Slag Chute and Steel Launder – Complete Guide to Functional Differences, Material Selection, and Applications

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In the harsh production environment of the metallurgical industry, slag chutes and steel launders are two core pieces of equipment responsible for directing high‑temperature molten materials. One guides molten slag, the other conveys molten steel – both directly withstand continuous scouring and erosion by high‑temperature slag and liquid steel. Their performance directly affects the continuity, safety, and overall cost of the production line.

However, because they look similar and operate under comparable conditions, many practitioners easily confuse them. This article provides a comprehensive analysis of the key differences and selection criteria for slag chutes and steel launders from four perspectives: function, material selection, structural design, and maintenance.

1. Slag Chute vs. Steel Launder – A Single Word Makes a World of Difference

What Is a Slag Chute?

A slag chute (also called a slag runner) is equipment used in metallurgical engineering to convey molten slag. It receives liquid furnace slag discharged from metallurgical furnaces (such as flash smelting furnaces, electric furnaces, converters, etc.) and directs it to a granulation system or slag treatment facility for further processing. Slag chutes operate in an environment of 800–1200°C slag flow and are indispensable auxiliary equipment in steelmaking and ironmaking processes.

What Is a Steel Launder?

A steel launder (also called a casting chute) is a flow‑directing device used to guide and convey high‑temperature molten steel. It receives molten steel from converters, electric furnaces, or ladles and directs it to the tundish or mould of a continuous caster. Steel launders face even more extreme conditions – the instantaneous temperature of poured steel can exceed 1500°C, demanding exceptional thermal‑shock resistance from the material.

Key Differences at a Glance

AspectSlag ChuteSteel Launder
Conveyed mediumLiquid slag (containing SiO₂, Al₂O₃, etc.)High‑temperature molten steel (clean liquid steel)
Operating temperature800–1200°CAbove 1500°C (instantaneous impact)
Primary failure modesWear, erosion, deformationThermal‑shock cracking, steel contamination
Critical performance requirementsWear resistance, slag corrosion resistanceThermal‑shock resistance, non‑contamination of steel
Surface finish requirementModerateRa ≤ 12.5 μm (to prevent steel contamination)

2. Core Functions of Slag Chutes and Steel Launders

Core Functions of a Slag Chute

1. Receiving and directing molten slag

The slag chute is the first passage for furnace slag discharge. During converter tapping, the slag chute must withstand liquid slag at around 1500°C and guide it from the furnace mouth to the slag pot or granulation system.

2. Protecting the furnace lining and equipment

A high‑quality slag chute effectively resists erosion and scouring of the inner wall, ensuring smooth steelmaking and extending lining life.

3. Coordinating with slag treatment processes

In slag treatment processes such as the rotary drum method and air granulation, the slag chute is the core channel that receives and directs liquid steel slag into the treatment equipment. Its high‑temperature and wear‑resistant properties directly determine treatment efficiency and equipment maintenance intervals.

Core Functions of a Steel Launder

1. Guiding high‑temperature molten steel

On the continuous‑casting platform or during steel transfer, the steel launder is responsible for directing high‑temperature molten steel or treated slag from the ladle to the mould or tundish.

2. Withstanding thermal shock and thermal cycling

The steel launder must withstand the impact and thermal shock of liquid steel, ensuring process continuity and stability. The severe temperature changes during pouring impose extremely high demands on the launder’s resistance to thermal cracking.

3. Avoiding steel contamination

The surface finish and material purity of the steel launder directly affect steel quality. A rough surface or impure material may introduce impurities into the steel, degrading the final product quality.

3. Material Selection – How to Choose the Right Slag Chute and Steel Launder?

Material selection is the primary decision in designing slag chutes and steel launders. Because their operating temperatures and medium characteristics differ, material choices also emphasise different properties.

Common Materials for Slag Chutes

Material GradeMax. Service Temp.Key CharacteristicsTypical Applications
ZG35Cr28Ni101000–1300°C (peak 1400°C+)High Cr (~28%) and Ni (8–11%), excellent wear and corrosion resistanceConverter slag tapping, high‑temperature slag conveying
ZG35Cr28Ni81200°CStrong high‑temperature deformation resistance, cost‑effectiveContinuous scouring by high‑temperature slag
ZG40Cr25Ni20Si2 (2520/310S)1050–1150°C (peak 1200°C)Si‑strengthened oxidation resistance, dense oxide filmElectric‑arc furnace metallurgy, rotary‑kiln slag guidance
GX40CrNiSi25-20 (1.4848)1050–1150°CEuropean standard heat‑resistant steel, equivalent to 2520Export projects or EU‑standard requirements
Heat‑resistant ductile iron (RQTSi4Mo)Medium‑high temp.Lower costMedium‑to‑low temperature slag conveying

ZG35Cr28Ni10, with its high chromium content (approximately 28%) , forms a dense chromium‑oxide protective film that effectively resists abrasive wear and various corrosive media in molten slag. The high nickel content (8–11%) provides excellent high‑temperature strength and thermal‑fatigue resistance.

