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Keywords = residue mulching

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17 pages, 6383 KB  
Article
Tillage Practices Regulate Soil Physicochemical Traits and Microbial Characteristics of Winter Rapeseed (Brassica napus L.) in Rice–Rapeseed Rotation Systems with Rice Straw Incorporation
by Benchuan Zheng, Jingfang Zhang, Cheng Cui, Liang Chai, Ka Zhang, Jing Wu, Jun Jiang, Liangcai Jiang and Haojie Li
Agriculture 2026, 16(16), 1715; https://doi.org/10.3390/agriculture16161715 - 11 Aug 2026
Viewed by 231
Abstract
Straw incorporation generally improves soil nutrient availability, aggregate stability, microbial activity, as well as carbon dioxide (CO2) emissions. However, the regulatory effects of tillage regimes on soil physicochemical properties, microbial community structure, and CO2 emission rates (CER) remain largely unexplored [...] Read more.
Straw incorporation generally improves soil nutrient availability, aggregate stability, microbial activity, as well as carbon dioxide (CO2) emissions. However, the regulatory effects of tillage regimes on soil physicochemical properties, microbial community structure, and CO2 emission rates (CER) remain largely unexplored in rice–rapeseed rotation systems incorporating straw residue in the upper Yangtze River basin. A two-year field experiment in Sichuan’s Xindu District adopted three tillage practices: rotary tillage combined with whole rice straw incorporation (RT), deep plowing combined with whole rice straw incorporation (DP), and no-tillage with whole rice straw mulching (NT). Compared with NT, both RT and DP significantly lowered soil bulk density (BD) and macroaggregate stability, and elevated soil available nitrogen (AN), available phosphorus (AP), and available potassium (AK). On average, the AN, AP, and AK were significantly increased by 7.4%, 9.0%, and 80.3% in RT and by 4.1%, 43.9%, and 42.2% in DP relative to NT, respectively. Compared with the NT, the CER was significantly decreased by 37.1% in RT and by 12.9% in DP. Notably, RT effectively mitigated CER. Microbial α-diversity was significantly higher in the NT relative to other tillage treatments. Proteobacteria dominated the bacterial community, and Ascomycota dominated the fungal community. RT and DP increased the relative abundance of Proteobacteria and suppressed Ascomycota simultaneously. Redundancy analysis revealed positive associations between Proteobacteria and both AN and AK, whereas Ascomycota positively correlated with BD, MWD, and CER. Mantel test confirmed significant correlation between soil microbial community compositions and the soil properties, including BD, AN, AK, and CER. Relative to the other tillage practices, RT is conducive to soil quality improvement and CER reduction, and can be recommended for sustainable rice-rapeseed production locally. Full article
(This article belongs to the Section Agricultural Soils)
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13 pages, 3043 KB  
Article
Water-Holding Characteristics of Forestry Residues for Urban Bare Soil Mulching
by Bingpeng Qu, Xinyuan Mo, Peisheng Ye, Yinjun Zhao, Liang Wei, Yanfei Wei, Ying Jiang, Baopeng Lu, Wei Zhou, Gang Hu and Xinyu Wang
Forests 2026, 17(8), 866; https://doi.org/10.3390/f17080866 - 24 Jul 2026
Viewed by 476
Abstract
Objective: Forestry management produces abundant residues including wood chips, fallen leaves and bark. Reusing them as urban organic mulches improves soil quality, mitigates soil erosion and optimizes urban green space ecology. This study analyzed the water-holding characteristics of four typical forestry residues to [...] Read more.
