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Published in: The International Journal of Life Cycle Assessment 2/2012

01-02-2012 | LCA IN TRANSPORTATION

A system dynamics approach in LCA to account for temporal effects—a consequential energy LCI of car body-in-whites

Authors: Peter Stasinopoulos, Paul Compston, Barry Newell, Haley M. Jones

Published in: The International Journal of Life Cycle Assessment | Issue 2/2012

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Abstract

Purpose

The purpose of this paper is to take steps towards a life cycle assessment that is able to account for changes over time in resource flows and environmental impacts. The majority of life cycle inventory (LCI) studies assume that computation parameters are constants or fixed functions of time. This assumption limits the opportunities to account for temporal effects because it precludes consideration of the dynamics of the product system.

Methods

System dynamics methods are used in a consequential, fleet-based LCI that accounts for some aspects of the dynamics of the wider system. The LCI model compares the life-cycle energy consumption of car body-in-whites (BIWs) in Australia made from steel and aluminium. It incorporates two dynamic processes: the flow of BIWs into and out of the fleet, and the recycling of aluminium from end-of-life BIWs back into new BIW production. The dynamical model computes both product-based and fleet-based estimates.

Results and discussion

The product-based computations suggest that an aluminium BIW consumes less energy than a steel BIW over a single life cycle. The fleet-based computations suggest that the energy benefits of aluminium BIWs do not begin to emerge for some time. The substitution of aluminium for steel is a low-leverage intervention that changes the values of a few parameters of the system. The system has a delayed, damped response to this intervention because the large stock of BIWs is a source of high inertia, and the long useful life leads to a slow decay of steel BIWs out of the fleet. The recycling of aluminium back into BIW production is a moderate-leverage intervention that initially strengthens a reinforcing feedback loop, driving a rapid accumulation of energy benefits. Dominance then shifts to a balancing loop, slowing the accumulation of energy benefits. Both interventions result in a measureable reduction in life-cycle energy consumption, but only temporarily divert the underlying growth trend.

Conclusions

The results suggest that product-based LCIs overestimate the short-term energy benefits of aluminium by not accounting for the time required for the stock of preexisting steel components to decay out of the fleet, and underestimate the long-term energy benefits of aluminium components by not accounting for changes in the availability of recycled aluminium. The results also suggest that interventions such as lightweighting and other efficiency measures alone can slow the growth of energy consumption, but are probably inadequate to achieve sustainable energy consumption levels if the fleet is large.