ZG35Cr28Ni8 meets the demands of many high‑temperature, high‑wear applications while offering greater cost competitiveness – a cost‑performance choice.

Common Materials for Steel Launders

Steel launders face instantaneous thermal shock above 1500°C, demanding even more stringent thermal‑shock resistance and high‑temperature strength:

Material GradeKey CharacteristicsTypical Applications
ZG40Cr25Ni20Si2 (2520)Excellent overall performance, good thermal‑shock resistanceStandard choice for continuous‑casting launders
ZGCr25Ni20Typical heat‑resistant cast steelConventional steel launders
High‑alloy heat‑resistant steelHigher Ni/Cr content, stronger temperature resistanceUltra‑high‑temperature conditions
Copper‑water‑jacket launderWater‑cooled medium enhances high‑temperature performanceHigh‑temperature slag/steel guidance (copper smelting, etc.)

It is particularly important to note that steel launders require extremely high surface quality – the roughness of the steel‑contact surface must reach Ra ≤ 12.5 μm to prevent slag adhesion and contamination of the liquid steel.

Three‑Step Material Selection Guide

Step 1: Identify the medium

  • Conveying molten slag → choose a slag chute, prioritise wear‑ and corrosion‑resistant materials (ZG35Cr28Ni10 / Ni8)
  • Conveying molten steel → choose a steel launder, prioritise thermal‑shock‑resistant, high‑purity materials (2520 series)

Step 2: Determine the temperature

  • ≤1000°C → heat‑resistant ductile iron or ZG35Cr28Ni8
  • 1000–1200°C → ZG35Cr28Ni10 or 2520
  • 1200–1300°C → ZG35Cr28Ni10 (peak conditions) or high‑alloy heat‑resistant steel
  • Above 1500°C (instantaneous) → 2520 series or copper‑water‑jacket structure

Step 3: Consider special requirements

  • Strong acidic slag corrosion → prioritise 2520 (Si‑strengthened oxidation resistance)
  • High abrasion conditions → prioritise ZG35Cr28Ni10 (high‑chromium wear resistance)
  • Frequent start‑stop (thermal fatigue) → prioritise materials with excellent thermal‑fatigue resistance

4. Structural Design and Manufacturing Processes

Common Structural Types

Integral cast launder: Manufactured as a single piece using lost‑foam casting or investment castingwith no welded joints. The inner wall is dense, free of porosity, blowholes, or shrinkage. Compared with traditional segmented welded structures, integral casting greatly reduces the risk of weld cracking at high temperatures.

Composite launder: The most severely impacted areas are lined with more wear‑resistant ceramic materials or given special heat treatment to create a graded protective layer. Composite slag chutes use a magnesia‑ or high‑alumina‑based substrate combined with a graphite flow‑surface layer, with mechanical interlocking to enhance durability.

Modular and quick‑change type: A replaceable launder body design allows the worn section to be quickly pulled out like a “drawer” and replaced with a new module, greatly shortening maintenance downtime.

Brick‑lined launder: Prefabricated and assembled on site, significantly reducing the manufacturing lead time and lowering both production and installation/dismantling costs.

Copper‑water‑jacket launder: In non‑ferrous metallurgy, water‑cooled copper launders replace traditional refractory or graphite launders, using water cooling to enhance high‑temperature performance.

Manufacturing Process Comparison

ProcessKey AdvantagesSuitable Applications
Lost‑foam castingOne‑piece forming, no welds, smooth inner wall prevents slag adhesionHigh‑quality slag chutes / steel launders
Investment castingHigh dimensional accuracy, good surface qualitySmall batches, high precision requirements
Sand castingLow cost, suitable for large castingsLarge‑volume production, conventional conditions
Copper‑water‑jacket structureWater cooling raises temperature limitUltra‑high‑temperature non‑ferrous smelting

Key Design Considerations

1. Uniform wall thickness transition

Cast launders must have smooth wall‑thickness transitions to avoid local stress concentrations that lead to high‑temperature cracking.

2. Inner‑wall smoothness

The flow channel wall should maintain a high degree of smoothness to prevent slag adhesion and material build‑up. For steel launders, surface finish requirements are stricter (Ra ≤ 12.5 μm).

