Accendo Reliability

Your Reliability Engineering Professional Development Site

  • Home
  • About
    • Contributors
    • About Us
    • Colophon
    • Survey
  • Reliability.fm
  • Articles
    • CRE Preparation Notes
    • NoMTBF
    • on Leadership & Career
      • Advanced Engineering Culture
      • ASQR&R
      • Engineering Leadership
      • Managing in the 2000s
      • Product Development and Process Improvement
    • on Maintenance Reliability
      • Aasan Asset Management
      • AI & Predictive Maintenance
      • Asset Management in the Mining Industry
      • CMMS and Maintenance Management
      • CMMS and Reliability
      • Conscious Asset
      • EAM & CMMS
      • Everyday RCM
      • History of Maintenance Management
      • Life Cycle Asset Management
      • Maintenance and Reliability
      • Maintenance Management
      • Plant Maintenance
      • Process Plant Reliability Engineering
      • RCM Blitz®
      • ReliabilityXperience
      • Rob’s Reliability Project
      • The Intelligent Transformer Blog
      • The People Side of Maintenance
      • The Reliability Mindset
    • on Product Reliability
      • Accelerated Reliability
      • Achieving the Benefits of Reliability
      • Apex Ridge
      • Field Reliability Data Analysis
      • Metals Engineering and Product Reliability
      • Musings on Reliability and Maintenance Topics
      • Product Validation
      • Reliability by Design
      • Reliability Competence
      • Reliability Engineering Insights
      • Reliability in Emerging Technology
      • Reliability Knowledge
    • on Risk & Safety
      • CERM® Risk Insights
      • Equipment Risk and Reliability in Downhole Applications
      • Operational Risk Process Safety
    • on Systems Thinking
      • Communicating with FINESSE
      • The RCA
    • on Tools & Techniques
      • Big Data & Analytics
      • Experimental Design for NPD
      • Innovative Thinking in Reliability and Durability
      • Inside and Beyond HALT
      • Inside FMEA
      • Institute of Quality & Reliability
      • Integral Concepts
      • Learning from Failures
      • Progress in Field Reliability?
      • R for Engineering
      • Reliability Engineering Using Python
      • Reliability Reflections
      • Statistical Methods for Failure-Time Data
      • Testing 1 2 3
      • The Manufacturing Academy
  • eBooks
  • Resources
    • Accendo Authors
    • FMEA Resources
    • Glossary
    • Feed Forward Publications
    • Openings
    • Books
    • Webinar Sources
    • Podcasts
  • Courses
    • Your Courses
    • Live Courses
      • Introduction to Reliability Engineering & Accelerated Testings Course Landing Page
      • Advanced Accelerated Testing Course Landing Page
    • Integral Concepts Courses
      • Reliability Analysis Methods Course Landing Page
      • Applied Reliability Analysis Course Landing Page
      • Statistics, Hypothesis Testing, & Regression Modeling Course Landing Page
      • Measurement System Assessment Course Landing Page
      • SPC & Process Capability Course Landing Page
      • Design of Experiments Course Landing Page
    • The Manufacturing Academy Courses
      • An Introduction to Reliability Engineering
      • Reliability Engineering Statistics
      • An Introduction to Quality Engineering
      • Quality Engineering Statistics
      • FMEA in Practice
      • Process Capability Analysis course
      • Root Cause Analysis and the 8D Corrective Action Process course
      • Return on Investment online course
    • Industrial Metallurgist Courses
    • FMEA courses Powered by The Luminous Group
    • Foundations of RCM online course
    • Reliability Engineering for Heavy Industry
    • How to be an Online Student
    • Quondam Courses
  • Calendar
    • Call for Papers Listing
    • Upcoming Webinars
    • Webinar Calendar
  • Login
    • Member Home
  • Barringer Process Reliability Introduction Course Landing Page
  • Upcoming Live Events
You are here: Home / Articles / Part III: The 4 Basic Physical Failure Mechanisms of Component Failure: Overload

by Robert (Bob) J. Latino Leave a Comment

Part III: The 4 Basic Physical Failure Mechanisms of Component Failure: Overload

Part III: The 4 Basic Physical Failure Mechanisms of Component Failure: Overload

Author’s Note: I want to reiterate that this Series about reading the basic fracture surfaces, is for novices who often first come into contact with such failed components. This Series is about the basics (101), and is intended to give readers an appreciation for the value of such ‘broken’ parts to an effective investigation/RCA. While this information will be rudimentary to seasoned materials engineers, I know they will all appreciate heightening awareness to the need to retain such failed parts for analysis, versus throwing them away and just replacing the part. Throwing away failed parts is a recipe for a repeat failure, when one does not understand why the part failed in the first place.

In Part I of this series we focused on Erosion and Corrosion as the the first two (2) failure mechanisms of component failure. When Erosion and Corrosion are apparent, there is generally a loss of metal in some form or fashion.

