Accounting for biodiversity in life cycle impact assessments of forestry and agricultural systems-the BioImpact metric

被引:15
|
作者
Turner, Perpetua A. M. [1 ,2 ]
Ximenes, Fabiano A. [3 ]
Penman, Trent D. [4 ]
Law, Bradley S. [3 ]
Waters, Cathleen M. [5 ]
Grant, Timothy [6 ]
Mo, Matthew [7 ]
Brock, Philippa M. [8 ]
机构
[1] Univ Tasmania, Hobart, Tas, Australia
[2] Forest Practices Author, Hobart, Tas, Australia
[3] New South Wales Dept Primary Ind, Parramatta, NSW, Australia
[4] Univ Melbourne, Creswick, Vic, Australia
[5] New South Wales Dept Primary Ind, Orange, NSW, Australia
[6] Life Cycle Strategies, Melbourne, Vic, Australia
[7] Off Environm & Heritage, Haymarket, NSW, Australia
[8] New South Wales Dept Primary Ind, Taylors Beach, NSW, Australia
来源
关键词
Biodiversity; BioImpact; Cropping and rangeland grazing; Ecosystem diversity; Native forestry; Plantation softwood timber production; LAND-USE IMPACTS; AUSTRALIAN SOFTWOOD PLANTATIONS; TO-GATE INVENTORY; BIOLOGICAL DIVERSITY; ECOSYSTEM SERVICES; SPECIES RICHNESS; GLOBAL PATTERNS; WOOD PRODUCTION; PLANT; CONSERVATION;
D O I
10.1007/s11367-019-01627-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Purpose Life cycle assessment (LCA) is a useful method for assessing environmental impacts at large scales. Biodiversity and ecosystem diversity are site-specific, often complex, and difficult to generalise within an LCA framework. There is currently no globally acceptable means of assessing biodiversity within the LCA framework. We introduce, test and revise BioImpact, a method for incorporating biodiversity into an LCA framework, on four production systems (native forestry, plantation softwood timber production, cropping and rangeland grazing) in Australia. Methods Our proposed method, a metric we call BioImpact, incorporates biodiversity and ecological impacts through a series of semi-quantitative questions, published data and expert opinion which aim to encapsulate the main issues relating to biodiversity within a disturbance impact framework appropriate to LCA. Results are scaled to a single biodiversity measure that can be incorporated into LCA. We test and revise BioImpact scores on four production systems (native forestry, plantation softwood timber production, cropping and rangeland grazing) in comparison to species richness and net primary productivity (NPP) for these production systems. We demonstrate how the scores can be incorporated into LCA using SimaPro as a platform. Results and discussion For pine plantation, cropping/pastures and rangeland grazing, BioImpact demonstrated greater impact, which represents biodiversity loss for multiple species groups. Native forestry scored significantly lower impact than that of other land uses. As a comparison, all production processes scored highly for species richness of main multiple species groups (vascular plants, invertebrates, birds) and were not different in terms of NPP. Integration of BioImpact into LCA found that the softwood system, despite having a higher biodiversity impact per ha year, had a marginally lower BioImpact score per cubic metre compared to native forestry. This was possibly due to cumulative effects and consideration of the reference benchmark, e.g., low levels of pre-harvest biodiversity when not established on native forests; fewer threatened species (and lesser impact) compared to native forestry; questions not weighted sufficiently; and the difference between establishment on either agricultural cleared land or native forest area. Improvement in scaling and/or weighting within the BioImpact scores within each question is discussed. Conclusions BioImpact encapsulates different components of biodiversity, is transparent, easily applied (subject to literature/ecological experts) and can be incorporated into LCA. Application of BioImpact for LCA requires co-ordination to identify key regions and production systems; develop the relevant scores with the assistance of ecologists; and make the results available in public LCA databases.
引用
收藏
页码:1985 / 2007
页数:23
相关论文
共 50 条
  • [41] A life-cycle analysis of deep enhanced geothermal systems-The case studies of Reykjanes, Iceland and Vendenheim, France
    Sigurjonsson, Hafpor Aegir
    Cook, David
    Daviosdottir, Brynhildur
    Bogason, Sigurour G.
    RENEWABLE ENERGY, 2021, 177 : 1076 - 1086
  • [42] Life Cycle Assessment of Domestic and Agricultural Rainwater Harvesting Systems
    Ghimire, Santosh R.
    Johnston, John M.
    Ingwersen, Wesley W.
    Hawkins, Troy R.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2014, 48 (07) : 4069 - 4077
  • [43] A critical review of life cycle assessment of renewable agricultural systems
    Kiehbadroudinezhad, Mohammadali
    Hosseinzadeh-Bandbafha, Homa
    Tajuddin, Sheikh Ahmad Faiz Sheikh Ahmad
    Tabatabaei, Meisam
    Aghbashlo, Mortaza
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2025, 73
  • [44] Management accounting systems and organizational configuration: a life-cycle perspective
    Moores, K
    Yuen, S
    ACCOUNTING ORGANIZATIONS AND SOCIETY, 2001, 26 (4-5) : 351 - 389
  • [45] Common characteristics of feedstock stage in life cycle assessments of agricultural residue-based biofuels
    Wang, Zhiwei
    Lei, Tingzhou
    Yan, Xiaoyu
    Chen, Gaofeng
    Xin, Xiaofei
    Yang, Miao
    Guan, Qian
    He, Xiaofeng
    Gupta, Ashwani K.
    FUEL, 2019, 253 : 1256 - 1263
  • [46] Deterioration impact of Indian crested porcupine, Hystrix indica, on forestry and agricultural systems in Pakistan
    Khan, AA
    Ahmad, S
    Hussain, I
    Munir, S
    INTERNATIONAL BIODETERIORATION & BIODEGRADATION, 2000, 45 (3-4) : 143 - 149
  • [47] Accounting for product recovery potential in building life cycle assessments: a disassembly network-based approach
    Abu-Ghaida, Haitham
    Ritzen, Michiel
    Hollberg, Alexander
    Theissen, Sebastian
    Attia, Shady
    Lizin, Sebastien
    INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2024, 29 (07): : 1151 - 1176
  • [48] Proposal of Major Environmental Impact Categories of Construction Materials Based on Life Cycle Impact Assessments
    Jang, Hyeong-Jae
    Ahn, Yong-Han
    Tae, Sung-Ho
    MATERIALS, 2022, 15 (14)
  • [49] Life Cycle Assessment in environmental impact assessments of industrial projects: towards the improvement
    Zidoniene, Sigita
    Kruopiene, Jolita
    JOURNAL OF CLEANER PRODUCTION, 2015, 106 : 533 - 540
  • [50] Enhancing Pavement Design Selection by Incorporating Normalization into Life Cycle Impact Assessments
    Inti, S.
    Sharma, M.
    Tandon, V.
    International Conference on Transportation and Development 2016: Projects and Practices for Prosperity, 2016, : 813 - 824