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長期的な有機・無機肥料の併用が団粒結合有機炭素プールを調節し、風成砂質土の炭素隔離を改善する

Long-Term Combined Organic and Mineral Fertilization Modulates Aggregate-Associated Organic Carbon Pool and Improves Carbon Sequestration in Aeolian Sandy Soils (原題)

Yuxin Wang, Yue Wang, Yue Wang, Yue Wang, Junmei Shi, Xingtong Lv, Xinhao Gong, Jinfeng Yang, Xiaori Han

Agriculture📚 査読済 / ジャーナル2026-09-16#気候科学Origin: CN対象セクター: agriculture
DOI: 10.3390/agriculture16181989
原典: https://doi.org/10.3390/agriculture16181989

🤖 gxceed AI 要約

日本語

中国東北の風成砂質土で16年間の継続施肥試験を実施し、有機・無機肥料の併用(MNPK)が土壌団粒形成と安定性を高め、SOC蓄積を65.5%増加させることを示した。炭素隔離は微細団粒よりも大団粒の形成と内部炭素濃縮に支配され、落花生収量も最大化された。砂質農地の低炭素・持続的管理に向けた実践的知見を提供する。

English

A 16-year field trial on aeolian sandy soil in Northeast China shows that combined organic–mineral fertilization (MNPK) boosts macroaggregate formation, aggregate stability, and SOC stocks by 65.5% versus control, while maximizing peanut yield. Carbon sequestration was governed mainly by macroaggregate formation rather than microaggregate or silt–clay fractions, offering practical guidance for low-carbon management of sandy farmland.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本では農地土壌炭素貯留がJ-クレジット(農地管理)や環境省の土壌炭素貯留事業と連動しつつある。本知見は砂質・脆弱土壌での有機物施用効果を示すもので、国内の土壌炭素クレジット設計や農業由来排出削減の科学的根拠として参考になる。

In the global GX context

Soil carbon sequestration is increasingly embedded in global climate frameworks (e.g., carbon farming, Article 6.4, SBTi FLAG guidance). This long-term trial provides empirical evidence on how organic–mineral fertilization builds stable aggregate-associated carbon in marginal sandy soils, informing soil-carbon accounting methodologies and agricultural mitigation pathways.

👥 読者別の含意

🔬研究者:長期施肥が団粒画分別の炭素隔離に与える影響を定量化し、砂質土の炭素安定化メカニズム研究に寄与する。

🏢実務担当者:砂質農地での有機・無機併用施肥が収量と土壌炭素を同時に改善しうることを示す実践的根拠。

🏛政策担当者:農地土壌炭素貯留型の気候政策・クレジット設計において、有機物施用の効果を裏付ける科学的知見として参考になる。

📄 Abstract(原文)

Aeolian sandy soils are typically characterized by low organic matter content and loose structural stability, which severely restrict soil carbon sequestration capacity and farmland productivity. Soil aggregates are the primary carriers and protective barrier for soil organic carbon (SOC), dominating the processes of SOC accumulation and stabilization. Long-term fertilization is a critical field management strategy for regulating soil structure and carbon sequestration; however, the way in which both applying organic fertilizer alone or in combination with mineral fertilizer mediate aggregate distribution, structural stability, and aggregate-associated SOC sequestration in aeolian sandy soils under continuous peanut monoculture conditions remains largely unexplored. This study was based on a 16-year continuous field fertilization experiment conducted on aeolian sandy soil in Northeast China. The experimental treatments included: CK (control, no fertilization), NPK (balanced mineral fertilization), M (organic fertilizer alone), and MNPK (a combination of organic and mineral fertilizers). The topsoil samples (0–20 cm) were collected after the peanut harvest. The aggregate was classified into four fractions using the wet-sieving method: coarse macro-aggregate (>2 mm), fine macro-aggregate (0.25–2 mm), micro-aggregate (0.053–0.25 mm), and the silt–clay fraction (<0.053 mm). The aggregate size distribution, aggregate stability indices (MWD and GMD), SOC concentration, and SOC stock were measured under different fertilization treatments. The results indicated that long-term fertilization markedly promoted the formation of macroaggregates (>0.25 mm) and enhanced the soil aggregate stability. The addition of manure resulted in significantly better effects than the application of mineral fertilizers alone. In comparison with the CK, SOC stocks in the NPK, M and MNPK treatments increased by 18.3%, 44.9%, and 65.5%, respectively. The SOC stock (9.3 Mg·ha−1) and peanut yield were highest under the MNPK treatment. With equal exogenous manure-carbon inputs for the M and MNPK treatments, a strong organic–mineral synergistic effect was observed in the MNPK treatment. This synergy reinforced the sequestration of exogenous organic carbon. Correlation analysis confirmed that SOC sequestration in aeolian sandy soil was predominantly governed by macroaggregate formation and internal carbon enrichment, rather than changes in microaggregate and silt–clay fractions. Our results reveal that combined organic–mineral fertilization effectively facilitates macroaggregate formation, improves aggregate stability and enhances organic carbon sequestration in macroaggregates of aeolian sandy soils, while increasing crop yield. Hence, organic–mineral combined fertilization is a promising agronomic practice for soil improvement, carbon sequestration and sustainable production in aeolian-sandy peanut cropping systems, offering practical field references for low-carbon sustainable management of sandy farmland.

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