Showing posts with label Industrial Metallurgists. Show all posts
Showing posts with label Industrial Metallurgists. Show all posts

Wednesday, May 17, 2023

Podcast Episode 12: Six-sigma and materials engineering

In this episode I discuss 6-sigma, statistical process control, and the role of materials engineering in developing capable manufacturing processes.

Materials are used to fabricate components and join components together. And, we want manufacturing processes capable of producing components and assemblies without defects or problems, and whose materials have the desired properties. So, developing and maintaining a six-sigma manufacturing process depends heavily on materials engineering.

The episode is at https://spotifyanchor-web.app.link/e/doXEJ1HOSzb

Subscribe to the Metal Conversations podcast series on Spotify, Google Podcasts, Apple Podcasts, Amazon Music, Pocket Casts, Overcast, Castbox, and Stitcher.

The post Podcast Episode 12: Six-sigma and materials engineering appeared first on Industrial Metallurgists.



Original post here: Podcast Episode 12: Six-sigma and materials engineering

Thursday, April 20, 2023

A Tribute to Steel Metallurgy Knowledge

A Tribute to Steel Metallurgy Knowledge

Our knowledge of steel has come a long way in the more than 2,000 years since it was first developed. We understand the effects of adding carbon and a wide variety of other alloying elements on steel properties. We understand the microstructures that form in steel, how they are influenced by steel composition and mechanical and thermal treatments, and their influence on steel properties. This knowledge has enabled extensive engineering of steel alloys, steel production processes, and steel component design and fabrication.

Steel Metallurgy Live Workshop - Learn fundamentals of steel metallurgy

Wednesday, May 10, 10:00 - 11:00 am central time

https://www.imetllc.com/product/carbon-steel-metallurgy-webinar/

Thousands of steel alloys

This knowledge has enabled the development of different types of steels to meet different applications. This includes carbon steels, low-alloy steels, tool steels, high-strength low-alloy (HSLA) steels, and stainless steels. Adding various combinations of alloying elements enable us to tailor steel strength, ductility, and other properties to meet a wide range of requirements for a wide range of applications. Each of the different types of steels has a certain set of alloy compositions and range of properties that make them suitable for different applications.

Ultra-high volume production

Our understanding of steel metallurgy has also enabled the development of many processes used to alter steel shape and microstructure to achieve specific properties and to produce different forms of steel. Steel mills use hot-rolling, cold-rolling, three different annealing processes, and normalizing to create microstructures that result in desired mechanical properties, easier machining, and/or better response to further heat treatment.

Currently, mills worldwide use these processes to produce about two billion tons of plate, sheet, and bar a year. Some sheet is used to produce welded tubing and pipe and some bar is used to produce wire and seamless tubing and pipe. Regardless of the form, steel metallurgy knowledge has enabled most mills to develop robust production processes capable of producing steel that consistently meets customer requirements.

Designing and making components

Then, companies that fabricate steel components from plate, sheet, bar, and tubing use through hardening heat treatments, such as quench and temper, to alter the steel microstructure to increase its strength and hardness. They also use case hardening heat treatments to alter the composition and/or microstructure of a component’s surface for increased strength and/or increased hardness. Because of their knowledge of steel metallurgy, most of the companies performing the heat treatments have developed processes capable of consistently meeting customer requirements.

Finally, companies that design steel components for use in their products can take advantage of steel metallurgy knowledge to optimize designs for performance, reliability, and cost. By understanding the effects of alloy composition, mill processing, and post-fabrication heat treatments on steel properties they can select the optimum alloy, mill condition, fabrication method, and post-fabrication heat treatment. Sometimes the considerations lead to innovations that give a competitive advantage in performance, reliability, and or cost.

Versatile and crucial

Steel is an incredibly versatile material that is used in a wide range of applications across numerous industries. It has come a long way since its early beginnings and plays a crucial role in shaping our modern world.

Ready to learn more?

Check out our Steel Metallurgy online course and our upcoming live Steel Metallurgy workshop

The post A Tribute to Steel Metallurgy Knowledge appeared first on Industrial Metallurgists.



Original post here: A Tribute to Steel Metallurgy Knowledge

Thursday, April 13, 2023

6-sigma and Materials Engineering

6-sigma and Materials Engineering

Every once in a while I notice a company’s website uses the term “six sigma” or “6σ” to convey good quality. When I see this I wonder if they really understand what six sigma is and what it applies to. This article is about that and, of course, how materials engineering fits in.

Sigma refers to standard deviation, a calculated value that describes the spread of data in a dataset. The larger the standard deviation, the larger the spread in the data. The figure shows two datasets of attribute measurements for two different sample populations. The y-axis shows the number of occurrences for each attribute value. Dataset 1 has a wider spread than dataset 2, so the standard deviation for dataset 1 is larger than the standard deviation for dataset 2.

six sigma and statistical process control

Statistical process control

Sigma is used as part of statistical process control (SPC). SPC is a data-driven methodology used to monitor and control a process. The goal of SPC is to produce output that meets customer requirements, maintain output variations within acceptable limits, and minimize defects.

SPC can be used to control any process that produces a measurable output, such as the size of a component, the temperature of a machine, or the time to complete a task. It is used in a variety of industries, including manufacturing, healthcare, and service industries. The focus here is manufacturing.

