Increase in maize yield and soil aggregate-associated carbon in North China due to long-term conservation tillage

被引:4
作者
Shen, Ying [1 ]
Zhang, Tingting [1 ]
Cui, Jichao [1 ]
Chen, Siyu [1 ]
Han, Huifang [1 ]
Ning, Tangyuan [1 ]
机构
[1] Shandong Agr Univ, Key Lab Crop Water Physiol & Drought Tolerance Ge, State Key Lab Crop Biol, Minist Agr,Coll Agron, Tai An, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
Aggregate-associated carbon; Grain yield; Subsoiling; ORGANIC-CARBON; NO-TILLAGE; MICROBIAL BIOMASS; CROP YIELD; WHEAT; MANAGEMENT; PARTICULATE; DIVERSITY; STABILITY; ROTATION;
D O I
10.1017/S001447972100020X
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The North China Plain (NCP) is an important agricultural area, where conventional tillage (CT) is used year-round. However, long-term CT has damaged the soil structure, threatening agricultural sustainability. Since 2002, we have conducted a long-term tillage experiment in the NCP to explore the effects of different types of tillage on soil and crop yield. As part of long-term conservation tillage, we conducted a 2-year study in 2016/ 2017 to determine the impact of no tillage (NT), subsoiling (SS), rotary tillage (RT) and CT on soil aggregate distribution, aggregate-associated organic carbon (AOC), aggregate-associated microbial biomass carbon (AMBC), and maize yield. Compared to CT, NT increased the content of macro-aggregates (+4.8%), aggregate-AOC (+8.3%), and aggregate-AMBC (+18.3%), but decreased maize yield (-11.5%). SS increased the contents of macro-aggregates (+ 5%), aggregate-AOC (+ 14.7%), and aggregate-AMBC (+ 16%); although the yield increase was not significant (+ 0.22%), it had the highest economic benefit among the four tillage measures. RT had no significant advantage when considering the above soil variables; moreover, it reduced maize yield by 16.1% compared with CT. Overall, SS is a suitable tillage measure to improve soil macro-aggregate content, carbon content, yield, and economic benefit in the NCP area.
引用
收藏
页码:270 / 281
页数:12
相关论文
共 48 条
[1]   Two-year responses of earthworm abundance, soil aggregates, and soil carbon to no-tillage and fertilization [J].
Arai, Miwa ;
Miura, Toshiko ;
Tsuzura, Hiroshi ;
Minamiya, Yukio ;
Kaneko, Nobuhiro .
GEODERMA, 2018, 332 :135-141
[2]  
Bao S., 2000, Soil Agrochemical Analysis
[3]   No-tillage and soil physical environment [J].
Blanco-Canqui, Humberto ;
Ruis, Sabrina J. .
GEODERMA, 2018, 326 :164-200
[4]   Maize grain yield responses to plant height variability resulting from crop rotation and tillage system in a long-term experiment [J].
Boomsma, Christopher R. ;
Santini, Judith B. ;
West, Terry D. ;
Brewer, Jason C. ;
McIntyre, Lauren M. ;
Vyn, Tony J. .
SOIL & TILLAGE RESEARCH, 2010, 106 (02) :227-240
[5]   CARBON AND NITROGEN DISTRIBUTION IN AGGREGATES FROM CULTIVATED AND NATIVE GRASSLAND SOILS [J].
CAMBARDELLA, CA ;
ELLIOTT, ET .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1993, 57 (04) :1071-1076
[6]   Soil carbon fractions and relationship to soil quality under different tillage and stubble management [J].
Chan, KY ;
Heenan, DP ;
Oates, A .
SOIL & TILLAGE RESEARCH, 2002, 63 (3-4) :133-139
[7]  
Chen Jin-dan, 2011, Journal of Nanjing University of Posts and Telecommunications, V31, P74
[8]  
[陈学文 Chen Xuewen], 2013, [生态学报, Acta Ecologica Sinica], V33, P2676
[9]   Tillage and residue management effects on soil aggregation, organic carbon dynamics and yield attribute in rice-wheat cropping system under reclaimed sodic soil [J].
Choudhury, Shreyasi Gupta ;
Srivastava, Sonal ;
Singh, Ranbir ;
Chaudhari, S. K. ;
Sharma, D. K. ;
Singh, S. K. ;
Sarkar, Dipak .
SOIL & TILLAGE RESEARCH, 2014, 136 :76-83
[10]   Innovative system for biochemical monitoring of degraded soils restoration [J].
Doni, Serena ;
Macci, Cristina ;
Longo, Vincenzo ;
Souid, Aymen ;
Garcia, Carlos ;
Masciandaro, Grazia .
CATENA, 2017, 152 :173-181