Corn-residue transformations into root and soil carbon as related to nitrogen, tillage, and stover management

被引:139
作者
Allmaras, RR [1 ]
Linden, DR [1 ]
Clapp, CE [1 ]
机构
[1] Univ Minnesota, USDA, ARS, Dept Soil Water & Climate, St Paul, MN 55108 USA
关键词
D O I
10.2136/sssaj2004.1366
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Soil organic carbon (SOC) is sensitive to management of tillage, residue (stover) harvest, and N fertilization in corn (Zea mays L.), but little is known about associated root biomass including rhizodeposition. Natural C isotope abundance (delta(13)C) and total C content, measured in paired plots of stover harvest and return were used to estimate corn-derived SOC (cdSOC) and the contribution of nonharvestable biomass (crown, roots, and rhizodeposits) to the SOC pool. Rhizodeposition was estimated for each treatment in a factorial of three tillage treatments (moldboard, MB; chisel, CH; and no-till, NT), two N fertilizer rates (200 and 0 kg N ha(-1)), and two corn residue managements. Treatments influenced cdSOC across a wide range (6.8-17.8 Mg C ha(-1)). Nitrogen fertilization increased stover C by 20%, cdSOC by only 1.9 Mg C ha(-1), and increased rhizodeposition by at least 110% compared with that with no N fertilizer. Stover harvest vs. stover return reduced total source carbon (SC) by 20%, cdSOC by 35%, and total SOC. The amount of stover source carbon ((S)SC) responded to tillage (MB > CH > NT), but tillage affected the amount of cdSOC differently (NT > CH > MB). Total SOC was maintained only by both N fertilization and stover return during the 13-yr period. The ratio of SC in the nonharvestable biomass to (S)SC ranged from 1.01 to 3.49; a ratio of 0.6 conforms to a root-to-shoot ratio of 0.4 when the root biomass includes 50% rhizodeposits. Tillage controlled the fraction of SC retained as cdSOC (i.e., humified; 0.26 for NT and 0.11 for MB and CH), even though N fertilization, stover harvest, and tillage all significantly influenced SC. Decomposition of labile rhizodeposits was a major component of the nonhumified fraction. Rhizodeposition was as much as three times greater than suggested by laboratory and other controlled studies. To understand and manage the entire C cycle, roots and rhizodeposition must be included in the analysis at the field level.
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收藏
页码:1366 / 1375
页数:10
相关论文
共 57 条
[1]  
Allmaras RR, 2000, J SOIL WATER CONSERV, V55, P365
[2]   DYNAMICS OF SOIL ORGANIC-MATTER AND CORN RESIDUES AFFECTED BY TILLAGE PRACTICES [J].
ANGERS, DA ;
VORONEY, RP ;
COTE, D .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1995, 59 (05) :1311-1315
[3]  
[Anonymous], SOIL SCI SOC AM BOOK
[4]   INPUT OF FERTILIZER-DERIVED LABELED-N TO SOIL ORGANIC-MATTER DURING A GROWING-SEASON OF MAIZE IN THE FIELD [J].
BALABANE, M ;
BALESDENT, J .
SOIL BIOLOGY & BIOCHEMISTRY, 1992, 24 (02) :89-96
[5]   NATURAL C-13 ABUNDANCE AS A TRACER FOR STUDIES OF SOIL ORGANIC-MATTER DYNAMICS [J].
BALESDENT, J ;
MARIOTTI, A ;
GUILLET, B .
SOIL BIOLOGY & BIOCHEMISTRY, 1987, 19 (01) :25-30
[6]   SOIL ORGANIC-MATTER TURNOVER IN LONG-TERM FIELD EXPERIMENTS AS REVEALED BY C-13 NATURAL ABUNDANCE [J].
BALESDENT, J ;
WAGNER, GH ;
MARIOTTI, A .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1988, 52 (01) :118-124
[7]   MAIZE ROOT-DERIVED SOIL ORGANIC-CARBON ESTIMATED BY NATURAL C-13 ABUNDANCE [J].
BALESDENT, J ;
BALABANE, M .
SOIL BIOLOGY & BIOCHEMISTRY, 1992, 24 (02) :97-101
[8]   Major contribution of roots to soil carbon storage inferred from maize cultivated soils [J].
Balesdent, J ;
Balabane, M .
SOIL BIOLOGY & BIOCHEMISTRY, 1996, 28 (09) :1261-1263
[9]   EFFECT OF TILLAGE ON SOIL ORGANIC-CARBON MINERALIZATION ESTIMATED FROM C-13 ABUNDANCE IN MAIZE FIELDS [J].
BALESDENT, J ;
MARIOTTI, A ;
BOISGONTIER, D .
JOURNAL OF SOIL SCIENCE, 1990, 41 (04) :587-596
[10]   Estimating C inputs retained as soil organic matter from corn (Zea Mays L.) [J].
Bolinder, MA ;
Angers, DA ;
Giroux, M ;
Laverdière, MR .
PLANT AND SOIL, 1999, 215 (01) :85-91