With SPC, the attributes of the output of a process are measured, collected, and analyzed. Examples of attributes are part dimensions, metal hardness, or coating thickness. The data is used to identify and eliminate causes of process output variation and improve the quality of the process output. So, SPC is a quantitative approach for monitoring and controlling a production line to consistently produce output that meets specifications.

Six sigma

Standard deviation (sigma σ) is continuously calculated for the data collected. The goal, if you’re interested in having a capable process, is a small standard deviation with respect to the difference between the upper and lower specification limits of the attribute being measured. If ±6σ (12 standard deviations) is equal to the difference between the upper and lower specification limits, then only 3.4 out of 1,000,000 items produced will not meet specifications, i.e. 3.4 defects per million opportunities. Six-sigma!! This assumes the data average is centered between the upper and lower specification limits. There are other SPC calculations if the average is not centered.

SPC and materials engineering

How does materials science fit in with all this? Well, materials are used to fabricate components and join components together. Also, we want manufacturing processes to produce components and assemblies with materials that have the desired properties. So, developing and maintaining a six-sigma process and producing a “6σ” product depends on…

  • Selecting materials with composition and properties that are compatible with the process, enabling good manufacturability.
  • Characterize effects of incoming materials variations on process output.
  • Controlling composition and properties variations of incoming materials. This includes writing good materials specifications and verifying that suppliers are capable of supplying materials and components that meet specifications.
  • Selecting and controlling process conditions.
  • Using failure analysis to help identify the root cause of problems.

Focus and discipline

SPC is a powerful tool for improving quality and reducing costs. As with anything else like this, if it was easy to do, everyone would be doing it. But it requires a commitment from management and employees to be successful. And it takes engineering focus and discipline to use the data to make process and design improvements.

If you’re interested in learning more, check out the video at the top of this post. It goes into more detail.

The post 6-sigma and Materials Engineering appeared first on Industrial Metallurgists.



Original post here: 6-sigma and Materials Engineering

Wednesday, March 22, 2023

A different perspective for seeing products

I have a different perspective than most people when it comes to how I see a product. This perspective influences how I approach component design, giving me an advantage for finding ways to reduce costs, reduce risks, and develop innovative solutions. I explain about this perspective in the short video below.

.

Need help selecting materials for a component? CLICK HERE for help

The post A different perspective for seeing products appeared first on Industrial Metallurgists.



Original post here: A different perspective for seeing products

Tuesday, February 28, 2023

Improving Fatigue Resistance

Fatigue involves localized, permanent damage to metals exposed to cyclic stress. In a previous article I discussed the fatigue mechanism. This article covers factors that can be addressed to improve high-cycle fatigue life

Sign-up to receive notices about new articles, podcasts, courses, and webinars. Form at the top of this page.

Factors that influence fatigue life

Several design, material, and fabrication factors influence component and joint fatigue life, including the following:

  • Applied stress
  • Metal strength
  • Mechanical design features that are stress concentrators
  • Non-metallic inclusions
  • Fabrication defects
  • Surface residual stress
  • Surface roughness
  • Metal fracture toughness

Applied stress
Fatigue life is inversely proportional to the stress on a component or joint. Sometimes, the easiest way to improve component and joint fatigue life is to reduce the load and/or increase component or joint cross-section.

Metal strength
Increasing an alloy’s strength increases the number of cycles before a crack forms. Strength can be increased by adding alloying elements, cold working, and/or heat treating. Steels can be made so strong that fatigue cracks do not form.

Keep in mind the trade-offs between strength and fracture toughness. For an alloy with a certain microstructure, as its strength increases its fracture toughness decreases and the crack length before final overload fracture decreases. See the discussion in this article on strength and toughness. So, while increasing strength can increase the number of cycles before crack formation, increasing strength too much can lead to fracture after a small crack has formed.

Need help figuring out the cause of a component failure or quality problem? CLICK HERE for help

Mechanical design features that are stress concentrators
Notches, holes, changes in x-section, and laser or scribed surface identification marks are examples of component features that are stress concentrators. Eliminating them or designing them to reduce the stress concentrating effect are ways to improve fatigue life.

Inclusions
Inclusions are nonmetallic and sometimes intermetallic particles in a metal that acts as stress concentrators and fatigue crack initiation sites. They are usually simple oxides, sulfides, nitrides, or their complexes in ferrous alloys and can include intermetallic phases in nonferrous alloys. Inclusions are the product of chemical reactions and contamination that occurs during metal melting and pouring.

Some alloys are produced using special processing and control over impurity levels to reduce the number of inclusions. Also, control over supply base is important – make sure metal comes from mills that have good control over their processes.

Fabrication defects
Fabrication defects include voids that form during metal casting and laps and seams that form during hot working processes. These defects are stress concentrators that can become crack initiation sites.

Surface residual stress
Residual stresses are locked-in elastic stresses within a metal, even though it is free of external forces (see this article on residual stress). Residual stresses can be tensile or compressive. In fact, tensile and compressive residual stresses co-exist within a component. Tensile residual stress at the surface of a component add to the tensile stress being applied, leading to reduced fatigue resistance. Compressive surface residual stress normally increases fatigue resistance because they subtract from the applied stress.

