Ideal and Real Gases
Ideal gases obey conditions of the general gas laws under all states of pressure and temperature. Ideal gases are also named perfect gases. The attributes of ideal gases are as follows,
Gas Laws
Gas laws describe the ways in which volume, temperature, pressure, and other conditions correlate when matter is in a gaseous state. The very first observations about the physical properties of gases was made by Robert Boyle in 1662. Later discoveries were made by Charles, Gay-Lussac, Avogadro, and others. Eventually, these observations were combined to produce the ideal gas law.
Gaseous State
It is well known that matter exists in different forms in our surroundings. There are five known states of matter, such as solids, gases, liquids, plasma and Bose-Einstein condensate. The last two are known newly in the recent days. Thus, the detailed forms of matter studied are solids, gases and liquids. The best example of a substance that is present in different states is water. It is solid ice, gaseous vapor or steam and liquid water depending on the temperature and pressure conditions. This is due to the difference in the intermolecular forces and distances. The occurrence of three different phases is due to the difference in the two major forces, the force which tends to tightly hold molecules i.e., forces of attraction and the disruptive forces obtained from the thermal energy of molecules.
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Conclusion - Write a general conclusic
following:
sion.
comment on the accuracy of your
(a) Calculate the % difference and comment on
(b) Use the calculated % error value from previous
results.
(c) Give two possible sources of errors that would exp
our experimental value was
*ad must be (1) system
inin why th
and a realistic one) and (2)
would lead to higher/lower
annmoriate) than the true value.
Calculations: In the left column show your calculations for Run 1 only but give results for both
Run 1 and Run 2 in the appropriate columns on the right.
RUN 1
RUN 2
1. Calculate hHg (Density water = 1.00 g/mL Density of Hg =
13.6 g/mL)
2. Calculate PTOTAL
3. Calculate PH;
4. Calculate the number of moles of H2
5. Calculate the molar mass of Mg
6. Average molar mass of Mg
7. % error ="
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RUN 1
RUN 2
Data:
1.2894
0.7054
Mass of Mg + dish (g)
Mass of empty dish (g)
0.60029
0.6803
6.74 0.845025
1,S55mml226m m
Mass of Mg (g)
Height of solution in gas tube at end of run (mm)
48.45n 29.41€
28C
Volume of H2 produced (mL)
20.3°C
Temperature of water (= Temp. of gas) (°C)
Vapour pressure of water (mm Hg)
7.7818
plkpa
2:3388
Reference:
elkon
Atmospheric pressure (mm Hg)
768.000
77
50-48.445="
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