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Engineering Longer Life in the Aluminium Casthouse

In aluminium casthouses, some of the hardest-working components are also among the easiest to overlook. Furnace-tending tools, tapping pipes and casting moulds operate under extreme conditions, where heat, molten metal, mechanical loading and repeated thermal cycling can significantly affect component lifetime and performance.

Storvik applies a combination of materials expertise, mechanical engineering, simulation and operational experience to develop components around the conditions they face in the casthouse. The goal is longer service life, easier maintenance and more resource-efficient operation.

The Challenge

Casthouse equipment operates in an exceptionally demanding environment. Skimming and stirring tools are repeatedly exposed to molten aluminium, high temperatures and mechanical loads, while tapping pipes must withstand repeated thermal exposure and handling. Sow and ingot moulds face another challenge: continuous heating and cooling creates thermal stresses that can eventually lead to cracking, distortion and failure.

Conventional components can therefore require frequent replacement. This affects more than the cost of the component itself. Every replacement can mean additional maintenance, material consumption, inventory requirements and potential interruptions to production.

For furnace-tending tools, material degradation can also affect the wider process. Conventional steel blades may introduce a potential source of iron contamination into the aluminium melt, while tool design and operation can influence wear on the furnace refractory.

The challenge is therefore not simply to make a stronger component. It is to understand how material, geometry, maintainability and the surrounding production process interact.

Our Approach

Storvik approaches casthouse components from a lifecycle perspective, engineering the material and design around the actual operating environment.

For furnace tending, specially selected cast materials are used instead of conventional fabricated steel blades to provide predictable performance and extended service life. Storvik’s skim and stir tools feature a replaceable blade attached to an adaptor pipe with two bolts, allowing the wear component to be replaced while retaining the main assembly. Configurations can also be adapted to wheel loaders, forklifts and dedicated furnace-tending vehicles.

The same philosophy is applied to metal tapping. Storvik tapping pipes are manufactured from PjN-G, a specially developed grey iron alloy designed to improve service life, with configurations adapted to crane- or vehicle-based handling.

For sow and ingot moulds, Storvik uses PIN-DP, a special low-carbon cast steel selected for resistance to thermal stress and thermal shock. Thermal simulation can also be used to understand how mould geometry influences heat distribution and stress concentration, supporting optimisation of both material selection and component design.

Across these applications, the approach combines material knowledge, mechanical engineering, simulation and feedback from casthouse operators to address potential failure mechanisms before they become operational problems.

Our Outcome

The result is a lifecycle approach that can deliver significantly longer component life while reducing the maintenance and resource demands associated with frequent replacement.

In a casthouse producing approximately 350,000 tonnes annually, a Storvik stirring tool achieved 35 days of continuous service, compared with a typical reported lifetime of approximately four to five days for conventional steel blades. Storvik skimming tools have demonstrated service lives of up to eight months in continuous casthouse operation.

Longer component life means fewer replacements and maintenance interventions, reduced material consumption and more predictable inventory requirements. It can also contribute to improved process reliability and melt quality, while lowering the cost per operating cycle.

Ultimately, the impact extends beyond the individual component. By engineering furnace-tending tools, tapping equipment and casting moulds around their real operating conditions, Storvik helps aluminium producers make better use of materials and resources while supporting a more stable, efficient and sustainable casthouse operation.

 

Revolutionizing Durability: Storvik’s Sow and Ingot Molds in the Aluminum Industry

The Challenge

The aluminum industry demands molds capable of withstanding extreme thermal stresses and shocks during the casting process. Traditional solutions often fall short, leading to frequent replacements, increased operational costs, and inconsistent product quality. Storvik was tasked with addressing these issues while maintaining environmental and cost-efficiency.

Our Approach

Storvik employed a holistic strategy to redefine the design and material quality of sow and ingot molds. The key steps included:

  1. Innovative Material SelectionThe molds are crafted using Storvik’s proprietary cast steel quality (PIN-DP). This material features a low carbon content, significantly enhancing resistance to thermal stress and shock, ensuring superior durability.
  2. Thermal Stress SimulationUtilizing advanced simulation techniques, Storvik assessed the thermal stress the molds endure during casting. This allowed for tailored recommendations on design adjustments and material improvements, ensuring optimal performance under challenging conditions.
  3. Client Collaboration and ReferencesStorvik engaged closely with clients to refine mold designs. Upon request, references were provided to demonstrate proven reliability and success in similar applications.

Out Outcome

Storvik’s sow and ingot molds are now recognized as a benchmark in the aluminum industry for durability and efficiency. Key outcomes include:

  • Extended LifespanThe enhanced material and design reduce wear and tear, prolonging mold life and minimizing downtime.
  • Cost EfficiencyReduced frequency of mold replacements lowers operational costs for aluminum producers.
  • Improved Casting QualityThe molds ensure consistent product quality by effectively handling thermal stress, enabling more reliable production processes.

 

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