Cold working, steel through hardening (quench and temper), electroplating and other coatings, and welding are examples of processes that can result in tensile residual stresses at a component’s surface. Shot peening and other surface forming processes result in compressive surface residual stress and are used specifically for that purpose. Stress relief heat treating is used to reduce elastic stresses in components and weld joints

Need help designing a component? CLICK HERE for help

Surface roughness
Surface roughness acts as stress concentrators, reducing the number of cycles to initiate a fatigue crack compared to a smooth surface. The rougher the surface, the worse the fatigue resistance is for a metal. Different component fabrication methods result in different levels of surface roughness.

Fracture toughness
Fracture toughness is a measure of the ability of a material under load to withstand fracture when a crack is present. For two metal samples with the same applied load, the sample with the higher fracture toughness will be able to tolerate a larger crack before fracturing. Fracture toughness depends on the composition and microstructure of a metal.

Engineering for fatigue

Many approaches are available for designing and fabricating components and joints that have the reliability needed to withstand exposure to fatigue conditions. The trick is to identify the fatigue requirements for a component or joint and use the design and fabrication approaches that are easiest and least costly to implement.

Learn from failures

Finally, if you have components that are failing by fatigue, perform a failure analysis to determine the metallurgical and mechanical factors that are contributing to the failures to give you a better sense of the approaches to use to prevent the failures.

This article was originally published on the Accendo Reliability website https://accendoreliability.com/improving-fatigue-resistance/

Sign-up to receive notices about new articles, podcasts, courses, and webinars. Form at the top of this page.

The post Improving Fatigue Resistance appeared first on Industrial Metallurgists.



Original post here: Improving Fatigue Resistance

Wednesday, February 8, 2023

Podcast Episode 9: Learning and Professional Development

In this episode I discuss learning and professional development.

There’s so much to know to be an engineer and college courses cover the tip of the iceberg, even if you go to grad school. I learned this early in my career as I was faced with decisions and problems related to topics that I never encountered in school. I also learned that I had to shoulder the responsibility of learning the topics. Some of the learning came from colleagues, some came from taking short courses, and some came from reading textbooks and technical journals.

I this episode I discuss my learning experiences and philosophy about learning, the pitfalls of relying on learning just from experience, and resources for learning and professional development.

Here's a link to the episode. The episode is about 12 minutes long.

Subscribe to the Metal Conversations podcast series on Spotify, Google Podcasts, Apple Podcasts, Amazon Music, Pocket Casts, Overcast, Castbox, and Stitcher.

The post Podcast Episode 9: Learning and Professional Development appeared first on Industrial Metallurgists.



Original post here: Podcast Episode 9: Learning and Professional Development

Monday, January 30, 2023

Failure Analysis Case Study

Here's a video of an example of how failure analysis was used to improve the reliability of a component and the uptime of the equipment in which it was used. The information from the failure analysis was used to determine the root cause of the failure and the corrective actions to prevent future failures.

Interested in learning more about failure analysis of component failures and quality problems? Check out our failure analysis webinar and our failure analysis course.

The post Failure Analysis Case Study appeared first on Industrial Metallurgists.



Original post here: Failure Analysis Case Study

Sunday, January 22, 2023

Podcast Episode 8: Design for Manufacturability

In this episode I discuss Design for Manufacturability related to component fabrication and joining components by welding, brazing, or soldering. Design for manufacturing is concerned with designing components and assemblies that can be repeatedly produced with consistent good quality without hassles, and at low-cost.

DFM applies to primary component fabrication processes, secondary processing (coating, heat treating), and joining. Primary component fabrication processes include casting, extruding, stamping and other cold forming, forging, and machining. Secondary processes include heat treating, machining, and coating by painting, electroplating, anodizing and other processes. And joining includes welding, brazing, soldering, and using adhesives.

Here's a link to the episode. The episode is about 10 minutes long.

Subscribe to the Metal Conversations podcast series on Spotify, Google Podcasts, Apple Podcasts, Amazon Music, Pocket Casts, Overcast, Castbox, and Stitcher.

The post Podcast Episode 8: Design for Manufacturability appeared first on Industrial Metallurgists.



Original post here: Podcast Episode 8: Design for Manufacturability

Tuesday, January 17, 2023

Failure Mode and Mechanism

In a previous article I discussed the degradation of materials due to exposure to stressors (use conditions) and how to identify stressors. Cracks form and grow in axles and shafts due to cyclic stress, steel screws corrode when exposed to water, some plastics become brittle when exposed to sunlight, and coatings on surfaces can wear away. When too much degradation occurs, components and joints fail, leading to product failure.

Things to consider during design

If you’re someone who likes to design reliable products, you must think about the stressors and their effects. When designing a product, we must identify the following things

  • The stressors that will be acting on the components and joints
  • Potential degradation mechanisms
  • The amount of degradation that is acceptable
  • Whether the degradation will lead to component or joint failure
  • The failure mode

This information guides decisions about the mechanical form and materials to use components and joints, the control measures to put in place to ensure that components and joints are fabricated properly, and testing to evaluate product reliability.

I already discussed stressors in a previous article. Two important terms in this list are failure mode and failure mechanism. Understanding their difference and keeping them straight is important.

