Aug 2026· Ecological Processes· Vol 15· 0 citations· 42 references
Abstract
Rain-fed agriculture in Ethiopia is highly vulnerable to climate change. However, the future viability of wheat—a staple crop providing 14% of national caloric intake—remains poorly quantified under emerging climate scenarios. This study assesses the spatiotemporal evolution of production constraints and maximum attainable yields for rain-fed wheat in the Upper Blue Nile Basin (UBNB). The assessment covers the period from the 2020s to the 2080s. We used two Shared Socioeconomic Pathways (SSP3-7.0 and SSP5-8.5) to capture a range of future climate conditions. We applied the FAO Global Agro-Ecological Zones (GAEZ v4.0) framework with bias-corrected CMIP6 climate projections. We quantified climate-related constraints (CRC), agro-climatic constraints (AgCC), multi-cropping potential and attainable yield ceilings. CRC dominates production limits across all scenarios. The southern UBNB faces severe vulnerability by the 2080s under SSP5-8.5, with CRC values falling below 5,000. This implies potential yield losses exceeding 50%. Multi-cropping potential contracts substantially. Under SSP5-8.5, double-cropping area declines by 58.4% by the 2080s, while single cropping expands to 87.9% of the basin. This contraction is driven by increased rainfall variability and shortened growing periods. In contrast, the northern highlands retain resilience. Attainable yields there exceed 9,000 kg ha⁻1 under high-input systems. The area with yields below 3,000 kg ha⁻1 expands dramatically. It increases from 1.2 to 23.4% of the basin by the 2080s under SSP5-8.5. This represents a 19-fold expansion of marginal wheat-growing areas. Sustainable intensification of rain-fed wheat in the UBNB requires spatially explicit adaptation strategies. Vulnerable lowlands should diversify toward heat- and drought-tolerant crops such as sorghum and millet. Highland refugia should promote climate-resilient, fast-maturing wheat varieties combined with water conservation measures including terracing and conservation tillage. This integrated constraint-based assessment provides policymakers with an evidence-based blueprint. It helps prioritize agricultural investments and safeguard food security in a critically important region for Ethiopia's wheat production.
Climate change poses growing risks to maize-based food systems, yet comparative evidence across climatically similar regions on different continents remains limited. This study compares climate change impacts and adaptation responses in rainfed maize systems in Nakuru County, Kenya, and Northwest China—two geographical...
Jackson K. Koimbori, Shuai Wang, Jie Pan et al.· Plants· 0 citations
Drought poses a significant threat to agriculture in the transboundary Indus River Basin (IRB), which supports over 300 million people through direct and indirect dependence on agriculture. With limited cropland and growing climatic stress, the basin faces an increasing risk to food security. Yet, comprehensive ass...
M. Hussain, Barira Haider, Muhammad Waseem et al.· International Journal of Cli...· 0 citations
We assess climate change impacts on maize yields across China’s Northeast Farming Region (NFR) for two future periods (2020–2049 and 2050–2079) using a province-scale statistical crop model driven by projections from 41 CMIP6 global climate models (SSP5-8.5 scenario). This model represents climate influences on maize y...
Andrew Cottrell, E. Pope, Tom Crocker et al.· Environmental Research Commu...· 0 citations
Sustainable agriculture in water-limited regions requires understanding how future climate change may affect crop water use and productivity and whether locally feasible adaptations can offset adverse impacts. This study used an improved SWAT (Soil and Water Assessment Tool) model to simulate multiple future climate sc...
Bei-Bei Ding, Jiayao Zhu, Jianing Ge et al.· Land· 0 citations
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