
Hydrology Course
Master the full spectrum of hydrological science, from the global water cycle to flood risk assessment and watershed simulation. This course equips you with the analytical tools, field methods, and modelling skills that water resource professionals rely on every day. Whether you work in engineering, environmental science, or planning, you will gain the technical depth to solve real-world water challenges.
What you'll learn:
This course covers the core principles and applied methods of hydrology, including precipitation analysis, infiltration modelling, streamflow measurement, and groundwater flow. You will learn to delineate watersheds, run rainfall-runoff models, and interpret flood and drought risk assessments. The curriculum also addresses remote sensing applications, urban stormwater management, and statistical analysis of hydrological data. You will apply industry-standard tools such as HEC-RAS, SWAT, and the FAO Penman-Monteith method. By the end, you will be prepared to contribute to water resource planning, environmental impact studies, and infrastructure design projects.
How you study in practice Hydrology Course
How you practise Hydrology Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Hydrology
Foundations of Hydrology
Lesson 1 • Hydrological Units and Data
Introduces measurement units, scales, and data types used throughout hydrology. Ensures students can interpret and compare hydrological datasets accurately.
Lesson 2 • The Science of Hydrology
Defines hydrology, its subdisciplines, and its role in water resource management. Situates the field within earth sciences and engineering practice.
Lesson 3 • The Global Water Cycle
Examines the continuous movement of water through atmosphere, land, and oceans. Provides the conceptual framework for all subsequent hydrological analysis.
Lesson 4 • Water Properties and States
Covers physical and chemical properties of water relevant to hydrological behaviour. Connects molecular characteristics to large-scale hydrological processes.
Chapter 2HideHide detailsSee detailsPrecipitation and Atmospheric Water
Precipitation and Atmospheric Water
Lesson 1 • Precipitation Measurement
Covers rain gauge types, radar, and satellite-based measurement methods. Addresses instrument siting, errors, and correction procedures.
Lesson 2 • Extreme Precipitation Analysis
Introduces frequency analysis and depth-duration-frequency relationships for design storms. Prepares students to estimate rare rainfall events for engineering applications.
Lesson 3 • Atmospheric Moisture Fundamentals
Explains humidity, atmospheric stability, and moisture transport. Establishes the atmospheric conditions that drive precipitation formation.
Lesson 4 • Spatial Interpolation of Rainfall
Applies statistical and geostatistical methods to estimate areal rainfall from point data. Directly supports watershed-scale water balance calculations.
Lesson 5 • Precipitation Formation Processes
Describes cloud microphysics and the mechanisms that produce rain, snow, and hail. Links atmospheric dynamics to the type and intensity of precipitation.
Chapter 3HideHide detailsSee detailsEvapotranspiration and Soil Moisture
Evapotranspiration and Soil Moisture
Lesson 1 • Actual ET Estimation and Remote Sensing
Applies energy balance models and satellite data to map actual ET over landscapes. Extends point-scale methods to regional water balance assessments.
Lesson 2 • Reference and Potential ET Methods
Compares Penman-Monteith, Hargreaves, and Priestley-Taylor methods for ET estimation. Guides method selection based on data availability and climate context.
Lesson 3 • Soil Moisture Dynamics
Describes soil water retention, field capacity, and wilting point in the vadose zone. Links soil moisture state to infiltration, runoff generation, and ET partitioning.
Lesson 4 • Evaporation from Open Water
Examines energy and aerodynamic controls on lake and reservoir evaporation. Provides methods for estimating open-water evaporation in water balance studies.
Lesson 5 • Transpiration and Plant Water Use
Analyses stomatal control, root uptake, and crop coefficients governing plant water use. Connects plant physiology to field-scale water demand estimation.
Chapter 4HideHide detailsSee detailsInfiltration and Runoff Generation
Infiltration and Runoff Generation
Lesson 1 • Infiltration Theory and Equations
Presents the physics of water entry into soil and classical infiltration models. Establishes the mathematical basis for runoff volume estimation.
Lesson 2 • Curve Number Method
Applies the curve number approach to estimate direct runoff from storm rainfall. Covers CN table selection, adjustments, and limitations for practical use.
Lesson 3 • Runoff Generation Mechanisms
Distinguishes Hortonian overland flow, saturation excess, and subsurface stormflow. Connects soil, topography, and antecedent moisture to runoff type.
Lesson 4 • Overland Flow Hydraulics
Models the movement of water across land surfaces using kinematic wave theory. Bridges runoff generation to channel routing in watershed models.
