Integrated Watershed Management

Integrated Watershed Management

An Analysis of the Consequences of Improper Exploitation of Groundwater Resources in Rural Areas of the Western Basin of Jazmourian Wetland

Document Type : Original Article

Authors
1 Assistant Professor, Department of Agricultural Extension and Education, Agricultural Sciences and Natural Resources University of Khuzestan, Mollasani, Iran
2 Postdoctoral Researcher, Department of Reclamation of Arid and Mountainous Regions, Faculty of Natural Resources, University of Tehran, Karaj, Iran
Abstract
Extended Abstract
Introduction: Groundwater is an essential resource for agriculture in all areas, including arid and semi-arid regions. It also plays an important role in the social and economic development of different regions (Savari & Amghani, 2022). Water is needed for a variety of economic activities, including energy and food production (Marston et al., 2018). In addition, it is closely related to the preservation of human generations (Singh et al., 2020). Increasing population growth in Iran as a result of land use changes and increased urban, industrial and agricultural activities has increased the use of groundwater resources so that in recent years these resources are at risk of pollution, quantitative decline and quality degradation. In recent years, due to the reduction of surface water which results from frequent and successive droughts, there has been increased pressure from farmers to exploit more groundwater through authorized and unauthorized wells, which has had many negative consequences for the agricultural and environmental sectors. Therefore, farmers and policymakers in this area need to be aware of the consequences of excessive use of groundwater to provide a comprehensive and strategic planning for safe use of groundwater. In this regard, the present study was conducted with the general purpose of an analysis of the consequences of improper exploitation of groundwater resources in rural areas of the western basin of Jazmourian Wetland.
Materials and Methods: This research is a descriptive correlational study in terms of the nature of quantitative research, according to the applied purpose, in terms of data collection. The statistical population of the study included all operators with wells (semi-deep and deep) in the area of Jazmourian wetland (N: 6112). Using Cochran's sampling formula, 153 of them were selected as a sample. To increase the validity of the findings, 185 questionnaires were distributed by random sampling method. Finally, 174 questionnaires were completed and analyzed. The main research tool was a researcher-made questionnaire which was pre-tested. The questionnaire consisted of two parts. The first part included the item related to the individual, social and economic characteristics of the exploiters, and the second part included 24 items to investigate the consequences of improper exploitation of groundwater resources in the agricultural sector. To determine the validity of the questionnaire, a panel of experts including experts in the field of agricultural extension and education of Khuzestan University of Agricultural Sciences and Natural Resources was used. Based on their opinions and suggestions, the necessary amendments were made to the questionnaire. In order to estimate the reliability of the questionnaire,   Cronbach's  alpha coefficient test was used. The alpha value for the outcomes section was 0.88. Since the calculated Cronbach's alpha coefficients of the questionnaire are higher than 0.7, the questionnaire has good reliability. In order to analyze the data in both descriptive and inferential sections, SPSS software was used. For this purpose, in the descriptive statistics section, frequency, percentage, mean and standard deviation were used. In the inferential statistics section, exploratory factor analysis was used.
Results and Discussion: The results of descriptive statistics showed that the mean age of the beneficiaries studied was 43.58 with a standard deviation of 11.25 years, the youngest of who was 21 years old and the oldest of who was 74 years old. Their average annual income according to the results was 7.63 million Tomans. Also, the average use of communication media among the operators under study was 2.21 with a standard deviation of 2.25 hours per day. Their average agricultural work experience was 19.82 years with a standard deviation of 11.14 years. The exploited farmers had an average of 7.50 ha of land. In order to prioritize the consequences of improper exploitation of groundwater resources in the agricultural sector in the study area, the coefficient of variation was used. Based on the respondents' views, the results showed that the most important consequences of groundwater resources in the agricultural sector in the study area included «increasing the phenomenon of poverty in the long run» and «difficult farm management» The analysis of the consequences of improper exploitation of groundwater resources in the agricultural sector was the next case of statistical analysis, for which the exploratory factor analysis method was used. KMO coefficient and Bartlett test were used to determine the suitability of the data for factor analysis. The KMO value was 0.874 and the Bartlett test value was 632.895 (p= 0.000) which indicates the suitability of the data for factor analysis. In the meantime, four factors with values higher than 1 were extracted. These four factors explained 76.846% of the total variance. 33.59% of the remaining variance was related to factors that were not identified in this analysis. According to the specific value in Table 2, the first factor had the highest share (4.69) and the last factor (fourth) had the lowest share (2.73) in explaining the total variance.
Conclusion: Increasing groundwater consumption in order to develop the agricultural sector combined with successive droughts has led to a sharp decline in groundwater levels. This has led to landslides and soil erosion. In the current study, some economic and social issues of landslides caused by improper use of groundwater in the western basin of Jazmourian Wetland were investigated. The results of factor analysis summarized the consequences of improper use of groundwater in four environmental, economic, social and psychological factors that could explain more than 75% of the total variance.
 
