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Heat Treat Radio #93: Why Ion Nitride? An Exploration with Gary Sharp

Today’s Heat Treat Radio episode illuminates how Gary Sharp, founder and CEO of Advanced Heat Treat Corp, began the company. Heat Treat Radio host and Heat Treat Today publisher, Doug Glenn, will hear from Gary about the technical highlights and capabilities of ion nitriding, including: common applications, real-world benefits, and true limitations.

Below, you can watch the video, listen to the podcast by clicking on the audio play button, or read an edited transcript.




The following transcript has been edited for your reading enjoyment.

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Advanced Heat Treat Corp.’s Beginnings with Ion Nitriding (01:20)

Doug Glenn: We’re going to be talking about nitriding, specifically, ion nitriding. Gary Sharp has a long history with the technical aspects of ion nitriding.

Tell us a little bit about yourself and Advanced Heat Treat.

Gary Sharp:  I started with John Deere in the Chemistry department. I have a degree in Science Chemistry. Then I went into various other areas: production support and different management positions before I ended up ultimately leaving to start Advanced Heat Treat.

The way I became oriented and introduced to ion nitriding was a company who we had done work with wanted to sell John Deere some new technology. They came in for some meetings, and we had several meetings with top management. But in 1979/80, that was one of the first real downturns in the ag market. So, Deere wasn’t really interested in taking on a new technology at that time. While I was still interested, I talked to various management people. Ultimately, I got permission to invest and investigate, on my own, the ion nitriding process.

Doug Glenn: Even while you were still at Deere?

Doug Glenn (l) and Gary Sharp (r)
Source: Heat Treat Today

Gary Sharp:  While I was still at Deere, but I had to do it on my own. All of my vacations, my holidays, and things were spent doing market surveys, talking to various potential users and so forth, in the marketplace, to see if it had a “fit.” Because, obviously, when an equipment supplier comes in, everything is nice and rosy and so forth and the equipment works for everything. That’s not always the case, of course.

After discussion with the management, they gave us permission to continue our investigation. From 1979 to 1981, we did a lot of research. I took vacations and went and did market surveys with different potential customers and found out that ion nitriding still seemed to have a lot of the glitz and the shine from the company that came in to talk to us.

We went ahead and, after a period of time and evaluation, put together an investor base. We put together a building, equipment was purchased, and then we began to do ion nitriding. We started with a 25 KW lab unit and a 160 kW unit that we would transfer from development into production-sized lots.

Doug Glenn:  You say “we,” so this was not Deere though — these were the people outside of Deere — yourself and some others, right?

Gary Sharp:  Yes, myself and several others, at the time. Unfortunately, some things happened and partnerships are not always the easiest. That dissolved, and it was pretty much me and my wife and our employee base. That was the start anyway.

The trouble is, early on, the small lab unit worked fine, and we could do out development; but it didn’t transfer over to the larger production unit. We kept having power supply issues. This went on for months and months and months. Ultimately, I had to get legal involved. That churned around for over a year, probably. Here we’re trying to have a startup business and, at the same time, we’re fighting with everything else. The building came together, the lab we put in worked well, but we just had issues.

We weren’t aware of how many pieces of equipment had been sold in the marketplace by this company until we got into legal, and then we started having more serious discussions. They replaced the power supplies with a new source and solved the arc suppression problems and some of the things that were taking place. Basically, we would get into the range of an unstable arc discharge; and instead of heat treating we were melting the parts. Unfortunately, we couldn’t keep many customers doing that! That got resolved, we got additional equipment in the settlement, and then we took off.

Doug Glenn:  When did you actually start the company?

Gary Sharp:  1981/82 timeframe.

From the market surveys, we knew there was considerable interest. Obviously, we went back to some of those folks and started doing some development work with them, particularly on applications where ion nitriding was a significant advantage over some other treatments. Where I was in Iowa, they were doing gas nitriding on cylinder liners. Again, with the market going south for a while, they weren’t interested in any new technologies; and they just continued to do the gas nitriding.

Doug Glenn:  So, you ran through a little bit of legal issues. When would you say was the first time you felt you were up and running?

Gary Sharp:  I think last week, maybe! It took a while.

In our investigation, we found out they had sold quite a few pieces of equipment; and they’d all been mothballed and put on the shelf. In a way, it was a bad deal, but it was good for us because we had the solutions to fix them.

I went around and purchased equipment, 10 cents on the dollar, and bought additional capacity. We would get up to around 70–80% capacity on one vessel, and then I’d go buy another. I’d get that up and established in our plant. It worked out quite well for us, being dumb and stupid, I guess.