Chapter 5HideHide detailsSee detailsStreamflow and Hydrograph Analysis
Streamflow and Hydrograph Analysis
Lesson 1 • Streamflow Measurement
Covers velocity-area, dilution, and acoustic methods for discharge measurement. Ensures students can collect and quality-control field streamflow data.
Lesson 2 • Flood Frequency Analysis
Fits probability distributions to annual peak flow series to estimate design floods. Supports infrastructure sizing and flood risk assessment.
Lesson 3 • Low Flow and Baseflow Analysis
Analyses low-flow statistics and flow duration curves for water supply and ecology. Complements flood analysis with dry-season streamflow characterisation.
Lesson 4 • Hydrograph Components
Identifies rising limb, peak, recession, and baseflow components of a storm hydrograph. Provides the analytical foundation for hydrograph separation and modelling.
Lesson 5 • Unit Hydrograph Theory
Derives and applies the unit hydrograph to predict runoff from ungauged storms. Connects rainfall excess to streamflow response for design applications.
Chapter 6HideHide detailsSee detailsGroundwater Hydrology
Groundwater Hydrology
Lesson 1 • Darcy's Law and Groundwater Flow
Applies Darcy's law to one- and two-dimensional groundwater flow problems. Introduces the groundwater flow equation and boundary conditions.
Lesson 2 • Groundwater Recharge and Discharge
Quantifies natural recharge mechanisms and groundwater discharge to streams. Links surface and groundwater systems for integrated water balance analysis.
Lesson 3 • Well Hydraulics and Pumping Tests
Analyses drawdown around pumping wells using Theis and Cooper-Jacob methods. Enables students to design and interpret aquifer pumping tests.
Lesson 4 • Groundwater Quality and Contamination
Introduces solute transport, contaminant plumes, and natural attenuation in aquifers. Connects hydraulic analysis to water quality protection and remediation planning.
Lesson 5 • Aquifer Types and Properties
Classifies confined, unconfined, and leaky aquifers and defines their hydraulic properties. Establishes the physical framework for all groundwater flow analysis.
Chapter 7HideHide detailsSee detailsWatershed Modelling and Simulation
Watershed Modelling and Simulation
Lesson 1 • Model Calibration and Validation
Applies manual and automated calibration techniques and objective function selection. Ensures students can rigorously assess model skill and avoid overfitting.
Lesson 2 • Physically Based Distributed Models
Introduces spatially distributed models that solve governing flow equations on grids. Addresses data requirements, computational demands, and application contexts.
Lesson 3 • Watershed Delineation and Characterisation
Uses digital elevation models to delineate watersheds and extract morphometric parameters. Provides the spatial inputs required for all watershed modelling exercises.
Lesson 4 • Conceptual Rainfall-Runoff Models
Examines lumped and semi-distributed conceptual models and their parameter structures. Guides students in selecting model complexity appropriate to data availability.
Lesson 5 • Scenario Analysis and Model Applications
Uses calibrated models to assess land use change, climate scenarios, and management options. Translates modelling results into actionable water resource decisions.
Chapter 8HideHide detailsSee detailsFlood and Drought Risk Assessment
Flood and Drought Risk Assessment
Lesson 1 • Drought Characterisation and Indices
Defines meteorological, agricultural, and hydrological drought and applies standard indices. Enables consistent drought monitoring and threshold-based early warning.
Lesson 2 • Flood Risk and Damage Assessment
Combines hazard, exposure, and vulnerability to quantify flood risk and expected damages. Supports cost-benefit analysis of flood mitigation investments.
Lesson 3 • Early Warning Systems
Designs threshold-based and model-driven early warning systems for floods and droughts. Integrates real-time data streams with decision protocols for emergency management.
Lesson 4 • Integrated Risk Management Strategies
Evaluates structural and non-structural measures for reducing flood and drought risk. Synthesises hydrological analysis into adaptive water resource management plans.
Lesson 5 • Flood Hazard Mapping
Combines hydraulic modelling with terrain data to delineate flood inundation extents. Produces spatially explicit hazard maps used in land use planning and emergency response.
Your valid completion certificate
This course is for you:
Civil engineers seeking deeper expertise in hydrological analysis and design.
Environmental consultants who assess water-related impacts for development projects.
Geography graduates wanting to transition into water resource management roles.
Urban planners addressing stormwater challenges in growing and changing cities.
Hydrology technicians aiming to move into senior analytical or modelling positions.
Climate scientists expanding their work to include watershed-scale water responses.
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