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Modelling the Contribution of Domestic Heat Pumps to Delivering UK Energy Policy Objectives

DOI: 10.3390/app3020338

Keywords: heat pumps, Air Source Heat Pumps (ASHP), Ground Source Heat Pumps (GSHP), Standard Assessment Procedure (SAP), Monte Carlo, English Housing Condition Survey (EHCS)

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Abstract:

The UK Government has ambitious targets for CO 2 emissions reductions, particularly for the domestic housing stock. One technology that is expected to contribute significantly is heat pumps, both air and ground source. However, recent field trial results suggest that heat pumps in the UK are not delivering to performance expectations. This paper looks at the implications of these results for the UK housing stock’s future CO 2 emissions. The English Housing Condition Survey dataset is used as the basis for a Monte Carlo simulation in order to model CO 2 emissions and energy consumption for the whole of English housing stock out to 2050. The results suggest that, given the current UK electricity grid CO 2 emission factor, in the short term poor heat pump performance could lead to a rise in emissions where natural gas boilers are displaced. In the longer term, heat pumps can realise emissions reductions when installed at high penetration levels when combined with a grid decarbonisation strategy. Until grid decarbonisation occurs, an alternative phased strategy is proposed that includes phased replacement of resistive electric heating, first in households in fuel poverty and then the remainder of properties with this heating type. Following this phased strategy, real emissions savings are possible along with a potential reduction in fuel poverty.

