首頁(yè) 資訊 農(nóng)業(yè)有機(jī)廢物還田利用促進(jìn)土壤健康和應(yīng)對(duì)氣候變化的路徑及研究建議

農(nóng)業(yè)有機(jī)廢物還田利用促進(jìn)土壤健康和應(yīng)對(duì)氣候變化的路徑及研究建議

來(lái)源:泰然健康網(wǎng) 時(shí)間:2024年12月03日 17:39

摘要:

作為實(shí)現(xiàn)“城鄉(xiāng)無(wú)廢”目標(biāo)的重要組成部分,農(nóng)業(yè)有機(jī)廢物還田利用是一種資源節(jié)約、環(huán)境友好的利用路徑,對(duì)于提升農(nóng)村污染控制水平、促進(jìn)農(nóng)業(yè)可持續(xù)發(fā)展、助力我國(guó)實(shí)現(xiàn)碳達(dá)峰及碳中和目標(biāo)具有重要的意義。在系統(tǒng)總結(jié)農(nóng)業(yè)有機(jī)廢物還田利用的主要路徑以及研究現(xiàn)狀基礎(chǔ)上,分析農(nóng)業(yè)有機(jī)廢物還田對(duì)土壤健康狀況改善、農(nóng)田溫室氣體排放方面的影響,并對(duì)當(dāng)前存在的問(wèn)題提出解決措施。研究發(fā)現(xiàn),還田利用解決了大部分農(nóng)業(yè)有機(jī)廢物消納的問(wèn)題,有利于土壤肥力和固碳效果提升,但也帶來(lái)了農(nóng)田病蟲(chóng)害增加、稻田甲烷排放量居高不下、土地消納糞污量超載等新的問(wèn)題。同時(shí),還田利用的市場(chǎng)要素不健全,短時(shí)間難以形成有效的市場(chǎng)閉環(huán)。應(yīng)從還田利用長(zhǎng)期系統(tǒng)定位監(jiān)測(cè)網(wǎng)絡(luò)構(gòu)建、完善還田利用效果監(jiān)測(cè)評(píng)估標(biāo)準(zhǔn)體系、補(bǔ)齊市場(chǎng)要素等方面,加快推動(dòng)農(nóng)業(yè)廢物還田利用研究工作和制度建設(shè),為促進(jìn)農(nóng)業(yè)生態(tài)系統(tǒng)的可持續(xù)發(fā)展、確保糧食安全和應(yīng)對(duì)全球氣候變化提供理論支撐。

Abstract:

As an important part of achieving the goal of "zero waste in urban and rural areas", returning the agricultural organic waste to farmland is a resource-saving and environmentally friendly utilization path, which is of great significance for improving the rural pollution control level, promoting sustainable development of agriculture, and helping China to achieve the goal of carbon peak and carbon neutrality. Based on the systematic summary of the main paths and research status of returning agricultural organic waste to farmland, the authors analyzed the impacts of returning agricultural organic waste to farmland on improving soil health and greenhouse gas emissions and proposed feasible solutions to the current problems. The studies showed that returning to farmland could resolve most agricultural organic waste utilization outlets, improving soil fertility and carbon sequestration. However, it also brought new problems, such as increasing pests and diseases in farmland, methane emissions, and the overload of soil manure consumption. In addition, market factors for returning organic waste to farmland were imperfect, making it difficult to form an effective market-closed loop in the short term. Scientific research and institutional construction of returning agricultural waste to farmland should be accelerated from the aspects of constructing a long-term and systematic in situ monitoring network, improving the monitoring and evaluation standard system on the farmland utilization effect of organic waste along with replenishing market elements, in order to offer theoretical support for promoting the sustainable development of agricultural ecosystem, ensuring food security and coping with global climate change.

[1] 黃鈺瑕, 黃銑文, 王耿東, 等. 智慧農(nóng)業(yè)時(shí)代下綠色低碳循環(huán)農(nóng)業(yè)的發(fā)展研究: 以廣州市花都區(qū)赤坭鎮(zhèn)為例[J]. 廣東蠶業(yè),2023,57(1):25-27.

HUANG Y X, HUANG X W, WANG G D, et al. Research on the development of green low-carbon circular agriculture in the era of smart agriculture: taking Chini Town, Huadu District, Guangzhou as an example[J]. Guangdong Sericulture,2023,57(1):25-27.

[2] 劉文敏. 上海低碳農(nóng)業(yè)發(fā)展的思考[J]. 上海節(jié)能,2019(11):893-897.

LIU W M. Thoughts on low carbon agriculture development in Shanghai[J]. Shanghai Energy Conservation,2019(11):893-897.

[3] 薛翃燕. 基于“全碳”核算的省域綠色發(fā)展評(píng)價(jià)研究[D]. 天津: 天津工業(yè)大學(xué), 2024. [4] 楊麗麗. 打造水產(chǎn)養(yǎng)殖無(wú)廢農(nóng)業(yè)的幾點(diǎn)思考[J]. 中國(guó)水產(chǎn),2023(2):50-53. [5]

ARANTES M K, ALVES H J, SEQUINEL R, et al. Treatment of brewery wastewater and its use for biological production of methane and hydrogen[J]. International Journal of Hydrogen Energy,2017,42(42):26243-26256. DOI: 10.1016/j.ijhydene.2017.08.206

[6]

MOHD NOOR C W, NOOR M M, MAMAT R. Biodiesel as alternative fuel for marine diesel engine applications: a review[J]. Renewable and Sustainable Energy Reviews,2018,94:127-142. DOI: 10.1016/j.rser.2018.05.031

[7] 許標(biāo)文, 王海平, 林國(guó)華. 歐美農(nóng)業(yè)綠色發(fā)展政策工具的應(yīng)用及其啟示[J]. 福建農(nóng)林大學(xué)學(xué)報(bào)(哲學(xué)社會(huì)科學(xué)版),2019,22(1):13-19.

XU B W, WANG H P, LIN G H. Application of policy instruments for green growth of agriculture in Europe and America and its enlightenment[J]. Journal of Fujian Agriculture and Forestry University (Philosophy and Social Sciences),2019,22(1):13-19.

