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18 pages, 3733 KB  
Essay
From Water Delivery to Root-Zone Engineering: Drip Irrigation Drives Adaptive Root Architectural Plasticity and Enhances Spatiotemporal Root–Water Coupling in Maize
by Bin Wang, Licun Zhang, Guodong Wang, Jiliang Zheng and Fei Liang
Plants 2026, 15(13), 1978; https://doi.org/10.3390/plants15131978 - 26 Jun 2026
Viewed by 397
Abstract
The shift from furrow irrigation (FI) to mulched drip irrigation (DI) drives adaptive restructuring of maize root architecture, strengthening spatiotemporal root-soil water coupling. Conventional FI often leads to a spatial mismatch between root distribution and water supply, constraining water productivity in arid regions. [...] Read more.
The shift from furrow irrigation (FI) to mulched drip irrigation (DI) drives adaptive restructuring of maize root architecture, strengthening spatiotemporal root-soil water coupling. Conventional FI often leads to a spatial mismatch between root distribution and water supply, constraining water productivity in arid regions. Using a three-year field experiment (2019–2021) in Xinjiang, China, this study examined how DI reshapes maize root architecture in three dimensions and affects grain yield under contrasting hydrological conditions. Results demonstrate that DI systematically reconfigures root spatial deployment, promoting a “fine-and-dense” root phenotype. Compared to FI, DI increased fine and medium root length by 35.0–38.6% in the emitter-proximal zone (0–10 cm) and concentrated 78.2% of absorptive roots within the upper 0–20 cm. Vertical root distribution followed an exponential decay pattern, with significantly steeper gradients under DI-root length at 10 cm depth was 303.4% (2019) and 50.4% (2020) higher than under FI (p < 0.05). In contrast, FI promoted deeper root exploration, showing a 49.1–66.1% advantage at 40 cm depth. Root restructuring proved hydrologically conditional: DI increased root length density (RLD) by 224.6% under drought conditions (2019) but only by 29.1% under ample moisture (2021). This trend reversed at the R3 stage, where FI achieved 117.2% higher RLD than DI (p < 0.05). Importantly, topsoil RLD mediated the pathway from irrigation to yield (R2 = 0.87, p < 0.001), identifying spatial root–water coupling as the dominant mechanism. These findings advance irrigation management by accounting for root architectural responses to localized water delivery, providing theoretical guidance for precision agriculture in arid environments. Full article
(This article belongs to the Special Issue Water and Fertilizer Management in Crop Production)
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22 pages, 1868 KB  
Article
Field and Modeling Evaluation of Furrow Irrigation Hydraulic Characteristics Under Varying Furrow Lengths and Land Slopes in Clay Loam Soil
by Salah S. Abd El-Ghani, Osama M. Dewedar, Marwa M. Abdelbaset and Ahmed F. El-Shafie
Sustainability 2026, 18(11), 5532; https://doi.org/10.3390/su18115532 - 1 Jun 2026
Cited by 1 | Viewed by 426
Abstract
Water shortage severely restricts agricultural output in arid and semi-arid regions, rendering improved irrigation management approaches necessary. This study assessed the hydraulic behavior of furrow irrigation in non-vegetated clay loam soil, investigating the effects of different land slopes (LS) 0, 0.05, and 0.15% [...] Read more.