References

[1]  Climate Change 2007: Synthesis Report. Contribution of Working Groups I, II and III to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change; Pachauri, R.K., Reisinger, A., Eds.; IPCC: Geneva, Switzerland, 2007; pp. 301–320.
[2]  Heat Call for Evidence; Department for Business, Enterprise and Regulatory Reform: London, UK, 2008.
[3]  OCC Household Emissions Project–Analysis Pack; Office of Climate Change: London, UK, 2007.
[4]  The UK Renewable Energy Strategy; HM Government: London, UK, 2009.
[5]  The UK Supply Curve for Renewable Heat; Department of Energy and Climate Change: London, UK, 2009.
[6]  The Renewable Energy Review; UK Committee on Climate Change: London, UK, 2011.
[7]  Anderson, B.R.; Chapman, P.F.; Cutland, N.G.; Dickson, C.M.; Doran, S.M.; Henderson, G. BREDEM-8 Model Description, 2001 update, BR439 ed.; BRE Press: Watford, UK, 2008.
[8]  The Government’s Standard Assessment Procedure for Energy Rating of Dwellings, Revision 3; BRE Press: Watford, UK, 2005.
[9]  Mitsubishi Ecodan Product Brochure. Available online: http://www.engensa.com/heatpumps/uploads/Mitsubishi-Ecodan-Brochure.pdf (accessed on 10 March 2013).
[10]  Mitsubishi Product Data. Available online: http://www.intelligentenergysolutions.com/ground-source-heat-pumps_c65.aspx (accessed on 10 March 2013).
[11]  Kavgic, M.; Mavrogianni, A.; Mumovic, D.; Summerfield, A.; Stevanovic, Z.; Djurovic-Petrovic, M. A review of bottom-up building stock models for energy consumption in the residential sector. Build. Environ. 2010, 45, 1683–1697, doi:10.1016/j.buildenv.2010.01.021.
[12]  English Housing Survey Housing Stock Report 2008; Department for Communities and Local Government: London, UK, 2010.
[13]  Domestic Heating Systems Ranked by Carbon Emission; Energy Saving Trust: London, UK, 2008.
[14]  Cockroft, J.; Kelly, N. A comparative assessment of future heat and power sources for the UK domestic sector. Energy Convers. Manage. 2006, 47, 2349–2360, doi:10.1016/j.enconman.2005.11.021.
[15]  The Scottish Renewables Heating Pilot; The Scottish Government: Edinburgh, Germany, 2008.
[16]  European Commission: Directorate-General for Energy and Transport, Case study 269. Available online: http://www.managenergy.net/download/nr269.pdf (accessed 10 March 2013).
[17]  Getting Warmer: A Field Trial of Heat Pumps; Energy Saving Trust: London, UK, 2010.
[18]  Kelly, N.J.; Cockcroft, J. Analysis of retrofit air source heat pump performance: Results from detailed simulations and comparison to field trial data. Energy Build. 2011, 43, 239–245, doi:10.1016/j.enbuild.2010.09.018.
[19]  Pollard, A.R. The Energy Performance of Heat Pump Water Heaters; Branz Study Report 237; Branz Ltd.: Judgeford, New Zealand, 2010.
[20]  Morrison, G.L.; Anderson, T.; Behnia, M. Seasonal performance rating of heat pump water heaters. Solar Energy 2004, 76, 147–152, doi:10.1016/j.solener.2003.08.007.
[21]  Firth, S.K.; Lomas, K.J.; Wright, A.J. Targeting household energy-efficiency measures using sensitivity analysis. Build. Res. Inf. 2010, 38, 25–30, doi:10.1080/09613210903236706.
[22]  Strachan, N. UK energy policy ambition and UK energy modelling—Fit for purpose? Energy Policy 2011, 39, 1037–1040, doi:10.1016/j.enpol.2011.01.015.
[23]  Cabrol, L.; Rowley, P.N. Towards low carbon homes—A simulation analysis of building-integrated air-source heat pump systems. Energy Build. 2012, 48, 127–136, doi:10.1016/j.enbuild.2012.01.019.
[24]  Carbon Trust—Conversion factors. Available online: http://www.carbontrust.com/media/18223/ctl153_conversion_factors.pdf (accessed on 12 March 2013).
[25]  Odenberger, M.; Johnsson, F. Achieving 60% CO2 reductions within the UK energy system—Implications for the electricity generation sector. Energy Policy 2007, 35, 2433–2452, doi:10.1016/j.enpol.2006.08.018.
[26]  Allowable Solutions for Tomorrow’s New Homes: Towards a Workable Framework; UK Zero Carbon Hub: London, UK, 2011.
[27]  Department for Communities and Local Government, Household Projections, 2008 to 2033. Available online: https://www.gov.uk/government/uploads/system/uploads/attachment_data/file/6395/1780763.pdf (accessed 10 March 2013).
[28]  Shorrock, L.D.; Utley, J.I. Domestic Energy Fact File 2008; UK Department for Energy and Climate Change: London, UK, 2008.
[29]  Palmer, J.; Boardman, B.; Bottrill, C.; Darby, S.; Hinnells, M.; Killip, G.; Layberry, R.; Lovell, H. Reducing the Environmental Impact of Housing; Consultancy study in support of the Royal Commission on Environmental Pollution’s 26th Report on the Urban Environment; Environmental Change Institute: Oxford, UK, 2006.
[30]  A Study of Hard to Treat Homes Using the English House Condition Survey; Energy Analysis Focus Report; Department for Environment, Food and Rural Affairs: London, UK, 2008.
[31]  Lin, C. Identifying Lowest-Emission Choices and Environmental Pareto Frontiers for Wastewater Treatment Wastewater Treatment Input-Output Model based Linear Programming. J. Ind. Ecol. 2011, 15, 367–380, doi:10.1111/j.1530-9290.2011.00339.x.
[32]  Wilson, D.; Rowley, P.N.; Watson, S.J. Utilising a Risk-Based Systems Approach in the Due Diligence Process for Renewable Energy Generation. IEEE Syst. J. 2011, 5, 223–232, doi:10.1109/JSYST.2011.2125150.
[33]  Leicester, P.; Goodier, C.; Rowley, P. Evaluating the Impacts of Community Renewable Energy Initiatives. In Proceedings of the ISES Solar World Congress, Kassel, Germany, 28 August–2 September 2011.

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