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This research is finished for the partial fulfillment of requirements for she Master of science degree at Thuy Loi University, Ha Noi, Vietmam
(This Master Programme is supported by NICHE-VNM106 project)
</div><span class="text_page_counter">Trang 3</span><div class="page_container" data-page="3">T hereby certify that the work which is being presented in this thesis entitled, “Optimal reservoir operation in dry season: the case study of Cua Dat
fulfillment of the requirement for the award of the Mater of Scie 1 on Integrated Water Resource Management, is an authentic record of my own work eartied out under supervision of Dr, Nguyen Mai Dang.
‘The matter embodied in this thesis has not been submitted by me for the award of any other degree or diploma,
Date: 122014
</div><span class="text_page_counter">Trang 4</span><div class="page_container" data-page="4">Water supply of reservoirs and especially reservoirs used for irrigation, hydropower, aquaculture, navigation, environment...in the dry season are often troubled due to increasing water demands according to the economic development and society, while the flow to the reservoir is limited. In recent years, the depletion of the river flow during the dry season occurs more frequently and at a more intense level This is partly due to forest coveray reduction in the upstream of river basins, and partly due to the effects of climate change.
Hence, computation of the optimum water supply of reservoir for the water demands in the dry season is needed, This study presents the
applying Fuzzy Logi
tial research on Algorithm for optimal operation of water supply in the dry
province. The Cua Dat Reservoir is a multi-purpose reservoir for the following tasks: flood prevention, water supply, iigation, power generation, and environmental flows. In addition, MIKE 11 model is also used to simulate the release from the reservoir to the downstream to evaluate the efficiency of the optimal method.
‘The research used Fuzzy Logic algorithm based on the rule, the principle of "IF - THEN" and built the membership functions for the input variables: water level, inflow to the reservoir, the water demands, and discharge from the reservoir. It is developed for the Fuzzy operating systems [or the Cua Dat Reservoir and is meant 10 determine the optimal discharge process in case of shortage of water in the dry season Inflows, releases and water levels of the Cua Dat Reservoir were collected from actual operation of the reservoir, For water demand of stakeholders, the author determined
while domestic purposes water is obtained smallest rate of water use of the Cua Dat
Finally, the results from optimal method, the reservoir can meet 80% of water demand more than actual release throughout the dry season of 2011-2012. The initial research has been successfull and the results showed that this method can be applied ‘well to the optimal reservoir operation in Vietnam.
Key words: Cua Dat, reservoir operation, optimization, Fuzzy Logic, water rule, MIKE 11 model
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 5</span><div class="page_container" data-page="5">First of all, I would like to give a big thank to all people who have supported and assisted me during the Master ‘Thesis Research. Thanks for their support, ‘encouragement and guidance that allowed me to complete Ì study in time,
Especially, I would like to express my appreciation to Dr. Nguyen Mai Dang, my supervisor, for his unfimited encouragement, guidance, comments and technical supports on the Fuzzy Logic approach and other models as well as the thesis writing
1 would like to thank NICHE-VNM-106 project from the Government of the Netherlands for their financial support during the MSc study in the ThuyLoi University. I thank to Mrs, Hoang Nguyet Minh and Mrs. Vu Thi Thuy Ngan who made a linkage between me and NICHE. I also would like to thank Assoc. Prof. Dr Nguyen Thu Hien, Dean of the Faculty of Water Resources ngineering, for her help and comments during the Master study in the ThuyLoi University
Masi, and Ms
I wish to thank Dr. Ilyas Martine Rutten for their feedback, references and support from the proposal process
1 also wish to thank Mrs. Mariette Van Tilburg, my English teacher, for her ‘comments and support from the final thesis report
1 also want to thank the ThuyLoi University (TLU), Song Chu Irrigation
very useful data sets
“Thanks to all of my colleagues at the HaNoi University of Natural Resources and Environment in Vietnam for your assistance in the last two years. You will always bbe in my mind.
Last but not least, T want to take this opportunity to show my appreciation to my family, my close friends for their inspiration and support throughout my life: this research is simply impossible without you.
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 6</span><div class="page_container" data-page="6">CHAPTER I: INTRODUCTION. 1.1. Background
L2. Problem statement 13, Objectives and Res.
13.1, Objectives of the study
(CHAPTER II: LITERATURE REVIEW ILL. Studies on reservoir operation tự
112. Fuzzy logic theory
113. Overview of hydraulic and hydrological modeling,
IL4. MIKE model " ng optimal theory
TILL, Description of the study area. B TILL.1. Location of the study area B TH L.2. River network, 4 I1L.1,3. Topographical characterises 16 IHL.1.4. Geological, land and vegetable characteristics 18 MIL2. Climate and hydrological condition 18 THL2.1. Climate condition 18 THL2.2. Hydrological condition 23 H13. Population and economic characteristies 23 TI13.1. Population of the study area 23 11.3.2. Economic characteristics 24 UIL4. Description of the Cua Dat Reservoir
CHAPTER IV: DATA AND METHODOLOGY.
IV.1. Data collection. 29
IV.1.1. Meteorological data 30 IV.1.2. Hydrological data 32 IV.1.3. Cua Dat reservoir operation data 34 IV.1.4. Determining total water demand 35 TV.2. Optimal analysis and Fuzzy logic approach for Reservoir operation. 50 TV.2.1. Methods using in optimal reservoir operation. 50 IV.2.2 Objective functions and constrain 33 1V.2.3 Using Fuzzy logic technique to optimize the Cua Dat reservoir operation54 IV.3. Hydraulic and hydrological model setup 62
IV.3.1. Determination of the model inputs. 62 1V.3.2. Model setup 6 IV.3.3. Model calibration and validation 65
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 7</span><div class="page_container" data-page="7">CHAPTER V: RESULTS AND DISCUSSIONS. V.1. Optimizing the Cua Dat reservoir operation V.2. Routing the release to the downstream.