Gary Sharp:  It kind of evolved over time. We’ve got 50+ units now — ion nitriding as well as gas nitriding. The nitriding field has been our baby for many, many years. We’ve done a lot of development with other suppliers to make sure the applications they run are using the right process.

What Is Nitriding? (09:03)

Doug Glenn:  Let’s talk a little bit about nitriding. Then I want to hone in a little bit more into ion nitriding. What is nitriding? How is it different from ion nitriding? What are we doing, and why do we do it?

Gary Sharp:  Nitriding is a case hardening process. It is used on a variety of components to improve wear, abrasion resistance, fatigue strength, etc. It’s generally a lower temperature process (than, say, carburizing or anything like that), so you don’t have the resultant distortion and post machining requirements that you do with some of the existing treatments that are out there.

Nitriding is a case hardening process. It is used on a variety of components to improve wear, abrasion resistance, fatigue strength, etc.

As you mentioned, there is ion nitriding, there is gas nitriding, there is salt bath nitriding. All three do similar things, they just have different requirements. Obviously, there are materials and chemistry that are involved with each of those materials, but you can nitride almost anything, at least putting a compound zone or an outer layer on that’s very abrasion resistant. Where the process gets developed is when you have alloy (Chromalloy, malatium, aluminum); these are nitride formers which, combined with the nitrogen at and below the surface, give you a diffusion zone that has longevity and a very high hardness.

Doug Glenn:  In the simplest terms, nitriding is in one sense hardening the surface of a metal by infusing nitrogen, basically. It’s done in a variety of ways, and that’s what I wanted to ask you a question about.

If the total universe of nitriding is 100%, what percent of that, do you think, is gas nitriding, salt nitriding and ion nitriding? Your best guess.

Gary Sharp:  I’ve heard different numbers. Ion nitriding has grown significantly over the years. Up until that point, gas nitriding and salt bath nitriding were probably 70/80%, I would guess. Ion nitriding is quite visual — it has a purple glow. That’s why I’ve got this purple tie on.

Doug Glenn:  I was going to ask why you have the purple tie on. I wondered why www.ahtcorp.com is purple.

The purple glow
Source: Advanced Heat Treat Corp.

We won’t go into the details of gas nitriding or salt nitriding; that can be a topic for another day. Let’s talk a little bit about how ion nitriding gets the nitrogen into the surface of the metal. How does that happen? How does that differ from, if you will, gas and/or salt?

Ion Nitriding (13:40)

Gary Sharp:  It’s a diffusion process. If you look at a piece of equipment, a hearth plate is a cathode in a DC circuit. The vessel wall is the anode, and the gas is your carrier.

Through the transfer of energy, you bombard the part with ions and neutral atoms. They transfer their kinetic energy, and that is what actually heats up the parts. In the early years, that was the only way you could heat the parts. Later came more developed equipment.

Now, you have auxiliary heating in the walls which adds some advantage, but it also adds a little more complexity in terms of keeping and maintaining a current density on the part adequate to diffuse into the metal itself. Sometimes you put it in a vessel, and you turn on the power supply. All the energy is coming from somewhere else, and you don’t actually diffuse or harden the part itself. It’s been solved, obviously, over the years.

Doug Glenn:  Are you making a positively and negatively charged item?

Gary Sharp:  The ions bombard the surface.

Doug Glenn:  Right. The ions bombard it because they’re attracted magnetically?

Gary Sharp:  Yep. And they transfer the kinetic energy. That’s what heated the workpiece up in the early equipment. Like I said, in later equipment, they had auxiliary heating, as well, in the chambers.

Applications of Ion Nitriding (15:17)

Doug Glenn:  Typically, what are some of the more common applications? Is it mostly agriculture, like John Deere?

Gary Sharp:  By no means. When I was still at Deere and left Deere, we made sure we didn’t have conflict of interest. I didn’t even solicit any Deere parts, and that went on for quite a few years. Since, we’ve done parts for them and so forth.

Anything that has high wear and abrasion. One of the advantages that we haven’t talked about is the ability to selectively harden and the ease of masking. “Ease of masking” means instead of using copper paints or stop-off materials, you can just interrupt the plasma from touching that surface. If you have some threads, you just put a nut on there. It blocks the plasma from touching the threads, and they won’t get hard. It is a physical block. And you have maybe an 8–10 thousandths/8–15 thousandths gap and you still don’t diffuse beyond the masking itself.

There are a lot of ways of masking parts with ion nitriding. Those are generally done on customers’ parts that are repeating, so you don’t have to paint them every time they come in. You let the copper paint dry and all of that. We would just use mechanical masking and just use them over and over. They basically last forever.

Doug Glenn:  I’ve heard one of the other real advantages of ion nitriding is blind holes and areas like that where gas flow wouldn’t necessarily get. Even salt might have a little of bit of difficulty getting in there.

