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Key points of over mold injection molding

2023-09-05

Overmolding in injection molding is a process in which one material (usually a softer or more flexible material) is molded over a previously molded part (usually a rigid plastic or metal substrate). This technique is commonly used to enhance the functionality, aesthetics, or ergonomics of a product. Here are key points to consider in overmold injection molding:


1. Substrate Material Selection: Choose the base material (substrate) carefully, as it will serve as the foundation for the overmolded part. The substrate should have good adhesion properties with the overmold material and be compatible with the overall application.


2. Material Compatibility: Ensure that the overmold material is compatible with the substrate in terms of adhesion and thermal properties. Adhesion promoters or surface treatments may be necessary to improve bonding between the two materials.


3. Material Selection for Overmolding: Select an overmold material that provides the desired properties, such as softness, grip, color, or additional functionality. Common overmold materials include thermoplastic elastomers (TPE), thermoplastic polyurethane (TPU), and silicone rubber.


4. Design Considerations: Design the mold and part geometry with overmolding in mind. Pay attention to features like undercuts, interlocking sections, and material flow channels. Proper mold venting is essential to prevent air entrapment.


5. Overmold Sequence: Determine the sequence of injection for the substrate and overmold material. The overmold material is typically injected second, covering the substrate.


6. Mold Design: The mold must be designed to accommodate both the substrate and overmold cavities. It should include mechanisms to securely hold the substrate in place during the overmolding process.


7. Adhesion Promotion: Surface treatments, such as plasma treatment or chemical bonding agents, may be required to improve adhesion between the substrate and overmold materials.


8. Cycle Time: Consider cycle times and cooling requirements. Overmolding can increase cycle times due to the need for two separate injection steps and cooling phases.


9. Quality Control: Implement quality control measures to ensure proper bonding between the substrate and overmold materials. Visual inspections, adhesion tests, and dimensional checks are common quality control steps.


10. Tooling and Inserts: Overmolding may involve using specialized tooling or inserts to create specific features or to accommodate complex part geometries. These should be designed and manufactured with precision.


11. Material Flow: Optimize material flow paths for both the substrate and overmold material. Properly designed runners and gates are essential to achieve uniform distribution of material.


12. Tolerances and Shrinkage: Account for material shrinkage and dimensional changes during the overmolding process when designing part tolerances and dimensions.


13. Part Ejection: Plan for the ejection of the finished overmolded parts from the mold. Proper ejection mechanisms or processes are crucial to avoid damaging the parts.


14. Post-Mold Operations: Consider any post-molding operations, such as trimming or assembly, that may be necessary to complete the product.


15. Testing and Validation: Conduct testing and validation to ensure that the overmolded parts meet design and performance specifications.


Overall, successful overmold injection molding requires careful planning, design, and attention to material compatibility and processing parameters to achieve the desired functional and aesthetic results. Our company has rich experience in Over Mould, 2K Mold and Insert Mould.

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