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Estimating net climate impacts of timber production and utilization in fossil fuel intensive material and energy substitution

机译:估计木材生产和利用在化石燃料密集型材料和能量替代中的净气氛影响

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We utilized an ecosystem model and life cycle assessment tool for studying carbon flows between the ecosystem, technosystem, and atmosphere for scenarios utilizing forest biomass (biosystem) against fossil fuel intensive materials (fossil system). The net climate impacts were studied for a Norway spruce (Picea abies (L.) Karst.) stand over two consecutive rotation periods (2 x 80 years) in the boreal conditions in central Finland (62 degrees N, 29 degrees E). The effects of alternative forest management on the carbon dynamics in the biosystem were studied in comparison with the fossil system by using an unmanaged and baseline thinning regime. The results showed that the biosystem produced carbon benefits compared with the similar system with the use of fossil fuel intensive materials and energy. The unmanaged stand stored the highest amount of carbon and retained carbon the longest when solely the ecosystem was considered. Studying the ecosystem and the technosystem together, the biosystem was found effective in storing and increasing the residence of carbon with or without changing the life span of biomass-based products. We found that the increase of the life span of biomass-based products could reduce emissions up to 0.28 t CO2.ha(-1).year(-1) depending on the management regimes over the study period. The increased stocking regimes could increase negative net climate impact by 47% over the study period compared with the use of baseline thinning in the biosystem. The proper climate mitigation strategies should consider the benefits from forest management and forest biomass in storing carbon into both the ecosystem and technosystem.
机译:我们利用了生态系统模型和生命周期评估工具,用于研究生态系统,技术系统和气氛之间的碳流,利用森林生物量(生物系统)对化石燃料密集型材料(化石系统)。研究了挪威云杉的净气候影响(Picea Abies(L.)喀斯特。)在芬兰中部的北部北方条件下站在两个连续的旋转期(2 x 80年)中(62°N,29摄氏度)。使用非托管和基线稀疏制度对化石系统进行了研究的替代森林管理对生物系统中的碳动力学的影响。结果表明,与使用化石燃料密集型材料和能量相比,生物系统产生了碳的益处。非托管支架储存了最高量的碳并保留了最长的碳,当考虑了生态系统时最长。将生态系统和技术系统一起研究,生物系统有效地存储和增加碳的住所,或者不改变基于生物质的产品的寿命。我们发现,基于生物量的产品的寿命的增加可以减少高达0.28 T CO2.ha(-1).Year(-1)的排放,具体取决于研究期间的管理制度。与在生物系统中的基线稀疏相比,增加的储存制度可能会增加47%的净气候影响47%。适当的气候缓解策略应考虑森林管理和森林生物量在将碳储存到生态系统和技术系统中的益处。

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