Water shortage severely restricts agricultural output in arid and semi-arid regions, rendering improved irrigation management approaches necessary. This study assessed the hydraulic behavior of furrow irrigation in non-vegetated clay loam soil, investigating the effects of different land slopes (LS) 0, 0.05, and 0.15% and furrow length (FL) 50 and 75 m. In order to do this, field tests were conducted on a privately held farm in Banha, Qalyubia Governorate, Egypt, in March 2024. The experiment utilized a split-plot design with three repetitions, and laser-based land smoothing was used to establish the desired slopes accurately. Key hydraulic variables, namely advance time, recession time, infiltration rate, application efficiency (AE), deep percolation (DP), and distribution uniformity (DU), were recorded and calculated. The field data collected were used to calibrate and validate the WinSRFR model version 5.1.1, and its predictive ability was assessed using the coefficient of determination, root mean square error, Nash–Sutcliffe efficiency, and percent bias. The results showed that shorter FL 50 m paired with steeper gradients (0.15%) achieved better hydraulic outcomes than longer ones (75 m) with gentler slopes. Statistical analysis demonstrated that furrow length exerted a highly significant influence on all hydraulic parameters (p < 0.001). Ground slope also demonstrated a statistically meaningful influence (p < 0.05 to p < 0.01) for selected performance indicators, and the combination of LS and FL was also significant (p < 0.05). The most effective configuration, a 50 m FL paired with a 0.15% LS, yielded the highest DU (90%) and AE (87%) and the smallest DP (6%). The WinSRFR model showed outstanding accuracy in estimating advance times (R2 > 0.99, RMSE < 0.55 min) and infiltration depths (R2 > 0.98, RMSE < 1.3 mm), and reasonable performance for recession times (R2 > 0.87, RMSE < 5.4 min). Consequently, the validated model can be confidently used to design and manage furrow irrigation in clay loam soils. These findings are anticipated to promote sustainable water consumption in farming and provide valuable input for water management policy-making. Full article
(This article belongs to the Section Sustainable Agriculture)
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25 pages, 2236 KB  
Article
Enhancing Efficiency of Water–Energy–Food Nexus Through Irrigation and Phosphorus Management in Maize Production: A Case Study of Semi-Arid Region
by Junaid Nawaz Chauhdary, Hong Li, Zawar Hussain, Muhammad Zaman, Muhammad Akhlaq and Bahromjon Bahodirovich Xalilov
Water 2026, 18(11), 1285; https://doi.org/10.3390/w18111285 - 26 May 2026
Viewed by 524
Abstract
The declining productivity, fertilizer inefficiencies, and rising energy cum production costs are the key issues in crop production, especially in semi-arid regions with alkaline soils. Integration of crop management strategies needs to be adopted to address these issues within the water–energy–food nexus (WEFN). [...] Read more.
The declining productivity, fertilizer inefficiencies, and rising energy cum production costs are the key issues in crop production, especially in semi-arid regions with alkaline soils. Integration of crop management strategies needs to be adopted to address these issues within the water–energy–food nexus (WEFN). For this purpose, a case study was conducted in semi-arid region of central Punjab, Pakistan, to evaluate the interactive effects of irrigation water source [canal water (CW) and tubewell water (TW)], phosphorus fertilizer source [diammonium phosphate (DAP) vs. phosphoric acid_25% (PA)], and fertilizer application levels [100% and 80% of recommended dose of fertilizer (RDF)] on maize productivity, energy efficiency and economic performance. The experiment comprises eight treatments under raised bed planting (RBP) and one control treatment under ridge-furrow sowing (RFS). Each treatment had three replicates, and the experiment was laid out under a randomized complete block design (RCBD). Maize growth, yield, water productivity, energy efficiency, and economic performance were analyzed using field measurements, energy equivalents, and partial budget analysis. The T1 (RBP+CW+PA+100%RDF) produced the highest maize yield, and it varied from 6.36 to 7.90 t ha−1 under other treatments. CW significantly showed better water productivity (1.14–1.37 kg m−3) than that under TW (1.13–1.31 kg m−3); however, total energy input was higher under TW-based treatments (29,269–41,033 MJ t ha−1) than that under CW-based treatments (24,129–29,681 MJ ha−1). This results in lower energy productivity under TW-based treatments compared with CW-based treatments (0.17–0.23 kg MJ−1 vs. 0.25–0.31 kg MJ−1, respectively). Moreover, T2 (RBP+CW+PA+80%RDF) produced the highest energy use efficiency (0.59). Economic analysis revealed that production costs were nearly 15–17% higher under TW-based treatments, mainly due to the cost associated with groundwater pumping, and it reduced net profit to USD 1134–1385 ha−1. Better net profits were achieved by CW-based treatments (USD 1244–1593 ha−1), while those produced by BCR ranged from 3.11 to 3.69, with the highest value under T2 (RBP+CW+PA+80%RDF). Overall, irrigation water source emerged as the dominant driver of WEFN performance, while phosphoric acid significantly improved phosphorus availability, energy productivity, and economic returns, particularly under reduced fertilizer input. This study evidenced better maize productivity, less energy consumption, and improved farm profitability in semi-arid irrigated systems through the integration of canal water irrigation with optimized phosphorus management. Full article
(This article belongs to the Special Issue Water Management and Water-Saving Irrigation in Agricultural Areas)
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23 pages, 1426 KB  
Article
Assessment of Furrow Length and Land Slope on Maize Yield, Irrigation Water Productivity, and Economic Feasibility Under Furrow Irrigation Method in Clay Soils
by Salah S. Abd El-Ghani, Dalia M. N. El Batran, Marwa M. Abdelbaset and Ahmed F. El-Shafie
Sustainability 2026, 18(10), 4820; https://doi.org/10.3390/su18104820 - 12 May 2026
Cited by 1 | Viewed by 519
Abstract
With increasing water scarcity and growing food demand, enhancing agricultural productivity has become a pressing necessity, aligning with the Sustainable Development Goals (SDGs). Maize is a strategic crop, yet under surface irrigation, modern technologies are required to optimize irrigation efficiency and reduce water [...] Read more.
