Enhanced Weathering May Benefit From Co-Application With Organic Amendments

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY
AGU Advances Pub Date : 2025-04-01 DOI:10.1029/2025AV001693
Maya Almaraz
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Abstract

Enhanced weathering has emerged as a promising natural climate solution that has the potential to remove billions of tons of carbon from the atmosphere if widely adopted in agricultural settings. Despite this potential, few field trials have been published that verify the carbon dioxide removal (CDR) potential of enhanced weathering in croplands and, until now, none had been published in grazing lands. Anthony et al. (2025, https://doi.org/10.1029/2024AV001480) conducted the first trial of enhanced weathering in a California rangeland and showed weathering of ground silicate rocks despite drought conditions in an already dry climate. Co-application of inorganic (silicate rocks) with organic (biochar and compost) amendments revealed not just additive, but synergistic effects whereby organic amendments increased rates of weathering. This is important because field CDR rates were <10% of the theoretical maximum (i.e., the rate if basalt was completely weathered); thus, methods to improve weathering rates will be necessary for this practice to scale in a meaningful way. Multi-carbon pool measurements revealed not only how co-application of soil amendments heightened net carbon benefits, but also how soil amendments complemented each other to produce net benefits for soil carbon, biomass growth, and greenhouse gas emission reductions. Anthony et al. (2025, https://doi.org/10.1029/2024AV001480) produce new insights toward our understanding of enhanced weathering as well as introduce paths for future research concerning combined amendment applications, synergistic mechanisms for carbon storage, and deployment in various agricultural contexts. While questions remain about the fate of weathering products in arid regions, Anthony et al. (2025, https://doi.org/10.1029/2024AV001480) present novel findings on the potential for significant weathering to occur even under suboptimal conditions.

Abstract Image

与有机改进剂共同应用可增强风化作用
增强风化已经成为一种很有前途的自然气候解决方案,如果在农业环境中广泛采用,有可能从大气中去除数十亿吨的碳。尽管有这种潜力,但很少发表实地试验来验证农田增强风化的二氧化碳去除(CDR)潜力,到目前为止,还没有发表在放牧地的试验。Anthony等人(2025,https://doi.org/10.1029/2024AV001480)在加利福尼亚牧场进行了第一次增强风化试验,并显示了在已经干燥的气候条件下,尽管干旱条件,地面硅酸盐岩石的风化。无机(硅酸盐岩石)和有机(生物炭和堆肥)改性剂的共同应用表明,有机改性剂不仅具有添加作用,而且具有协同作用,从而增加了风化速率。这很重要,因为现场CDR率是理论最大值(即玄武岩完全风化时的速率)的10%;因此,提高风化率的方法对于这种实践有意义的方式是必要的。多碳库测量不仅揭示了土壤改良剂的共同应用如何提高净碳效益,而且揭示了土壤改良剂如何相互补充,从而产生土壤碳、生物量增长和温室气体减排的净效益。Anthony等人(2025,https://doi.org/10.1029/2024AV001480)为我们对增强风化的理解提供了新的见解,并为未来的联合修正应用、碳储存的协同机制和在各种农业环境中的部署等研究提供了途径。尽管对干旱地区风化产物的命运仍然存在疑问,但安东尼等人(2025,https://doi.org/10.1029/2024AV001480)提出了新的发现,即即使在次优条件下也可能发生显著的风化。
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来源期刊
CiteScore
2.90
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0.00%
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