[8] 馬紅坤, 毛世平. 歐盟共同農(nóng)業(yè)政策的綠色生態(tài)轉(zhuǎn)型: 政策演變、改革趨向及啟[J]. 農(nóng)業(yè)經(jīng)濟(jì)問(wèn)題,2019,40(9):134-144.

MA H K, MAO S P. Green-ecological transformation of EU common agricultural policy: policy evolutions, reform trend and its enlightenment[J]. Issues in Agricultural Economy,2019,40(9):134-144.

[9] 崔海霞, 宗義湘, 趙幫宏. 歐盟農(nóng)業(yè)綠色發(fā)展支持政策體系演進(jìn)分析: 基于OECD農(nóng)業(yè)政策評(píng)估系統(tǒng)[J]. 農(nóng)業(yè)經(jīng)濟(jì)問(wèn)題,2018,39(5):130-142.

CUI H X, ZONG Y X, ZHAO B H. Analysis on policy evolution and policy system of EU agricultural green development support: based on the policy evaluation of OECD[J]. Issues in Agricultural Economy,2018,39(5):130-142.

[10] 周玉新, 唐羅忠. 日本農(nóng)業(yè)環(huán)保政策及對(duì)我國(guó)的啟示[J]. 環(huán)境保護(hù),2009,37(21):68-70. [11] 秦炳濤. 日本生態(tài)農(nóng)業(yè)發(fā)展策略探析[J]. 農(nóng)業(yè)經(jīng)濟(jì)問(wèn)題,2015,36(6):104-109. [12] 楊秀平, 孫東升. 日本環(huán)境保全型農(nóng)業(yè)的發(fā)展[J]. 世界農(nóng)業(yè),2006(9):42-44. [13] 李思經(jīng), 牛坤玉, 鐘鈺. 日本鄉(xiāng)村振興政策體系演變與借鑒[J]. 世界農(nóng)業(yè),2018(11):83-87. [14] 嚴(yán)鎧, 劉仲妮, 成鵬遠(yuǎn), 等. 中國(guó)農(nóng)業(yè)廢棄物資源化利用現(xiàn)狀及展望[J]. 農(nóng)業(yè)展望,2019,15(7):62-65.

YAN K, LIU Z N, CHENG P Y, et al. Status quo of agricultural waste resource utilization in China and its prospects[J]. Agricultural Outlook,2019,15(7):62-65.

[15] 石凱含, 尚杰. 農(nóng)業(yè)面源污染防治政策的演進(jìn)軌跡、效應(yīng)評(píng)價(jià)與優(yōu)化建議[J]. 改革,2021(5):146-155.

SHI K H, SHANG J. Evolution track, effect evaluation and optimization suggestions of agricultural non-point source pollution control policies[J]. Reform,2021(5):146-155.

[16] 陳天宇, 曹俊, 金保昇. 農(nóng)業(yè)有機(jī)廢棄物能源化利用現(xiàn)狀及新技術(shù)展望[J]. 江蘇大學(xué)學(xué)報(bào)(自然科學(xué)版),2019,40(3):295-300.

CHEN T Y, CAO J, JIN B S. Present situation and prospect of energy utilization of agricultural organic wastes[J]. Journal of Jiangsu University (Natural Science Edition),2019,40(3):295-300.

[17] 劉婷, 徐鶴. 雙重差分模型在政策環(huán)境評(píng)價(jià)中的應(yīng)用研究:以農(nóng)業(yè)支持保護(hù)補(bǔ)貼政策為例[J]. 環(huán)境工程技術(shù)學(xué)報(bào),2022,12(6):1838-1844.

LIU T, XU H. Application of difference-in-differences model in policy-based strategic environmental assessment: taking policy for agricultural support and protection subsidy as an example[J]. Journal of Environmental Engineering Technology,2022,12(6):1838-1844.

[18] 鄒彩芬, 許家林, 王雅鵬. 政府財(cái)稅補(bǔ)貼政策對(duì)農(nóng)業(yè)上市公司績(jī)效影響實(shí)證分析[J]. 產(chǎn)業(yè)經(jīng)濟(jì)研究,2006(3):53-59.

ZOU C F, XU J L, WANG Y P. Effect of governmental tax preferences and direct subsidies on the performance of listed agribusiness[J]. Industrial Economics Research,2006(3):53-59.

[19] 周永馨, 王圣偉, 何書(shū)朋, 等. 煙臺(tái)市種植業(yè)有機(jī)廢棄物還田對(duì)畜禽糞污土壤消納量的影響研究[J]. 中國(guó)土壤與肥料,2021(6):336-345.

ZHOU Y X, WANG S W, HE S P, et al. Effect of planting organic waste returning to field on soil intake of livestock manure in Yantai City[J]. Soil and Fertilizer Sciences in China,2021(6):336-345.

[20] 高旺盛, 陳源泉, 王小龍, 等. 中國(guó)種植業(yè)碳中和技術(shù)路徑探討與對(duì)策建議[J]. 農(nóng)業(yè)現(xiàn)代化研究,2022,43(6):941-947.

GAO W S, CHEN Y Q, WANG X L, et al. Discussion of the technical path and the countermeasures on the carbon neutralization of crop planting sector in China[J]. Research of Agricultural Modernization,2022,43(6):941-947.

[21] 馬嘉樂(lè), 劉剛, 楊陽(yáng), 等. 助力鄉(xiāng)村生態(tài)振興: “無(wú)廢城市”建設(shè)治理農(nóng)業(yè)固體廢物路徑研究[J]. 環(huán)境工程學(xué)報(bào),2023,17(12):3826-3831.

MA J L, LIU G, YANG Y, et al. Assist in rural ecological revitalization: research on the path of agricultural solid waste treatment through the construction of "Zero-waste Cities"[J]. Chinese Journal of Environmental Engineering,2023,17(12):3826-3831.

