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Based on the statements given here choose the correct answer.
(1) If we increase the temperature of a gas inside a container, its pressure also increases.
(2) Upon heating, the rate of collisions of the gas molecules increase and increases the impact of force on the walls of the container.
  • a)
    (1) and (2) are true and (2) explains (1)
  • b)
    (1) and (2) are true but (2) does not explain (1)
  • c)
    Only (1) is true
  • d)
    Only (2) is true
Correct answer is option 'A'. Can you explain this answer?
Most Upvoted Answer
Based on the statements given here choose the correct answer.(1) If we...
Explanation:


The given statements are related to the effect of temperature on the pressure of a gas inside a container. Let's break down the explanation into the following points:




Point 1: Increase in temperature of a gas inside a container leads to an increase in its pressure.


This statement is true because when the temperature of a gas increases, the average kinetic energy of its molecules also increases. As a result, the gas molecules move faster and collide more frequently with the walls of the container. This increased frequency of collisions exerts a greater force on the walls of the container, leading to an increase in pressure.




Point 2: Upon heating, the rate of collisions of the gas molecules increase and increases the impact of force on the walls of the container.


This statement is also true and it explains why the pressure of the gas increases upon heating. When a gas is heated, the kinetic energy of its molecules increases, and they move faster. This increased speed of the molecules leads to an increase in the rate of collisions with the walls of the container. The impact of each collision also increases due to the increased kinetic energy of the molecules. Therefore, the force exerted by the gas molecules on the walls of the container increases, leading to an increase in pressure.




Conclusion:


From the above discussion, we can conclude that both the given statements (1) and (2) are true, and statement (2) explains why statement (1) is true. Therefore, the correct option is (A) - (1) and (2) are true, and (2) explains (1).
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Community Answer
Based on the statements given here choose the correct answer.(1) If we...
If we increase the temperature of the gas molecules, they would possess greater kinetic energy and this will have hyped Brownian effect due to which it will strike the container surface with more energy or pressure.
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Based on the statements given here choose the correct answer.(1) If we increase the temperature of a gas inside a container, its pressure also increases.(2) Upon heating, the rate of collisions of the gas molecules increase and increases the impact of forceon the walls of the container.a)(1) and (2) are true and (2) explains (1)b)(1) and (2) are true but (2) does not explain (1)c)Only (1) is trued)Only (2) is trueCorrect answer is option 'A'. Can you explain this answer?
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