CHAPTER VI: CONCLUSIONS AND RECOMMENDATIONS.
</div><span class="text_page_counter">Trang 8</span><div class="page_container" data-page="8">List of Figures
Figure 2-1: Relationship between the various representations of a model 10 Figure 3-1: Location of study in the Thanh Hoa province in Viet Nam 13 Figure 3-2: Ma ~ Chu River Network in Viet Nam. 16
Figure 3-4: The location of the Cua Dat Reservoir on Ma-Chu river system. 26 Figure 3-5: The main dam of the Cua Dat Reservoir 28 Figure 3-6: The spillway of the Cua Dat Reservoir 28 Figure 3-7: The storage of the Cua Dat Reservoir 28
Figure 3-9: The gate of spillway of the Cua Dat Reservoir 28
Figure 4-1: Distribution of monthly rainfall pattern at Thanh Hoa station 30 Figure 4-2: Distribution of monthly air temperature at Thanh Hoa station 31
Figure 4-3: Distribution of monthly average evaporation at Thanh Hoa station in 2011 & 2012 31 Figure 4-4: Distribution of relative humidity at Thanh Hoa station in 2011 & 2012.32 Figure 4-5: Annual discharge of the Cam Thuy and Cua Dat station 33
Figure 4-7: Monthly average discharge of Turbin of hydropower plant in years of
2011, 2012 and 2013 35
Figure 4-8: Inflow discharge of the Cua Dat reservoir in 2011 and 2012. 35 Figure 4-9: Seasonal period and chart of water requirement of Spring paddy in 2011 39 Figure 4-10; Seasonal period and chart of water requirement of winter paddy in 2011 At
Figure 4-12: Water use structure of whole downstream area of the Cua Dat reservoir in 2011 48 Figure 4-13: General flow chart of optimal reservoir operation in dry season, 52 Figure 4-14: Fuzzy inference system for Fuzzy Mamdani. 56 Figure 4-15: Transformation of input variable to membership value 5 Figure 4-16: Membership function for reservoir level for Fuzzy Mamdani model...58
Figure 4-18: ship function for water demand for Fuzzy Mamdani model...59
Figure 4-20: ‘base for operation of Cua Dat reservoir. 60
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 9</span><div class="page_container" data-page="9">Figure 4-21: Process of application, implication and aggregation 61 Figure 4-22: Hydraulic network of the Ma ~ Chủ river basin 65 Figure 4-23; Observed and simulated hydrograph at Cua Dat station in 2006...67 Figure 4-24: Observed and simulated hydrograph at Cua Dat station in 2008... 68
Figure §-2: Hydrograph of optimal operation at the Xuan Khanh station 75 Figure 5-3: Hydrograph of optimal operation at the Giang station 76
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 10</span><div class="page_container" data-page="10">List of Tables
‘Table 3-1: Distribution of natural areas according to provincial border of the Ma river basin (ha) 14 ‘Table 3-2: Characteristics of river shape of some large tributaries 15
‘Table 3-4: Annual rainfall characteristics 20 ‘Table 3-5: Monthly and annual wind speed at some stations of the Ma river basin (mm/s) 2t ‘Table 3-6: Average monthly temperature for many years at some stations, 2 ‘Table 3-7: Monthly average evaporation of some stations of the Ma River Basin...22
Table 4-1: Kinds of data have been used in the study 29 ‘Table 4-2: Crop distribution of different cultivated area in downstream of the Cua Dat
‘Table 4-3: Plant coefficients of paddy. 39 ‘Table 4-4: Plant coefficients of other plants 39 ‘Table 4-5: Water requirement of Spring paddy in 2011 40
‘Table 4-7: Water requirement of sugar cane in 2011 42 ‘Table 4-8: Monthly water demand of agriculture of whole area in the Cua Dat reservoir downstream in 2011 44 ‘Table 4-9: Water demand of industrial production at downstream of the Cua Dat
‘Table 4-10; Domestic water demand of downstream area 46
‘Table 4-12: Water demands and inflows in ten-day period in 2011, 49 ‘Table 4-13: List of tributary basin on the Ma ~ Chu river basin “ Table 4-14: Results of MIKE L1HD model calibration at Ma-Chu river basin in 2006 70 Table 4-15: Results of MIKE 1IHD model validation at the Ma-Chu river basin in 2008 T2
‘Table 5-1: Flow characteristics at the Chu River downstream using optimal operation 76
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 11</span><div class="page_container" data-page="11">LL. Background
Reservoi
built to supply water, flood control and navigation as the main purposes, after that reservoirs were built for hydropower generation purpose by increasing demand for energy consumption of human.
those purposes need to be satisfied but the capacity of reservoir is limited. For this reason some conflicts may happen among the water users who have other interests and conflicts also may happen in reservoir itself. For hydropower generation, higher storage of water is needed, on the contrary, much water should be relaesed for cultivated areas in dry season especially. Besides this, there are also many other conflicis in user factors such as transportation and hydropower generation, flood
control and environment...
Vietnam has many big river networks with nine major river basins spread along the country. At present, many multipurpose reservoirs were built to serve the socio-economic issues such as Cua Dat, Hoa Binh and Dau Tieng Reservoir..ete. The management and operation for many purposes are really difficult. On the other hand, the operation of each reservoir is a challenge for management and operators, Reservoir ‘operation is needed to balance efficiently interests of water users and satisfy constraint systems aim to get maximum interests. An optimal policy is necessary to accomplish the problem objective and rule curve is one of appropriate methods to determine ‘operation policy of reservoir. Reservoir operation policy spe‹ es the eriteria to retain ‘or release water in or from a reservoir at different times of the year depending upon the inflows and demands.
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 12</span><div class="page_container" data-page="12">Optimization model used the mathematical programming technique to find the best possible solution based on a specific performance function and some physical constraints, Mathematical programming includes several techniques such as dynamic programming (DP), nonlinear programming (NLP), linear programming (LP), genetic algorithms (GAs) and optimal control theory (OCT) (Hirad and Ramamurthy 2000)
Within the development of soft computing technique, optimal technique has been used in number water resources issues. In this thesis, the author will use Fuzzy technique combine with hydraulic model to develop an operation policy for multi-purpose reservoir in an efficient way.