[22] 宋劉洋, 丁舒心, 張琪, 等. 農(nóng)業(yè)廢棄物資源化利用研究進(jìn)展[J]. 青海農(nóng)林科技,2024(1):42-46.

SONG L Y, DING S X, ZHANG Q, et al. Research progress on the resource utilization of agricultural waste[J]. Science and Technology of Qinghai Agriculture and Forestry,2024(1):42-46.

[23] 孫江琪, 王君美. 低碳視角下循環(huán)農(nóng)業(yè)發(fā)展路徑研究: 評(píng)《農(nóng)業(yè)資源再生利用與生態(tài)循環(huán)農(nóng)業(yè)綠色發(fā)展》[J]. 中國(guó)瓜菜,2022,35(3):121. [24] 《全國(guó)農(nóng)作物秸稈綜合利用情況報(bào)告》發(fā)布2021年我國(guó)農(nóng)作物秸稈綜合利用率達(dá)88.1%[J]. 中國(guó)農(nóng)業(yè)綜合開(kāi)發(fā),2022(10):32. [25] 周海賓, 丁京濤, 孟海波, 等. 中國(guó)畜禽糞污資源化利用技術(shù)應(yīng)用調(diào)研與發(fā)展分析[J]. 農(nóng)業(yè)工程學(xué)報(bào),2022,38(9):237-246.

ZHOU H B, DING J T, MENG H B, et al. Survey and development analysis of resource utilization technology of livestock and poultry wastes in China[J]. Transactions of the Chinese Society of Agricultural Engineering,2022,38(9):237-246.

[26] 周宏春. 國(guó)家“十四五”循環(huán)經(jīng)濟(jì)發(fā)展規(guī)劃深意何在[J]. 中國(guó)石化, 2023(4): 13-19. [27] 張克強(qiáng), 杜連柱, 杜會(huì)英, 等. 國(guó)內(nèi)外畜禽養(yǎng)殖糞肥還田利用研究進(jìn)展[J]. 農(nóng)業(yè)環(huán)境科學(xué)學(xué)報(bào),2021,40(11):2472-2481.

ZHANG K Q, DU L Z, DU H Y, et al. Application of livestock and poultry waste to agricultural land: a review[J]. Journal of Agro-Environment Science,2021,40(11):2472-2481.

[28] 吳少博, 邢力元, 王進(jìn)朝, 等. 農(nóng)業(yè)廢棄物資源化利用的國(guó)內(nèi)外研究熱點(diǎn)和發(fā)展趨勢(shì)分析[J]. 中國(guó)農(nóng)學(xué)通報(bào),2024,40(8):148-156.

WU S B, XING L Y, WANG J C, et al. Domestic and foreign research hotspots and development trend of agricultural waste resource utilization[J]. Chinese Agricultural Science Bulletin,2024,40(8):148-156.

[29] 賈倩, 串麗敏, 王愛(ài)玲, 等. 國(guó)內(nèi)外農(nóng)業(yè)廢棄物資源化利用技術(shù)對(duì)比研究[J]. 世界農(nóng)業(yè),2023(11):19-30.

JIA Q, CHUAN L M, WANG A L, et al. Comparative study of domestic and foreign agricultural residue resource utilization technology[J]. World Agriculture,2023(11):19-30.

[30]

ZHUANG M, ZHANG J, KONG Z, et al. Potential environmental benefits of substituting nitrogen and phosphorus fertilizer with usable crop straw in China during 2000-2017[J]. Journal of Cleaner Production,2020,267:122125. DOI: 10.1016/j.jclepro.2020.122125

[31] 李廷亮, 王宇峰, 王嘉豪, 等. 我國(guó)主要糧食作物秸稈還田養(yǎng)分資源量及其對(duì)小麥化肥減施的啟示[J]. 中國(guó)農(nóng)業(yè)科學(xué),2020,53(23):4835-4854.

LI T L, WANG Y F, WANG J H, et al. Nutrient resource quantity from main grain crop straw incorporation and its enlightenment on chemical fertilizer reduction in wheat production in China[J]. Scientia Agricultura Sinica,2020,53(23):4835-4854.

[32] 薛菁菁. 農(nóng)業(yè)廢棄物處理問(wèn)題與對(duì)策[J]. 河北農(nóng)業(yè),2018(9):55-56. [33] 鄒金浪, 劉陶紅, 姚冠榮, 等. 中國(guó)化肥減量降碳效應(yīng)評(píng)估[J]. 中國(guó)環(huán)境科學(xué),2024,44(1):438-448.

ZOU J L, LIU T H, YAO G R, et al. Assessing the carbon emissions from fertilizer use reduction in China[J]. China Environmental Science,2024,44(1):438-448.

[34] 吳浩瑋, 孫小淇, 梁博文, 等. 我國(guó)畜禽糞便污染現(xiàn)狀及處理與資源化利用分析[J]. 農(nóng)業(yè)環(huán)境科學(xué)學(xué)報(bào),2020,39(6):1168-1176.

WU H W, SUN X Q, LIANG B W, et al. Analysis of livestock and poultry manure pollution in China and its treatment and resource utilization[J]. Journal of Agro-Environment Science,2020,39(6):1168-1176.

[35] 李艷麗, 白金順, 趙林萍, 等. 我國(guó)畜禽糞污資源化利用潛力與時(shí)空分布特征[J]. 中國(guó)土壤與肥料,2023(5):114-124.

LI Y L, BAI J S, ZHAO L P, et al. Spatiotemporal distribution of livestock and poultry waste and its resource utilization potential in China[J]. Soil and Fertilizer Sciences in China,2023(5):114-124.

[36] 胡瑞華. 農(nóng)戶(hù)采用秸稈還田技術(shù)的化肥減量效應(yīng)及提升策略研究[D]. 武漢: 華中農(nóng)業(yè)大學(xué), 2023. [37] 朱永官, 李寶值, 吝濤. 培育健康土壤, 助力鄉(xiāng)村振興[J]. 科技導(dǎo)報(bào),2021,39(23):54-58.

ZHU Y G, LI B Z, LIN T. Fostering healthy soil to push forward rural revitalization[J]. Science & Technology Review,2021,39(23):54-58.

