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Condition Based Monitoring Workshop

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Condition Based Monitoring Workshop

4(12)
8 views
FREE
30 hrs
Next month
English
Enggenious (SAN Techno Mentors)
Enggenious (SAN Techno Mentors)
  • Session recordings included
  • Certificate of completion
  • Foundational Learning
  • Access to Study Materials
Volume pricing for groups of 5+

Why enroll

 The concept of CBM – Condition Based Monitoring of industrial machines and utilities

 Vibration, Balancing, Noise and other parameters of industrial machines and utilities

 Alignment process of rotating industrial machines

 Bearing Selection, assembly, lubrication and maintenance

 RCFA – Root cause Failure Analysis process and its application to Rotating Machines

Is this course for you?

You should take this if

  • You work in Aerospace or Automotive
  • You're a Mechanical / Instrumentation professional
  • You want to build skills in Control Systems, Electrical Maintenance
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You need a different specialisation outside Mechanical
  • You need fully self-paced, on-demand content

Course details

Availability and reliability of assets are more than ever an important issue in today’s environment. The higher the rotational speeds of the rotating machine, it is more susceptible to vibration. The common myth is unbalance reason for vibration and balancing is the only solution. However, the smooth and vibration free operation of a rotating machine depends on various factors.

All the machines in industry need to be maintained for a trouble free service. There are many types of Maintenance strategies to achieve the trouble free service of industrial machines – rotating as well as static.

The design of the rotating system is the starting point. The shaft size, the bearing type and size, the support structure design are some but few other factors. The workshop will cover these aspects in detail.

Course suitable for

Key topics covered

Day 1

 CBM – condition based monitoring

 Introduction to various maintenance strategies

 Introduction to condition monitoring

 Parameters involved in condition monitoring

 Theory behind various parameters

 Vibration in rotating machines

 Visit to the plants

 Discussions on various equipments available, the strategy followed and salient points of the same

Day 2

 Balancing of rotors

 Noise and other parameters

 Measurement techniques

 Advanced and specialised techniques

 Standards and acceptance limits

 Diagnostic charts

 Case studies

 Plant visit and checking the vibrations, noise etc with available instruments

 Videos

Day 3

 Alignment process of rotating machines

 Theory behind alignment

 Detailed discussions on alignment

 Case studies

 Plant visit and hands on practical

 Videos

Day 4

 Bearing systems of rotating machines

 Bearing types and classification

 Bearing sselection / design

 Storage hnandling, assembly and lubrication of bearings

 Failure modes and condition monitoring

 Case studies

 Plant visits to study bearings and its details (size, maintenance etc) used on existing equipment

 Videos

Day 5

 RCFA – Root Cause Failure Analysis and application to bearing failures

 What is failure?

 What is root cause?

 Methods to find root cause

 What is RCFA?

 The “5 why?” And other methods

 Case studies

 Application of RCFA to various failures observed

 Discussions on the failures in recent past, the methods followed to identify the reasons

 Videos

Opportunities that await you!

Skills & tools you'll gain

Control SystemsElectrical MaintenanceIndustry 4.0Mechanical MaintenanceTroubleshooting and repair

Career opportunities

Training details

This is a live course that has a scheduled start date.

Our Alumni Work At

Aristi Projects wood/Bharath Engineering CollegeExpertise MaryMount California UniversityKBR/IRTTGenser Energy Ghana LtdAeroDef Nexus LLPInventor Engineering solutionsC&M Engineering SAEx-Tata Steel , Precision Engineering Division , West Bengal universityAssystem StupEEProCAD tech solutonsATKINSREALISMangalam college of EngineeringSearching for jobGulf Engineering & Consultant Gazprom International LimitedNaAir ProductsJohn R Harris & PartnersSPES Consultancy Tecnimont Spa Abu DhabiNIT SilcharJabalpur Engineering College Wex Technologies Pvt.LtdGARGI MEMORIAL INSTITUTE OF TECHNOLOGYADCETSlimane DridiabdWhatispiping.comHoly Angel UniversityCYIENTSelf EmployedEnergoprojektifluids engineeringairswiftIITBSusoptLIVANCE DISTRIBUTORSDESIGN AID ENGINEERINGURC Construction pvt.ltdCONSERVE SOLUTIONSGismic LLCIIT GuwahatiAditya engineering college Advanced Piping SolutionsIndorama Automotive MNCSPIE Oil and GasCollegiate collegemeChittagong University Of Engineering And technology XYZENGGENIOUS - (SAN Techno Mentors Private Limited)CAE Solutions Pvt.LtdBTPJamia Millia Islamia New delhiJOHN DEEREApplied Technology Solutions

Why people choose EveryEng

Industry-aligned courses, expert training, hands-on learning, recognized certifications, and job opportunities-all in a flexible and supportive environment.

