carlSauhllen
contestada

Liquid ammonia boils at –33.4ºC and has a heat of vaporization of 23.5 kJ/mol. What is its vapor pressure at –50.0ºC? (R = 8.314 J/K•mol)

Respuesta :

taskmasters
We use the formula expressed as:

ln (P1 / P2) = - (ΔH / R) (1/T1 - 1/T2)

were P is the vapor pressures, T is the temperature, ΔH is the heat of vaporization and R is the gas constant.

ln (P1 / P2) = - (ΔH / R) (1/T1 - 1/T2)
ln (P1 / 760) = - (23.5 / 8.314) (1/223.15 - 1/239.75)
P1 = 759.33 mmHg

Otras preguntas

ACCESS MORE
EDU ACCESS
Universidad de Mexico