3. Thermal expansion allowance

Launders expand at high temperatures; the design must include adequate expansion clearances to avoid deformation from compression.

4. Swing launder design

The “swing launder” introduced by MCC Jingcheng enables precise receiving and guiding of liquid steel even as the ladle car moves, improving operational flexibility and safety.

5. Application Scenarios and Typical Operating Conditions

Typical Applications of Slag Chutes

ApplicationOperating CharacteristicsRecommended Material
Converter slag tapping1500°C liquid slag scouringZG35Cr28Ni10
Electric‑arc furnace smeltingContinuous high‑temperature slag discharge2520 series
Flash furnace / electric furnace slag conveyingLarge slag volume, high slag temperatureCopper‑water‑jacket launder
Steel slag treatment systemRotary drum, air granulation processesZG35Cr28Ni8 / Ni10
Blast‑furnace auxiliary slag runnerAuxiliary directing and distributionHeat‑resistant steel launder

Typical Applications of Steel Launders

ApplicationOperating CharacteristicsRecommended Material
Continuous‑casting platformDirecting steel to the mould2520 series
Steel transferLadle‑to‑tundish guidanceHigh‑alloy heat‑resistant steel
Converter feed chuteAdding dephosphorisation / desulphurisation materialsWear‑ and heat‑resistant steel

6. Selection Guide – Five Steps to the Best Solution

Step 1: Identify the conveyed medium

  • Molten slag → Slag chute
  • Molten steel → Steel launder

Step 2: Determine the temperature range

  • Conventional high temperature (≤1200°C) → ZG35Cr28Ni8 (economical) or ZG35Cr28Ni10 (high performance)
  • Ultra‑high temperature (1200°C+) → ZG35Cr28Ni10 or 2520 series
  • Instantaneous 1500°C+ → 2520 series or copper‑water‑jacket structure

Step 3: Evaluate wear and corrosion

  • Severe wear (high SiO₂/Al₂O₃ content) → high‑chromium material (ZG35Cr28Ni10)
  • Strong corrosion (acidic slag) → 2520 (Si‑strengthened oxidation resistance)
  • General conditions → ZG35Cr28Ni8 (cost‑effective)

Step 4: Choose the manufacturing process

  • High quality, long service life → lost‑foam casting
  • Fast delivery, controlled cost → sand casting
  • Ultra‑high‑temperature special conditions → copper‑water‑jacket structure

Step 5: Consider maintenance convenience

  • Quick‑change requirement → modular / replaceable launder design
  • Conventional maintenance → integral cast launder

7. Usage and Maintenance Highlights

Failure Modes and Prevention

1. Wear

Hard particles such as SiO₂ and Al₂O₃ in the slag cause rapid wear. Preventive measures: select high‑chromium wear‑resistant materials (ZG35Cr28Ni10), or line the most severely worn areas with wear‑resistant ceramics.

2. Thermal‑fatigue cracking

Alternating heating and cooling from frequent start‑stop cycles can lead to cracking. Preventive measures: choose materials with excellent thermal‑fatigue resistance and subject castings to high‑temperature stress‑relief annealing before delivery.

3. Deformation

Long‑term load at high temperatures can cause launder distortion. Preventive measures: choose materials with strong high‑temperature deformation resistance (e.g., ZG35Cr28Ni8) and design appropriate wall thicknesses and reinforcing structures.

4. Slag adhesion and blockage

Rough inner walls promote slag build‑up. Preventive measures: maintain high inner‑wall smoothness and clean regularly.

Routine Maintenance Points

  • Regular inspection: Check the inner wall for wear, cracks, or deformation.
  • Timely replacement: Replace immediately when severe wear or cracks are found to avoid leakage accidents.
  • Clean slag deposits: Regularly remove slag adhered to the inner wall to keep the flow path clear.
  • Check connections: Inspect the sealing at the joint between the launder and the furnace outlet.

Measures to Extend Service Life

  1. Select high‑quality heat‑resistant steel: Compared with ordinary carbon steel, high‑quality heat‑resistant steel launders offer 2–3 times longer service life.
  2. Optimise the casting process: Use lost‑foam casting to eliminate welded weak points.
  3. Local reinforcement: Line the most severely impacted areas with wear‑resistant ceramics or hard‑face with high‑temperature materials.
  4. Modular design: Adopt a replaceable design so that only the damaged module needs changing after local wear.
  5. Intelligent monitoring: Integrate sensors to monitor wall‑thickness wear and internal temperature in real time, enabling predictive maintenance.

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