Wallwork doubles aerospace HIP capacity with second Quintus hot isostatic press

Wallwork Group, Manchester, England, installed a second Quintus Technologies hot isostatic press (HIP) at its UK operations, doubling the company’s HIP capacity for aerospace customers and strengthening process continuity across the UK and European supply chain. The investment will be a centerpiece of the company’s presence at Farnborough International Airshow 2026 (Hall 1, Stand 1000, July 20–24), where Wallwork will showcase how the expanded HIP capability combines with one of the industry’s most comprehensive portfolios of NADCAP- and AS9100-accredited thermal processing and hard coating services. “Farnborough 2026 is the ideal platform to show how Wallwork is investing in the future of aerospace manufacturing,” said Simeon Collins, group director at Wallwork. “Our second Quintus HIP significantly expands capacity for customers, while our full range of accredited thermal processing, surface engineering, and brazing services gives manufacturers a dependable single-source partner.” HIP is a critical post-process for high-integrity aerospace components — particularly castings, additive-manufactured parts, and powder-metallurgy products — closing internal voids and improving tensile strength and fatigue performance in turbine and compressor blades, blisks, disks, structural casings, and engine parts. Wallwork is the United Kingdom’s largest independent aerospace thermal processing and hard coatings specialist, with over 60 years of industry experience, ITAR compliance, major aerospace prime approvals, and operations across Manchester, Newcastle, Birmingham, and Cambridge. Quintus Technologies, headquartered in Västerås, Sweden, is the global leader in high-pressure technology for hot isostatic pressing, sheet metal forming, and high-pressure processing.

Read further here

One Minute Mentor: Mechanical Shock

Mechanical shock is sometimes used to stabilize tool steels. One method of producing shock is to suspend the part so that it hangs freely and then strike it with a wooden hammer. This is believed to set up elastic waves which add to the magnitude of the residual stress imparted by the previous heat treatment. At locations where the resultant magnitude of stress exceeds the elastic limit, plastic flow should occur and result in stress relief. This would be manifest by higher dimensional stability. A shock treatment should not be considered as a substitute for a thermal method of stabilization but rather as an auxiliary method which enhances stabilization.

Dimensional changes in W1 steel resulting from dropping on a concrete floor as determined by Fletcher (are shown in Fig. 6. The untempered specimens showed greater dimensional changes than the tempered specimens due to the higher level of residual stress in the untempered condition.

For more information, click on the link below (subscription required). Then scroll to Figure 6.

Jon L. Dossett; George E. Totten, *Control of Distortion in Tool Steels*, ASM International, 2014
https://doi.org/10.31399/asm.hb.v04d.9781627081689

One Minute Mentor: Distortion of Ledeburitic Cold-Work Tool Steels

The different effects of steel composition on the dimensional change of plates made of ledeburitic cold-work tool steels and a working hardness of 61 HRC can be taken from the figure. Typical representatives of the new generation of improved toughness 8-9%Cr-steels show slightly higher growth in dimension than the classical 12%Cr-D2 steel. 

The growth in thickness (in the rolling direction) is always significantly higher than in width, confirming again the generally known behavior. Salt-bath heat treatment results in higher distortion than various vacuum heat treatments with high-pressure gas quenching, but the results indicate that there is also a significant scatter for gas quenching depending on the detailed quenching conditions. 

For more information, click on the link below (subscription required). Then scroll to Figure 12. R Schneider; R. Mesquita; W Schützenhöfer, Distortion in Tool Steels, ASM International, 2014  https://doi.org/10.31399/asm.hb.v04d.a0005980

Constellium celebrates the grand opening of its new recycling center in France

Constellium, Paris, announced the grand opening of its new advanced recycling center in Neuf-Brisach, France. The €130 million investment, supported by a grant from the France Relance investment program, is aimed at boosting Constellium’s presence in the automotive and packaging industries while fostering a circular, sustainable economy. The new facility will increase the plant’s recycling capacity for automotive and packaging products by up to 75%, adding 130,000 metric tons of capacity.

