Calculadora de Expansión Térmica del Acero

Calcule cuánto se expande o contrae una pieza metálica con la temperatura. Ingrese la longitud, el cambio de temperatura y el material, y obtenga el cambio de longitud, la longitud final y la expansión por metro.

Expansión térmica

Longitud final
Por metro
ΔT
Coeficiente

Expansión lineal, ΔL = α L ΔT. Los coeficientes son promedios cercanos a temperatura ambiente y aumentan ligeramente a temperatura elevada.

Coeficientes de expansión térmica lineal

Material α (×10⁻⁶/°C) α (×10⁻⁶/°F) Expansión de 10 m con ΔT 50 °C
Acero al carbono 12.0 6.7 6.0 mm
Acero inoxidable 304 17.3 9.6 8.7 mm
Acero inoxidable 316 16.0 8.9 8.0 mm
Acero inoxidable 430 10.4 5.8 5.2 mm
Acero para herramientas 11.5 6.4 5.8 mm
Hierro fundido 10.5 5.8 5.2 mm
Aluminio 23.1 12.8 11.6 mm
Cobre 16.5 9.2 8.2 mm
Latón 19.0 10.6 9.5 mm
Titanio 8.6 4.8 4.3 mm
Aleación de níquel 13.0 7.2 6.5 mm
Invar 36 1.2 0.7 0.6 mm
Hormigón 12.0 6.7 6.0 mm
Vidrio 9.0 5.0 4.5 mm

Preguntas frecuentes

¿Cómo se calcula la dilatación térmica del acero?

Multiplique el coeficiente de dilatación térmica por la longitud original y por el cambio de temperatura: delta-L = alfa x L x delta-T. Para el acero al carbono, alfa es aproximadamente 12 x 10^-6 por grado Celsius.

¿Cuál es el coeficiente de dilatación térmica del acero?

El acero al carbono es de aproximadamente 12 x 10^-6 /°C. El acero inoxidable 304 es mucho más alto, con 17.3, el ferrítico 430 es de 10.4, y el Invar 36 es de solo 1.2 — por eso se usa Invar donde la estabilidad dimensional es importante.

¿Cuánto se expande una viga de acero?

Una viga de acero al carbono de 10 m calentada 40 °C se expande aproximadamente 4.8 mm. Por eso se usan juntas de dilatación y agujeros alargados en estructuras largas y tuberías.

¿Importa la unidad de temperatura?

Solo el tamaño del grado. Un cambio de 1 °C equivale a un cambio de 1.8 °F, por lo que el coeficiente por °F es el valor por °C dividido entre 1.8. Use diferencias de temperatura, nunca temperaturas absolutas con un desfase.

Herramientas relacionadas: Capacidad de carga · Luz · Selector de vigas · Flecha · Peso del metal · Todas las calculadoras

Thermal Expansion Calculator for Steel

Calculate the dimensional changes in steel components due to temperature variations. Understand and plan for thermal expansion or contraction in engineering and construction projects.

Object Dimensions
Temperature Change
Material Properties

Thermal Expansion Results

Temperature Change: 0 °C
Length Change: 0 mm
Final Dimensions: -
Expansion Coefficient Used: 0 × 10⁻⁶ /°C
Percentage Change: 0%

Thermal Expansion Visualization

Understanding Thermal Expansion in Steel

What is Thermal Expansion?

Thermal expansion is the tendency of matter to change its dimensions in response to a change in temperature. Most materials expand when heated and contract when cooled. The change in length, area, or volume is proportional to the original dimension and the temperature change.

For engineering applications involving steel, accounting for thermal expansion is crucial in:

  • Bridge design and expansion joints
  • Railway track installation
  • Piping systems and steam lines
  • Building facades and structural elements
  • Precision machine components
  • Industrial equipment subject to temperature variations

How Thermal Expansion is Calculated

The basic formulas for calculating thermal expansion are:

Linear expansion: ΔL = α × L₀ × ΔT

Area expansion: ΔA = 2α × A₀ × ΔT

Volume expansion: ΔV = 3α × V₀ × ΔT

Where:
ΔL, ΔA, ΔV = Change in length, area, or volume
α = Coefficient of linear thermal expansion
L₀, A₀, V₀ = Initial length, area, or volume
ΔT = Temperature change

The coefficient of thermal expansion (α) varies between different types of steel based on their composition and structure.

Thermal Expansion Coefficients for Steel

The thermal expansion coefficient describes how much a material expands per unit length for each degree of temperature increase.

Steel Type Coefficient (α) in 10⁻⁶/°C Temperature Range
Carbon Steel 11.7 20-100°C
Mild Steel 13.0 20-100°C
Stainless Steel 304 10.8 20-100°C
Stainless Steel 316 16.0 20-100°C
Structural Steel 14.0 20-100°C
Tool Steel 12.0 20-100°C
Low Expansion Steel 10.0 20-100°C

Note: These values may vary slightly depending on the exact composition and production method of the steel.

Practical Considerations for Engineers

  • Expansion Joints: For long steel structures, expansion joints should be provided at appropriate intervals to accommodate thermal movement.
  • Fixing Points: Consider where the structure is fixed and where it's free to move to predict the direction of expansion.
  • Thermal Stress: If a component is constrained and cannot expand freely, thermal stress will develop according to: σ = E × α × ΔT (where E is Young's modulus).
  • Differential Expansion: When different materials are joined, their different expansion rates can cause bending or warping.
  • Temperature Range: Design for the full range of temperatures the structure will experience, not just average conditions.

Using This Calculator

  1. Select the object type (linear, area, or volume)
  2. Enter the initial dimensions
  3. Specify the initial and final temperatures
  4. Choose the steel type or enter a custom thermal expansion coefficient
  5. Indicate if the element has movement constraints
  6. Click "Calculate Thermal Change" to see results

The calculator will display the expected dimensional changes and, if requested, detailed analysis including thermal stress calculations for constrained elements.