Keywords

Aprile, M. C. & Fiorillo, D. (2017). Water conservation behavior and environmental concerns: Evidence from a representative sample of Italian individuals. Journal of Cleaner Production, 159, 119-129. Doi: 10.1016/j.jclepro.2017.05.036.
Aslam, S., Aftab, H., Martins, J. M., Mata, M. N., Qureshi, H. A., Adriano, A. M. & Mata, P. N. (2021). Sustainable model: Recommendations for water conservation strategies in a developing country through a psychosocial wellness program. Water, 13(14), 1984. Doi: 10.3390/w13141984.
Bear, J. & Cheng, A. H. D. (2010). Modeling groundwater flow and contaminant transpor. Dordrecht: Springer.
Ebrahimi, A. (2008). Improper exploitation of groundwater resources and its consequences (Case study: Rafsanjan Plain). Iranian Water Resources Research, 4(3), 70-73. (In Persian)
Eskandari Damaneh, H., Zehtabian, G., Salajegheh, A., Ghorbani, M. & Khosravi, H. (2018). Assessing the effect of land use changes on groundwater quality and quantity (Case study: west basin of Jazmoryan Wetland). Journal of Range and Watershed Managment, 71(3), 563-578. Doi: 10.22059/jrwm.2018.257186.1259. (In Persian)
Eskandari Damaneh, H., Eskandari Damaneh, H., Khosravi, H. & Gholami, H. (2019a). Analysis and monitoring of drought using NDVI index (Case study: the west basin of Jaz Murian Wetland). Rangeland, 13(3), 461-475. (In Persian)
Eskndari Dameneh, H., Khosravi, H. & Abolhasani, A. (2019b). Assessing the effect of land use changes on groundwater quality of Zarand Plain using satellite images and geostatistical. Journal of Natural Environmental Hazards, 8(20), 67-82. Doi: 10.22111/jneh.2018.22276.1324. (In Persian)
Feldmeyer, D., Wilden, D., Jamshed, A. & Birkmann, J. (2020). Regional climate resilience index: A novel multimethod comparative approach for indicator development, empirical validation and implementation. Ecological Indicators, 119, 106861. Doi: 10.1016/j.ecolind.2020.106861.
Jia, K., Qiao, W., Chai, Y., Feng, T., Wang, Y. & Ge, D. (2020). Spatial distribution characteristics of rural settlements under diversified rural production functions: A case of Taizhou, China. Habitat International, 102, 102201. Doi: 10.1016/j.habitatint.2020.102201.
Khatibi, S. A., Golkarian, A., Mosaedi, A. & Sojasi Qeidari, H. (2019). Assessment of resilience to drought of rural communities in Iran. Journal of Social Service Research, 45(2), 151-165. Doi: 10.1080/01488376.2018.1479342.
Liu, J., Scanlon, B. R., Zhuang, J. & Varis, O. (2020). Food-energy-water nexus for multi-scale sustainable development. Resources, Conservation Recycling, 154, 104565. Doi: 10.1016/j.resconrec.2019.104565.
Marston, L., Ao, Y., Konar, M., Mekonnen, M. M. & Hoekstra, A. Y. (2018). High‐resolution water footprints of production of the United States. Water Resources Research, 54(3), 2288-2316. Doi: 10.1002/2017WR021923.
Moghaddam, A. R., Ghallehban Tekmedash, M. & Esmaili, K. (2013). Investigation of temporal and spatial trend of water quality parameters in view of weather fluctuations using GIS; Mashhad Plain. Journal of  Water and Soil Conservation, 20(3), 211-225. (In Persian)
Mohammadi, S., Mohammadzadeh, S. & Yazdanpanah, M. (2016). Investigating the effective factors on the intention and behavior of water protection by gardeners in Dashtestan city: A test of the theory of planned behavior. Journal of Agricultural Extension and Education Research, 8(4), 75-89. (In Persian)
Nabiafjadi, S., Fami, H. & Rezvanfar, A. (2014). Strategies for implementation of agricultural water management technologies from Farmers perspective (Case study of Felavarjan City). Water Management in Agriculture, 1(1), 61-67. (In Persian)
