Journal of Henan Agricultural Sciences ›› 2024, Vol. 53 ›› Issue (11): 1-16.DOI: 10.15933/j.cnki.1004-3268.2024.11.001
• Reviews • Previous Articles Next Articles
TIAN Jingjie,CUI Erping,LIU Chuncheng,HU Chao,LI Zhongyang,CUI Bingjian
Received:
2024-05-23
Published:
2024-11-15
Online:
2024-12-18
田婧婕,崔二苹,刘春成,胡超,李中阳,崔丙健
通讯作者:
崔丙健(1985-),男,河南焦作人,副研究员,博士,主要从事农业废弃物资源化处理利用与再生水农业灌溉技术研究。E-mail:cuibingjian@caas.cn
作者简介:
田婧婕(2000-),女,山西太原人,在读硕士研究生,研究方向:农业废弃物资源化处理利用。E-mail:82101222118@caas.cn
基金资助:
CLC Number:
TIAN Jingjie, CUI Erping, LIU Chuncheng, HU Chao, LI Zhongyang, CUI Bingjian. Application Status and Research Progress of Bioaugmentation Technology in Agricultural Waste Composting Treatment[J]. Journal of Henan Agricultural Sciences, 2024, 53(11): 1-16.
田婧婕, 崔二苹, 刘春成, 胡超, 李中阳, 崔丙健. 生物强化技术在农业废弃物堆肥处理中的应用及研究进展[J]. 河南农业科学, 2024, 53(11): 1-16.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.hnnykx.org.cn/EN/10.15933/j.cnki.1004-3268.2024.11.001
[1]闵超,安达,王月,等. 我国农村固体废弃物资源化研究进展[J].农业资源与环境学报,2020,37(2):151‑160. MIN C,AN D,WANG Y,et al.Progress of rural solid waste resource utilization in China[J].Journal of Agricultural Resources and Environment,2020,37(2):151‑160. [2]李建安,陈乐,左然然,等.生物强化技术在生物质沼气制备过程中的应用及研究进展[J].微生物学通报,2018,45(7):1588‑1596. LI J A,CHEN L,ZUO R R,et al.Progress in bioaugmentation technology research for biogas production from biomass feedstocks[J].Microbiology China,2018,45(7):1588‑1596. [3]成庆利,王大伟,牛渤超,等.酶解预处理联合生物强化优化城市污泥好氧堆肥[J].生态环境学报,2021,30(12):2395‑2401. CHENG Q L,WANG D W,NIU B C,et al.Optimization effects of enzymatic hydrolysis pretreatment combined with bioaugmentation on the aerobic compost of sewage sludge[J].Ecology and Environmental Sciences,2021,30(12):2395‑2401. [4]赵彬涵,孙宪昀,黄俊,等.微生物在有机固废堆肥中的作用与应用[J].微生物学通报,2021,48(1):223‑240. ZHAO B H,SUN X Y,HUANG J,et al.Application and effects of microbial additives in aerobic composting of organic solid wastes:A review[J].Microbiology China,2021,48(1):223‑240.[5]CHENG Q L,ZHANG L L,WANG D W,et al.Bioaugmentation mitigates ammonia and hydrogen sulfide emissions during the mixture compost of dewatered sewage sludge and reed straw[J].Environmental Science and Pollution Research International,2021,28(48):68487‑68497. [6]王文凡,刘银秀,谢晓杰,等.牛粪堆肥中纤维素高效降解菌的筛选与产酶条件优化[J].微生物学通报,2023,50(11):4796‑4811. WANG W F,LIU Y X,XIE X J,et al.Screening of efficient cellulose degrading bacteria in cow manure compost and optimization of enzyme production conditions[J].Microbiology China,2023,50(11):4796‑4811. [7]王永伦,余克非,郑展望.1株耐高温纤维素降解菌发酵条件优化与秸秆降解应用[J].江苏农业科学,2023,51(19):229‑236. WANG Y L,YU K F,ZHENG Z W.Optimization of fermentation conditions of a cellulose degrading strain with high temperature resistance and its application in straw degradation[J].Jiangsu Agricultural Sciences,2023,51(19):229‑236. [8]WEI Y Q, WU D, WEI D, et al.Improved lignocellulose‑degrading performance during straw composting from diverse sources with actinomycetes inoculation by regulating the key enzyme activities[J].Bioresource Technology,2019,271:66‑74. [9]李子婧,刘帆,汤胜,等.