The Journal of New Approaches in Water and Environmental Engineering (JNAWEE) is a peer-reviewed open-access semiannual journal in Persian (with English abstracts and bibliographies) devoted to the fields of agricultural hydraulics, climate change, drought, environmental engineering, groundwater, hydraulic engineering, hydraulic models, hydrologic engineering, hydrology, irrigation, water, water engineering, water resources management, water storage, water science and technology, water-supply engineering, published by the Gonbad Kavous University and is scientifically sponsored by the Iranian Society of Irrigation & Water Engineering (ISIWE). It is an interdisciplinary journal devoted to the publication of original articles, review articles, etc., considering the research ethics and academic rules and regulations. The journal aims to publish research and review papers on the most recent issues and developments in the field. All papers are subject to a double-blind reviewing process.

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About the Journal:

Journal Title: Journal of New Approaches in Water and Environmental Engineering

Country of Publication: Iran, Gonbad Kavous.

Publisher: Gonbad Kavous University

Scientific Sponsorship Society: Iranian Society of Irrigation & Water Engineering

Editor-in-Chief: Dr. Saeed Boroomand-Nasab

Director-in-Charge: Dr. Masumeh Farasati

Subject Area: Agricultural Hydraulics | Climate Change | Drought | Environmental Engineering | Groundwater | Hydraulic Engineering | Hydraulic Models | Hydrologic Engineering | Hydrology | Irrigation | Water | Water Engineering | Water Resources Management | Water Science and Technology | Water Storage | Water-Supply Engineering.

Format: Online

Online ISSN: 2981-0280

Frequency: Semiannual (It is published biannually in June and December.)

Language: Persian, including English abstracts and bibliographies.

Open Access: Yes, free access to articles

Article types: Research and review papers.

Primary Review: 10 days, approximately.

Peer Review Policy: Double-blind peer-review

Average refereeing time: 24 weeks

Acceptance percentage: 20%

Article Processing Charges: No publication charges are required from the author.

Citation Style: Harvard referencing style.

Website: https://nawee.gonbad.ac.ir

E-mail: nawee@gonbad.ac.ir

Gmail: nawee.gku@gmail.com  

Tel: +98-17-33261769

Indexing & Abstracting: AGRIS-FAO, EBSCO, Arab World Research Source: Al Masdar Database, TOC Premier Database, EBSCOhost, DOAJ: Directory of Open Access Journals, WorldCat, ISSN-ROAD, Islamic World Science Citation Center (ISC), Scientific Information Database (SID), National Digital Archives of Iranian Scholarly Journals, Noormags, Magiran, Google Scholar, Academia, LinkedIn, etc.

COPE: The Journal of New Approaches in Water and Environmental Engineering (JNAWEE) follows the policies and guidelines of the Committee on Publication Ethics (COPE) and abides by its Code of Conduct in dealing with potential cases of misconduct.

Copyright: Authors retain unrestricted copyrights and publishing rights.

Type of License: Creative Commons — Attribution-NonCommercial 4.0 International (CC BY-NC 4.0)

Address: Office of the Journal of New Approaches in Water and Environmental Engineering, Faculty of Agriculture and Natural Resources, Gonbad Kavous University, Asbdavani Rd, Gonbad Kavous, Golestan Province, Iran.

Required files to be uploaded: Five essential files must be submitted through the manuscript submission system: 1. The main file of the manuscript (without the names of the authors); the manuscript should be prepared based on the template. 2. Title page in the mentioned format, 3. Authorship form (must include the title of the article and the name and surname of all authors and be signed by all authors), 4. Conflicts of Interest form (must be signed by the Corresponding Author and uploaded with the article file), and 5. Cover letter.

Energy Management in the Agricultural Sector of Khorasan Razavi Province Using Renewable Energies

Pages 1-21

https://doi.org/10.22034/nawee.2025.548249.1170

Mehdi Karami Moghadam, hadi afshar, abolghasem haghayeghi moghadam

Abstract Objective: Field investigations in Khorasan Razavi Province revealed that in recent years, energy imbalances and power outages have led to changes in irrigation scheduling, resulting in reduced production of major crops, losses of poultry and aquatic animals, and damage to mechanized irrigation facilities and systems. Therefore, examining feasible methods for renewable energy generation in the agricultural sector, including in Khorasan Razavi Province, is essential. This study investigated renewable energy generation methods, the barriers to implementing renewable power plants, and strategies to overcome these barriers in Khorasan Razavi Province.
Methods: Data and statistical information were collected through both library and field approaches. In the library method, published articles, documents, and books were reviewed to identify the types of renewable energy, their applications in the agricultural sector, and the challenges faced by developing and developed countries that have experience in using these energy sources. The statistical population of the study consisted of farmers, experienced experts, and relevant organizations. Finally, based on international experiences, along with the suggestions of stakeholders and experienced experts, practical solutions were proposed to overcome barriers to the implementation of renewable power plants nationwide, including in Khorasan Razavi Province.
Results: The findings revealed that 44% of the electricity consumed in Khorasan Razavi Province is attributable to the agricultural sector. Moreover, approximately 40% of the electricity generated from renewable energy sources in the province is used in agriculture, mainly to ensure energy stability for agricultural wells supplying irrigation water. Financial constraints, social issues, the lack of reputable companies for solar panel installation, and insufficient government commitment were identified as major barriers to the adoption of renewable energy in the province.
Conclusions: Solutions such as developing a comprehensive and targeted strategy for the expansion of renewable energy, coherent interdepartmental planning among responsible institutions, adopting policies tailored to the conditions of farmers in each county, smartening the electricity systems of agricultural wells, and implementing extension and social activities can help reduce barriers to renewable energy production in the province.

