Chemistry - Ch 10 Flashcards

1
Q

Vapors

A

substances that are liquids or solids under ordinary conditions that can also exist in the gaseous state

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2
Q

Pressure

A

conveys the idea of a force, a push that tends to move something in a given direction; = force/area

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3
Q

pascal (Pa)

A

SI unit of pressure (N/m^2)

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4
Q

bar

A

10^5 Pa; related unit of pressure (to pascal)

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5
Q

Standard atmospheric pressure

A

typical pressure at sea level; pressure sufficient to support a column of mercury 760 mm high; in SI units, this pressure equals 1.01325 x 10^5 Pa

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6
Q

atmosphere (atm)

A

non-SI unit used to express gas pressures

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7
Q

torr

A

non-SI unit AKA mm Hg; named after Evangelista Torricelli (Galileo’s student) who did mercury/atmosphere pressure experiment

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8
Q

Boyle’s law

A

the volume of a fixed quantity of gas maintained at constant temperature is inversely proportional to the pressure (V= constant x 1/p or PV = constant)

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9
Q

Charles’s Law

A

the volume of a fixed amount of gas maintained at constant pressure is directly proportional to its absolute temperature

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10
Q

Law of combining volumes

A

at a given pressure and temperature, the volume of gases that react with one another are in the ratios of small whole numbers; observed by Louis Gay-Lussac in 1808

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11
Q

Avogadro’s hypothesis

A

equal volumes of gases at the same temperature and pressure contain equal numbers of molecules

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12
Q

Avogadro’s law

A

the volume of a gas maintained at constant temperature and pressure is directly proportional to the number of moles of the gas (V = constant x n)

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13
Q

Ideal-gas equation

A

PV = nRT

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14
Q

ideal gas

A

hypothetical gas whose pressure, volume, and temperature behavior are described completely by the ideal-gas equation

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15
Q

Gas constant

A

R in the ideal gas equation

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16
Q

Standard temperature and pressure (STP)

A

conditions of 0 degrees Celsius & 1 atm; volume occupied by 1 mole of ideal gas at STP, 22.41 L is known as the molar volume of an ideal gas at STP

17
Q

Dalton’s law of partial pressures

A

the total pressure of a mixture of gases equals the sum of the pressures that each would exert if it were present alone

18
Q

partial pressure

A

pressure exerted by a particular component of a mixture of gases

19
Q

mole fraction

A

X; a dimensionless number that expresses the ratio of the number of moles of one component to the total number of moles in the mixture

20
Q

Kinetic-molecular theory

A

Rudolf Clasius’ theory of moving molecules (5 parts)

21
Q

root-mean-square (rms) speed

A

u; speed of a molecule possessing average kinetic energy

22
Q

effusion

A

escape of gas molecules through a tiny hole into an evacuated space

23
Q

diffusion

A

spread of one substance throughout a space or throughout a 2nd substance

24
Q

Graham’s law

A

law stating that the rate of effusion of a gas is inversely proportional to the square root of its molecular weight

25
Q

Mean free path

A

the average distance traveled by a molecule between collisions; varies with pressure

26
Q

van der Waals equation

A

an equation of state for nonideal gases that is based on adding corrections to the ideal-gas equation; the correction terms account for intermolecular forces of attraction and for the volumes occupied by the gas molecules themselves