纤维素降解菌长枝木霉菌(Trichoderma longibrachiatum)ZJ-10的筛选及产酶条件优化[J].浙江大学学报(农业与生命科学版),2022,48(5):614‑624. LI Z J,LIU F,TANG S,et al.Screening of cellulose‑degrading fungus Trichoderma longibrachiatum ZJ‑10 and optimization of enzyme production conditions [J]. Journal of Zhejiang University(Agriculture and Life Sciences),2022,48(5):614‑624. [10]VENTORINO V,ALIBERTI A,FARACO V,et al.Exploring the microbiota dynamics related to vegetable biomasses degradation and study of lignocellulose‑degrading bacteria for industrial biotechnological application[J].Scientific Reports,2015,5:8161. [11]单建荣,全鑫,朱用哲,等.一株低温纤维素降解菌的筛选与产酶条件优化[J].生态学杂志,2021,40(4):1128‑1136. SHAN J R,QUAN X,ZHU Y Z,et al.Screening of a low‑temperature cellulose‑degrading bacterium and optimization of cellulase production conditions[J].Chinese Journal of Ecology,2021,40(4):1128‑1136. [12]王鑫,彭仕乐,张旭屹,等.秸秆堆肥功能微生物与高效降解菌剂的研究进展[J].中国酿造,2024,43(4):22‑28. WANG X,PENG S L,ZHANG X Y,et al.Research progress of functional microorganisms and efficient biodegradable agents in straw composting[J].China Brewing,2024,43(4):22‑28. [13]ALIABDEL‑RAHMAN M,NOUREL‑DIN M,REFAAT B M,et al.Biotechnological application of thermotolerant cellulose‑decomposing bacteria in composting of rice straw[J].Annals of Agricultural Sciences,2016,61(1):135‑143. [14]杨茜,李维尊,鞠美庭,等.微生物降解木质纤维素类生物质固废的研究进展[J].微生物学通报,2015,42 (8):1569‑1583. YANG Q,LI W Z,JU M T,et al.Advances in microbial degradation of lignocelluloses biomass solid waste:A review[J].Microbiology China,2015,42(8):1569‑1583. [15]寇慧,黄长浩,严骋,等.1株木质素降解菌的筛选、鉴定及固态发酵产酶优化[J].饲料研究,2023,46(9):85‑92. KOU H,HUANG C H,YAN C,et al.Screening and identification of a lignin‑degrading strain and optimization of its enzyme production by solid‑state fermentation[J].Feed Research,2023,46(9):85‑92. [16]蒋荣清.堆肥中木质降解素复合菌的筛选及其生理特性研究[D].长沙:湖南大学,2010. JIANG R Q.Screening of lignin‑degrading composite microorganism from composting and its physiological characteristics[D].Changsha:Hunan University,2010.[17]李冰青.密粘褶菌预处理促进麦秸-猪粪好氧堆肥腐殖化研究[D].南京:南京农业大学,2020. LI B Q.Study on the Humification of wheat straw and pig manure aerobic compost promoted by Gloeophyllumtrabeum pretreatment[D].Nanjing: Nanjing Agricultural University,2020. [18]尹静,刘悦秋,于峰,等.一株木质素降解菌的筛选鉴定及其在堆肥中的应用[J].中国土壤与肥料,2019 (3):179‑185. YIN J,LIU Y Q,YU F,et al.Screening and identification of a lignin‑degrading bacterium and its application in composting[J].Soil and Fertilizer Sciences in China,2019(3):179‑185. [19]徐鹏,徐晓东,李洋,等.木质纤维素降解菌在秸秆堆肥中的研究现状与进展[J].北方园艺,2022(8):122‑128. XU P,XU X D,LI Y,et al.Research status and progress of lignocellulosic degrading bacteria in straw compost[J]. Northern Horticulture,2022(8):122‑128. [20]VARMA V S,DAS S,SASTRI C V,et al. Microbial degradation of lignocellulosic fractions during drum composting of mixed organic waste[J].Sustainable Environment Research,2017,27(6):265‑272. [21]WU Y P,CHEN Y X,SHAABAN M,et al.Evaluation of microbial inoculants pretreatment in straw and manure co‑composting process enhancement[J].Journal of Cleaner Production,2019,239:118078.
