Weebit Nano’s ReRAM IP Achieves high temperature qualification in SkyWater Technology’s S130 Process

Weebit Nano Limited, Israel, a leading developer of advanced memory technologies for the global semiconductor industry, and SkyWater Technology, Bloomington, Minn., the trusted technology realization partner, announced that Weebit’s Resistive Random-Access Memory IP module has been fully qualified in SkyWater’s 130nm CMOS process at temperatures of up to 125 degrees Celsius – the temperature specified for Grade-1 automotive applications.

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450-million-year-old organism finds new life in softbotics

Researchers from Carnegie Mellon University’s Department of Mechanical Engineering, along with paleontologists from Spain and Poland, have utilized fossil records to create a soft robotic model of Pleurocystitid. This marine organism, which lived about 450 million years ago, is thought to be among the earliest echinoderms that could move using a muscular stem.

The research seeks to broaden the modern perspective of animal design and movement by introducing a new field of study – Paleobionics – aimed at using Softbotics, robotics with flexible electronics and soft materials, to understand the biomechanical factors that drove evolution using extinct organisms.

“Softbotics is another approach to inform science using soft materials to construct flexible robot limbs and appendages. Many fundamental principles of biology and nature can only fully be explained if we look back at the evolutionary timeline of how animals evolved. We are building robot analogs to study how locomotion has changed,” said Carmel Majidi, lead author and Professor of Mechanical Engineering at Carnegie Mellon University.

With humans’ time on earth representing only 0.007% of the planet’s history, the modern-day animal kingdom that influences the understanding of evolution and inspires today’s mechanical systems is only a fraction of all creatures that have existed through history.

Using fossil evidence to guide their design and a combination of 3D printed elements and polymers to mimic the flexible columnar structure of the moving appendage, the team demonstrated that pleurocystitids were likely able to move over the sea bottom by means of a muscular stem that pushed the animal forward.

Despite the absence of a current-day analog (echinoderms have since evolved to include modern-day starfish and sea urchins), pleurocystitids have been of interest to paleontologists due to their pivotal role in echinoderm evolution.

The team determined that wide sweeping movements were likely the most effective motion and that increasing the length of the stem significantly increased the animals’ speed without forcing it to exert more energy.

“Researchers in the bio-inspired robotics community need to pick and choose important features worth adopting from organisms,” explained Richard Desatnik, PhD candidate and co-first author.

“Essentially, we have to decide on good locomotion strategies to get our robots moving. For example, would a starfish robot really need to use 5 limbs for locomotion or can we find a better strategy?” added Zach Patterson, CMU alumnus and co-first author.

Now that the team has demonstrated that they can use Softbotics to engineer extinct organisms, they hope to explore other animals, like the first organism that could travel from sea to land – something that can’t be studied in the same way using conventional robot hardware.

“Bringing a new life to something that existed nearly 500 million years ago is exciting in and of itself, but what really excites us about this breakthrough is how much we will be able to learn from it,” said Phil LeDuc, co-author, and Professor of Mechanical Engineering at Carnegie Mellon University. “We aren’t just looking at fossils in the ground, we are trying to better understand life through working with amazing paleontologists.”

For more information: Proceedings of the National Academy of Sciences

Image: A pleurocystitid fossil and pleurocystitid robot replica. Credit: Carnegie Mellon University College of Engineering.

Intertek opens new state-of-the-art Battery Center of Excellence Italy, reinforcing its commitment to sustainable transport and energy solutions worldwide

Intertek, England, a leading total quality assurance provider to industries worldwide, unveiled its new Battery Xcellence Center in Mestre, Italy. Featuring the latest technologies for battery and energy storage systems testing, paired with unrivalled industry expertise, this new center of excellence will meet industry’s increasing need for fast and reliable testing, certification, and assurance services.

The 500 sqm facility is equipped with state-of-the-art battery cyclers, climatic and salt spray chambers, vibration plans, and mechanical testing equipment as well as two ATEX certified anti-fire containers and a dedicated altitude test chamber, enabling it to meet testing needs for transportation and storage safety, functional safety, and performance for a wide range of cells and battery packs.