Attend our January 26 workshop to learn how to prevent galvanic corrosion. CLICK HERE for information

Failure mechanism

Failure mechanism is the physical process of materials degradation that leads to failure. Here are some examples of failure mechanisms:

  • Cracking of a support member exposed to cyclic stress from vibration
  • Intergranular corrosion of 304 stainless steel pipe exposed to water
  • Crevice corrosion of a bolt and washer exposed to water and road salt
  • Fretting wear of a circuit board pad and contact during thermal cycling
  • Adhesive wear of two rollers moving against each other
Circuit board wear
Intergranular corrosion

These are just a few of the many different degradation and failure mechanisms. Notice that for corrosion and wear there is more than one degradation mechanism. So, saying that a component will fail by corrosion or wear is not specific enough to understand the actual mechanism and make design decisions to prevent the degradation.

Failure mode

Failure mode is how a component or joint stops functioning. So, for the previous examples we have the following failure modes:

  • Fracture
  • Leak
  • Loss of clamping force
  • High electrical resistance
  • Change in surface profile

Identifying stressors, failure mode, and failure mechanism

A valuable engineering tool used to identify the information is Failure Modes and Effects Analysis (FMEA). The tool helps focus engineering teams on the factors that influence their products’ reliability and how to address the factors through design decisions, specifications and other control measures, and testing to evaluate reliability.

Using FMEA requires discipline because the process can seem arduous, though it’s really just boring. However, the benefits are tremendous when the efforts result in products that pass reliability testing the first time and field failures don’t occur.

Learn about one common failure mechanism. Attend the January 26 workshop to learn about galvanic corrosion and how to design to prevent it.

The post <strong>Failure Mode and Mechanism</strong> appeared first on Industrial Metallurgists.



Original post here: Failure Mode and Mechanism

Thursday, January 12, 2023

New workshop series

People like simple guidelines and rules to follow when making decisions, especially when there are unpleasant consequences for uniformed decisions. This is especially true for designing the components and joints for a product.

Many product failures due to the degradation of materials are avoidable by using well-known approaches when selecting the form (size, shape, features) and materials for components and joint. It's also helpful to understand the degradation mechanisms to help put the rules in context.

There are many degradation mechanisms and each has several rules to follow and approaches to use to prevent them from occurring. Learning about all of them can seem overwhelming.

But, it's not necessary to be an expert. Though, it is necessary to be informed about the basics of the degradation mechanisms (why and how) and the rules and approaches to avoid failures. There's no way around it. Some investment is required. Picking up bits and pieces of information (correct and incorrect) as you go along is not a recipe for success.

So, we're putting together a new workshop series geared to design engineers to teach about the many degradation mechanisms and the rules and approaches to avoid failures.

Because we want to make it easy for people to learn and get the benefits, each workshop will be:

  • Focused on a single, specific degradation mechanism such as galvanic corrosion, adhesive wear, or hydrogen embrittlement. So, no worries about being overwhelmed.
  • 45 minutes long: 30 minute presentation + 15 minutes for attendee questions.
  • Available on video for 14 days.
  • Accompanied by slide handouts.
  • Once a month.
  • Taught by an expert

Use the sign-up form above to receive email notices about these workshops.

The post New workshop series appeared first on Industrial Metallurgists.



Original post here: New workshop series

Tuesday, January 3, 2023

Presentation: What is Accelerated Life Testing?

Accelerated life testing. Sounds simple … right? We simply test faster! Great! But what does this get us?

Many organizations are faced with a dilemma when it comes to testing to measure reliability. If we test an amazing new product in ‘at use’ conditions, it might take many years before it will fail. This is time we simply don’t have when it comes to product development.

So how do we test faster? One obvious answer is to increase the stress. Turn the temperature up. Increase the vibration. Use more voltage. But how do we get this right? How can we know that (for example) one week of accelerated testing is equivalent to 10 years of actual use?

This presentation will introduce you to Accelerated Life Testing or ALT to help you and your organization make reliability testing a reality.

January 24, 2023, at 8 am US Pacific time.

Presenter: Chris Jackson from Acuitas Reliability

REGISTER HERE to attend this virtual presentation. There's no fee to attend.

The post Presentation: What is Accelerated Life Testing? appeared first on Industrial Metallurgists.



Original post here: Presentation: What is Accelerated Life Testing?

Tuesday, December 27, 2022

Presentation - Stressors and reliability

The materials in a product's components and joints can degrade due to exposure to use conditions - steel screws corrode when exposed to water, some plastics become brittle when exposed to sunlight, and coatings on surfaces can wear away.

If their materials degrade too much, components and joints will stop functioning as required . This is a problem if it leads to reduction or loss of product performance before the end of a product’s expected life. Identifying the conditions to which materials are exposed and selecting materials that can withstand the exposure is critical for designing products that have good reliability.

A few weeks ago, I gave a presentation through Accendo Reliability about stressors and the materials degradation they can cause. I discussed stressors that act on components and joints, material degradation mechanisms, five sources of stressors, and evaluating the effects of stressors.

The presentation recording is at this link. Viewing the presentation requires the Accendo free membership login

The audio version of the presentation is at this link.

Need help selecting materials that won't degrade during use and that will give your components and joints the reliability needed for your products? Contact us. in**@im*****.com, 847.528.3467, or complete this form.



Original post here: Presentation - Stressors and reliability

Thursday, December 8, 2022

Fatigue

Fatigue is a common degradation and failure mechanism. It involves localized, permanent damage to metals exposed to cyclic stress. The stress can be uniaxial, bending, or torsional resulting from a variety of sources including an applied force, vibration, acceleration and deceleration, and differences in thermal expansion between mating components exposed to heating and cooling cycles. Localized means the damage is confined to a portion of a component or joint.