Climate Change Impacts on Hydrological Droughts under RCP Scenarios Using SDI and Time Series Modeling (Case Study: Lake Urmia)

Pages 22-46

https://doi.org/10.22034/nawee.2025.553994.1172

Zaihollah Khani Temeliyeh, Rasoul Mirabbasi Najafabadi, Shahab Shadmehr, Zahra Shamsi, Ali Mansour Bahmani

Abstract Climate change is currently a major topic in scientific circles and in publications related to environmental and atmospheric sciences.The aim of this study is to investigate the impact of climate change on climatic variables and hydrological drought in the Urmia Lake basin, Iran.For this purpose, the SDI index was calculated, and the Ar(p) time series model was generated with the synthetic data generation technique 1,000 times. Possible changes in temperature and precipitation were then examined using climate scenarios.In this study, the NORESM1-M model was evaluated using 30-year temperature and precipitation data from the Urmia Lake basin for the base period(1980–2010) and for the near(2011–2040),middle(2040–2070), and far(2070–2100) future horizons under three scenarios: RCP4.5, RCP6, and RCP8.5. In the next step, a rainfall-runoff model calibrated with historical precipitation and discharge data was used to generate discharge data based on climate change scenarios for two periods(2020–2059) and(2060–2100), after which hydrological drought in the Urmia Lake basin was analyzed.The findings showed that, based on the time series models and climate scenarios studied, more severe droughts than those in historical periods are possible.The severity of droughts at stations east of Lake Urmia is greater than in the west, with the number of dry periods in the studied horizons projected to be 17 to 20 percent higher than current conditions.Additionally,based on the correlation coefficients obtained for different scenarios, the best scenario for precipitation studies in this region was identified as RCP6,with a correlation coefficient of 0.763, and for temperature, RCP4.5, with a correlation coefficient of 0.994

Effect of Ionic Species on Drinking Water’s Corrosion and Scaling ‎Potential of Rural Water Distribution Network in Different Climate Zones of ‎Kermanshah Province, Iran‎

Pages 47-64

https://doi.org/10.22034/nawee.2025.554328.1173

Zahra Eskandari, Akram Fatemi, Mahboubeh Zarabi, Mohammad Bagher Gholivand

Abstract Objective: Corrosion can damage pipelines and release harmful substances into drinking water, thereby reducing water quality. Various factors influence water corrosivity, including water chemistry (pH, alkalinity, dissolved oxygen, and total dissolved solids), hydraulic conditions (such as temperature and flow velocity), surrounding environmental conditions (soil), climate, and pipe material. This study aimed to investigate the effects of water type and ionic speciation on the corrosion and scaling potential of drinking water in rural distribution networks across different climatic zones of Kermanshah Province, Iran, during 1999–2018.
Methods:Water quality data from rural areas in five climatic zones—cold semi-dry, warm semi-dry, warm and dry, cold Mediterranean, and moderate humid—were used to calculate the most common corrosion and scaling indices. These included the Langelier Saturation Index (LSI), Ryznar Stability Index (RSI), Aggressive Index (AI), Puckorius Scaling Index (PSI), and Larson–Skold Index (L-SI). Water type and ionic speciation were determined using AqQA and Visual MINTEQ software, respectively.
Results:Although the Piper diagram showed that the water type in all climatic zones was similar (calcium–bicarbonate, Ca–HCO₃), the corrosion and scaling indices, as well as ionic speciation, showed significant differences among the studied climatic zones (p < 0.001).In the warm semi-dry climate, LSI and AI values were higher, whereas RSI and PSI values were lower than in the other climatic zones. In the moderate humid climate, the lowest LSI and AI values and the highest RSI and PSI values were observed.
Ionic speciation analysis showed that calcium and magnesium were predominantly present as free ionic species, followed by complexes with sulfate and bicarbonate.
Conclusions: Lower corrosion potential and higher scaling tendency in warm and dry and warm semi-dry climates were attributed to the higher proportion of free calcium and magnesium ions in these climates.Consequently, water in the moderate humid climate exhibited greater corrosion potential than water in the other climatic zones.

Modeling the wastewater treatment plant using artificial neural networks-based modeling (Case study: Bushehr city, Iran)

Pages 64-83

https://doi.org/10.22034/nawee.2025.555176.1174

hamid reza tamizi, Mohammad Vaghefi, Saeed Farzin, Valikhan Anaraki Mahdi

Abstract Objective: Wastewater treatment is vital for addressing quantitative and qualitative water shortages, which are crucial for urban development. In this context, maintaining and improving the efficiency of wastewater treatment plants is essential for recovering these water resources. Therefore, accurately modeling the performance of wastewater treatment plants at different stages is of great importance.
Methods: This study used an artificial neural network (ANN) to model the effluent quality of the Bushehr wastewater treatment plant. The input and output data included the parameters BOD, COD, EC, TSS, and TDS. The results demonstrated that the ANN algorithm performed well in modeling the wastewater quality parameters, though with varying success at different treatment stages.
Results: The modeling results showed that accuracy was highest for the EC parameter in the first stage, with a coef-ficient of determination (R²) of 0.84 during the test period. The best accuracy for the TDS parameter was achieved in the third stage. For the COD parameter, the network's accuracy was very favorable in the first stage. The highest accuracy for the TSS parameter was in the third stage during training (R² = 0.79), while the second stage yielded the best result during testing (R² = 0.65). Finally, for the BOD parameter, the highest accuracy was in the third stage.
The best performance for EC and COD was observed in the first stage, with an accuracy exceeding 80%, while for TDS, the highest accuracy was in the second stage.