With increasing water scarcity and growing food demand, enhancing agricultural productivity has become a pressing necessity, aligning with the Sustainable Development Goals (SDGs). Maize is a strategic crop, yet under surface irrigation, modern technologies are required to optimize irrigation efficiency and reduce water losses. Two field trials were conducted during the summer seasons of 2024 and 2025 on a private farm in Banha, Qalyubia Governorate, Egypt, using a three-replication split-block design. This study evaluated three land slopes (0, 0.05, and 0.15%) and two furrow lengths (50 and 75 m) under furrow irrigation in clay loam soil, using the maize hybrid “Single Cross 2036.” The results demonstrated that both furrow length and land slope significantly affected all measured parameters. Shorter furrows (50 m) consistently outperformed longer ones (75 m), achieving better growth parameters, higher grain yield, improved harvest index, and enhanced irrigation water productivity. Regarding land slope, the 0.15% slope produced the best results, although it was not significantly different from the 0.05% slope in most cases. The interaction between furrow length and land slope was significant; the combination of 50 m furrows with 0.15% slope produced the highest values across all parameters. For longer furrows (75 m), the gentler 0.05% slope was more effective than the steeper 0.15% slope. Notably, 50 m furrows, even with 0% slope, performed better than 75 m furrows with the optimal 0.05% slope, indicating that furrow length is more critical than slope for maximizing maize productivity in clay loam soils. Economic analysis confirmed these findings, with the combination of 50 m furrows and 0.15% slope achieving the highest net return (29,565 EGP ha−1) and revenue-to-cost ratio (1.38), representing a substantial increase in net profit compared to traditional practices. Therefore, a 0.15% slope is recommended for shorter furrows (50 m), while a gentler 0.05% slope is more suitable for longer furrows (75 m). These findings provide a practical pathway for policymakers and farmers to enhance resource efficiency and contribute to SDG 2 (Zero Hunger) and SDG 6 (Clean Water and Sanitation). Full article
(This article belongs to the Section Sustainable Agriculture)
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27 pages, 1286 KB  
Article
Measurement Technique Effects on Greenhouse Gas Emissions from Conventionally Tilled, Furrow-Irrigated Soybean on a Silt-Loam Soil
by Lucia Escalante Ortiz, Kristofor R. Brye, Diego Della Lunga, Jonathan B. Brye, Lauren Gwaltney, Chandler M. Arel, Trenton L. Roberts, Caio Canella Vieira, Michelle A. Evans-White, Michael B. Daniels and Beth H. Baker
Atmosphere 2026, 17(5), 475; https://doi.org/10.3390/atmos17050475 - 6 May 2026
Viewed by 973
Abstract
Agricultural greenhouse gas (GHG) fluxes are often measured using chamber-based methods. However, comparisons among chamber-based methods are limited. This study compared the effects of chamber type and GHG concentration measurement method on GHG fluxes, emissions, global warming potential (GWP), and reduced two-gas GWP [...] Read more.
Agricultural greenhouse gas (GHG) fluxes are often measured using chamber-based methods. However, comparisons among chamber-based methods are limited. This study compared the effects of chamber type and GHG concentration measurement method on GHG fluxes, emissions, global warming potential (GWP), and reduced two-gas GWP (GWP*) in conventionally tilled soybean (Glycine max L. [Merr]) on a silt-loam soil (Aeric Epiaqualfs) in southeast Arkansas. Carbon dioxide (CO2) fluxes measured by optical feedback-cavity enhanced absorption spectroscopy (OF-CEAS, FT-LICOR) were greater (p < 0.01) than from the non-steady-state, non-flow-through, static, closed-chamber method analyzed by gas chromatography (NFT-GC), while methane (CH4) and nitrous oxide (N2O) fluxes were greater (p < 0.01) from the NFT-GC than the FT-LICOR method. Cumulative season-long CO2 emissions were 36.2, 31.6, and 13.7 times greater (p < 0.01) from the FT-LICOR than the NFT-GC method for 0–15, 0–30, and 0–60 min gas sampling intervals, respectively. Methane N2O emissions and GWP* did not differ (p > 0.05) between FT-LICOR and NFT-GC methods for the 0–15, 0–30, and 0–60 min intervals. Results suggest that differences in GHG flux, emissions, and GWP estimates reflect the combined influence of measurement methods rather than individual system components (i.e., chamber design, analyzer type, or closure time), which should be considered when designing and executing field studies. Full article
(This article belongs to the Section Biosphere/Hydrosphere/Land–Atmosphere Interactions)
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16 pages, 1535 KB  
Article
Mulching Improved Soil Water, Plant Growth, and Seed Yield of Sunflower Under Raised Bed–Furrow Irrigation Method
by Zhonglin Wu, Rajesh Kumar Soothar, Habibullah Memon, Farman Ali Chandio and Sher Ali Shaikh
Water 2026, 18(9), 1097; https://doi.org/10.3390/w18091097 - 3 May 2026
Viewed by 1231
Abstract
Plastic film mulching combined with raised bed–furrow irrigation is an effective technique for enhancing the seed yield, oil contents, and plant-level water use efficiency of sunflower cultivation, while also optimizing water footprint. In this study, a field experiment was carried out at the [...] Read more.
