
Industrial Water Treatment Course
Master every stage of industrial water treatment, from raw water chemistry to zero-liquid-discharge system design. This course gives engineers and plant operators the technical depth to protect boilers, cooling towers, and wastewater systems while cutting costs and meeting discharge regulations. If you work with industrial water, this is the training that closes the gaps.
What you will learn:
You will build a complete, working knowledge of industrial water treatment across eight core subject areas. The course covers water chemistry fundamentals, physical and membrane filtration, ion exchange, cooling water programs, boiler feedwater conditioning, and industrial wastewater treatment. You will also learn how to design full treatment trains, apply regulatory compliance frameworks, troubleshoot system failures using root cause analysis, and evaluate emerging technologies such as electrochemical treatment and digital monitoring. By the end, you will be equipped to optimize treatment programs, reduce chemical costs, and support water reuse and sustainability goals at your facility.
How you study in a practical way Industrial Water Treatment Course
How you practice Industrial Water Treatment Course
For companies who want 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Industrial Water Systems
Fundamentals of Industrial Water Systems
Lesson 1 • Industrial Water System Overview
Maps the major industrial water system categories: cooling, boiler, process, and wastewater. Establishes context for treatment strategies covered in later chapters.
Lesson 2 • Key Water Quality Parameters
Introduces turbidity, silica, iron, manganese, and microbial indicators. Each parameter links directly to specific treatment challenges addressed throughout the course.
Lesson 3 • Water Sources and Quality Variability
Examines surface water, groundwater, and municipal supply characteristics. Understanding source variability is essential for selecting appropriate pretreatment steps.
Lesson 4 • Water Chemistry Essentials
Covers pH, hardness, alkalinity, dissolved solids, and conductivity. These parameters form the baseline for all treatment decisions in this course.
Chapter 2HideHide detailsSee detailsWater Treatment Chemistry and Reactions
Water Treatment Chemistry and Reactions
Lesson 1 • Scaling and Corrosion Chemistry
Analyzes Langelier Saturation Index, Ryznar Index, and electrochemical corrosion. These indices guide inhibitor dosing strategies introduced in Chapter 5.
Lesson 2 • Oxidation and Reduction in Treatment
Covers redox reactions used to remove iron, manganese, and contaminants. Connects oxidant selection to downstream filtration and disinfection steps.
Lesson 3 • Coagulation and Flocculation Chemistry
Explains charge neutralization, sweep floc, and polymer bridging mechanisms. Provides the chemical basis for physical separation processes in Chapter 3.
Lesson 4 • Solubility and Precipitation Reactions
Explains solubility product constants and conditions triggering precipitation. Directly supports understanding of scale formation and chemical softening processes.
Lesson 5 • Disinfection Chemistry Principles
Covers chlorine speciation, CT concept, and alternative disinfectant chemistry. Establishes the chemical foundation for disinfection system design in Chapter 6.
Chapter 3HideHide detailsSee detailsPhysical and Mechanical Treatment Processes
Physical and Mechanical Treatment Processes
Lesson 1 • Membrane Filtration Technologies
Introduces microfiltration, ultrafiltration, nanofiltration, and reverse osmosis. Membrane selection depends on target contaminant size and system recovery goals.
Lesson 2 • Granular Media Filtration
Explains single-media, dual-media, and multimedia filter design and operation. Filtration removes suspended solids before membrane or ion exchange systems.
Lesson 3 • Degasification and Aeration
Explains packed tower, spray, and vacuum degasifiers for CO2, H2S, and O2 removal. Gas removal prevents corrosion and improves downstream treatment efficiency.
Lesson 4 • Screening and Sedimentation
Covers bar screens, fine screens, and gravity settling principles. These are the first physical barriers in most industrial water treatment trains.
Lesson 5 • Adsorption and Activated Carbon
Covers granular and powdered activated carbon for organics and chlorine removal. Adsorption protects downstream membranes and ion exchange resins from fouling.
Chapter 4HideHide detailsSee detailsIon Exchange and Softening Systems
Ion Exchange and Softening Systems
Lesson 1 • Demineralization System Configurations
Covers two-bed, mixed-bed, and continuous electrodeionization (CEDI) demineralizer designs. Configuration choice depends on required purity and operational cost targets.
Lesson 2 • Ion Exchange System Troubleshooting
Diagnoses resin fouling, channeling, organic contamination, and regeneration failures. Systematic troubleshooting minimizes downtime and extends resin service life.
Lesson 3 • Selective Ion Removal Processes
Introduces nitrate, fluoride, arsenic, and heavy metal selective resins. Selective removal addresses specific contaminants without full demineralization.
Lesson 4 • Ion Exchange Resin Fundamentals
Covers strong and weak acid cation and anion resin types and their selectivity. Resin selection determines achievable effluent quality and regeneration requirements.
Lesson 5 • Water Softening System Design
Explains sodium cycle softening, service flow rates, and regeneration with brine. Softening is the primary hardness removal method for boiler and cooling systems.
