
Global Warming Course
Understand the full scope of global warming — from atmospheric physics to international policy — in one rigorous course. You'll master the science behind climate change, analyse real-world impacts, and evaluate the strategies shaping our response. This course equips you with the knowledge and analytical tools that today's climate-informed professionals rely on.
What you will learn:
You will build a solid foundation in Earth's climate system, greenhouse gas dynamics, and the evidence confirming human-caused warming. You will learn to interpret climate model projections and read observational data from satellites, ice cores, and ocean sensors. The course covers the full range of impacts on ecosystems, coastal communities, food security, and public health. You will analyse mitigation technologies, from renewable energy to carbon capture, and evaluate their real costs and trade-offs. Finally, you will examine climate finance, adaptation planning, and the international agreements driving global climate action.
How you study practically Global Warming Course
How you practise Global Warming Course
For companies looking to train their teams
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 • 37 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Earth's Climate System
Foundations of Earth's Climate System
Lesson 1 • Structure of the Atmosphere
Examines atmospheric layers, composition, and vertical temperature profiles. Provides the physical context needed to understand greenhouse gas behaviour.
Lesson 2 • The Carbon Cycle Overview
Maps carbon flows among atmosphere, oceans, land, and biosphere. Grounds students in the biogeochemical system that regulates CO₂ concentrations.
Lesson 3 • Natural Climate Variability Drivers
Identifies volcanic eruptions, solar cycles, and orbital variations as natural forcings. Distinguishes natural baselines from anthropogenic signals.
Lesson 4 • Solar Energy and Earth's Energy Balance
Covers incoming solar radiation, albedo, and outgoing infrared energy. Establishes the energy budget concept central to all warming discussions.
Chapter 2HideHide detailsSee detailsThe Greenhouse Effect Explained
The Greenhouse Effect Explained
Lesson 1 • Feedback Mechanisms Amplifying Warming
Analyses water vapour, ice-albedo, and cloud feedbacks that amplify or dampen initial forcing. Introduces climate sensitivity as a key parameter.
Lesson 2 • Key Greenhouse Gases and Sources
Profiles CO₂, methane, nitrous oxide, and fluorinated gases by source and concentration. Connects emission sources to industrial and agricultural activities.
Lesson 3 • Radiative Forcing and Global Warming Potential
Defines radiative forcing in watts per square metre and global warming potential metrics. Enables quantitative comparison of different greenhouse gases.
Lesson 4 • Mechanism of the Greenhouse Effect
Explains molecular absorption and re-emission of infrared radiation. Links atmospheric physics to observed surface temperature increases.
Chapter 3HideHide detailsSee detailsEvidence and Measurement of Global Warming
Evidence and Measurement of Global Warming
Lesson 1 • Paleoclimate Proxies and Ice Cores
Uses ice cores, tree rings, and sediment records to reconstruct past climates. Places modern warming in a multi-thousand-year context.
Lesson 2 • Surface Temperature Records
Examines global land and ocean temperature datasets and their construction. Teaches quality control, homogenisation, and trend interpretation.
Lesson 3 • Satellite and Remote Sensing Data
Introduces satellite-based temperature, sea-level, and ice-extent measurements. Demonstrates how remote sensing extends observational coverage globally.
Lesson 4 • Ocean Heat Content and Sea-Level Rise
Quantifies heat stored in oceans and its contribution to sea-level rise. Connects thermal expansion and ice melt to coastal risk.
Lesson 5 • Attributing Warming to Human Activity
Applies detection and attribution methods to separate human from natural signals. Builds the scientific case for anthropogenic causation.
Chapter 4HideHide detailsSee detailsClimate Modelling and Projections
Climate Modelling and Projections
Lesson 1 • Types of Climate Models
Distinguishes energy balance models, regional models, and coupled general circulation models. Explains trade-offs between complexity and computational cost.
Lesson 2 • Interpreting Projected Temperature Ranges
Guides reading of probability distributions and likely ranges in projection reports. Prepares students to communicate uncertainty to non-specialist audiences.
Lesson 3 • Model Validation and Uncertainty
Covers hindcasting, ensemble methods, and sources of model uncertainty. Teaches critical evaluation of model skill and limitations.
Lesson 4 • Emission Scenarios and Pathways
Introduces shared socioeconomic pathways and representative concentration pathways. Connects societal choices to modelled temperature outcomes.