Objective: Forestry management produces abundant residues including wood chips, fallen leaves and bark. Reusing them as urban organic mulches improves soil quality, mitigates soil erosion and optimizes urban green space ecology. This study analyzed the water-holding characteristics of four typical forestry residues to guide urban mulch selection. Methods: Soaking lab tests were conducted on pine bark (PB), oak leaves (OLs), pine needles (PNs), and fir wood chips (FWCs) to monitor dynamic variations in water-holding capacity and absorption rate over soaking time, with data fitted by mathematical models. Results: All forestry residues exhibited considerable water-holding capacity, with OLs showing the highest water-retention performance (175.67 t/ha, 145.42%), effective interception capacity (119.83 t/ha) and interception rate (99.19%) among all tested materials, followed by FWCs. The water-holding capacity increased rapidly and then leveled off with prolonged soaking time, and this trend conformed to a logarithmic equation, expressed as Q = a·ln(t) + b. Water absorption peaked at 15 min before declining slowly until equilibrium, and this dynamic process was well fitted by a power function, expressed as V = k·tn. Conclusions: Given their superior water-holding characteristics, OLs and FWCs are highly recommended as preferred organic mulches for urban soil applications. Full article
(This article belongs to the Special Issue Ecological Functions of Urban Green Spaces)
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21 pages, 13840 KB  
Article
Impacts of In Situ Wheat Straw Incorporation Methods on Cadmium Behavior in Soil–Rice Systems
by Leilei Li, Zhengbo Peng, Cheng Wang, Guanzhou Luo, Yuanqing Shi, Ruhongji Liu, Mingming Hu, Chuanhai Shu, Hao Fu, Feijie Li, Xinghai Huang, Qin Liao, Zhonglin Wang, Zhiyuan Yang, Yongjian Sun, Zongkui Chen and Jun Ma
Foods 2026, 15(12), 2057; https://doi.org/10.3390/foods15122057 - 6 Jun 2026
Viewed by 727
Abstract
Cadmium (Cd) contamination in paddy soils poses a severe threat to food safety. Although straw incorporation is a key approach to sustainable agriculture, the mechanisms underlying its regulatory effects on safe rice production in Cd-contaminated fields remain unclear. This field study, conducted at [...] Read more.
Cadmium (Cd) contamination in paddy soils poses a severe threat to food safety. Although straw incorporation is a key approach to sustainable agriculture, the mechanisms underlying its regulatory effects on safe rice production in Cd-contaminated fields remain unclear. This field study, conducted at two Cd-contaminated sites with two rice cultivars differing in Cd accumulation (low-Cd ZLY8612 and high-Cd YXY2115), evaluated five wheat straw management practices: straw removal (CK), straw mulching (SM), straw incorporation (SI), straw incorporation with organic fertilizer (SOI), and straw-derived biochar incorporation (SBI). The primary findings revealed that SOI and SBI could effectively reduce Cd availability and promoted Cd transformation to residual fractions, with SBI showing superior immobilization effects. SBI also enriched beneficial taxa (Bacillus, Sphingomonas, and Flavisolibacter), increased Proteobacteria, and reduced Chloroflexi and Acidobacteriota. All treatments enhanced rice yield; however, only SBI reduced grain Cd in the high-Cd cultivar to <0.2 mg/kg with high-Cd soil. Collectively, the combined application of straw-derived biochar incorporation and low-Cd-accumulating rice cultivar is a reliable and recommendable agronomic strategy for safe grain production and sustainable straw recycling in Cd-contaminated rice–wheat rotation fields. Full article
(This article belongs to the Section Food Security and Sustainability)
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27 pages, 1313 KB  
Review
A Comprehensive Review on Lignin-Based Biodegradable Mulch Films for Sustainable Agriculture
by Nora A. Moreb, Amit K. Jaiswal and Swarna Jaiswal
Appl. Sci. 2026, 16(11), 5666; https://doi.org/10.3390/app16115666 - 4 Jun 2026
Viewed by 591
Abstract
Mulch films play a vital role in modern agriculture by enhancing soil hydrothermal conditions, suppressing weed growth, and improving crop performance. Across 13 major crops, mulching increased yields by an average of 26%, with particularly strong responses in soybean (44%), millet (42%), wheat [...] Read more.
