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Integrating biophysical and hydraulic models to assess the agronomic and environmental impacts of precision irrigation
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10 June 2024

Precision irrigation offers scope to save water, improve yields and support the sustainable intensification of agriculture. It could also contribute to the sector’s transformation to reduce the environmental impacts of food crop production linked to nutrient leaching and greenhouse gas emissions. Whilst many models exist to inform decision-making in irrigated production, most still ignore the fundamentally important impact that in-field heterogeneities and irrigation non-uniformity have on crop growth and productivity. Given the importance of adequate soil water for crop development and nutrient uptake, this chapter reviews current approaches to spatially simulating crop growth in-field, and the challenges of integrating biophysical and ballistics-based water distribution models to quantify the impacts of precision irrigation interventions. Different approaches (deterministic and empirical) to simulate irrigation water distribution are briefly explained, and a procedure that couples a dynamic ballistic model with a crop growth model is described.
TECHNOLOGY & ENGINEERING / Agriculture / Irrigation, Irrigation and water management, TECHNOLOGY & ENGINEERING / Agriculture / Sustainable Agriculture, TECHNOLOGY & ENGINEERING / Agriculture / Agronomy / Crop Science, Sustainable agriculture, Agricultural science, Agronomy and crop production
- 1 Introduction
- 2 Biophysical and ballistics modelling
- 3 Conceptual framework for modelling overhead precision irrigation impacts on crop yield
- 4 Case study assessing impacts of precision irrigation on onions in a humid climate
- 5 Conclusion and future trends
- 6 Acknowledgement
- 7 References