Question
Download Solution PDFWhich of the following options best describes the Ideal Gas Law?
This question was previously asked in
RPF Constable 2024 Official Paper (Held On 02 Mar, 2025 Shift 3)
Answer (Detailed Solution Below)
Option 1 : The pressure (P), volume (V) and temperature (T) of a fixed quantity of gas are related by the equation PV/T = Constant.
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RPF Constable Full Test 1
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Detailed Solution
Download Solution PDFThe correct answer is Option 1: The pressure (P), volume (V) and temperature (T) of a fixed quantity of gas are related by the equation PV/T = Constant..
Key Points
- The Ideal Gas Law is a fundamental equation in physical chemistry and thermodynamics that relates the pressure, volume, and temperature of an ideal gas.
- The equation is usually written as PV = nRT, where P is pressure, V is volume, n is the number of moles, R is the ideal gas constant, and T is temperature.
- The Ideal Gas Law combines several simpler gas laws: Boyle's Law, Charles's Law, and Avogadro's Law.
- The law assumes that gases are composed of point particles that do not interact with each other except through elastic collisions.
- It is an approximation that works well under many conditions but deviates at high pressures and low temperatures where gases are not ideal.
Additional Information
- Boyle's Law:
- States that the pressure of a given mass of gas is inversely proportional to its volume at constant temperature.
- Mathematically, it is represented as P1V1 = P2V2.
- Charles's Law:
- States that the volume of a gas is directly proportional to its temperature at constant pressure.
- Mathematically, it is represented as V1/T1 = V2/T2.
- Avogadro's Law:
- States that equal volumes of all gases at the same temperature and pressure contain the same number of molecules.
- Mathematically, it can be written as V/n = k, where k is a constant.
- Ideal Gas Constant (R):
- The value of the ideal gas constant R is approximately 8.314 J/(mol·K).
- It provides the necessary link between the macroscopic measurements of gas properties and the microscopic theory of gases.
Last updated on Jun 2, 2025
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