Metex Heat treating announces acquisition of Exactatherm Ltd

Metex Heat Treating, Mississauga, ON, has announced the acquisition of Exactatherm Ltd, a specialist in heat treating for the aerospace, stainless, and tool steels industries. This acquisition is a key part of Metex’s strategy to expand its capabilities and provide comprehensive solutions to clients across the automotive, aerospace, nuclear, commercial, and tool and die sectors.

With this acquisition, Metex will leverage Exactatherm’s industry expertise alongside its own advanced technologies, further strengthening its market position. Exactatherm will continue to operate as a separate entity under the Metex group, maintaining its established reputation for delivering high-quality services.

“This acquisition reinforces our commitment to providing unmatched solutions to our customers,” said Surjit Bawa, President of Metex Heat Treating Ltd. “Together, we will build on our shared strengths and create new opportunities for growth.”

Metex Heat Treating was founded in 1983 and has grown to be the largest heat treater in Canada, specializing in various heat treatment process

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Solar Manufacturing receives US patent for a control thermocouple for vacuum heat treating furnaces

Solar Manufacturing,Sellersville, PA, announced that it has received US Patent #11,815,403 for an innovative control thermocouple design for vacuum heat treating furnaces. This new thermocouple offers a significant advantage in controlling operating temperatures from ambient up to 1200°F (649°C), particularly in smaller diameter hot zones of 36 inches (91.44 cm) or less.

In conventional control thermocouple designs, the outer ceramic protection tube acts as a heat sink under these conditions. This thermal conduction, or heat loss, is compounded by the shorter length of the thermocouple assembly, causing it to operate at a lower temperature. As a result, the furnace’s heating elements increase power output to maintain the set-point temperature, leading to a hotter workload temperature than the furnace temperature. This issue is more pronounced at lower processing temperatures below 1200°F (649°C).

The newly patented thermocouple configuration addresses these undesirable thermal conduction losses. It has demonstrated improvements in temperature uniformity survey results. Meeting AMS 2750 standard temperature uniformity specifications requires control thermocouples to be properly located within the hot zone for accurate survey thermocouple measurements without correction factors.

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Preparation and high-temperature oxidation resistance of zirconium alloys

Researchers from the National Engineering Research Center for Instrument Functional Materials and Chongqing University, both in Chongqing, China, have highlighted the pivotal role of zirconium alloys in nuclear power systems. Their latest paper reviews the significant advancements in coating technologies for zirconium alloy fuel cladding, a crucial component in nuclear reactors. The study discusses various preparation methods, types of coatings, and their efficacy in resisting high-temperature oxidation—a key challenge for fuel cladding materials. This comprehensive review aims to serve as a critical reference in advancing the surface coating technology of fuel cladding zirconium alloys, promising enhanced performance and safety in nuclear power applications.

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Researchers overcome manufacturing challenges in aluminum alloys with nano-treatment

Researchers at the University of California, Los Angeles, have achieved a significant breakthrough in the field of metal additive manufacturing (AM), specifically with Al–Cu alloys like AA2024, which are prevalent in the aerospace and automotive industries. 

These alloys are known for their high strength and good fatigue resistance but have been notoriously difficult to work with in additive manufacturing due to issues like hot cracking and other solidification defects.

The UCLA team has successfully developed a nano-treated AA2024 deposition that incorporates TiC nanoparticles, leading to a groundbreaking enhancement in the manufacturing process. This new method allows for the additive manufacturing of AA2024 without the occurrence of cracks, a common issue that has hindered broader adoption of these materials in high-precision sectors.

Microstructural analysis conducted by the researchers reveals that the TiC nanoparticles not only reduce the susceptibility to hot cracking but also refine and homogenize the grain structure of the alloy. The grains were significantly refined to an average size of 23.2 ± 0.4 μm. This refinement contributes to the material’s enhanced properties, including its mechanical performance.

These findings highlight the potential of nano-treatment techniques in overcoming the longstanding challenges associated with high-strength aluminum in additive manufacturing. This advancement not only paves the way for more reliable production of critical components in aerospace and automotive applications but also promises to expand the capabilities and applications of metal additive manufacturing technology.

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One Minute Mentor: Controlled Atmosphere Furnace Equipment

Heat treatment of tool steels usually requires high flexibility combined with small lots of parts. Seal quench furnaces, executed with a single heating chamber, meet this demand. Figure 5 shows a typical schematic of a single-chamber furnace, executed with a pre-chamber, which is used both for loading and unloading and also for oil quenching or gas cooling. Another execution is shown in Fig. 6, where the load is fed directly into the heating chamber (left side in the drawing). In this case the load is transported through the furnace and received after oil quenching on the right-hand side.

For more information, click on the link below (subscription required). Then scroll to Figure 5.

R Schneider; R. Mesquita; W Schützenhöfer, Distortion in Tool Steels, ASM International, 2014, https://doi.org/10.31399/asm.hb.v04d.a0005958