The reason fatigue is sometimes unexpected is because the nominal stress acting on a component or joint is less than its yield strength. However, at a fatigue crack initiation site, the stress is greater than the nominal stress due to the presence of a stress concentration. More on this later.

Sign-up to receive notices about new articles, podcasts, courses, and webinars. Form at the top of this page.

Three requirements

There are three requirements for fatigue to occur:

  • Cyclic stress
  • The stress must be tensile
  • The local stress must exceed the metal’s yield strength

Three stages

Fracture due to fatigue consists of three stages:

  • Stage 1: Crack initiation. Microcracks less than 0.001 mm long form as the material cycles between the upper and lower stress. As the cycling continues the microcracks grow and coalesce, forming one or more larger cracks. 
  • Stage 2: Crack growth. The larger cracks grow into the material. As the cracks grow the nominal stress on the uncracked portion of the metal increases.
  • Stage 3: Finally, when a critical amount of the cross section has cracked, the remaining uncracked material cannot bear the load and fractures by overload.

Fracture surface

This is a diagram of a fracture surface where a crack started by fatigue. The crack started at the component’s surface. Once the crack formed it grew with each successive stress cycle. Finally, the crack grew so large that the uncracked material could not support the load, and it cracked during a single stress cycle.

In many cases, beachmarks are present on the fracture surface that can be seen visually or with a low-power microscope. Beachmarks start at the crack origin and expand in the direction of crack growth and are helpful for identifying the crack origin.

This scanning electron image shows the fracture surface of an aluminum component. The striations are a result of the fatigue crack growing with each stress cycle. Each striation formed during a stress cycle, thus indicating the amount the crack grew with each stress cycle. Not all fatigue failures have striations on the fracture surface.

Stress concentrations

Fatigue damage occurs even though the nominal stress on a metal is less than its yield strength. Stress concentrations cause an increase of the stress, resulting in a localized stress that exceeds the yield strength of the material. Stress concentrations include notches, identification markings, and metal defects (non-metallic inclusions, voids, laps).

It is possible for a fatigue crack to form in a metal with a smooth surface and no apparent stress concentrations. However, more cycles are required to initiate a crack in such a metal compared to the same metal with an apparent stress concentration.

Interested in learning metallurgy principles? Check out our Principles of Metallurgy online course.

Factors that influence fatigue life

The fatigue life of a component or joint is often expressed as the number of cycles to failure, which is equal to the sum of the number of cycles to initiate a crack and the number of cycles for the crack to grow to failure. In some cases, failure is when a crack grows to a pre-determined length, at which point the component or sub-assembly is removed from service. In other cases, failure is when a component or joint fails, and the failure is often unexpected.

Several design, material, and fabrication factors influence component and joint fatigue life, including the following:

  • Mechanical design features that are stress concentrators
  • Alloy strength
  • Non-metallic inclusions and manufacturing defects
  • Surface residual stress
  • Surface roughness
  • Metal fracture toughness

These factors and approaches to improve fatigue resistance will be discussed in more detail in future articles.

Need help designing a component that will be exposed to fatigue condition or figuring out the cause of a fatigue failure? Contact us info@imetllc.com, 847.528.3467, or complete this form.

This article was originally published on the Accendo Reliability website https://accendoreliability.com/fatigue/



Original post here: Fatigue

Tuesday, November 15, 2022

Podcast Episode 7: Failure Analysis

In this episode I discuss failure analysis of component and joint failures during product testing or use and manufacturing problems such as supplier quality problems and manufacturing output that doesn't meet specifications. 

Failure analysis is part of performing a root cause analysis to identify the action, event, or decision that led to a failure or manufacturing problem. The information from a root cause analysis is used to either fix a problem - in the case of product design and manufacturing - or assign blame - in the case of an insurance claim or litigation.

The discussion includes the steps of a failure analysis, how a metallurgists works with other engineers on a failure analysis and root cause analysis, examples of failure analyses (including one where it was raining in someone's living room), and the analyses performed.

Here's a link to the episode. The episode is about 20 minutes long.

You can subscribe to the Metal Conversations podcast series on Spotify, Google Podcasts, Apple Podcasts, Amazon Music, Pocket Casts, Overcast, Castbox, and Stitcher.

The post Podcast Episode 7: Failure Analysis appeared first on Industrial Metallurgists.



Original post here: Podcast Episode 7: Failure Analysis

Tuesday, November 1, 2022

New webinar - Leveraging Metals Engineering for Clarity, Confidence, and Certainty.

Leveraging Metals Engineering for Clarity, Confidence, and Certainty. It almost rolls off the tongue. OK, it's not particularly catchy. But try figuring out how to show people that struggling with engineering decisions, component failures, and quality problems related to metals doesn't have to be a fact of life.

Well, on November 19 at 10:00 a.m. central time I will give it try. I'll explain about:

  • A proven methodology for designing better, low-cost components and solving metal problems faster
  • What is metals engineering
  • How metals engineering is applied to real-world decisions and problems

Click here for more information. Click here to register. There's no fee to attend.

The webinar is geared to business leaders and design, manufacturing, and quality engineers and managers.