Mulch films play a vital role in modern agriculture by enhancing soil hydrothermal conditions, suppressing weed growth, and improving crop performance. Across 13 major crops, mulching increased yields by an average of 26%, with particularly strong responses in soybean (44%), millet (42%), wheat (29%), and maize (25%), and improved water-use efficiency by up to 33%. However, conventional polyethylene (PE) mulch films accumulate persistently in soils, reaching 7183–10,586 microplastic particles/kg in topsoil after long-term use and contributing up to 56% of total microplastics across the 0–100 cm soil profile. These residues impair enzymatic activity, disrupt nutrient cycling, and alter microbial community structure, making biodegradable alternatives essential for mitigating these issues. Lignin-based biodegradable mulch films (BDMs) have gained increasing attention owing to lignin’s intrinsic UV-shielding capacity, mechanical reinforcement, hydrophobicity, and biodegradability. Lignin-containing films may block UV radiation below 300 nm, reduce visible-light transmittance by ~80%, exhibit thermal stability up to 150 °C, and demonstrate low water vapour permeability (3.41 × 10−8 g/m·h·Pa) depending on formulation and lignin loading. Incorporation of lignin may enhance biodegradability, increasing soil-burial degradation by 25.47% relative to pure PVA, with composite systems achieving ~55% degradation within 50 days. This review provides a comprehensive assessment of lignin structure, sources, chemistry, extraction methods. It examines lignin as a renewable and value-added feedstock for mulch applications, and critically evaluates the optical, mechanical, thermal, hydrophobic, and biodegradation properties of lignin-based BDMs. The review also discusses their agronomic applications, including weed suppression, soil moisture retention, nutrient management, and soil microclimate regulation, while analysing the economic considerations affecting large-scale implementation and commercial feasibility. Finally, it outlines key research priorities to enable scalable, field-reliable, and environmentally sustainable mulch film technologies. Full article
(This article belongs to the Section Materials Science and Engineering)
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23 pages, 1366 KB  
Review
Weed Management in Medicinal and Aromatic Plants: Current Strategies and Future Perspectives—A Narrative Review
by Milica Aćimović, Juliana Navarro Rocha, Amra Bratovčić and Anja Vieweger
Agronomy 2026, 16(9), 901; https://doi.org/10.3390/agronomy16090901 - 29 Apr 2026
Viewed by 1174
Abstract
Weeds represent a major constraint in the cultivation of medicinal and aromatic plants (MAPs), causing significant reductions in yield, biomass, and essential oil quality while increasing labor and production costs. Effective weed management is particularly critical during early crop growth, when young plants [...] Read more.
Weeds represent a major constraint in the cultivation of medicinal and aromatic plants (MAPs), causing significant reductions in yield, biomass, and essential oil quality while increasing labor and production costs. Effective weed management is particularly critical during early crop growth, when young plants are most vulnerable to competition. Non-chemical strategies, including cultural practices, mechanical and thermal weeding, mulching, and crop diversification, have proven effective in suppressing weeds, enhancing crop competitiveness, and maintaining yield and quality, especially in organic or low-input systems. Mulching and optimized cultivation strategies consistently provide reliable weed control, improve soil moisture and nutrient use efficiency, and can influence secondary metabolite accumulation. Chemical weed control, including selective pre- and post-emergence herbicides, remains important in slow-growing MAPs but is increasingly constrained by regulatory restrictions and concerns over residues in raw plant material and essential oils. Integrated weed management combining cultural, physical, and reduced chemical approaches offers the most effective solution, balancing efficacy, crop safety, and product quality. Emerging strategies such as bioherbicides, precision agriculture, and robotic systems hold promise but require further research. Advancing weed management in MAPs will depend on interdisciplinary studies, field-scale validation, and technology-driven innovations to support sustainable, high-quality production. Full article
(This article belongs to the Section Weed Science and Weed Management)
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24 pages, 1742 KB  
Article
Vegetal Waste as a Sustainable Option to Boost Sorption for the Efficient Removal of Steroid Hormones in Constructed Wetlands
by José Alberto Herrera-Melián, Rayco Guedes-Alonso, Jean Carlos Tite-Lezcano, Michelangelo Fichera, Massimo Del Bubba, Ezio Ranieri, Zoraida Sosa-Ferrera and José Juan Santana-Rodríguez
Sustainability 2026, 18(7), 3395; https://doi.org/10.3390/su18073395 - 31 Mar 2026
Viewed by 499
Abstract
Steroid hormones (SHs) have a high estrogenic potential, and urban wastewater is one of their main ways into the aquatic environment. Constructed wetlands (CWs) are considered one of the most sustainable alternatives for the treatment of wastewater from small communities. However, the use [...] Read more.