With the expanded capabilities, the Neuf-Brisach plant expects to raise the recycled content of its products, meeting the growing demand for sustainable materials. This investment brings Constellium’s global recycling capacity to approximately 735,000 metric tons and will help reduce greenhouse gas emissions by 400,000 metric tons, aligning with the company’s goal of a 30% emissions intensity reduction by 2030 and increasing recycled input to at least 50% by the same year.

The facility incorporates energy-efficient technologies designed to minimize environmental impact, including reduced water consumption and air emissions, and biodiversity studies were conducted to protect the local ecosystem during construction.

Read further here.

OMM: Material aspects of Distortion

Size distortion in ledeburitic cold-work tool steels is always higher in longitudinal direction (the direction of main deformation, which is the direction of the elongated carbide stringers). The figure shows the effect in three different cases. 

If plates for cutting tools made from ledeburitic cold-work tool steels are taken from small bar materials in the longitudinal direction, the main direction of distortion will also be in the longitudinal direction of the plate (case I). If the same plate is taken in the transverse direction from a wide bar material, the main direction of distortion will be in the transverse direction of the plate (case II). Finally, if the plate is taken as a slice from a large-cross-section thick bar, the carbide orientation and the main direction of distortion will be in the direction of the plate thickness (case III).

For more information, click on the link below (subscription required). Then scroll to Figure 7. R Schneider; R. Mesquita; W Schützenhöfer, Distortion in Tool Steels, ASM International, 2014  https://doi.org/10.31399/asm.hb.v04d.a0005980

Wisconsin Oven to ship three custom conveyor ovens to the molded-fiber industry

Wisconsin Oven, East Troy, is scheduled to ship three custom dryers to a manufacturer in the molded-fiber industry. The ovens will be used for drying thick-walled paper pulp molded fiber packaging material used in a variety of products. Molded fiber packaging is made of 100% recycled materials, making them an environmentally friendly solution for companies looking to use sustainable packaging and reduce their environmental impact.

These paper pulp drying conveyor ovens are designed with four temperature zones, and each has the sufficient capability to remove 850 pounds of water per hour from the molded pulp. The ovens feature a maximum temperature rating of 500°. The work chamber dimensions are 8’ W x 120’ L x 1’ H. A total of twelve personnel access doors with explosion relief latches are located on the sides of each unit. Each unit also has stainless steel sheet metal and structure on the wet end to reduce corrosion.

The conveyor ovens are designed with top-down and bottom-up airflow to maximize the drying rate of the paper pulp shapes. The flat wire belt continuous conveyor system uses a variable frequency drive that is adjustable from 0-3 FPM. Emergency stop buttons are located at the load and unload sections of each oven for operator safety.

Read further here. 

Lindberg/MPH ships rod overbend box furnace to the manufacturing industry

Lindberg/MPH, Mich., has announced the shipment of a rod overbend box furnace with powered load/unload table to the manufacturing industry. This heat-treating furnace has a maximum temperature rating of 2000°F and a load capacity of 900 lbs. 

The workspace dimensions of the furnace are 24” W x 36” D x 18” H and it is designed for air atmosphere applications. The box furnace features an automated actuator to flip the push/pull mechanism on the load table to eliminate the operators need to manually flip it into push position. This option allows the push/pull head to retract from the furnace once the work grid is in the furnace chamber and increase operator safety by removing the need to reach into the hot furnace with a hook to flip the push/pull head and.

The furnace chamber is heated with a radiant heating system the utilizes heavy gauge alloy rod over-bend heating elements mounted along the side-walls and the floor. The furnace temperature is controlled by an Allen Bradley ControlLogix Programmable Logic Controller that includes digital setpoint and display. A Honeywell DC2500 high limit controller disconnects the power to the heating elements and sounds an audible alarm if the temperature exceeds desired set-point. 