The post New webinar - Leveraging Metals Engineering for Clarity, Confidence, and Certainty. appeared first on Industrial Metallurgists.



Original post here: New webinar - Leveraging Metals Engineering for Clarity, Confidence, and Certainty.

Newly revised Tensile Testing course

We recently revised and updated our tensile testing course, adding more content and opportunities to apply the concepts taught. Also, the course is now one hour long and a certificate for 0.1 CEUs is awarded upon successful completion of the final exam.

The course explains how tensile testing is performed, how a test specimen is prepared, how yield strength, tensile strength, elongation, and elastic modulus are determined, and factors that influence test accuracy.

As always, we strive to produce training content that is practical, of reasonable length, and at reasonable cost. This course meets all these requirements.

If you work with test labs or have to understand and interpret test data, this course is for you.

The post Newly revised Tensile Testing course appeared first on Industrial Metallurgists.



Original post here: Newly revised Tensile Testing course

Tuesday, October 4, 2022

Designing for Reliability

Because I’m a materials engineer, I see any product as a collection of materials that have been engineered, shaped, and modified to become components and joints (e.g. weld and braze joints). As a result, I’m concerned with how materials respond when exposed to stressors that can cause the materials to degrade. Stressors include mechanical loads, corrosive environments, chemicals, heat and cold, electricity, and radiation.

It’s a problem if a component or joint in a product degrades to the point where it stops functioning as required during the normal use life of the product.

In this article I will discuss the conditions that can cause materials to degrade. I will refer only to components for ease of writing and reading, but the discussion also applies to joints.

Reliability and materials

The materials used in a product can degrade due to exposure to use conditions. Steel screws corrode when exposed to water, some plastics become brittle when exposed to sunlight, and coatings on surfaces can wear away. For mechanical components degradation mechanisms include fatigue, creep, wear, corrosion, embrittlement, and others. For electrical components degradation mechanisms include dielectric breakdown, electromigration, and others.

The degradation leads to reduced capabilities of the materials and the components. If there is too much degradation, the component will stop functioning as required. This is a problem if it leads to reduction or loss of product performance before the end of a product’s expected life.

So, the reliability of a product depends on the extent of degradation of the materials that make up the product’s components. Identifying the conditions to which materials are exposed and selecting materials that can withstand the exposure is a critical part of designing products that have good reliability.

The remainder of this article discusses identifying the stressors that act on components and joints.

Stressors

The conditions to which a component is exposed consist of stressors that act upon the materials during handling, shipping, and product use. A stressor can be…

  • Mechanical such as static, dynamic, or cyclic loads; impact; rubbing
  • Electromagnetic, such as applied voltage, current, or ultraviolet radiation
  • Thermal such as elevated temperatures or temperature cycling
  • Chemical, such as gases, solvents, acids, or bases,
  • Biological, such as bodily fluids,
  • Electrochemical when exposed to a corrosive environment

Sources of stressors

There are five sources of stressors:

  • Component functionality
  • Environment
  • Interactions with other components
  • Minor abuse
  • Misuse.

Component functionality is related to the stressors directly related to a component’s functions. Examples are the mechanical loads on a motor shaft as the shaft moves another device and the electricity that passes through an electrical circuit. The motor shaft mechanical loads, if cyclical, can cause a fatigue crack to form and grow in the shaft, leading to fracture. The electricity that passes through a circuit can cause electromigration, leading to an open circuit.

Environment refers to the environment in which the component operates. Examples of environmental stressors are

  • Corrosive liquids and fumes that can attack equipment in processing plants.
  • High-temperature environments that can cause plastics to soften or breakdown or cause metals to undergo phase transformations.

For many products, the environmental conditions depend on a component’s location within a product. A component located within the passenger compartment of an automobile is not exposed to the same temperature and corrosion conditions as a component located in the engine compartment. The pan of a skillet is exposed to much higher temperatures compared to the handle.

Interactions with other components occur when components are in contact with each other or when a component outgasses a chemical that interacts with another component. Examples of interactions between components in contact are:

  • Gears wearing on each other.
  • Galvanic corrosion between components made of different metals.
  • Stresses between mated components due to differences in thermal coefficient of expansion of the materials comprising the components.

Other types of interaction stressors are wear, rolling contact fatigue, crevice corrosion, heating, outgassed chemicals, and others.

Minor abuse refers to stressors that are slightly excessive but expected during typical use.  Examples of minor abuse include dropping a telephone from a short height onto concrete, driving an automobile over potholes, and small chemical spills onto a motor.  Many products are expected to withstand some minor abuse without failing to meet its performance requirements. 

Misuse refers to stressors that far exceed those expected during typical use. Products are not expected to be designed to be able to withstand abuse. For example, it is unrealistic to expect a telephone to function properly after using it to hammer a nail into a wall or dropping it in a toilet. Or expecting a car to function properly after driving it through water two feet deep.

Identify magnitude of stressors

After identifying the stressors, the next step is to determine the magnitude of each. This can be done by direct measurement or modelling.

Guessing is another approach, but one that comes with downsides. Guessing too low means components won’t have the reliability needed for the product. This approach may be acceptable if two conditions are met. First, if reliability testing is used in conjunction with iterating component designs until they pass testing. Second, if there is enough time and budget built into product development to handle the testing/redesign iterations.