Assessment of Snow Cover (NDSI) Variations in the Maroon River Basin during 2001–2022 and Their Influence on the River’s Hydrological Regime

Pages 84-100

https://doi.org/10.22034/nawee.2025.556012.1175

nezam tani, kamal Omidvar

Abstract Objective: In mountainous regions of the Zagros, including the Maroon Basin in southwestern Iran, snow is the primary source of annual runoff. However, recent climatic changes, particularly rising temperatures and shifts in precipitation patterns, have altered the temporal and spatial distribution of snow accumulation and snowmelt. These changes have important implications for river hydrological regimes. Accordingly, this study investigates the temporal and spatial trends of snow cover and analyzes its relationship with Maroon River discharge over the period 2001–2022 to clarify the role of snow-cover changes in surface-flow dynamics. Methods: River discharge data from the Idenak hydrometric station (upstream of Maroon Dam) were also used, and missing data were reconstructed using regression methods. To investigate the relationship between snow cover and river discharge, Pearson correlation analysis was performed for both simultaneous and lagged relationships. Since snowmelt in the Maroon Basin typically occurs from late winter to mid-spring, lag effects of up to two months were considered to capture delayed runoff responses associated with snowmelt. All analyses were conducted using ArcGIS, Excel, and SPSS software. Results: The results showed a significant declining trend in snow cover during most months, particularly from January to March. Seasonal analysis also indicated a decreasing trend in snow-covered area during the snow season (October–May), with Z = −1.58 (p < 0.05). Sen’s slope estimates showed an average reduction of approximately 7.28 km² in snow-covered area per year during winter. Correlation analysis revealed the strongest positive relationship between NDSI and Maroon River discharge during the snowmelt period (March–May), both simultaneously and with time lags of one to two months, with correlation coefficients reaching 0.75. Conclusions: The significant decline in snow cover and its strong correlation with river discharge, both simultaneously and with 1–2-month delays, indicate a reduction in snow persistence and earlier snowmelt in the Maroon Basin during the past two decades. These changes have altered the hydrological regime of the Maroon River. This study, by combining long-term MODIS-based snow-cover trend analysis with simultaneous and lagged evaluation of the relationship between NDSI and river discharge at multiple temporal scales, provides a robust understanding of the dynamic relationship between snow-cover changes and surface-flow behavior in this critical basin.

Spatio-Temporal Dynamics of Vegetation Cover in East Azerbaijan Province, Iran: A 22-Year Analysis Using MODIS Data and Advanced Statistical Models

Pages 101-124

https://doi.org/10.22034/nawee.2025.556274.1176

farahnaz khoramabadi, Sina Fard Moradinia, Mostafa Tahani Yazdeli, Sayyed Mohammad Hosseini

Abstract V
Objective: Vegetation cover is a critical indicator of regional ecosystem health and a key component of global climate regulation models. In vulnerable mountainous environments, characterized by high sensitivity to climatic and anthropogenic pressures, monitoring vegetation dynamics over time is essential for effective resource management.
Method: This study focuses on the spatio-temporal variations of vegetation cover in East Azerbaijan Province, a crucial mountainous region in northwestern Iran, over a 22-year period (2000–2022). To achieve this objective, statistical and geospatial methods, including the Normalized Difference Vegetation Index (NDVI), Kolmogorov–Smirnov test (KST), Geographically Weighted Regression (GWR), and Principal Component Analysis (PCA), were applied to MODIS satellite products.
Result: The findings reveal sustained but unstable vegetation dynamics in the region. The KST indicated that NDVI distributions were non-normal across all months, suggesting considerable ecological instability. Notably, the mean annual rate of NDVI change increased from 0.166% in the first decade (2000–2009) to 0.192% in the second period (2010–2022). The high NDVI variance (36.78%) confirms pronounced spatial heterogeneity across the province. Furthermore, a moderate positive correlation (45%) was observed between precipitation and vegetation cover, highlighting the dominant role of moisture availability. Finally, PCA identified three high-density vegetation groups, collectively explaining 93.49% of the total variance, while the GWR model demonstrated strong predictive capability for localized vegetation changes.
Conclusion: These results provide valuable quantitative evidence of ongoing ecological changes in this important mountainous region and offer essential insights for regional land-use planning and conservation strategies.

Assessment of Appropriateness of Existing Irrigation Technologies in Kermanshah Province’ Agriculture based on the WASPAS Multi-Criteria Decision-Making Technique

Pages 125-151

https://doi.org/10.22034/nawee.2026.562057.1180

Ameneh Abdi, Ali Asghar Mirakzadeh, Farzad Eskandari

Abstract Objective: The absence of a systemic paradigm and the lack of attention to the compatibility and selection of irrigation technologies based on multi-criteria decision-making approaches have intensified the water crisis in the agricultural sector. The present study aimed to investigate the compatibility of irrigation technologies with the actual conditions of farmers, with a primary focus on optimal management of water resources.
Methods: The present research is applied in nature and employs a survey-based data collection method. The criteria were weighted using the CRITIC method, and the WASPAS multi-criteria decision-making method was employed to rank the irrigation technologies.
Results: The results indicated that the final weight for the technology’s compatibility with social conditions was determined to be 0.202, and for farmer proficiency, it was 0.167. Furthermore, the final weights for the technology’s compatibility with climatic conditions, system productivity, on-farm compatibility, technology level, and economic compatibility were 0.143, 0.125, 0.125, 0.120, and 0.116, respectively. Accordingly, the highest weight corresponds to the technology’s compatibility with social conditions, while the lowest weight pertains to its compatibility with economic conditions. Furthermore, WASPAS method analysis revealed that the pressurized sprinkler irrigation system
Conclusions: The development and application of appropriate irrigation technologies is the prerequisite for optimal water management, and it requires an optimal multi-attribute decision, taking into account ecological, technical, and especially socio-economic dimensions.