Chapter 5HideHide detailsSee detailsImpacts of Global Warming on Natural Systems
Impacts of Global Warming on Natural Systems
Lesson 1 • Ocean Warming and Acidification
Covers thermal stratification, coral bleaching, and CO₂-driven pH decline. Connects ocean chemistry changes to marine food web disruption.
Lesson 2 • Extreme Weather Event Attribution
Applies probabilistic attribution to link warming to heat waves, floods, and storms. Builds capacity to interpret event attribution studies.
Lesson 3 • Hydrological Cycle Intensification
Explains how warming accelerates evaporation, precipitation extremes, and drought. Connects hydrological shifts to freshwater availability.
Lesson 4 • Impacts on Terrestrial Ecosystems
Examines species range shifts, phenological changes, and forest dieback. Links temperature and precipitation changes to biodiversity loss.
Lesson 5 • Cryosphere Changes
Quantifies Arctic sea ice loss, glacier retreat, and ice sheet dynamics. Establishes links between cryosphere decline and global sea-level rise.
Chapter 6HideHide detailsSee detailsSocioeconomic and Human Health Impacts
Socioeconomic and Human Health Impacts
Lesson 1 • Human Health Consequences
Covers heat-related mortality, vector-borne disease expansion, and air quality degradation. Links climate variables to public health burden.
Lesson 2 • Climate Justice and Equity Dimensions
Examines disproportionate impacts on low-income and vulnerable communities. Frames equity as central to effective climate response design.
Lesson 3 • Food and Water Security Risks
Analyses crop yield projections, fishery declines, and freshwater stress under warming. Connects biophysical impacts to food system vulnerability.
Lesson 4 • Coastal and Urban Vulnerability
Evaluates sea-level rise exposure, urban heat islands, and infrastructure risk. Identifies populations and assets most at risk from warming.
Lesson 5 • Economic Costs and Damage Functions
Introduces integrated assessment model damage functions and sectoral cost estimates. Enables comparison of mitigation costs against projected damages.
Chapter 7HideHide detailsSee detailsMitigation Strategies and Technologies
Mitigation Strategies and Technologies
Lesson 1 • Transportation and Industry Decarbonisation
Examines electrification of transport, green hydrogen, and industrial process changes. Addresses hard-to-abate sectors requiring deep innovation.
Lesson 2 • Carbon Capture and Removal Technologies
Evaluates direct air capture, bioenergy with carbon capture, and enhanced weathering. Assesses the role of carbon removal in net-zero pathways.
Lesson 3 • Land Use and Agricultural Mitigation
Analyses reforestation, soil carbon sequestration, and livestock emission reduction. Connects land management to both mitigation and food security.
Lesson 4 • Mitigation Cost and Abatement Curves
Uses marginal abatement cost curves to rank mitigation options by cost-effectiveness. Builds analytical skills for comparing mitigation portfolios.
Lesson 5 • Energy System Decarbonisation
Covers renewable energy deployment, grid modernisation, and fossil fuel phase-out pathways. Establishes energy transition as the largest mitigation lever.
Chapter 8HideHide detailsSee detailsAdaptation, Policy, and Global Governance
Adaptation, Policy, and Global Governance
Lesson 1 • Net-Zero Targets and Transition Pathways
Analyses national and corporate net-zero commitments and their credibility criteria. Prepares students to assess transition plans against science-based benchmarks.
Lesson 2 • Climate Finance and Carbon Markets
Examines public climate finance flows, green bonds, and carbon pricing instruments. Connects financial mechanisms to mitigation and adaptation investment.
Lesson 3 • Sectoral Adaptation Strategies
Applies adaptation principles to agriculture, water, health, and coastal sectors. Demonstrates sector-specific planning tools and decision frameworks.
Lesson 4 • Adaptation Planning Principles
Introduces risk-based adaptation frameworks, no-regret options, and maladaptation risks. Connects vulnerability assessment to actionable adaptation plans.
Lesson 5 • International Climate Agreements
Traces the evolution of global climate agreements and nationally determined contributions. Evaluates ambition gaps between pledges and required emission reductions.
Your valid completion certificate
This course is for you:
Environmental studies student: wants rigorous grounding in climate science fundamentals.
Sustainability professional: needs deeper scientific literacy to strengthen their work.
Journalist or communicator: covers climate topics and wants to report with accuracy.
Policy analyst: works on energy or environment and must evaluate climate evidence.
Career changer: moving into climate roles and building foundational expertise fast.
Curious citizen: follows climate news closely and wants to understand the science.
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