Guessing too high may mean components cost more than necessary to meet the product’s lower reliability needs. This approach may be acceptable if it enables passing product reliability testing the first time - avoiding redesigns - and launching a product on time or earlier.

There are upsides of guessing - the money and time saved measuring or modelling stressor magnitude.

No stone unturned

Identifying all the stressors acting on a component is critical for designing components that have the necessary reliability. The information is needed to identify the appropriate component form and materials. It’s also needed to develop the product reliability testing necessary for verifying that the materials are suitable for the application..

Going through the stressor identification process requires a solid understanding of how components are used and the conditions to which they are exposed. FMEA is a good tool for helping to identify the critical components that require more attention and to identify all the stressors. Working with a materials engineer will help the process.

Not identifying all the stressors and their magnitudes early in product development adds uncertainty to the design process, which is stressful. The stress only builds as time goes on and design decisions must be finalized.

I worked on a project for a custom product and the customer did not have information about the corrosive liquid that was going to be in contact with the product. The uncertainty dragged out for months and required consideration and testing of a very expensive material to deal with the worst-case scenario. The uncertainty consumed lots of engineering time. Eventually, we found out that the corrosive liquid was not as bad as the worst-case scenario.

Need help figuring out the stressors your components and joints are exposed to and/or help selecting metals to use in your components and joints? Contact us info@imetllc.com, 847.528.3467, or this form.

The post <strong>Designing for Reliability</strong> appeared first on Industrial Metallurgists.



Original post here: Designing for Reliability

Friday, September 30, 2022

I love being a metallurgical engineer

I knew nothing about metallurgy and engineering when I chose metallurgical engineering as a major. As a 17-year-old, I liked math and science and decided I’d select engineering as a major in college. Then, I was visiting a cousin in engineering grad school, and he showed me some of the things he was working on, which involved metals, and I saw people using an optical pyrometer to measure the temperature of metal they were melting. Based on that I chose metallurgical engineering. I guess it was as good a reason as any for a 17-year-old that had no exposure to the world of engineering.

After more than 30 years working in product design and manufacturing, and engineering forensics, I can say that I love being a metallurgical engineer. I guess I should really say materials engineer because I’ve worked with a few other materials besides metals.

I’m passionate about understanding why materials behave the way they do, the manufacturing processes and process control used to manipulate materials’ macroscopic shape and dimensions and manipulate materials’ composition and microscopic features, and the tools used to characterize materials.

Also, the huge number of materials and the huge number of methods for manipulating and shaping the materials into engineering components never ceases to amaze me. One of the great achievements of humanity has been our ability to create and use materials to make the structures, vehicles, and other things around us.

All the man-made things we have are made of materials than have been engineered to have specific properties. Everything is comprised of an assembly of materials shaped into individual components. And our understanding and application of materials science has given us the ability to consistently make products of high performance and reliability. Many at crazy low costs.

Product design and manufacturing

Materials science and engineering touches all aspects of product design and manufacturing – component design, manufacturing and assembly, supplier selection, reliability testing, and root cause analysis of quality problems and product failures.

Designing components that meet their performance and reliability requirements at low cost requires selecting materials with the composition, microstructure, and properties necessary to meet the requirements.

Manufacturing materials and components and assembling components requires using and controlling processes capable of shaping and modifying the materials so that the materials, components, and joints between components have the desired composition, microstructure, and properties. Understanding the effects of the processes on the materials and the dependence of the processes on the composition, microstructure, and properties of the materials being processed is also important.

Selecting suppliers capable of providing materials, components, and assemblies that consistently meet requirements requires evaluating their ability to use and control their processes so that the materials in the item being produced have the necessary composition, microstructure, and properties.

Evaluating the reliability of products requires understanding the tests to perform and how to perform them so that the appropriate material behavior is being evaluated and any materials degradation that occurs correlates with that expected during actual use. This requires knowledge of how materials degrade when exposed to different conditions and the effects of composition and microstructure on the type and amount of degradation.

Finally, quickly determining the root cause analysis of manufacturing and supplier quality problems and product failures requires failure analysis of the materials, components, and/or joints in question. This requires using materials analysis techniques to evaluate the materials’ composition, microstructure, and properties and using the data to determine whether the materials met requirements, the conditions to which the materials were exposed, and the type of any degradation that may have occurred. This information is used to identify the root cause of problems.

Source of fulfillment

I have been involved with all these aspects of design and manufacturing and have enjoyed all the technical challenges and seeing the effects of applying my understanding of metals to make engineering decisions and solve engineering problems. Though, at this point in my career, what I most enjoy is helping clients get the metallurgy information they need to feel confident about engineering decisions and to remove the frustration when dealing with problems. To many people metallurgy seems like a dark art, so it's fun to help lift the veil and help people use metallurgy. The reality is, we metallurgists do have our own engineering language.

I feel fortunate to have randomly walked into metallurgical engineering and all the different engineering situations and products I have experienced.

The post I love being a metallurgical engineer appeared first on Industrial Metallurgists.



Original post here: I love being a metallurgical engineer

Wednesday, September 21, 2022

Episode 6: You have to think small to understand metallurgy

(Apologies up front - I recorded this episode using the wrong microphone. So, the sound quality is fair. I'll do better next time.)