1.2. Problem statement
Ma river basin is located in North-West region of Vietnam, it bordering Laos on the West. The upstream basin is located in Vietnam, the middle basin is located in Laos and the downstream is located in Vietnam, Accordingly, Ma river basin is an
of the Ma River. Itis located in the downstream area (IWRP 2003),
Based on potential water resources of this river system, many kinds of reservoir such as single purpose and multi-purpose were built on the main river of the Ma river system. The Cua Dat Reservoir is one of the biggest projects related to water resource projects in Thanh Hoa province, The Cua Dat Reservoir is ä multi-purpose reservoir. ‘Those purposes include as: to reduce flood peak and protect downstream area due to
[As mentioned above, the Cua Dat Reservoir has purposes are to supply water for some water users such as hydropower generation, agriculture, industry, domestic and environment. However, in dry season the increasing water demand of water us <small>8 is</small>
‘one of the important problems within water shortage in this river basin due to less rainfall will enhance the conflicts among all the factors. In order to balance different
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 13</span><div class="page_container" data-page="13">Water interests and solve the problems which related to using water, the Cua Dat reservoir needs to optimize reservoir operation
13. Objectives and Research questions 13.1. Objectives of the study
“The main objectives ofthis research are
~ To optimize operation of the Cua Dat Reservoir in dry season, Thanh Hoa province by using simulation model (MIKE 11 model) and optimal model (Fuzzy Logie Technique).
‘To provide management recommendations or alternatives and suggest appropriate method of operation of the Cua Dat Reservoir in the Ma ~ Chủ river basin
1.3.2. Research Questions
1. What is Fuzzy logic theory and how to apply fuzzy loại in reservoir operation? 2. How to balance the water demand and water interests of the stakeholders in ‘operation of the Cua Dat Reservoir?
3. What are the objective functions and constraints in operation of the Cua Dat Reservoir?
‘area regarding to current scenarios?
This thesis structure includes those parts as below.
Chapter 1: This chapter disc ses an overview of the study, the problem statement and the objective of the study are presented.
Chapter 2: This chapter reviews several researches of optimal. reservoir operation, Overview of hydrological model and optimization formulation are presented, MIKE L1 model also is briefly introduced inthis chapter.
Chapter 3: This chapter presents natural characteristic, natural conditions of the study as well as population and economic characteristics of the study. Moreover, this chapter also briefly introduces characteristics of the Cua Dat Reservoir and water demand of each water user in downstream area
Chapter 4: This chapter describes all kind of data collection and data analysis Which are used in this study. In this chapter, the author also shows the results of data
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 14</span><div class="page_container" data-page="14">calculation as the input of hydrological modeling and calculating water demand of each, ‘water user in the downstream area. This chapter determines the objective functions and all of constraint systems in the Cua Dat reservoir as well as using optimization model to determine optimal rule curve (standard rule curve). Hen the author also presents MIKE 11 model set up for calibration and validation model and the results of routing flow from the Cua Dat Res voir by MIKE 11 model inthis chapter.
‘Chapter 5: The results of optimal model and simulation model are shown in this chapter through figures and evaluation tables. The chapter also analyzes the results from two models in order to achieve the objectives ofthe study.
Chapter 6: This chapter also focuses on the main performances, conclusions and recommendations for future studies.
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 15</span><div class="page_container" data-page="15">Optimization is scientific field about best choice in some possible alternatives. Optimal theory has been developed and investigated for many years over the word. Optimization has been applied to a lot of fields in human life. Especially, in water resource issues are used optimal theory as one of the effective tools for management and decision making. Furthermore, optimization techniques have become increasingly
management, a lot of researchers have developed reservoir optimal operation during the past four decades using dynamic programming (DP), linear programming (LP), nonlinear programming (NLP), etc (Cheng etal. 2008),
Rama and Sharad (2009) have developed operation policy for multi-purpose reservoir in India using Neuro — 2y technique including Fuzzy Mamdani and
ANFIS (Adaptive Neuro Fuzzy Interactive system). Their research determined ‘operation policy for monsoon period and non-monsoon period of Ramganga reservoir and optimum releases against demands for domestic supply, irrigation and hydropower generation. In other research, Omid et al. (2008) used optimal algorithm (HBMO-Honey Bee Mating Optimization) for single and multi-purpose reservoir to minimize the total present net cost of the system and maximum possible ratio for generate clectricity with installed capacity. In a case study of Hirakud Reservoir in Mahanadi basin, India, D.Nagesh Kumar etal (2009) used Folded Dynamic Programming (FDP) to develop a long -term optimal operation policies for flood control. He shoved that FDP is a new search technique which can take care of all difficulties of other methods to certain extend faced
Long N.L et al. 2007) presented successfully a method as a tool for optimizing ‘operation of reservoir by using a combination of the simulation model and optimal
Hoa Binh Reservoir, in order to neutralize the conflicts in regulating water between flood control and hydropower generation. The authors also organized two main purposes in the flood season, With simulation model, they used MIKE 11 to guide the
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 16</span><div class="page_container" data-page="16">releases of the reservoir system according to the current storage level, the hydro-meteorological conditions, and the time of the year. Afterward, the shuffled complex evolution (St
operation. Babel et al. (2011) analyzed that the tradeoff between hydropower production and environmental flow requirements for the hydropower system and the impact of alternative scenarios of a hydropower system operation on ei gy production and natural flow regime in the La Nga river basin in Vietnam. The authors used Gifferent alternative operation policies to simulate the system by the Range of Variability Approach (RVA) method. Hirad and Ramamurthy (2000) showed a new composite algorithm as an alternative model to solve the problem related to the size of reservoir when operating policy of multi-reservoir systems is applied based on Pontryagin's minimum principle.
