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Distributed biochar and bioenergy coproduction: a regionally specific case study of environmental benefits and economic impacts

机译:分布式生物炭和生物能源副作用:环境效益和经济影响的区域特定案例研究

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Biochar has been advocated as a method of sequestering carbon while simultaneously improving crop yields and agro-ecosystem sustainability. It can be produced from a wide variety of biomass feedstocks using different thermochemical conversion technologies with or without the recovery of energy coproducts, resulting in chars of differing quality and a range of overall system greenhouse gas (GHG) mitigation outcomes. This analysis expands on previous sustainability studies by proposing a mechanistic life cycle GHG and economic operating cost assessment model for the coproduction of biochar and bioenergy from biomass residue feedstocks, with a case study for north-central Colorado presented. Production is modeled as a continuous function of temperature for slow pyrolysis, fast pyrolysis, and gasification systems. Biochar environmental benefits (C sequestration, NSUB2/SUBO suppression, crop yield improvements) are predicted in terms of expected liming value and recalcitrance. System-level net GHG mitigation is computed, and net returns are estimated that reflect the variable economic costs of production, the agronomic value of biochar based on agricultural limestone or fertilizer displacement, and the value of GHG mitigation, with results compared to the alternate use of char for energy production. Case study results indicate that slow pyrolysis systems can mitigate up to 1.4 Mg COSUB2/SUBeq/Mg feedstock consumed, provided a favorable feedstock is utilized, production air pollutant emissions are mitigated, and energy coproducts are recovered. The model suggests that while financial returns are generally greater when char is consumed for energy (biocoal) than when used as a soil amendment (biochar), chars produced through high-temperature conversion processes will have greater GHG-mitigation value as biochar. The biochar scenario reaches economic parity at carbon prices as low as $50/Mg COSUB2/SUBeq for optimal scenarios, despite conservative modeling assumptions. This model is a step toward spatially explicit assessment and optimization of biochar system design across different feedstocks, conversion technologies, and agricultural soils.
机译:Biochar已被提倡作为孤复碳的方法,同时提高作物产量和农业生态系统可持续性。它可以由各种生物质原料生产,使用不同的热化学转换技术,或者没有能量套中的恢复,导致不同质量和一系列整体系统温室气体(GHG)缓解结果。该分析通过提出从生物量残留原料的生物炭和生物能量的组织和生物能量的机械生命周期GHG和经济运营成本评估模型来扩展以前的可持续性研究,为北部科罗拉多州展示了科罗拉多州的案例研究。生产被建模为慢热解,快速热解和气化系统的温度的连续功能。在预期的估计值和重核方面,预测了生物炭环境益处(C螯合,N <亚> 2 O抑制,作物产量改进)。计算系统级净温室气体缓解,估计净退货,反映了生产的可变经济成本,基于农业石灰石或肥料排量的生物炭的农艺价值,以及GHG缓解的价值与交替使用相比用于能源生产的焦点。案例研究结果表明,慢热解系统可以减轻最多1.4mg CO 2 等式消耗,所以利用有利的原料,减轻了生产空气污染物排放,恢复了能量常规。该模型表明,虽然在用作土壤修正(生物炭)时,虽然金融回报通常更大,但在用作土壤修正时(生物炭)时,通过高温转换过程生产的CHAR将具有更大的温度降低值作为生物炭。尽管保守建模假设,但Biochar情景与50 / mg CO 2 eq的碳价格低至50美元/毫克CO 2 方程。该模型是对不同原料,转换技术和农业土壤的空间明确评估和优化生物炭系统设计的一步。

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