[22]杨迎香,张文明,陈开山,等.5株外源嗜热固氮菌对堆肥碳氮损失及其细菌群落的影响[J].甘肃农业大学学报,2024,59(4):225‑235.
[23]杨杰,娄正伟,蒙归,等.纤维素分解固氮菌强化农林业废弃物堆肥研究进展[J].西藏科技,2023,45(12):26‑33.
[24]李荣华,涂志能,AMJAD A,等.生物炭复合菌剂促进堆肥腐熟及氮磷保留[J].中国环境科学,2020,40 (8):3449‑3457.
[25]高君峰,徐杰,王泽懿,等.畜禽粪便堆肥高温保氮菌Aliibacillus thermotolerans BM62的筛选及复壮[J].中国土壤与肥料,2020(3):196‑203. [26]MAEDA K,HANAJIMA D,TOYODA S,et al.Microbiology of nitrogen cycle in animal manure compost[J].Microbial Biotechnology,2011,4(6):700‑709.
[27]徐佳琦.接种菌剂强化堆肥过程及碳氮物质转化规律的研究[D].南宁:广西大学,2019.
[28]王守红,朱凌宇,徐荣,等.菌剂添加对牛粪堆肥氮素变化及腐熟度影响[J].安徽农业大学学报,2017,44 (4):659‑664.
[29]王佳丽,王梓宇,马咏琪,等.氮素转化菌群对牛粪好氧堆肥的保氮效果[J].浙江农业学报,2024,36(1):177‑186.
[30]石春芝,蒲一涛,郑宗坤,等.垃圾堆肥接种固氮菌对堆肥含氮量的影响[J].应用与环境生物学报,2002,8 (4):419‑421.
[31]夏湘勤,席北斗,黄彩红,等.畜禽粪便堆肥臭气控制研究进展[J].环境工程技术学报,2019,9(6):649‑657.
[32]尹红梅,刘标,郭照辉,等.1株畜禽粪便堆肥脱氨除臭菌的筛选及特性[J].江苏农业科学,2020,48(17):261‑265.
[33]邓丽莎.卡氏芽孢杆菌BCH除臭功能分析及在猪粪堆肥中的应用研究[D].雅安:四川农业大学,2023.
[34]牛永艳,穆永松,毛婷,等.除臭微生物的筛选复配及其在堆肥中的应用[J].微生物学报,2023,63(4):1531‑1540.
[35]吴玉洪,张世昌,田茜,等.堆肥臭味物质:粪臭素高效降解菌Rp3的分离和鉴定[J].农业资源与环境学报,2021,38(4):576‑584.
[36]刘春梅,徐凤花,曹艳花,等.除臭菌株对NH3和H2S释放及物质转化的影响[J].农业环境科学学报,2011,30(3):585‑590.
[37]申艳萍,王巧利,胡绳,等.产漆酶血红密孔菌对城市污泥堆肥过程中有机氯农药的降解效应[J].环境工程学报,2017,11(12):6450‑6457.
[38]刘艳婷,郑莉,宁寻安,等.微生物菌剂对畜禽粪便好氧堆肥过程中重金属钝化与氮转化的影响[J].环境科学学报,2020,40(6):2157‑2167.
[39]高鹏,向铁军,张鸿,等.添加不同菌剂对畜禽粪便堆肥过程中抗生素降解的影响(英文)[J].农业科学与技术(英文版),2023,24(2):42‑47.
[40]黄飞霏,刘建坤,王晓明,等.鸡粪好氧堆肥中影响抗生素降解的理化因子和优势菌群分析[J].中国环境科学,2024,44(8):4641‑4651.
[41]张静,岳政府,周志高,等.一株环丙沙星降解菌及其在堆肥中的安全利用[J].中国土壤与肥料,2023(2):226‑233.