Gary Sharp:  It is an advantage. There is an L/B ratio we must be aware of. You conform that plasma to go down in the hole, if it intersects itself with the other side (it’s called hollow cathoding). That is extremely hot and can melt the parts.

That’s what we learned early on, before we got some of the equipment issues resolved, is that we would get in that unstable arc discharge range. We’d basically melt the work piece. And the customers weren’t happy with that!

Doug Glenn:  It’s a bad day when you open the furnace to a pool of metal. That is not a good day!

We’ve got certain benefits there. Any industry, you’re saying, can do it, anywhere where there’s high resistance. So, automotive parts, yes?

Gary Sharp:  Automotive, aerospace. We did the submarine gear for the Seawolf-class submarine, 35,000 pounds, 160 inch diameter. That ran, probably, 400+ hours. Not because it was big, but because they had an extremely deep case requirement. The diffusion took longer, particularly at the lower temperatures that you run, versus other kinds of treatments.

Sea-wolf class submarine
Source: Wikipedia.com/Defense.com News photo

Doug Glenn: With ion nitriding, you are typically below the temperature where distortion could occur, I believe. So, you shouldn’t have to do post hardening processes.

Gary Sharp:  Yes. That is one of the big advantages, for sure. We found that one of the reasons a lot of our customers transition out of one process into ours was because we eliminated some subsequent operations which they typically had to have and reduced their cost. Even though it wasn’t a direct cost in nitriding, it definitely affected that.

Challenges with Ion Nitriding (

Doug Glenn:  What are some possible challenges with ion nitriding?

Gary Sharp:  Loading a chamber and the part spacing you need, depending on what level of backing they’re going to run at, will determine how wide the plasma is. That, in turn, affects then how close you can put parts together or close to each other so that you still get treatment on both products or both pieces. And it does allow you to do mixed loads of different types of things, depending on the level of vacuum and how wide the plasma that you’re conducting surrounds that part.

This is a concern, and that’s why we review all those. Generally, we even run some test samples for the customer. We let them compare our metallurgy with theirs before they commit even further production loads.

We had a steering torsion bar we probably ran 10,000 pieces in a load. We masked the bottom portion of that because it got cross-drilled in the assembly and, of course, they didn’t want to have to drill through a hardened piece of material. Consequently, it worked out really well for us; and we did that for 15/20 years.

Special Consideration: Parts Cleaning (22:17)

Doug Glenn:  I have heard that when you’re ion nitriding, part cleanliness is a critical part. Can you address that?

Parts cleaning
Source: Advanced Heat Treat Corp.

Gary Sharp:  Yes. Of course, we clean everything before it goes in the chamber. Typically, it has been either with an alkaline wash or vapor degrease to get rid of any contaminants off the surface. The early part of the cycle, when you turn the DC power supply on, you begin to sputter. So, any oxides and things like that on the surface get sputtered away before you actually ramp up and start the diffusion phase of the cycle.

Cleaning is important. If you have plating, that often blocks out. If you have dirty parts, that will prevent nitriding. Or, an even worse case, it will sputter off and onto other parts and then you contaminate those as well.  Cleaning is an important part of the equation.

Doug Glenn:  Are there any other common misperceptions about ion nitriding that you would like to address?

Gary Sharp:  I don’t know any more. Back then, when we first started, that’s how we learned some of the things we did, of course. The spacing is important, the gaps are important so that you don’t hollow cathode. And, as you touched on a little bit ago, the cleanliness; if it’s really dirty and contaminated, you’re going to have a void in that area and it won’t nitride. Even a fingerprint could cause an issue.

Cleaning parts it’s getting more difficult, right now, with the push to restrict the use of vapor degreasing and things like that. We have to come up with other cleaning methods that are suitable and still meet the end-product requirements.

Wear and abrasion are big benefits. Treating parts at a low enough temperature that you don’t have distortion. You don’t have to set up and post heat treat machine. Those are all key benefits from the process itself.

It’s repeatable. Over and over, we do thousands and thousands of parts and loads at our different locations. It’s been quite successful for us.

Ion Nitriding and FNC (26:07)

Doug Glenn:  Can you put ion nitriding (or nitriding, generally) in perspective with things like ferritic nitrocarburizing, maybe carbonitriding? Where does it fall on the scale? What are the differences between those processes?

Gary Sharp:  Ion nitriding is most effective when you have Chromalloy, malatium, aluminum, and those types of elements in your product. Of course, with carburizing, that’s not a requirement. With carbonitriding, typically, it isn’t a requirement. Both of those processes are done at considerably higher temperatures which then gets you back into the questions: Is the part going to distort, do we have to post heat machine?

