Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China

Tillage represents an important practice that is used to dynamically regulate soil properties, and affects the grain production process and resource use efficiency of crops. The objectives of this 3-year field study carried out in the Huang-Huai-Hai (HHH) Plain of China were to compare the effects o...

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Main Authors: Fen WU, Li-chao ZHAI, Ping XU, Zheng-bin ZHANG, Elamin Hafiz BAILLO, Lemessa Negasa TOLOSA, Roy Njoroge KIMOTHO, Xiu-ling JIA, Hai-qian GUO
Format: Article
Language:English
Published: Elsevier 2021-02-01
Series:Journal of Integrative Agriculture
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095311920634050
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author Fen WU
Li-chao ZHAI
Ping XU
Zheng-bin ZHANG
Elamin Hafiz BAILLO
Lemessa Negasa TOLOSA
Roy Njoroge KIMOTHO
Xiu-ling JIA
Hai-qian GUO
author_facet Fen WU
Li-chao ZHAI
Ping XU
Zheng-bin ZHANG
Elamin Hafiz BAILLO
Lemessa Negasa TOLOSA
Roy Njoroge KIMOTHO
Xiu-ling JIA
Hai-qian GUO
author_sort Fen WU
collection DOAJ
description Tillage represents an important practice that is used to dynamically regulate soil properties, and affects the grain production process and resource use efficiency of crops. The objectives of this 3-year field study carried out in the Huang-Huai-Hai (HHH) Plain of China were to compare the effects of a new deep vertical rotary tillage (DVRT) with the conventional shallow rotary tillage (CT) on soil properties, winter wheat (Triticum aestivum L.) grain yield and water and nitrogen use efficiency at different productivity levels, and to identify a comprehensive management that optimizes both grain yield and resource use efficiency in the HHH Plain. A split-plot design was adopted in field experiments in the winter wheat growing seasons of 2016–2017 (S1), 2017–2018 (S2) and 2018–2019 (S3), with DVRT (conducted once in June 2016) and CT performed in the main plots. Subplots were treated with one of four targeted productivity level treatments (SH, the super high productivity level; HH, the high productivity and high efficiency productivity level; FP, the farmer productivity level; ISP, the inherent soil productivity level). The results showed that the soil bulk density was reduced and the soil water content at the anthesis stage was increased in all three years, which were due to the significant effects of DVRT. Compared with CT, grain yields, partial factor productivity of nitrogen (PFPN), and water use efficiency (WUE) under DVRT were increased by 22.0, 14.5 and 19.0%. Path analysis and direct correlation decomposition uncovered that grain yield variation of winter wheat was mostly contributed by the spike numbers per area under different tillage modes. General line model analysis revealed that tillage mode played a significant role on grain yield, PFPN and WUE not only as a single factor, but also along with other factors (year and productivity level) in interaction manners. In addition, PFPN and WUE were the highest in HH under DVRT in all three growth seasons. These results provided a theoretical basis and technical support for coordinating the high yield with high resource use efficiency of winter wheat in the resource-restricted region in the HHH Plain of China.
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spelling doaj.art-e322adb186af4bb19245c17d90da4c2e2022-12-21T21:24:34ZengElsevierJournal of Integrative Agriculture2095-31192021-02-01202593605Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of ChinaFen WU0Li-chao ZHAI1Ping XU2Zheng-bin ZHANG3Elamin Hafiz BAILLO4Lemessa Negasa TOLOSA5Roy Njoroge KIMOTHO6Xiu-ling JIA7Hai-qian GUO8Center for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; University of Chinese Academy of Sciences, Beijing 100049, P.R.ChinaInstitute of Cereal and Oil Crops, Hebei Academy of Agricultural and Forestry Sciences, Shijiazhuang 050035, P.R.ChinaCenter for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; Correspondence XU Ping, Tel: +86-311-85886648, Fax: +86-311-85815093Center for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; Correspondence ZHANG Zheng-bin, Tel: +86-311-85886648, Fax: +86-311-85815093Center for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; University of Chinese Academy of Sciences, Beijing 100049, P.R.ChinaCenter for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; University of Chinese Academy of Sciences, Beijing 100049, P.R.ChinaCenter for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences/Key Laboratory of Agricultural Water Resources, Chinese Academy of Sciences/Hebei Key Laboratory of Water-saving Agriculture, Shijiazhuang 050022, P.R.China; University of Chinese Academy of Sciences, Beijing 100049, P.R.ChinaInstitute of Cereal and Oil Crops, Hebei Academy of Agricultural and Forestry Sciences, Shijiazhuang 050035, P.R.ChinaShijiazhuang Agricultural Products Quality Testing Center, Shijiazhuang 050021, P.R.ChinaTillage represents an important practice that is used to dynamically regulate soil properties, and affects the grain production process and resource use efficiency of crops. The objectives of this 3-year field study carried out in the Huang-Huai-Hai (HHH) Plain of China were to compare the effects of a new deep vertical rotary tillage (DVRT) with the conventional shallow rotary tillage (CT) on soil properties, winter wheat (Triticum aestivum L.) grain yield and water and nitrogen use efficiency at different productivity levels, and to identify a comprehensive management that optimizes both grain yield and resource use efficiency in the HHH Plain. A split-plot design was adopted in field experiments in the winter wheat growing seasons of 2016–2017 (S1), 2017–2018 (S2) and 2018–2019 (S3), with DVRT (conducted once in June 2016) and CT performed in the main plots. Subplots were treated with one of four targeted productivity level treatments (SH, the super high productivity level; HH, the high productivity and high efficiency productivity level; FP, the farmer productivity level; ISP, the inherent soil productivity level). The results showed that the soil bulk density was reduced and the soil water content at the anthesis stage was increased in all three years, which were due to the significant effects of DVRT. Compared with CT, grain yields, partial factor productivity of nitrogen (PFPN), and water use efficiency (WUE) under DVRT were increased by 22.0, 14.5 and 19.0%. Path analysis and direct correlation decomposition uncovered that grain yield variation of winter wheat was mostly contributed by the spike numbers per area under different tillage modes. General line model analysis revealed that tillage mode played a significant role on grain yield, PFPN and WUE not only as a single factor, but also along with other factors (year and productivity level) in interaction manners. In addition, PFPN and WUE were the highest in HH under DVRT in all three growth seasons. These results provided a theoretical basis and technical support for coordinating the high yield with high resource use efficiency of winter wheat in the resource-restricted region in the HHH Plain of China.http://www.sciencedirect.com/science/article/pii/S2095311920634050winter wheatdeep vertical rotary tillageresource use efficiencywater use efficiencypartial factor productivity of nitrogen
spellingShingle Fen WU
Li-chao ZHAI
Ping XU
Zheng-bin ZHANG
Elamin Hafiz BAILLO
Lemessa Negasa TOLOSA
Roy Njoroge KIMOTHO
Xiu-ling JIA
Hai-qian GUO
Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
Journal of Integrative Agriculture
winter wheat
deep vertical rotary tillage
resource use efficiency
water use efficiency
partial factor productivity of nitrogen
title Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
title_full Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
title_fullStr Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
title_full_unstemmed Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
title_short Effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the Huang-Huai-Hai Plain of China
title_sort effects of deep vertical rotary tillage on the grain yield and resource use efficiency of winter wheat in the huang huai hai plain of china
topic winter wheat
deep vertical rotary tillage
resource use efficiency
water use efficiency
partial factor productivity of nitrogen
url http://www.sciencedirect.com/science/article/pii/S2095311920634050
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