Prioritizing Agricultural Water Allocation under Drought and Water Scarcity Conditions; A Case Study of Zanjan Province

Pages 152-171

https://doi.org/10.22034/nawee.2026.563434.1181

Nader Abbasi, Farshid Taran, Samira Vahedi, Samar Behrouzinia

Abstract Population growth and droughts have led to water scarcity in arid and semi-arid regions. Optimal allocation of water resources is a key strategy for prioritizing water use across sectors. The aim of this study is to prioritize the allocation of agricultural water among sub-sectors in Zanjan Province. To this end, the main and sub-criteria, as well as options, were determined based on expert opinions, and the options were prioritized using the AHP. The five main criteria included food security, economic potential, technical and operational feasibility, resource and environmental sustainability, and governance and comparative advantage. The options consisted of crop farming, horticulture, livestock production, poultry farming, aquaculture, and greenhouse cultivation. The results showed that food security (weight=0.40), was the most important criterion, highlighting the need to focus on food-basket products. Economic potential (weight=0.08) ranked lowest in priority. Equitable access to food and drought resilience had the highest importance (each with a weight of 0.40), while the self-sufficiency ratio had the lowest importance (weight=0.20). Irrigated crop farming (weight=0.25) with the highest priority, plays a crucial role in ensuring food security and supporting employment. Sensitivity analysis showed that irrigated crop farming and poultry farming ranked highest, and only under extreme weighting of technical or economic criteria could greenhouse cultivation or poultry farming replace crop farming. The findings indicate that agricultural water allocation in Zanjan Province requires a comprehensive and multi-dimensional approach in which achieving sustainable food security is prioritized.

Laboratory and Field Evaluation of Hydraulic Properties of Concrete Canvas Technology; A Lining for Irrigation Canals

Pages 172-193

https://doi.org/10.22034/nawee.2025.564023.1182

ALi Mokhtaran, Farshid Taran, Reza Ghaffarpour, Mohammad Fayyaz, Mohammad-Mehdi Kermaninejad

Abstract Laboratory evaluation was carried out at the Agricultural Engineering Research Institute (AERI), and field monitoring was conducted in three pilot sites: Khusf (1 km length), Gorgan and Qom (2 km length). In the laboratory, Khusf and Qom pilots, the concrete canvas lining was installed longitudinally with rolls averaging 12.5 m, while in Gorgan it was installed transversely with 2 m rolls, joined by bolts and nuts at 10-20 cm intervals for grade 3 and 4 canals. The laboratory results showed that Manning’s roughness coefficient for the concrete canvas was 0.01, which was more favorable compared to the brick-and-cement control (0.022) and conventional concrete linings (0.013–0.027). The values of shear velocity and shear stress were estimated at 0.032 m/s and 1.06 N/m2, respectively, which were 54% and 11% lower than the control. Seepage under laboratory conditions was estimated at about 1.29 lit/m2/day, which was 96% lower than conventional linings such as concrete and stone. In the field pilots, average seepage in the longitudinal installation method was about 21% lower than in the transverse method, indicating greater effectiveness of the longitudinal approach in reducing seepage. The results also showed that roughness coefficient and seepage in canals lined with concrete canvas were approximately 35% and 58% lower, respectively, than those of conventional concrete in the monitored areas.

Comparative Analysis of Sediment Volume Measurement Methods in Check Dams (Case Study: Rhine Shirabad Watershed)

Pages 194-210

https://doi.org/10.22034/nawee.2025.515827.1149

morteza seyedian, Ali Akbar Khezri, Abolhasan Fathabadi

Abstract Objective: This study aims to compare four different methods for estimating sediment volume behind check dams: the geometric, pyramidal, trapezoidal, and prismatic methods. The study area is the Rhein Shirabad watershed in the Maneh and Samalqan region of North Khorasan Province, Iran. The primary objective is to evaluate the accuracy and applicability of these methods in estimating sediment deposition and to determine the most reliable approach for sediment volume calculation.
Methods: The geometric, pyramidal, trapezoidal, and prismatic methods were applied to estimate sediment volume. To enhance the accuracy of the estimations, bias correction was implemented on the computed values. Statistical performance metrics, including the coefficient of determination (R²), root mean square error (RMSE), and mean bias error (MBE), were used to assess the accuracy of each method. The calculated values from each method were compared with actual field measurements to determine their reliability.
Results: The findings indicate that the geometric and prismatic methods provide higher accuracy in estimating sediment deposition compared to the pyramidal and trapezoidal methods. Before bias correction, the RMSE values for the prismatic and geometric methods were lower (728.06 and 736.16, respectively) than those of the trapezoidal and pyramidal methods. The MBE values suggested that the prismatic method had the least estimation error. After applying bias correction, the RMSE values for all methods decreased significantly, indicating improved estimation accuracy. The mean bias error (MBE) values for all methods approached zero after correction, demonstrating a closer alignment between estimated and actual sediment volumes.

