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Ecosystem model parameterization and adaptation for sustainable cellulosic biofuel landscape design

机译:生态系统模型参数化与可持续纤维素生物燃料景观设计的调整

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Renewable fuel standards in the US and elsewhere mandate the production of large quantities of cellulosic biofuels with low greenhouse gas (GHG) footprints, a requirement which will likely entail extensive cultivation of dedicated bioenergy feedstock crops on marginal agricultural lands. Performance data for such systems is sparse, and non-linear interactions between the feedstock species, agronomic management intensity, and underlying soil and land characteristics complicate the development of sustainable landscape design strategies for low-impact commercial-scale feedstock production. Process-based ecosystem models are valuable for extrapolating field trial results and making predictions of productivity and associated environmental impacts that integrate the effects of spatially variable environmental factors across diverse production landscapes. However, there are few examples of ecosystem model parameterization against field trials on both prime and marginal lands or of conducting landscape-scale analyses at sufficient resolution to capture interactions between soil type, land use, and management intensity. In this work we used a data-diverse, multi-criteria approach to parameterize and validate the DayCent biogeochemistry model for upland and lowland switchgrass using data on yields, soil carbon changes, and soil nitrous oxide emissions from US field trials spanning a range of climates, soil types, and management conditions. We then conducted a high-resolution case study analysis of a real-world cellulosic biofuel landscape in Kansas in order to estimate feedstock production potential and associated direct biogenic GHG emissions footprint. Our results suggest that switchgrass yields and emissions balance can vary greatly across a landscape large enough to supply a biorefinery in response to variations in soil type and land-use history, but that within a given land base both of these performance factors can be widely modulated by changing management intensity. This in turn implies a large sustainable cellulosic biofuel landscape design space within which a system can be optimized to meet economic or environmental objectives.
机译:美国和其他地方的可再生燃料标准授权生产大量的纤维素生物燃料,具有低温室气体(GHG)占地面积,这一要求可能需要在边际农业用地上广泛培养专用的生物能原料作物。这种系统的性能数据是稀疏,原料物种,农艺管理强度和地下土壤和土地特征之间的非线性相互作用使低影响商业规模原料生产的可持续景观设计策略的发展使可持续景观设计策略的发展变得复杂化。基于过程的生态系统模型对于推断出现场试验结果并制定生产力和相关环境影响的预测,可以整合在各种生产景观中的空间可变环境因素的影响。然而,少数人们在粉末和边缘地区的实地试验中遇到生态系统模型参数化的例子,或者在充分的分辨率下进行横向分析,以捕获土壤类型,土地利用和管理强度之间的相互作用。在这项工作中,我们利用数据多样化的多标准方法来参数化和验证高地和低地开关的中生生物园艺模型,使用跨越长气的美国现场试验中的土壤碳变化和土壤中一氧化物排放数据,土壤类型和管理条件。然后,我们对堪萨斯州的真实纤维素生物燃料景观进行了高分辨率的案例研究分析,以估算原料生产潜力和相关的直接生物温室气体排放足迹。我们的研究结果表明,交换植物产量和排放平衡可能会在一个足够大的景观中变化,以供应生物质艺,以应对土壤类型和土地利用历史的变化,但在给定的土地基础内,这些性能因素都可以广泛调制通过改变管理强度。这反过来意味着一个大型可持续纤维素生物燃烧室景观设计空间,系统可以优化以满足经济或环境目标。

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