Plastic film mulching combined with raised bed–furrow irrigation is an effective technique for enhancing the seed yield, oil contents, and plant-level water use efficiency of sunflower cultivation, while also optimizing water footprint. In this study, a field experiment was carried out at the experimental station of the Department of Irrigation and Drainage during 2023–2024. The trial involved three types of raised bed–furrow irrigation (raised beds with 60, 45, and 30 cm ridges and 30 cm furrows) with and without mulching practices. The results revealed that the treatments combining mulching with raised beds showed higher soil temperature and moisture contents compared to non-mulching treatments. The highest seed yield and oil content were recorded in furrow irrigation with mulching, representing a 35% increase in yield and a 28% increase in oil content compared to the control treatment. Seed yield was positively correlated with oil content. Additionally, the highest plant-level water use efficiency was observed in a raised bed 45 cm in size with mulching, while the highest total water footprints were recorded in a raised bed with a 60 cm ridge and non-mulch treatment, both exceeding the control treatment. It is concluded that sunflower cultivation under mulching combined with raised bed–furrow irrigation significantly enhances crop and water productivity. Full article
(This article belongs to the Special Issue Water-Soil-Vegetation Interactions in Changing Climate)
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19 pages, 3691 KB  
Article
Drip Irrigation Coupled with Wide-Row Precision Seeding Enhances Winter Wheat Yield and Water Use Efficiency by Optimizing Canopy Structure and Photosynthetic Performance
by Shengfeng Wang, Enlai Zhan, Zijun Long, Guowei Liang, Minjie Gao and Guangshuai Wang
Agronomy 2026, 16(2), 256; https://doi.org/10.3390/agronomy16020256 - 21 Jan 2026
Cited by 6 | Viewed by 841
Abstract
To address the bottlenecks of low water and fertilizer utilization efficiency and limited yield potential inherent in Henan Province’s traditional winter wheat cultivation model of “furrow irrigation + conventional row seeding”, this study delved into the synergistic regulatory mechanisms of drip irrigation combined [...] Read more.
To address the bottlenecks of low water and fertilizer utilization efficiency and limited yield potential inherent in Henan Province’s traditional winter wheat cultivation model of “furrow irrigation + conventional row seeding”, this study delved into the synergistic regulatory mechanisms of drip irrigation combined with wide-row precision seeding. It focused on their effects on the physiological ecology and yield-quality traits of winter wheat. A two-factor experiment, encompassing “sowing method × irrigation method” will be carried out during the 2024–2025 wheat growing season, featuring four treatments: furrow irrigation + conventional row seeding (QT), drip irrigation + conventional row seeding (DT), furrow irrigation + wide-row precision seeding (QK), and drip irrigation + wide-row precision seeding (DK). Results reveal that wide-row precision seeding optimized the canopy structure, raising the leaf area index (LAI) at the heading stage by 20.19% compared to QT, thereby enhancing ventilation and light penetration and reducing plant competition. Drip irrigation, with its precise water delivery, boosted the net photosynthetic rate of the flag leaf 35 days after flowering by 62.99% relative to QT, stabilizing root water uptake and significantly delaying leaf senescence. The combined effect of the two treatments (DK treatment) synergistically improved the canopy structure and photosynthetic performance of winter wheat, prolonging the functional period of green leaves by 29.41%. It established a highly efficient photosynthetic cycle, marked by “high stomatal conductance-low intercellular CO2 concentration-high net photosynthetic rate”. The peak net photosynthetic rate (Pn) 13 days post-flowering rose by 23.9% compared to QT. Moreover, while reducing total water consumption by 21.4%, it substantially increased water use efficiency (WUE) and irrigation water use efficiency (IWUE) by 43.2% and 14.2%, respectively, compared to the QT control. Ultimately, the DK treatment achieved a synergistic enhancement in both yield and quality: grain yield increased by 14.7% compared to QT, wet gluten content reached 35.5%, and total protein yield per unit area rose by 13.1%. This study demonstrates that coupling drip irrigation with wide-row precision seeding is an effective strategy for achieving water-saving, high-yield, and high-quality winter wheat cultivation in the Huang-Huai-Hai region. This is achieved through the synergistic optimization of canopy structure, enhanced photosynthetic efficiency, and improved WUE. These findings provide a mechanistic basis and a scalable agronomic solution for sustainable intensification of winter wheat production under water-limited conditions in major cereal-producing regions. Full article
(This article belongs to the Special Issue Water and Fertilizer Regulation Theory and Technology in Crops)