There are microscopic structures and processes in metals that have large effects on metal properties, performance, and reliability. Being able to conceptualize these structures and processes goes a long way toward understanding the behavior of metals and the effects of mechanical processing and heat treating on metal properties. In this episode I discuss some of the microscopic structures and their effects on metal properties.

I also discuss recent projects and a bonus at the end - some details about my recent trip to Seward, Alaska

Here's a link to the episode. The episode is about 20 minutes long.

You can subscribe to the Metal Conversations podcast series on Spotify, Google Podcasts, Apple Podcasts, Amazon Music, Pocket Casts, Overcast, Castbox, and Stitcher.

The post Episode 6: You have to think small to understand metallurgy appeared first on Industrial Metallurgists.



Original post here: Episode 6: You have to think small to understand metallurgy

Thinking small

Fatigue cracks that originate at inclusions. Stainless steel intergranular corrosion due to chromium carbide precipitates. Low steel toughness because martensite not tempered enough. Low aluminum strength because of excessive grain boundary precipitation. Orange peel due to large grains.

These are examples of how problems with a metal’s microstructure lead to reliability and performance problems. Of course, there are thousands of examples of microstructures that lead to good reliability and good performance.

One hurdle to understanding metallurgy is being able to think small – very small. Less than a millimeter. Less than a micron. And sometimes on the scale of atoms.

Conceptualizing microscopic structures and processes

There are microscopic structures and processes in metals that have large effects on metal properties, performance, and reliability. Being able to conceptualize these structures and processes goes a long way toward understanding the behavior of metals and the effects of mechanical processing and heat treating on metal properties.

I think this is where many people get stuck. The metallurgy terminology doesn’t help. Honestly, it was a struggle for me when I first learned metallurgy. But, after seeing similar concepts covered in different ways in different classes and doing research on metals I began to start thinking small and being able to conceptualize the microscopic structures and processes and how they affect metal properties.

For non-metallurgists, having a decent working knowledge of metallurgy helps them appreciate how it can be leveraged to design better, lower-cost components and quickly solve metal failures and quality problems.

Here’s a brief explanation of some microscopic structures and processes.

Grain structure

The image on the left shows elongated grains in a cold-rolled metal. This grain structure results in the metal having highest strength in the rolling direction and lower strength perpendicular to the plane of the metal. The image on the right shows grains in a metal that was annealed after cold rolling. During annealing, new grains form and grow within the cold-worked grains, eliminating the cold-worked grains.

The size of grains after annealing depends on the amount of cold working prior to annealing and the anneal temperature and time. Grain size affects metal strength, formability, toughness, creep strength and other properties.

There’s an additional microscopic structure (dislocations) that affects strength. I’ll leave that discussion for another article.

Phases

The elements present in a metal group together to form one or more phases in the metal. Every phase has a specific arrangement of atoms, is either a mixture of atoms or a compound, and has an exact composition or has a composition within a certain range. A compound is a specific ratio of atoms and has an exact composition. A mixture has a composition within a range.

Two common atom arrangements in metals

The phases that can form in a metal depend on the metal’s composition. The phases that do form in a metal depend on the metal’s composition and how the metal has been processed.

Within a metal in which different phases can form, the different phases have different properties. By altering the phases present and their relative amounts it is possible to modify a metal’s properties. The phases present and their relative amounts depend on a metal’s composition and the how it was processed, i.e., mechanical working and thermal history.

The image on the left shows a carbon steel that consisted of two phases – ferrite (light-colored) and cementite (dark-colored plates). Ferrite consists of iron atoms with a small amount of carbon atoms mixed in. Cementite is a compound consisting of iron and carbon atoms in a three to one ratio. Ferrite is a low-strength, high ductility material and cementite is hard, strong, and brittle. Together, ferrite and cementite form a composite structure.

The properties of a steel that consists of ferrite and cementite depend on the relative amounts of each phase present. Also, the spacing of the cementite plates can be modified, causing changes to steel strength and other properties.

Moving atoms

When a metal’s temperature is high enough its atoms move around, jumping from one position to an adjacent position in the metal. This atom motion is called diffusion.

As atoms move around, changes occur to grain structure, phases present and their amounts, and other microscopic structures. The changes that occur depend on a metal’s composition, its temperature, and the time at temperature.

The purpose of any heat treatment is to cause changes to a metal’s microstructure to obtain specific properties. So, for any particular alloy, the proper temperature and time at temperature must be selected and controlled in order for the desired microstructure changes to occur.

It’s not necessary to be an expert

Everyone doesn’t have to be a metallurgy expert. It’s hard enough to be an expert within one engineering discipline. But basic knowledge about microscopic structures, their effects on metal properties, and the effects of mechanical and thermal processing on microscopic structures is important if non-metallurgists want to have awareness of how metals engineering can be applied to design components and solve problems. It’s also important for having productive discussions with suppliers, metallurgists, and metallurgical labs.

I’m not a mechanical engineer but have enough understanding of mechanical engineering concepts and considerations so that I can have productive conversations with them when working on projects. I still depend on their expertise to help fill in my large knowledge gaps.

Interested in learning more about grains, phases, and diffusion? Check out our Principles of Metallurgy online course. 

This article was originally published on the Accendo Reliability website https://accendoreliability.com/thinking-small/

The post Thinking small appeared first on Industrial Metallurgists.



Original post here: Thinking small