In plating, "mechanical properties" is a general term for the characteristics that describe how a plated layer behaves under physical forces and friction. Alongside corrosion resistance and electrical conductivity, they are a key evaluation criterion, and selecting properties suited to the application and processing conditions determines product quality and component life.
This property resists deformation and wear under mechanical stress, extending component life. It is especially important in environments subject to continuous loads, such as cutting tool edges and the sliding surfaces of hydraulic shafts.
Hard chrome plating offers high surface hardness, and heat-treated high-phosphorus electroless nickel plating can achieve even greater hardness, making both leading choices for high-load applications.
This property reduces frictional resistance and maintains smooth movement over time. Because increased friction leads to heat generation, wear, and energy loss, it is essential for components with dynamic contact, such as bearings and precision guide rails.
Composite nickel plating with dispersed PTFE particles combines a low coefficient of friction with high wear resistance within the plated layer itself, making it well suited for dynamic contact components. When even lower friction is required, DLC coating is a good fit.
Ductility is the ability of a plated layer to follow the deformation of the base material and stretch without cracking. In components that undergo press forming or bending, insufficient ductility leads to cracks and defective parts.
Copper plating, soft gold, and zinc plating are commonly selected for ductility-focused applications. However, higher hardness tends to reduce ductility, so plating types must be selected with the manufacturing process in mind.
This property enhances plating adhesion to difficult substrates such as plastics, aluminum, and dissimilar metals. Because poor adhesion leads directly to peeling failures during use, the design of the pretreatment process forms the foundation of quality.
A combination of electroless nickel plating, widely used as an underlayer (with phosphorus content selected according to the application), and copper strike treatment can ensure stable adhesion even on difficult substrates.
The four mechanical properties are summarized below. Because the suitable applications and recommended plating types differ for each property, it is important to define your requirements from the early stages of design.
| Property | Key Benefits | Typical Applications | Recommended Plating |
|---|---|---|---|
| High hardness and wear resistance | Resists wear for longer service life | Cutting tools, shafts | Hard chrome plating, electroless nickel |
| Lubricity and low friction | Reduces friction | Bearings, guides | PTFE-nickel, hard chrome plating |
| Ductility | Resists cracking after forming | Pressed and bent parts | Copper plating, soft gold |
| Improved adhesion | Bonds to difficult substrates | Plastic and aluminum parts | Electroless nickel, copper strike |
Even when the same material and plating type are specified on the design drawings, the finished quality depends heavily on the know-how of the plating company. Functional plating requires judgment backed by experience, such as coating thickness control that accounts for the trade-off between hardness and ductility, and pretreatment design for difficult substrates.
Choosing a company that can make application-specific recommendations helps you avoid quality problems. When selecting a supplier, we also recommend referring to "3 Recommended Functional Plating Companies by Industry and Component."