Chapter 5HideHide detailsSee detailsCooling Water Treatment Programs
Cooling Water Treatment Programs
Lesson 1 • Biological Fouling Control
Addresses planktonic and sessile bacteria, algae, and biofilm control strategies. Biological fouling reduces heat transfer and creates conditions for under-deposit corrosion.
Lesson 2 • Corrosion Control in Cooling Water
Explains anodic and cathodic inhibitors, passivation films, and pH management. Corrosion control protects heat exchangers, towers, and piping from metal loss.
Lesson 3 • Cooling System Types and Dynamics
Compares once-through, open recirculating, and closed cooling system designs. System type determines concentration cycles, blowdown rates, and treatment program selection.
Lesson 4 • Cooling Program Monitoring and Control
Covers online analyzers, corrosion coupons, deposit analysis, and program audits. Continuous monitoring enables proactive adjustments before system performance degrades.
Lesson 5 • Scale Inhibition in Cooling Systems
Covers phosphonate, polyacrylate, and threshold inhibitor chemistries for scale control. Scale prevention maintains heat transfer efficiency and reduces energy consumption.
Chapter 6HideHide detailsSee detailsBoiler Water Treatment and Steam Systems
Boiler Water Treatment and Steam Systems
Lesson 1 • Boiler System Components and Operation
Describes feedwater heaters, deaerators, drums, and condensate return systems. Understanding system layout is prerequisite to applying treatment at the correct control points.
Lesson 2 • Internal Chemical Treatment Programs
Covers phosphate, chelant, polymer, and oxygen scavenger programs for boiler water. Internal treatment compensates for pretreatment limitations and maintains clean heat transfer surfaces.
Lesson 3 • Steam Purity and Carryover Control
Explains mechanical and vaporous carryover causes and control methods. Steam purity directly affects process quality and turbine or heat exchanger integrity.
Lesson 4 • Feedwater Quality Requirements
Defines hardness, oxygen, iron, silica, and conductivity limits by boiler pressure. Feedwater quality targets drive pretreatment system design covered in Chapters 3 and 4.
Lesson 5 • Condensate System Treatment
Addresses carbonic acid and oxygen corrosion in condensate return lines. Neutralizing and filming amines protect condensate systems and reduce makeup water demand.
Chapter 7HideHide detailsSee detailsIndustrial Wastewater Treatment
Industrial Wastewater Treatment
Lesson 1 • Biological Treatment Processes
Covers activated sludge, sequencing batch reactors, and moving bed biofilm reactors. Biological processes reduce BOD, COD, and nutrients to meet effluent standards.
Lesson 2 • Wastewater Characterization and Regulations
Covers flow measurement, pollutant load calculation, and discharge permit requirements. Accurate characterization is the foundation for selecting appropriate treatment technologies.
Lesson 3 • Sludge Management and Disposal
Covers thickening, dewatering, stabilization, and disposal options for treatment sludge. Proper sludge management reduces disposal costs and ensures regulatory compliance.
Lesson 4 • Physical and Chemical Treatment
Explains equalization, neutralization, chemical precipitation, and dissolved air flotation. These unit operations remove suspended and dissolved pollutants before biological treatment.
Lesson 5 • Advanced Effluent Polishing
Introduces tertiary filtration, activated carbon, and advanced oxidation for trace contaminants. Polishing achieves reuse-quality effluent or meets stringent discharge limits.
Chapter 8HideHide detailsSee detailsSystem Design, Optimization, and Management
System Design, Optimization, and Management
Lesson 1 • Instrumentation and Process Control
Introduces online sensors, control loops, SCADA integration, and alarm management. Automated control reduces chemical waste, improves consistency, and enables remote monitoring.
Lesson 2 • Chemical Feed System Design
Covers metering pump selection, chemical storage, dilution, and injection point design. Reliable chemical feed is critical to maintaining treatment program performance.
Lesson 3 • Performance Auditing and Optimization
Explains KPI development, benchmarking, root cause analysis, and continuous improvement cycles. Systematic auditing identifies efficiency gaps and justifies capital investment decisions.
Lesson 4 • Treatment Train Design Principles
Applies mass balance, process sequencing, and redundancy planning to full system design. Integrates all unit operations from Chapters 3 through 7 into coherent treatment trains.
Lesson 5 • Water Reuse and Zero Liquid Discharge
Covers recycle strategies, brine concentration, evaporation, and crystallization for ZLD. Water reuse reduces freshwater intake and minimizes wastewater discharge volumes.
Your valid completion certificate
This course is for you:
Plant operators managing boiler or cooling water systems daily.
Environmental engineers stepping into industrial water compliance roles.
Process engineers expanding their expertise into water treatment design.
Maintenance technicians troubleshooting recurring scaling or corrosion problems.
Recent chemistry graduates pursuing careers in industrial water management.
Water treatment sales professionals needing stronger technical credibility.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can switch chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

Top trainings
FAQs
Who is Dedika?
Is the certificate valid in the Philippines?
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




















