Question
Question: Which units of pressure are needed if you are going to use 0.0821 as your ideal gas constant? (A) ...
Which units of pressure are needed if you are going to use 0.0821 as your ideal gas constant?
(A) Atmospheric
(B) Torr
(C) Psi
(D) mmHg
(E) Pascals
Solution
An ideal gas obeys ideal gas equation PV = nRTwhere ‘R’ is the universal gas constant whose units depend upon pressure(P), volume(V) and temperature(T).
Complete step by step answer: The unit of pressure in an ideal gas equation can be found from the gas constant values. The standard unit for pressure is Pascal (Pa) which is equal to 1 Newton (N) per square meter. Pressure can be expressed in any of the following units:
A. Atmospheric(atm)
B. Torr
C. Pounds per square inch (Psi)
D. mmHg
E. Pascal (Pa)
F. Bar
Since at various pressure and temperature units the gas constant value varies. The various values of gas constant with their corresponding units are given below:
The given ideal gas constant is 0.0821 which has the unit of L atm K - 1thus we get the unit of pressure is atm that is expressed in atmospheric.
So, the correct option is A.
Additional Information: ideal gas obeys the following obeys ideal gas equation
PV = nRT
where ‘P’ is the pressure of the gas, ‘V’ is the volume of the gas, ‘n’ is the number of moles , ‘T’ is the temperature and ‘R’ is the universal gas
At S.T.P (Standard Temperature and Pressure)
P = 1 atm, T = 273 K or 0° C and volume of gas is 22.4 L,
Let’s assume n = 1. Therefore, by calculation we get R = 0.0821 L atm K - 1
In C.G.S system, n and T remains same (no unit change), P = 1atm = 105×101325dyn/m2, V= 22400ml, then by calculation we get R = 8.314 \times107ergs mol - 1K - 1
In M.K.S system or SI system
P = 101325N/m2 and V = 22.4×10 - 3m3 ⇒R = 8.314J/Mol.kel
Note: Useful unit conversions:
- Joule (J) to Kilojoule (kJ)
1kJ = 103J
- Joule(J) to Calories (cal)
1 Cal = 4.184 J
- Atmospheric(atm) to Torr
1 atm = 760 torr
- Pounds per square inch (Psi) to mmHg
1Psi = 51.7151mmHg