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RUI: CAS-Climate: Carbon sequestration through enhanced weathering in agricultural soils with co-benefits to soil quality and crop yield

RUI: CAS-Climate: Carbon sequestration through enhanced weathering in agricultural soils with co-benefits to soil quality and crop yield
RUI:CAS-气候:通过增强农业土壤风化固碳,对土壤质量和作物产量产生协同效益
批准号:
2208133
负责人:
Daniel Maxbauer
金额:
$31.87万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-07-15 至 2025-06-30

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中文摘要
翻译
为了实现限制未来变暖的国际目标,有必要在十亿吨级清除二氧化碳。增强风化是一种令人兴奋的二氧化碳去除技术,可利用现有基础设施应用于农业,同时通过改善土壤质量和作物产量为农民提供额外的利益。代替农业中使用的更传统的材料(如用于石灰的碳酸盐岩),富含Ca和Mg的硅酸盐岩(例如,玄武岩)是有吸引力的,因为它们的溶解消耗二氧化碳,并最终将碳作为碱性储存在海洋中。散布破碎的硅酸盐岩石通过增加可用于风化的矿物表面积来增加风化(和碳去除)的速率。然而,评估增强风化的现场实验很少,实现的碳去除率和共同利益知之甚少。该奖项支持的研究将进行为期三年的实地试验,测试每年应用粉碎硅酸盐矿物对作物和土壤的除碳效率和共同效益。研究人员将通过与明尼苏达州东南部的当地农业合作伙伴合作,监测为期三年的田间试验。增强风化的实验处理包括当地发生的破碎玄武岩和硅酸盐工业废料(矿渣)。该项目将通过测量土壤水的碱度、土壤的总碳含量(有机碳和无机碳)和土壤呼吸率,优先直接跟踪固碳情况。仔细监测土壤中的有机碳和微生物群落将有助于确定粉碎的硅酸盐对土壤微生物组和土壤碳的有机组分的影响,这两者都是保护性农业许多努力的主要重点。这项研究的所有阶段将与卡尔顿学院的本科生进行。这项工作的结果将为增强风化提供重要的现实限制,并将与科学和农业界广泛分享。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Carbon dioxide removal at the gigaton scale will be necessary to meet international goals for limiting future warming. Enhanced weathering is an exciting carbon dioxide removal technology that could be applied in agriculture using existing infrastructure while providing added benefits to farmers through improved soil quality and crop yields. In place of more traditional materials used in agriculture (like carbonate rocks used for liming), silicate rocks rich in Ca and Mg (e.g., basalts) are attractive because their dissolution consumes carbon dioxide and ultimately stores that carbon as alkalinity in the oceans. Spreading crushed silicate rocks increases the rate of weathering (and carbon removal) by increasing the available mineral surface area for weathering. However, field experiments evaluating enhanced weathering are rare and realized rates of carbon removal and co-benefits are poorly understood. This award supports research that will conduct a three-year field trial testing the carbon removal efficiency and co-benefits to crops and soils of annual applications of crushed silicate minerals. The investigator will monitor a three-year field trial through collaboration with local farming partners in southeastern Minnesota. Experimental treatments of enhanced weathering include a locally occurring crushed basalt and a silicate industrial waste product (slag). The project will prioritize direct tracking of carbon sequestration through measurements of alkalinity in soil water, total carbon content of soils (both organic and inorganic carbon), and soil respiration rates. Careful monitoring of soil organic carbon and microbial communities in the soil will help to determine the impacts that crushed silicates have on the soil microbiome and the organic component of soil carbon, both of which are the main focus of many efforts in conservation agriculture. All phases of this research will be conducted with undergraduate students from Carleton College. Results from this work will provide important real-world constraints on enhanced weathering and will be shared broadly with both the scientific and agricultural communities.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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