Genetic algorithms have been widely applied in optimization to solve water resources system. Cheng et al. (2008) used Chaos Genetic Algorithm (CGA) which ‘based on the Chaos Optimization Algorithm (COA) and Genetic Algorithm (GA) to apply to the global optimum of the Resenbrock function, the Schaffer function and the ‘optimal operation of hydropower station reservoir. M Habe Y. Nagayama (2002)
used Neural Network and Fuzzy System to optimize multi-purpose Dam of flood and non- flood seasons. Base on their results, the fuzzy system is an effective operation system when the major objective is water use, Besides that Network Fuzzy System is effective for flood control. In other research, fuzzy mathematical programming was used in research of Jairaj and Vedula (2001), their study area isa three reservoir system in the upper Cauvery river basin, south China, As the results illustrated that, use of fuzzy linear programming in multi-teservoir system optimization presents a potential alternative to get the steady state solution with less efforts than classical stochastic dynamic programming (Jairaj and Vedula 2001). Panigrahi and Mujumdar (2000) also used Fuzzy Logie in their study to reservoir operation modeling, the case study of the Malapribha irrigation reservoir in Karnataka, India.
Besides that, there are many researches in reservoir operation in Vietnam. They also used many optimization and simulation methods. Nghia TT (2009) used combination method between optimization and simulation model within advanced tools
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 17</span><div class="page_container" data-page="17">such as hydraulic dynamic model MIKE 11 and optimal technique GAMS. The research had three major contents as follow: i) Determining water demand of water users (such as Industry, Agriculture, Navigation and Environment); ii) Determining upstream constraints of system due to periods; i) Propose the operation process for three reservoirs including Thac Ba, Hoa Bình, Tuyen Quang based on optimal calculation in order to ensure that multi-eservoir can supply enough water for water requirements in downstream, Hung N.T et al (2010) proposed models for optimal ‘operation of multiple purpose reservoir. The research proposed three distinct alternatives including: i) Reservoir has mutual purpose for irigation and hydropower, ii) Reservoirs major purpose is hydropower generation and second is irrigation; ii) Reservoir has major purpose is irrigation and hydropower generation is second. Based ‘on models of the authors were built by using Delphi programming language and applied Dynamic programming. The models were applied on Dinh Binh Reservoir (Bình Dinh province) and A Vuong Reservoir (Quang Nam province). In other research, optimization and simulation method were also used in the research of Tuyen ‘MH (2009) for supplying water in dry season of reservoir system on Huong River
dynamic model to control flow in downstream. The author illustrated that
Finally, optimization theories have been applied in a number of water resources issues, especially in reservoir operation. Fuzzy logic technique is one of the useful
ch are common over ‘optimization and simulation models in reservoir operation re
the world. However, the Fuzzy Logic theory has been never applied in any research about reservoir operation in Vietnam. That is reason in this research the Fuzzy theory will be used as an optimization tool to optimize operation policy of Cua Dat Reservoir ‘thoughout objective function and constraints
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 18</span><div class="page_container" data-page="18">11.2. Fuzzy logic theory
‘According to Rama and Sharad 2009, the Fuzzy logic is another area of artificial intelligence. It has been applied successfully in different water resources applications “The key content about fuzzy logic theory is tha it allows for something to be partly this and partly that, rather than having to be either all this or all that. The degree of “belongings
number between 0 and 1.0 (Rama and Sharad 2008).
” to a set or category can be described numerically by a membership
In fuzzy logic theory, variables are “fuzzification” through the use of ‘Membership Function (MF) that defines the membership degree to fuzzy sets. These variables are called lingui variables. A fuzzy subset A of a universe of discourse U is characterized by a membership function j4(x) in the interval [0,1] and represents the ‘grade of membership in A (Rama and Sharad2009)
The fuzzy objectives and constraints are characterized by their membership functions. Membership functions are curves that define how each point in the input space is mapped to a membership value (or degree of membership) between 0 and I. It can be of different forms including triangular, trapezium, Gaussian, B-spline, sigmoid
Fuzzy rule base system can be used as a suitable representation of simple and complex physical systems, The fuzzy rule based model operates on an “IF-THEN” principle, where the “IP” is a vector of fuzzy explanatory variables or premises and “THEN” is fuzzy consequence. Fuzzy logic theory allows the user to capture uncertainties in data. A fuzzy tool is available with the MATLAB software. Two types of fuzzy inference systems including: Mamdani type and Takagi Sugeno type
Fuzzy logic theory also has been used widely in modeling of reservoir ‘operation, According to Panigrahi and Mujumdar 2000 when applying fuzzy theory need (0 follow several steps: (a) Fuzzification of inputs, where the crisp inputs such as the inflow, reservoir storage and release, are transformed into fuzzy variables, (b) Formulation of the fuzzy rule set, based on an expert knowledge bas , (€) Application of a fuzzy operator, to obtain one number representing the premise of each rule, (d) Shaping of the consequence of the rule by implication, and (e) Defuzzification.
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 19</span><div class="page_container" data-page="19">Similarly, the Fuzzy logic will be used in this study for the Cua Dat reservoir ‘operation, And this is the initial research using the Fuzzy Logic in operating reservoir in Vietnam
L3. Overview of hydraulic and hydrological modeling
Any scientific field always need a developed process including monitoring data, recording and measuring dat . simulation and explanation of natural phenomenon. Hydrology is a science of water on the earth. To understand the hydrological events can be described in laboratory by physical models, Based on theory and practice, people have explained clearly the most of hydrological phenomenon such as rainfall, infiltration, evaporation, and simulated them by hydrological models (hydraulic and hydrological models).