Environment

Comparative investigation of the effluent quality of Bandar Gaz and Bandar Torkaman treatment plants

Articles in Press, Accepted Manuscript, Available Online from 03 August 2024

https://doi.org/10.22034/nawee.2024.454832.1074

Mojtaba G. Mahmoodlu, Mostafa Raghimi, masumeh farasati

Abstract Present research was conducted on comparative investigation of effluent quality of two water treatment plants, Bandar Gaz and Bandar Turkmen, in the east of Golestan province. Hence, the concentration of 11 qualitative parameters including temperature, pH, BOD, COD, EC, nitrate, TSS, TS, turbidity, total phosphorus, DO, endothermic coliform, and total coliform along with discharge as a quantitative parameter in effluent was investigated in 2022-2023. Results revealed that produced sewage volume has the least changes among measured parameters of both treatment plants. Results revealed that the amount of turbidity, total coliform and BOD of Bandar Gaz wastewater treatment plant is much higher than that of Bandar Turkmen. This indicates that in addition to physical pollution, the microbial pollution amount in effluent of Bandar Gaz treatment plant is higher than that of Turkmen treatment plant. BOD/COD ratio in entering effluent in both treatment plants is around 0.6. Therefore, the effluent of both treatment plants can be easily decomposed using biological methods. However, BOD/COD ratio in the output effluent is less than 0.3. Hence, there is no possibility of biological decomposition of wastewater. Removal rate results revealed that the highest removal rate is related to TSS and BOD, respectively. Results showed that the removal amount of parameters in Bandar Turkmen treatment plant is more than that of Bandar Gaz treatment plant, except for COD. ISQA water quality index revealed that an improvement of effluent water quality after wastewater treatment process. Although the effluent in both treatment plants is in a relatively weak class.

Hydrology and Water Resources

Application of ionic ratios and saturation indexes in interpreting of Oqan River hydrochemical processes, Golestan Province

Articles in Press, Accepted Manuscript, Available Online from 16 October 2025

https://doi.org/10.22034/nawee.2024.465612.1092

Mojtaba G. Mahmoodlu, Maryam Sayadi

Abstract The present study was conducted to evaluate the quality and hydrochemistry of Oqan River water using ion ratios and saturation indices. For this purpose, the results of physicochemical parameters analysis over an eight-year period (2010-2017) were used for two hydrometric stations located on the river Oqan. To analyze and identify the hydrochemical processes, Stiff, Pipers, Gibbs diagrams, ion ratios, CAI1 and CAI2 relationships and Chadha diagrams were used. Also, saturation indices and composite diagrams of saturation indices were used to predict and probability of precipitation or dissolution of some minerals. Finally, factor analysis was used to determine the number of factors affecting water quality of studied stations. Stiff and Piper diagrams results of Oqan river showed that the type and facies of hydrochemical stations are Ca-HCO3 Galikesh and Oqan stations. Based on Gibbs diagram, the water-rock reaction is the controlling factor of the water chemistry of the studied stations. The results of ion ratios and Chadha diagram indicate that reverse ion exchange and weathering of dolomite and limestone processes are two effective factors to alter water quality in the study area. Hence, river water is over saturated with dolomite, calcite and aragonite minerals, whereas it is under saturated with evaporite minerals such as halite, gypsum and anhydrite. The results of factor analysis revealed that two factors of geological formations dissolution in watershed river such as limestone and dolomitic rocks and discharge of domestic and agricultural wastewaters into river have the most influence on the water quality in the studied stations.

Irrigation and Drainage

Investigating Water and Energy Efficiency in Direct vs. Traditional Rice Cultivation: A case study of Mamsani city

Articles in Press, Accepted Manuscript, Available Online from 01 December 2025

https://doi.org/10.22034/nawee.2025.481004.1108

Jahangir Abedi koupai, Ramin Roshanas, Ali Asghar Masoudi, Razieh Karmi

Abstract Direct cultivation of dry rice is one of the methods of cultivating this product that has attracted the attention of researchers today. It is favored due to its ability to reduce the use of agricultural tools and machinery, decrease labor force and seed consumption, and significantly lower the initial cost and input energy needed for planting. In order to investigate the water and energy efficiency of traditional and direct rice cultivation, a factorial experiment was conducted in the form of a randomized complete block in Mamsani city. The results showed that direct cultivation, compared to traditional cultivation, significantly reduced the yield of paddy. However, it did not have a significant effect on the physical and quality characteristics of the product. This study calculated the values of input and output energy, as well as the percentage share of each input. Additionally, it calculated the indicators of the ratio of input to output energy, economic energy efficiency, and physical energy efficiency for each treatment. The results of these indicators demonstrated that as input energy decreases, economic and physical energy efficiency increase. Among the treatments, the best treatment in terms of water and energy efficiency was the Shamim cultivar, followed by the Fajr cultivar. Therefore, direct cultivation of the Shamim and Fajr varieties is recommended for rice farmers in Mamsani city.

