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Lifespan of Commodities, Part II

Author

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  • Masahiro Oguchi
  • Shinsuke Murakami
  • Tomohiro Tasaki
  • Ichiro Daigo
  • Seiji Hashimoto

Abstract

Lifespan of commodities is essential information for material flow analysis and material stock accounting. Lifespan data is available in the literature; however, it varies in definition and in methodology employed. This article reviews and categorizes different types of lifespan distribution and distribution estimation methodologies, and investigates the relationship and differences between lifespan definitions and estimation methodologies. Lifespan distribution of commodities can be classified into five types from two perspectives: base year for which the distribution is drawn, and vertical axis of the distribution. The methodologies for estimating lifespan distribution were classified into four types and the details of each methodology and the relationship to the definition of lifespan were also clarified. This article also examines differences in actual lifespan data—between the types of distribution, the definitions, and the employed methodologies—by comparing reported data in literature. Any of the four methodologies are theoretically applicable and provide the same value of a lifespan; however unless accurate data such as census statistics are available, lifespan data can vary, and therefore we must be very cautious about the representativeness of sample data.

Suggested Citation

  • Masahiro Oguchi & Shinsuke Murakami & Tomohiro Tasaki & Ichiro Daigo & Seiji Hashimoto, 2010. "Lifespan of Commodities, Part II," Journal of Industrial Ecology, Yale University, vol. 14(4), pages 613-626, August.
  • Handle: RePEc:bla:inecol:v:14:y:2010:i:4:p:613-626
    DOI: 10.1111/j.1530-9290.2010.00251.x
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    Cited by:

    1. Mengqing Kan & Chunyan Wang & Bing Zhu & Wei‐Qiang Chen & Yi Liu & Yucheng Ren & Ming Xu, 2023. "Seven decades of plastic flows and stocks in the United States and pathways toward zero plastic pollution by 2050," Journal of Industrial Ecology, Yale University, vol. 27(6), pages 1538-1552, December.
    2. Till Zimmermann & Stefan Gößling-Reisemann, 2014. "Recycling Potentials of Critical Metals-Analyzing Secondary Flows from Selected Applications," Resources, MDPI, vol. 3(1), pages 1-28, March.
    3. Kalmykova, Yuliya & Berg, Per E.-O. & Patrício, João & Lisovskaja, Vera, 2017. "Portable battery lifespans and new estimation method for battery collection rate based on a lifespan modeling approach," Resources, Conservation & Recycling, Elsevier, vol. 120(C), pages 65-74.
    4. Parajuly, Keshav & Habib, Komal & Liu, Gang, 2017. "Waste electrical and electronic equipment (WEEE) in Denmark: Flows, quantities and management," Resources, Conservation & Recycling, Elsevier, vol. 123(C), pages 85-92.
    5. Tsiliyannis, Christos Aristeides, 2015. "Sustainability by cyclic manufacturing: Assessment of resource preservation under uncertain growth and returns," Resources, Conservation & Recycling, Elsevier, vol. 103(C), pages 155-170.
    6. Shinsuke Murakami & Haruhisa Yamamoto & Terufumi Toyota, 2021. "Potential Impact of Consumer Intention on Generation of Waste Photovoltaic Panels: A Case Study for Tokyo," Sustainability, MDPI, vol. 13(19), pages 1-11, September.
    7. Dirk Lauinger & Romain G. Billy & Felipe Vásquez & Daniel B. Müller, 2021. "A general framework for stock dynamics of populations and built and natural environments," Journal of Industrial Ecology, Yale University, vol. 25(5), pages 1136-1146, October.
    8. Chunyan Wang & Yi Liu & Wei‐Qiang Chen & Bing Zhu & Shen Qu & Ming Xu, 2021. "Critical review of global plastics stock and flow data," Journal of Industrial Ecology, Yale University, vol. 25(5), pages 1300-1317, October.
    9. Guzzo, Daniel & Rodrigues, Vinicius Picanço & Mascarenhas, Janaina, 2021. "A systems representation of the Circular Economy: Transition scenarios in the electrical and electronic equipment (EEE) industry," Technological Forecasting and Social Change, Elsevier, vol. 163(C).
    10. Kito, Minami, 2021. "Impact of aircraft lifetime change on lifecycle CO2 emissions and costs in Japan," Ecological Economics, Elsevier, vol. 188(C).
    11. Yuya Nakamoto, 2017. "CO2 reduction potentials through the market expansion and lifetime extension of used cars," Journal of Economic Structures, Springer;Pan-Pacific Association of Input-Output Studies (PAPAIOS), vol. 6(1), pages 1-14, December.
    12. Ingun Grimstad Klepp & Kirsi Laitala & Stephen Wiedemann, 2020. "Clothing Lifespans: What Should Be Measured and How," Sustainability, MDPI, vol. 12(15), pages 1-21, August.
    13. Tulga Mendjargal & Eiji Yamasue & Hiroki Tanikawa, 2022. "Estimation of the Lifespan of Imported Passenger Vehicles in Mongolia," Sustainability, MDPI, vol. 14(21), pages 1-16, November.
    14. Pauliuk, Stefan & Kondo, Yasushi & Nakamura, Shinichiro & Nakajima, Kenichi, 2017. "Regional distribution and losses of end-of-life steel throughout multiple product life cycles—Insights from the global multiregional MaTrace model," Resources, Conservation & Recycling, Elsevier, vol. 116(C), pages 84-93.
    15. Tsiliyannis, Christos Aristeides, 2018. "Markov chain modeling and forecasting of product returns in remanufacturing based on stock mean-age," European Journal of Operational Research, Elsevier, vol. 271(2), pages 474-489.
    16. Barbara V. Kasulaitis & Callie W. Babbitt & Andrew K. Krock, 2019. "Dematerialization and the Circular Economy: Comparing Strategies to Reduce Material Impacts of the Consumer Electronic Product Ecosystem," Journal of Industrial Ecology, Yale University, vol. 23(1), pages 119-132, February.
    17. Marta Royo & Vicente Chulvi & Elena Mulet & Laura Ruiz‐Pastor, 2023. "Analysis of parameters about useful life extension in 70 tools and methods related to eco‐design and circular economy," Journal of Industrial Ecology, Yale University, vol. 27(2), pages 562-586, April.

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