As one of the world’s fastest growing industry sectors, the battery market is estimated to reach €135 billion globally and €35 billion in the EU by 2030. A pioneer in this space with specialist battery capabilities strategically located in the USA, China, Taiwan, India, Hong Kong, and Europe, Intertek is working at the forefront of the industry, helping its customers to shape the future of energy storage and mobility.

This new state-of-the-art facility in Italy complements Intertek’s existing European battery centers of excellence in the Nordics, UK, and Germany, allowing the company to bring its expertise from more mature battery markets to Italy and the wider South Europe region. The Italian team will be supporting businesses across a range of sectors, including automotive, transportation, energy, and consumer goods, to successfully take their products from initial design phases through to compliance evaluation and global market access.

At the official opening of the Mestre Battery Xcellence Centre, André Lacroix, Chief Executive Officer of Intertek, said: “Sustainability is the movement of our time, and we at Intertek are pioneering the global Quality Assurance industry to help our clients on their sustainability journeys. On the road to Net Zero, we know energy storage is more critical than ever, and with the electrification of society moving at pace we are continuously investing in the future of electrification. This new state-of-the-art-facility enables our customers in this exciting region to benefit from our cutting-edge technology and industry-leading experts, helping them navigate the rapidly evolving regulatory environment for batteries and battery-operated products.”

Arianna Fogar, General Manager for Italy’s Electrical business, said: “Italy is the second largest market in the EU for domestic energy storage systems, as well as a key hub for the European automotive supply chain. We are delighted to be able to meet the industry’s need for local assurance, testing and certification services in this dynamic region with the opening of our pioneering battery and energy storage laboratory.”

Understanding battery thermal runaway propagation

As the energy density of battery packs for vehicles and grid energy storage increases, how can we make high-density energy systems less hazardous and more reliable? That’s the question explored by scientists at Exponent Inc., Menlo Park, Calif.

Their new technical paper, “Understanding the Fundamental Mechanisms of Battery Thermal Runaway Propagation and Mitigation” published by the Society of Automotive Engineers, explains how severe thermal runaway scenarios can occur and outlines the tenets of successful mitigation to reduce these hazards.

Thermal runaway events often begin with the failure of a single battery cell or group of cells, cascading to other neighboring cells, and increasing in severity as the stored energy of the battery pack is released. To reduce the likelihood and severity of these scenarios, the scientists discuss design strategies that can impede propagation of thermal runaway events between cells.

To implement these design strategies and moderation measures, the authors suggest that design engineers first develop a deep understanding of the mechanisms that drive battery thermal runaway propagation. To start, the authors outline a number of the factors that drive many cell failures and runaway events such as acute exposure of a cell to high temperatures, mechanical abuse, and flaws in the construction of either individual cells or the battery pack.

The paper then discusses the mechanisms by which thermal runaway propagation can occur between cells and provides details on the fundamentals of these methods. In addition, the authors provide an overview of potential mitigation approaches to prevent thermal runaway propagation that are currently used in industry and commentary on pathways for developing an effective protection strategy.

 

For more information:

Exponent, Inc.

https://www.exponent.com

U. S. Steel and DuPont launch COASTALUME product, North America’s first GALVALUME solution engineered and warrantied for coastal environments

United States Steel Corporation, Pittsburgh, Pa., and DuPont, Wilmington, Del., launched COASTALUME, North America’s first GALVALUME material designed and warrantied for coastal environments. Marking a collaboration of two iconic American industry leaders, the new COASTALUME product combines the strength and self-healing characteristics of U. S. Steel’s GALVALUME material with DuPont Tedlar PVF film barrier that withstands saltwater corrosion, UV damage, cracking, impact, and more. The jointly designed product is exclusively available through U. S. Steel.

Today, nearly 40 percent of Americans live in coastal counties and increasingly face unpredictability and damage caused by environmental factors like hurricane force winds and saltwater spray. By combining these two materials for the first time, U. S. Steel and DuPont have built a maintenance-free roofing solution that offers a level of durability and reliability needed in residential and commercial construction along the coast. The addition of a best-in-class warranty along with a timeless aesthetic, including a wide variety of color and finish options, further elevates steel options for builders, architects, and homeowners alike.