Water structures

Baffle Structure in Water Engineering: A Review of Applications, Challenges, and Innovative Methods in Flow Control and Flood Management

Articles in Press, Accepted Manuscript, Available Online from 06 January 2026

https://doi.org/10.22034/nawee.2025.553107.1171

Mohammad Khosravi-Hamouleh, Elham Ghanbari Adivi

Abstract One of the most important challenges in water engineering is the management and control of free flows and water structures in order to protect natural resources, infrastructures and surrounding ecosystems. Baffle structures, as an effective tool in controlling and managing water flow, play an important role in optimizing hydraulic performance, dissipating flow kinetic energy and improving sediment transport. In this review, several studies on the types of baffles, hydraulic analyses based on the governing equations of fluid flow, and the mechanisms of action of these structures in open channels have been investigated. The main applications of baffles include flow measurement, energy control and flow velocity reduction, flow capacity management, erosion and scour reduction, improving the process of suspended solids removal in sedimentation basins, reducing the effects of sudden flows and floods, and managing debris flows. The findings show that the optimal use of baffles can increase the stability of hydraulic structures and help manage and reduce the negative effects of flow and flood downstream. This technology is widely used, especially in erosion control and flood management. The challenges and limitations in baffle design are also discussed and new trends in the development of these structures are introduced. By focusing on the challenges and limitations, this review emphasizes the need for systematic studies and wider use of baffle structures in water engineering projects and suggests future research directions.

Watershed Management

Evaluation of Different Geostatistical Methods in Investigating the Role of Alluvial Aquifers ‎in Nitrate Spatial Variability (Case Study: Sirjan Plain of Kerman)‎

Articles in Press, Accepted Manuscript, Available Online from 24 May 2026

https://doi.org/10.22034/nawee.2023.425808.1057

alireza shasavaripoor, alijan abkar, hamzeh saeediyan

Abstract Nitrate anion is one of the most important indicators for determining the level of groundwater pollution around the world, ‎so that various researches have been done on it in different water resources in watersheds. In this study, the amount of ‎nitrate in 55 water sources was obtained in Sirjan plain‏. ‏Then, geostatistical methods such as ordinary krigin (OK), ‎inverse distance weight (IDW), normal distance weight (NDW), and co-kriging were used. To evaluate the performance of ‎prediction and estimation models, performance indicators of Coefficient of determination (R2), Root mean square error ‎‎(RMSE), Mean Square Error (MSE), mean absolute error (MAE), correlation coefficient (R) and coefficient Nash - Sutcliff ‎‎(NS) is used.‎‏ ‏After selecting the best method of interpolation, spatial zoning maps related to nitrate variable was prepared ‎in Arc GIS software. The results showed that the average nitrate of groundwater in Sirjan plain is lower than the ‎standard limit‏. ‏The Gaussin model was also considered the most appropriate. Also, ordinary Kriging method showed the ‎highest values in terms of coefficient of determination (R2) with 0.9604317, correlation coefficient (R) with 1 and Nash- ‎Sutcliff (NA) coefficient with 0.283255 and also showed the lowest values in terms of root mean square error (RMSE) with ‎‎2.54974, Mean Square Error (MSE) with 0.0000018181, mean absolute error (MAE) with 1.202976 in comparison with ‎other methods. The results also showed that the upward trend of nitrate content is from the surrounding and the margins ‎of the plains towards the center and northern parts of it‏.‏‎

Irrigation and Drainage

Modeling the removal efficiency of Pb (II) and Cd (II) from aqueous solution using artificial neural networks optimized with particle swarm optimization algorithms

Articles in Press, Accepted Manuscript, Available Online from 03 June 2026

https://doi.org/10.22034/nawee.2024.465300.1091

Ali Helfi, Aslan Egdernezhad, Saloomeh Sepehri Sadeghiyan

Abstract Objective:The aim of the present research was to model the removal of lead and cadmium from the aqueous solution by nanocomposite prepared on the basis of mineral stabilizer,using artificial neural network model and ANN optimized with particle swarm optimization algorithms.
Methods:Adsorption studies were carried out in a batch manner by considering different parameters such as the initial pH of the solution,adsorbent dosage,contact time,initial concentration of the pollutants and temperature.These parameters were considered as the input of the models and the efficiency of pollutant removal was also considered as the output of the models.
Results:The results showed that the accuracy of the ANN-PSO model was higher than the ANN model, so that the value of the R2 statistic in the ANN model for removing lead and cadmium was 0.91 and 0.90, respectively,and in the ANN-PSO model, it was 0.96 and 0.95, respectively.Examining the convergence of the PSO optimization algorithm showed that in the first iterations where the population particles are randomly selected, the optimization error is very high in all cases. Over time, with the global search and convergence to the global optimal limits, the weighted inertia increases, and the slope of the changes of the objective function in the convergence graph decreases over time, until finally optimization takes place.
Conclusions:In general, the use of ANN-PSO model can provide fast and acceptable predictions about the effect of various factors on the removal process of pollutants and is a suitable and economical alternative in terms of cost and time for laboratory studies.

Water structures

Comparative Evaluation of Soft Computing Models for Predicting the Discharge Coefficient of Arced Labyrinth Weirs

Articles in Press, Accepted Manuscript, Available Online from 21 July 2026

https://doi.org/10.22034/nawee.2026.585562.1232

Mahdi esmaeilzade, Alireza Yazdani, mehdi fuladipanah

Abstract Accurate prediction of the discharge coefficient (Cd) is crucial for the hydraulic design of labyrinth weirs. While conventional vertical-sidewall geometries are widely studied, the synergistic effect of sloped sidewalls and arced planforms remains poorly understood. This study investigates and predicts Cd for arced labyrinth weirs with varying sidewall slopes using a dataset of 277 experimental runs. Five dimensionless parameters ((H0/P), (A/t), (Lc/W), (theta), (phi)), derived via dimensional analysis to capture geometric and hydraulic complexities, were used as inputs for three soft computing approaches: Support Vector Machine (SVM), Gene Expression Programming (GEP), and Artificial Neural Network (ANN). Although all models yielded satisfactory predictions, the Multilayer Perceptron (MLP) ANN model outperformed the others. The optimal MLP 5-9-1 architecture—trained using the BFGS algorithm with a logistic hidden layer and identity output layer activation—achieved training RMSE, MAE, and (R^2) of 0.022, 0.0145, and 0.8402, respectively, and validation metrics of 0.0199, 0.0145, and 0.8961. Graphical analyses confirmed strong agreement between observed and predicted values across all dataset quartiles. These findings demonstrate that the MLP framework offers a robust, reliable alternative for hydraulic design, providing a practical tool for spillway optimization where complex geometric interactions limit traditional linear regressions.