[42]李玮琳,张昕,马军伟,等.抗生素降解菌剂对猪粪堆肥腐熟和细菌群落演替的影响[J].环境科学,2022,43(10):4789‑4800.
[43]秦莉,高茹英,徐亚平,等.堆肥中高效降解纤维素及金霉素和土霉素的复合菌系的构建[J].农业环境科学学报,2014,33(3):465‑470.
[44]李貌,周嘉良,丁国春,等.畜禽粪便堆肥过程中雌激素降解机制与影响因素研究进展[J/OL].中国环境科学,2024:1‑16[2024‑05‑17]. https://link.cnki.net/urlid/11.2201.X.20240227.1308.006. [45]SUN S S,ABDELLAH Y A Y,MIAO L,et al.Impact of microbial inoculants combined with humic acid on the fate of estrogens during pig manure composting under low‑temperature conditions[J].Journal of Hazardous Materials,2022,424:127713.
[46]杨杰,涂晨,李瑞杰,等.不同类别粪便堆肥中微塑料赋存特征及区域差异[J].生态与农村环境学报,2023,39(5):576‑583. [47]KRAINARA S,MISTRY A N,MALEE C,et al.Development of a plastic waste treatment process by combining deep eutectic solvent(DES)pretreatment and bioaugmentation with a plastic‑degrading bacterial consortium[J].Journal of Hazardous Materials,2023,460:132507.
[48]肖建华,魏素珍.堆肥体系中的微塑料污染及消减策略[J].环境科学与技术,2024,47(1):64‑74.
[49]张晓倩,许修宏,王晶,等. 添加木质素降解菌对堆肥中酶活性的影响[J].农业环境科学学报,2012,31 (4):843‑847.
[50]黄金枝,胡桂萍,俞燕芳,等. 微生物在农业废弃物堆肥应用中的研究进展[J]. 广东农业科学,2019,46 (1):64‑70.
[51]徐杰,许修宏,门梦琪,等. 畜禽粪便堆肥快速升温除臭多功能复合菌剂及其应用[J]. 中国土壤与肥料,2019(5):200‑206.
[52]周辉宇,陆文静,王洪涛,等. 高效纤维素分解菌生物强化技术在工厂化好氧堆肥中的应用初探[J]. 农业环境科学学报,2005(1):182‑186.
[53]张野,王吉平,苏天明,等. 筛选微生物降解木质纤维素的研究进展[J]. 中国生物工程杂志,2020,40(6):100‑105.
[54]张铁文. 纤维素、木质素高效分解菌株的筛选及其在作物秸秆资源化利用中的作用研究[D]. 西安:西安建筑科技大学,2021.
[55]岳世林,马晓勇,姜国均.耐高温和耐低温固体复合菌剂对牛粪堆肥的影响[J]. 家畜生态学报,2024,45 (2):55‑60.
[56]杨紫祎,黄祎晨,杨妞,等.复合菌剂提高青藏高原羊粪和尾菜混合堆肥微生物多样性并加快堆肥腐熟[J]. 植物营养与肥料学报,2024,30(2):406‑416.
[57]张国言,董元杰,孙桂阳,等.复合菌剂对兔粪堆肥碳氮转化与损失的影响[J].中国农业大学学报,2022,27(11):153‑165.
[58]贾凯雪,徐少奇,魏自民,等. 解磷微生物强化堆肥磷组分转化研究进展[J]. 环境工程,2022,40(12):89‑97.
[59]魏自民,席北斗,王世平,等.高温解磷菌对堆肥所添加难溶性磷素转化的试验研究[J].环境科学,2008,29(7):2073‑2076.
[60]王涛,常小箭,李方向,等.“菌剂+分子膜”发酵工艺改善秸秆与畜粪共堆肥效率[J]. 西安工程大学学报,2024,38(2):75‑84.
[61]崔虎. 畜禽粪便堆肥过程中磷形态的转化与调控[D]. 北京:中国科学院大学,2022.
[62]詹亚斌,张磊,丁晓艳,等.一株堆肥高效解磷菌的筛选、鉴定及其溶磷特性[J]. 科学技术与工程,2022,22(3):960‑966.