Steroid hormones (SHs) have a high estrogenic potential, and urban wastewater is one of their main ways into the aquatic environment. Constructed wetlands (CWs) are considered one of the most sustainable alternatives for the treatment of wastewater from small communities. However, the use of gravel and sand implies a significant environmental impact associated with their extraction and transport. A more sustainable alternative is the use of plant residues, as they are abundant, inexpensive, and readily available, and they can improve the efficiency of hormone removal through sorption. Thus, the sorption of 15 SHs was studied on conventional, mineral substrates (gravel, sand, and volcanic ash) and alternative vegetal wastes, i.e., mulches from giant reed, palm tree, balsa wood, and pine needles. These materials were characterized by determining their Point of Zero Charge (pHPZC), ash content, content of leachable polycyclic aromatic hydrocarbons (PAH) and heavy metals, total surface area (BET), and pore characteristics. Results indicated that SH sorption on the mineral substrates was quite low, in most cases less than 10–15%. However, in the mulches it reached between 50 and 95%, except for corticosteroids (11–43%). The pseudo-second-order kinetics provided the best fit in all cases, with R2 values between 0.97 and 0.9999. Experiments with a contact time of 7 days showed that the palm tree was the only substrate that completely removed the three corticosteroids studied (cortisone, prednisone, and prednisolone). Additionally, a significant correlation was observed between removal due to sorption (%) and log octanol–water partition coefficient (log Kow). Freundlich isotherm provided a higher number of best fits than Langmuir. Lastly, to compare sand with palm mulch under more realistic experimental conditions, four lab-scale CWs (two with palm mulch and two with sand, with/without plants) were studied. The sand-based CWs achieved faster SH percentage removals, while after 24 h, SH mass removals were significantly higher in the palm mulch-based CWs. Full article
(This article belongs to the Special Issue Advancing Innovation in Sustainable Treatment of Water and Wastewater)
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19 pages, 2896 KB  
Article
Effects of Different Colors of Biodegradable Mulch Film on Vegetative Growth, Yield, Fruit Quality, and Soil Properties in Grafted Watermelon
by Nazar Nurzoda, Ying He, Cunyao Yan, Yisong Liu, Gaopeng Yuan, Wei Zhang, Nurali Asozoda, Amonullo Salimzoda, Yingchun Zhu and Wenqing He
Agronomy 2026, 16(7), 733; https://doi.org/10.3390/agronomy16070733 - 31 Mar 2026
Viewed by 859
Abstract
The prolonged use of traditional polyethylene mulch (PM) films has resulted in significant environmental issues, such as soil residues and white pollution, which pose challenges to sustainable agriculture. The transition from PM to fully biodegradable mulch (BDM) films has emerged as a prominent [...] Read more.
The prolonged use of traditional polyethylene mulch (PM) films has resulted in significant environmental issues, such as soil residues and white pollution, which pose challenges to sustainable agriculture. The transition from PM to fully biodegradable mulch (BDM) films has emerged as a prominent trend in contemporary farming practices. This study investigates the effects of various colors of biodegradable mulches on watermelon production and quality, with a particular emphasis on BDM in comparison to conventional PM. Within the 0.2–15.3 µm wavelength range, transparent variants demonstrate high light transmission, while the silver–black treatment exhibits greater reflectivity. The silver–black surface effectively reduces evaporation, maintaining soil water content 5–8% higher than that of PM. However, its thermal profile reveals periodic temperature increases similar to those observed with PM. The results indicate that BDM silver–black enhances biomass, root N and P levels, and leaf NPK retention compared to PM. Notably, among the BDM treatments, silver–black yielded the highest average fruit weight and width (7.68 kg, 22.83 cm), although these differences were not statistically significant when compared to PM. Additionally, it produced the highest soluble solids content (13.2 °Brix) at a significance level of p < 0.05 relative to PM. This finding suggests an enhancement in the soil’s capacity to retain moisture and its nutrient availability, thereby fostering plant growth. All treatments proved profitable and economically viable; however, the total inputs and outputs associated with BDM silver–black and CK-PM transparent yielded a satisfactory profit, ranging from $1937 to $2503 per hectare. These results advocate for the utilization of sensor-embedded mulch films and the silver–black color to optimize water and nutrient utilization, thereby promoting sustainable watermelon cultivation. Full article
(This article belongs to the Section Horticultural and Floricultural Crops)
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21 pages, 9709 KB  
Article
Improved Performance, Seed Germination and Degradation Behavior of Bamboo Fiber Paper Mulch Film Reinforced by Nano Bacterial Cellulose
by Xu Liu, Ying Li, Siyu Liu, Mingjie Guan, Shuai Qian, Fei Xiao, Cheng Yong, Mengyu Wu and Pulin Che
Polymers 2026, 18(7), 815; https://doi.org/10.3390/polym18070815 - 27 Mar 2026
Viewed by 813
Abstract
To address the limitation of insufficient mechanical strength and short service life in biodegradable bamboo fiber mulch film (BFM) replacing plastic film in agriculture, this study applied a biochemical method to make bamboo fiber and used bacterial cellulose (BC) as a natural nanoscale [...] Read more.
