Maize systems under climate change in sub-Saharan Africa
Author:
Tesfaye Kindie,Gbegbelegbe Sika,Cairns Jill E,Shiferaw Bekele,Prasanna Boddupalli M,Sonder Kai,Boote Ken,Makumbi Dan,Robertson Richard
Abstract
Purpose
– The purpose of this study is to examine the biophysical and socioeconomic impacts of climate change on maize production and food security in sub-Saharan Africa (SSA) using adapted improved maize varieties and well-calibrated and validated bioeconomic models.
Design/methodology/approach
– Using the past climate (1950-2000) as a baseline, the study estimated the biophysical impacts of climate change in 2050 (2040-2069) and 2080 (2070-2099) under the A1B emission scenario and three nitrogen levels, and the socioeconomic impacts in 2050.
Findings
– Climate change will affect maize yields across SSA in 2050 and 2080, and the extent of the impact at a given period will vary considerably between input levels, regions and maize mega environments (MMEs). Greater relative yield reductions may occur under medium and high-input intensification than under low intensification, in Western and Southern Africa than in Eastern and Central Africa and in lowland and dry mid-altitude than in highland and wet mid-altitude MMEs. Climate change may worsen food insecurity in SSA in 2050 through its negative impact on maize consumption and reduction in daily calorie intake. However, international trade has the potential to offset some of the negative impacts.
Originality/value
– The study calibrated and applied bioeconomic models to estimate the biophysical and socioeconomic impact of climate change on maize production at fine resolution. The results could be used as a baseline to evaluate measures that will be applied to adapt maize to the future climate in SSA.
Subject
Management, Monitoring, Policy and Law,Development,Geography, Planning and Development,Global and Planetary Change
Reference55 articles.
1. Abebe, M.
(1998),
Nature and Management of Ethiopian Soils
, Alemya University of Agriculture, Addis Ababa, pp. 1-272. 2. Allen, L.H.
,
Kakani, V.G.
,
Vu, J.C.V.
and
Boote, K.J.
(2011), “Elevated CO2 increases water use efficiency by sustaining photosynthesis of water-limited maize and sorghum”,
Journal of Plant Physiology
, Vol. 168 No. 16, pp. 1909-1918. 3. Banziger, M.
,
Setimela, P.S.
,
Hodson, D.
and
Vivek, B.
(2006), “Breeding for improved abiotic stress tolerance in maize adapted to southern Africa”,
Agricultural Water Management
, Vol. 80 No. 1, pp. 212-224. 4. Barnabás, B.
,
Jäger, K.
and
Fehér, A.
(2008), “The effect of drought and heat stress on reproductive processes in cereals”,
Plant, Cell & Environment
, Vol. 31 No. 1, pp. 11-38. 5. Batjes, N.H.
(2009), “Harmonized soil profile data for applications at global and continental scales: updates to the WISE database”,
Soil Use and Management
, Vol. 25 No. 2, pp. 124-127.
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