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R. Brent (1996)
Applied Cost-benefit Analysis
G. Hammond (1998)
Alternative Energy Strategies for the United Kingdom RevisitedTechnological Forecasting and Social Change, 59
(2010)
One North Sea: A Study into the North Sea Cross-Border CO 2 Transport and Storage. Cambridge: Element Energy Limited
C. Dyer, G. Hammond, R. McKenna (2008)
Engineering sustainability: energy efficiency, thermodynamic analysis and the industrial sector
W. Choate (2003)
Energy and Emission Reduction Opportunities for the Cement Industry
(2009)
Development of State of the Art-Techniques in Cement Manufacturing: Trying to Look Ahead. (Commissioned by the World Business Council for Sustainable Development, Cement Sustainability Initiative)
(2011)
Office of National Statistics (ONS)
(2009)
Industrial heat pumps for steam and fuel savings
P. Rohdin, P. Thollander (2006)
Barriers to and driving forces for energy efficiency in the non-energy intensive manufacturing industry in SwedenEnergy, 31
P. Boonekamp (2006)
Evaluation of methods used to determine realized energy savingsEnergy Policy, 34
J. Norman, G. Hammond (2011)
Industrial Energy Use from a Bottom-Up Perspective
C. Dyer, G. Hammond, Craig Jones, R. McKenna (2008)
Enabling technologies for industrial energy demand managementEnergy Policy, 36
(2008)
Carbon Management Best Practice in Food and Drink Manufacturing: Guidance Prepared as Part of FDF's Five-Fold Environmental Ambition
S. Sorrell, A. Mallett, Sheridan Nye (2011)
Barriers to industrial energy efficiency: a literature review
(2011)
Heat Pumps in Industry. Paris: IEA Heat Pump Centre
P. Griffin, G. Hammond, K. Ng, J. Norman (2012)
Impact review of past UK public industrial energy efficiency RD&D programmesEnergy Conversion and Management, 60
(2012)
of Capital Study 2011/2012: Developments in Volatile Markets
(2011)
Performance 2010: A Sector Plan Report from the UK Cement Industry
F. Kreith, R. West (1997)
CRC handbook of energy efficiency
Global Cement Database of CO 2 and Energy Information. Geneva: The Cement Sustainability Initiative, WBCSD
G. Wall, Mei Gong (1996)
EXERGY ANALYSIS VERSUS PINCH TECHNOLOGY
J. Norman (2013)
Industrial Energy Use and Improvement Potential
G. Peters, J. Minx, C. Weber, O. Edenhofer (2011)
Growth in emission transfers via international trade from 1990 to 2008Proceedings of the National Academy of Sciences, 108
J. Parfitt, M. Barthel, S. Macnaughton (2010)
Food waste within food supply chains: quantification and potential for change to 2050Philosophical Transactions of the Royal Society B: Biological Sciences, 365
(2008)
Mineral Planning Factsheet: Cement. London: Department of Communities and Local Government
T. Wiedmann, Richard Wood, J. Minx, M. Lenzen, D. Guan, R. Harris (2010)
A CARBON FOOTPRINT TIME SERIES OF THE UK – RESULTS FROM A MULTI-REGION INPUT–OUTPUT MODELEconomic Systems Research, 22
S. Allen, G. Hammond, H. Harajli, Craig Jones, M. McManus, A. Winnett (2008)
Integrated appraisal of micro-generators: methods and applications, 161
(2011)
The Carbon Plan: Delivering Our Low Carbon Future
S. Tassou, M. Kolokotroni, B. Gowreesunker, V. Stojceska, A. Azapagic, P. Fryer, S. Bakalis (2014)
Energy demand and reduction opportunities in the UK food chain, 167
(2009)
Energy Technology Transitions for Industry: Strategies for the Next Industrial Revolution
J. Chadha, N. Dimsdale (1999)
A long view of real ratesOxford Review of Economic Policy, 15
E. Weizsäcker, K. Hargroves, Michael. Smith, C. Desha, P. Stasinopoulos (2009)
Factor Five: Transforming the Global Economy through 80% Improvements in Resource Productivity
(2010)
Survey of Availability of Heat Pumps in the Food and Beverage Fields
Doreen Schweizer (2016)
Design Of Thermal Systems
G. Hammond (2007)
Industrial energy analysis, thermodynamics and sustainabilityApplied Energy, 84
(2014)
London: The Stationary Office Limited
H. Groot, E. Verhoef, P. Nijkamp (2001)
