Comment résoudre les défauts du moulage à la cire perdue ?

27 septembre 2024

Investment casting, also known as lost-wax casting, is a widely used process for creating precise metal castings. However, several defects may occur during the investment casting process which may seriously effect the quality of the products. Solving defects in investment casting process requires understanding the root causes and applying corrective measures at various stages of the process. Here we list out the common investment casting defects and the corresponding solutions for your reference.

investment casting process

1. Shrinkage Defects

Causes: Poor solidification control, improper gating system design, insufficient feeding of molten metal.

Solutions:

  • Optimize the Gating System: Design the gating and riser system to ensure even metal flow and minimize shrinkage. Use chills or insulated risers to control the cooling rate.
  • Increase Feeding: Use larger or additional feeders to ensure that the metal can compensate for shrinkage during solidification.
  • Control Cooling Rate: Ensure a uniform cooling rate across the part, especially in thicker sections.
lost-wax casting

2. Porosity 

Causes: Gas entrapment during pouring, improper degassing, or poor mold permeability.

Solutions:

  • Degas Molten Metal: Degas the molten metal properly before pouring to remove dissolved gases.
  • Improve Mold Venting: Design the mold to allow trapped air and gases to escape during pouring.
  • Use Vacuum Casting: Employ vacuum or low-pressure casting to minimize gas entrapment.
  • Control Pouring Temperature: Ensure the molten metal is at the right temperature to reduce gas absorption.
investment casting process

3. Cold Shuts

Causes: Two streams of molten metal failing to fuse properly, often due to low temperatures or poor fluidity.

Solutions:

  • Preheat the Mold: Preheat the mold to an appropriate temperature to ensure proper metal flow.
  • Increase Pouring Temperature: Ensure the molten metal is poured at a temperature that maintains fluidity.
  • Redesign Gating System: Use a gating system that directs metal flow more efficiently and reduces turbulence.

4. Misruns

Causes: Insufficient filling of the mold due to low metal temperature, poor flow characteristics, or cooling before the mold is fully filled.

Solutions:

  • Increase Pouring Temperature: Pour molten metal at a higher temperature to maintain fluidity.
  • Redesign the Mold and Gating System: Ensure the gating system allows for quick and complete filling of the mold.
  • Use Better Wax Patterns: Ensure that the wax pattern is designed to avoid thin or sharp sections that are hard to fill.
  • Preheat the shell mold: Preheat the shell mold to an appropriate temperature to prevent premature cooling; after the burning of the shell mold, pouring when the shell mold is still hot.

5. Inclusions

Causes: Foreign materials, such as slag, sand, or oxides, getting trapped in the metal during casting.

Solutions:

  • Filter Molten Metal: Use filters to trap impurities before the metal enters the mold.
  • Clean the Mold: Ensure the mold is free of debris or sand that can be entrained in the metal.
  • Use Cleaner Melting Practices: Minimize slag formation during melting by using fluxes and keeping melting equipment clean.
  • Employ Slag Traps in the Gating System: Design the gating system to trap any slag or inclusions before they enter the mold cavity.

6. Cracking or Hot Tears

Causes: High internal stresses as the metal cools and contracts, often due to uneven solidification or mold expansion.

Solutions:

  • Use Controlled Cooling: Implement controlled cooling strategies to ensure even solidification, especially in thicker sections.
  • Improve Mold Design: Use a mold design that reduces stress concentrations, especially around sharp corners and thick sections.
  • Apply Insulation: Use insulated risers or chills to ensure even cooling and reduce internal stresses.
  • Stress Relief Post-Treatment: Perform stress-relief heat treatment after casting to reduce the risk of cracking.

7. Surface Roughness or Finish Defects

Causes: Poor-quality molds or wax patterns, inadequate coating, or mold breakdown.

Solutions:

  • Use High-Quality Patterns: Ensure that the wax patterns are smooth and free from defects before investment.
  • Improve Slurry Coating Process: Use a high-quality ceramic slurry to create a smooth mold surface.
  • Maintain Mold Integrity: Ensure proper curing and drying of the ceramic shell to avoid mold cracking or breakdown.
  • Polish or Treat the Surface Post-Casting: Apply surface treatments like grinding or polishing after casting to improve the finish.

8. Mold Expansion (Shell Cracking)

Causes: Expansion of the mold due to high temperatures, which can lead to cracks or distortion.

Solutions:

  • Use High-Strength Shell Materials: Use high-quality refractory materials for the shell to withstand expansion stresses.
  • Apply Uniform Coating: Ensure uniform thickness of the ceramic shell to avoid localized stresses and cracking.
  • Improve Drying and Curing: Ensure the shell is fully dried and cured before pouring molten metal to minimize the risk of expansion cracks.
  • Use Expandable Patterns: Use wax patterns that can expand slightly during the heating process to relieve stress on the shell.
  • In a summary to the above, we can take the following general preventive measures to avoid the casting defects during the production process:
  • Control Process Parameters: Regularly monitor and control temperatures, flow rates, and other key process parameters to maintain consistency.
  • Use Simulation Software: Casting simulation software can be used to predict and correct potential defects before actual production.
  • Quality Control and Inspection: Conduct thorough inspections at each stage, from wax pattern creation to mold filling, to identify defects early.
  • Optimize Material Selection: Use the right alloys and mold materials for the desired casting properties and performance.
  • By combining these solutions with systematic testing and process refinement, investment casting defects can be minimized, leading to higher-quality castings.