Dielectric Thermodynamics¶

This module describes the laws concerning the thermodynamics of dielectric media.

Contents:

  • Enthalpy change via entropy change and electric field change
    • enthalpy_density_change
    • temperature
    • entropy_density_change
    • electric_displacement
    • electric_field_change
    • law
  • Enthalpy of dielectrics
    • enthalpy_density
    • internal_energy_density
    • electric_field_strength
    • electric_displacement
  • Free energy change via temperature change and electric displacement change
    • free_energy_density_change
    • entropy_density
    • temperature_change
    • electric_field_strength
    • electric_displacement_change
    • law
  • Gibbs energy change via temperature change and electric displacement change
    • gibbs_energy_density_change
    • entropy_density
    • temperature_change
    • electric_displacement
    • electric_field_change
    • law
  • Gibbs energy of dielectrics
    • gibbs_energy_density
    • free_energy_density
    • electric_field_strength
    • electric_displacement
    • law
  • Internal energy change via heat and electric displacement change
    • internal_energy_density_change
    • heat_density
    • electric_field_strength
    • electric_displacement_change
    • law

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      • Dielectric Thermodynamics
        • Enthalpy change via entropy change and electric field change
        • Enthalpy of dielectrics
        • Free energy change via temperature change and electric displacement change
        • Gibbs energy change via temperature change and electric displacement change
        • Gibbs energy of dielectrics
        • Internal energy change via heat and electric displacement change
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      • Change in entropy of ideal gas from volume and temperature
      • Chemical potential is Gibbs energy per particle
      • Chemical potential is particle count derivative of enthalpy
      • Chemical potential is particle count derivative of free energy
      • Chemical potential is particle count derivative of Gibbs energy
      • Chemical potential is particle count derivative of internal energy
      • Chemical potential of ideal gas
      • Classical isochoric molar heat capacity of solids
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      • Dynamic viscosity of gas from temperature
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      • Enthalpy derivative via volume derivative
      • Enthalpy differential
      • Enthalpy is internal energy plus pressure energy
      • Enthalpy via Gibbs energy
      • Entropy change in reversible process
      • Entropy derivative via volume derivative
      • Entropy from statistical weight
      • Entropy is derivative of free energy
      • Entropy is derivative of Gibbs energy
      • Entropy of independent subsystems is sum of their entropies
      • Fractional volume change via small temperature change
      • Free energy differential
      • Gas mixture pressure from partial pressures
      • Gas pressure change from temperature
      • Gibbs energy differential
      • Gibbs energy via enthalpy
      • Grashof number
      • Heat is heat capacity times temperature change
      • Heat of combustion via mass
      • Heat of vaporization via mass
      • Helmholtz free energy via internal energy
      • Infinitesimal work in quasistatic process
      • Intensive parameters relation
      • Internal energy change of ideal gas via temperature
      • Internal energy change via heat and work
      • Internal energy differential
      • Internal energy of ideal gas via temperature
      • Internal energy via Helmholtz free energy
      • Isentropic speed of sound
      • Isobaric molar heat capacity of ideal gas via adiabatic index
      • Isobaric potential from heat capacity
      • Isobaric potential of temperature dependent heat capacity
      • Isochoric and isobaric heat capacities of homogeneous substance
      • Isochoric and isobaric heat capacities of ideal gas
      • Isochoric molar heat capacity of ideal gas via adiabatic index
      • Isochoric molar heat capacity of ideal gas via degrees of freedom
      • Laplace pressure of spherical shapes
      • Latent heat of fusion via mass
      • Mean free path of random motion
      • Number of impacts on the wall from area and speed
      • Prandtl number via dynamic viscosity and thermal conductivity
      • Pressure and temperature in isochoric process
      • Adiabatic process equation via pressure and volume
      • Pressure and volume in isothermal process
      • Pressure from number density and kinetic energy
      • Pressure of ideal gas from height and temperature
      • Probability of finding ideal gas molecules in volume
      • Probability of ideal gas macrostate
      • Quantum isochoric molar heat capacity of solids
      • Radiance of black body from temperature
      • Radiation power via temperature
      • Rate of energy conduction through slab
      • Relative humidity is ratio of vapor pressure
      • Speed of sound in ideal gas
      • Temperature derivative via volume derivative
      • Temperature is derivative of internal energy
      • Total energy transfer is zero in adiabatically isolated system
      • Total particle count is sum of occupancies
      • Volume and temperature in isobaric process
      • Volumetric and linear expansion coefficients in isotropic materials
      • Volumetric expansion coefficient of ideal gas
      • Work is integral of pressure over volume
      • Work of ideal gas in isobaric process
      • Work of ideal gas in isothermal process
    • Waves
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  • Physical symbols
  • Physical constants

Related Topics

  • Documentation overview
    • Laws
      • Thermodynamics
        • Previous: Single particle state distribution
        • Next: Enthalpy change via entropy change and electric field change
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