arrow
返回

Optimizing rice yields while minimizing yield-scaled global warming potential

delete2014-02-24
delete126
PRE
AI
C
Cameron M. Pittelkow *
M
Maria Arlene Adviento‐Borbe
C
Chris van Kessel
J
James Hill
B
Bruce A. Linquist
DOI:10.1111/gcb.12413delete
delete原文链接
delete原文求助
delete分享
delete收藏
摘要

摘要

En 中文
To meet growing global food demand with limited land and reduced environmental impact, agricultural greenhouse gas (GHG) emissions are increasingly evaluated with respect to crop productivity, i.e., on a yield-scaled as opposed to area basis. Here, we compiled available field data on CH4 and N2O emissions from rice production systems to test the hypothesis that in response to fertilizer nitrogen (N) addition, yield-scaled global warming potential (GWP) will be minimized at N rates that maximize yields. Within each study, yield N surplus was calculated to estimate deficit or excess N application rates with respect to the optimal N rate (defined as the N rate at which maximum yield was achieved). Relationships between yield N surplus and GHG emissions were assessed using linear and nonlinear mixed-effects models. Results indicate that yields increased in response to increasing N surplus when moving from deficit to optimal N rates. At N rates contributing to a yield N surplus, N2O and yield-scaled N2O emissions increased exponentially. In contrast, CH4 emissions were not impacted by N inputs. Accordingly, yield-scaled CH4 emissions decreased with N addition. Overall, yield-scaled GWP was minimized at optimal N rates, decreasing by 21% compared to treatments without N addition. These results are unique compared to aerobic cropping systems in which N2O emissions are the primary contributor to GWP, meaning yield-scaled GWP may not necessarily decrease for aerobic crops when yields are optimized by N fertilizer addition. Balancing gains in agricultural productivity with climate change concerns, this work supports the concept that high rice yields can be achieved with minimal yield-scaled GWP through optimal N application rates. Moreover, additional improvements in N use efficiency may further reduce yield-scaled GWP, thereby strengthening the economic and environmental sustainability of rice systems.
Keyword:
greenhouse gas intensity
GHG emissions
synthetic N fertilizer
rice yield
N2O
CH4
AI总结

AI总结

对已上传原文的论文进行重点信息的提取,主要内容包括:简要概述、研究摘要、背景介绍、关键亮点、图文解析、展望与总结。

期刊

Global Change Biology 封面图
Global Change Biology
IF:
12
论文数:
8.9K
被引数:
7.6W

机构

University of California System 封面图
University of California System
学者数:
37.7W
论文数: 33.8W
被引数: 6.6K
引用论文

引用论文

The Thermal and Settlement Characteristics of Crushed-Rock Structure Embankments of the Qinghai-Tibet Railway in Permafrost Regions Under Climate Warming
err2021-12-09
err0
errOAAI
errQihang Mei; Bin Yang; Ji Chen; Jingyi Zhao; Xin Hou; Youqian Liu; Jinchang Wang; Shouhong Zhang; Haiming Dang
err分享
err收藏
Global food security, biodiversity conservation and the future of agricultural intensification
err2012-07-01
err1.5K
PREAI
errTscharntke, Teja; Clough, Yann; Wanger, Thomas C.; Jackson, Louise; Motzke, Iris; Perfecto, Ivette; Vandermeer, John; Whitbread, Anthony
err分享
err收藏
Nanometer Device Scaling in Subthreshold Logic and SRAM
err2008-01-01
err0
PREAI
errScott Hanson; Mingoo Seok; Dennis Sylvester; David Blaauw
err分享
err收藏
Increased greenhouse-gas intensity of rice production under future atmospheric conditions
err2012-10-21
err156
PREAI
errvan Groenigen, Kees Jan; van Kessel, Chris; Hungate, Bruce A.
err分享
err收藏
学者 查看更多内容