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9 pages, 304 KB  
Proceeding Paper
Polyacrylamide Enhances Irrigation Efficiency: Opportunities for Pakistan’s Horticulture Sector
by Syeda Anum Masood Bokhari, Tanveer Ahmad, Roqia Nazir, Muhammad Arif, Fareeha Shireen, Muhammad Azher Nawaz, Sawera Rehman, Asia Bibi and Muhammad Tariq
Biol. Life Sci. Forum 2025, 51(1), 8; https://doi.org/10.3390/blsf2025051008 - 26 Dec 2025
Viewed by 970
Abstract
Polyacrylamide (PAM), a water-soluble polymer, is revolutionizing horticulture by improving water use efficiency and soil health, particularly in Pakistan’s water-scarce regions, offering a transformative solution. It reduces irrigation frequency by 30–40%, saving up to 50% of water while boosting crop yield by 20–50%. [...] Read more.
Polyacrylamide (PAM), a water-soluble polymer, is revolutionizing horticulture by improving water use efficiency and soil health, particularly in Pakistan’s water-scarce regions, offering a transformative solution. It reduces irrigation frequency by 30–40%, saving up to 50% of water while boosting crop yield by 20–50%. This results in a net profit increase of 30–60%, depending on the crop and soil type. Global studies show that PAM reduces soil erosion by 90–95% in furrow irrigation systems and increases water infiltration by 15–30%. Its hydrophilic properties enhance soil water-holding capacity by up to 400% compared to untreated soil, enabling plants to thrive in arid and semi-arid regions. Economically, the adoption of PAM is cost-effective. PAM also supports sustainable agriculture by mitigating the effects of water scarcity. These characteristics are in line with the objective of Pakistan to achieve agricultural sustainability and productivity. In conclusion, polyacrylamide is a feasible solution to address the water shortage in Pakistan and soil erosion, as well as to provide a significant amount of economic and environmental gains to the horticulture industry. The wide adoption of the technology could be triggered by pilot projects, farmer training, and government subsidies, which would change the agricultural landscape in the country. Full article
(This article belongs to the Proceedings of The 9th International Horticulture Conference & Expo)
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22 pages, 708 KB  
Article
Season-Long Time-Series Analysis of Soil Respiration in Furrow-Irrigated Corn with and Without Cover Crop in the Lower Mississippi River Basin
by Diego Della Lunga, Kristofor Brye, Michael J. Mulvaney, Mike Daniels, Tabata de Oliveira, Beth Baker, Timothy Bradford and Chandler Arel
Climate 2025, 13(11), 232; https://doi.org/10.3390/cli13110232 - 14 Nov 2025
Viewed by 1091
Abstract
Temporal resolution of carbon dioxide (CO2) release from the soil at the field scale is not completely understood. The objectives of this study were to identify trends, repetitive cycles, and residual patterns and structures with a time-series analysis from a furrow-irrigated [...] Read more.
Temporal resolution of carbon dioxide (CO2) release from the soil at the field scale is not completely understood. The objectives of this study were to identify trends, repetitive cycles, and residual patterns and structures with a time-series analysis from a furrow-irrigated corn (Zea mays L.) field with and without cover crops (i.e., CC and No-CC, respectively) over the course of one growing season in the Lower Mississippi River Basin. Carbon dioxide fluxes were measured from 5 May to 18 August 2024, four times a day (i.e., 0300, 0900, 1500, and 2100 h) from each of the two CC treatments. Linear trends were significant, but they were only able to explain 3 and 10% of the CO2-flux variability for CC and No-CC, respectively. Spectral density analyses indicated the significant presence of repetitive patterns every four lags, the amplitude of which was numerically 25% greater for CC than for No-CC. The structure of the residual was best described by separate autoregressive-moving-average (ARMA) models for the CC and No-CC treatments. The current study provides preliminary yet fundamental information to improve the understanding of the dynamics of soil respiration processes from a row-crop production system. Full article
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29 pages, 2370 KB  
Article
Design of Rainwater Harvesting Pond for Runoff Storage and Utilization in Semi-Arid Vertisols
by M. Manikandan, B. Bhakiyathu Saliha, Boini Narsimlu, J. V. N. S. Prasad, K. Baskar, V. Sanjivkumar, S. Manoharan, G. Guru, Gajjala Ravindra Chary, K. V. Rao, R. Rejani and Vinod Kumar Singh
Water 2025, 17(21), 3034; https://doi.org/10.3390/w17213034 - 22 Oct 2025
Cited by 3 | Viewed by 2965
Abstract
Rainfall deficits and erratic dry spells pose major challenges in rainfed ecosystem. In-situ moisture conservation practices (MCP) like ridge–furrow methods, improve soil moisture but are inadequate during 2–3 week dry spells at critical crop stages (flowering and maturity), leading to yield loss. Supplemental [...] Read more.