To address the limitation of insufficient mechanical strength and short service life in biodegradable bamboo fiber mulch film (BFM) replacing plastic film in agriculture, this study applied a biochemical method to make bamboo fiber and used bacterial cellulose (BC) as a natural nanoscale reinforcing agent to fabricate high-performance bacterial cellulose bamboo fiber mulch film (BC-BFM). The physical and mechanical properties, chemical structure, seed germination and degradation behavior performance of BC-BFM were characterized. Results demonstrated the structural compactness and homogeneity of the BC-BFM were improved markedly with the increase in BC addition and BC formed a 3D nanofibrillar network that effectively bridged inter-fiber voids. The tensile, burst and tear indexes of BC-BFM all significantly rose with BC addition. Notably, compared to plastic film and BFM, BC-BFM exhibited a good effect on mung bean seed germination and the best growth speed was at 5% BC addition. Furthermore, the degradation test showed that the degradation rate of BC-BFM within 90 d was three times less than that of BFM and service life was similar to plastic film. This showed that it was a promising method to prepare biodegradable high-quality BFM through biochemical preparation of bamboo fiber and BC nanocellulose reinforcement. This method markedly enhanced the mechanical performance and durability of BC-BFM, providing a feasible technical path for the development of biodegradable high-performance green agricultural covering materials with long service life. Full article
(This article belongs to the Section Biobased and Biodegradable Polymers)
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15 pages, 2536 KB  
Article
Polyethylene Microplastics Inhibit Peanut Nodulation via Metabolic and Transcriptional Pathways
by Yue Wu, Zhengfeng Wu, Yongmei Zheng, Jishun Yang, Jiancheng Zhang, Hongfeng Wang, Tianyi Yu, Juxiang Wu and Shangxia Li
Plants 2026, 15(6), 915; https://doi.org/10.3390/plants15060915 - 16 Mar 2026
Viewed by 846
Abstract
Polyethylene (PE) microplastics (MPs) from residual mulch films are prevalent in peanut-cultivated soils, yet their specific effects on peanut nodulation remain unclear. This study investigated the impacts of PE-MPs at concentrations of 0.2%, 0.6%, and 1.0% on peanut nodulation. Results indicated that PE-MPs [...] Read more.
Polyethylene (PE) microplastics (MPs) from residual mulch films are prevalent in peanut-cultivated soils, yet their specific effects on peanut nodulation remain unclear. This study investigated the impacts of PE-MPs at concentrations of 0.2%, 0.6%, and 1.0% on peanut nodulation. Results indicated that PE-MPs significantly reduced peanut nodule number. Transcriptome analysis revealed that all three concentrations of PE-MPs down-regulated nodulation-related flavonoids, promoted lignin deposition in cell walls, disrupted antioxidant system, and enhanced the accumulation of antimicrobial substances, collectively impairing peanut nodulation efficiency. These findings indicate that PE-MPs substantially compromise the symbiosis between peanut and rhizobia, and provide insights into their interference with plant–beneficial microbe interactions in contaminated soils. Full article
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26 pages, 3861 KB  
Review
Mechanization and Intelligent Technologies for Ginger Harvesting: Evolution, Frontiers, and Prospects
by Haiyang Shen, Guangyu Xue, Gongpu Wang, Wenhao Zheng, Lianglong Hu, Yanhua Zhang and Baoliang Peng
AgriEngineering 2026, 8(3), 112; https://doi.org/10.3390/agriengineering8030112 - 15 Mar 2026
Viewed by 1724
Abstract
Driven by agricultural labor shortages and rising quality requirements, ginger harvesting increasingly demands high-throughput, low-damage operations and a reliable supply chain. This review summarizes harvesting modes and harvester types used in ginger production, with emphasis on critical process modules: digging and lifting, soil [...] Read more.
