NSL Analytical Services relocates Metallurgical Testing Laboratory

NSL Analytical Services, Cleveland, Ohio, an independent analytical and metallurgical testing services company serving U.S. and global customers, announces a significant milestone in its growth trajectory with the relocation of one of its two Cleveland-area testing laboratories and the addition of high-temperature stress rupture testing to its offerings.

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Unlocking the cause of pitting corrosion in 3D-printed stainless steel

Scientists from Lawrence Livermore National Laboratory (LLNL), Livermore, Calif., delved into the mysterious world of pitting corrosion in additively manufactured (3D-printed) stainless steel 316L in seawater. Stainless steel 316L is a popular choice for marine applications due to its excellent combination of mechanical strength and corrosion resistance. This holds even more true after 3D printing, but even this resilient material isn’t immune to the scourge of pitting corrosion. The LLNL team used transmission electron microscopy and x-ray photoelectron spectroscopy to do a deep-dive microscopy study to figure out what could potentially be responsible for corrosion.

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Revolutionizing surface science: A new horizon in superhydrophobic materials

Superhydrophobic surfaces, which repel water strongly, are useful for self-cleaning, anti-corrosion, and oil/water separation. Traditional methods to create these surfaces are complex and material-specific. Recent innovations include 3D printing for customizable surfaces and hydrothermal methods for durable coatings. A new approach using femtosecond laser and chemical treatments promises easier creation of these surfaces on various materials, offering great stability and wide application potential.

Superhydrophobic surfaces, characterized by their ability to repel water with a contact angle above 150° and a sliding angle below 10°, offer a range of applications from self-cleaning and anti-corrosion to oil/water separation and droplet manipulation. Traditionally, creating such surfaces has been challenging, requiring complex, time-consuming, or material-specific methods. Recent advancements, however, include innovative techniques like 3D printing for adjustable porosity, hydrothermal methods for antibacterial coatings, and soft-imprinting for lotus-inspired textures. Despite these developments, a need for simpler, versatile methods persists.

A new study focused on a novel technique for creating superhydrophobic surfaces that can repel water effectively.

This new method for creating water-repellent surfaces has two main steps. First, a special laser (femtosecond laser) is used to carve tiny patterns on different materials. This carving is really detailed, making small structures that help enhancing surface roughness. Next, these laser-carved surfaces are coated with stearic acid, a substance that makes them water-repellent by reducing surface energy. This combination of laser carving and chemical coating creates a strong water-repellent surface. What’s great about this method is that it can be used on many different materials like metals, ceramics, and plastics, making it more versatile than older techniques. This could be really useful for things like keeping electronic devices safe from water or improving medical tools.

Professor YIN Kai, the lead researcher, stated, “Our femtosecond laser-chemical hybrid processing technique marks a significant advancement in material science, offering a versatile approach to creating superhydrophobic surfaces on varioussubstrate.”

The femtosecond laser-chemical hybrid processing technique represents a leap forward in the creation of superhydrophobic surfaces, with potential implications across a broad range of fields. By enabling the application of superhydrophobic coatings on variousmaterial, this research paves the way for innovations in surface science and technology.

For more information: Journal of Central South University

Image: Fabrication of substrate-independent superhydrophobic surfaces: (a) Schematic diagram for fabrication of substrate-independent superhydrophobic surfaces; (b) Photos of the water droplets placed on the Pristine ceramic, Ti, Si, and quartz glass, respectively; (c) Optical photos and static contact angles of the water droplets placed on the LTC-SA, LTT-SA, LTS-SA, and LTQ-SA, respectively; (d) Comparison of WCAs on pristine and treated samples surfaces; (e) Comparison between our proposed method and previously reported other preparation methods for superhydrophobic surfaces.

Constellium to showcase cutting-edge solutions for aluminium automotive structures at CES 2024

Constellium, Paris, exhibited its latest innovations in aluminium Automotive Structures at CES 2024 in Las Vegas from January 9-12. A leading supplier of advanced lightweight aluminium automotive components, Constellium highlighted its sustainable solutions for automakers and consumers. 

