JGS Nitriding

Methods of Surface Failure

TECHNICAL RESOURCE

Methods of Surface Failure

Surface failure can develop through several different wear mechanisms depending on material properties, loading, friction, contamination, operating environment, and component design. Understanding how a surface is failing is an important first step in selecting the right material or surface treatment for the application.

WEAR MECHANISMS

Common Types of Surface Failure

Different wear mechanisms produce different patterns of material loss and surface damage. Explore each type below for a closer look at how these failures develop.

Adhesive Wear

Adhesive wear develops when contacting surfaces begin to gall, deform, and transfer material between one another. Increased heat and contact pressure can accelerate the process and lead to localized welding between surfaces.

Learn About Adhesive Wear

Abrasive Wear

Abrasive wear occurs when hard particles or raised surface features move against another surface and remove material through cutting, scratching, or repeated contact.

Learn About Abrasive Wear

Corrosive Wear

Corrosive wear combines surface degradation with chemical attack from the surrounding environment. Moisture, salts, acids, and other contaminants can contribute to pitting and material loss.

Learn About Corrosive Wear

Erosive Wear

Erosive wear develops when particles carried by a moving gas or liquid strike a surface at sufficient velocity to cut, deform, or gradually remove material.

Learn About Erosive Wear

Surface Fatigue Wear

Surface fatigue wear results from repeated cyclic sliding or rolling contact. Continued loading can initiate subsurface cracks that eventually lead to pitting, spalling, and surface deterioration.

Learn About Surface Fatigue

IDENTIFYING THE CAUSE

Understanding Why a Surface Failed

Surface damage rarely tells the entire story by itself. The operating environment and component conditions help determine why the failure occurred.

01 Identify the Wear Pattern

Examine the component for galling, scratches, pitting, spalling, material transfer, or other visible indications of surface damage.

02 Review Operating Conditions

Consider loading, lubrication, friction, temperature, contamination, moisture, and the type of contact occurring between components.

03 Evaluate Surface Requirements

Determine whether increased hardness, wear resistance, fatigue performance, lower friction, or corrosion protection may improve component life.

SURFACE ENGINEERING

Improving Resistance to Surface Failure

Proper material selection, component design, lubrication, and operating conditions all play a role in controlling wear. Where additional surface performance is required, plasma ion nitriding can improve the working surface of suitable ferrous components without applying a conventional coating.

Treatment requirements should be developed around the specific material, failure mechanism, component geometry, and operating environment.

Surface Hardness

Improve resistance to mechanical wear at critical working surfaces.

Wear Resistance

Help reduce material loss caused by friction and repeated contact.

Fatigue Performance

Improve surface performance where components experience repeated cyclic loading.

Reduced Friction

Improve surface characteristics between mating or sliding components.

Corrosion Protection

PLASOX® can provide additional protection where environmental exposure is a concern.

IMPROVE SURFACE PERFORMANCE

Experiencing Premature Component Wear?

Contact JGS to discuss the material, component, operating conditions, and type of surface failure you are experiencing. We can help evaluate whether plasma ion nitriding or another JGS surface treatment is appropriate for the application.