Monitoring small-scale irrigation performance using remote sensing in the Upper Blue Nile Basin, Ethiopia

IF 5.9 1区 农林科学 Q1 AGRONOMY Agricultural Water Management Pub Date : 2024-07-01 DOI:10.1016/j.agwat.2024.108928
Yilkal Gebeyehu Mekonnen , Tena Alamirew , Kassahun Birhanu Tadesse , Abebe Demissie Chukalla
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Abstract

Temporal and spatial irrigation performance indicators are crucial in informing decisions for improving the efficiency and sustainability of water and land resources. However, evaluating these indicators requires reliable and cost-effective data, which is challenging to obtain, particularly for small-scale irrigation schemes. This study aimed to assess the performance of a small-scale irrigation scheme using remote sensing and ground truth data for the 2021/22 and 2022/2023 irrigation seasons employing the Shimburit irrigation scheme in Northwestern Ethiopia, predominantly cultivated with wheat, as a case study. The performance indicators, including equity, adequacy, overall consumed ratio (OCR), and productivity, were assessed. The actual evapotranspiration (ET), the main input for performance assessment, was estimated using the surface energy balance for land – improved (SEBALI) model in the Google Earth Engine (GEE) platform. The results revealed good equity within the scheme, with a coefficient of variation of ETa value per field inside the scheme are 1.90 and 1.63 for the respective seasons. The water use adequacy across the fields was assessed to be very good in the two seasons. The scheme's overall consumed ratio (OCR) was 0.54 and 0.43 during the two subsequent seasons. Water productivity of wheat is 3.03 kg/m3 and 3.06 kg/m3 in the two seasons. However, due to untimely rainfall during harvest, land productivity declined from 3.25 tons/ha in the first season to 2.08 tons/ha in the second season. The study demonstrates the potential of using remote sensing to evaluate irrigation performance indicators and water productivity in smallholder irrigated fields.

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利用遥感技术监测埃塞俄比亚青尼罗河上游盆地的小型灌溉情况
灌溉绩效的时间和空间指标对于为提高水资源和土地资源的效率和可持续性提供决策依据至关重要。然而,评估这些指标需要可靠且具有成本效益的数据,而获取这些数据具有挑战性,尤其是对于小型灌溉计划而言。本研究旨在以埃塞俄比亚西北部主要种植小麦的 Shimburit 灌溉计划为例,利用遥感和地面实况数据评估 2021/22 年和 2022/2023 年灌溉季节小型灌溉计划的绩效。评估的绩效指标包括公平性、充足性、总消耗比(OCR)和生产率。实际蒸散量(ET)是绩效评估的主要输入值,使用谷歌地球引擎(GEE)平台上的改良土地地表能量平衡(SEBALI)模型进行估算。结果表明,该计划内部具有良好的公平性,计划内部每块田的蒸散发值的变异系数分别为 1.90 和 1.63。在这两个季节中,各田块的用水充分性都很好。在随后的两季中,该计划的总耗水比(OCR)分别为 0.54 和 0.43。两季小麦的水分生产率分别为 3.03 公斤/米和 3.06 公斤/米。然而,由于收割期间降雨不及时,土地生产力从第一季的 3.25 吨/公顷下降到第二季的 2.08 吨/公顷。这项研究表明,利用遥感技术评估小农灌溉田的灌溉性能指标和水分生产率是很有潜力的。
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来源期刊
Agricultural Water Management
Agricultural Water Management 农林科学-农艺学
CiteScore
12.10
自引率
14.90%
发文量
648
审稿时长
4.9 months
期刊介绍: Agricultural Water Management publishes papers of international significance relating to the science, economics, and policy of agricultural water management. In all cases, manuscripts must address implications and provide insight regarding agricultural water management.
期刊最新文献
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