Energy Saving by Firms, Decision-Making, Barriers and PoliciesChange: The Magazine of Higher Learning, 47
(2012)
CCS Roadmap: Supporting deployment of Carbon Capture and Storage in the UK. London: DECC
(1998)
Engineering Council. 2020 vision: the engineering challenges of energy
R. McKenna, J. Norman (2010)
Spatial modelling of industrial heat loads and recovery potentials in the UKEnergy Policy, 38
D. Pudjianto, P. Djapic, M. Aunedi, C. Gan, G. Strbac, Sikai Huang, D. Infield (2013)
Smart control for minimizing distribution network reinforcement cost due to electrificationEnergy Policy, 52
(2012)
Guidelines to Defra/DECC's GHG Conversion Factors for Company Reporting
A. Kolip, A. Savaş (2010)
Energy and exergy analyses of a parallel flow, four- stage cyclone precalciner type cement plant
E. Worrell, J. Laitner, M. Ruth, Hodayah Finman (2003)
Productivity benefits of industrial energy efficiency measuresEnergy, 28
F. Unander, S. Karbuz, L. Schipper, Marta Khrushch, M. Ting (1999)
Manufacturing energy use in OECD countries: decomposition of long-term trendsEnergy Policy, 27
(2010)
Integrated Pollution Prevention and Control: Reference Document on Best Available Techniques in the Cement, Lime and Magnesium Oxide Manufacturing Industries
M. Pye, A. Mckane (2000)
Making a stronger case for industrial energy efficiency by quantifying non-energy benefitsResources Conservation and Recycling, 28
(2000)
Cement-Part 1: Composition, Specifications and Conformity Criteria for Common Cements
(2011)
Renewable Heat Incentive Scheme: Frequently Asked Questions
D. Barker, S. Turner, P. Napier-Moore, M. Clark, J. Davison (2009)
CO2 Capture in the Cement IndustryEnergy Procedia, 1
J. Marshall (2014)
Centre for Action Research in Professional Practice
(2006)
Capture of CO2 from a cement plant - technical possibilities and economical estimates
P. Griffin, G. Hammond, J. Norman (2014)
Prospects for emissions reduction in the UK cement sector, 167
(2008)
Low CO2 Concrete: Are We Making Any Progress? (BEDP Environment Design Guide)
G. Hammond, Craig Jones, Áine O’Grady (2015)
Environmental Life Cycle Assessment (LCA) of Energy Systems
(2011)
MPA Cement Fact Sheet 12—Novel Cements: Low Energy, Low Carbon Cements. Camberley: Mineral Products Association (MPA)
C. Mandil (2007)
Tracking Industrial Energy Efficiency and CO2 Emissions
(1996)
Thermal Design & Optimization
K. Bennaceur (2008)
CO2 Capture and Storage: A Key Carbon Abatement Option
M. Juenger, F. Winnefeld, J. Provis, J. Ideker (2011)
Advances in alternative cementitious bindersCement and Concrete Research, 41
G. Hammond, A. Stapleton (2001)
Exergy analysis of the United Kingdom energy systemProceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy, 215
(2010)
Technological Developments in Europe: A Long-Term View of CO2 Efficient Manufacturing in the European Region
B. Ang (2005)
The LMDI approach to decomposition analysis: a practical guideEnergy Policy, 33
(2011)
Embodied carbon: the inventory of carbon and energy (ICE)
E. O’Malley, J. Schleich, Sue Scott (2004)
The Economics Of Energy Efficiency: Barriers to Cost-Effective Investment
G. Hammond (2015)
Progress in energy demand reduction – from here to 2050, 168
G. Hammond, Craig Jones (2008)
Embodied energy and carbon in construction materials, 161
H. Brown, B. Hamel, B. Hedman (1985)
Energy analysis of 108 industrial processes
C. Ramírez, K. Blok, M. Neelis, M. Patel (2006)
Adding apples and oranges: The monitoring of energy efficiency in the Dutch food industryEnergy Policy, 34
F. Unander (2007)
Decomposition of manufacturing energy-use in IEA countries: How do recent developments compare with historical long-term trends?Applied Energy, 84
F. Kreith (1999)
CRC Handbook of Thermal Engineering
(2011)
Assessment of the potential of heat recovery in food and drink industry by the use of TIMES model
(2005)
Measuring Environmental Performance: Sector Report for the Cement Industry
UK Greenhouse Gas Emissions-Final Figures, Office of National Statistics [ONS] Statistical Release
T. Kuramochi, A. Ramírez, W. Turkenburg, A. Faaij (2012)
Comparative assessment of CO2 capture technologies for carbon-intensive industrial processesProgress in Energy and Combustion Science, 38
(2011)
Cost of Capital Study
(2003)
UK Energy Use by Electric Motors in Industrial and Commercial Applications. London: Defra (Market Transformation Programme
P. Griffin (2015)
Radical change in energy intensive UK industry
G. Hammond, A. Winnett (2006)
Interdisciplinary perspectives on environmental appraisal and valuation techniques, 159
(2014)
Application of Industrial Heat Pumps
(1970)
Energy Consumption in the UK (ECUK), Table 4.02: Industrial Energy Consumption by Fuel
Yeonbae Kim, E. Worrell (2002)
International comparison of CO2 emission trends in the iron and steel industryEnergy Policy, 30
(2006)
Clean Coal Technologies in Japan: Technological Innovation in the Coal Industry (Jointly Produced with the
(2012)
A Carbon Reduction Strategy. London: MPA
(2012)
London: Defra
Resumen Ejecutivo (2006)
Energy Technology Perspectives 2012
(1948)
National Statistics Online-Gross Value Added (GVA) of the Manufacturing Sector Indexed to Constant
G. Hammond, H. Harajli, Craig Jones, A. Winnett (2012)
Whole systems appraisal of a UK Building Integrated Photovoltaic (BIPV) system: Energy, environmental, and economic evaluationsEnergy Policy, 40
(2010)
2050 Pathways Analysis. London: Department of Energy and Climate Change
(2004)
Loss and Opportunities Analysis: US Manufacturing and Mining
A. Jaffe, Robert Stavins (1994)
The energy-efficiency gap What does it mean?Energy Policy, 22
G. Hammond, J. Norman (2012)
Decomposition analysis of energy-related carbon emissions from UK manufacturingEnergy, 41
E. Gartner, D. Macphee (2011)
A physico-chemical basis for novel cementitious bindersCement and Concrete Research, 41
K. Chua, S. Chou, J. Ho, Mohammad Hawlader (2002)
HEAT PUMP DRYING: RECENT DEVELOPMENTS AND FUTURE TRENDSDrying Technology, 20
J. Beer (2000)
Potential for Industrial Energy-Efficiency Improvement in the Long Term
Progress in reducing industrial energy demand and carbon dioxide (CO2 ) emissions is evaluated with a focus is on the situation in the United Kingdom (UK), although the lessons learned are applicable across much of the industrialized world. The UK industrial sector is complex, because it may be viewed as consisting of some 350 separate combinations of subsectors, devices and technologies. Various energy analysis and carbon accounting techniques applicable to industry are described and assessed. The contributions of the energy‐intensive (EI) and nonenergy‐intensive (NEI) industrial subsectors over recent decades are evaluated with the aid of decomposition analysis. An observed drop in aggregate energy intensity over this timescale was driven by different effects: energy efficiency improvements; structural change; and fuel switching. Finally, detailed case studies drawn from the Cement subsector and that associated with Food and Drink are examined; representing the EI and NEI subsectors, respectively. Currently available technologies will lead to further, short‐term energy and CO2 emissions savings in manufacturing, but the prospects for the commercial exploitation of innovative technologies by mid‐21st century are far more speculative. There are a number of nontechnological barriers to the take‐up of such technologies going forward. Consequently, the transition pathways to a low carbon future in UK industry by 2050 will exhibit large uncertainties. The attainment of significant falls in carbon emissions over this period depends critically on the adoption of a limited number of key technologies [e.g., carbon capture and storage (CCS), energy efficiency techniques, and bioenergy], alongside a decarbonization of the electricity supply. WIREs Energy Environ 2016, 5:684–714. doi: 10.1002/wene.212
Wiley Interdisciplinary Reviews: Energy and Environment – Wiley
Published: Nov 1, 2016
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