[38]

BEARE M H, WILSON P E, FRASER P M, et al. Management effects on barley straw decomposition, nitrogen release, and crop production[J]. Soil Science Society of America Journal,2002,66(3):848. DOI: 10.2136/sssaj2002.8480

[39]

AYNEHBAND A, TEHRANI M, NABATI D A. Effects of residue management and N-splitting methods on yield and biological and chemical characters of canola ecosystem[J]. Journal of Food Agriculture & Encironment,2010,8(2):317-324.

[40] 苑秀娟. 秸稈還田在農(nóng)業(yè)可持續(xù)發(fā)展中的評(píng)價(jià)研究[J]. 新農(nóng)業(yè),2022(12):17-18. DOI: 10.3969/j.issn.1002-4298.2022.12.xinny202212011 [41] 毛國(guó)軍, 肖迪, 李龍兵, 等. 玉米秸稈還田對(duì)土壤理化性狀及玉米生長(zhǎng)發(fā)育的影響[J]. 現(xiàn)代農(nóng)業(yè)科技,2022(21):14-19.

MAO G J, XIAO D, LI L B, et al. Effect of corn straw returning to field on soil physical and chemical properties, corn growth and development[J]. Modern Agricultural Science and Technology,2022(21):14-19.

[42] 胡永方. 秸稈還田對(duì)農(nóng)田土壤有機(jī)質(zhì)提升的探索研究[J]. 農(nóng)業(yè)開(kāi)發(fā)與裝備,2020(1):131. DOI: 10.3969/j.issn.1673-9205.2020.01.088 [43] 田慎重, 郭洪海, 董曉霞, 等. 耕作方式轉(zhuǎn)變和秸稈還田對(duì)土壤活性有機(jī)碳的影響[J]. 農(nóng)業(yè)工程學(xué)報(bào),2016,32(增刊2):39-45. [44]

GUENET B, JUAREZ S, BARDOUX G, et al. Evidence that stable C is as vulnerable to priming effect as is more labile C in soil[J]. Soil Biology and Biochemistry,2012,52:43-48. DOI: 10.1016/j.soilbio.2012.04.001

[45]

CELY P, GASCó G, PAZ-FERREIRO J, et al. Agronomic properties of biochars from different manure wastes[J]. Journal of Analytical and Applied Pyrolysis,2015,111:173-182. DOI: 10.1016/j.jaap.2014.11.014

[46] 趙秀玲, 任永祥, 趙鑫, 等. 華北平原秸稈還田生態(tài)效應(yīng)研究進(jìn)展[J]. 作物雜志,2017(1):1-7.

ZHAO X L, REN Y X, ZHAO X, et al. Advances in ecological effects of residue retained in North China Plain[J]. Crops,2017(1):1-7.

[47] 楊妍娜. 長(zhǎng)期不同施肥處理對(duì)黑土土壤理化性質(zhì)及氮磷流失的影響[D]. 哈爾濱: 東北農(nóng)業(yè)大學(xué), 2024. [48] 王艷麗. 有機(jī)肥配施氮肥對(duì)寧夏揚(yáng)黃灌區(qū)砂質(zhì)土壤理化性質(zhì)及滴灌玉米生長(zhǎng)的影響[D]. 銀川: 寧夏大學(xué), 2019. [49] 李圓賓, 李鵬, 王舒華, 等. 稻麥輪作體系下有機(jī)肥施用對(duì)作物產(chǎn)量和土壤性質(zhì)影響的整合分析[J]. 應(yīng)用生態(tài)學(xué)報(bào),2021,32(9):3231-3239.

LI Y B, LI P, WANG S H, et al. Effects of organic fertilizer application on crop yield and soil properties in rice-wheat rota-tion system: a meta-analysis[J]. Chinese Journal of Applied Ecology,2021,32(9):3231-3239.

[50] 溫延臣, 李燕青, 袁亮, 等. 長(zhǎng)期不同施肥制度土壤肥力特征綜合評(píng)價(jià)方法[J]. 農(nóng)業(yè)工程學(xué)報(bào),2015,31(7):91-99.

WEN Y C, LI Y Q, YUAN L, et al. Comprehensive assessment methodology of characteristics of soil fertility under different fertilization regimes in North China[J]. Transactions of the Chinese Society of Agricultural Engineering,2015,31(7):91-99.

[51] 李友強(qiáng), 盛康, 彭思姣, 等. 沼液施用量對(duì)小麥產(chǎn)量及土壤理化性質(zhì)的影響[J]. 中國(guó)農(nóng)學(xué)通報(bào),2014,30(12):181-186.

LI Y Q, SHENG K, PENG S J, et al. Effects of biogas slurry on wheat yield and the physical and chemical properties of soil[J]. Chinese Agricultural Science Bulletin,2014,30(12):181-186.

[52] 陳凌霞, 張燕燕, 趙紅, 等. 沼液不同施用年限土壤性質(zhì)差異分析[J]. 中國(guó)沼氣,2023,41(4):40-45.

CHEN L X, ZHANG Y Y, ZHAO H, et al. Effects of applied biogas slurry continuously for different application years on soil chemical characteristics and cabbage growth[J]. China Biogas,2023,41(4):40-45.