Constellium showcased a diverse range of aluminium solutions designed to address the industry’s growing demand for lightweight materials and more sustainable solutions. These components contribute to enhanced vehicle performance and play a pivotal role in reducing carbon emissions, aligning with the global trend toward eco-friendly mobility. Among the products displayed are:  

  • Innovative Crash Management System for electric vehicles
  • Structural Sill providing stiffness and crash resistance
  • Lightweight Battery Enclosure solutions
    • Laser-Welded Battery Enclosure for Cell-to-Module applications
    • Adhesive-Bonded Battery Enclosures for Cell-to-Module or Cell-to-Pack applications
    • Structural Battery Enclosure for Cell-to-Pack or Cell-to-Body applications 

Read further here.

New 3D-printable material to advance sustainable solutions

A research team led by Lawrence Berkeley National Laboratory (Berkeley Lab) has developed “supramolecular ink”, a new technology for use in OLED (organic light-emitting diode) displays or other electronic devices. Made of inexpensive, earth-abundant elements. Supramolecular ink could enable more affordable and environmentally sustainable flat-panel screens and electronic devices.

Principal investigator and a faculty senior scientist in Berkeley Lab’s Materials Sciences Division and professor of chemistry and materials science and engineering at UC Berkeley, Peidong Yang, stated, “By replacing precious metals with Earth-abundant materials, our supramolecular ink technology could be a game changer for the OLED display industry. What’s even more exciting is that the technology could also extend its reach to organic printable films for the fabrication of wearable devices as well as luminescent art and sculpture.”

If you have a relatively new smartphone or flat-panel TV, there’s a good chance it features an OLED screen. OLEDs are rapidly expanding in the display market because they are lighter, thinner, use less energy, and have better picture quality than other flat-panel technologies. OLEDs contain tiny organic molecules that emit light directly, eliminating the need for the extra backlight layer that is found in a liquid crystal display (LCD). However, OLEDs can include rare, expensive metals like iridium.

The Berkeley Lab team recently discovered how the new material could potentially adopt a cheaper fabrication process for electronic displays.

The new material consists of powders containing hafnium (Hf) and zirconium (Zr) that can be mixed in solution at low temperatures – from room temperature up to around 176 degrees Fahrenheit (80 degrees Celsius) – to form a semiconductor ink.

Additional experiments at UC Berkeley showed that the supramolecular ink is also compatible with 3D printing technologies such as for the design of decorative OLED lighting.

Cheng Zhu, a Ph.D. candidate in materials science and engineering at UC Berkeley added that manufacturers could also use the supramolecular ink to fabricate wearable devices or high-tech clothing that illuminates for safety in low-light conditions, or wearable devices that display information through the supramolecular light-emitting structures.

For more information: Berkley Lab

Portable mass spectrometer components made via 3D printing

Using additive manufacturing, researchers at the Massachusetts Institute of Technology (MIT) in Cambridge, Mass., produced a mass filter, which is the core component of a mass spectrometer, that is far lighter and cheaper than the same type of filter made with traditional techniques and materials.

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Solar Atmospheres of California adds Airbus approval

Solar Atmospheres, Fontana, Calif., has announced that they are now Airbus approved for heat treating.

Frank Trujillo, director of Sales for Solar Atmospheres of California, stated that, “Many Airbus suppliers were in need of a heat treater in the West that could process parts, plates and bars in support of increased Airbus production rates. SCA is proud to be a partner on the Airbus Team!”

With our wide range of furnaces, we are capable of processing very small pieces or loads of 50,000 pounds and up to 24 feet in length. This approval will translate into improved lead-times and greater efficiencies for all Airbus suppliers that require heat treat services in the Western Region.

Read further here.

 

Scientists 3D print a complex robotic hand with bones, tendons, and ligaments

Scientists have tried to use additive manufacturing—better known as 3D printing—to recreate complex structures from hands to hearts. However, the technology stumbles when integrating multiple materials into one printing process. 3D printing a robotic hand, for example, requires multiple printers—one to make the skeleton, another for soft tissue materials—and the assembly of parts. These multiple steps increase manufacturing time and complexity.

