期刊文献+

Resource use efficiency, ecological intensification and sustainability of intercropping systems 被引量:5

Resource use efficiency, ecological intensification and sustainability of intercropping systems
下载PDF
导出
摘要 The rapidly growing demand for food, feed and fuel requires further improvements of land and water management, crop productivity and resource-use efficiencies.Combined field experimentation and crop growth modelling during the past five decades made a great leap forward in the understanding of factors that determine actual and potential yields of monocrops.The research field of production ecology developed concepts to integrate biological and biophysical processes with the aim to explore crop growth potential in contrasting environments.To understand the potential of more complex systems(multi-cropping and intercropping) we need an agro-ecosystem approach that integrates knowledge derived from various disciplines: agronomy, crop physiology, crop ecology, and environmental sciences(soil, water and climate).Adaptation of cropping systems to climate change and a better tolerance to biotic and abiotic stresses by genetic improvement and by managing diverse cropping systems in a sustainable way will be of key importance in food security.To accelerate sustainable intensification of agricultural production, it is required to develop intercropping systems that are highly productive and stable under conditions with abiotic constraints(water, nutrients and weather).Strategies to achieve sustainable intensification include developing tools to evaluate crop growth potential under more extreme climatic conditions and introducing new crops and cropping systems that are more productive and robust under conditions with abiotic stress.This paper presents some examples of sustainable intensification management of intercropping systems that proved to be tolerant to extreme climate conditions. The rapidly growing demand for food, feed and fuel requires further improvements of land and water management, crop productivity and resource-use efficiencies.Combined field experimentation and crop growth modelling during the past five decades made a great leap forward in the understanding of factors that determine actual and potential yields of monocrops.The research field of production ecology developed concepts to integrate biological and biophysical processes with the aim to explore crop growth potential in contrasting environments.To understand the potential of more complex systems(multi-cropping and intercropping) we need an agro-ecosystem approach that integrates knowledge derived from various disciplines: agronomy, crop physiology, crop ecology, and environmental sciences(soil, water and climate).Adaptation of cropping systems to climate change and a better tolerance to biotic and abiotic stresses by genetic improvement and by managing diverse cropping systems in a sustainable way will be of key importance in food security.To accelerate sustainable intensification of agricultural production, it is required to develop intercropping systems that are highly productive and stable under conditions with abiotic constraints(water, nutrients and weather).Strategies to achieve sustainable intensification include developing tools to evaluate crop growth potential under more extreme climatic conditions and introducing new crops and cropping systems that are more productive and robust under conditions with abiotic stress.This paper presents some examples of sustainable intensification management of intercropping systems that proved to be tolerant to extreme climate conditions.
出处 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2015年第8期1542-1550,共9页 农业科学学报(英文版)
基金 funded by the International Cooperation and Exchange of the National Science Foundation of China(31461143025,31210103906,51209220) the National Basic Research Program of China(973 Program,2011CB100405) the Special Fund for Agro-Scientific Research in the Public Interest,China(201003043)
关键词 abiotic stress farming systems over-yielding resource use efficiency sustainability abiotic stress,farming systems,over-yielding,resource use efficiency,sustainability
  • 相关文献

参考文献44

  • 1Bald A B, Scopel E, Affolder F, Corbeels M, Da Silva F A M, Xavier J H V, Wery J. 2011. Agronomic performance of no-tillage relay intercropping with maize under smallholder conditions in Central Brazil. Field Crops Research, 124, 240-251.
  • 2Baumann D T, Bastiaans L, Goudriaan J, van Laar H H, Kropff M J. 2002. Analysing crop yield and plant quality in an intercropping system using an eco-physiological model for interplant competition. Agricultural Systems, 73, 173-203.
  • 3Baumann D T, Bastiaans L, Kropff M J. 2004. Analysis and design of a leek-celery intercropping system using mechanistic and descriptive models. Acta Horticulture, 638, 59-68.
  • 4Caviglia O P, Sadras V O, Andrade F H. 2004. Intensification of agriculture in the south-eastern Pampas -- I. Capture and efficiency in the use of water and radiation in double cropped wheat-soybean. Field Crops Research, 87, 117-129.
  • 5Challinor A J, Ewert F, Arnold S, Simelton E, Fraser E. 2009. Crops and climate change: Progress, trends, and challenges in simulating impacts and informing adaptation. Journal of Experimental Botany, 60, 2775-2789.
  • 6Chen C, Wang E, Yu Q. 2010. Modelling the effects of climate variability and water management on crop water productivity and water balance in the North China Plain. Agricultural Water Management, 97, 1175-1184.
  • 7Coil L, Cerrudo A, Monzon J P, Andrade F H. 2012. Capture and use of water and radiation in summer intercrops in the south-east Pampas of Argentina. Field Crops Research, 134. 105-113.
  • 8Davies W J, Zhang J, Yang J, Dodd I C. 2011. Novel crop science to improve yield and resource use efficiency in water-limited agriculture. Journal of Agricultural Science, 149, 123-131.
  • 9Evers J B, Vos J, Yin X, Romero P, van der Putten P E L, Struik P C. 2010. Simulation of wheat growth and development based on organ-level photosynthesis and assimilate allocation. Journal of Experimental Botany, 61,2203-2216.
  • 10Foulkes M J, Hawkesford M J, Barreclough P B, Holdsworth M J, Kerr S, Kightley S, Shewry P R. 2009. Identifying traits to improve the nitrogen economy of wheat: Recent advances and future prospects. Field Crops Research, 114,329-342.

同被引文献75

引证文献5

二级引证文献40

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部