
Industrial Maintenance and Vibration Analysis Course
Master industrial vibration analysis and predictive maintenance from the ground up. This course takes you from core failure concepts and vibration physics all the way through spectrum analysis, bearing diagnostics, rotor balancing, and full PdM program management. Whether you work on the plant floor or oversee reliability operations, you'll gain the hands-on technical skills that keep critical machinery running.
What your team will master:
You'll build a complete understanding of how industrial equipment fails and how vibration data reveals those failures before they cause costly downtime. The course covers vibration physics, FFT signal processing, sensor selection, and proper measurement techniques. You'll learn to diagnose the most common rotating machinery faults, including imbalance, misalignment, looseness, and bearing defects, using real spectrum and waveform data. Gearbox analysis, oil analysis, thermography, and ultrasound are also covered as complementary diagnostic tools. By the end, you'll know how to build and manage a structured predictive maintenance program, generate professional diagnostic reports, and prepare for internationally recognized vibration analyst certification.
How your team learns in practice Industrial Maintenance and Vibration Analysis Course
How your team practices Industrial Maintenance and Vibration Analysis Course
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Course content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Industrial Maintenance
Foundations of Industrial Maintenance
Lesson 1 • Maintenance Strategy Overview
Compares reactive, preventive, predictive, and proactive maintenance approaches. Provides the strategic framework applied throughout the course.
Lesson 2 • Industrial Equipment and Plant Systems
Introduces rotating and static equipment types found in industrial facilities. Builds vocabulary essential for all subsequent maintenance and analysis topics.
Lesson 3 • Maintenance Safety Fundamentals
Covers lockout/tagout, energy isolation, and permit-to-work systems used during maintenance tasks. Ensures safe work habits before hands-on activities begin.
Lesson 4 • Failure Modes and Failure Consequences
Examines how industrial equipment fails and the operational impact of each failure type. Grounds students in failure thinking before diagnostic techniques are introduced.
Chapter 2HideHide detailsSee detailsPhysics of Vibration and Motion
Physics of Vibration and Motion
Lesson 1 • Basic Vibration Concepts
Defines displacement, velocity, acceleration, frequency, and amplitude as vibration parameters. These parameters are referenced in every subsequent measurement and analysis chapter.
Lesson 2 • Single and Multi-Degree-of-Freedom Systems
Introduces mass-spring-damper models and extends them to multi-degree systems. Provides the analytical basis for interpreting complex machine vibration spectra.
Lesson 3 • Free and Forced Vibration
Distinguishes natural frequency, resonance, and forced vibration in mechanical systems. Understanding resonance is critical for diagnosing structural and rotor problems.
Lesson 4 • Vibration Units and Measurement Conventions
Standardizes the units, scales, and conventions used in vibration measurement and reporting. Prevents misinterpretation of data collected in later chapters.
Chapter 3HideHide detailsSee detailsVibration Measurement Instrumentation
Vibration Measurement Instrumentation
Lesson 1 • Portable Data Collectors and Analyzers
Introduces handheld data collectors, route-based measurement programs, and real-time analyzers. Students practice setting up measurement routes and downloading data.
Lesson 2 • Calibration and Measurement Verification
Covers calibration shakers, reference standards, and field verification checks for measurement accuracy. Calibration ensures data integrity before any diagnostic conclusions are drawn.
Lesson 3 • Vibration Sensor Types and Selection
Compares accelerometers, velocity transducers, and proximity probes by operating range and application. Correct sensor selection directly affects data quality in all analyses.
Lesson 4 • Sensor Mounting Methods and Best Practices
Examines stud, adhesive, magnet, and handheld mounting techniques and their effect on frequency response. Proper mounting is prerequisite to reliable data collection.
Lesson 5 • Signal Conditioning and Data Acquisition
Explains charge amplifiers, ICP power supplies, anti-aliasing filters, and analog-to-digital conversion. These components determine the fidelity of captured vibration signals.
Chapter 4HideHide detailsSee detailsSignal Processing and Spectrum Analysis
Signal Processing and Spectrum Analysis
Lesson 1 • Time Waveform Analysis
Analyzes raw time-domain signals to detect impacts, modulation, and waveform distortion. Time waveform review complements spectrum analysis and reveals transient events.
Lesson 2 • Spectrum Setup and Averaging
Covers frequency span, resolution selection, and averaging methods for stable spectra. Correct setup prevents misdiagnosis caused by noisy or aliased spectra.
Lesson 3 • Advanced Signal Processing Techniques
Introduces enveloping, cepstrum, and order tracking for enhanced fault detection. These techniques extend diagnostic capability beyond standard FFT analysis.
Lesson 4 • Identifying Frequency Components
Teaches identification of 1X, 2X, sub-synchronous, and non-synchronous peaks in spectra. Frequency component recognition is the core skill for all fault diagnosis chapters.
Lesson 5 • Fast Fourier Transform Fundamentals
Explains the FFT algorithm, spectral lines, frequency resolution, and leakage effects. Mastery of FFT settings is required for accurate spectrum-based fault identification.