[53]

YANG X Y, REN W D, SUN B H, et al. Effects of contrasting soil management regimes on total and labile soil organic carbon fractions in a loess soil in China[J]. Geoderma,2012,177/178:49-56. DOI: 10.1016/j.geoderma.2012.01.033

[54] 劉玉琦. 畜禽養(yǎng)殖糞肥還田氮磷收支及土壤肥力影響研究[D]. 呼和浩特: 內(nèi)蒙古工業(yè)大學(xué), 2023. [55] 張淑香, 張文菊, 沈仁芳, 等. 我國(guó)典型農(nóng)田長(zhǎng)期施肥土壤肥力變化與研究展望[J]. 植物營(yíng)養(yǎng)與肥料學(xué)報(bào),2015,21(6):1389-1393. DOI: 10.11674/zwyf.2015.0602

ZHANG S X, ZHANG W J, SHEN R F, et al. Variation of soil quality in typical farmlands in China under long-term fertilization and research expedition[J]. Journal of Plant Nutrition and Fertilizers,2015,21(6):1389-1393. DOI: 10.11674/zwyf.2015.0602

[56] 金琳, 李玉娥, 高清竹, 等. 中國(guó)農(nóng)田管理土壤碳匯估算[J]. 中國(guó)農(nóng)業(yè)科學(xué),2008,41(3):734-743. DOI: 10.3864/j.issn.0578-1752.2008.03.014

JIN L, LI Y E, GAO Q Z, et al. Estimate of carbon sequestration under cropland management in China[J]. Scientia Agricultura Sinica,2008,41(3):734-743. DOI: 10.3864/j.issn.0578-1752.2008.03.014

[57] 荀衛(wèi)兵, 王伯仁, 冉煒, 等. 不同施肥制度對(duì)南方旱地紅壤微生物組結(jié)構(gòu)和功能影響研究進(jìn)展[J]. 農(nóng)業(yè)資源與環(huán)境學(xué)報(bào),2021(4):537-544.

XUN W B, WANG B R, RAN W, et al. Research progress on the effect of different fertilizations on microbiome structure and function in upland red soil in Southern China[J]. Journal of Agricultural Resources and Environment,2021(4):537-544.

[58] 王美琦, 劉銀雙, 黃亞麗, 等. 秸稈還田對(duì)土壤微生態(tài)環(huán)境影響的研究進(jìn)展[J]. 微生物學(xué)通報(bào),2022,49(2):807-816.

WANG M Q, LIU Y S, HUANG Y L, et al. Research progress on effects of straw incorporation on soil micro-ecological environment[J]. Microbiology China,2022,49(2):807-816.

[59] 黃穎博, 羅凡, 龔雪蛟, 等. 有機(jī)肥對(duì)土壤微生物群落特征影響的研究進(jìn)展[J]. 中國(guó)農(nóng)學(xué)通報(bào),2023,39(3):88-96.

HUANG Y B, LUO F, GONG X J, et al. Effects of organic fertilizers on soil microbial community characteristics: research progress[J]. Chinese Agricultural Science Bulletin,2023,39(3):88-96.

[60] 朱志成, 鐘民正, 侯磊, 等. 整縣推進(jìn)畜禽糞污資源化利用項(xiàng)目溫室氣體減排量評(píng)估方法[J]. 環(huán)境工程技術(shù)學(xué)報(bào),2024,14(1):25-32.

ZHU Z C, ZHONG M Z, HOU L, et al. Evaluation on greenhouse gas emission reduction of the whole county's promotion project of livestock and poultry manure resource utilization[J]. Journal of Environmental Engineering Technology,2024,14(1):25-32.

[61]

PAMG X. Research progress on effects of bio-organic fertilizer on soil characteristics of farmland, crop yield and quality[J]. Hans Journal of Soil Science,2023,11(2):100-106. DOI: 10.12677/HJSS.2023.112013

[62] 李慧敏, 田勝營(yíng), 李丹丹, 等. 有機(jī)物料施用對(duì)潮土活性有機(jī)碳及微生物群落組成的影響[J]. 土壤學(xué)報(bào),2021,58(3):777-787.

LI H M, TIAN S Y, LI D D, et al. Effect of application of organic materials on content of labile organic carbon and composition of microbial community in fluvio-aquatic soil[J]. Acta Pedologica Sinica,2021,58(3):777-787.

[63]

SUN R B, ZHANG X X, GUO X S, et al. Bacterial diversity in soils subjected to long-term chemical fertilization can be more stably maintained with the addition of livestock manure than wheat straw[J]. Soil Biology and Biochemistry,2015,88:9-18. DOI: 10.1016/j.soilbio.2015.05.007

[64] 湯宏, 沈健林, 劉杰云, 等. 稻秸的不同組分對(duì)水稻土甲烷和二氧化碳排放的影響[J]. 生態(tài)環(huán)境學(xué)報(bào),2016,25(7):1125-1133.

TANG H, SHEN J L, LIU J Y, et al. Effects of rice straw fraction on methane and carbon dioxide emission from rice paddy soil[J]. Ecology and Environmental Sciences,2016,25(7):1125-1133.

[65] 田磊, 石少華, 張建峰, 等. 長(zhǎng)期化肥施用與秸稈還田對(duì)玉米根部相關(guān)AMF和細(xì)菌的群落結(jié)構(gòu)多樣性的影響[J]. 土壤與作物,2017,6(4):291-297.

TIAN L, SHI S H, ZHANG J F, et al. Effects of long-term fertilization and straw return on diversity indices of AMF and bacteria in maize rhizosphere[J]. Soils and Crops,2017,6(4):291-297.

[66] 林新堅(jiān), 林斯, 邱珊蓮, 等. 不同培肥模式對(duì)茶園土壤微生物活性和群落結(jié)構(gòu)的影響[J]. 植物營(yíng)養(yǎng)與肥料學(xué)報(bào),2013,19(1):93-101.

LIN X J, LIN S, QIU S L, et al. Effect of different fertilization strategies on structure and activity of microbial community in tea orchard soils[J]. Journal of Plant Nutrition and Fertilizers,2013,19(1):93-101.

[67] 劉紅梅, 安克銳, 王慧, 等. 不同施肥措施對(duì)華北潮土區(qū)玉米田土壤微生物碳源代謝多樣性的影響[J]. 農(nóng)業(yè)環(huán)境科學(xué)學(xué)報(bào),2020,39(10):2336-2344. DOI: 10.11654/jaes.2020-0509

LIU H M, AN K R, WANG H, et al. Effects of fertilization regimes on the metabolic diversity of microbial carbon sources in a maize field of fluvoaquic soil in North China[J]. Journal of Agro-Environment Science,2020,39(10):2336-2344. DOI: 10.11654/jaes.2020-0509

[68] 朱金山, 張慧, 馬連杰, 等. 不同沼灌年限稻田土壤微生物群落分析[J]. 環(huán)境科學(xué),2018,39(5):2400-2411.