Improvement the quality of urban Wastewater using combination of Bioremediation and porous concrete

Volume 1, Issue 1, March 2022, Pages 1-14

https://doi.org/10.22034/nawee.0621.153625

jahangeer abedi koupaee, Afshin Baniasadi, Mohammad Mehdi Dorafshan

Abstract The combination of phytoremediation and porous concrete is a new technology used as a natural purification of porous concrete and resistant plants to remove or reduce the concentration of pollutants. In this study, the performance of porous concrete as a bed and plant on reduction of urban effluent pollution has been investigated. A channel with dimensions of 9 meters length, 30 cm wide and 20 cm height was constructed along with the wastewater treatment lagoon of Isfahan University of Technology. Then, blocks were made of porous concrete with dimensions of 30 × 30 × 15 cm, and placed in the channel. The vetiver grass with two different densities (12 and 27 plants) were placed between the porous concrete blocks. After 5, 7 and 9 hours, the wastewater samples were taken from the inlet and outlet basins. The reduction of BOD, COD, TSS and total coliform during the 5 hours retention time, were 16.1, 27.5, 20.6, and 19.1 percent, respectively. In the retention time of 7 hours, reduction were equal to 20.5, 33, 26.1 and 25.3 percent, respectively. The reduction of BOD, COD, TSS and total coliform during the 9 hours retention time, were 25.9, 38.5, 31.9 and 30.5 percent, respectively. In general, this research showed the performance of system was optimistic in reduction of BOD, COD, TSS and Total coliform

Runoff forecast with SVR model in climate scenarios and estimation of water demands due to changes in WEAP model

Volume 1, Issue 1, March 2022, Pages 75-90

https://doi.org/10.22034/nawee.2022.154268

banafshe rahimi, Maryam Hafezparast

Abstract Today, the effects of climate change and global warming have been proven due to the increase in greenhouse gases in the world. In this research, the monthly values of temperature, precipitation and discharge of Jamishan Dam in the years 1988-2017 have been considered as the base period. Simulation of resources and uses of the jamishan Dam catchment area was investigated using the WEAP model with different cultivation patterns in the area. To evaluate the effect of climate change on precipitation and temperature parameters in this region, RCP8.5 scenario outputs of HADGEM2_ES and MIROC5 models and a series of CMIP5 reporting models were used and the output of these models was downscaled for the region. In this research, change factor method used for downscaling and the monthly temperature and precipitation parameters of Jamishan Dam were produced for the period 2021-2050. In order to study the runoff of the region due to climate change, the SVR model was studied. The results of the climate model show an average temperature increase of 0.5 to 1 ° C. The simulated rainfall results show that the average monthly rainfall under the RCP8.5 scenario in the future period in HADGEM2_ES model increased by 1.3% and in MIROC5 model decreased by 6% compared to the base period. Examination of the results of discharge forecast in SVR method indicates that runoff is associated with a decrease compared to the base period.Simulation of different cultivation patterns in WEAP shows that the average supply is 70% in the SVR method.

Determining the function of production and economic value of water in the production of wheat and barley in Ardebil plain

Volume 1, Issue 1, March 2022, Pages 27-40

https://doi.org/10.22034/nawee.2022.153889

rassol nouri khajebelagh, MohammadReza Khaledian, Mohammad Kavosi-kalashemi, Mohammadtaghi Azimi

Abstract In recent years, unnecessary exploitation of water resources, especially groundwater resources, droughts, lack of protection in the use of water resources, population growth, etc. has led to water input as one of the most important. The most limiting factors of development should play a role in the agricultural sector. One of the ways that can some extent solve this problem is comprehensive water management, which is an important economic method and values can be balanced between supply and water demand. In this study, the production function method was used to determine the economic value of water in the production of wheat and barley products. EXCEL and SPSS software were used to analyze the data. The obtained results showed that the average amount of final production of irrigation water input for wheat and barley crop is equal to 0.240 and 0.268, respectively, with economic value of 3223.3 and 2813 Rials per cubic meter. Also, the highest water consumption in wheat and barley production was equal to 5200 cubic meters and 3100 cubic meters, respectively, and the average water consumption was equal to 4604.56 and 2793.7 cubic meters, respectively. Due to the fact that the final value of water production is more than the cost of irrigation water supply, if the price of agricultural water is not corrected, it will lead to improper harvesting and use of water resources. To prevent this, it is better to set the price of agricultural water based on the final value of production.