Omer, A., Elagib, N. A., Zhuguo, M., Saleem, F. & Mohammed, A. (2020). Water scarcity in the Yellow River Basin under future climate change and human activities. Science of the Total Environment, 749, 141446. Doi: 10.1016/j.scitotenv.2020.141446.
Panahi, M., Malek Mohammadi, I. & Chizari, M. (2013). Analysis of barriers to the application of optimal water resources management in the Iranian agricultural system. Village and Development, 15(4), 23-41. (In Persian)
Safa, L. & Valinia, S. (2020). Factors affecting water resources conservation behaviors among farmers in Zanjan: Application of conservation motivation theory. Iranian Journal of Agricultural Extension and Education, 16(1), 131-150. Doi: 10.22034/iaeej.2020.219912.1501. (In Persian)
Savari, M. & Amghani, M. S. (2022). SWOT-FAHP-TOWS analysis for adaptation strategies development among small-scale farmers in drought conditions. International Journal of Disaster Risk Reduction, 67, 102695. Doi: 10.1016/j.ijdrr.2021.102695.
Savari, M. & Moradi, M. (2022). The effectiveness of drought adaptation strategies in explaining the livability of Iranian rural households. Habitat International, 124, 102560. Doi: 10.1016/j.habitatint.2022.102560.
Savari, M., Eskandari Damaneh, H. & Eskandari Damaneh, H. (2020). Pathology of underground water resources management among local communities in the western basin of Jasmourian Wetland. Journal of Watershed Management Research, 11(21), 84-97. (In Persian)
Savari, M., Abdeshahi, A., Gharechaee, H. & Nasrollahian, O. (2021). Explaining farmers’ response to water crisis through theory of the norm activation model: Evidence from Iran. International Journal of Disaster Risk Reduction, 60, 102284. Doi: 10.1016/j.ijdrr.2021.102284.
Savari, M., Damaneh, H. E. & Damaneh, H. E. (2022). Drought vulnerability assessment: Solution for risk alleviation and drought management among Iranian farmers. International Journal of Disaster Risk Reduction, 67, 102654. Doi: 10.1016/j.ijdrr.2021.102654.
Shahpasand, M. R. & Savari, M. (2011). Barriers to sustainable management of agricultural water resources for educating the farmers in the rural regions (Study in the Qeshlaq Dam area in Kurdistan Province). Environmental Education and Sustainable Development, 5(3), 91-104. (In Persian)
Singh, P. K., Dey, P., Jain, S. K. & Mujumdar, P. P. (2020). Hydrology and water resources management in ancient India. Hydrology and Earth System Sciences, 24(10), 4691-4707.
Taherabadi, F., Motamed, M. K. & Khaledian, M. R. (2016). Analysis of obstacles and problems of agricultural water management in achieving sustainable development (Case: Kangavar and Sahneh counties in Kermanshah Province). Journal of Space Economics and Rural Development, 5(17), 57-70. Doi: 10.18869/acadpub.serd.5.17.57. (In Persian)
Warner, L. A. (2021). Who conserves and who approves? Predicting water conservation intentions in urban landscapes with referent groups beyond the traditional ‘important others’. Urban Forestry & Urban Greening, 60, 127070. Doi: 10.14710/jil.19.2.347-353.
Warner, L. A. & Diaz, J. M. (2021). Amplifying the Theory of Planned behavior with connectedness to water to inform impactful water conservation program planning and evaluation. The Journal of Agricultural Education and Extension, 27(2), 229-253. Doi: 10.1080/1389224X.2020.1844771.
Zhang, Y., Zhou, D., Li, Z. & Qi, L. (2020). Spatial and temporal dynamics of social-ecological resilience in Nepal from 2000 to 2015. Physics and Chemistry of the Earth, Parts A/B/C. 120, 102894. Doi: 10.1016/j.pce.2020.102894.

  • Receive Date 26 April 2022
  • Revise Date 22 May 2022
  • Accept Date 24 May 2022