
Biomass Engineer Course
The Biomass Engineer Course gives you the technical depth and practical tools to design, operate, and develop biomass energy systems from feedstock to financial close. Covering thermochemical and biochemical conversion, plant engineering, and project economics, this programme prepares you to lead real-world bioenergy projects with confidence.
What you will learn:
You will master biomass feedstock classification, supply chain logistics, and preprocessing techniques that ensure reliable fuel quality. The course covers combustion, gasification, pyrolysis, anaerobic digestion, and fermentation processes in technical detail. You will learn to design complete power station layouts, size equipment, and develop process flow diagrams. Financial modelling, permitting, and project financing structures are covered so you can take a project from feasibility to funding. Advanced topics include biorefineries, digital plant management, carbon capture, and emerging conversion technologies. By the end, you will have the engineering and business skills to deliver bankable biomass energy projects.
How you study practically Biomass Engineer Course
How you practise Biomass Engineer 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 • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Biomass Energy
Foundations of Biomass Energy
Lesson 1 • Biomass Feedstock Classification
Categorises feedstocks by source: agricultural, forestry, municipal, and aquatic. Enables engineers to match feedstock properties to appropriate processes.
Lesson 2 • Introduction to Biomass Resources
Defines biomass and its origins in biological material. Connects feedstock diversity to downstream conversion pathway selection.
Lesson 3 • Sustainability and Life Cycle Basics
Introduces life cycle thinking and sustainability criteria for biomass sourcing. Prepares learners to evaluate feedstock choices against environmental benchmarks.
Lesson 4 • Physical and Chemical Properties
Covers moisture content, ash content, calorific value, and lignocellulosic composition. These properties directly govern conversion efficiency and equipment selection.
Lesson 5 • Biomass in the Renewable Energy Mix
Positions biomass relative to solar, wind, and hydro in energy systems. Highlights dispatchability and baseload advantages of biomass power.
Chapter 2HideHide detailsSee detailsBiomass Feedstock Supply Chains
Biomass Feedstock Supply Chains
Lesson 1 • Storage and Handling Systems
Covers silo, pile, and covered storage designs along with fire and biological risk management. Proper storage preserves fuel quality and prevents dry matter losses.
Lesson 2 • Preprocessing and Size Reduction
Examines chipping, grinding, and pelletizing equipment and their energy demands. Proper preprocessing improves handling, storage, and conversion performance.
Lesson 3 • Drying and Moisture Management
Addresses rotary, belt, and fluidized-bed dryers and their integration into supply chains. Moisture reduction is critical for combustion efficiency and storage stability.
Lesson 4 • Transportation and Logistics Optimization
Analyses road, rail, and waterway transport modes and supply chain cost modelling. Learners apply logistics tools to minimise delivered feedstock cost.
Lesson 5 • Feedstock Harvesting and Collection
Covers mechanical and manual harvesting methods for major feedstock types. Links harvest timing and technique to moisture content and quality outcomes.
Chapter 3HideHide detailsSee detailsThermochemical Conversion Processes
Thermochemical Conversion Processes
Lesson 1 • Combustion Fundamentals and Systems
Explains stoichiometry, flame temperature, and excess air in biomass combustion. Covers grate, fluidized-bed, and suspension firing configurations.
Lesson 2 • Pyrolysis and Torrefaction
Distinguishes slow, fast, and flash pyrolysis and their bio-oil, biochar, and gas yields. Torrefaction as a pretreatment to upgrade biomass energy density is also addressed.
Lesson 3 • Heat and Power Generation Integration
Connects thermochemical outputs to steam turbines, gas engines, and combined heat and power systems. Covers efficiency metrics and plant integration strategies.
Lesson 4 • Emissions Control and Flue Gas Treatment
Addresses particulate, NOx, SOx, and CO emissions from thermochemical processes. Learners design flue gas cleaning trains to meet environmental discharge standards.
Lesson 5 • Gasification Technology and Design
Covers updraft, downdraft, and fluidized-bed gasifier designs and syngas composition. Learners learn to match gasifier type to feedstock and end-use application.
Chapter 4HideHide detailsSee detailsBiochemical Conversion Processes
Biochemical Conversion Processes
Lesson 1 • Anaerobic Digester Design and Operation
Covers continuously stirred tank, plug-flow, and high-rate digester configurations. Operational parameters including hydraulic retention time and organic loading rate are detailed.
Lesson 2 • Anaerobic Digestion Principles
Explains hydrolysis, acidogenesis, acetogenesis, and methanogenesis stages of digestion. Links microbial community dynamics to biogas yield and process stability.
Lesson 3 • Lignocellulosic Pretreatment Methods
Examines physical, chemical, and biological pretreatments that improve cellulose accessibility for enzymatic attack. Pretreatment choice affects downstream cost and yield.
Lesson 4 • Enzymatic Hydrolysis and Fermentation
Details cellulase and hemicellulase enzyme systems and their kinetics. Covers simultaneous saccharification and fermentation strategies for bioethanol production.