Accordingly, hydraulic and hydrological models are tools to address the real hydrological cycle in a simplified way. That kind of models are used for understanding the hydrological processes as well as making hydrological prediction if there are some water resources management and utilization activities are implemented (Tuan 2012) ‘The models are applied several algorithms to provide a quantitative relation between
mathematical models have been developed from 19th century with the simplest rainfall-run off model by Mulvaney (1851) to more sophisticated models such as MIKE Package developed by Danish Hydraulic Institute; Soil and Water Assessment Tools (SWAT), HEC model developed by Hydraulic Engineering Center- USA; SIMONA 2DISD hydrodynamic models by the Dept of Public Works and Delft 2D/3D by WLIDELFT HYDRAULICS. Those models are used for simulation of flow, water quality and sediment transport in estuaries, rivers, inigation system, channels and others bodies. They are fundamental to integrated water management as used for planning and decision making (Tuan 2012)
‘The figure below shows the relationship between the various representations of ‘a model (Van Waveren et al 1999),
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 20</span><div class="page_container" data-page="20">‘The conceptual model is developed on the
T analytically or numerically. The model
jure 2-1: Relationship between the various representations of a model
Hydrological models have been used frequently in water resources planning and. management such as hydrological forecasting, reservoir operation, water quality, research on flood, inundation and drought, designing irrigation system, supporting for the integrated water resources management...ete, Appropriate model selection are essential for each research or project. These selections should based on study objectives, considering input data and output data, expected results and solu
tive tool to solve ‘There are many studies on water field that using model as an eff
problems. According to Piman et al (2012), the authors used HEC and SWAT models to simulate and evaluate flow changes from hydropower development and operation in še San and Sepork of the Mekong basin. Long etal (2007) used MIKE 11 simulation model to set up control strategies for Hoa Binh reservoir operation, They rivers: SeKong,
concluded that this model is an effective tool for optimizing complex system. Bahremand and Smedt (2007) used distributed hydrological modeling (WETSPA) and sensitivity analysis in Torysa Watershed, Slovakia to predict daily discharge value ‘They also presented that a strategy by incorporating a model-independent parameter estimator PEST for automatic calibration and sem ivity analysis,
In this study, MIKE 11 model will be selected to rout the flow, which is released, from the Cua Dat Reservoir operation to the downstream area in order to evaluate or test discharge value within constraint system at control points. MIKE 11 model is a
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 21</span><div class="page_container" data-page="21">strong model. This model has been applied widely in Vietnam for many projects, especially infield of water resources.
114, MIKE model
Many kind of hydraulic models have been applied widely in water resources issues, MIKE 11 model is one of hydraulic models which have used popularly in Vietnam, The MIKE I1 model has been developed by DHI water and environment (Danish hydraulic institute). This model is a professional engineering software package for simulation of flow, water quality and sediment transport in estuaries, rivers, inigation system, channels and others bodies (DHI 2011).
‘The study area has slope topography, short length of river and combine complex rain regime to make flood regime change complicatedly. In this study, the author selects the MIKE 11 model for routing the flow on the Ma-Chu river network. To apply this model for study area, the understanding of model theory plays an important role. ‘The briefly description of the model theory according to DHI user's manual as following (Kmen! 2008)
The most commonly applied Hydro-Dynamie (HD) model is a flood management tool simulating the unsteady flows in branched and looped river networks and quasi two-dimensional flows in floodplains. When using a fully dynamic wave description, MIKE 11 HD module solves the equations of conservation of continuity and momentum (the “Saint Venant’ equations) as bellow’
</div><span class="text_page_counter">Trang 22</span><div class="page_container" data-page="22">‘The MIKE 11 solution of the continuity and momentum equations is based on an implicit finite difference scheme developed by Abbott and Ionescu (1967). The scheme is setup to address any form of the Saint Venant equations — such as kinematic, diffusive, or dynamic. The water level and flow are calculated at each time
step, by solving the continuity equation and the momentum equation using a 6-point
‘Abbot scheme with the mass equation centered on h-points and the momentum
‘The first iteration starts from the results of the previous time step and the second uses the centered values from the first iteration. The number of iterations is user specified
Cross sections are specified in both area and longitudinal location through the
model interpolated interior points located evenly and specified by the user-entered maximum distance. The flow (Q) is then calculated at points \dway between neighboring h-points and at structures (DHI 2011).
‘The hydraulic resistance is based on the friction slope from the empirical equation, Manning's or Chezy, with several ways of modifying the roughness to account for variations throughout the cross-sectional area (DHI 2011).