Read further here

A ‘green’ Seco/Warwick vacuum furnace for wind power plants

Seco/Warwick, Meadville, Pa., has been chosen by a recognized manufacturer of wind power plants to deliver a vertical vacuum furnace designed to perform low-pressure carburizing for the large structural elements (gearboxes) used in wind power plants. 

The solution on order combines the advantages of two technologies: atmospheric and vacuum processing. The furnace is designed for low-pressure carburizing oversized parts, made possible due to a very large, vertical heating chamber, while the furnace pit structure saves space in the production facility. The Pit-LPC technology is a modern alternative to atmosphere carburizing. Its main advantage is the ability to carry out efficient and effective carburizing in a much shorter time than in atmospheric furnaces. The vacuum processing solution provides more than twice the productivity, and consequently lower process costs and a quick investment return.

The main advantage of this furnace is the ability to open the furnace at process temperature at the end of the cycle. This is the advantage of atmospheric furnace technology implemented within a vacuum furnace. This type of solution combines the advantages of an atmospheric furnace with the advantages of a vacuum furnace, which include: elimination of the oxidation effect at the grain boundary, process purity, and heating uniformity. The product solves the problem of high energy and process gas consumption by the partner’s old furnaces, and shortens the carburizing process, which significantly improves efficiency and production costs.

Read further here

One Minute Mentor: Horizontal Retort Furnace

Gas nitriding and nitrocarburizing processes can be processed with fixed gasifying amounts of ammonia, nitrogen, and, for nitrocarburizing, a carburizing and oxidizing agent. However, this does not produce consistent results if different load surfaces are treated with the same fixed gasifying amounts. Furthermore, especially for nitriding processes, the ammonia gasifying has to be reduced or diluted with nitrogen after several hours because the nitrogen uptake of a load decreases. Another quite popular method, usually called the “Floe process,” is a two-step nitriding, where two different nitriding temperatures and different gas flows allow adjustment of the nitriding potential (KN) to the requirements.

Therefore, modern gas nitriding and nitrocarburizing furnaces are equipped with sensor systems and a process control unit that allow the measurement and automatic control of the nitriding potential (KN). The figure shows a schematic of a typical horizontal retort furnace. Similar to the vertical execution, a good circulation of the process gas is needed to get uniform results, which can be reached by the use of a muffle and a high circulation rate. Indirect cooling is performed with an external cooling fan, blowing cold air along the retort. 

For more information, click on the link below (subscription required). Then scroll to Figure 24

R Schneider; R. Mesquita; H. Altena; T. Müller; P. Seemann, Processes and Furnace Equipment for Heat Treating of Tool Steels, ASM International, 2014, https://doi.org/10.31399/asm.hb.v04d.a0005958

Quintus Technologies supplies high pressure Flexform press to airframe manufacturer

Quintus Technologies, Vasteras, Sweden, announced that they will supply a high pressure fluid cell press to France’s LAUAK Group, a Tier 1 supplier to the aerospace industry. The press will be installed at the LAUAK Aerostructures factory in Grandola, Portugal, in September 2023. 

Reaffirming its continued commitment to productivity enhancement, LAUAK selected the Quintus model QFC 0.7×1.8-800 press with high pressure technology to bolster its manufacturing efficiency. “The forming press is undoubtedly at the heart of sheet metal production,” says Mikel Charritton, LAUAK Group Managing Director. “Especially in the context of the current aerospace ramp-up, in particular the A320, A350, and B737 programs, LAUAK’s capital equipment investments are strongly influenced by the imperatives of competitiveness. This press significantly increases and secures our production capacity.” Quintus’s proprietary hydroforming process requires only one rigid tool half, an innovation that not only generates significant tool cost savings but also eliminates several forming operations, intermediate heat treatments, and operator dependencies. 

Read further here.