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2020 Heat Treat Themes for Intellectual Fitness

What have we learned these past six months? Well, for starters, everyone misses being face-to-face! Yet many heat treaters have taken this time to be flexible and innovative, building their intellectual fitness, so to speak.

This article, a Heat Treat Today Original Content piece, highlights some of the major themes which digital opportunities provide to heat treaters. You may note that some of these opportunities are still being offered; please reference company websites to confirm.


“COVID-19 came along… [but] it forced me to look into other projects which may be even more interesting. And I decided to build my intellectual property.”

-Harb Nayar, president of TAT Technologies, LLC on Heat Treat Radio

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Signs of life pre-April 2020 seem to be coming back, though many people are still reckoning with the work constraints. This past quarter, and even into Q3, heat treaters have seen a remarkable initiative to make learning online available. Heat Treat Today did a select study* of what a few of the most recent, heat treat specific events had to offer. The results of the examination demonstrates trends in the types of themes which heat treaters can improve their “intellectual fitness.”

Summary

A few themes stick out as key content: the fundamentals, quality control, additive manufacturing (AM) and 3D printing, and maintenance concerns.

source: Heat Treat Today

These themes were made available to heat treaters in the form of three main presentations: session or lecture format; panel discussion; round table. All platforms engaged in some form of online sessions which colored more lecture/seminar styled with scholarly professionals to addresses given by industry leaders or technical insiders. Larger, lengthier events, such as Furnaces North America and SECO/WARWICK’s e-Seminar incorporated panel discussions in addition to single-speaker sessions. Truly unique was the announced “round table” access at the Ceramics Expo Connect’s session on September 24th, “How to Improve Your Ceramic Products Material Properties Through Raw Material Optimization?”

Within these structures, a few presenters took advantage of the digital opportunity to offer case studies and live demonstrations of certain methods and processes. At the e-Seminar, multiple opportunities for this included “Symptoms of a Burner Issue – How to Solve It” and “Revealing the Secret of Carburizing,” while Buehler’s Wilson Hardness Days (WHD) event promises “live demonstrations of DiaMet software.” Only a few of the events examined offered the opportunity to submit questions before the presentation occurred. Many sessions in this online forum were pre-recorded well in advance, so this might contribute as to why soliciting questions before the presentations wasn’t as widespread.

Four Themes of 2020

The Fundamentals

This one is not surprising. “The Fundamentals” refers to any overview, back-to-the-basics type of session that hits major ideas in the industry which might refine practices, but does not challenge or recreate heat treating theory/practice. An example of this is the technical session on day one of the FNA: “The Importance and the Proper Way to Monitor Polymer Quenches” to be given by Keisuke Kuroda of Idemitsu Lubricants America.

Hubbard-Hall’s webinar on cleaning titled “Optimizing Cleaning in Heat Treat Processes” promised to cover “the influence of contaminations in different heat treatment applications,” something that may not be as exciting as nitrogen gas quenching, but is still essential to know. At WHD, the event notes that “Machine Calibration and Servicing” will be a guaranteed part of the webinar on hardness testing.

Quality Control

Not to be confused with “The Fundamentals,” this theme encapsulates topics about implementing new theory and improving or refining current practice.

At the Ceramics Expo Connect, a session on “Powering a Mobile Future: The Role of Ceramics in Taking Solid State Batteries from Theory to Practice and Improving Lithium Ion Models” demonstrated this theme. If you attend the e-Seminar, you may have heard the panel “Maintenance in the Age of Industrial 4.0 Description,” which also falls into this theme. At a more particular level, Buehler will introduce the new Rockwell Tester at their event.

Additive Manufacturing and 3D Printing

At the cutting edge of industry development, these young applications in the heat treat world have been getting a lot of attention, with other forward-thinking topics on the horizon as well (like IoT and Industry 4.0). Buzz a constant buzz of these processes were apparent, particularly in the FNA 2020 schedule.

One of the technical session at FNA 2020 will be given by Dan Herring, the Heat Treat Dr., titled “Will Additive Manufacturing Add or Take Away Heat Treating?” At the e-Seminar, “3D Printing—Revolution or Evolution” was the title of one provocative panel discussion.