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 23</span><div class="page_container" data-page="23">IIL. Description of the study area IILL.1. Location of the study area
‘The Ma River basin is located in the northwest region of Vietnam, on the eastern slope of the Truong Son mountain range bordering Laos on the West. The upstream basin is located in Vietnam, the middle basin is located in Laos and the downstream is located in Vietnam. Accordingly, the Ma River basin is an international
~The North borders on Da river basin, Boi river and Vac river basin;
<small>= ‘The West borders on the Mekong river basin;</small>
~The South borders on Hieu and Muc river basin;
<small>~The East borders on the East Sea.</small>
Trình Xuan Manl: MSc Thesis:
</div><span class="text_page_counter">Trang 24</span><div class="page_container" data-page="24">corresponding to 38% (IWRP 2003). The major tributaries of the Ma river system originates from the high mountains of Tuan Giao district which belongs to Lai Chau province, Vietnam. The highest point of the upstream partis 1,500 m, the river flows through the arca of provinces and nation, namely, Son La, Lai Chau, Hoa Binh, Laos and Thanh Hoa, and flows into the East Sea finally via three river mouths, namely Hoi, Lach Truong and Lach Sung. Accordingly, Hoi river mouth is a main mouth of the Ma River. The Ma River has length of 512 Km of which 102 km is located in Laos and in Viet Nam is about 410 Km,
‘Table 3-1: Distribution of natural areas according to provincial border of the Ma river basin (ha)
1 | Laos 1098251 |32.962 824063 — JHigh mountain
1 |DinBien 209475 Ï1969 188452 — ÏHighmoumain 2 |SonLa 477.038 | 29.981 394.115 |High mountain 3— |HoaBinh 177836 |38734 83527 High land 4 | Nghe An 62.810 | 5.000 45,000 |High land
S| Thanh Hoa 823.090 | 194.464 | 588.803 [High land- Delta
(Source: Final engineering report ofthe Cua Dat Reservoir in operation period 2014) .2. River network
‘The Ma river flows on the Northwest ~ Southeast direction, the river direction is similar to tectonic direction, the length of major river is around 512 Km, originates from the highland of Tuan Giao district, flows through some of provinces, enter into ‘Thanh Hoa province at Muong Lat, Quan Hoa location to discharge the East Sea at Hoi
‘The Chu River basin is one of main tributaries of the Ma River in this river basin. It is located in the downstream area. The catchment of Chu River is about 7,500 of which 65% are located in Laos and 95% of Chu river catchment area is in
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 25</span><div class="page_container" data-page="25">mountains (TWRP 200). The Chu River joins the Ma River at Giang confluence which is about at 26 km away from Ma river mouth, The river originates from Sam Nua high mountain which belongs to Laos, with elevation of 2,000 m, this river flows meanderingly in dangerous high mountains such as Phu Nam (2.050 m), Phu Bo (1.455 m), entering into Viet Nam at Nghe An province. The main flow has a length of 325 Km of which 100 Km is located in Vietnam,
In Vietnam’s region, the Chu River flows on narrow and slope valleys with a lot of waterfalls, There are 15 waterfalls from Muong Hình to Cua Dat location. From the coniluence of the Dat River to downstream, the river networks have risen significantly. the Chu River has a protected dyke system and many large tributaries such as the Am River, the Dat River and the Dang River. Among these tributaries, the Am River is a largest one.
‘The Buoi River is a second main tributary of the Ma River. This river originates from Chu Mountain which belongs to Hoa Binh Province. The main river flows towards North-South direction joining the Ma River at Vinh Khang position, The
‘The upstream of the Buoi River includes three major stream, namely Cai, Bin and Cong Hoa streams,
‘The Cau Chay River is originated from Den Mountain flowing towards East-‘West direction though out delta of Ma River south and Chu River north, The total
The table 3-2 shows detailed characteristics of river shape in the Ma-Chu river system as below:
Table 3. of river shape of some large tributaries
Song Pee [me [xe [me Umm [ew
<small>Timmer [ren .lsmlez [se |r [me am [se2 [am [ns faa fers fou [ai fps cost [ose ly</small>
<small>+ sme [sẽ fie [mn [iss five fiee ae foat Ji</small>
<small>+ in spss fir [án fw ae 03 lam luanla L0 [332 fran ais fine an mm ly° heo {me [em [me fais sự foie đán lo7 esss ss five Jars fi fan aaron foie [ieTin an aos oe Lm áp [ase> là aa 0 [ác no Yass] ne Tous lan lap lim</small>
(Source: Final engineering report of The Cua Dat Reservoir in operation period 2014)
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 26</span><div class="page_container" data-page="26">Figure 3-2: Ma ~ Chu River Network in Vietnam. IIL.1.3. Topographical characteristics
‘The Ma river basin spreads widely many regions between Vietnam and Laos. ‘This basin ranges from Truong Son Mountain range to Northern Bay, the topography is strongly fragmented and changing complexly. The main slope directly ranges from West-North to East-South. The topographi al elevation varies from 1.0 m to 2000 m. which can be di ed into three main categories of topography, are described as below:
<small>- High mountain terrain: ‘This area isin the upper part of the river basin: from Ba</small>
‘Thuoe location to upstream of Ma River, and from Cua Dat location to upstream of Chu River. The highest elevation of this topography is Phu Lan Mountain with elevation of 2,275 m. The elevation changes towards North-South direction. The area
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 27</span><div class="page_container" data-page="27">primary on this one. Agricultural land is around 75.968 ha and accounted for 3,26% of natural area, the current area for agriculture is $1,466 ha. There are many river valleys, those are advanced to construct multi-purpose- reservoirs in order (0 supply water for ‘many objectives such as power generation, water supply, flood prevention and control
~ Highland terrain: This arca almost distributes inthe districts such as Thach Thanh, Cam Thuy, \goe Lac, Trieu Son, Tho Xuan in the Thanh Hoa province and Tan Lac, Lac Son, Yen Thuy in Hoa Binh province. The elevation of this terrain varies from 20 m to 150 m, This region has a potential to develop industrial plants, special trees within
are many streams, rivers which have potential to construct reservoirs in order to supply "water for irigation, domestic supply, flood control and environmental improvement.
~ Valley terrain: This terrain lies totally in the Thanh Hoa province, and it has elevation from + 1.0 - +20 m In this terrain, the deltas have been formed due to the development of river network such as Vinh Loe; South of Ma River ~ North of Chu River; South of Len River.
</div><span class="text_page_counter">Trang 28</span><div class="page_container" data-page="28">4. Geological, land and vegetable characteristics
This river basin has some geological and soil characteristics as following:
‘The upstream of the Ma River, the Chu River and Buoi River are mainly Magma-sediment. Sand and gravel concentrate along the rivers.
<small>~ The middle of the Ma river basin: material construction is abundant.</small>
<small>~ The downstream has been generated by Preterozoi Nam Co stratum and Paleozoi</small>
formation developed strongly in Thanh Hoa province where Merozoi sediment is
~ The Ma River Basin has 40/60 types of soils and has formed into LIsoil groups: ‘Sandy soil; Salt soil; Acidic alum soil; Alluvial soil, Bog soil and Permafrost soil; Grey soil; Black soil; Red soil; Humus soil, Valley soil; Leachy soil
~ Thanh Hoa province has 8 types including: Sandy soil; Salt soil; Alluvial soil; Grey bog soil, Black soil, Grey soil, Red soil and Leachy soil.