Scientists have long sought to combine different materials into a single 3D printing process. A team from the soft robotics lab at ETH Zurich has found a way.

The team equipped a 3D inkjet printer—which is based on the same technology in normal office printers—with machine vision, allowing it to rapidly adapt to different materials. The approach, called vision-controlled jetting, continuously gathers information about a structure’s shape during printing to fine-tune how it prints the next layer, regardless of the type of material.

In a test, the team 3D printed a synthetic hand in one go. Complete with skeleton, ligaments, and tendons, the hand can grasp different objects when it “feels” pressure at its fingertips.

They also 3D printed a structure like a human heart, complete with chambers, one-way valves, and the ability to pump fluid at a rate roughly 40 percent of an adult human’s heart.

Recreating a structure using conventional methods is tedious and error-prone. Engineers cast a mold to form the desired shape—say, the skeleton of a hand—then combine the initial structure with other materials.

It’s a mind-numbing process requiring careful calibration. Like installing a cabinet door, any errors leave it lopsided. For something as complex as a robot hand, the results can be rather Frankenstein.

Traditional methods also make it difficult to incorporate materials with different properties, and they tend to lack the fine details required in something as complex as a synthetic hand. All these limitations kneecap what a robotic hand—and other functional structures—can do.

Then 3D inkjet printing came along. Common versions of these printers squeeze a liquid resin material through hundreds of thousands of individually controlled nozzles—like an office printer printing a photo at high resolution. Once a layer is printed, a UV light “sets” the resin, turning it from liquid to solid. Then the printer gets to work on the next layer. In this way, the printer builds a 3D object, layer by layer, at the microscopic level.

Although incredibly quick and precise, the technology has its problems. It isn’t great at binding different materials together, for instance. To 3D print a functional robot, engineers must either print parts with multiple printers and then assemble them after, or they can print an initial structure, cast around the part, and add additional types of materials with desired properties.

One main drawback is the thickness of each layer isn’t always the same. Differences in the speed of “ink,” interference between nozzles, and shrinkage during the “setting” process can all cause tiny differences. But these inconsistencies add up with more layers, resulting in malfunctioning objects and printing failure.

Engineers tackle this problem by adding a blade or roller. Like flattening newly laid concrete during roadwork, this step levels each layer before the next one starts. The solution, unfortunately, comes with other headaches. Because the rollers are only compatible with some materials—others gunk up the scraper—they limit the range of materials that can be used.

What if we don’t need this step at all?

The team’s solution is machine vision. Rather than scraping away extra material, scanning each layer as it’s printing helps the system detect and compensate for small mistakes in real-time.

The machine vision system uses four cameras and two lasers to scan the entire printing surface at microscopic resolution.

This process helps the printer self-correct, explained the team. By understanding where there’s too much or too little material, the printer can change the amount of ink deposited in the next layer, essentially filling previous “potholes.” The result is a powerful 3D printing system in which extra material doesn’t need to be scraped off.

This isn’t the first time machine vision has been used in 3D printers. But the new system can scan 660 times faster than older ones, and it can analyze the growing structure’s physical shape in less than a second, wrote Kong. This allows the 3D printer to access a much larger library of materials, including substances that support complex structures during printing but are removed later.

As a test, the team printed a synthetic hand with two types of materials: a rigid, load-bearing material to act as a skeleton and a soft bendable material to make tendons and ligaments. They printed channels throughout the hand to control its movement with air pressure and at the same time integrated a membrane to sense touch—essentially, the fingertips.

They hooked the hand to external electrical components and integrated it into a little walking robot. Thanks to its pressure-sensing fingertips, it could pick up different objects—a pen or an empty plastic water bottle.

The system also printed a human-like heart structure with multiple chambers. When pressurizing the synthetic heart, it pumped fluids like its biological counterpart.

Everything was printed in one go.

For more information: Nature

Plastometrex continues global expansion with Japanese partnerships

Plastometrex, an advanced mechanical testing technology provider in Cambridge, England, announced its strategic expansion into the Japanese market in partnership with two leading technology companies, Kobe Material Testing Laboratory (KMTL) and AeroEdge. This collaboration marks a significant milestone in Plastometrex’s journey towards transforming the global mechanical testing industry.

