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Understanding processes determining soil carbon balances under perennial bioenergy crops CARBO-BIOCROP

Understanding processes determining soil carbon balances under perennial bioenergy crops CARBO-BIOCROP
了解多年生生物能源作物 CARBO-BIOCROP 下土壤碳平衡的确定过程
批准号:
NE/H010742/1
负责人:
Goetz Richter
金额:
$30.52万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2010
资助国家:
英国
项目状态:
已结题
起止时间:
2010 至 --

项目摘要

项目成果

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中文摘要
翻译
与一年生粮食作物相比,有证据表明,来自多年生生物能源作物的生物燃料具有积极的温室气体(GHG)缓解潜力。然而,这种效益的大小最近受到了质疑,因为长期和间接的影响可能会大大减少种植制度产生的任何温室气体节省。事实上,对土壤碳的影响已被认为是生物能源带来的净碳当量收益生命周期分析中的薄弱环节。一氧化二氮(N2O)和甲烷(CH4)排放量的变化也是相关的,因为它们具有很大的温室气体升温潜力,但对于多年生生物能源种植系统来说,这些变化大多是未量化的。虽然已经为农业和常规森林系统开发了几个土壤碳和微量气体模型,但这些模型还没有被用于土地利用向多年生生物能源作物的转变的参数和验证。为了预测建立生物质作物一到三十年后土壤有机碳的变化,我们需要建立(A)在关键生物质作物下碳的周转动态和碳通量的差异,包括碳的数量、质量和从植物进入土壤的位置,以及(B)克服过渡期间原有土壤碳短期损失的机制(C)具有预测性的定量、基于过程的建模方法,以探索未来最佳土壤碳管理的情景。该项目的总体目标是更好地了解由于土地从耕地/草地转变为陆基可再生能源而导致土壤碳储量和碳库变化的基本土壤过程。该项目侧重于土地利用变化的影响,特别是对多年生生物能源作物(快速生长的SRC树和草)的影响,目前这些作物的知识差距很大。该项目将产生新的证据,以改善目前对土壤碳过程--固存和排放--如何受到多年生能源作物引进的影响的理解。与使用土地种植粮食作物和使用化石燃料供热、发电和液体燃料相比,土壤碳平衡是指导关于使用这些作物生产生物能源和生物燃料是否会显著节省碳排放的辩论的关键。从长远来看(在本项目的生命周期之后),这将实现对英国不同气候和土壤类型的陆基生物能源系统的温室气体(碳当量,在此缩写为C)缓解潜力的动态、空间显式建模。我们希望为英国开发“碳机会地图”。该项目的工作将在涉及数据综合(WP1)、实验数据收集(WP2)和建模(WP3)的三个工作包中进行。在整个项目中,我们将利用其他资源,包括在Brattleby和Aberystwyth的两个旗舰地点,在那里建立了商业规模的种植园,并从其他地方资助了几项长期测量和监测活动。同样,来自项目内部的建模资源是广泛的,并且来自其他来源的资金,这些资源将被用于这里的工作。它们包括DNDC、Jules、Roth C和正在进行的芒属和SRC建模方法。产出将包括一个新的生物能源作物土壤碳综合数据数据库。我们将测试和校准基于过程的模型,这些模型能够模拟英国多年生生物能源作物土壤有机碳、碳封存和温室气体排放的动态。我们将加深对生物能源种植制度下土壤过程的基本了解,包括菌根联合的作用和生物炭作为优化土壤碳和植物生长的潜力的有效性。我们将为未来的“碳机会”测绘开发能力。
英文摘要
In contrast to annual food crops, evidence suggests that biofuels from perennial bioenergy crops have a positive greenhouse gas (GHG) mitigation potential. However, the magnitude of this benefit has been recently questioned, since long-term and indirect effects may considerably reduce any GHG savings generated by the cropping system. Indeed, impacts on soil C have been identified as the weak link in life-cycle analysis of net carbon-equivalent benefit presented by bioenergy. Changes in rates of nitrous oxide (N2O) and methane (CH4) emission are relevant too since they have a large GHG warming potential, but these changes are mostly unquantified for perennial bioenergy cropping systems. Although several soil carbon and trace-gas models have been developed for agricultural and conventional forest systems these have not been parameterized and validated for transition of land-use to perennial bioenergy crops. To predict the changes in SOC that will occur one to three decades after establishing biomass crops, we need to establish (a) differences in turnover dynamics and fluxes of carbon under key biomass crops in terms of amount, quality and placement of carbon into the soil from the plant, and (b) mechanisms to overcome short-term loss of pre-existing soil carbon during transition (c) quantitative, process-based modeling approaches that are predictive, to explore future scenarios for optimum soil carbon management. The overarching aim of this project is to provide improved understanding of fundamental soil processes resulting in changes of soil carbon stocks and pools as a result of land conversion from arable/grassland to land-based renewables. The project focuses on impacts of land use change specifically to perennial bioenergy crops (fast growing SRC trees and grasses) where there is currently