~ Among 8 soil types in Thanh Hoa province, Alluvial soil is main soil in delta and important soil to form a sustainable agriculture in local region,
B- Vegetable cover characteristics
Vegetable surface on the basin is very abundant in types, categories and is formed by differentiation of climate, geography and human activities.
Geography of the basin occupies an important role in forming the vegetable on this basin: high mountain terrain always has types of vegetation such as wide leat
brushwood, bamboo. Delta terrain is mainly industrial trees, rie, fruit-trees.
Among categories of vegetation, type of secondary vegetation and plantation are. major, Natural vegetation still is existed, but little
11.2.1. Climate condition
‘The Ma river basin spreads on two latitudes and longitudes. Therefore, the climate of region varies on space. The region has the tropical -monsoon climate. There are four seasons in year including spring, summer, autumn and winter. Climate of different regions are spatial and temporal distribution. ‘The upper area is located on
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 29</span><div class="page_container" data-page="29">North-West pattern climate and Chu River is on Central North pattern climate, The others are located on interaction area between above climates (IWRP 2003)
a) Precipitation
Precipitation of the Ma river basin has been divided into three different regions. “The upper part of Ma River has rain regime of Northwest region, the wet season starts carly and finish early than middle region, The Chu River basin lies on Central North rainy region, the wet season comes late in range of 15 ~ 20 days; finish late in range of
10 -15 days than Norther region,
‘The annual average rainfall of the region varies from 1100 to 1860 mm/year, ‘The region has two seasons of rain which are dry season and wet season, According to the statistical data of many years, the wel season of the Ma River upstream frequently begins from May to November and the dry season is from December to April. The rainy season of Chu river basin begins frequently at the end of November to the beginning of December. Total annual rainfall of two seasons is strongly disproportate. ‘The total rainfall of wet season accounts 65 ~ 70% of total annual rainfall, the total rainfall in dry season only accounts 30-35% of total annual rainfall.
‘Table 3-3: Average annual rainfall for many years at some stations of the Ma river basin
‘Maximum rainfall in| Minimum rainfall in
Ximm) | Year | Xtmm) | Year
‘Maximum rainfall in] Minimum rainfall in
No | Stations | Aver. | Max | Year | Min | Year | MavAia
</div><span class="text_page_counter">Trang 31</span><div class="page_container" data-page="31">No | Stations | Aver. | Max | Year | Min | Year | Max/Min
10 cam Thuy | 1668 | 2678 | 1963 | 1014 | i977 26
ĐI Mai Chaw 2876 | 193 | 1120 | 198 26
(Source: Final engineering report ofthe Cua Dat Reservoir in operation period 2014)
is dry and hot South- West wind in April and May. It only occurs 3-4 times in year with 4 -5 days for one.
Table 3-5: Monthly and annual wind speed at some stations
‘There are 02 regions on the Ma river basin with different temperature regime. ‘The highland, cold season starts from November to February, dry season is from March to October. The temperature of this region is similar to North- West region. The delta of Ma river, average annual temperature is higher than the highland, The Winter ends early than North region form 15 - 20 days, the highest temperature is higher than
Average sunshine hours are range from 1,756.7 tol.896.4 hrs/year.
Table 3-6: erage monthly temperature for many years at some stations tations — Ì 3 5 ? lô [it fiz aver.
Total yearly evaporation on the basin is from 872 mm to 925 mm. Minimum daily average is about L3 mm/day, maximum is 46 mmiday. ‘The maximum evaporation happens in May, June and July. The difference of land evaporation and ‘water evaporation AZ = 230 ~ 250 mmiyear.
‘Table 3-7: Monthly average evaporation of some stations of the Ma River Basin tations |1| 2 |3 | 4 {5s [6 |7 |3 | 9 |t0|[ | 12 | aver
[Tuan Giao |579| 692 | 89.5 | 93.2 | 892 | 63.4 | 634 | 558 | 60.1 |597| 530 | 53.4 | 8068
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 33</span><div class="page_container" data-page="33">Flood season on the Ma River often happens from June to October, accounts for 73-74 percentage of total annual water. Dry season is from November to May. Three months which have maximum flow is July, August and September with 53 ~ 56 % in
River, flood season often occurs from July to October, accounts for 52 ~ 60% in total ‘The month that has maximum flow is September with 20 -24 % in total annual flow.
Dry flow occurs in dry season in year. The Ma River Basin has dry season which is from November to May. Besides that dry season spreads 08 months, from October to June on the Chu River Basin, Amount of flow in this season only takes 20 — 35% in total, In general, dry season can be divided into 03 periods: First period includes 02 months (November and December), this period can be seen as middle period between 02 casons, maximum middle dry period is from January to April in
THL3. Population and economic characteristics 11.3.1. Population of the study area
province is about 3,697,227 people. Highland population is 718,000 people. The others
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 34</span><div class="page_container" data-page="34">live in the delta where can be damaged by flood. The natural population growth rate is 08%
Due to current statistical population, there are 13 peoples who live on the Ma river basin, The population of Kinh people is very popular with 80 % in total and the second is Muong people with 10%, other ethnic groups are Thai, Lo Lo, Ha Nhi, ‘Thanh, Meo who live in high mountain region. The: is no border among life area of the peoples. They live together forming a people community on this basin
I1L.3.2. Economic characteristics
Based on statistical data in year of 2007, general economic distribution of the ‘Thanh Hoa province was as follow: Industry was 36.87 %, Service was 3477 %, ture, Forestry and Fishier was 28.36 % of GDP in year of 2007 was 25,689.3 billion VND. The economic growth rate was about 10.5 %.
The major economic activities were paddy rice cultivation, farming of industrial crops, trading, livestock breeding and handicraft
THL4. Description of the Cua Dat Reservoir
<small>+ Position:</small>
‘The Cua Dat reservoir has been constructed on Chu River and in Xuan My ‘Commune, Thuong Xuan District, Thanh Hoa province (Figure 3-4). Ths s the largest reservoir which has maximum storage on the Ma ~ Chu river system with total storage of 1,364 million cubic meter. Some main parameters of the Cua Dat Reservoir are shown in the table 3-8.