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Literature
go back to reference Australian Automotive Intelligence (2010) Australian Automotive Intelligence Yearbook 2010, 9th edn. Australian Automotive Intelligence, Melbourne Australian Automotive Intelligence (2010) Australian Automotive Intelligence Yearbook 2010, 9th edn. Australian Automotive Intelligence, Melbourne
go back to reference Australian Bureau of Statistics (2008) 3222.0–Population projections, Australia, 2006 to 2101. Commonwealth of Australia, Canberra Australian Bureau of Statistics (2008) 3222.0–Population projections, Australia, 2006 to 2101. Commonwealth of Australia, Canberra
go back to reference Australian Bureau of Statistics (2011) 9390.0–Motor vehicle census. Commonwealth of Australia, Canberra Australian Bureau of Statistics (2011) 9390.0–Motor vehicle census. Commonwealth of Australia, Canberra
go back to reference Bertram M, Buxmann K, Furrer P (2009) Analysis of greenhouse gas emissions related to aluminium transport applications. Int J Life Cycle Assess 14(Suppl 1):S62–S69CrossRef Bertram M, Buxmann K, Furrer P (2009) Analysis of greenhouse gas emissions related to aluminium transport applications. Int J Life Cycle Assess 14(Suppl 1):S62–S69CrossRef
go back to reference Buxman K (1994) Ecological aspects of the use of aluminium in cars, with particular regard to recycling techniques. Resour Conserv Recycl 10(1–2):17–23CrossRef Buxman K (1994) Ecological aspects of the use of aluminium in cars, with particular regard to recycling techniques. Resour Conserv Recycl 10(1–2):17–23CrossRef
go back to reference Cáceres CH (2009) Transient environmental effects of light alloy substitutions in transport vehicles. Mater Des 30(8):2813–2822CrossRef Cáceres CH (2009) Transient environmental effects of light alloy substitutions in transport vehicles. Mater Des 30(8):2813–2822CrossRef
go back to reference Carle D, Blount G (1999) The suitability of aluminium as an alternative material for car bodies. Mater Des 20(5):267–272CrossRef Carle D, Blount G (1999) The suitability of aluminium as an alternative material for car bodies. Mater Des 20(5):267–272CrossRef
go back to reference Carlsson BT (2009) Selecting material for the exterior panel of a private car back door by adopting a total cost accounting approach. Mater Des 30(3):826–832CrossRef Carlsson BT (2009) Selecting material for the exterior panel of a private car back door by adopting a total cost accounting approach. Mater Des 30(3):826–832CrossRef
go back to reference Das S (2000) The life-cycle impacts of aluminum body-in-white automotive material. J Miner Met Mater Soc 52(8):41–44CrossRef Das S (2000) The life-cycle impacts of aluminum body-in-white automotive material. J Miner Met Mater Soc 52(8):41–44CrossRef
go back to reference Das S (2005) Life cycle energy impacts of automotive liftgate inner. Resour Conserv Recycl 43(4):375–390CrossRef Das S (2005) Life cycle energy impacts of automotive liftgate inner. Resour Conserv Recycl 43(4):375–390CrossRef
go back to reference Davies G (2003) Materials for automobile bodies. Butterworth-Heinemann, Oxford, pp 224–228 Davies G (2003) Materials for automobile bodies. Butterworth-Heinemann, Oxford, pp 224–228
go back to reference Dubreuil A, Bushi L, Das S, Tharumarajah A, Xianzheng G (2010) A comparative life cycle assessment of magnesium front end autoparts. SAE 2010 World Congress & Exhibition, April 2010, Detroit, MI, USA, Session: Sustainable Manufacturing, Materials and Components Dubreuil A, Bushi L, Das S, Tharumarajah A, Xianzheng G (2010) A comparative life cycle assessment of magnesium front end autoparts. SAE 2010 World Congress & Exhibition, April 2010, Detroit, MI, USA, Session: Sustainable Manufacturing, Materials and Components
go back to reference Ekvall T, Assefa G, Björklund A, Eriksson O, Finnveden G (2007) What life-cycle assessment does and does not do in assessments of waste management. Waste Manag 27(8):989–996CrossRef Ekvall T, Assefa G, Björklund A, Eriksson O, Finnveden G (2007) What life-cycle assessment does and does not do in assessments of waste management. Waste Manag 27(8):989–996CrossRef
go back to reference Field F, Kirchain R, Clark J (2000) Life cycle assessment and temporal distributions of emissions: developing a fleet-based analysis. J Ind Ecol 4(2):71–91CrossRef Field F, Kirchain R, Clark J (2000) Life cycle assessment and temporal distributions of emissions: developing a fleet-based analysis. J Ind Ecol 4(2):71–91CrossRef
go back to reference Forrester JW (1995) Counterintuitive behavior of social systems. Technol Rev 73(3):52–68 Forrester JW (1995) Counterintuitive behavior of social systems. Technol Rev 73(3):52–68
go back to reference Hakamada M, Furuta T, Chino Y, Chen Y, Kusuda H, Mabuchi M (2007) Life cycle inventory study on magnesium alloy substitution in vehicles. Energy 32(8):1352–1360CrossRef Hakamada M, Furuta T, Chino Y, Chen Y, Kusuda H, Mabuchi M (2007) Life cycle inventory study on magnesium alloy substitution in vehicles. Energy 32(8):1352–1360CrossRef
