 34% HOUSE ENERGY 19.5% TRANSPORT ENERGY 14.5% INDIRECT PRO RATA EMISSONS 51% INDIRECT INFRASTRUCTURAL EMISSONS 15%
Making Business Sense of Climate Change www.thecarbontrust.co.uk
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
Recommendations: ,[object Object],[object Object],[object Object],[object Object],[object Object]
The what works palette of RENs Source: njsolar
Wind –  It works and is available on site House height 8m 400W turbine Electricity provision: 20% of a household Height: 2m Cost: £1500-2000 6kW turbine Electricity provision: 3.5 houses or 20% of a primary school Height: 9m Cost: £15-18k 220kW turbine Electricity provision: 85 houses or 5 primary schools Height: 36m Cost: £550-700k 1.5MW turbine Electricity provision: 1200 houses or 75 primary schools Height: 65m Cost: £1-1.5 million
RENEWABLE ENERGY GRANTS: The Low Carbon Buildings Programme - Stream 2B. ( www.lowcarbonbuildings.org.uk/  ).   ,[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
Key recomendations:   142,000 644,180 134 20,578 TOTAL  35.53 35,000 36,500 6.9 985 Solar hot water systems 3.58 100,000 442,080 84 11,936 Under floor heating with GSHP and wind turbine - 0 48,960 21 2,693 Natural ventilation of the sports hall  0.56 2,000 64,800 12.3 3,564 Optimisation of the natural day lighting of the hall  3.57 5,000 51,840 9.9 1,400 high thermal efficiency of sports hall   £ kWh tonnes £ (years) Energy Savings CO2 Savings Financial Savings Payback period Estimated Cost of Measure Estimated Annual Savings Recommendations and Key Actions
Guy Hudson, Convenor   “ I nternational network for  C arbon  A ccounting  R eporting, and  R eduction in the  B uilt environment “   ICT Workgroup
ICARB ,[object Object],[object Object]
ICARB ,[object Object],[object Object],[object Object]
Pushing at an open door ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
ICARB  Consistent carbon accounting ,[object Object],[object Object],[object Object]
The world according to ICARB 2 Dimensions of the problem Sectors Scope Individuals Communities Cities Government Buildings ICT Footprinting
3 rd  Dimensions of the problem  Units, Metrics, Factors Datasets Boundaries For each sector. Each application level - identify parameters (organisations and projects considered in the sector subcommittees) Parameters
The ICT Workgroup? Steering Committee Sectors Scope Parameters
The solution will involve: Open source, Standards –based  ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Each workgroup ,[object Object],[object Object],[object Object]
Sue Roaf  Professor of Architectural Engineering Heriot Watt University Edinburgh [email_address]

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Towards a Standard for Carbon Accounting | Hywell Davies

