magnesium

“Shaped” Wire Belt Withstands Rigors of Heat Treating

OCEngineered geometry increases strength, decreases stretch, and withstands thermal cycling.

For today’s Technical Tuesday, we are sharing an original content article on how innovative design of wire for mesh belts in heat treat can reduce costs to heat treaters. Technical writer Del Williams writes, that though it seems that manufacturers regard the “periodic replacement of wire belting simply a cost of doing business, innovative alternatives have been developed that can significantly prolong its life and drive down operational cost.” Read on to learn more!


Engineered geometry increases strength, decreases stretch, and withstands thermal cycling.

Whether for automotive, aerospace, or heavy equipment, manufacturers using heat treatment – which can reach temperatures up to 2400°F and vary from a few seconds to 60+ hours – need conveyor belting that can withstand the rigors of the process. However, traditional round balance weave wire belting has changed little in 100 years and often requires annual replacement, causing costly production downtime.

Heat treating is essential to improve the properties, performance and durability of metals such as steel, iron, aluminum alloys, copper, nickel, magnesium, and titanium. This can involve conveying to hardening, brazing, and soldering, as well as to sintering furnaces, carburizing furnaces, atmosphere tempering furnaces, and heat processing in annealing and quenching furnaces. Parts treated can range from bearings, gears, axles, fasteners, camshafts and crankshafts to saws, axes, and cutting tools.

Heat treat-grade balance weave belts – made of temperature-resistant stainless steel or other heat resistant alloys, suitable to be run on a conveyor with friction drive – can cost thousands of dollars, depending on the dimensions and quality. So, even though wear and premature replacement seems inevitable, such wire belting should not be considered a low-cost consumable. While many manufacturers using heat treating consider periodic replacement of wire belting simply a cost of doing business, innovative alternatives have been developed that can significantly prolong its life and drive down operational cost.

Conveyor belting for heat treating process
Source: Del Williams

Although heat resistant wire belting is available, repeated thermal cycling between heating, soaking, and cooling while carrying substantial loads can continually weaken its structure until it fails. The greater and more frequent the temperature fluctuations in heat treatment steps, the shorter the wire belt’s usable life becomes.

In addition, on conveyor belts, belt stretch accelerated by heat and dynamic loading forces on the belt, is typically the main cause of breakage and failure.

Fortunately, industry innovation in the form of engineered, “shaped” wire belting has minimized these challenges. The design vastly prolongs usable life with increased strength and decreased stretch, which dramatically curtails replacement costs and production downtime.

This approach can also help to extend the longevity of wire belting used with increasingly popular powder metal parts, particularly sintered parts that may be heat treated to enhance strength, hardness, and other properties. In such cases, powder metal serves as a feed stock that can be processed into a net-shape without machining.

Resolving the Core Issues

Although conventional round wire belt has been the industry standard for generations, the geometry of the wire itself contributes to the problem.

Traditional round wire belt and even top-flattened wire belting is prone to belt stretch and premature replacement, particularly under high heat treatment temperatures. In testing, typical round and top flattened conveyor wire belt have been observed to stretch approximately 7%.

Even though many producers of conveyor wire belting simply import semi-finished product and finish it domestically, at least one U.S.-based manufacturer has gone to the root of the problem.

“Shaped” wire is designed to provide more strength in the wire belt of a given diameter so it can better withstand high heat processing conditions. This significantly prolongs its usable life.

As an example, one engineered wire belt, called Sidewinder, by Lancaster, PA based Lumsden Belting, compresses and expands wire so it is taller than it is wide with flat sides.

To begin with, the patented side flattened wire’s “I-beam” design provides 3 times greater structural support for heat treated parts compared to standard round wire. The added height of the wire also provides a longer wear life without needing heavier wire. Together, the design limits belt stretch to only 1-2%. This minimizes the potential for damaged belt. Minimal belt stretch also helps the conveyor belt to track straighter, improving production throughput with less required maintenance.

The design significantly extends the usable life of wire belt conveyors used in a variety of heat treat processes. This ranges from hardening, brazing, and soldering to sintering, carburizing, and atmosphere tempering furnaces.

It is also prolonging wire belt conveyor life in secondary powder metal processes used to improve hardness and other mechanical properties. In this vein, it could be utilized in a mesh belt sintering furnace, where compacted parts are placed in a controlled atmosphere and heated. It could also be used in processes such as quench and temper, case carburizing and induction hardening.

When heat treatment is used for hardening, followed by rapid cooling submerged in a medium like oil, brine or water, the shaped wire belt also enhances the open area for the same gauge wire. This reduces residue build up and eases cleaning, while minimizing drag.

Although the cost of the shaped wire belt is slightly more than traditional round wire, for manufacturers relying on heat treatment the gains in lifespan and production uptime can provide a speedy ROI.

About the Author: Del Williams is a technical writer based in Torrance, California. Images provided by the author.

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Metal Magnesium Ingots Produced in Quebec

The  first metal magnesium ingots have been produced at the Danville demonstration plant in Quebec by Alliance Magnesium Inc. . This achievement comes after four years of technological development, design and construction of a pilot plant.The ingots, which are now produced on a regular basis, are used to validate the manufacturing process developed by AMI and to collect the technical and economic information necessary for the subsequent phases of magnesium production.

“This is a crucial step in the development of AMI that has just been completed. It depends on the hard work of all our staff, as well as our financial, technical and government partners who share our ambition to become the greenest magnesium producer on the planet. “Said Dr. Joël Fournier, Chief Executive Officer of AMI.

AMI is also announcing a $ 4.1 million loan from the Fonds de diversification économique de la MRC des Sources, a fund created by the Government of Québec. The proceeds of this funding will go toward the operations of its pilot plant and the preparation of its $ 100 million commercial demonstration plant, which will take shape during the year and create more than 70 jobs.

“We are delighted to count the Regional Fund as one of our strategic partners in the evolution of our company,” said Dr. Fournier. “This financial contribution demonstrates the recognition of AMI’s business model as a key driver of the region’s economic recovery and its positive impact on the community. ” he added.

AMI has invested more than $ 12 million in the region over the past three years and directly and subcontracts more than 20 professionals and operators.

About Alliance Magnesium Inc.

Alliance Magnesium is a privately-owned Canadian company engaged in the production of magnesium metal and other valuable minerals from serpentine. AMI has developed an innovative technology and process that gives it a cleaner and less expensive approach than those currently used worldwide by magnesium producers. The new AMI process is an alternative to the thermal process, which is one of the most important sources of CO2 emissions in the world. AMI has developed a three-stage development program that will lead to an annual production of 50,000 tons in 2019 and the creation of more than 350 jobs.

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Magnesium and silicon carbide recipe results in lightweight metal with record strength

BOTW-50w Source: GizMag

Magnesium has a number of potential advantages when it comes to engineering. It is considered the lightest of structural metals (those capable of bearing loads in buildings and cars) and it is the eighth most abundant element in the Earth’s crust. On the flipside, however, it is not as strong and durable as some of its counterparts. Scientists are now reporting to have overcome its main limitations by infusing it with silicon carbide nanoparticles to form a new type of super-strong composite material, which they claim may lead to lighter and more efficient airplanes, spacecraft and cars.

Read more about how silicon carbide nanparticles increase strength and stiffness-to-weight ratios.

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