Since its inception, Plastometrex has had a clear mission of delivering simpler, faster, and more insightful mechanical testing to materials science and engineering teams the world over. Following the commercial launch of its flagship product, the Benchtop Plastometer, the company has enjoyed rapid global expansion, partnering with some of the most recognizable industrial organizations and research institutions in the world. That expansion now continues with a move into Japan, as KMTL, a leading independent testing laboratory in Asia focusing on materials testing services, took delivery of the country’s first Plastometrex device, as part of the newly formed partnership.

With the Plastometer, KMTL will now be able to obtain metal stress-strain curves, measured by the device from indentation test data, in less than 5 minutes. This unlocks unprecedented testing speed and flexibility for users at all stages of the product lifecycle, from alloy design through to failure analysis. KMTL has now added the Plastometer to its comprehensive range of testing services, further strengthening the organization’s position as a technology-forward testing partner.

“We are delighted to be able to introduce the Plastometer to our client base across Japan,” said Nobuhito Tsurui, Executive Vice President, KMTL. “The technology will allow our customers to measure critical mechanical property data from small and challenging-to-test samples for the first time. This will enable them to design, manufacture, and repair their products with greater efficiency and confidence.”

AeroEdge, an engineering services company specializing in machining and additive manufacturing (AM) technology, will be among the first to use KMTL’s new Benchtop Plastometer. Having significantly grown its capability in the printing of aerospace materials, specifically complex titanium aluminides for demanding high-temperature applications, the Plastometrex technology will enable AeroEdge to accelerate the development of these complex AM materials and parts.

“Plastometrex’s novel testing technology enables us to optimize our AM materials with much less material and in a fraction of the time required by traditional methods,” said Kazuhiro Mizuta, Managing Director, AeroEdge. “We are excited to support the introduction of this transformative testing technology to the Japanese market where it will play an important role in supporting the continued adoption of AM in the region.”

“This strategic collaboration with KMTL and AeroEdge is a testament to our commitment to innovation and to our continued global expansion. Japan represents a vibrant and dynamic market, and our partnership with these two esteemed companies will allow us to deliver cutting-edge solutions that drive progress and transformation in metal testing and additive manufacturing.” Mike Coto, CCO, Plastometrex.

 

 

For more information:

AeroEdge

https://aeroedge.co.jp/en/

 

Kobe Material Testing Laboratory

https://en.kmtl.co.jp/

 

Plastometrex

https://plastometrex.com/

Metal Powder Works and Solvus Global announce strategic alliance

Solvus Global (SG), Leominster, Mass., and Metal Powder Works (MPW), Clinton, Pa., announced a strategic alliance in the development of new materials, a groundbreaking collaboration that will move the needle on the future of powder production for the advanced manufacturing industry. A pivotal aspect of this collaboration is Solvus Global’s acquisition of a Metal Powder Works DirectPowder system, the first unit to be placed outside MPW’s Pittsburgh production facility.

Under the terms of this strategic alliance, Solvus Global and its business unit Powders on Demand will also be the first to join Metal Powder Works’ newly established Developer Network, enabling industry leading startups to combine resources to accelerate the production of new and conventionally challenging powders for the additive manufacturing (AM) industry. With the DirectPowder Unit at their disposal, Solvus Global gains a competitive edge in advanced powder production capabilities for its AM and coating systems. Moreover, being an integral part of Metal Powder Works’ Developer Network will provide Solvus Global with unprecedented access to a wide array of materials not currently available as powder, significantly reducing time and cost to access crucial resources for their innovative projects.

Powders on Demand CEO Brad Richards shares that “We’re excited to lead the way in economic production of powders starting at R&D all the way through commercial scale to enable our public and private sector customers to push the boundaries of AM and coatings.” As Solvus Global Co-Founder & CEO, Aaron Birt describes it, “For instance, there are only 16 approved AMS [Aerospace Material] specifications for powder today while there are more than 2,000 approved AMS specifications for bar stock. AM needs more than 16 alloys to be successful.”