[63] 赖鉴添,杨婷,史发超,等. 蔗叶堆肥中一株泡盛曲霉溶磷能力的鉴定及其对辣椒的促生效果[J]. 微生物学报,2021,61(1):77‑91.
[64]江高飞,暴彦灼,杨天杰,等. 高温秸秆降解菌的筛选及其纤维素酶活性研究[J]. 农业环境科学学报,2020,39(10):2465‑2472.
[65] 杨心怡. 外源添加嗜热细菌对水稻秸秆好氧堆肥的影响[D]. 南京:南京农业大学,2019.
[66]李雯,李停锋,郭君钰,等. 菌酶协同处理改善玉米秸秆堆肥品质[J]. 农业工程学报,2020,36(19):192‑199.
[67]王家寅,鲁金凤,王聆卉,等. 低温下冷适应性菌剂与超高温菌剂联用的堆肥效果评价[J]. 农业环境科学学报,2024,43(9):2117‑2125.
[68]曾祥,江友峰,杨明开,等.微生物复合菌剂添加对白酒酒糟堆肥腐熟速度的影响[J].河南农业科学,2024,53(3):87‑94.
[69]周泽,付卫刚,雷杨,等.羊粪中纤维素降解菌的筛选、鉴定及评价[J].草地学报,2023,31(11):3535‑3542.
[70]张翠绵,贾楠,胡栋,等.低温型复合发酵菌剂接种鸡粪堆肥的效应[J].环境工程学报,2016,10(10):5881‑5885.
[71]刘艳薇,顾欣,惠悦然,等.除氨菌复配对鸡粪堆肥除臭和腐熟效果的影响[J].河南农业科学,2019,48 (11):75‑83.
[72]顾沈怡,戴海洋,郭凡婧,等.微生物和化学添加剂对 畜禽粪便堆肥过程活性氮气体的减排研究[J].生态与农村环境学报,2022,38(8):1010‑1018.
[73]牛明芬,赵明梅,郭睿,等.不同微生物菌剂对畜禽粪便堆肥效果的温度指标研究[J].环境保护与循环经济,2010,30(5):51‑52.
[74]花强壮.不同接种剂及通风方式对鸡粪堆肥ARGs演化的影响及其生物学机制[D].扬州:扬州大学,2023.
[75]刘艳婷.微生物菌剂对猪粪好氧堆肥过程中重金属钝化、抗生素与抗性基因削减的影响研究[D].广州:广东工业大学,2020.
[76]李冉,孟海波,赵立欣,等.微生物和生物炭联用对猪粪堆肥后重金属Pb和Cd的钝化效果[J].农业工程学报,2018,34(23):164‑169.
[77]罗娟,赵立欣,于佳动,等.我国蔬菜废弃物利用研究进展与发展建议[J/OL].中国瓜菜,2024:1‑11[2024‑05‑19].https://doi.org/10.16861/j.cnki.zggc. 202423. 0476.
[78]廉梦云,关文义,武艳,等.尾菜协同农业废弃物高温好氧堆肥工艺研究[J].安徽农业科学,2023,51(16):201‑204.
[79]李雪菲,靳拓,张凯,等.微生物菌剂对设施辣椒秸秆原位堆肥土壤理化性质及细菌群落的影响[J].中国农业大学学报,2022,27(10):33‑43.
[80]李雪菲,靳拓,邵明娜,等.外源菌剂对茄子秸秆原位堆肥微生物群落结构影响及其相关性分析[J].农业资源与环境学报,2023,40(4):883‑892.
[81]潘红梅.不同微生物菌剂对娃娃菜堆肥效果的影响[J].农业科技与信息,2020(13):29‑30,35.
[82]李洋.不同菌剂对番茄茎秆堆肥微生物群落及产物的应用效果研究[D].杨凌:西北农林科技大学,2023.
[83]甄月月.利用复合纤维降解菌系预处理的尾菜厌氧消化工艺研究[D].北京:中国农业科学院,2020.
[84]陈芙蓉,熊伟仡,尹娇,等.微生物菌剂对叶菜废弃物堆肥过程的影响[J].中国农业科技导报,2024,26 (3):146‑154.
[85]李恕艳,李吉进,张邦喜,等.菌剂对鸡粪堆肥腐殖质含量品质的影响[J].农业工程学报,2016,32(S2):268‑274.
[86]岳丹,王磊,乔莉娟,等.高效纤维素降解菌株筛选及其复合微生物菌剂在有机堆肥中的应用效果[J].江苏农业科学,2018,46(17):273‑276.
[87]郭鹏博,温雪,张方政,等.接菌剂对水稻秸秆和白菜尾菜混合堆肥进程及细菌多样性的影响[J].黑龙江八一农垦大学学报,2023,35(3):87‑94.
[88]巩光禄,赵铎,郭鹏博,等.微生物菌剂对玉米秸秆和餐厨垃圾混合好氧堆肥的影响[J].黑龙江八一农垦大学学报,2022,34(5):92‑98.
[89]鲍美文. 多元物料堆肥过程中温室气体的排放规律及机制[D]. 长春:中国科学院大学(中国科学院东北地理与农业生态研究所),2023.
[90]陈昕,姜成浩,罗安程. 秸秆微生物降解机理研究[J].安徽农业科学,2013,41(23):9728‑9731.
[91]许从峰,艾士奇,申贵男,等. 木质纤维素的微生物降解[J]. 生物工程学报,2019,35(11):2081‑2091. [92]PÉREZ J,MUÑOZ‑DORADO J,DE LA RUBIA T,et al. Biodegradation and biological treatments of cellulose,hemicellulose and lignin:An overview[J].International Microbiology,2002,5(2):53‑63. [93]ADSUL M G,BASTAWDE K B,VARMA A J,et al.Strain improvement of Penicillium janthinellum NCIM 1171 for increased cellulase production[J].Bioresource Technology,2007,98(7):1467‑1473.
[94]覃俊达. 微生物特性对农业废物堆肥腐殖化的影响研究[J]. 农业科技与信息,2016(35):106‑108,111. [95]MCCARTHY A J. Lignocellulose‑degrading actinomycetes[J]. FEMS Microbiology Letters,1987,46(2):145‑163. [96]BUGG T D H,AHMAD M,HARDIMAN E M,et al.Pathways for degradation of lignin in bacteria and fungi[J].Natural Product Reports,2011,28(12) :1883‑1896.
[97]薛林贵,杨蕊琪,马高高,等. 秸秆的生物降解机理及其功能微生物菌群研究进展[J].生态科学,2017,36 (3):193‑199. [98]HUANG D L,ZENG G M,FENG C L,et al. Changes of microbial population structure related to lignin degradation during lignocellulosic waste composting[J]. Bioresource Technology, 2010, 101 (11) :4062‑4067.
[99]YU H Y,ZENG G M,HUANG H L,et al.Microbial community succession and lignocellulose degradation
[100]施童,陈杰,亓传仁,等. 农林废弃物对厨余垃圾堆肥腐殖化的影响与微生物驱动机制[J]. 农业工程学报,2023,39(13):191‑201.
[101]马闯,扈斌,刘福勇,等. 有机废弃物好氧堆肥过程中微生物及酶活性变化状况综述[J].环境工程,2019,37(9):159‑164.
[102]刘东明,孟繁华,郝艳,等. 微生物菌剂对堆肥功能微生物重构的影响[J].环境科学研究,2020,33(9):2011‑2019.
[103]张金辉,李银月,张发文,等. 物料碳氮比及微生物菌剂接种量对黄瓜秧-鸡粪堆肥过程的影响[J]. 江苏农业学报,2024,40(2):260‑269. [104]韩威,关正军,吴应涛,等. 高温联合生物强化对水禽养殖废水滤料堆肥过程的影响[J]. 东北农业大学学报,2023,54(10):36‑47. HAN W,GUAN Z J,WU Y T,et al. Effects of high temperature combined microbe strengthening on the composting process of poultry wastewater filter material[J]. Journal of Northeast Agricultural University,2023,54(10):36‑47.
[105]周桐. 不同菌剂及物料配比在鸡粪好氧发酵中的应用及其发酵产品肥效研究[D]. 泰安:山东农业大学,2022.
[106]黄思晗,凌玲,李佳彬,等. 菌剂添加条件下通风量对食品废弃物好氧发酵过程的影响[J]. 化工进展,2024,43(7):4128‑4137.
[107]梁新宇. 不同调理剂及翻堆频率对番茄秸秆好氧堆肥过程的影响[D]. 杨凌:西北农林科技大学,2023.
[108]覃振伦. 磁化水复合保氮剂对好氧堆肥进程和微生物群落的影响[D]. 西安:西安理工大学,2022.
[109]张頔,李龙威,王鑫,等. 生物炭对畜禽粪便好氧堆肥的影响研究进展[J]. 玉米科学,2022,30(6):138‑148.
[110]翟森茂,毛欣宇,陈星,等.黄孢原毛平革菌联合生物炭对鸡粪好氧堆肥木质素降解和腐熟度的影响[J]. 江苏农业科学,2023,51(7):227‑235.
[111]贾培寅. 生物炭和菌剂联合对好氧堆肥木质纤维素降解的影响及堆肥产物在土壤中的应用[D]. 青岛:青岛大学,2023.
[112]姬亚慧. 菌剂、生物炭添加对猪粪堆肥减少氮损失的影响[D]. 太谷:山西农业大学,2022.
[113]李敏清,袁英英,区伟佳,等. 畜禽粪便堆肥作为功能微生物载体的研究[J]. 农业环境科学学报,2011,30(5):1007‑1013.
[114]朱建伟,毕江涛,李文兵,等. 腐熟菌剂与配施辅料对奶牛粪堆肥理化性质及菌群结构的影响[J]. 西南农业学报,2023,36(8):1725‑1736.
[115]顾沈怡. 添加剂和合成菌群对鸡粪堆肥保氮减排的影响研究[D]. 南京:南京信息工程大学,2023.
[116]李旺旺,刘燕,李国学,等. 菌剂和含磷添加剂联合添加对污泥堆肥污染气体排放及堆肥品质的影响[J]. 农业环境科学学报,2022,41(4):878‑887.
[117]陈鑫,李昌宁,肖金玉,等. 接种不同微生物菌剂对牛粪好氧堆肥腐熟的影响[J]. 草原与草坪,2023,43 (6):58‑65.
[118]曾金樱,吴榕贵,唐秀媚,等. 不同微生物菌剂对鸡粪堆肥的影响研究[J]. 黑龙江畜牧兽医,2023,20:57‑63.
[119]马丽婷,徐智,赵兵,等. 不同时期接种黄孢原毛平革菌对稻壳和鸡粪堆肥腐殖化的影响[J]. 中国生态农业学报(中英文),2022,30(9):1522‑1530. [120] ZHENG J,ZENG G,CHEN Y,et al. Impact of Phanerochaete chrysosporium inoculation on indigenous bacterial communities during agricultural waste composting [J]. Applied Microbiology and Biotechnology,2013,97:3159‑3169. |
[1] | WANG Xianxin, QI Lihua, SONG Jiangfu, ZHANG Qingge, LIU Congcong, ZHANG Qi, SONG Feifei, XU Ailing. Screening of Cellulose and Lignin Degrading Bacteria and Their Effect on Composting of Mushroom Residue [J]. Journal of Henan Agricultural Sciences, 2024, 53(9): 66-79. |
[2] | ZENG Xiang, JIANG Youfeng, YANG Mingkai, CHENG Lifangyu, CAI Jiangbo, ZHENG Bowen, RAN Xuesong, WANG Yan, HU Xiaona. Effect of Microbial Compound Agent Addition on Maturation Rate of Distiller’s Grains Compost [J]. Journal of Henan Agricultural Sciences, 2024, 53(3): 87-94. |
[3] | ZHAO Biao, FENG Xu, HE Fumeng, XU Yongqing, SHI Qihai, FENG Yanzhong, LI Fenglan. Preparation of EM Selenium‑Enriched Yeast Agent and Its Application in Selenium‑Enriched Rice Production [J]. Journal of Henan Agricultural Sciences, 2023, 52(8): 26-35. |
[4] | CHEN Yan, WU Jian, MA Haibin, YANG Li, LIU Yingxue, LI Chengyu, LIU Tianxue, LI Chaohai, ZHAO Yali. Effects of Different Cultivation Modes on Yield and Resource Utilization Efficiency of Summer Maize [J]. Journal of Henan Agricultural Sciences, 2023, 52(3): 36-47. |
[5] | TANG Fenfen, YANG Weike, XIE Kun, ZHANG Zuyun, LI Na. Changes of Metabolic Functional Diversity of Potato Rhizosphere Soil Microorganisms under Feeding Stress of Potato Tuber Moth,Phthorimaea operculella Zeller [J]. Journal of Henan Agricultural Sciences, 2023, 52(11): 104-112. |