Rainfall deficits and erratic dry spells pose major challenges in rainfed ecosystem. In-situ moisture conservation practices (MCP) like ridge–furrow methods, improve soil moisture but are inadequate during 2–3 week dry spells at critical crop stages (flowering and maturity), leading to yield loss. Supplemental irrigation (SI) using an ex-situ rainwater harvesting (RWH) pond can mitigate these effects, but optimizing the pond design is challenging due to limited runoff and storage losses. This study aims to design RWH pond for small farm holders with a 1.0 ha area and evaluate its efficient use for SI during intermittent dry spells and critical crop stages. The design volume was estimated using the SCS-CN method based on daily rainfall data (1974–2010) for the northeast monsoon. A pond with a capacity of 487.5 m3, constructed for a 1 ha micro-watershed, was used to observe the runoff for design validation. The harvested runoff can be used as SI for a cultivable area of 0.4 ha, based on the watershed-to-cultivable area ratio. Statistical analysis of observed and estimated runoff data from 2011 to 2023 revealed a strong correlation (r = 0.87), confirming the pond design. Harvested rainwater, applied through micro-irrigation (rain gun) at a depth of 50 mm during moisture stress periods, significantly improved cotton productivity. The combined use of harvested rainwater and MCP increased yield in the range of 3.8 to 25.3%, improved rainwater use efficiency (1.52 to 3.13 kg ha−1 mm−1), and had a higher benefit-cost ratio (1.15 to 2.43) over a 13-year period. This study concludes that integrating in-situ MCP with ex-situ RWH with micro-irrigation significantly improves rainfed crop productivity in vertisols. Full article
(This article belongs to the Section Water, Agriculture and Aquaculture)
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22 pages, 4578 KB  
Article
Effects of Plastic Film and Gravel-Sand Mulching on Soil Moisture and Yield of Wolfberry Under Ridge-Furrow Planting in an Arid Desert Region of China’s Loess Plateau
by Xiaojuan Ma, Zhi Wang, Bo Ma, Luyao Zhang, Juncang Tian and Jinyu He
Agronomy 2025, 15(10), 2312; https://doi.org/10.3390/agronomy15102312 - 30 Sep 2025
Cited by 2 | Viewed by 1778
Abstract
In arid areas, the combined use of plastic sheeting under gravel-sand mulch on ridge-furrow planting systems is an emerging practice to minimize soil water evaporation and micro-plastic pollution. In this study, we conducted a two-year field experiment near Gobi-Tengger Desert in Ningxia, China, [...] Read more.
In arid areas, the combined use of plastic sheeting under gravel-sand mulch on ridge-furrow planting systems is an emerging practice to minimize soil water evaporation and micro-plastic pollution. In this study, we conducted a two-year field experiment near Gobi-Tengger Desert in Ningxia, China, to evaluate the effects of a plastic film underneath a layer of pure sand (MS1), pure gravel (MS2) and mixed gravel-and-sand (MS3) mulch on the soil hydrothermal properties, water use efficiency, yield, and fruit quality of wolfberry, compared to bare soil (CK). The results showed that mulching significantly increased soil temperature and water content in the 0–20 cm surface layer, though the effects varied with soil depth and water availability between a supplemental irrigated year (2022) and a rain-fed year (2023). Mulching markedly altered soil water dynamics, enhancing the capture and retention of light-to-heavy rainfall events. Consequently, all mulches significantly increased seasonal water consumption (ET) and water use efficiency (WUE) compared to CK. The MS1 treatment consistently achieved the highest yield and WUE, and the highest accumulation of beneficial fruit compounds like polysaccharides and flavonoids. However, this treatment also resulted in elevated soil salinity. Our findings demonstrate that combined mulching, especially MS1, is a highly effective strategy for optimizing soil conditions, water productivity, and fruit quality in wolfberry cultivation, although long-term salinity management requires attention. Full article
(This article belongs to the Section Agroecology Innovation: Achieving System Resilience)
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18 pages, 2227 KB  
Article
Sustaining Grape Yield and Soil Health Under Saline–Sodic Irrigation Through Amendments and Canal Water Application
by Karamjit Singh Sekhon, Anureet Kaur, Sudhir Thaman, Navjot Gupta, Anurag Malik, Chetak Bishnoi, Ozgur Kisi, Ali Salem and Mohamed A. Mattar
Water 2025, 17(18), 2683; https://doi.org/10.3390/w17182683 - 11 Sep 2025
Cited by 3 | Viewed by 1662
Abstract
The present study was undertaken for six years to appraise the responses of four-year-old established grapevines (Vitis vinifera L., cv. Perlette) to saline–sodic groundwater irrigation in relation to different amendments in a field experiment on non-saline, non-sodic calcareous sandy loam soil under [...] Read more.
