The total pressure of a mixture of ideal gases is the sum of partial pressures. This is ______ law of partial pressures.

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SSC CHSL Tier-I Exam 2022 Official Paper (Held On: 20 March, 2023 Shift 4)
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  1. Dalton's
  2. Boyles
  3. Charles
  4. None of the above

Answer (Detailed Solution Below)

Option 1 : Dalton's
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The correct answer is Option 1

Key Points

  •  This is known as Dalton's law of partial pressures.
  • According to Dalton's law, the total pressure exerted by a mixture of non-reacting ideal gases is equal to the sum of the partial pressures of each individual gas.
  • Dalton's law is based on the assumption that the gases in the mixture behave independently of one another, without any significant interactions or reactions.

Additional Information

  • Boyle's Law:
    • Boyle's law states that, at a constant temperature, the volume of a given amount of gas is inversely proportional to its pressure.
    • In other words, as the pressure of a gas increases, its volume decreases, and vice versa, provided the temperature remains constant. Mathematically, Boyle's law can be expressed as:
    • P₁V₁ = P₂V₂
    • where P₁ and V₁ are the initial pressure and volume, and P₂ and V₂ are the final pressure and volume, respectively.
  • Charles's Law:
    • Charles's law states that, at a constant pressure, the volume of a given amount of gas is directly proportional to its absolute temperature. This means that as the temperature of a gas increases, its volume also increases, and as the temperature decreases, its volume decreases, as long as the pressure remains constant. Mathematically, Charles's law can be expressed as:
    • V₁/T₁ = V₂/T₂
    • where V₁ and T₁ are the initial volume and temperature (in Kelvin), and V₂ and T₂ are the final volume and temperature, respectively.
  • Avogadro's Law:
    • Avogadro's law states that, at a constant temperature and pressure, equal volumes of gases contain an equal number of particles (atoms, molecules, or ions).
    • This law implies that the volume of a gas is directly proportional to the number of moles of gas present. Mathematically, Avogadro's law can be expressed as:
    • V₁/n₁ = V₂/n₂

where V₁ and n₁ are the initial volume and number of moles, and V₂ and n₂ are the final volume and number of moles, respectively.

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