Lesson 5 • Biogas Upgrading and Biomethane Production
Covers pressure swing adsorption, membrane, and water scrubbing technologies for CO2 removal. Upgraded biomethane can be injected into gas grids or used as vehicle fuel.
Chapter 5HideHide detailsSee detailsBiomass Plant Engineering and Design
Biomass Plant Engineering and Design
Lesson 1 • Equipment Sizing and Selection
Covers sizing methods for boilers, gasifiers, digesters, heat exchangers, and material handling equipment. Proper sizing ensures reliable operation within design capacity.
Lesson 2 • Instrumentation and Control Systems
Covers sensors, actuators, distributed control systems, and safety instrumented systems for biomass plants. Effective control ensures stable operation and regulatory compliance.
Lesson 3 • Capital Cost Estimation and Optimization
Applies factored estimation, vendor quotes, and cost indices to develop plant capital budgets. Cost optimisation techniques reduce investment while maintaining performance targets.
Lesson 4 • Plant Layout and Civil Engineering
Addresses site selection, plot plan development, and civil foundation requirements for biomass facilities. Layout decisions affect safety, maintenance access, and construction cost.
Lesson 5 • Process Flow Diagram Development
Teaches construction of process flow diagrams and piping and instrumentation diagrams for biomass plants. Accurate diagrams are the foundation for detailed engineering and cost estimation.
Chapter 6HideHide detailsSee detailsBiomass Plant Operations and Maintenance
Biomass Plant Operations and Maintenance
Lesson 1 • Plant Startup, Shutdown, and Commissioning
Details pre-commissioning checks, cold and hot startup sequences, and controlled shutdown procedures. Correct procedures prevent equipment damage and ensure safe initial operation.
Lesson 2 • Preventive and Predictive Maintenance
Covers scheduled maintenance intervals, condition monitoring, and vibration and thermographic analysis. Predictive maintenance reduces unplanned downtime and extends equipment life.
Lesson 3 • Health, Safety, and Environmental Compliance
Addresses hazard identification, permit-to-work systems, and environmental discharge monitoring. Compliance protects workers, communities, and operating licences.
Lesson 4 • Troubleshooting Common Process Faults
Provides systematic fault diagnosis for combustion instability, gasifier channeling, and digester upsets. Structured troubleshooting minimises production losses and safety risks.
Lesson 5 • Performance Monitoring and Key Metrics
Establishes key performance indicators including availability, heat rate, and specific energy consumption. Continuous monitoring enables early detection of performance degradation.
Chapter 7HideHide detailsSee detailsBioenergy Project Development
Bioenergy Project Development
Lesson 1 • Permitting and Environmental Impact Assessment
Explains environmental impact assessment processes, stakeholder consultation, and permit application requirements. Timely permitting is critical to project schedule and cost control.
Lesson 2 • Feasibility Study and Site Assessment
Covers pre-feasibility screening, resource assessment, and site characterisation for biomass projects. A rigorous feasibility study reduces development risk and attracts investors.
Lesson 3 • Financial Modelling and Project Economics
Builds discounted cash flow models, sensitivity analyses, and return metrics for biomass projects. Sound financial modelling is essential for investment decisions and lender due diligence.
Lesson 4 • Financing Structures and Risk Allocation
Covers project finance, equity, debt, and grant structures along with risk allocation mechanisms. Appropriate financing structures match project risk profiles to capital sources.
Lesson 5 • Procurement and Contract Management
Addresses EPC, EPCM, and supply contracts along with procurement strategy and contract risk. Effective procurement delivers projects on time and within budget.
Chapter 8HideHide detailsSee detailsAdvanced Biomass Systems and Optimization
Advanced Biomass Systems and Optimization
Lesson 1 • Digitalisation and Smart Plant Management
Applies IoT sensors, machine learning, and digital twins to optimise biomass plant performance. Data-driven management reduces costs and improves reliability.
Lesson 2 • Carbon Capture and Negative Emissions
Examines bioenergy with carbon capture and storage as a negative emissions technology. Learners evaluate BECCS feasibility, costs, and integration with biomass plants.
Lesson 3 • Biorefinery Concepts and Integration
Applies biorefinery principles to co-produce energy, chemicals, and materials from biomass. Integration of multiple conversion pathways maximises feedstock value and economic returns.
Lesson 4 • Advanced Gasification and Syngas Applications
Covers plasma gasification, entrained-flow systems, and Fischer-Tropsch synthesis for liquid fuel production. These technologies extend biomass value beyond heat and power.
Lesson 5 • Process Simulation and Modelling
Uses steady-state and dynamic simulation tools to model biomass conversion processes. Simulation reduces design risk and supports operational optimisation decisions.
Your valid completion certificate
This course is for you:
Mechanical or chemical engineer: seeking specialised expertise in renewable energy systems.
Energy consultant: looking to add bioenergy project evaluation to their service portfolio.
Environmental professional: wanting to move into technical roles within the bioenergy industry.
Agricultural or forestry manager: aiming to unlock the energy value of biomass residues.
Recent engineering graduate: building a competitive edge in the growing bioenergy job market.
Career changer from fossil fuels: transitioning skills towards sustainable energy project work.
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