Doug Glenn:  I have one last question for you about people who, potentially, could use your services, but I want to dive a little bit deeper into your company before we wrap up. You’ve got three locations, now, correct?

Gary Sharp:  We have four.

Doug Glenn:  Four locations? Where are they?

Gary Sharp:  Three of them do ion nitriding and the nitriding process. Here, in Waterloo, we have the corporate headquarters where we have the largest ion nitriders. As a matter of fact, we are installing one right now that will do parts upwards of about 30 feet. We have Waterloo, Iowa, and we have the two facilities here in essence where we started. It was risky enough, leaving John Deere, without going somewhere else.

Here, in Waterloo, we have the corporate headquarters where we have the largest ion nitriders. As a matter of fact, we are installing one right now that will do parts upwards of about 30 feet.

Then we added Michigan. Dr. Ed Rolinski was our key “go-to” guy up in Michigan. He lived with me for a year and half. Meanwhile, we were building the facility in Michigan; so he could go back to it.

Then we started a plant in Cullman, Alabama. We’ve got the central Midwest pretty well covered with all types of applications. We’re starting to add some other types of treatments: the black oxide treatment® to kind of subsidize the ion nitriding, if you will.

Doug Glenn:  Let me wrap up with this question:  Let’s say there is a company out there, a manufacturer, who currently is doing some sort of a case hardening process. They’re thinking, “I wonder if I should look into nitriding/ion nitriding.” What would be your guidance for them? What questions should they be asking themselves?

Gary Sharp:  Companies have to go through the some of the same steps we did early on —  testing, making sure the parts/the treatment they select is repeatable, and it fits their end-use.

It’s rather expensive equipment. Some equipment is in excess of $600,000–$700,000 apiece. Depending on the size, they can get even more expensive than that.

We do make some of our equipment, now. We have in the past, particularly, when there were things that weren’t available.

If you’re looking to outsource ion nitriding, you’d start first with the material chemistry and see what materials are used. It has to fit the requirements of the end application, as well. That’s probably the biggest thing.

Then, if it’s got alloy in it and you figure out your case steps and your diffusion requirements, next you would do some development testing on parts and see how it worked in the application and go from there.

Doug Glenn:  And it’s probably best just to ask an expert! At least call and check it out.

Is there any part (or maybe there is more than one) that if you have this part, you shouldn’t even consider ion nitriding — it’s just not going to work?

Gary Sharp: In ion nitriding, a key thing to be cautious of — assuming the material is compatible with the nitriding reaction — is wide holes, or holes we can’t conform the plasma tight enough to reach. In those cases, you’d have hollow cathode and then you’d have a melting issue or damage to the parts.

Parts that have to be nitrided all over can also be problematic. Oftentimes, in those cases, you would nitride for half cycles and then flip them because where it’s sitting is actually getting masked, where it’s sitting on the hearth plate or on your fixture plate or something similar. So, those are the kinds of applications that you have to give more thought to.

Doug Glenn:  We appreciate your time, Gary. You folks have been around a long time, and your reputation is one for doing great work. I hope people will get in touch with you.

 


About the expert: Gary Sharp founded Advanced Heat Treat Corp., “AHT” for short, in 1981. The company initially went to market with its UltraGlow® ion nitriding & ion nitrocarburizing services, but since then, has expanded its offerings to also include gas nitriding, gas nitrocarburizing and UltraOx® as well as more traditional heat treatments such as carburizing, induction hardening, carbonitriding, through hardening and more.

For more information: Contact with Gary or learn more about Advanced Heat Treat Corp. at www.ahtcorp.com, or call 319-232-5221.


 

To find other Heat Treat Radio episodes, go to www.heattreattoday.com/radio .

 


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FAC Awarded for Aerospace Applications Forging Line

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Jiuli has awarded the final acceptance certificate (FAC) for a hydraulic radial forging line to a metals industry technology supplier with North American locations. The plant has a press force of 18 MN for each of the four press cylinders, which will allow sophisticated materials for the aerospace industry to be forged.

"The new SMX forging line enables us to manufacture our products in a highly cost-efficient way. The high productivity and the wide range of products give us the necessary flexibility to respond quickly to changing demands," commented Luo Tongwei, project manager at Jiuli.

In addition to the SMX 900 / 18 MN as the core machine, the plant comprises two fully synchronized eight-ton forging manipulators and equipment for loading and unloading as well as for cutting, marking and cooling of forged bars. SMS group manufactured the plant to provide a forging strategy that is calculated on the basis of a comprehensive material database as well as the preset machine, material, geometry, and product-related parameters.

“SMS group has enjoyed a close working relationship with Jiuli for over ten years and has supplied them with different types of equipment during this period. We are looking forward to the further fruitful cooperation”, says Jia Hui, senior sales manager at SMS group.


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Heat Treat Radio Series for Spring

OC

The days are getting a little longer, you've saved up some vacation hours, it's time for a break this spring!

Make use of some down time to listen in on a couple of Heat Treat Radio series. Putting in some driving miles, relaxing in the sand, or enjoying a staycation all mean some time to peacefully enjoy some heat treat topics. We've put together an original content piece that lets you listen in on a 3-part series on thermocouples, and a back-to-basics series on heat treat hardening. It's nice to know that there is plenty to listen to; you can just click to play each episode!


Thermocouples 101 with Ed Valykeo and John Niggle

This series gives the opportunity to learn from an expert all about thermocouples. The first episode digs into thermocouple history, types, vocabulary, and other basics. Hear from Ed Valykeo, as he gives some of his own history and then dives into all things thermocouple.

1. Heat Treat Radio #61

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The second episode covers thermocouple accuracy and classification. Ed Valykeo continues to review and explain necessary information on how thermocouples are calibrated and used.

2. Heat Treat Radio #62

The final episode in this series gets into discussion with John Niggle about thermocouple insulation types. His review towards the beginning of the episode is helpful, and his discussion of insulation reminds readers that job specifications and requirements are crucial.

3. Heat Treat Radio #64

Metal Hardening 101 

Mark Hemsath sits down with Heat Treat Radio to provide an overview of metal hardening basics. In the first part of the series he provides explanation of what it is, what materials can be hardened, why it has to be done, and more.

1. Heat Treat Radio #49

For the second episode, Mark Hemsath explains five hardening processes: carburizing, nitriding, carbonitriding, ferritic nitrocarburizing, and low pressure carburizing.

2. Heat Treat Radio #54

In this final episode for the metal hardening series, a discussion is presented on newer advances in metal hardening. A call is even put out for new ideas and engineers willing to experiment with some of these advance.

3. Heat Treat Radio #56

As you can see above, this resource provides two series -- each with three parts -- that give a comprehensive look at two fundamental components in the heat treat industry. Both the discussion of thermocouples and the investigation of metal hardening provide educational listening with something for everyone in the form of review as well as maybe some basics that have been neglected or forgotten.


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Heat Treat Radio Series for Spring Read More »

Heat Treated Forging Tools Get New Quench Tank

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A forging tool manufacturer will receive an agitated heated oil quench tank to be used post-heat treatment in order to set hardness. Tools such as nippers and ladles -- critical components in the foundry and in forging equipment -- are heat treated to the required hardness and then quenched in oil to set that hardness.

The L&L Special Furnace Co. small model QTO1224 heated oil quench tank holds 65 gallons of oil and can quench parts from 50 to 75 pounds. The quench tank oil is agitated by an impeller with a ½ HP explosion-proof motor and is heated with a 4.5 kW immersion heater to maintain the oil at a slightly elevated temperature to help eliminate oil flashing and fire potential.


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Cincinnati Steel Treating

Technicians with a combined 100+ years of metallurgical and heat treating experience . . . one of the largest commercial nitriding departments in the country . . . and the recipient of the 2022 Master Craftsman Award . . . All of these attributes characterize The Cincinnati Steel Treating Company (CST), a heat treater serving clients in multiple industries, a few being the large gear, automotive, and industrial knife, as well as hundreds of general-purpose machine shops.

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Heat treatment of long parts
Source: Cincinnati Steel Treating

The company was founded in 1941 to accommodate the gear industry’s metal-treating needs in the Cincinnati, Ohio, area. By 1950, they had diversified and moved to 5701 Mariemont Avenue in Cincinnati. Now, after two major expansions, the 45,000 square-foot facility provides heat treating services nationwide. Some of these heat treat services include: carbonitriding, FNC, sub-zero metal treating, and tool steel processing. The dimensional capacities of their furnaces accommodate large loads of smaller parts as well as parts too large for most furnaces. For example, their pit furnace vertically processes parts up to 120” to prevent warpage, and the max capacity of their car bottom and nitriding furnaces is 8’ x 17’ x 6’ and 57” x 107” respectively.

In addition to their heat treatment services, CST also provides metallurgical lab testing services and failure analysis for both in-house and outside treated parts. A fully equipped metallurgical laboratory includes a metallurgical cutoff saw, metallographs, microscopes, stereoscopic equipment, and more. The lab includes capabilities for macro-etching, quench oil testing, and other chemical testing for metallic parts. Some applications of metallurgical analysis include tool steel industrial knives, highly alloyed rolling mill rolls, flat-rolled carbon sheet steel products, and carburized and hardened gears. With experience analyzing various types of materials, such as stainless steel, brass, aluminum, titanium, and cast iron, the company’s lab analysis has saved CST’s clients thousands of dollars, both by helping them to improve their processes and determining the root cause of a failed component.

Cincinnati Steel Treating is proud of the difference that it has made in terms of the parts it has heat treated over the years. Two specific jobs stand out; first, heat treating the armor plating of the military’s Humvee for combat. The client emphasized that the job was an integral part of saving lives, and the company saw letters from soldiers and their families expressing their gratitude.

Carburization of gears
Source: Cincinnati Steel Treating

The second job was solution treating and aging an aluminum mounting bracket for the external booster rockets affixed to a space shuttle for NASA. These parts were designed to withstand being jettisoned from the space shuttle (with the external booster rockets) once the rockets’ fuel depleted. Made of aluminum, the components could more easily disintegrate during re-entry into the earth’s atmosphere. CST even purchased a high-speed crane and affixed it to the bridge of their existing overhead crane to maintain the desired quench delay time specific in the military specifications for aluminum. This program ceased when the space shuttle program ended, but the high-speed crane is still used for jobs requiring specific quench delays.

Plans for the future are looking bright as Cincinnati Steel Treating rounded out 2022 with the Master Craftsman Award for Commercial Heat Treater of the Year. At the beginning of 2023, CST added a new IQ furnace and continues to increase capacity and capabilities as needed.


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Happy Easter to All Our Readers!

Heat Treat Today wishes a Happy Easter to our readers. We will be out of the office Friday, April 7, 2023, and will be back on Monday, April 10, 2023.

Good Friday is a time of reflection on the ultimate sacrifice from Jesus Christ, and Easter Sunday is a day to celebrate His resurrection from the dead. We rejoice in the hope He provides with His victory over sin and the grave. We hope you have a safe and blessed holiday.

Have a beautiful day as we reflect on this great love, Heat Treat Today.

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PWR Advanced Cooling Technology Ramps Up Heat Treat with 3 Brazing Furnaces

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PWR Advanced Cooling Technology has ordered two universal batch CAB furnaces and a CAB continuous line. The furnaces will be used for brazing aluminum heat exchangers. The 3 solutions will go to 2 continents – Australia and North America.

PWR Advanced Cooling Technology specializes in the production of modern and efficient heat exchangers and has used SECO/WARWICK Group furnaces in the past. Two furnaces, the continuous CAB line and Universal Batch CAB Furnace, will be delivered to production plants in Australia. The second chamber furnace will be delivered at the same time to the American branch of PWR, C&R Racing Inc. 

Andi Scott, general manager - advanced technology, PWR Australia
Source: PWR Australia

Sławomir Woźniak
CEO, SECO/WARWICK
Source: secowarwick.com

The universal batch CAB furnace meets the requirements for protective atmosphere aluminum brazing technology (Nocolok®) and allows users to braze products in a horizontal or vertical position.  The continuous CAB line performs brazing in a protective atmosphere for mass production of various heat exchangers.

“We have already ordered the company’s furnaces twice, and the current contract, although more than 25 years have passed since the first order, is the best proof that we are satisfied with the product quality, cooperation, and after-sales service.” said Andi Scott from PWR Advanced Cooling Technology.

“The current contract is special because we will deliver different solutions simultaneously to two continents but to the same customer,” commented Sławomir Woźniak, CEO of the SECO/WARWICK Group.

 


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Heat Treat Brazing Furnace for North American Manufacturer

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At the end of March, a vacuum aluminum brazing furnace was shipped to a manufacturer that serves the aerospace industry. The North America company produces complex heat exchangers, cold plates, and avionic enclosures.

The furnace, from PVT, Inc., has an AMS 2750 qualified work zone of 36” x 30” x 90” with type B instrumentation and Class 1 temperature uniformity. In addition to this furnace, PVT delivered two furnaces in Q4 and one furnace in Q3 2022 to companies manufacturing components for avionics, MRO (maintenance, repair, and overhaul), and electromechanical assemblies.

Vacuum aluminum brazing furnace
Source: PVT, Inc.

PVT Incorporated is a subsidiary of Consarc Corporation, an Inductotherm Group Company.


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How Clean is Clean Enough?

OC

How clean is clean enough? Insufficient cleaning before heat treating can interfere with results; insufficient cleaning after heat treating can impact perception of the part. Discover four methods of measuring part cleanliness that can take place within your heat treat operations in this article provided by SAFECHEM Europe GmbH.

This Technical Tuesday article is drawn from Heat Treat Today's March Aerospace Heat Treating print edition. If you have any information of your own about cleaning after heat treating, our editors would be interested in sharing it online at www.heattreattoday.com. Email Bethany Leone at bethany@heattreattoday.com with your own ideas!


Previously we talked about the importance of cleaning for demanding heat treat applications — in particular gas nitriding, or ferritic nitrocarburizing (FNC), low pressure carburizing (LPC), and brazing. So, if cleaning is a nonnegotiable for certain heat treatment processes, one might ask: how clean is clean enough?

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The basic definition of clean is removing unwanted substances, particles, and contaminations. However, when applied to surface cleaning, “clean enough” is determined by what you want to do next in your processing. Parts are generally clean enough if satisfying outcomes can be achieved in the subsequent application.

First, Do You Know the Expectations?

Unlike measuring hardness, monitoring or determining part cleanliness is by no means a straightforward matter.

There are two different kinds of contaminations to consider:

  1. Particle contaminations
  2. Film-type contaminations

Types of contamination
Source: SAFECHEM Europe GmbH

Whereas there are industry definitions or standards for particle contaminations (e.g., VDA-19 or ISO-16232 for the automotive industry), standards for film-type contaminations are not yet fully established.

This inadequacy also explains why many companies do not fully know what to expect when it comes to cleanliness, and they do not fully grasp the potential impact that insufficient cleaning could cause.

Especially when it comes to the heat treat industry, it is important to differentiate between the component cleanliness requirements before and after heat treatment.

Film-type contaminations are the primary factor which could negatively impact heat treat results. Requirements on particle contaminations (VDA-19) usually come from the automotive industry and need to be ensured/monitored after heat treatment.

Therefore, a distinction must be made between a) surface requirements for heat treatment and b) client cleanliness requirements on the final components.

What Is the Right Measurement Method?

The analysis of film-type contaminations and particle contaminations are two different subject matters. Measurement methods for one cannot replace the measurement methods for the other. Often, it is quite common for companies to have requirements on both film-type contaminations (e.g., surface energy in dyne/cm or mN/m) and particle contaminations (e.g., max. particle load) in their component drawings.

Some common measurement methods for determining contaminations include:

  1. White wipe test: A simple visual inspection test using a clean and dry white wipe to wipe across the surface for the detection of colored residues. Because contaminations can negatively impact heat treat results, inspection should take place prior to heat treatment. The test is limited to colored particles whose size can be perceived by the eye.
  2. Water break free test: An easy test to check if oil droplets might be present on the surface is when parts are rinsed with clean water at an angle. If there are contaminations, water will separate around those areas, showing a “break” in the water surface.
  3. Dyne testing: This method is commonly used for measurements of film-type contaminations. Dyne inks and fluids are applied to a substrate for measurement of its surface energy. The surface energy (measured in dyne/cm or mN/m) can be identified as the highest dyne solution that wetted out the substrate surface. The higher the dyne level, the better the adhesion of the surface for painting, coating, or bonding. However, the test does not provide information on the types of contaminations present.
  4. Millipore filter measurements/solvent extraction test: This measures surface contamination on parts as a weight per 0.1 m2. Samples are obtained by flushing the cleaned part with an organic solvent where particulates are collected on a filter disc (solvent will be evaporated off later). The test can determine the nature, number, sizes of particles, and if there are reflecting/ non-reflecting metallic particles. Moreover, oil film on parts can be measured after evaporation of the extraction solvent. For automotive, aerospace, or electrical, the level of cleanliness typically ranges between 0.01–0.001g per cm2.

In general, these methods differ in their complexity and informative value, and also if they can be carried out on site or off site (e.g., in a laboratory). The table below provides an overview of common measurement methods:

Cleanliness measurement methods
Source: SAFECHEM Europe GmbH

Determining Cleanliness — An Art and a Science in Itself

As you now see, the variances and potential limitations of different measurement methods can add to the complexity of cleaning validation. Consider the following:

  • Should you measure a specific surface area, or the entire part? And how do you measure pre-assembled components with different parts molded together?
  • It might be easy enough to measure surface cleanliness, but what about blind holes and crevices?

Visual inspections have many shortcomings. It is subjective, time consuming, and does not cover total level of contamination. The quality of inspection will very much depend on the operator. While automated particle counting is efficient and objective, it does not offer insights on specific contaminants.

Extraction methods targeting nonvolatile residues (NVR) can help determine a total level of contamination, but not spot contamination. It does not account for inextricable contaminants either, which could impact part functionality.

Meaningful Measurement Begins with Understanding the Big Picture

This is why, in order to measure and monitor cleanliness in a meaningful and reliable way, you should consider:

  • What potential contaminations could come about in your process/facilities?
  • What contaminants are you looking to remove?
  • What are the next processing steps?
  • What are the risks involved in removing the contaminants?
  • What are the risks associated with the potential residue?