Figure 1: How Material Failure Occurs

In this final follow-up of this series, we will focus on Overload, where generally the material is overpowered. 

Material Overload is the failure or fracture of a material with a single load application.

When applying this knowledge to a Root Cause Analysis (RCA), the construction of the Logic Tree (or whatever expression you prefer to use) may look like the following:

Figure 2: How Failure Patterns Work into an RCA

The ‘parent’ node would indicate which component failed (i.e. – shaft failure). The ‘child’ nodes would represent the potential hypotheses to the question ‘How could the shaft have failed?’ The broad and all-inclusive possibilities would be; erosion, corrosion, fatigue and overload. At this stage our metallurgical analysis would tell us which of these failure patterns occurred. It could be one of them or a combination; a trained eye will tell us.

Once we know which pattern(s) is a FACT, then we simply keep drilling down and ask ‘How could the component have been fatigued (example), resulting in the undesirable outcome being experienced?’. How this all fits into the RCA process is described in many of our other blogs, feel free to visit them (https://www.linkedin.com/in/bob-latino-3411097/recent-activity/posts/).

Some reasons materials could be overloaded:

  1. Wrong material for the application
  2. Excessive stress or strain
  3. Flaw in the material
  4. Sudden increase in load or blockage (process changes)
  5. Foreign object seized material (gears)
  6. Foreign object strikes material
  7. Operating equipment outside of its design capabilities

Component overload examples:

  1. Shaft Overload
  2. Fastener Overload
  3. Hook Overload
  4. Anchor Overload
  5. Gear Overload

Overload fractures generally fall into two (2) categories, Brittle and Ductile. As you will see from the following examples, Brittle fractures typically exhibit a ‘salt and pepper’ appearance on the fractured surface with a relatively clean break (lack of variation on the fracture surface). Ductile fractures generally exhibit a deformation of the material in some form or fashion.

In Overload cases, the chevron marks will again point towards the origin of the failure.

Figure 3: Graphical Representation of Overload Pattern

As in Figure 3, you can clearly see this pattern on the failed component.

Figure 4: Example of Chevron Marks Pointing to Failure Origin

In Figure 5 we show a clear contrast between Ductile and Brittle failure patterns using fasteners.

Figure 5: Ductile vs. Brittle Fracture Surfaces on Fasteners

Lets look at some more examples using varied components.

Figure 6: Brittle Overload of Gearbox Shaft

Figure 7: Ductile Overload of Gearbox Shaft

Now let’s take a look at fasteners and look for the same patterns to identify whether they are brittle or ductile failures.

Figure 8: Brittle Overload of Fastener

Figure 9: Brittle Overload of Fastener (2)

Figure 10: Ductile Overload of Fastener

Let’s move on to a hook failure and look for similar characteristics of the failed surfaces. Is this a brittle or ductile failure based on its characteristics?

Figure 11: Brittle Overload of Hook

As the caption for this figure states, this is a Brittle Overload. See, it gets easier as we compare and contrast more examples. Let’s try again on an Anchor. We can tell it’s an overload, but which type?

Figure 12: Brittle Overload of Anchor

No deformation, but characteristics of a clean break from being overpowered. In such cases the opposite sides of the same failed components can often be fitted together to demonstrate they were the same part at one time.

Last shot, Brittle or Ductile failure of Gear teeth?

Figure 13: Brittle Overload of Gear Teeth

This will conclude this Series about the four (4) primary failure mechanisms of component failure.

Please click the hyperlink if you’re interested in more job aides likes this and/or information on associated training and tools to help with understanding Why Parts Fail.

I appreciate all of the great feedback and the sharing from the metallurgical veterans!! Thank you for your time and participation.

Filed Under: Articles, on Maintenance Reliability, The RCA

About Robert (Bob) J. Latino

Robert Latino is currently a Principal at Prelical Solutions, LLC, along with his brother Ken Latino. Bob was a Founder and CEO of Reliability Center, Inc. (RCI), until it was acquired in 2019. RCI is a 50-year-old Reliability Consulting firm specializing in improving Equipment, Process and Human Reliability. Mr. Latino received his Bachelor’s degree in Business Administration and Management from Virginia Commonwealth University. For any questions, please contact Bob at blatino@prelical.com

« Understanding the Importance of Machine Bases
Analyzing the Experiment (Part 4) – Finding Solutions »

Leave a Reply Cancel reply

Your email address will not be published. Required fields are marked *

logo for The RCA article series image of BobArticle by Robert (Bob) J. Latino
Principal at Prelical Solutions, LLC

in the The RCA article series

Join Accendo

Receive information and updates about articles and many other resources offered by Accendo Reliability by becoming a member.

It’s free and only takes a minute.

Join Today

Recent Posts

  • Gremlins today
  • The Power of Vision in Leadership and Organizational Success
  • 3 Types of MTBF Stories
  • ALT: An in Depth Description
  • Project Email Economics

© 2025 FMS Reliability · Privacy Policy · Terms of Service · Cookies Policy