Maintenance

This is another big theme, and rightly so: maintenance concerns can cause problems with the heat treating process which could result in poor results, or dangerous outcomes.

FNA 2020 will be dealing with maintenance questions a lot over the next few days. On a micro-scale, Hubbard Hall’s webinar will be addressing these questions: “How closed cleaning machines contribute to cost efficiency and sustainability” and “How companies overcome specific cleaning challenges.”

Other Themes

“Troubleshooting” and “adapting to COVID-19” also stood out as recurring themes, though many sessions were concerned with these in relation to quality and future planning. Additionally, “COVID-19” in particular was considered during multi-day events as it related to pivoting one’s business strategy whereas single-day events focused on topics which are periphery to COVID-19 like “supply-chain” and “future of heat treat.”

Ok, But Does This Mean Anything?

Heat treaters are adaptive, responding to changes. But beyond picking up the latest item on the block, heat treaters want to make sure that their operations are reliable and excellent, hence the heavy focus on “The Fundamentals” and “Quality Control.” Testing new ideas and refining maintenance strategies are implemented, but it seems that this is typically after heat treaters know that they are performing with excellence in their day-to-day.

 

 

Further information on these events can be found on the company websites.

*The study focused on five of the most well-publicized and widely circulated events in the heat treat industry in August and September of 2020. The study is not meant to be exhaustive, but rather a case study of trends which may serve to be indicative of larger trends in the heat treat industry.

 

 

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Best of Both Worlds in Polymer Quenching

Jerry Dwyer, Marketing Manager, Hubbard-Hall

"The success of most heat treating processes comes down to the battle between time v. temperature..." In this Heat Treat Today Technical Tuesday article, Jerry Dwyer of Hubbard-Hall describes innovative heat treating practices with organic polymer quenchants.

If you are interested in learning about what these polymer quenchants can do, and want to know specifically how a high-performing polymer reacts in the quenching process, read on for the details from a specific case study. Between time and temperature, you may just get the best of both worlds.


The success of most heat treating processes comes down to the battle between time vs. temperature, better known as isothermal transformation. The delicate balance between how long to quench a part and at what temperature often comes down to which media is being used to do the quenching.

Image of a clean machine

For decades, water and oil have been the go-to solution for quenching heat-treated parts in order to harden them to proper specifications. Of the two, water has the highest cooling rates (between 2,000°F/sec to 10,000°F/sec), which often leads to high distortion rates in parts and more cracking because of the high residual stresses. Oil-based solutions have been used extensively in the metalworking industry on larger, thicker parts because it has basically three cooling speeds: slow for lower hardness and less distortion, medium for when moderate to high hardenability is needed, and high for carburized and carbo-nitriding part applications.

But with increasing concern for both environmental disposal and safety issues, many heat treaters have been searching for an alternative quenching technology that meets their needs. With water and oil so prevalent, industry researchers developed a hybrid of the two in order to come up with a series of polymer quenchants that serve numerous functions and also reduce some concerns.

Development of Polymer Quenchants

Image of polymer

The polymer quenchants contain organic inhibitors and other additives that produce concentrates, which are diluted for use. The advantage of polymer solutions is that they have widely variant properties, which give a heat treater flexibility in how they use the product compared to just water or oil. They are also non-flammable, which eliminates the need for operators to install needed fire suppressant equipment that might be needed with other quenching methods.

There are several different types of organic polymer quenchants, including polyalkylene glycol (PAG), sodium polyacrylate (ACR), polyvinyl pyrrolidone (PVP), and polyethyl oxazoline (PEO).

The polyalkylene glycol (PAG) polymer is one of the most widely used in the heat treating industry and provides an ideal uniform cooling for minimizing distortion and preventing crack formation during hardening machine components and tools. Scott Papst, vice president of specialty sales and business development at Hubbard-Hall, says that many of their customers have inquired about adding a polymer quenching alternative to their process.

“The technology of the polymer process has grown tremendously over the years, and we wanted to make sure we had that technology in their hands,” Papst says.