a significant knowledge gap. This project will generate new evidence to improve current understanding on how soil carbon processes, sequestration and emission, are affected by the introduction of perennial energy crops. The soil carbon balance is key to informing the debate on whether using these crops for bioenergy and biofuels will result in significant carbon savings compared to land use for food crops and the use of fossil fuels for heat, power and liquid fuels. In the long-term (beyond the life of this project), this will enable dynamic, spatially explicit modeling of GHG (C equivalents, abbreviated here as C) mitigation potential of land-based bioenergy systems across different climates and soil types of the UK. We wish to develop 'Carbon Opportunity Maps' for the UK. The work of the project will be undertaken in three workpackages dealing with data synthesis (WP1), experimental data collection (WP2) and modeling (WP3). Throughout the project we will use leverage of other resources including two flagship sites at Brattleby and Aberystwyth, where commercial-scale plantations are established and where several long-term measuring and monitoring activities are underway funded from elsewhere. Similarly, the modeling resources from within the project are extensive and funded from other sources that will be levered against the work here. They included DNDC, JULES, ROTH C and on-going modeling approaches for miscanthus and SRC. Outputs will include a new database of synthesized data for soil carbon under bioenergy crops. We will have tested and calibrated process-based models that are capable of simulating the dynamics of soil organic carbon, carbon sequestration and greenhouse gas emissions for perennial bioenergy crops in the UK. We will provide increased fundamental understanding of soil processes occurring under bioenergy cropping systems including the role of mycorrhizal associations and the effectiveness of biochar as a potential to optimize soil carbon and plant growth. We will develop capacity for future 'carbon opportunity' mapping.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.agee.2014.11.011
发表时间: 2015-02-01
期刊: AGRICULTURE ECOSYSTEMS & ENVIRONMENT
影响因子: 6.6
作者: [Richter, Goetz M., Agostini, Francesco, Goulding, Keith W. T.]
通讯作者: Goulding, Keith W. T.
DOI: 10.1111/gcbb.12263
发表时间: 2016-03
期刊: Global change biology. Bioenergy
影响因子: --
作者: [Milner S, Holland RA, Lovett A, Sunnenberg G, Hastings A, Smith P, Wang S, Taylor G]
通讯作者: Taylor G
Modelling the Impact of C4 Biofuel Crops (Miscanthus spp) on Soil Carbon Storage in Different Climates
模拟 C4 生物燃料作物(芒草)对不同气候下土壤碳储存的影响
DOI: --
发表时间: 2013
期刊: Mineralogical Magazine,
影响因子: --
作者: [Agostini F]
通讯作者: Agostini F
DOI: 10.1007/s12155-014-9571-0
发表时间: 2015
期刊: Bioenergy research
影响因子: 3.6
作者: [Agostini F, Gregory AS, Richter GM]
通讯作者: Richter GM
8
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    • 批准号:
      NE/P008852/1
    • 项目类别:
      Research Grant
    • 资助金额:
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    • 财政年份:
      2016
    • 负责人:
      Goetz Richter
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    • 项目类别:
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    • 财政年份:
      2010
    • 负责人:
      Goetz Richter
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    • 批准号:
      --
    • 项目类别:
      --
    • 资助金额:
      160万元
    • 批准年份:
      2022
    • 负责人:
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    • 依托单位: