
Total Productive Maintenance (TPM) Course
Total Productive Maintenance is the proven system that eliminates unplanned downtime, reduces defects, and maximizes equipment output. This course gives you the tools, frameworks, and metrics to implement TPM from the shop floor to the leadership team. Whether you're a maintenance technician, engineer, or operations manager, you'll leave with a practical roadmap to measurable results.
What you will learn:
This course covers the complete TPM framework, from the eight pillars and OEE measurement to autonomous maintenance, planned maintenance systems, and focused improvement methods. You will learn how to calculate and analyze OEE, lead kaizen events, build quality maintenance matrices, and apply root cause analysis tools. The curriculum also addresses predictive maintenance technologies, lean manufacturing integration, safety pillar deployment, and digital tools including CMMS and IoT monitoring. You will develop the skills to design a TPM deployment roadmap, manage change across departments, and build a culture that sustains equipment excellence long term. Every module connects directly to real manufacturing and operational challenges.
How you study in practice Total Productive Maintenance (TPM) Course
How you practice Total Productive Maintenance (TPM) 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 Total Productive Maintenance
Foundations of Total Productive Maintenance
Lesson 1 • TPM vs. Traditional Maintenance Approaches
Contrasts reactive, preventive, and predictive maintenance with TPM. Clarifies where TPM adds unique value beyond conventional programs.
Lesson 2 • Organizational Roles in TPM
Maps responsibilities across operators, technicians, engineers, and managers. Establishes accountability structures needed before implementation begins.
Lesson 3 • History and Evolution of TPM
Traces TPM from preventive maintenance roots to the JIPM model. Provides context for why TPM emerged as a competitive manufacturing strategy.
Lesson 4 • Core Philosophy and Principles
Defines the zero-loss mindset and employee ownership culture central to TPM. Links philosophy to measurable operational outcomes.
Lesson 5 • Business Case for TPM Implementation
Quantifies the financial and operational benefits of TPM adoption. Equips learners to justify TPM investment to leadership.
Chapter 2HideHide detailsSee detailsThe Eight Pillars of TPM
The Eight Pillars of TPM
Lesson 1 • Overview of the Eight-Pillar Framework
Presents the eight pillars as a unified architecture supporting equipment excellence. Shows how pillars interact and reinforce one another.
Lesson 2 • Autonomous and Planned Maintenance Pillars
Covers operator-led care and scheduled technician activities as the TPM foundation. Distinguishes daily checks from periodic overhaul planning.
Lesson 3 • Early Equipment Management and Office TPM
Introduces design-stage loss prevention and the extension of TPM principles to administrative functions. Broadens TPM scope beyond the shop floor.
Lesson 4 • Education, Training, and Safety Pillars
Addresses skill-building programs and the creation of accident-free workplaces. Demonstrates how competency and safety underpin all other pillars.
Lesson 5 • Quality Maintenance and Focused Improvement
Explains how equipment condition directly drives product quality and how focused teams eliminate chronic losses. Links both pillars to defect reduction.
Chapter 3HideHide detailsSee detailsOverall Equipment Effectiveness Measurement
Overall Equipment Effectiveness Measurement
Lesson 1 • Data Collection Methods for OEE
Covers manual logging, sensor-based capture, and SCADA integration for OEE data. Ensures data accuracy and consistency across shifts.
Lesson 2 • The Six Big Losses Framework
Categorizes the six major equipment losses that reduce OEE. Enables precise loss attribution before improvement efforts begin.
Lesson 3 • OEE Components and Formula
Defines availability, performance, and quality rate and shows how they combine into OEE. Establishes the mathematical foundation for all subsequent analysis.
Lesson 4 • Setting OEE Improvement Targets
Guides target-setting using baseline data, benchmarks, and business priorities. Connects OEE goals to production and financial objectives.
Lesson 5 • OEE Analysis and Visualization
Applies Pareto charts, trend graphs, and loss trees to OEE data. Translates raw numbers into actionable visual insights for teams.
Chapter 4HideHide detailsSee detailsAutonomous Maintenance Implementation
Autonomous Maintenance Implementation
Lesson 1 • Lubrication Management by Operators
Covers lubrication types, intervals, and operator-level application methods. Reduces lubrication-related failures through disciplined operator routines.
Lesson 2 • Cleaning as Inspection Technique
Reframes cleaning as a diagnostic activity that reveals hidden defects. Trains operators to detect abnormalities during routine cleaning tasks.
Lesson 3 • One-Point Lessons and Visual Standards
Introduces one-point lessons as concise, visual job aids for autonomous tasks. Standardizes knowledge transfer at the point of use.
