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The Chemical Engineering Theory section is launching the \"One Question per Day\" campaign starting today, aimed at helping everyone reinforce their basic knowledge in chemical engineering. Subsequent series will include those on \"Principles of Chemical Engineering\", \"Mass Transfer and Separation\", \"Thermodynamics in Chemical Engineering\", and \"Chemical Process Engineering\" – we hope you will give it your active support! Answers to the questions in the \"One Question per Day\" campaign can be viewed directly by replying, and the thread will be closed after 1 day! ! Participation earns 2 wealth points, with an additional 3 wealth points for correct answers~~~ Fill-in-the-blank: The volatility of each component in a solution can be expressed as the ratio of its _______ to that of the liquid phase in equilibrium with it; for an ideal solution, then ________. It is expressed by the partial pressure in the gas phase, the mole fraction, and the saturated vapor pressure at the same temperature
The volatility of each component in a solution can be expressed as the ratio of its partial pressure in the gas phase to its mole fraction in the liquid phase in equilibrium with it; for an ideal solution, it is expressed by the saturated vapor pressure at the same temperature
The volatility of each component in a solution can be expressed as the ratio of its partial pressure in the gas phase to its mole fraction in the liquid phase that is in equilibrium with it; for an ideal solution, it can be represented by the saturated vapor pressure at the same temperature.
The volatility of each component in a solution can be expressed as the ratio of its partial pressure in the __gas phase__ to its __mole fraction__ in the liquid phase that is in equilibrium with it; for an ideal solution, it can be represented by the __saturated vapor pressure at the same temperature__.
The partial pressure in the gas phase is expressed in terms of mole fraction and saturated vapor pressure at the same temperature
Partial pressure in the gas phase, mole fraction, saturated vapor pressure
The volatility of each component in a solution can be expressed as the ratio of its partial pressure in the vapor phase to the molar fraction in the liquid phase in equilibrium with it; for an ideal solution, it can be expressed using the saturated vapor pressure at the same temperature
The volatility of each component in a solution can be expressed as the ratio of its partial pressure in the __gas phase__ to its __mole fraction__ in the liquid phase that is in equilibrium with it. For an ideal solution, it can be expressed by the __saturated vapor pressure at the same temperature__.
Partial pressure in the gas phase and concentration in the liquid phase, saturated vapor pressure
It is expressed in terms of partial pressure, mole fraction, and saturated vapor pressure at the same temperature in the gas phase
The volatility of each component in a solution can be expressed as the ratio of its (partial pressure in vapor) to its (mole fraction in the liquid phase) at equilibrium; for an ideal solution, it is represented by the (saturated vapor pressure at the same temperature).