
Methanization Training
Master every stage of methanization — from biological fundamentals and digester engineering to biogas upgrading, digestate valorization, and project economics. This training gives engineers, agronomists, and energy professionals the technical depth and practical tools to design, operate, and develop profitable biogas facilities. If you work in renewable energy, waste management, or agriculture, this is the most complete methanization program available.
What your team will master:
You will build a thorough understanding of anaerobic digestion biochemistry, feedstock selection, and digester design principles. You will learn how to collect, upgrade, and inject biomethane into the grid or convert it to combined heat and power. The course covers digestate characterization, agronomic application, and regulatory compliance so you can manage every output stream responsibly. You will also develop plant operation skills, including start-up procedures, process upset diagnosis, and SCADA-based automation. Financial modeling, permitting, and feasibility study methods are included so you can take a project from concept to investment decision. Health, safety, environmental performance, and maintenance management round out your competency set.
How your team learns in practice Methanization Training
How your team practices Methanization Training
Professionals from these companies study at Dedika









Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Anaerobic Digestion
Fundamentals of Anaerobic Digestion
Lesson 1 • Introduction to Methanization
Defines methanization, its role in organic waste valorization, and its place in the circular economy. Establishes the conceptual framework for all subsequent technical content.
Lesson 2 • Biochemical Reaction Pathways
Explains the sequential biochemical stages converting complex organics into biogas. Provides the chemical basis for understanding process control decisions.
Lesson 3 • Feedstock Characterization Basics
Introduces organic matter composition metrics used to evaluate feedstock suitability. Prepares students to assess substrate quality before digester loading.
Lesson 4 • Key Process Parameters
Identifies temperature, pH, alkalinity, and nutrient ratios as critical control variables. Connects parameter ranges to stable digester operation.
Lesson 5 • Microbiology of Anaerobic Digestion
Covers the four microbial consortia responsible for hydrolysis, acidogenesis, acetogenesis, and methanogenesis. Links microbial activity to process performance outcomes.
Chapter 2HideHide detailsSee detailsFeedstock Selection and Preparation
Feedstock Selection and Preparation
Lesson 1 • Co-digestion Strategy and Mixing
Explains how blending multiple feedstocks improves nutrient balance and biogas yield. Guides students in designing co-digestion recipes using mass-balance calculations.
Lesson 2 • Categories of Organic Feedstocks
Surveys agricultural, municipal, industrial, and energy-crop feedstocks by composition and availability. Establishes a classification framework for feedstock sourcing decisions.
Lesson 3 • Pre-treatment Technologies
Examines mechanical, thermal, chemical, and biological pre-treatment methods that enhance substrate digestibility. Links pre-treatment choice to energy balance and cost trade-offs.
Lesson 4 • Feedstock Quality Assessment
Covers laboratory and field methods for measuring organic content, moisture, and inhibitor levels. Enables accurate prediction of biogas yield before plant loading.
Lesson 5 • Storage and Handling Protocols
Addresses safe storage conditions, hygienization requirements, and material handling equipment. Prevents feedstock degradation and cross-contamination before digestion.
Chapter 3HideHide detailsSee detailsDigester Design and Technology
Digester Design and Technology
Lesson 1 • Hydraulic and Organic Loading
Defines hydraulic retention time and organic loading rate as primary sizing parameters. Demonstrates how loading decisions affect biogas output and process stability.
Lesson 2 • Digester Sizing and Scale-up
Applies mass-balance and energy-balance methods to size digesters from pilot to full scale. Addresses scale-up challenges including mixing uniformity and heat distribution.
Lesson 3 • Mixing and Agitation Systems
Reviews mechanical, hydraulic, and gas-recirculation mixing technologies and their energy demands. Connects adequate mixing to uniform temperature and substrate distribution.
Lesson 4 • Digester Configuration Types
Compares continuously stirred tank, plug-flow, fixed-dome, and floating-drum reactor designs. Matches each configuration to feedstock type and operational context.
Lesson 5 • Heating and Insulation Systems
Covers heat exchanger types, insulation materials, and heat recovery strategies for maintaining target temperature regimes. Quantifies thermal energy requirements for digester sizing.
Chapter 4HideHide detailsSee detailsBiogas Collection and Upgrading
Biogas Collection and Upgrading
Lesson 1 • Biogas Measurement and Monitoring
Introduces flow meters, gas analyzers, and data-logging systems for continuous biogas quality tracking. Links measurement accuracy to process control and regulatory compliance.
Lesson 2 • CO2 Removal and Biomethane Production
Compares pressure swing adsorption, water scrubbing, membrane separation, and amine scrubbing for CO2 removal. Evaluates each technology by methane recovery rate and energy consumption.
Lesson 3 • Gas Collection Infrastructure
Covers gas-tight covers, piping materials, pressure management, and condensate removal systems. Ensures safe and efficient transport of biogas from digester to end use.
Lesson 4 • Biogas Composition and Properties
Characterizes methane, CO2, H2S, water vapor, and trace compounds in raw biogas. Establishes quality benchmarks that drive upgrading technology selection.