Partnership with Idemitsu Grows Offerings

Hubbard-Hall, which has a line of several heat-transfer and heat-treat salts for annealing, martempering, isothermal quenching and other applications, began to look for a partner company to supply its customers with polymer quenchants and set their sights on Idemitsu Kosan Co., a Japanese energy company that owns and operates oil platforms and refineries, and manufactures numerous petroleum, oils and petrochemical products.

“We found Idemitsu to be a wonderful partner which has a tremendous focus on advanced technology, especially when it came to heat treating,” Papst says. “We were very happy when we could put together a partnership to offer their polymer quenches to the U.S. market.”

Polymer quenches are used primarily in what is called an “induction hardening operation.” An electric current is put through a copper coil to create a magnetic flux that heats up the target section of the part. Induction hardening uses a shorter time to harden the targeted section of the part instead of using an atmosphere furnace to heat treat the entire part.

Where salt quenches are used to heat treat an entire part, the polymer quenches can be targeted to certain areas of a parts, such as gear teeth. Greg Steiger, a senior key account manager for quench products at Idemitsu, says polymer quenches work great on parts like gears because it treats the most vital sections of the part.

“A gear has to be hardened because it needs to withstand a lot of wear-and-tear; but the teeth take the brunt of the load when the part is in use,” Steiger says. “The teeth of the gear have to be harder than the rest of the part; if the entire gear was as a hard as just the teeth, then that part would fracture and shatter.”

Benefits of Inverse Solubility

Polyalkylene glycols utilize inverse solubility in water; while they are completely soluble at room temperature, they become insoluble at higher temperatures from 140°F to 195°F, depending upon chemical structure. Inverse solubility controls the cooling and quenching mechanism. The ability to vary the concentration of a polymer quench provides great flexibility of the cooling rate. The polymer separates from water as an insoluble phase, and the ensuing deposited layer becomes as an insulator that determines the rate of heat extraction from the quenched part.

“The polymer slows the cooling compared to water, and controls the heat treating process” Steiger says. “The transformation rate is much more controllable, which makes the heat treating more tailorable to the part.”

Image with the door closed

Image of a door before process

Idemitsu’s high-performance polymer quenchant is its Daphne Plastic Quench HF, which has excellent oxidation stability performance that protects the integrity of the quenchant even after contamination by metalworking fluids. Steiger says Daphne Plastic Quench HF virtually eliminates the formation of sticky films common in most quenching polymers, which reducing the amount of drag out and thus reducing consumption.

“It is formulated to provide superior biocidal protection, preventing bacterial contamination in the recirculating induction hardening systems,” he says. “It also offers outstanding rust and corrosion prevention to better protect quenched parts. It is highly resistant to degradation.”

Lower Viscosity, Improved Efficiency

The Daphne Plastic Quench HF has a viscosity (at 104°F/40°C) of 29.5 mm2/s, which bests its two top competitors at 536.1 and 301.7. The lower viscosity improves handling and production efficiency, and also reduces or eliminates sticky build-up on machines, gauges, fixtures and parts.

The product also has excellent rust preventative properties and is thermally stable. In fact, Steiger says, testing with a Tier I parts supplier who was having rust issues with a competitor’s product showed that Daphne Plastic Quench HF has stable cooling performance after six months of use, and they only recharged their system twice in a year, reducing consumption by over 66%.

Further, when a global automotive OEM switched to Daphne Plastic Quench HF from a competitor, the result was better separation from tramp oils. The previous product was causing unstable cooling performance that resulted in cracks on the parts; it turns out the OEM was dumping machines and recharging every three months because tramp oil contamination become more than 5%.

“The actual quench oil usage by the OEM was reduced by up to 75% after just four months, and their sump life was much longer at more than six months,” Steiger says. “Lower concentrate usage and a significant reduction in residue directly correlates to improved productivity, reduced maintenance costs and lower disposal costs.”

 

About the Author: Jerry Dwyer is Hubbard-Hall’s market manager for product groups pertaining to heat treating, phosphates and black oxide. To learn more or get in touch, please visit Hubbard-Hall's website.

(photo source: Bill Oxford on unsplash.com)

 

 

 

 

 

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