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🔥 Convection Heat Transfer Calculator

Convection Heat Transfer Calculator

Inputs

Results

Convection Coefficient (h)-BTU/hr·ft²·°F
Reynolds Number (Re)-
Nusselt Number (Nu)-
Flow Regime-

Calculator Description

The convection heat transfer coefficient (h) quantifies heat transfer between a fluid and a solid surface. By Newton's law of cooling, heat flux is q = h × (T_s − T_∞), varying with velocity, fluid properties, and geometry.

What this calculator finds

It calculates Reynolds number (Re), Prandtl number (Pr), selects the appropriate correlation (Nusselt number relationship), and computes the convection heat transfer coefficient h for various geometries such as flat plates, cylinders, and spheres.

Why it matters

  • Key factor in determining the overall heat transfer coefficient (U) in heat exchanger design
  • Essential for performance evaluation of cooling systems (engine cooling, electronics cooling, etc.)
  • Used for predicting heating/cooling time of process equipment

Formula

Newton's Law of Cooling

The fundamental formula for convection, expressing heat flux proportional to the temperature difference between fluid and surface.

q=h(TsT)q = h\left(T_s - T_{\infty}\right)
  • qHeat flux [W/m²]
  • hConvection heat transfer coefficient [W/(m²·K)]
  • TsSurface temperature [°C or K]
  • TFluid temperature (free stream) [°C or K]

Nusselt number correlations

The Nusselt number (Nu) is the dimensionless heat transfer coefficient, expressed as a function of Re and Pr. Select the appropriate correlation based on geometry and flow conditions.

Flat plate turbulent

Nu=0.037Re0.8Pr1/3Nu = 0.037\,Re^{0.8} Pr^{1/3}

Circular tube turbulent

Nu=0.023Re0.8PrnNu = 0.023\,Re^{0.8} Pr^{n}

Sphere

Nu=2+0.6Re1/2Pr1/3Nu = 2 + 0.6\,Re^{1/2} Pr^{1/3}

Derivation of convection coefficient h

h=NukLh = \dfrac{Nu\,k}{L}
  • NuNusselt number (dimensionless)
  • kThermal conductivity of fluid [W/(m·K)]
  • LCharacteristic length [m] (tube: diameter, plate: length)

Dimensionless number formulas

Re=ρvLμRe = \dfrac{\rho v L}{\mu}
Pr=μcpkPr = \dfrac{\mu c_p}{k}
  • ReReynolds number: ratio of inertial to viscous forces (Re > 2300: transition, Re > 10⁴: turbulent)
  • PrPrandtl number: ratio of momentum to thermal diffusivity (air ≈ 0.71, water ≈ 7.0)
  • μDynamic viscosity [Pa·s]
  • vVelocity [m/s]

Useful Tips

Practical tips

  • Typical h ranges: air natural convection 5–25, forced convection 25–250, liquids 100–20,000 W/(m²·K)
  • Increasing velocity raises h but also increases erosion and noise
  • Using fins or turbulence promoters can significantly increase h by enhancing turbulence

Limitations & cautions

  • Correlations are derived for specific geometries/flow ranges; always verify applicability before use
  • Mixed convection (combined natural and forced) requires separate correlations
  • Transient convection heat transfer is not covered by this calculator and requires time-dependent analysis