John Barnes Metal Powder Works’ CEO and Founder commented on this exciting development, “We’ve known the people at Solvus Global for a very long time, even before MPW existed. It is crucial for us to help the AM community by making more materials available in powder form, so every business case doesn’t automatically require a change in material. Solvus Global understands the requirements of the various processes for powder, so this is a natural partnership.”

This partnership between Solvus Global and Metal Powder Works is a testament to the shared commitment to pushing the envelope in additive manufacturing and powder production. By harnessing the combined expertise and resources of these industry leaders, the AM industry will have access to limitless possibilities in materials development and manufacturing.

 

Image – MPW DirectPowder System.

 

 

For more information:

 

Metal Powder Works

www.metalpowderworks.com

Powders on Demand

http://www.powdersondemand.com

 

Solvus Global
http://www.solvusglobal.com

Jabil strengthens additive manufacturing offerings

Jabil Inc. has launched PK 5000, an eco-friendly, powder-based additive material engineered to deliver improved strength, chemical resistance, and resilience in comparison to general-purpose nylon materials, such as PA 12. This patent-pending material has been formulated to support highly demanding automotive, consumer electronics, defense, medical, and industrial manufacturing applications.

PK 5000 was created, tested, and validated at Jabil’s Materials Innovation Center in Chaska, Minn., where polymer formulations, compound developments, and material system integration are completed from start-to-finish under one roof. Highly experienced additive manufacturing engineers, chemists, materials scientists, and production experts leverage Jabil’s innovations in materials science to oversee each step of the beaker-to-box process of developing customized powders and filaments all under an ISO 9001-2015 quality management system.

This newest material features a unique combination of chemical and mechanical properties, such as high-impact strength, high-abrasion resistance, and improved elongation over other nylon materials to withstand functional testing and use. Equally important, PK 5000 has high-barrier properties and low-moisture absorption, which may be critical for ensuring the quality and resilience of certain parts and products exposed to fuel and water. Moreover, the polyketone resin used to make PK 5000 is an eco-friendly, low-carbon material that is made from carbon monoxide. The ability to leverage carbon monoxide, which is a leading cause of atmospheric pollution, may reduce the overall carbon footprint.

In addition to advancements in materials, Jabil continues to extend its global additive manufacturing platforms and solutions to complement its world-class manufacturing capabilities. Jabil has deployed hundreds of 3D printers – from desktop models to highly sophisticated industrial systems – to address a vast range of prototyping, tooling and volume-scale production demands.

For more information: Jabil Inc.

https://www.jabil.com/

Oerlikon invests in its Surface Solutions business with a new state-of-the-art assembly and production site in Switzerland

Oerlikon, Switzerland, a global leader in surface technology, polymer processing, and additive manufacturing, is planning a new state-of-the-art assembly and production site for its surface solutions and equipment businesses. The Group’s current locations in Wohlen, Dottikon and Winterthur will be merged at the Reichhold Campus in the canton of Aargau. With this investment, Oerlikon is affirming its commitment to Switzerland as a business location.

Oerlikon is developing a new, attractive site on the Reichhold Campus in Hausen/Lupfig together with HIAG Immobilien Schweiz AG. This state-of-the-art site will provide customers with Oerlikon Metco thermal spray solutions, including equipment assembling and production services. The new location will enable further improvements in productivity and more optimized operational processes.

The Campus Reichhold site, spread across a total of around 14,500 m2 of production and office space, will also serve as a sales and distribution center for the materials product line, house an IT competence center, and offer around 230 employees an attractive workplace. A strong focus will be placed on sustainability and innovative approaches to future-oriented energy, mobility and utilization concepts.

The application for the building is planned to be submitted in the Summer of 2023. Construction is scheduled to start in the Spring of 2024, and the new location is expected to be ready for moving in from mid-2025 onward. At the current sites, all activities and work will continue as usual. According to the current plan, the move will begin in the summer of 2025 and will take place gradually to ensure the continued processing of all customer orders.

 

Image – Courtesy of Nau.ch / Wener Rolli and HAIG.

 

For more information:

HIAG Immobilien Schweiz AG

https://www.hiag.com/

 

Oerlikon

https://www.oerlikon.com