Durómetro

Ensayo de dureza por rebote: una guía técnica exhaustiva (2025)

Introduction to Rebound Hardness Testing

En rebound hardness test—also known as the dynamic hardness test—is a non-destructive method used to evaluate the hardness of metallic materials by measuring the velocidad de rebote​ of an impact body striking the test surface. Unlike static indentation tests (e.g., Brinell, Rockwell, Vickers), rebound methods assess hardness based on the conservation of energy during elastic impact.

Among rebound techniques, the Ensayo de dureza Leeb​ is the most widely adopted and internationally standardized (ISO 16859). This guide focuses primarily on the Leeb method while also covering other rebound-based approaches and their comparative advantages.

Rebound hardness testing is indispensable in industries where:

  • Components are large, heavy, or immovable
  • Field inspection​ is required
  • Rapid, repeatable hardness data​ is essential
  • Minimal surface damage is preferred

Fundamental Principle of Rebound Hardness

The rebound hardness test operates on the energy-loss principle​ during elastic-plastic impact.

Physical Process

  1. Impacto: An impact body (typically tungsten carbide) is propelled toward the test surface with a defined kinetic energy.
  2. Contacto y deformación: Upon contact, part of the kinetic energy is dissipated through plastic deformation and internal friction.
  3. Rebote: The remaining energy causes the body to rebound.
  4. Medición de la velocidad: The instrument measures impact velocity (vi​) and rebound velocity (vr​).
  5. Cálculo de la dureza: Hardness is derived from the ratio of rebound to impact velocity.

Core Formula (Leeb)

HL = 1000 × vi​vr​​

Dónde:

  • vi​= Velocidad de impacto (m/s)
  • vr​= Velocidad de rebote (m/s)

The resulting HL value​ is dimensionless and can be converted to conventional hardness scales (Rockwell, Brinell, Vickers) using standardized tables.


Leeb Hardness Test (ISO 16859)

Instrumentation

A Leeb hardness tester typically consists of:

  • Impact device​ with spring-loaded or electromagnetically propelled tungsten carbide tip
  • Velocity sensors​ (coil or laser-based)
  • Digital processor​ for calculation and conversion
  • Display unit​ with data logging and software connectivity

Standard Test Procedure

  1. Surface Preparation
    • Surface roughness ≤ Ra 10 µm
    • Remove loose scale, oil, and oxidation
    • Ensure minimum thickness to avoid substrate influence
  2. Probe Positioning
    • Hold probe perpendicular to the test surface
    • Ensure firm, stable contact without tilting
  3. Impact and Measurement
    • Trigger the impact
    • Device automatically calculates HL value
    • Readout typically appears within 1 second
  4. Multiple Readings
    • Perform ≥5 impacts per location
    • Discard invalid readings caused by improper contact or surface defects
    • Average valid results

Hardness Conversion and Interpretation

Leeb hardness values (HL) are empirically correlated with other hardness scales. Examples for carbon steel:

Leeb HLRockwell C (HRC)Brinell HBWVickers HV
300≈10≈105≈110
400≈20≈145≈155
500≈30≈190≈200
600≈40≈235≈245
700≈50≈285≈295

⚠️ Important: Conversions are material-specific. Always use the correct table (steel, cast iron, aluminum, etc.).


Alternative Rebound Hardness Methods

While Leeb dominates industrial use, other rebound methods exist:

1. Shore Scleroscope (Historical)

  • Uses a free-falling hammer with a diamond tip
  • Measures rebound height visually
  • Largely obsolete in modern practice

2. Equotip Rebound Tester

  • Similar principle to Leeb but with different impact energy and calibration
  • Less common today
  • Uses a vibrating diamond tip under light load
  • Measures frequency change upon contact
  • Often grouped with rebound methods in portable hardness testing

Applications of Rebound Hardness Testing

1. Heavy Industry and Steel Manufacturing

  • Steel plates and structural sections
  • Castings and forgings
  • Heat-treated components

2. Oil, Gas, and Energy Sector

  • Pipelines and pressure vessels
  • Offshore platforms
  • Torres de aerogeneradores

3. Field and In-Service Inspection

  • Bridges and infrastructure
  • Large rotating machinery
  • Tren de aterrizaje aeroespacial

4. Heat Treatment Verification

  • Cementación
  • Templado por inducción
  • Nitriding and annealing

Advantages of Rebound Hardness Testing

Portable and field-capable

Minimal surface damage

Rapid results​ (seconds per test)

Suitable for large or installed components

Lectura y conversión digitales inmediatas

No destructivo


Limitaciones y fuentes de error

Sensible a la dirección​ – Es necesario controlar la orientación del impacto

No apto para materiales finos​ (<2–3 mm, dependiendo de la dureza)

La rugosidad de la superficie afecta a la precisión

Las conversiones empíricas pueden generar incertidumbre

Not ideal for very hard or very soft materials outside calibration range


Comparison with Static Indentation Tests

CaracterísticaRebound (Leeb)RockwellBrinellVickers
Tipo de pruebaDynamicStaticStaticStatic
PortabilidadExcelentePobrePobrePobre
Preparación de la superficieBajoMedioAltoAlto
DañosMínimoModeradoAltoAlto
VelocidadMuy rápidoRápidoLentoLento
Ideal paraPiezas de gran tamaño, uso en el terrenoLaboratorio/producciónPiezas en brutoMateriales finos/duros

Buenas prácticas para obtener resultados precisos

  • Follow ISO 16859​ procedures strictly.
  • Mantener orientación constante de la sonda​ (vertical impact recommended).
  • Utilice material-specific conversion tables.
  • Avoid edges, corners, and highly curved surfaces unless corrections are applied.
  • Realizar regular calibration​ con bloques de referencia certificados.
  • Average multiple readings to reduce statistical scatter.

  • Wireless and IoT-enabled devices
  • AI-assisted data interpretation and anomaly detection
  • Automated scanning probes for large-area mapping
  • Integration with digital twin and asset management platforms
  • Bases de datos de materiales ampliadas para garantizar la precisión de la conversión

Conclusión

The rebound hardness test—particularly the Leeb method—is a powerful, portable, and efficient solution for evaluating metallic hardness where conventional indentation methods are impractical. Its dynamic rebound principle enables rapid, non-destructive testing of large, heavy, or field-installed components.

Al seguir procedimientos estandarizados, comprender sus limitaciones y aplicar las conversiones adecuadas, los ingenieros e inspectores pueden obtener datos fiables sobre la dureza, esenciales para el control de calidad, el mantenimiento y la caracterización de los materiales.

For high-precision rebound hardness testers and calibration services, consult reputable metrology suppliers who comply with ISO 16859​ y proporcionar certificados de calibración trazables.

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