ZHU J S, ZHANG H, MA L J, et al. Diversity of the microbial community in rice paddy soil with biogas slurry irrigation analyzed by illumina sequencing technology[J]. Environmental Science,2018,39(5):2400-2411.

[69] 王玉寶. 整合分析秸稈還田對(duì)中國(guó)主要糧食作物病蟲(chóng)草害的影響[D]. 合肥: 安徽農(nóng)業(yè)大學(xué), 2023. [70] 尹佳文. 旅游人口流動(dòng)視角下中國(guó)區(qū)域農(nóng)田畜禽承載力及潛力分區(qū)研究[D]. 新鄉(xiāng): 河南師范大學(xué), 2020. [71] 李麗, 夏衛(wèi)生, 周浩. 湖南省畜禽養(yǎng)殖糞污的耕地負(fù)荷與土地承載力評(píng)價(jià)[J]. 水土保持通報(bào),2024,44(1):118-126.

LI L, XIA W S, ZHOU H. Evaluation of farmland load and land carrying capacity of livestock and poultry manure in Hunan Province[J]. Bulletin of Soil and Water Conservation,2024,44(1):118-126.

[72] 宋冰, 牛書(shū)麗. 全球變化與陸地生態(tài)系統(tǒng)碳循環(huán)研究進(jìn)展[J]. 西南民族大學(xué)學(xué)報(bào)(自然科學(xué)版),2016,42(1):14-23.

SONG B, NIU S L. Global change and terrestrial carbon cycle: a review[J]. Journal of Southwest Minzu University (Natural Science Edition),2016,42(1):14-23.

[73]

THANGARAJAN R, BOLAN N S, TIAN G L, et al. Role of organic amendment application on greenhouse gas emission from soil[J]. Science of the Total Environment,2013,465:72-96. DOI: 10.1016/j.scitotenv.2013.01.031

[74] 王宇飛, 王語(yǔ)寬. 重視農(nóng)業(yè)土壤固碳, 助力“雙碳”目標(biāo)實(shí)現(xiàn): 積極應(yīng)對(duì)農(nóng)業(yè)土壤“千分之四”計(jì)劃[J]. 環(huán)境保護(hù),2021,49(17):61-64.

WANG Y F, WANG Y K. Attention to agricultural soil carbon sequestration and help to achieve the targets of carbon peak and carbon neutrality: positively respond to the "the 4 per 1 000 initiative for agricultural soils"[J]. Environmental Protection,2021,49(17):61-64.

[75]

YAN X, ZHOU H, ZHU Q H, et al. Carbon sequestration efficiency in paddy soil and upland soil under long-term fertilization in Southern China[J]. Soil and Tillage Research,2013,130:42-51. DOI: 10.1016/j.still.2013.01.013

[76] 吳健成, 劉卿, 汪翠存, 等. 秸稈還田與氮肥施用對(duì)稻田溫室氣體排放的影響[J]. 生態(tài)學(xué)報(bào), 2024, 44(12): 5328-5339.

WU J C, LIU Q, WANG C C, et al. Eflects of staw retumning and nitrogen ferilizer applicationon greenhouse gas emissions in rice paddy fields and research on fertilizer recommendation[J]. Acla Ecologica Sinica, 2024, 44(12): 5328-5339.

[77]

LEHTINEN T, SCHLATTER N, BAUMGARTEN A, et al. Effect of crop residue incorporation on soil organic carbon and greenhouse gas emissions in European agricultural soils[J]. Soil Use and Management,2014,30(4):524-538. DOI: 10.1111/sum.12151

[78] 李金, 任立軍, 李曉宇, 等. 不同秸稈還田方式對(duì)玉米農(nóng)田土壤CO2排放量和碳平衡的影響[J]. 中國(guó)農(nóng)業(yè)科學(xué),2023,56(14):2738-2750. DOI: 10.3864/j.issn.0578-1752.2023.14.009

LI J, REN L J, LI X Y, et al. Effects of different straw returning patterns on soil CO2 emission and carbon balance in maize field[J]. Scientia Agricultura Sinica,2023,56(14):2738-2750. DOI: 10.3864/j.issn.0578-1752.2023.14.009

[79] 董玉紅, 歐陽(yáng)竹, 李運(yùn)生, 等. 肥料施用及環(huán)境因子對(duì)農(nóng)田土壤CO2和N2O排放的影響[J]. 農(nóng)業(yè)環(huán)境科學(xué)學(xué)報(bào),2005,24(5):913-918. DOI: 10.3321/j.issn:1672-2043.2005.05.017

DONG Y H, OUYANG Z, LI Y S, et al. Influence of fertilizaition and environmental factors on CO2 and N2O fluxes from agricultural soil[J]. Journal of Agro-Environment Science,2005,24(5):913-918. DOI: 10.3321/j.issn:1672-2043.2005.05.017

[80]

J?GER N, DUFFNER A, LUDWIG B, et al. Effect of fertilization history on short-term emission of CO2 and N2O after the application of different N fertilizers: a laboratory study[J]. Archives of Agronomy and Soil Science,2013,59(2):161-171. DOI: 10.1080/03650340.2011.621420

[81]

J?GER N, STANGE C F, LUDWIG B, et al. Emission rates of N2O and CO2 from soils with different organic matter content from three long-term fertilization experiments: a laboratory study[J]. Biology and Fertility of Soils,2011,47(5):483-494. DOI: 10.1007/s00374-011-0553-5

[82]

LI Z J, WANG D, SUI P, et al. Effects of different agricultural organic wastes on soil GHG emissions: during a 4-year field measurement in the North China Plain[J]. Waste Management,2018,81:202-210. DOI: 10.1016/j.wasman.2018.10.008

[83]

JASTROW J D, AMONETTE J E, BAILEY V L. Mechanisms controlling soil carbon turnover and their potential application for enhancing carbon sequestration[J]. Climatic Change,2007,80(1):5-23.