Since every test has its own limitations, you should be mindful of the test specifications, too — for example, how it is conducted, result variability and reproducibility, as well as biases.

Cleaning can be a crucial step in heat treat, but more cleaning does not always equal better. More cleaning also implies more costs, more time, more resource usage. What’s really key is understanding what you, or your clients, are trying to achieve.

As you see, cleaning and measurement require expertise and knowhow — context is everything. Reach out to a cleaning specialist or trusted cleaning solutions expert for advice. If insufficient component cleanliness seems to be affecting your heat treat results, our cleaning specialists, along with our partners, would be happy to advise.

For more information:

Contact SAFECHEM Europe GmbH at service@safechem.com or visit www.safechem.com


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Cybersecurity Desk: Performing Your Basic & Final NIST SP 800-171 Self-Assessments

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For any heat treater interested in getting these high-security contracts, review the following steps that will help you successfully complete your basic and final self-assessment.

Today’s read is a Cybersecurity Desk feature written by Joe Coleman, cybersecurity officer at Bluestreak Consulting™. This column is in Heat Treat Today’s February 2022 Air & Atmosphere Furnace Systems print edition.


Introduction

Joe Coleman
Cybersecurity Officer
Bluestreak Consulting™
Source: Bluestreak Consulting™

Do you have plans to perform your NIST SP 800-171 self-assessment, but need more clarity about what’s involved? DFARS 252.204-7012 and the DFARS Interim Rule, including DFARS 252.204-7019, state that all DoD contractors in the Defense Industrial Base (DIB) that process, store, and/or transmit CUI (Controlled Unclassified Information) and want to be eligible for any contract award must complete a self-assessment (or basic assessment) using the DoD’s NIST SP 800-171 Assessment Methodology and generate a points-based score. This score will then be uploaded into the Supplier Performance Risk System (SPRS). At the time of contract award for a DoD contract containing the new 7019 clause, a DoD contracting officer will verify that a score has been uploaded to the SPRS.

For any heat treater interested in getting these high-security contracts, review the following steps that will help you successfully complete your basic and final self-assessment.

Identifying and Defining Your Organization’s CUI

Your NIST 800-171 basic self-assessment should start by identifying CUI sources and flows and mapping them within your organization’s IT systems. Organizations need to understand that CUI is an information category that includes Covered Defense Information (CDI) and Controlled Technical Information (CTI).

Define the Scope of the Self-Assessment

When finished identifying all CUI, you’re ready to scope the environment. To scope the environment correctly, first, determine what systems, applications, and business procedures that process, store, or transmit CUI. Second, define details of how data moves through your network.

NIST 800-171 Self-Assessment Procedure

You can find the self-assessment procedure for all compliance requirements in NIST SP 800-171A. Basically, a self-assessment is performed evaluating all 320 assessment/control objectives. Assessment/control objectives include the determination statements related to a particular security requirement. The 320 assessment/control objectives are divided among 110 separate controls which are included in 14 different control families.

Self-assessment methods include:

  • Examining: reviewing, inspecting, observing, or analyzing assessment objects
  • Interviewing: discussing with individuals to facilitate understanding, clarification, or gather evidence
  • Testing: confirming that assessment objects under specified conditions are met

Organizations are not expected to use all assessment methods and objects in NIST 800-171A. Instead, they have the freedom to determine which methods and objects are best for them to get the desired results.

Must Have a System Security Plan (SSP)

One of the most important requirements for a successful self-assessment is having a System Security Plan (SSP). Not having an SSP is a definite obstacle.

The SSP describes the system boundaries, how the IT system operates, how the security requirements are implemented, and the relationships with, or connections to other systems. It also includes information on security requirements.

Plan of Action & Milestones (POA&M)

To best protect CUI, organizations need to implement the CUI security requirements to the fullest extent possible. But, when some of the requirements are not completely implemented, a POA&M must be generated. The POA&M includes the tasks needed to resolve deficiencies, along with the resources and timelines required.

The purpose of the POA&M is to identify, assess, prioritize, and monitor the progress of corrective actions, allowing the organization to achieve the desired assessment score.

Next month we will discuss: “Submitting Your Basic Self-Assessment Score(s) To The SPRS.”

About the Author:

Joe Coleman is the cybersecurity officer at Bluestreak Consulting™, which is a division of Bluestreak | Bright AM™. Joe has over 35 years of diverse manufacturing and engineering experience. His background includes extensive training in cybersecurity, a career as a machinist, machining manager, and an early additive manufacturing (AM) pioneer. Contact Joe at joe.coleman@go-throughput.com.


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