The present study was undertaken for six years to appraise the responses of four-year-old established grapevines (Vitis vinifera L., cv. Perlette) to saline–sodic groundwater irrigation in relation to different amendments in a field experiment on non-saline, non-sodic calcareous sandy loam soil under a semi-arid climate at the research farm of Punjab Agricultural University, Regional Research Station, Bathinda, Punjab, India. Different water quality treatments, viz., canal water or good-quality water (GQW), poor-quality saline–sodic groundwater (PQW), alternate irrigation of canal water and groundwater (GQW/PQW), PQW with 50% gypsum (CaSO4·2H2O) requirement (PQW + GR50), PQW with 100% gypsum requirement (PQW + GR100), and PQW with sulphitation pressmud (by-product of sugar industry) @ 6.6 t ha−1 on a dry weight basis (PQW + SPM), applied in furrows, were imposed in quadruplicate with a randomized block design. PQW with an electrical conductivity (EC) of 2.2–2.4 dS m−1, residual sodium carbonate (RSC) content of 6.21–6.44 mmolc L−1, and a sodium adsorption ratio (SAR) from 23.1 to 24.8 (mmolc L−1)0.5 was used during the course of experimentation. The pooled mean 6-year data showcased that the treatments GQW/PQW, PQW + GR50, PQW + GR100, and PQW + SPM improved the berry yield by 28.3%, 11.3%, 21.2%, and 31.0%, respectively, when compared with PQW. Use of amendments, i.e., gypsum, sulphitation pressmud, and practice of GQW/PQW for irrigation in a cyclic mode, helped in reducing the pH, SAR, and bulk density (BD) of surface soil (0–15 cm) and enhancing the final infiltration rate (FIR) of soil and berry yield. A maximum water use efficiency (WUE) of 3.99 q ha−1-cm was recorded in the GQW treatment, followed by 3.93, 3.72, and 3.68 q ha−1-cm in the PQW + SPM, GQW/PQW, and PQW + GR100 treatments, respectively. Application of amendments alongside PQW evidenced a significant enhancement in total soluble solids (TSSs) and a decrease in the acidity of berries as compared to PQW. These results suggest that table grape yield (cv. Perlette) on calcareous sandy loam soil under saline–sodic groundwater irrigation can be sustained with the application of PQW + GR100, sulphitation pressmud, and GQW/PQW in already-established grapevines with minimal detrimental effects on soil health. Full article
(This article belongs to the Section Water, Agriculture and Aquaculture)
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19 pages, 2270 KB  
Article
Impact of Irrigation Techniques on Water-Use Efficiency, Economic Returns, and Productivity of Rice
by Muhammad Sajjad, Khalid Hussain, Erdoğan Eşref Hakki, Ayesh Ilyas, Sait Gezgin and Qamar Shakil
Sustainability 2025, 17(17), 7712; https://doi.org/10.3390/su17177712 - 27 Aug 2025
Cited by 7 | Viewed by 3393
Abstract
The growing global population and water scarcities are putting pressure on researchers to develop new techniques for food production that require less water. In agriculture, sustainable irrigation methods considerably improve water-use efficiency (WUE), economic returns, and crop productivity. A field trial was carried [...] Read more.