What learners say about this course

ANU VARGHESE
ANU VARGHESE Fresher
Feb 25, 2026

Initially, I wasn’t sure what to expect from this course. The material stayed fairly grounded, especially when walking through open-loop versus closed-loop control beyond the textbook definitions. Examples tied well to things seen in chemical and pharmaceutical plants, like temperature control on a batch reactor and level control on a distillation column, rather than abstract blocks alone. There was also enough overlap with oil & gas and energy utilities to be useful, such as discussing pressure control on separators and basic boiler control logic. One challenge was mentally translating the simplified examples to real systems with dead time, sensor drift, and valve stiction. That gap is where junior engineers usually struggle, and it would have helped to explicitly call out those edge cases earlier. Still, the discussion on why open-loop control occasionally makes sense (maintenance modes, analyzer-based control) matched actual industry practice better than most courses. A practical takeaway was being more systematic about identifying the true process variable and disturbance before defaulting to a PID loop. Thinking at the system level—how one loop affects upstream and downstream units—was reinforced throughout. The content felt aligned with practical engineering demands.

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Muhammad Hussain
Feb 25, 2026

Initially, I wasn’t sure what to expect from this course. Process control is something that shows up everywhere on site, but the theory behind it had always been a bit fragmented for me. The sections on open-loop vs. closed-loop control helped close that gap, especially when tied to real examples like distillation column temperature control in chemical/pharmaceutical plants and boiler drum level control in energy utilities. One area that stood out was how feedback control behaves under disturbances. That directly connects to issues seen on an oil & gas separator pressure loop I’ve worked on, where load changes kept throwing the controller off. A challenge during the course was translating the block diagrams into what actually happens in the DCS screens, especially when multiple control objectives conflict. It took a bit of effort to map theory to noisy plant data. A practical takeaway was learning a more structured way to decide whether a loop even needs tight closed-loop control or if a simpler approach is acceptable. That alone will save time during commissioning and troubleshooting. The content feels immediately usable, and I can see this being useful in long-term project work.

Tarun Kumar Rajak
Tarun Kumar Rajak Piping Engineer
Feb 25, 2026

This course turned out to be more technical than I anticipated. The treatment of open- and closed-loop control went beyond block diagrams and actually tied into situations seen in chemical and oil & gas facilities. Examples around distillation column temperature control and refinery feed flow control felt familiar, especially when discussing interactions between loops rather than treating them in isolation. One challenge was translating the clean theoretical models into messy plant realities. Dead time, sensor drift, and valve stiction were touched on, but it still took effort to mentally map those concepts to something like boiler drum level control in energy utilities, where safety margins dominate tuning decisions. That gap is real in industry, and it showed up here. What worked well was the emphasis on understanding process behavior before jumping to controllers. A practical takeaway was the reminder to question whether a loop even needs to be closed, particularly for slow-moving pharmaceutical batch processes where manual intervention can be more robust. Compared with common industry practices, the course leaned more analytical than procedural, which is useful for system-level thinking. The content felt aligned with practical engineering demands.

Nupurkumar Prajapati
Nupurkumar Prajapati supervisor
Feb 25, 2026

This course turned out to be more technical than I anticipated. The coverage of open-loop versus closed-loop control was straightforward, but the real value came from how those ideas were tied to actual industrial examples. The sections on PID control and feedback loops lined up well with issues seen on chemical and pharmaceutical projects, especially around reactor temperature control and maintaining consistent product quality. Examples around distillation column control also felt familiar from oil and gas work, where small tuning errors can ripple through the whole unit. One challenge was mentally translating the clean block diagrams into what actually happens in a live DCS environment, with noisy signals and slow valves. The course didn’t hide that gap, which was helpful, but it did take some effort to connect theory to practice. A practical takeaway was a clearer approach to choosing control strategies and tuning priorities, especially balancing stability versus responsiveness. That’s already been useful on an energy utilities project dealing with boiler feedwater control. Overall, it felt grounded in real engineering practice.

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