Lesson 4 • Seven Steps of Autonomous Maintenance
Walks through each step from initial cleaning to full self-management. Provides a structured roadmap operators follow to build ownership progressively.
Lesson 5 • Auditing and Sustaining Autonomous Maintenance
Establishes audit checklists and review cycles to verify and sustain AM progress. Prevents regression and drives continuous step advancement.
Chapter 5HideHide detailsSee detailsPlanned Maintenance Systems
Planned Maintenance Systems
Lesson 1 • Equipment Criticality and Risk Assessment
Ranks equipment by failure impact using criticality and risk matrices. Prioritizes maintenance resources toward highest-consequence assets.
Lesson 2 • Maintenance Strategy Selection
Compares time-based, condition-based, and reliability-centered strategies. Matches the right strategy to each equipment class and failure mode.
Lesson 3 • Maintenance Scheduling and Work Orders
Builds master maintenance schedules and standardized work order processes. Ensures tasks are planned, assigned, and completed on time.
Lesson 4 • Maintenance Performance Tracking
Defines KPIs such as MTBF, MTTR, and planned maintenance compliance. Uses trend data to continuously improve the maintenance program.
Lesson 5 • Spare Parts and Inventory Management
Establishes stocking strategies for critical and consumable spare parts. Balances inventory cost against the risk of stockout-driven downtime.
Chapter 6HideHide detailsSee detailsFocused Improvement and Loss Elimination
Focused Improvement and Loss Elimination
Lesson 1 • Root Cause Analysis Methods
Applies Why-Why analysis, fishbone diagrams, and PM analysis to find true root causes. Prevents recurrence by addressing causes rather than symptoms.
Lesson 2 • Countermeasure Development and Testing
Guides teams from root cause to verified countermeasure through structured testing. Ensures solutions are robust before full-scale implementation.
Lesson 3 • Standardizing and Sustaining Improvements
Embeds gains into standards, procedures, and training to prevent regression. Closes the improvement cycle with horizontal deployment across similar equipment.
Lesson 4 • Loss Identification and Prioritization
Uses OEE data and loss trees to identify and rank improvement opportunities. Focuses team energy on the highest-impact losses first.
Lesson 5 • Kaizen Event Planning and Execution
Structures focused improvement events from charter to follow-up. Builds team capability to deliver measurable results within short timeframes.
Chapter 7HideHide detailsSee detailsQuality Maintenance and Defect Prevention
Quality Maintenance and Defect Prevention
Lesson 1 • Defect Rate Reduction Tracking
Establishes metrics and visual boards to track defect reduction progress. Sustains quality gains through regular review and accountability routines.
Lesson 2 • Quality Maintenance Matrix Construction
Builds the QM matrix linking equipment conditions to quality defects. Provides a visual tool for prioritizing condition-based quality controls.
Lesson 3 • Equipment-Quality Relationship Analysis
Maps how equipment parameters affect product quality characteristics. Establishes the analytical foundation for quality maintenance activities.
Lesson 4 • Statistical Process Control in TPM
Applies control charts to monitor equipment-driven process variation. Triggers maintenance action before quality defects reach the customer.
Lesson 5 • Poka-Yoke and Error-Proofing Devices
Designs mistake-proofing mechanisms that prevent defects at the source. Reduces reliance on inspection by making errors physically impossible or immediately detectable.
Chapter 8HideHide detailsSee detailsTPM Program Deployment and Sustainability
TPM Program Deployment and Sustainability
Lesson 1 • Building a Self-Sustaining TPM Culture
Embeds TPM behaviors into daily routines, recognition systems, and leadership practices. Transitions TPM from a project to a permanent operational discipline.
Lesson 2 • TPM Training and Competency Development
Designs role-specific training curricula and competency assessment frameworks. Ensures every level of the organization can execute its TPM responsibilities.
Lesson 3 • TPM Deployment Roadmap Design
Structures a phased implementation plan from preparation through maturity. Aligns milestones with organizational capacity and business priorities.
Lesson 4 • Leadership Engagement and Change Management
Secures executive sponsorship and manages resistance during TPM rollout. Builds the coalition needed to sustain long-term cultural change.
Lesson 5 • TPM Audit and Maturity Assessment
Uses structured audits and maturity models to measure TPM program health. Identifies gaps and drives continuous program improvement.
Your valid completion certificate
This course is for you:
Maintenance technician: ready to move beyond reactive repair work.
Manufacturing engineer: seeking structured methods to reduce equipment-driven losses.
Plant operations manager: responsible for hitting production targets with aging assets.
Continuous improvement specialist: looking to anchor lean initiatives in equipment reliability.
Reliability engineer: wanting a proven framework to formalize condition-based strategies.
Facilities or fleet manager: applying equipment care principles outside traditional factory settings.
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