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  1. グリーンアジアレポートシリーズ

Local Biochar Use for Sustainable Agriculture in Asia

https://doi.org/10.34556/gars-e.4
https://doi.org/10.34556/gars-e.4
66be786d-f7ee-4e27-a7df-8312f7a1f3de
名前 / ファイル ライセンス アクション
gars-e_4.pdf gars-e_4 (2.8 MB)
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Item type 国際農研デフォルトアイテムタイプ(フル)(1)
公開日 2025-04-21
タイトル
タイトル Local Biochar Use for Sustainable Agriculture in Asia
言語 en
作成者 Kishimoto-Mo, Ayaka W.

× Kishimoto-Mo, Ayaka W.

ORCID 0000-0002-7025-3332

en Kishimoto-Mo, Ayaka W.
ISNI National Agriculture and Food Research Organization 0000000122220432
ISNI Ritsumeikan University 0000000088639909

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Okimori, Yasuyuki

× Okimori, Yasuyuki

en Okimori, Yasuyuki
ISNI Ritsumeikan University 0000000088639909

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Sato, Shinjiro

× Sato, Shinjiro

ORCID 0000-0001-9332-3148

en Sato, Shinjiro
ISNI Ritsumeikan University 0000000088639909
ISNI SOKA University 0000000102840976

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Kurimoto, Yasuji

× Kurimoto, Yasuji

en Kurimoto, Yasuji
ISNI Ritsumeikan University 0000000088639909
ISNI Akita Prefectural University 0000000417618827

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Nakano, Katsuyuki

× Nakano, Katsuyuki

ORCID 0000-0001-5123-5510

en Nakano, Katsuyuki
ISNI Ritsumeikan University 0000000088639909

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Lim, Yeongjoo

× Lim, Yeongjoo

ORCID 0000-0003-2740-5537

en Lim, Yeongjoo
ISNI Ritsumeikan University 0000000088639909

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Yoda, Yuichi

× Yoda, Yuichi

en Yoda, Yuichi
ISNI Ritsumeikan University 0000000088639909

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Shinogi, Yoshiyuki

× Shinogi, Yoshiyuki

ORCID 0000-0001-7065-0074

en Shinogi, Yoshiyuki
ISNI Ritsumeikan University 0000000088639909
ISNI Kyushu University 0000000122424849

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Kobayashi, Shintaro

× Kobayashi, Shintaro

en Kobayashi, Shintaro
ISNI Japan International Research Center for Agricultural Sciences 0000000121078171

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Shibata, Akira

× Shibata, Akira

en Shibata, Akira
ISNI Ritsumeikan University 0000000088639909

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アクセス権
アクセス権 open access
アクセス権URI http://purl.org/coar/access_right/c_abf2
権利情報
権利情報Resource https://creativecommons.org/licenses/by/4.0/deed.en
権利情報 Creative Commons Attribution 4.0 International
権利情報
権利情報 ©Japan International Research Center for Agricultural Sciences (JIRCAS), 2025
内容記述
内容記述タイプ TableOfContents
内容記述 Abbreviation list : iv
Abstract : v
1: Introduction and overview of biochar : 1
1.1: Background and implications of biochar use for soil amendment and carbon removal : 1
1.2: Definition and characteristics of biochar : 3
1.3: Objectives and scope of the technical report : 4
2: Soil improvement with biochar : 5
2.1: Effects of biochar on soil fertility and nutrient management : 5
2.1.1: Effect of biochar on soil fertility : 5
2.1.2: Effects of biochar on nutrient management : 7
2.2: Effects of biochar on soil structure and hydraulic properties : 7
2.2.1: Effects of biochar on soil structure : 7
2.2.2: Effects of biochar on soil hydraulic properties : 8
2.3: Effects of biochar on soil microbial communities and meso/macrofauna : 9
2.3.1: Effects of biochar on soil microbial communities : 9
2.3.2: Effects of biochar on meso - and macrofauna : 10
2.4: Biochar application in Asia : 10
2.5: Emerging trends and future directions in biochar research : 11
3: Carbon neutrality and biochar : 13
3.1: Biochar as a carbon dioxide removal (CDR) technology : 13
3.2: Estimation of soil carbon sequestration through biochar : 14
3.3: Considerations of life cycle assessment for biochar practices : 16
4: Best practices and general guidance : 19
4.1: Recommendations for biochar production technologies : 19
4.2: Sustainable sourcing of biochar feedstocks in Asia : 21
4.3: Optimal application rates and methods for different soil types and crops : 24
5: Local implementation of biochar use in Asia : 28
5.1: Incentives for promoting biochar implementation in Asia : 28
5.2: Designing the social implementation of biochar in Asia : 30
5.3: Opportunities and barriers to biochar use in the Asian context : 32
References : 34
言語 en
内容記述
内容記述タイプ Abstract
内容記述 Biochar is a solid material derived from the thermochemical conversion of biomass such as wood, grass, and livestock manure under limited oxygen conditions. Biochar has received increasing attention due to its potential to improve the soil environment and mitigate climate change through carbon dioxide removal. When applied to mineral soils, biochar can enhance soil fertility and moderately increase soil pH in acidic soils, offering a promising approach to sustainable agriculture. However, its application requires consideration of the soil pH and adherence to safety regulations.