  • 1. Towards a Standard for Carbon Accounting: a view from CIBSE Hywel Davies CIBSE Technical Director and Stuart Macpherson Irons Foulner Consulting Engineers
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  • 8. We need to save real carbon, not virtual carbon
  • 9. The Credibility Gap for a green building award winner
  • 10.
  • 11. Use renewable supplies AND make buildings efficient in use
  • 12.
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  • 14. Passing on carbon + energy BPF Landlord’s statement
  • 15. Drilling down further to assign realistic priorities
  • 16. Drilling down even further: actual versus predicted for lighting
  • 17. Comparing corporate performance on climate change – what metrics? Dr. Craig Mackenzie Director, Carbon Benchmarking Project University of Edinburgh Business School
  • 18. The scope for low cost reductions Source: Vattenfal
  • 19. Breakdown of the Tesco footprint Add note on fridge energy? Refrigeration Tesco CSR Report 2007
  • 21. Relative carbon intensity? NB: this slide does not give an accurate comparison of performance No Data
  • 22. Meaningful comparison? NB: this slide does not give an accurate comparison of performance Food processing business Food non-food split Food- non-food split Food non-food split Use of biodiesel Green tariff electricity Green tariff electricity Data estimated Data incomplete No Data
  • 23. An alternative strategy Add note on fridge energy? Refrigeration Tesco CSR Report 2007 % f-gas leakage pa KWh/linear meter of refrigeration Diesel litres/pallet delivered Average store energy rating % electricity from renewables weighted for additionality
  • 24. Carbon Counting for Neighbourhoods and Cities Dr Rajat Gupta Department of Architecture [email_address] Westminster Carbon Counting Conference 24 January 2008, London
  • 25. Core methodologies used in DECoRuM Underlying physically-based energy models: BREDEM –12 linked to SAP 2001. Cost-benefit analysis approach
  • 27. Framework for baseline predictions DECoRuM baseline energy model estimates energy consumption and CO 2 emissions of individual dwellings as the basic component for calculation, and then aggregates these to an urban scale.
  • 28. Oxford case study: DECoRuM baseline energy & CO 2 model © Rajat Gupta, Oxford Brookes University, Oxford, UK.
  • 29. In conclusion Top down approaches Are they complementary to each other? What do we need to adopt for cities to be able to estimate baseline emissions, predict potential emission reductions, and take action? Bottom-up models
  • 30.  
  • 31. 10 20 30 40 50 2000 2010 2020 2030 2040 2050 1990 Carbon dioxide emissions (MtCO 2 ) Draft London Plan targets 15% 20% 25% 30% 60% Today (+0.7 ° C already) Stern indicates the London Plan targets will not be sufficient 60% 90% New evidence? 2025
  • 32. London: Where emissions come from: 21% 7% Emissions from London Domestic Commercial (inc. public sector) Industrial Ground-based Transport
  • 33.
  • 34. Solar Cities: 2 nd International Conference 2006
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  • 37. Carbon Dioxide Emissions will include: (Source:Robert Cohen) Probably the most ‘correct’ approach is to split the scores into four categories: - Direct and measurable - Indirect, pro-rated on the bases of purchases - Indirect, not pro-rated and attributed to the industrial sectors - Fixed infrastructure, not pro-rated and attributable to government policy . Peter Harper, Centre for Alternative technology DIRECT EMISSIONS 34% HOUSE ENERGY 19.5% TRANSPORT ENERGY 14.5% INDIRECT PRO RATA EMISSONS 51% INDIRECT INFRASTRUCTURAL EMISSONS 15%
  • 38. Making Business Sense of Climate Change www.thecarbontrust.co.uk
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  • 42. The what works palette of RENs Source: njsolar
  • 43. Wind – It works and is available on site House height 8m 400W turbine Electricity provision: 20% of a household Height: 2m Cost: £1500-2000 6kW turbine Electricity provision: 3.5 houses or 20% of a primary school Height: 9m Cost: £15-18k 220kW turbine Electricity provision: 85 houses or 5 primary schools Height: 36m Cost: £550-700k 1.5MW turbine Electricity provision: 1200 houses or 75 primary schools Height: 65m Cost: £1-1.5 million
  • 44.
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  • 46.  
  • 47. Key recomendations:   142,000 644,180 134 20,578 TOTAL 35.53 35,000 36,500 6.9 985 Solar hot water systems 3.58 100,000 442,080 84 11,936 Under floor heating with GSHP and wind turbine - 0 48,960 21 2,693 Natural ventilation of the sports hall 0.56 2,000 64,800 12.3 3,564 Optimisation of the natural day lighting of the hall 3.57 5,000 51,840 9.9 1,400 high thermal efficiency of sports hall   £ kWh tonnes £ (years) Energy Savings CO2 Savings Financial Savings Payback period Estimated Cost of Measure Estimated Annual Savings Recommendations and Key Actions
  • 48. Guy Hudson, Convenor “ I nternational network for C arbon A ccounting R eporting, and R eduction in the B uilt environment “ ICT Workgroup
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  • 53. The world according to ICARB 2 Dimensions of the problem Sectors Scope Individuals Communities Cities Government Buildings ICT Footprinting
  • 54. 3 rd Dimensions of the problem Units, Metrics, Factors Datasets Boundaries For each sector. Each application level - identify parameters (organisations and projects considered in the sector subcommittees) Parameters
  • 55. The ICT Workgroup? Steering Committee Sectors Scope Parameters
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  • 58. Sue Roaf Professor of Architectural Engineering Heriot Watt University Edinburgh [email_address]

Notes de l'éditeur

  1. Comment on indirect emissions – upstream/downstream
  2. Share of total UK emissions - Doesn’t include upstream/downstream
  3. Broadly speaking, London Plan targets were based on 550 ppm target – whcih has now been revised to 450 or below They are in line with UK/Royal Commission targets (ie not too much more dramatic) But Tyndall analysis in Stern report indicates Need to take a ‘overall carbon budget’ approach, not linear targets – this is why short term action is key! 450 ppm required – and this only gives us a 50/50 chance of avoiding catastrophic climate change (3 degrees celsius or less)
  4. In the UK we have 40% of Europe's total wind energy. But it's still largely untapped and only 0.5% of our electricity requirements are currently generated by wind power.