Driven by agricultural labor shortages and rising quality requirements, ginger harvesting increasingly demands high-throughput, low-damage operations and a reliable supply chain. This review summarizes harvesting modes and harvester types used in ginger production, with emphasis on critical process modules: digging and lifting, soil disintegration and cleaning, vine cutting and anti-tangling, gentle conveying, and collection. We compare major technical routes in terms of field capacity, control of soil and foreign materials, damage mitigation, and reliability under continuous operation, and identify the conditions under which each route performs best. Drawing on advances in harvesting systems for other root and bulb crops, we outline transferable approaches for intelligent sensing, precision control, and system-level integration. We then propose an online monitoring and closed-loop regulation framework for strongly coupled conditions, such as heavy clay soils, plastic-mulch residues, and vine interference. Key bottlenecks include limited cross-regional adaptability, persistent trade-offs between low damage and high throughput, cost constraints on intelligent functions, and the lack of shared datasets and standardized evaluation protocols. Future progress should be anchored in integrated equipment sets and supporting operating specifications, guided by multi-source sensing-based quality indicators and interpretable control strategy libraries, to reduce harvest losses, stabilize marketable quality, improve operational efficiency, and enable scalable adoption. Full article
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19 pages, 4538 KB  
Article
YOLO-EGASF: A Small-Target Detection Algorithm for Surface Residual Film in UAV Imagery of Arid-Region Cotton Fields
by Xiao Yang, Ji Shi, Kailin Yang, Xiaoqing Lian, Shufeng Zhang, Hongbiao Wang and Zheng Li
AgriEngineering 2026, 8(3), 106; https://doi.org/10.3390/agriengineering8030106 - 10 Mar 2026
Viewed by 540
Abstract
Mulch-film covering technology has been widely adopted in cotton production in arid regions; however, the associated problem of residual-film pollution has become increasingly prominent, creating an urgent demand for efficient and accurate monitoring approaches. Owing to the small target scale, irregular morphology, blurred [...] Read more.
Mulch-film covering technology has been widely adopted in cotton production in arid regions; however, the associated problem of residual-film pollution has become increasingly prominent, creating an urgent demand for efficient and accurate monitoring approaches. Owing to the small target scale, irregular morphology, blurred boundaries, and complex soil backgrounds of residual-film fragments, residual-film detection based on close-range UAV imagery remains a challenging task. To address these issues, this study proposes an improved algorithm, termed YOLO-EGASF, for residual-film detection in arid-region cotton fields, built upon the lightweight YOLOv11n framework. To enhance the detection of small targets with weak boundary characteristics, the baseline model is improved from three aspects. First, a boundary-enhanced multi-branch small-target extraction module (EMSE) is designed to reinforce shallow-layer details and gradient information through multi-scale convolution and explicit edge enhancement. Second, a GLoCA attention module that integrates global coordinate information with local geometric features is constructed to improve the discriminative capability of the model for residual-film targets under complex background conditions. Third, an ASF-layer multi-scale feature fusion structure is introduced, together with an additional small-target detection layer, to strengthen the participation of high-resolution features in cross-scale fusion and prediction. Experimental results on a self-constructed UAV-based residual-film dataset from cotton fields demonstrate that YOLO-EGASF outperforms several mainstream detection models in terms of Precision, Recall, mAP@0.5, and mAP@0.5:0.95, achieving mAP@0.5 and mAP@0.5:0.95 values of 71.9% and 26.8%, respectively. These results indicate a significant improvement in detection accuracy and robustness, confirming that the proposed method can effectively meet the practical requirements of fine-grained residual-film monitoring in arid-region cotton fields. Full article
(This article belongs to the Special Issue Applications of Computer Vision in Agriculture)
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16 pages, 2712 KB  
Article
Herbicidal Activity of the Invasive Weed Malachra capitata L.: Growth Stage Dependence, Bioassay-Guided Fractionation, and Physiological Effects on Seed Germination
by Pattharin Wichittrakarn, Sirichai Sathuwijarn, Nutcha Manichart, Kaori Yoneyama, Potjana Sikhao, Naphat Somala and Chamroon Laosinwattana
Plants 2026, 15(5), 832; https://doi.org/10.3390/plants15050832 - 8 Mar 2026
Viewed by 739
Abstract
The invasive weed Malachra capitata is unsuitable for human or animal consumption but has recently attracted attention for potential alternative uses. In this study, the allelopathic potential of M. capitata for weed control was investigated, as were its allelopathic effects on selected crops. [...] Read more.