The beneficial properties of biochar, including its high specific surface area, cation exchange capacity, and nutrient content, depend on the feedstock and pyrolysis methods. Wood-based biochar generally has a higher carbon content, whereas manure-based biochar tends to provide more plant-available nutrients. Its porous structure provides habitats and retains nutrients for soil microorganisms, which play a crucial role in nutrient cycling and the maintenance of soil ecosystems.

To streamline estimating soil carbon sequestration using biochar, a new method using proximate analysis based on the Japanese Industrial Standard (JIS) M 8812 was developed. This method estimates the pyrolysis temperature and carbon sequestration potential by analyzing the volatile matter and fixed carbon content. However, biochar production processes, including feedstock collection, pyrolysis, and transportation, often rely on fossil fuels and electricity. Therefore, assessing the net environmental impact, including associated CO2 emissions, using life cycle assessment is necessary to ensure the role of biochar in achieving carbon neutrality.

Effective biochar production requires pyrolysis temperatures exceeding 350℃ and careful management of gases and smoke emissions. Given the seasonal and dispersed availability of local unused biomass, selecting appropriate pyrolysis systems is essential for maintaining economic feasibility and avoiding overinvestment. In the Asia–Monsoon region, cereal crop residues, particularly rice husk, and straw, are the most abundant feedstocks, followed by perennial crops such as sugarcane. The annual biochar production potential is estimated at 700 million tonnes, accounting for approximately 3.7% of the region’s total greenhouse gas emissions in CO2 equivalents.

Biochar application rates should account for the diverse soil conditions across Asia. Due to its low nitrogen content compared to phosphorous and potassium, supplementing biochar with nitrogen sources, such as manure or compost, is recommended. Although biochar generally meets the safety thresholds for heavy metals, PAHs, and dioxins, biochar derived from sludge and animal waste may require additional attention because of its potentially higher heavy metal content in some cases. Fresh biochar in soil can reduce the efficacy of herbicides and pesticides. Further research is necessary to understand its long-term interactions with soil and plants in agricultural systems, and especially how biochar properties affect root remediation potential and microbial nutrient cycling.

Robust policy frameworks and incentives are essential to promote the implementation of biochar. These include subsidies for carbon removal and credits related to the amount of carbon removed. Japan has been at the forefront in this area, with its Ministry of Agriculture, Forestry and Fisheries offering subsidies to support biochar production and application. Socio-economic systems that balance short-term economic profitability with long-term sustainability, such as the COOL VEGE® eco-brand initiative launched in 2008 in Kameoka City, Kyoto Prefecture, are effective models for advancing biochar adoption.

By addressing these challenges and integrating biochar into agricultural practices, its potential for enhancing soil environment, contributing to sustainable agriculture, and mitigating climate change can be further realized.
言語 en
出版者
出版者 Japan International Research Center for Agricultural Sciences
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_18ws
資源タイプ research report
出版タイプ
出版タイプ VoR
出版タイプResource http://purl.org/coar/version/c_970fb48d4fbd8a85
ID登録
ID登録 10.34556/gars-e.4
ID登録タイプ JaLC
関連情報
関連タイプ isPartOf
識別子タイプ URI
関連識別子 https://www.jircas.go.jp/en/greenasia/report
関連名称 Green Asia Report Series
関連情報
関連タイプ hasVersion
識別子タイプ URI
関連識別子 https://www.jircas.go.jp/en/publication/gars-e/4
関連名称 Local biochar use for sustainable agriculture in Asia
書誌情報 en : Green Asia Report Series

巻 4, p. 1-38, 発行日 2025-04-21
助成情報
識別子タイプ Crossref Funder
助成機関識別子 https://doi.org/10.13039/501100009472
助成機関名 Japan International Research Center for Agricultural Sciences(en)
研究課題番号URI https://www.jircas.go.jp/en/greenasia
研究課題番号 a1C5
研究課題名 Green Asia(en)
助成情報
識別子タイプ Crossref Funder
助成機関識別子 https://doi.org/10.13039/501100003993
助成機関名 Ministry of Agriculture, Forestry and Fisheries (MAFF), Japan(en)
研究課題番号 JP J008722
研究課題名 Advancing Carbon Sequestration Solutions in the Agriculture, Forestry, and Fisheries Sector(en)
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