The growing global population and water scarcities are putting pressure on researchers to develop new techniques for food production that require less water. In agriculture, sustainable irrigation methods considerably improve water-use efficiency (WUE), economic returns, and crop productivity. A field trial was carried out during 2022 and 2023 to examine the impact of different irrigation techniques—furrow irrigation (FI), alternate wetting and drying (AWD), and continuous flooding (CF)—on water-use efficiency, economic benefits, cost of production, and productivity of different high-yielding rice varieties (i.e., V1: Super gold 2019, V2: Super basmati 2019, V3: Kissan basmati 2016, V4: Punjab basmati 2016, V5: Chenab basmati 2016). Findings showed that yield and yield parameters were statistically higher in AWD than FI and CF. Chenab basmati 2016 was superior in productivity as compared to the remaining varieties in both years. Water-use efficiency, net income, and cost/benefit ratio were highest in AWD as compared to CF and FI. AWD irrigation methods coupled with Chenab basmati 2016 were the most effective combination of treatments for obtaining more grain yield with maximum water savings, net income, and cost/benefit ratio. Full article
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24 pages, 3629 KB  
Article
The Current Status of Irrigated Agriculture in Cape Verde and Its Link to Water Scarcity
by Erik Sequeira, Pedro Leão de Sousa, Augusto Manuel Correia and João Rolim
Agronomy 2025, 15(7), 1625; https://doi.org/10.3390/agronomy15071625 - 3 Jul 2025
Cited by 2 | Viewed by 3872
Abstract
In arid regions with low precipitation, like most of the Cape Verde islands, irrigation is essential for maintaining agricultural production and food security. However, due to significant investment needs, it is critical to improve irrigation efficiency and reduce water losses. The aim of [...] Read more.
In arid regions with low precipitation, like most of the Cape Verde islands, irrigation is essential for maintaining agricultural production and food security. However, due to significant investment needs, it is critical to improve irrigation efficiency and reduce water losses. The aim of this study is to evaluate irrigated agriculture in Cape Verde and its relationship with water scarcity through the calculation of key indicators and the analysis of statistical and remote sensing data. Crop production data were collected from the Ministry of Agriculture and Environment, and climatic data from the National Institute of Meteorology and Geophysics of Cape Verde (INMG) and FAO’s WaPOR platform. The aridity index was calculated using the UNEP method based on data from INMG. The island of Sal showed the lowest aridity index value (0.07), while Cachaço (São Nicolau island) had the highest (0.41). Sugarcane is currently the dominant irrigated crop, covering over 3000 hectares, about 62% of irrigated land, despite its high water demands. The expansion of sugarcane threatens long-term water sustainability and food production. Promoting crops with higher water productivity and technical training are key actions to ensure the sustainability of irrigated agriculture in Cape Verde. Findings point to the urgent need to improve irrigation infrastructure, maintenance, and system design. Full article
(This article belongs to the Special Issue Crop Management in Water-Limited Cropping Systems)
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20 pages, 1419 KB  
Article
Evaluation of Greenhouse Gas-Flux-Determination Models and Calculation in Southeast Arkansas Cotton Production
by Cassandra Seuferling, Kristofor Brye, Diego Della Lunga, Jonathan Brye, Michael Daniels, Lisa Wood and Kelsey Greub
AgriEngineering 2025, 7(7), 213; https://doi.org/10.3390/agriengineering7070213 - 2 Jul 2025
Cited by 7 | Viewed by 1979
Abstract
Greenhouse gas (GHG) emissions evaluations from agroecosystems are critical, particularly as technology improves. Consistent GHG measurement methods are essential to the evaluation of GHG emissions. The objective of the study was to evaluate potential differences in gas-flux-determination (GFD) options and carbon dioxide (CO [...] Read more.
Greenhouse gas (GHG) emissions evaluations from agroecosystems are critical, particularly as technology improves. Consistent GHG measurement methods are essential to the evaluation of GHG emissions. The objective of the study was to evaluate potential differences in gas-flux-determination (GFD) options and carbon dioxide (CO2), methane (CH4), and nitrous oxide (N2O) fluxes and growing-season-long emissions estimates from furrow-irrigated cotton (Gossypium hirsutum) in southeast Arkansas. Four GFD methods were evaluated [i.e., linear (L) or exponential (E) regression models, with negative fluxes (WNF) included in the dataset or replacing negative fluxes (RNF)] over the 2024 growing season using a LI-COR field-portable chamber and gas analyzers. Exponential regression models were influenced by abnormal CO2 and N2O gas concentration data points, indicating the use of caution with E models. Season-long CH4 emissions differed (p < 0.05) between the WNF (−0.51 kg ha−1 season−1 for L and−0.54 kg ha−1 season−1 for E) and RNF (0.01 kg ha−1 season−1 for L and E) GFD methods, concluding that RNF options over-estimate CH4 emissions. Gas concentration measurements following chamber closure should remain under 300 s, with one concentration measurement obtained per second. The choice of GFD method needs careful consideration to result in accurate GHG fluxes and season-long emission estimates. Full article
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