go back to reference Kelkar A, Roth R, Clark J (2001) Automobile bodies: can aluminum be an economical alternative to steel? J Miner, Met Mater Soc 53(8):28–32CrossRef Kelkar A, Roth R, Clark J (2001) Automobile bodies: can aluminum be an economical alternative to steel? J Miner, Met Mater Soc 53(8):28–32CrossRef
go back to reference Kenworthy J, Murray-Leach R, Townsend C (2005) Sustainable urban transport. In: Hargroves K, Smith M (eds) The natural advantage of nations: business opportunities, innovation and governance in the 21st century. Earthscan, London Kenworthy J, Murray-Leach R, Townsend C (2005) Sustainable urban transport. In: Hargroves K, Smith M (eds) The natural advantage of nations: business opportunities, innovation and governance in the 21st century. Earthscan, London
go back to reference Klöpffer W (2008) Life cycle sustainability assessment of products. Int J of Life Cycle Assess 13(2):89–95CrossRef Klöpffer W (2008) Life cycle sustainability assessment of products. Int J of Life Cycle Assess 13(2):89–95CrossRef
go back to reference Lovins AB, Cramer DR (2004) Hypercars, hydrogen, and the automotive transition. Int J Veh Des 35(1/2):50–85CrossRef Lovins AB, Cramer DR (2004) Hypercars, hydrogen, and the automotive transition. Int J Veh Des 35(1/2):50–85CrossRef
go back to reference Meadows DH (2009) Thinking in systems: a primer. Earthscan, London Meadows DH (2009) Thinking in systems: a primer. Earthscan, London
go back to reference Puri P, Compston P, Pantano V (2009) Life cycle assessment of Australian automotive door skins. Int J Life Cycle Assess 14(5):420–428CrossRef Puri P, Compston P, Pantano V (2009) Life cycle assessment of Australian automotive door skins. Int J Life Cycle Assess 14(5):420–428CrossRef
go back to reference Ribeiro I, Peças P, Silva A, Henriques E (2008) Life cycle engineering methodology applied to material selection, a fender case study. J Clean Prod 16(17):1887–1899CrossRef Ribeiro I, Peças P, Silva A, Henriques E (2008) Life cycle engineering methodology applied to material selection, a fender case study. J Clean Prod 16(17):1887–1899CrossRef
go back to reference Sandén BA, Karlström M (2007) Positive and negative feedback in consequential life-cycle assessment. J Clean Prod 15(15):1469–1481CrossRef Sandén BA, Karlström M (2007) Positive and negative feedback in consequential life-cycle assessment. J Clean Prod 15(15):1469–1481CrossRef
go back to reference Standards Australia and Standards New Zealand (1998) Australian/New Zealand Standard: Environmental management–Life cycle assessment–Principles and framework, AS/NZS ISO 14040:1998. Standards Australia, Sydney, and Standards New Zealand, Wellington Standards Australia and Standards New Zealand (1998) Australian/New Zealand Standard: Environmental management–Life cycle assessment–Principles and framework, AS/NZS ISO 14040:1998. Standards Australia, Sydney, and Standards New Zealand, Wellington
go back to reference Sterman JD (2000) Business dynamics: systems thinking and modeling for a complex world. McGraw-Hill, Boston Sterman JD (2000) Business dynamics: systems thinking and modeling for a complex world. McGraw-Hill, Boston
go back to reference Tharumarajah A, KoltunI P (2007) Is there an environmental advantage of using magnesium components for light-weighting cars? J Clean Prod 15(11–12):1007–1013CrossRef Tharumarajah A, KoltunI P (2007) Is there an environmental advantage of using magnesium components for light-weighting cars? J Clean Prod 15(11–12):1007–1013CrossRef
go back to reference Udo de Haes HA, Heijungs R, Suh S, Huppes G (2004) Three strategies to overcome the limitations of life-cycle assessment. J Ind Ecol 8(3):19–32CrossRef Udo de Haes HA, Heijungs R, Suh S, Huppes G (2004) Three strategies to overcome the limitations of life-cycle assessment. J Ind Ecol 8(3):19–32CrossRef
go back to reference Ungureanu CA, Das S, Jawahir IS (2007) Life-cycle cost analysis: aluminum versus steel in passenger cars. In: Das SK, Yin W (eds) Aluminium alloys for transportation packaging aerospace and other applications. TMS, USA Ungureanu CA, Das S, Jawahir IS (2007) Life-cycle cost analysis: aluminum versus steel in passenger cars. In: Das SK, Yin W (eds) Aluminium alloys for transportation packaging aerospace and other applications. TMS, USA
Metadata
Title
A system dynamics approach in LCA to account for temporal effects—a consequential energy LCI of car body-in-whites
Authors
Peter Stasinopoulos
Paul Compston
Barry Newell
Haley M. Jones
Publication date
01-02-2012
Publisher
Springer-Verlag
Published in
The International Journal of Life Cycle Assessment / Issue 2/2012
Print ISSN: 0948-3349
Electronic ISSN: 1614-7502
DOI
https://doi.org/10.1007/s11367-011-0344-0

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