The invasive weed Malachra capitata is unsuitable for human or animal consumption but has recently attracted attention for potential alternative uses. In this study, the allelopathic potential of M. capitata for weed control was investigated, as were its allelopathic effects on selected crops. The influence of plant developmental stage on its phytotoxic activity was also assessed. In addition, the physiological effects of the extract on seed germination were investigated. Aqueous leaf extracts were obtained across a range of growth stages and evaluated using seed germination and seedling growth bioassays, followed by bioassay-guided fractionation and GC-MS analysis. Leaves extracts collected at 35 days after planting exhibited the strongest inhibitory activity. Dicot plant species (Phaseolus lathyroides, Cucumis sativus, Brassica oleracea, and B. chinensis) were more susceptible to M. capitata extracts than grassy species (Echinochloa crus-galli, Zea mays, and Oryza sativa), indicating selective phytotoxicity. In pot experiments, application of leaf residues as surface mulch at rates of 100, 200, and 400 g/m2 significantly reduced P. lathyroides emergence by 11.25%, 35.00%, and 71.25%, respectively. Bioassay-guided fractionation indicated the ethyl acetate-soluble acidic fraction to contain the active allelochemicals. This inhibition was associated with reduced water uptake and suppression of α-amylase activity during seed germination. The most abundant GC-MS detectable components of the acidic fraction were octadecane (12.45%), eicosane (9.74%), and hexadecane (9.60%). Overall, these findings highlight the allelopathic potential of M. capitata, providing a foundation for further applied research and supporting its valorization for sustainable weed management. Full article
(This article belongs to the Section Plant Protection and Biotic Interactions)
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28 pages, 1292 KB  
Systematic Review
Conservation Practices for Climate-Driven Drought Adaptation Under Smallholder Farming Systems in Southern Mozambique: A Systematic Review
by Aires Adriano Mavulula, Tesfay Araya, Luis Artur and Jone Lucas Medja Ussalu
Sustainability 2026, 18(5), 2525; https://doi.org/10.3390/su18052525 - 5 Mar 2026
Cited by 1 | Viewed by 1043
Abstract
Climate-driven droughts pose major threats to rainfed farming worldwide. To address these impacts, smart agricultural approaches focusing on conservation practices (CPs) have been widely recommended by institutions such as the Food and Agriculture Organization of the United Nations (FAO), the World Food Programme [...] Read more.
Climate-driven droughts pose major threats to rainfed farming worldwide. To address these impacts, smart agricultural approaches focusing on conservation practices (CPs) have been widely recommended by institutions such as the Food and Agriculture Organization of the United Nations (FAO), the World Food Programme (WFP), and the International Fund for Agricultural Development (IFAD), among others. This systematic review synthesizes evidence on CPs for climate-driven drought adaptation and the barriers to their adoption in southern Mozambique, where drought is predominant. Following Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) 2020 guidelines, a comprehensive search across four academic databases retrieved 595 records (2000–April 2025), of which 23 were peer-reviewed studies. Data was extracted and analyzed using Microsoft Excel 365 and NVivo 15. As a result, five major CPs were identified: (i) Minimum tillage; (ii) Mulching and residue retention; (iii) Maize–legume (cowpea, groundnuts, pigeon pea, and soybeans) intercropping and crop rotation; (iv) Drought-tolerant maize varieties; and (v) indigenous practices. The systematic review has shown that minimum tillage was associated with 89–90% increase in maize and legume yields; Mulching expands maize yields by 24–59%; intercropping increases maize and legume yields by more than 30%; drought tolerant maize varieties expand yields by 26–46%; and local practices support farming continuity and contribute to resilience, although quantitative yield effects were not reported, with adoption ranging from 75–100%. These findings suggest that minimum tillage and intercropping/crop rotation are the most effective CPs in enhancing yield and resilience. Despite their potential, the adoption is generally low (average around 40%, with some as low as 7–16% for minimum tillage). Reasons for limited uptake include economic, cultural, institutional, biophysical, and technological barriers. These findings highlight the need for integrated policy approaches that combine climate-smart agriculture with indigenous knowledge in southern Mozambique. Full article
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30 pages, 28967 KB  
Article
Dynamic Mechanisms and Screening Experiments of a Drum-Type Mulch-Film Impurity-Removal System
by Jiayong Pei, Feng Wu, Fengwei Gu, Mingzhu Cao, Hongbo Xu, Man Gu, Chenxu Zhao and Peng Zhang
Agriculture 2026, 16(5), 546; https://doi.org/10.3390/agriculture16050546 - 28 Feb 2026
Viewed by 573
Abstract
Efficient and clean separation of residual plastic mulch film is the primary bottleneck hindering its resource-oriented reutilization. Currently, the field faces critical technical challenges, most notably the elusive motion mechanisms of flexible materials and the inherent difficulty of film–impurity separation. To address these [...] Read more.