Lesson 5 • Desulfurization Technologies
Examines biological, chemical, and adsorption methods for H2S removal from raw biogas. Protects downstream equipment and meets quality thresholds for energy conversion.
Chapter 5HideHide detailsSee detailsDigestate Management and Valorization
Digestate Management and Valorization
Lesson 1 • Digestate Regulatory Compliance
Explains quality certification schemes, record-keeping obligations, and land-application restrictions for digestate. Ensures students can navigate compliance requirements in their operational context.
Lesson 2 • Digestate Treatment and Stabilization
Covers composting, stripping, evaporation, and drying processes that reduce volume and improve storability. Prepares students to select treatment trains based on end-use requirements.
Lesson 3 • Solid-Liquid Separation
Reviews centrifuge, screw-press, and belt-filter technologies for separating digestate into fiber and liquid fractions. Enables targeted nutrient management and transport cost reduction.
Lesson 4 • Digestate Composition and Quality
Analyzes nutrient content, organic matter, pathogens, and heavy metals in liquid and solid digestate fractions. Establishes quality criteria for safe agricultural application.
Lesson 5 • Agronomic Application of Digestate
Addresses application rates, timing, and methods to maximize crop nutrient uptake while minimizing environmental losses. Connects digestate quality data to field management decisions.
Chapter 6HideHide detailsSee detailsPlant Operation and Process Control
Plant Operation and Process Control
Lesson 1 • Process Upset Diagnosis and Response
Identifies symptoms of acidification, foaming, scum formation, and inhibition, and prescribes corrective actions. Builds diagnostic reasoning skills for rapid process recovery.
Lesson 2 • Automation and SCADA Systems
Introduces programmable logic controllers, sensor networks, and SCADA dashboards for automated plant control. Connects automation capabilities to reduced labor demand and improved consistency.
Lesson 3 • Routine Monitoring and Sampling
Establishes daily, weekly, and monthly monitoring routines for biogas yield, pH, VFA, and alkalinity. Provides the data foundation for informed process control decisions.
Lesson 4 • Shutdown and Restart Protocols
Covers planned and emergency shutdown procedures, digester preservation during downtime, and safe restart sequences. Minimizes microbial community disruption and equipment damage.
Lesson 5 • Start-up and Inoculation Procedures
Details inoculum sourcing, gradual loading ramp-up, and microbial community establishment protocols. Prevents early process failure during the critical commissioning phase.
Chapter 7HideHide detailsSee detailsEnergy Recovery and Utilization
Energy Recovery and Utilization
Lesson 1 • Emerging Energy Carriers from Biogas
Introduces power-to-gas, hydrogen production, and synthetic natural gas pathways using biogas as feedstock. Positions students to evaluate next-generation energy valorization options.
Lesson 2 • Biomethane Grid Injection
Covers gas quality requirements, compression, odorization, and metering for injecting biomethane into gas distribution networks. Links upgrading quality to grid operator acceptance criteria.
Lesson 3 • Plant Energy Self-Sufficiency
Calculates parasitic energy loads from pumps, mixers, and heating systems and identifies efficiency improvement measures. Maximizes net energy export as a key economic performance indicator.
Lesson 4 • Combined Heat and Power Generation
Examines gas engine, gas turbine, and Stirling engine CHP units for simultaneous electricity and heat production. Quantifies electrical and thermal efficiency for plant energy balance calculations.
Lesson 5 • Biomethane as Vehicle Fuel
Addresses compressed and liquefied biomethane production, fueling station design, and vehicle compatibility. Evaluates transport fuel pathways against grid injection alternatives.
Chapter 8HideHide detailsSee detailsProject Development and Economics
Project Development and Economics
Lesson 1 • Capital and Operating Cost Estimation
Breaks down civil, mechanical, electrical, and commissioning capital costs and recurring operating expenses. Enables accurate financial modeling for investor and lender presentations.
Lesson 2 • Financial Modeling and Investment Metrics
Applies net present value, internal rate of return, and payback period calculations to methanization projects. Trains students to perform sensitivity analysis on key financial assumptions.
Lesson 3 • Feasibility Study Framework
Structures the technical, environmental, and market components of a methanization feasibility study. Provides a replicable methodology for evaluating project viability before investment.
Lesson 4 • Revenue Streams and Incentive Schemes
Identifies electricity tariffs, biomethane certificates, gate fees, and digestate sales as revenue sources. Explains how support mechanisms affect project bankability and return on investment.
Lesson 5 • Permitting and Stakeholder Engagement
Maps the environmental, planning, and operational permit processes and identifies key stakeholder groups. Prepares students to manage community acceptance and regulatory approval timelines.
Your valid completion certificate
This course is for you:
Environmental engineer: ready to expand into renewable gas project development.
Farm operator: exploring organic waste valorization as an additional revenue stream.
Energy consultant: needing technical depth to advise biogas investment decisions confidently.
Municipal waste manager: seeking structured knowledge to evaluate anaerobic treatment options.
Career changer: transitioning from conventional energy into the growing bioeconomy sector.
Agronomist: wanting to understand digestate quality and its safe field application.
Related Courses
FAQ
Who is Dedika?
Is the certificate valid in the United States?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course



















