A System Dynamics Approach for Evaluating the Impacts of Water Demand Management Policies in Kheirabad River Basin

Document Type : Research Paper

Authors

1 Ph.D. Student, Agricultural Economics, College of Agriculture, Shiraz University, Shiraz, Iran

2 Professor of Agricultural Economics, College of Agriculture, Shiraz University, Shiraz, Iran

Abstract

Kheirabad river basin is part of Zohre-Jarahi basin which is rich in surface water resources. But unprincipled usage of water and soil resources and also increasing water harvesting under climate change reduced the ability of the basin to respond to water demand. Reducing water storage of the Kowsar Dam as a result of reducing surface water inflows, make a concern to meet the future water demand at the basin. Therefore, the management of water resources in this basin is essential. In this study, we used a systemic approach to identify the factor affecting water supply and demand along with feedback and interaction between different elements for studying the behavior of the water resources system over time. The results of the study showed that the available surface water decrease and groundwater balance will be negative. Also, population growth and development of the agricultural sector will lead to an increasing trend in water demand and an increase in the surface and groundwater resources withdraw. Under these circumstances, water scarcity index is increasing and the water system sustainability index is smaller than the unit. The results also revealed that under business as usual (B.a.U) condition, the vulnerability index and maximum deficit of the water system are 0.119 and 0.213, and the reliability and sustainability indices are 0.50 and 0.703, respectively. Therefore, according to the results, the probability of not meeting the increasing demand of water, thus increasing the population and the level of crop cultivation, is predicted by using available water resources during the study period. Therefore, it is necessary to apply demand-side and supply-side management policies in Kheirabad River Basin. Among water demand-side management policies, increasing irrigation efficiency and changing crop pattern, by increasing the sustainability index from 0.703 to 1, are the most efficient policies. Besides, decreasing per capita water consumption plays an important role in increasing the water sustainability index in the basin.

Keywords


  1. Amisigo, B. A., McCluskey, A., & Swanson, R. (2015). Modeling impact of climate change on water resources and agriculture demand in the Volta Basin and other basin systems in Ghana. Sustainability, 7, 6957–6975.
  2. Arnell, N. W., Vuuren, D. P., & Isaac, M. (2011). The implications of climate policy for the impacts of climate change on global water resources. Global Environmental Change, 21, 592-603.
  3. Assaraf, O.B.Z., & Orion, N. (2005). Development of system thinking skills in the context of earth system education. Journal of Research in Science Teaching, 42, 518-560.
  4. Atherton, J. T. (2013). A System Dynamics Approach to Water Resources and Food Production in the Gambia (Doctoral Dissertation, the University of Western Ontario).
  5. Awotwi, A., Kumi, M., Jansson, P. E., Yeboah, F., & Nti, I. K. (2015). Predicting hydrological response to climate change in the White Volta catchment, West Africa. Journal of Earth Science & Climatic Change, 6, 1-7.
  6. Balali, H., & Viaggi, D. (2015). Applying a System Dynamics Approach for Modeling Groundwater Dynamics to Depletion under Different Economical and Climate Change Scenarios. Water, 7, 5258-5271.
  7. Bharati, L., Rodgers, C., Erdenberger, T., Plotnikova, M., Shumilov, S., Vlek, P., & Martin, N. (2008). Integration of economic and hydrologic models: Exploring conjunctive irrigation water use strategies in the Volta Basin. Agricultural Water Management, 95, 925-936.
  8. Clifford Holmes, J. K., Slinger, J. H., Musango, J. K., Brent, A. C., & Palmer, C. G. (2014). Using system dynamics to explore the water supply and demand dilemmas of a small South African municipality. International Conference of the System Dynamics Society (pp. 1-21). System Dynamics Society.
  9. Doll, P. (2002). Impact of Climate Change and Variability on Irrigation Requirements: a Global Perspective. Climatic Change, 54, 269-293.

10. FAO. (2011). Climate Change, Water and Food Security. FAO Water Report, Food and Agricultural Organization. Rome, Italy.

11. Fisher, G., Tubiello, F., van Velthuizen, H., & Wiberg, D. (2006). Climate change impacts on irrigation water requirements: Effects of mitigation, 1990–2080. Technological Forecasting and Social Change, 74, 1083–1107.

12. Ford, F. A. (1999). Modeling the environment: an introduction to system dynamics models of environmental systems. Island Press.