“American-made steel stands above steel made anywhere else, and steel is infinitely recyclable, unlike other building materials,” said Robert Kopf, Vice President Sales and Marketing, at U. S. Steel. “With our new product COASTALUME we were able to combine our steel with the proven performance and durability of DuPont Tedlar PVF film, and fully address the unique needs of coastal construction, which must withstand the toll that wind and saltwater inflict over time. This was engineered to address that need head-on.”

Applied directly to the steel coil, Tedlar film excels in resisting sea water and salt spray, maintaining color integrity even in prolonged sun exposure. Available in over 30 different colors, including metallics, wood grains, and stone finishes, its combination of durability and versatility is unmatched.

“DuPont invented Tedlar over six decades ago, and today it remains the industry gold standard in protection because of its flexibility, durability, and reliability,” said Matt Urfali, Vice President Sales and Marketing, DuPont Tedlar. “Tedlar’s performance and ease of maintenance have rightfully driven several exciting applications over the years, including use by the solar industry, aerospace, and even NASA. Now, by combining the resilience and flexibility of Tedlar with the strength of U. S. Steel’s GALVALUME material, this is the next breakthrough for the demanding construction market along the coast.”

COASTALUME’s product warranty uniquely covers roofing and siding products installed up to 300 feet from breaking surf, large bays, marshes, and other coastlines. The exclusive warranty also covers up to 50 years for finish warranty and 25 years for substrate, another industry best.

 

Image – GALVALUME with DuPont Tedlar PVF Film to withstand challenges associated with America’s coastal environment.

 

 

For more information:

DuPont
www.dupont.com

United States Steel Corporation

www.ussteel.com

Furukawa Electric obtains SBT 1.5℃ certification for greenhouse gas emissions reduction targets

Furukawa Electric Group, Japan, has obtained 1.5℃ certification from the SBT iniative for greenhouse gas reduction targets.

Along with continuing the energy saving activities at the company’s offices and works, Furukawa group will effectively utilize hydroelectric power, a power source used continuously for over a hundred years, and further install renewable energy such as solar power. The company aims to eliminate greenhouse gas emissions directed at becoming carbon neutral in 2050 and are promoting initiatives throughout the value chain to achieve the 2030 environmental targets.

Read further here.

 

Spray Tips: Spray drying

Spray drying, a method that rapidly dries aqueous or solvent-based solutions or slurries to particulate form by atomizing the liquid in a heated chamber, can be used to agglomerate fine powders and is an important method for the dehydration of fluid foods, such as milk, coffee, and egg powder extensively used in the pharmaceutical and chemical industries.

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Artificial neurons based on semiconductor technology

Artificial neural networks are a key technology in the domain of AI and machine learning. Many applications need the rapid parallel processing of vast amounts of data—with correspondingly high energy demand. A new project in which physicist Dr. Andreas Tittl plays an important role, is seeking to develop an energy-saving alternative through a specially tailored combination of materials science and photonics.

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QMD precision components business now part of Cirtec Medical

Cirtec Medical Corp., Lowell, Mass., has acquired QMD Precision Components, a business that specializes in the development and manufacturing of silicone, polyisoprene, and other custom elastomeric components, tubing, and subassemblies. 

Cirtec is a strategic outsourcing partner of complex medical devices, including minimally invasive and active implantable devices. The acquisition will enable Cirtec to provide customers with advanced expertise in medical silicone molding and extrusion. The integration of Precision Components within the Cirtec brand will offer comprehensive, integrated solutions based on decades of silicone experience. The acquisition will also strengthen Cirtec’s platform for growth in existing markets such as active implantables, interventional, and minimally invasive surgical devices. Precision Components consists of Centers of Excellence in Sturtevant, Wisconsin, and Rock Hill, South Carolina, and engineering and manufacturing capabilities will remain at the facilities, along with current leadership.

Read further here.