[6] | LIU Yajun, WANG Wenjing, LI Min, WANG Honggang, CHU Fengli, HU Qiguo. Effects of Combined Application of Inorganic Fertilizer and Organic Fertilizer on Soil Nutrient Changes and Microbial Carbon Source Metabolism in Sweetpotato Field [J]. Journal of Henan Agricultural Sciences, 2022, 51(7): 75-84. |
[7] | DAI Yurong, LI Yunhong, MU Liqiang, WU jin. Effects of PGPR Combined with Biomass Carbon on Capsicum annuum Growth and Soil Physical and Chemical Properties [J]. Journal of Henan Agricultural Sciences, 2022, 51(5): 62-70. |
[8] | LIANG Lu, ZHANG Weijie, XU Bohan, ZHUANG Qiuli, JIANG Xiufang, HUANG Yubo. Research Progress on Effects of Combined Application of Organic and Inorganic Fertilizers on Soil Fertility and Soil Environment [J]. Journal of Henan Agricultural Sciences, 2022, 51(3): 1-11. |
[9] | SUN Shijun, LIU Qi, YE Yingjie, WEI Na, HAO Shuiyuan. Effects of Humic Acid on Soil Nutrients and Microbial Community Structure of Cucumber with Different Continuous Cropping Years in Greenhouse [J]. Journal of Henan Agricultural Sciences, 2022, 51(2): 65-74. |
[10] | XIANG Ligang, LI Wenhong, ZHENG Ping, LI Fengliang, WANG Hancheng, YU Zhihe. Effects of Cyantraniliprole on Intestinal Microbial Community and Metabolic Function of Plutella xylostella(Linnaeus) [J]. Journal of Henan Agricultural Sciences, 2022, 51(10): 96-105. |
[11] | . Effects of Straw Microorganisms Returning on Soil Nutrients,Rhizosphere Soil Bacterial Community Diversity and Yield of Winter Wheat [J]. Journal of Henan Agricultural Sciences, 2022, 51(1): 60-70. |
[12] | QIN Tao. Effects of Pepper Straw Returning Amount on Rhizosphere Soil Microenvironment and Quality of Watermelon [J]. Journal of Henan Agricultural Sciences, 2021, 50(9): 79-86. |
[13] | CHENG Jinping, LIU Xiaogang, YU Xueran, XUE Xinyue, MA Jiaxin, LUO Chengke, TIAN Lei, YANG Shuqin, MA Tianli, LI Peifu. Research Progress on Iron Element in Rice [J]. Journal of Henan Agricultural Sciences, 2021, 50(6): 1-8. |
[14] | LI Yafei, ZHANG Xiang, CHANG Dong, LI Liang , CHENG Peijun, SI Xianzong, SUO Yanyan, QIU Lingjun, MAO Jiawei. Effects of Soymilk and Potassium Root Irrigation on Soil Properties and Yield and Quality of Flue-cured Tobacco [J]. Journal of Henan Agricultural Sciences, 2021, 50(6): 44-53. |
[15] | WANG Baoping, ZHOU Jing, SHI Xiangyuan, LI Xinxin, WANG Xiuhong, DU Huiping. Effects of Different Agricultural Waste Compound Substrates on Photosynthetic Characteristics,Yield and Quality of Watermelon [J]. Journal of Henan Agricultural Sciences, 2021, 50(6): 116-124. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||