Efficient and clean separation of residual plastic mulch film is the primary bottleneck hindering its resource-oriented reutilization. Currently, the field faces critical technical challenges, most notably the elusive motion mechanisms of flexible materials and the inherent difficulty of film–impurity separation. To address these issues, this study investigates a drum-type mulch-film impurity-removal unit by modeling the throw-off motion mechanism of the material stream, followed by comprehensive multiphysics simulation and optimization. First, to overcome the simulation hurdles typical of flexible materials, “Meta-particles” and the “Bonding V2” contact model were implemented on the EDEM platform to establish a discrete element method (DEM) framework. The resulting analysis revealed a non-linear transport trajectory and morphological evolution within the drum flow field, characterized by a “wall-adhering–slipping–throwing” sequence. These findings were further quantified through MATLAB-based numerical calculations to determine collision frequency and axial residence behavior. Second, ANSYS modal analysis verified the dynamic stability of the frame structure, confirming that the operating frequency (2.37 Hz) remains well below the first natural frequency (6.77 Hz). Furthermore, Box–Behnken response surface methodology (RSM) was employed to elucidate the coupled effects of key process parameters. The results demonstrated that separation efficiency and impurity-removal mass are predominantly governed by the quadratic terms of the inclination angle and rotational speed, respectively. After multi-objective optimization and engineering refinement, the optimal operating parameters were established: a film length of 220 mm, an inclination angle of 3°, and a drum rotational speed of 25 r/min. Bench tests indicated that, under these optimal conditions, the impurity-removal rate stabilized between 71.5% and 72.4%, satisfying the design requirement (≥70%). By elucidating the drum’s throw-off screening mechanism, this study achieves a coordinated improvement in both impurity-removal mass and separation efficiency, resolving long-standing engineering uncertainties regarding film–impurity trajectories and providing a theoretical foundation for the clean treatment of waste mulch film. Full article
(This article belongs to the Section Agricultural Technology)
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Article
Synergistic Improvement in Wheat Yield, Water and Nitrogen Use Efficiency in Wheat–Maize Rotation Systems: A Meta-Analysis of Multidimensional Agricultural Practices
by Huihui Wei, Tingting Gong, Li Zhou and Li Qin
Plants 2026, 15(4), 617; https://doi.org/10.3390/plants15040617 - 15 Feb 2026
Cited by 1 | Viewed by 1021
Abstract
Agricultural practices (APs) comprehensively regulate crop growth; however, comprehensive studies evaluating the effects of APs on crop yield, water use efficiency (WUE), and nitrogen use efficiency (NUE) remain scarce, particularly regarding determining optimal APs for winter wheat in wheat–maize rotation systems. Here, this [...] Read more.
Agricultural practices (APs) comprehensively regulate crop growth; however, comprehensive studies evaluating the effects of APs on crop yield, water use efficiency (WUE), and nitrogen use efficiency (NUE) remain scarce, particularly regarding determining optimal APs for winter wheat in wheat–maize rotation systems. Here, this study conducted a meta-analysis based on 305 studies globally (4009 pairs of observations), focusing on five APs: irrigation, fertilization, tillage, residue utilization, and mulching. And the results indicated that APs significantly increased winter wheat yield (31.1%), NUE (14.7%), and WUE (27.6%), with fertilization showing the most pronounced effects at 43.7%, 16.9%, and 44.7%, respectively. Specifically, compared to no fertilization, combined organic and mineral fertilizer produced the highest yield increase (141.5%); among conventional fertilization, biochar addition showed the best yield increase (19.1%). Slow-controlled/-release fertilizer and inhibitor addition increased NUE by 17.7% and 26.6%, respectively, and residue utilization and mulching improved WUE (by 17.3% and 33.2%). Moreover, in cold and arid regions (mean annual temperature [MAT] < 13 °C and total annual precipitation [TAP] < 550 mm), APs showed stronger promotion of wheat yield and WUE, while in warm and humid regions, the increase in NUE was more significant (15.3–16.1%). When experiment duration was ≥5 years, APs resulted in the highest yield increase (47.9%), while NUE and WUE increased in short-term experiments. Although APs with high nitrogen application rates resulted in a greater yield increase (51.5%), fertilization significantly reduced NUE above 198 kg N ha−1. Structural equation modeling revealed that, among APs, climatic conditions, soil properties, and management factors, APs were the primary driver of changes in yield and WUE, while NUE was mainly regulated by management factors. Overall, these findings provided an empirical basis for optimizing agricultural practices in wheat–maize systems and offer guidance for developing site-specific policy design. Full article
(This article belongs to the Special Issue Water and Nutrient Management for Sustainable Crop Production)
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