Evaluation of AquaCrop Model for simulation Rice Different Cultivars Response to Planting Method

Volume 1, Issue 1, March 2022, Pages 63-74

https://doi.org/10.22034/nawee.2022.153890

Seyed Amir Hossein Mousavi, Aslan Egdernezhad, Abdolali Gilani

Abstract It is so vital to note the cultivation of rice because of its high irrigation water consumption. This crop is the most important food source in the Iran, hence, it is necessary to know how much irrigation water must be used to grow different rice cultivars under various cultivation types. On the other hand, applying farm tests to achieve the goal need high costs and waste much time. Regarding that, it is necessary to use crop modeling. In this study, AquaCrop was used to simulate yield, biomass and water use efficiency of rice. The research was conducted at Khuzistan Agricultrual Research Station. In this study, three types of cultivation (D1: transplanting, D2: current directs seeding consorted seeding, and D3: dry bed seeding) and rice cultivars (V1: Red-Anbori, V2: Champa, V3: Danial) were considered to simulate abovementioned parameters. MBE, RMSE and NRMSE values for seed yield were 0.25 ton.ha-1, 1.0 ton.ha-1 and 0.1, respectively. Those values for biomass were 0.3 ton.ha-1, 1.15 ton.ha-1 and 0.05, respectively, and for water use efficiency were 0.07 kg.m-3, 0.24 kg.m-3 and 0.03, respectively. EF values for seed yield, biomass and water use efficiency were 0.87, 0.56 and 0.65, respectively, and d values for all parameters were equal to 0.99. Regarding the results, AquaCrop had good accuracy for simulation of rice yield, biomass and water use efficiency.

Comparison of spatial and temporal variation of maize evapotranspiration in Mahidasht using Landsat 8 satellite images and available resources

Volume 1, Issue 1, March 2022, Pages 51-62

https://doi.org/10.22034/nawee.2022.153887

Nasim Kamali, Bahman Farhadi Bansouleh

Abstract The crop evapotranspiration (ET) has spatial and temporal variations within the region due to changes in meteorological parameters, phenological stage, and farm management conditions. The main objective of the present study was to compare the trend of temporal and spatial variations of grain maize evapotranspiration in Mahidasht using satellite images with available resources (due to lack of Lysimeteric data). In this study, the daily evapotranspiration for the four maize farms in the different parts of the plain was calculated using Landsat 8 satellite images and the SEBAL algorithm on six dates during the growing period of maize in the year 2014. Since there was no field measurement of ET to verify the results of estimated ET based on the SEBAL algorithm, the final results (evapotranspiration) and intermediate results (Land surface temperature, Albedo, and NDVI) calculated by the SEBAL algorithm were compared with acceptable values in the literature. Results showed a similar trend of estimated evapotranspiration by the SEBAL algorithm and AGWAT software. The trend of increasing and decreasing land surface temperature was rational. The average of NDVI during the growth period in the studied farms was between 0.47 and 0.53 which was acceptable. Albedo with an average of 0.17-0.18 had slight variations between the selected farms. Results showed rising in land surface temperature, evapotranspiration, and NDVI to the middle of the growth period and then reducing of these parameters. The average estimated maize evapotranspiration based on the SEBAL algorithm was between 3.35 to 8.53 mm/day for the six imagery dates.

Evaluation of the Center pivot system in different speeds Parallel and perpendicular to the water line

Volume 1, Issue 1, March 2022, Pages 41-50

https://doi.org/10.22034/nawee.2022.153888

Mohammad Reza Barati, Mehdi Zakerinia, Abutaleb Hezarjeribi

Abstract The Center pivot system is one of the most advanced sprinkler irrigation systems that recently has been used in Iran. According to this research on the compatibility of the system with the cultural, economic, climate and optimization performance of the system is essential. The importance of this matter on one side and the lack of information on the other hand, it highlights the need for an investigation. In this regard, the evaluation of the Center pivot system in two speeds 10 and 60 percent took a radial and vertical. The uniformity coefficient (CU) in the radial arrangement of cans and in two speeds 10 and 60 % was 80.3 and 76.4%, respectively and the uniformity of water distribution (DU) was 72.6 and 65.5 respectively. Also the uniformity coefficient (CU) in the vertical arrangement of cans and in the same speed was 61.1 and 59.3 % respectively. Uniform distribution of moisture in the soil after irrigation with rate of 60% was 86.37 percent. So the amount of Uniform distribution of moisture in the soil was higher than the uniformity coefficient in the Surface Soil (CU). The main reason is the horizontal flow and water transfer in the soil and its influencing factors (Mass flow, Diffusion and Hydrodynamic dispersion). According to this and given the lack of available water resources in arid and semi-arid area, maybe there is no need to increase water of irrigation in order to increase the uniformity of water distribution to more than 70 percent

Chiu's entropy theory application for simulation of flow field velocity in river bends (Case study: Gorganrood River bend)

Volume 1, Issue 1, March 2022, Pages 15-26

https://doi.org/10.22034/nawee.2022.153891

Amieahmad Dehghani, Iman Yousefabadi

Abstract In rivers and especially in river bends, the variation of stream-wise flow velocity in width and depth directions is non-uniform and is affected by many factors including secondary flows, bed and bank roughness, and flow hydraulic characteristics. For calculation of two-dimensional flow velocity distributions in straight rivers many approaches have been presented by researchers, while in meandering rivers, due to the complex mechanism of flow pattern, the solution of velocity field is carried out by computational fluid dynamics software packages. In this research, the Chiu's probabilistic theory was used for solution of the flow velocity field in a river bend on the Gorganrood located in Goletsan province. Considering the lack of measured point velocity data in river bends, 6 field measurement series were collected in one of bends located about 200 m upstream of Aghghala hydrometric station. Among these measurements, 4 series are selected for the model calibration and 2 remaining series for the model validation. The results showed that the Chiu's method has an acceptable accuracy in simulation of flow velocity fields for river bend. The statistical measures for the obtained point velocities indicated that the mean errors of this method are 4.9 and 3.5% in the calibration and validation phases, respectively. The mean errors for the calculation of total flow discharges are 5.9 and 6.0% respectively.

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