[84]

JIANG H, HAN X Z, ZOU W X, et al. Seasonal and long-term changes in soil physical properties and organic carbon fractions as affected by manure application rates in the Mollisol Region of Northeast China[J]. Agriculture, Ecosystems & Environment, 2018, 268: 133-143.

[85]

MAILLARD é, ANGERS D A. Animal manure application and soil organic carbon stocks: a meta-analysis[J]. Global Change Biology,2014,20(2):666-679. DOI: 10.1111/gcb.12438

[86]

OND?EJ S, JI?í B, JIND?ICH ?, et al. Long-term application of organic fertilizers in relation to soil organic matter quality[J]. Agronomy,2023,13(1):175. DOI: 10.3390/agronomy13010175

[87] 陳敬華, 王紹強(qiáng), KRAXNER F, 等. 基于模型模擬的中國(guó)秸稈還田固碳潛力空間格局分析(英文)[J]. Journal of Resources and Ecology,2019,10(2):184-195. [88] 張聰, 慕平, 尚建明. 長(zhǎng)期持續(xù)秸稈還田對(duì)土壤理化特性、酶活性和產(chǎn)量性狀的影響[J]. 水土保持研究,2018,25(1):92-98.

ZHANG C, MU P, SHANG J M. Effects of continuous returning corn straw on soil chemical properties, enzyme activities and yield trait[J]. Research of Soil and Water Conservation,2018,25(1):92-98.

[89]

MAPANDA F, WUTA M, NYAMANGARA J, et al. Effects of organic and mineral fertilizer nitrogen on greenhouse gas emissions and plant-captured carbon under maize cropping in Zimbabwe[J]. Plant and Soil,2011,343(1):67-81.

[90] 楊旭, 蘭宇, 孟軍, 等. 秸稈不同還田方式對(duì)旱地棕壤CO2排放和土壤碳庫(kù)管理指數(shù)的影響[J]. 生態(tài)學(xué)雜志,2015,34(3):805-809.

YANG X, LAN Y, MENG J, et al. Effects of different stover-incorporation ways on CO2 emission in dryland brown soil and soil carbon pool management index[J]. Chinese Journal of Ecology,2015,34(3):805-809.

[91] 范紫月, 齊曉波, 曾麟嵐, 等. 中國(guó)農(nóng)業(yè)系統(tǒng)近40年溫室氣體排放核算[J]. 生態(tài)學(xué)報(bào),2022,42(23):9470-9482.

FAN Z Y, QI X B, ZENG L L, et al. Accounting of greenhouse gas emissions in the Chinese agricultural system from 1980 to 2020[J]. Acta Ecologica Sinica,2022,42(23):9470-9482.

[92]

MEIJIDE A, GRUENING C, GODED I, et al. Water management reduces greenhouse gas emissions in a mediterranean rice paddy field[J]. Agriculture, Ecosystems & Environment, 2017, 238: 168-178.

[93] 邵美紅, 孫加焱, 阮關(guān)海. 稻田溫室氣體排放與減排研究綜述[J]. 浙江農(nóng)業(yè)學(xué)報(bào),2011,23(1):181-187. DOI: 10.3969/j.issn.1004-1524.2011.01.037

SHAO M H, SUN J Y, RUAN G H. Review on greenhouse gases emission and the reduction technology in rice fields[J]. Acta Agriculturae Zhejiangensis,2011,23(1):181-187. DOI: 10.3969/j.issn.1004-1524.2011.01.037

[94] 張杏雨, 李思宇, 余鋒, 等. 作物秸稈還田對(duì)稻田溫室氣體排放效應(yīng)的研究進(jìn)展[J]. 雜交水稻,2021,36(5):1-7.

ZHANG X Y, LI S Y, YU F, et al. Research progresses on the effects of crop straw returning on greenhouse gas emission in paddy field[J]. Hybrid Rice,2021,36(5):1-7.

[95]

LINQUIST B A, ADVIENTO-BORBE M A, PITTELKOW C M, et al. Fertilizer management practices and greenhouse gas emissions from rice systems: a quantitative review and analysis[J]. Field Crops Research,2012,135:10-21. DOI: 10.1016/j.fcr.2012.06.007

[96]

MIKHCHI A, HONARVAR M, EMAM JOMEH KASHAN N, et al. Comparison of three boosting methods in parent-offspring trios for genotype imputation using simulation study[J]. Journal of Animal Science and Technology,2016,58:1. DOI: 10.1186/s40781-015-0081-1

[97]

LABORDE D, MAMUN A, MARTIN W, et al. Agricultural subsidies and global greenhouse gas emissions[J]. Nature Communications,2021,12(1):2601. DOI: 10.1038/s41467-021-22703-1

[98] 郭迎新, 陳永亮, 苗琪, 等. 洱海流域植煙土壤養(yǎng)分時(shí)空變異特征及肥力評(píng)價(jià)[J]. 中國(guó)農(nóng)業(yè)科學(xué),2022,55(10):1987-1999. DOI: 10.3864/j.issn.0578-1752.2022.10.009

GUO Y X, CHEN Y L, MIAO Q, et al. Spatial-temporal variability of soil nutrients and assessment of soil fertility in Erhai Lake basin[J]. Scientia Agricultura Sinica,2022,55(10):1987-1999. DOI: 10.3864/j.issn.0578-1752.2022.10.009

[99] 姜冰, 王松濤, 孫增兵, 等. 基于隸屬度函數(shù)和主成分分析的耕地土壤肥力評(píng)價(jià)[J]. 中國(guó)農(nóng)學(xué)通報(bào),2023,39(2):22-27. DOI: 10.11924/j.issn.1000-6850.casb2022-0063

JIANG B, WANG S T, SUN Z B, et al. Evaluation of cultivated land soil fertility based on membership function and principal component analysis[J]. Chinese Agricultural Science Bulletin,2023,39(2):22-27. DOI: 10.11924/j.issn.1000-6850.casb2022-0063

[100] 馮慧敏, 郭小麗, 肖遠(yuǎn)業(yè), 等. 基于主成分分析不同種養(yǎng)模式下的土壤肥力評(píng)價(jià)[J]. 中國(guó)土壤與肥料,2023(10):1-10. DOI: 10.11838/sfsc.1673-6257.22552

FENG H M, GUO X L, XIAO Y Y, et al. Evaluation of soil fertility under different planting and breeding models based on principal component analysis[J]. Soil and Fertilizer Sciences in China,2023(10):1-10. DOI: 10.11838/sfsc.1673-6257.22552

[101] 李思, 袁彩云, 曾祥難, 等. 基于最小數(shù)據(jù)集的宜章植煙土壤綜合肥力評(píng)價(jià)[J]. 江西農(nóng)業(yè)學(xué)報(bào),2023,35(9):73-79.

