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Boyle’s Law
P1V1 = P2V2
Charles’ Law
V1 / T1 = V2T2
Gay-Lussac’s Law
P1 / T1 = P2 / T2
Combined Law
P1 V1 / T1 = P2 V2 / T2
Ideal Gas Law
PV= nRT
Density of Gasses
D= P * MM / RT
Partial Pressure
P1= X1Ptotal
Kinetic Energy
KE= ½ mv2
Molarity
Mol solute / Liters solution
Mass Percentage
( g solute / g solution ) x 100
Molality
moles of solute / kg of solvent
Mole Fraction
#of moles of given component / total # of moles present