Linked from
The 70 pages that link to Ideal gas law, each with the reason it gives.
Vapor pressureRelated: It connects vapor pressure to the amount of vapor in a known volume.
Atmospheric pressureRelated: Together with air temperature and density, it links pressure to the atmosphere’s physical state.
Partial pressureRelated: Applied to a mixture component, it gives that gas’s partial pressure.
Boltzmann constantRelated: In its particle form, the law uses the Boltzmann constant to relate pressure and temperature.
Henry's lawRelated: It links gas pressure to gas composition in the low-pressure regime where the law is commonly applied.
Avogadro constantRelated: Its amount variable can be translated into a molecular count using the constant.
Ideal gasRelated: It summarizes the model’s measurable relationships in one equation.
Mole fractionRelated: Combined with Dalton's law, it explains why gas mole fraction determines partial pressure.
Dalton's law of partial pressuresRelated: Applying it to each gas in a shared volume gives the sum rule.
MoleRelated: Its variable n represents gas amount measured in moles.
Clausius–Clapeyron relationRelated: Treating vapor as ideal yields the familiar integrated vapor-pressure approximation.
Thermodynamic temperatureRelated: Its temperature must be absolute for the equation’s proportional relations to hold.
Isothermal processRelated: At fixed temperature and amount, it makes pressure inversely proportional to volume.
CompressorRelated: It connects the pressure rise to changes in gas volume and temperature.
Amount of substanceRelated: For gases, measured pressure, volume, and temperature can determine amount.
Avogadro's lawRelated: Its amount term makes Avogadro's proportionality explicit: at fixed pressure and temperature, volume tracks moles.
Stirling engineRelated: It connects the working gas’s changing temperature and volume to its pressure.
Air densityRelated: It predicts dry-air density from pressure and temperature when air behaves approximately as an ideal gas.
Pressure-gradient forceRelated: Temperature and density differences help create the pressure variations that drive the force.
Hot air balloonRelated: At nearly constant pressure, heating the envelope air lowers its density.
Molar volumeRelated: For an ideal gas, molar volume follows from pressure and temperature in this equation.
Compressed airRelated: It links changes in air pressure to volume and temperature.
PneumaticsRelated: It predicts how pneumatic air changes as it is compressed, heated, or expanded.
Pressure cookerRelated: It offers a simplified account of how heating trapped steam changes pressure.
PsychrometricsRelated: It supports standard calculations of moist-air density and component properties.
Absolute temperatureRelated: Its temperature variable must be measured from absolute zero.
Diesel cycleRelated: It connects the working fluid’s state variables throughout the modeled cycle.
Gas pressureRelated: It summarizes how gas pressure varies with volume, temperature, and particle amount.
SteamRelated: It approximates steam's behavior when it is sufficiently dilute and far from condensation.
Thermal windRelated: It connects atmospheric temperature gradients to density gradients in derivations of thermal wind.
CompressibilityRelated: It predicts an ideal gas’s pressure-dependent volume and compressibility.
GasRelated: It combines the main measurable properties of a gas in one equation.
Gas constantRelated: R is the proportionality constant connecting these four measurable quantities.
Gas-phase chemistryRelated: It links the gas density and temperature that set collision frequencies and reaction conditions.
Absolute pressureRelated: Its pressure variable must be absolute, not gauge pressure.
Compressed-air energy storageRelated: It links the air’s pressure and temperature to the volume required for storage.
Number densityRelated: For a gas, pressure can be written as number density times Boltzmann's constant and temperature.
Kelvin scaleRelated: The equation requires absolute temperature, normally expressed in kelvins.
Standard temperature and pressureRelated: It predicts how a gas property changes when STP conditions change.
AerostaticsRelated: It predicts how heating or altitude changes the gas volume and density inside an aerostat.
Barometric formulaRelated: It connects density to pressure and temperature in the formula's usual derivation.
Amedeo AvogadroRelated: It expresses gas behavior quantitatively in terms of amount of substance.
Bondi accretionRelated: It connects the ambient gas conditions to the sound speed used in Bondi's model.
Rankine scaleRelated: Rankine supplies absolute temperature in customary-unit calculations.
Amagat's lawRelated: For ideal gases, each component’s volume contribution follows directly from its amount at common temperature and pressure.
Graham's lawRelated: It supplies the gas-state relationships often used when comparing effusion experiments.
InflatableRelated: It describes how heating or compressing the filling gas changes internal pressure.
Toy balloonRelated: It describes how warming or squeezing the gas changes the balloon's volume and pressure.