LI S, YUAN C Y, ZENG X N, et al. Comprehensive fertility evaluation of tobacco-planting soil in Yizhang based on minimum data set[J]. Acta Agriculturae Jiangxi,2023,35(9):73-79.

[102] 郭凱, 李紅梅, 蔣相國(guó), 等. 基于ArcGIS和模糊數(shù)學(xué)法的夏花生產(chǎn)區(qū)土壤肥力評(píng)價(jià): 以襄陽(yáng)市為例[J]. 花生學(xué)報(bào),2022,51(4):60-69.

GUO K, LI H M, JIANG X G, et al. Soil fertility evaluation in Xiangyang summer peanut area based on ArcGIS and fuzzy mathematical method[J]. Journal of Peanut Science,2022,51(4):60-69.

[103] 牛鋒. 我國(guó)農(nóng)業(yè)廢棄物標(biāo)準(zhǔn)化研究現(xiàn)狀及對(duì)策建議[J]. 再生資源與循環(huán)經(jīng)濟(jì),2020,13(8):25-30. DOI: 10.3969/j.issn.1674-0912.2020.08.006

NIU F. Research status and countermeasures of agricultural waste standardization in China[J]. Recyclable Resources and Circular Economy,2020,13(8):25-30. DOI: 10.3969/j.issn.1674-0912.2020.08.006

[104] 賈西玲. 萬(wàn)榮縣農(nóng)業(yè)廢棄物資源化綜合利用初探[J]. 農(nóng)業(yè)技術(shù)與裝備,2017(10):33-34. DOI: 10.3969/j.issn.1673-887X.2017.10.014 [105] 盧韻凝. 我國(guó)農(nóng)業(yè)廢棄物資源化利用現(xiàn)狀及對(duì)策[J]. 南方農(nóng)業(yè),2022,16(6):212-214. [106] 賈彥鵬. 我國(guó)農(nóng)業(yè)循環(huán)經(jīng)濟(jì)的發(fā)展現(xiàn)狀與未來(lái)舉措[J]. 宏觀經(jīng)濟(jì)管理,2022(8):50-56. [107] 劉柏音, 孫金華, 劉孝富, 等. 國(guó)控污染源監(jiān)測(cè)信息公開(kāi)情況評(píng)價(jià)指標(biāo)體系研究[J]. 環(huán)境工程技術(shù)學(xué)報(bào),2016,6(2):193-198. DOI: 10.3969/j.issn.1674-991X.2016.02.029

LIU B Y, SUN J H, LIU X F, et al. Research on evaluation index system for state-controlled pollution sources information disclosure[J]. Journal of Environmental Engineering Technology,2016,6(2):193-198. DOI: 10.3969/j.issn.1674-991X.2016.02.029

[108] 陳文新. 發(fā)展新型無(wú)廢棄物農(nóng)業(yè)減少面源污染源[J]. 中國(guó)科技獎(jiǎng)勵(lì),2013(11):6-8. DOI: 10.3969/j.issn.1672-903X.2013.11.002 [109] 雷明容. 四川內(nèi)江農(nóng)業(yè)廢棄物綜合利用現(xiàn)狀、問(wèn)題及解決措施[J]. 農(nóng)業(yè)工程技術(shù),2018(11):39. [110] 霍麗麗, 姚宗路, 趙立欣, 等. 秸稈綜合利用減排固碳貢獻(xiàn)與潛力研究[J]. 農(nóng)業(yè)機(jī)械學(xué)報(bào),2022,53(1):349-359. DOI: 10.6041/j.issn.1000-1298.2022.01.038

HUO L L, YAO Z L, ZHAO L X, et al. Contribution and potential of comprehensive utilization of straw in GHG emission reduction and carbon sequestration[J]. Transactions of the Chinese Society for Agricultural Machinery,2022,53(1):349-359. □ DOI: 10.6041/j.issn.1000-1298.2022.01.038

相關(guān)知識(shí)

我國(guó)土壤污染防治現(xiàn)狀分析及未來(lái)路徑研究
促進(jìn)有機(jī)農(nóng)業(yè)可持續(xù)發(fā)展的創(chuàng)新路徑
有機(jī)質(zhì)農(nóng)業(yè)助力“大地母親”土壤呼吸和健康——人民政協(xié)網(wǎng)
土壤污染防治難點(diǎn)及對(duì)策研究
科研|土壤健康評(píng)估指標(biāo)、框架及程序研究進(jìn)展
有機(jī)質(zhì)農(nóng)業(yè):土壤保育與耕育農(nóng)法的合理搭配——人民政協(xié)網(wǎng)
有機(jī)農(nóng)業(yè)不是低效,土壤健康才是未來(lái)——評(píng)《耕作革命:讓土壤煥發(fā)生機(jī)》
“地球母親日”呼喚保護(hù)土壤健康的有機(jī)質(zhì)農(nóng)業(yè) ——人民政協(xié)網(wǎng)
土壤污染的途徑!
孫波等:促進(jìn)我國(guó)有機(jī)農(nóng)業(yè)快速健康發(fā)展的建議

網(wǎng)址: 農(nóng)業(yè)有機(jī)廢物還田利用促進(jìn)土壤健康和應(yīng)對(duì)氣候變化的路徑及研究建議 http://www.u1s5d6.cn/newsview241190.html

推薦資訊