<small>-Main objectives of the reservoir:</small>
‘This is a multi-purpose reservoir with following objectives:
= To contro flood in order to protect downstream area with probability flood of 0.6 %. To ensure water level ofthe Chu River at Xuan Khanh station (Tho Xuan district) is lower than 13.71 meter;
= Imigading for 86,862 ha of cultivated land (Including Nam Song Chu region is
54,301 ha and Bae Song Chu ~ Nam Song Ma is 32,831 ha)
<small>~ Generating hydropower with installed capacity of 97 MW</small>
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 35</span><div class="page_container" data-page="35">4o control salt intrusion at Ham Rong Bridge (lower than 1 %e). ‘Table 3-8: Some main parameters ofthe Cua Dat Reservoir
No. [Parameters Units [Values T | Basin parameters
T1__| Reservoir parameters
1 __| Surface area ofthe reservoir at useful water evel km? — |3079
HH | Construction Dam
1___|Susface weir withare vale
2__| Weirerest elevation " 7
1 [Install capacity MW [97
Trinh Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 36</span><div class="page_container" data-page="36">No. _ | Parameters Units | Values 5 No. of turbines Groups | 02
(Source: Final engineering report of The Cua Dai Reservoir in operation period 2014)
The East Sea
Figure 3-4: The location of the Cua Dat Reservoir on the Ma-Chu river system
~ Existing operation rule curve of the Cua Dat Reservoir:
Reservoir operation plays an important role and is one of problems related to ‘water resources planning and management. Generally, after dam construction, an ‘operation policy has been established to help managers giving significant decisions. Operation policy is determined based on water storage, water demand and all of information of inflow with current reservoir status. ‘The single purpose reservoir decides an operation policy which aimed to maximize that purpose interest. The multi purpose reservoir is optimal release allocation in order to balance interest among purposes. Finally, the complex operation is based on amount of objectives and membership functions
‘The Cua Dat Reservoir has been operated since 2012. Annual operation policy of this reservoir is established by Ministry of Agriculture and Rural Development
‘beginning of flood season in 2014, included 7 main chapters with Following concepts (1) General article; (2) Regulated operation in flood season in 2013; (3) Regulated
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 37</span><div class="page_container" data-page="37">operation in dry season in 2014; (4) Emergency operation; (5) Monitoring ‘Meteorological ~ hydrological data; (6) Responsibility and Right; (7) Implementation
Article 9: Before the dry season in 2014, Song Chu Irrigation Company bas to plan to supply water which is based on current storage reservoir, meteo-hydrological forecast, ‘water demand. It should be reported to the Department of Agriculture and Rural Development of Thanh Hoa province, and all of water users inthe system.
Article 10: Regulate water level of reservoir in dry season
1~ During regulated operation, the reservoir elevation must be above or equal the lower rule curve in operation policy.
2+ Lowest reservoir elevation at the end of every month is described as below: TIME ï3UXH ï3UI T2WH 31M T3UNV T3UV | 30NT LWE
Article 11: When the reservoir elevation is above or equal the lowest rule curve, Song Chu Irrigation Company must supply enough water to all of water users according to the water supply planning,
Article 12: Hydropower generation schedule of the Cua Dat and Doc Cay hydropower plant have to follow the irrigation schedule of the Cua Dat reservoir.
Article 13: Operate water supply in some emergency cases
1- When the reservoir elevation is lower than lower rule curve and above inactive level, Song Chu Irrigation Company and water users need to implement water
2+ When the reservoir elevation is equal or lower than inactive level, Song Chu Irrigation Company need to plan a water supply schedule using inactive storage, then, reports the Department of Agriculture and Rural Development, Thanh Hoa province in order to make decision and implement.
‘Some figures that the author collected alter the field survey to the Cua Dat Reservoir in 2014. Those pictures present clearly constructions or parameters related to the Cua Dat Reservoir such as dam, flood valve, spillway, storage, intake tower, and weir... Those pictures are as below:
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 39</span><div class="page_container" data-page="39">IV.1, Data collection
In this thes
Determining water demand, Optimizing reservoir operation and Numerical model. The datasets were used in this study including meteorological data, hydrological data, the ‘Cua Dat Reservoir data and some other information regarding to crops, population and industrial zones. They are listed in the following table:
Table 4-1: Kinds of data were used in the study
Categories Data Sources
(Reservoir’s. water level and storage and Reservoirs water level and surface area relation) Other related data
Song Chu Irrigation
The above data set were accumulated from Vietnamese Institutions and Organizations such as the National center for Meteo-hydrological Service and Song Chu Irrigation Company (Table 4-1). The kinds of data have been established as well as checking, approved by these organizers, Hence it is able to have confidence into those sources. The data collection plays an important role in the thesis calculation, as a
hydraulic model for study area and achieve the better output of this thesis so far:
Trình Xuan Manh MSc Thesis:
</div><span class="text_page_counter">Trang 40</span><div class="page_container" data-page="40">IV.L.1. Meteorological data
In the study area, there are many rainfall stations and meteorological stations. ‘These stations have been located in or close to the basin and have a long time period of ‘observation (from 1980 to 2009). However, the author did not use all of them, it only used some of them due to data quality and location of stations.
In order to define the water demand of each crop and cultivated plants, the author used the meteorological data of the Thanh Hoa station such as rainfall, evaporation, relative humidity, wind speed and sunshine hours within time interval of daily period of 02 years (2011 and 2012). Some of figures of these data are shown as following:
According to the Figure 4-1, we can see that maximum rainfall occurs in the month of September in year of 2011 and 2012. The rainfall in the month of January to May is quite small, The rainfall inereased significantly from June to September and it reaches a peak at September with more than 700 mm in year of 2011, more than 400 in
Monthly rainfall at Thanh Hoa station in year of 201182012
</div>