MENU

If the gas at constant temperature and pressure expands, then its

If The Gas At Constant Temperature And Pressure Expands Then Chemistry Question

If the gas at constant temperature and pressure expands, then its

Options

(a) internal energy increases
(b) internal energy remains the same
(c) internal energy decreases
(d) entropy increases and then decreases

Correct Answer:

internal energy remains the same

Explanation:

For an ideal gas, the internal energy depends upon temperature. As expansion takes place at constant temperature and pressure so internal energy of the gas remains constant, i.e. ΔE = 0.

Related Questions:

  1. What is the composition of tear gas
  2. The electronic configuration of a noble gas is
  3. The atomic number of cobalt is 27. The EAN of cobalt in Na₃[Co(NO₂)₄Cl₂] is
  4. 2.5 Litre of 1 M NaOH solution mixed with another 3 litre of 0.5 M NaOH solution.
  5. Which of the following is biodegradable substance

Topics: States of Matter Gases and Liquids (80)
Subject: Chemistry (2512)

Important MCQs Based on Medical Entrance Examinations To Improve Your NEET Score

18000+ students are using NEETLab to improve their score. What about you?

Solve Previous Year MCQs, Mock Tests, Topicwise Practice Tests, Identify Weak Topics, Formula Flash cards and much more is available in NEETLab Android App to improve your NEET score.

NEETLab Mobile App

Share this page with your friends

2 Comments on If the gas at constant temperature and pressure expands, then its

  1. Internal energy at any state is a function of number of moles n and the temperature. If the the volume expansion takes place at constant temperature and pressure we see that using the gas equation PV=nRT, we get V∝n and thus the number of moles of gas are increasing(may be the gas is being introduces by an external agent), thus internal energy is increasing.

  2. The internal energy remains same because internal energy directly depends upon temperatures and the temp is constant so internal energy also remains same

Leave a Reply

Your email address will not be published.


*