Productivity limits and potentials of the principles of conservation agriculture

© 2015 Macmillan Publishers Limited. One of the primary challenges of our time is to feed a growing and more demandingworld population with reduced external inputs and minimal environmental impacts, allundermore variable and extreme climate conditions in the future1-4. Conservation agriculture repre...

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Main Authors: Pittelkow, C., Liang, X., Linquist, B., Groenigen, LJV, Lee, Juhwan, Lundy, M., Gestel, N., Six, J., Venterea, R., Kessel, C.
Format: Journal Article
Language:English
Published: 2015
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/75596
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author Pittelkow, C.
Liang, X.
Linquist, B.
Groenigen, LJV
Lee, Juhwan
Lundy, M.
Gestel, N.
Six, J.
Venterea, R.
Kessel, C.
author_facet Pittelkow, C.
Liang, X.
Linquist, B.
Groenigen, LJV
Lee, Juhwan
Lundy, M.
Gestel, N.
Six, J.
Venterea, R.
Kessel, C.
author_sort Pittelkow, C.
building Curtin Institutional Repository
collection Online Access
description © 2015 Macmillan Publishers Limited. One of the primary challenges of our time is to feed a growing and more demandingworld population with reduced external inputs and minimal environmental impacts, allundermore variable and extreme climate conditions in the future1-4. Conservation agriculture represents a set of three crop management principles that has received strong international support to help address this challenge5,6, with recent conservation agriculture efforts focusing on smallholder farming systems in sub-Saharan Africa and South Asia7.However, conservationagriculture is highly debated, with respect to both its effects on crop yields8-10 andits applicability in different farming contexts7,11-13. Here weconduct a globalmeta-analysis using 5,463 paired yield observations from610 studies to compare no-till, the original and central concept of conservation agriculture, with conventional tillage practices across 48 crops and 63 countries. Overall, our results show that no-till reduces yields, yet this response is variable and under certain conditions no-till can produce equivalent or greater yields than conventional tillage. Importantly,whenno-till is combined with the other two conservation agriculture principles of residue retention and crop rotation, its negative impacts are minimized. Moreover, no-till in combination with the other two principles significantly increases rainfed cropproductivity indry climates, suggesting that itmaybecome animportant climate-change adaptation strategy for ever-drier regions of the world. However, any expansion of conservation agriculture should be done with caution in these areas, as implementation of the other two principles is often challenging in resource-poor and vulnerable smallholder farming systems, thereby increasing the likelihood of yield losses rather than gains. Although farming systems are multifunctional, and environmental and socio-economic factors need to be considered14-16, our analysis indicates that the potential contribution of no-till to the sustainable intensification of agriculture is more limited than often assumed.
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spelling curtin-20.500.11937-755962019-05-29T06:32:09Z Productivity limits and potentials of the principles of conservation agriculture Pittelkow, C. Liang, X. Linquist, B. Groenigen, LJV Lee, Juhwan Lundy, M. Gestel, N. Six, J. Venterea, R. Kessel, C. Agriculture Climate Climate Change Conservation of Natural Resources Crops, Agricultural Efficiency Food Supply Rain Soil © 2015 Macmillan Publishers Limited. One of the primary challenges of our time is to feed a growing and more demandingworld population with reduced external inputs and minimal environmental impacts, allundermore variable and extreme climate conditions in the future1-4. Conservation agriculture represents a set of three crop management principles that has received strong international support to help address this challenge5,6, with recent conservation agriculture efforts focusing on smallholder farming systems in sub-Saharan Africa and South Asia7.However, conservationagriculture is highly debated, with respect to both its effects on crop yields8-10 andits applicability in different farming contexts7,11-13. Here weconduct a globalmeta-analysis using 5,463 paired yield observations from610 studies to compare no-till, the original and central concept of conservation agriculture, with conventional tillage practices across 48 crops and 63 countries. Overall, our results show that no-till reduces yields, yet this response is variable and under certain conditions no-till can produce equivalent or greater yields than conventional tillage. Importantly,whenno-till is combined with the other two conservation agriculture principles of residue retention and crop rotation, its negative impacts are minimized. Moreover, no-till in combination with the other two principles significantly increases rainfed cropproductivity indry climates, suggesting that itmaybecome animportant climate-change adaptation strategy for ever-drier regions of the world. However, any expansion of conservation agriculture should be done with caution in these areas, as implementation of the other two principles is often challenging in resource-poor and vulnerable smallholder farming systems, thereby increasing the likelihood of yield losses rather than gains. Although farming systems are multifunctional, and environmental and socio-economic factors need to be considered14-16, our analysis indicates that the potential contribution of no-till to the sustainable intensification of agriculture is more limited than often assumed. 2015 Journal Article http://hdl.handle.net/20.500.11937/75596 10.1038/nature13809 eng restricted
spellingShingle Agriculture
Climate
Climate Change
Conservation of Natural Resources
Crops, Agricultural
Efficiency
Food Supply
Rain
Soil
Pittelkow, C.
Liang, X.
Linquist, B.
Groenigen, LJV
Lee, Juhwan
Lundy, M.
Gestel, N.
Six, J.
Venterea, R.
Kessel, C.
Productivity limits and potentials of the principles of conservation agriculture
title Productivity limits and potentials of the principles of conservation agriculture
title_full Productivity limits and potentials of the principles of conservation agriculture
title_fullStr Productivity limits and potentials of the principles of conservation agriculture
title_full_unstemmed Productivity limits and potentials of the principles of conservation agriculture
title_short Productivity limits and potentials of the principles of conservation agriculture
title_sort productivity limits and potentials of the principles of conservation agriculture
topic Agriculture
Climate
Climate Change
Conservation of Natural Resources
Crops, Agricultural
Efficiency
Food Supply
Rain
Soil
url http://hdl.handle.net/20.500.11937/75596