Chapter 5HideHide detailsSee detailsCommon Machinery Fault Diagnosis
Common Machinery Fault Diagnosis
Lesson 1 • Resonance and Critical Speed Issues
Detects resonance through coast-down tests, bump tests, and operating deflection shapes. Resonance amplifies other faults and must be identified before corrective actions are planned.
Lesson 2 • Imbalance Detection and Classification
Identifies static, dynamic, and couple imbalance from vibration amplitude and phase patterns. Imbalance is the most common rotating machinery fault and the diagnostic baseline.
Lesson 3 • Mechanical Looseness Patterns
Recognizes structural looseness, bearing looseness, and rotating looseness from harmonic series in spectra. Looseness patterns often mask or amplify other faults.
Lesson 4 • Shaft Misalignment Diagnosis
Distinguishes angular, parallel, and combined misalignment using 2X dominance and phase relationships. Misalignment diagnosis requires phase data introduced in earlier chapters.
Lesson 5 • Flow-Induced and Aerodynamic Faults
Identifies vane-pass frequency, blade-pass frequency, and cavitation signatures in pumps and fans. These faults require knowledge of machine geometry introduced in Chapter 1.
Chapter 6HideHide detailsSee detailsRolling Element Bearing Analysis
Rolling Element Bearing Analysis
Lesson 1 • Bearing Geometry and Defect Frequencies
Calculates BPFO, BPFI, BSF, and FTF from bearing geometry and shaft speed. Accurate frequency calculation is the prerequisite for all bearing fault identification.
Lesson 2 • Bearing Lubrication and Installation Effects
Connects lubrication deficiency, over-greasing, and improper installation to specific vibration signatures. Lubrication and installation errors are leading causes of premature bearing failure.
Lesson 3 • Bearing Condition Trending and Alarms
Establishes baseline measurements, statistical alarm bands, and trending methods for bearing health monitoring. Trending converts single measurements into actionable maintenance decisions.
Lesson 4 • Bearing Fault Progression Stages
Maps the four-stage bearing degradation model from ultrasonic detection to catastrophic failure. Stage awareness guides alarm setting and maintenance scheduling decisions.
Lesson 5 • Envelope Analysis for Bearing Faults
Applies high-frequency resonance excitation and demodulation to extract bearing defect frequencies. Envelope analysis detects early-stage faults invisible in standard velocity spectra.
Chapter 7HideHide detailsSee detailsRotor Balancing and Shaft Alignment
Rotor Balancing and Shaft Alignment
Lesson 1 • Shaft Alignment Principles and Methods
Covers rim-and-face, reverse-dial, and laser alignment methods for coupled machinery. Alignment method selection depends on equipment access and required precision.
Lesson 2 • Soft-Foot Detection and Correction
Identifies parallel, angular, and induced soft-foot conditions that undermine alignment quality. Soft-foot must be corrected before final alignment adjustments are made.
Lesson 3 • Two-Plane Field Balancing
Extends balancing to two correction planes for long rotors exhibiting dynamic imbalance. Two-plane balancing requires mastery of single-plane methods and phase measurement.
Lesson 4 • Single-Plane Field Balancing
Executes the four-run and influence coefficient methods for single-plane rotor correction. Single-plane balancing is the entry-level field skill before two-plane work.
Lesson 5 • Balancing Theory and Terminology
Reviews balance grades, residual imbalance limits, and the vector mathematics underlying correction calculations. Theory prepares students for accurate field balancing procedures.
Chapter 8HideHide detailsSee detailsPredictive Maintenance Program Management
Predictive Maintenance Program Management
Lesson 1 • Alarm and Alert Threshold Setting
Establishes overall, band, and bearing-specific alarms using statistical and standards-based methods. Proper alarm setting minimizes false positives and missed fault detections.
Lesson 2 • Fault Reporting and Work Order Integration
Connects vibration findings to computerized maintenance management system work orders. Effective reporting translates diagnostic conclusions into timely corrective actions.
Lesson 3 • Continuous Improvement and Program Maturity
Applies reliability-centered maintenance principles and maturity models to evolve the PdM program. Continuous improvement sustains long-term program value and analyst skill development.
Lesson 4 • Program KPIs and Performance Metrics
Defines mean time between failures, fault detection rate, and cost avoidance metrics for program evaluation. KPIs justify program investment and guide continuous improvement.
Lesson 5 • Building a Vibration Monitoring Route
Designs measurement point locations, directions, and frequencies for a plant monitoring route. Route design determines program coverage and data collection efficiency.
Your valid completion certificate
This course is for you:
Maintenance technician: ready to move beyond reactive repairs into predictive diagnostics.
Reliability engineer: seeking a structured analytical foundation for condition monitoring work.
Plant operator: wanting to understand machinery health before failures disrupt production.
Mechanical inspector: looking to add vibration analysis to an existing inspection skill set.
Career changer: transitioning from general trades into a specialized reliability technology role.
Maintenance supervisor: needing technical depth to lead and evaluate a PdM team effectively.
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