13. Forrester, J. W. (1961). Industrial dynamics. Journal of the Operational Research Society, 48, 1037-1041.

14. Forrester, J.W. (1994). System dynamics, systems thinking, and soft OR. System Dynamics Review, 10, 245-256.

15. Gohari, A., Mirchi, A., & Madani, K. (2017). System Dynamics Evaluation of Climate Change Adaptation Strategies for Water Resources Management in Central Iran. Water Resources Management, 31, 1413-1434.

16. Hashimoto, T., Stedinger, J. R., and Loucks, D. P. (1982). “Reliability, resiliency and vulnerability criteria for water resource system performance evaluation.” Water Resour. Res., 18(1), 14–20.

17. Hassanzadeh, E., Elshorbagy, A., Wheater, H., & Gober, P. (2014). Managing water in complex systems: An integrated water resources model for Saskatchewan, Canada. Environmental Modelling & Software, 58, 12-26.

18. Hjorth, P., & Bagheri, A. (2006). Navigating towards sustainable development: a system dynamics approach. Futures, 38, 74–92.

19. Kotir, J. H., Smith, C., Brown, G., Marshall, N., & Johnstone, R. (2016). A system dynamics simulation model for sustainable water resources management and agricultural development in the Volta River Basin, Ghana. Science of the Total Environment, 573, 444-457.

20. Langsdale, S., Beall, A., Carmichael, J., Cohen, S., & Forster, C. (2007). An exploration of water resources futures under climate change using system dynamics modeling. Integrated Assessment, 7, 1-17.

21. Loucks, D. P. (1997). “Quantifying trends in system sustainability.” Hydrol.Sci. J., 42(4), 513–530.

22. Madani, K. (2010). Towards sustainable watershed management: Using system dynamics for integrated water resources planning. VDM Publishing.

23. Madani, K., & Mariño, M. A. (2009). System dynamics analysis for managing Iran’s Zayandeh-Rud river basin. Water Resources Management, 23, 2163-2187.

24. McCartney, M., Forkuor, G., Sood, A., Amisigo, B., Hattermann, F., & Muthuwatta, L. (2012). The water resource implications of changing climate in the Volta River Basin (Vol. 146). IWMI.

25. McMahon, T. A., Adeloye, A. J., and Sen-Lin, Z. (2006). “Understanding performance measures of reservoirs.” J. Hydrol. (Amsterdam), 324 (2006) 359–382.

26. Meadows, D. H., Meadows, D. L., Randers, J., & Behrens, W. (1972). The limits to growth Universe Books. New York.

27. Mirchi, A., Watkins Jr, D., & Madani, K. (2010). Modeling for watershed planning, management, and decision making. Watersheds: Management, restoration and environmental impact (pp. 1-25). Nova Science Publishers, Inc.

28. Richmond, B. (1993). Systems thinking: critical thinking skills for the 1990s and beyond. System Dynamic Review, 9, 113–133.

29. Sandoval-Solis, S., McKinney, D. C., & Loucks, D. P. (2010). Sustainability index for water resources planning and management. Journal of Water Resources Planning and Management137(5), 381-390.

30. Simonovic, S. P. (2012). Managing water resources: methods and tools for a systems approach. Routledge.

31. Simonovic, S. P., & Fahmy, H. (1999). A new modeling approach for water resources policy analysis. Water Resources Research, 35,295–304.

32. Sterman, J. D. (2000). System dynamics modeling: tools for learning in a complex world. California Management Review43, 8-25.

33. Sušnik, J., Vamvakeridou-Lyroudia, L. S., Savić, D. A., & Kapelan, Z. (2012). Integrated System Dynamics Modelling for water scarcity assessment: Case study of the Kairouan region. Science of the Total Environment, 440, 290-306.‏

34. Varian, H. R. (1996). Intermediate Microeconomics: A Modern Approach, WW Norton&Company. New York.

35. Wu, G., Li, L., Ahmad, S., Chen, X., & Pan, X. (2013). A dynamic model for vulnerability assessment of regional water resources in arid areas: a case study of Bayingolin, China. Water Resources Management, 27, 3085-3101.

36. Yang, C. C., Chang, L. C., & Ho, C. C. (2008). Application of system dynamics with impact analysis to solve the problem of water shortages in Taiwan. Water Resources Management, 22, 1561-1577.

Zhuang, Y. (2014). A system dynamics approach to integrated water and energy resources management