Embibe Experts Solutions for Chapter: Thermodynamics, Exercise 1: KEAM 2018

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Embibe Experts Physics Solutions for Exercise - Embibe Experts Solutions for Chapter: Thermodynamics, Exercise 1: KEAM 2018

Attempt the practice questions on Chapter 17: Thermodynamics, Exercise 1: KEAM 2018 with hints and solutions to strengthen your understanding. EMBIBE CHAPTER WISE PREVIOUS YEAR PAPERS FOR PHYSICS solutions are prepared by Experienced Embibe Experts.

Questions from Embibe Experts Solutions for Chapter: Thermodynamics, Exercise 1: KEAM 2018 with Hints & Solutions

EASY
KEAM
IMPORTANT

The values of Cp and Cv for a diatomic gas are respectively (R=g a s constant)

MEDIUM
KEAM
IMPORTANT

If a monoatomic gas is compressed adiabatically to (1/27) th of its initial volume, then its pressure becomes

MEDIUM
KEAM
IMPORTANT

In a thermodynamic system, Q represents the energy transferred to or from a system by heat and W represents the energy transferred to or from a system by work

(I) Q>0 and W=0

(II) Q<0 and W=0

(III) W>0 and Q=0

(IV) W<0 and Q=0

Which of the above will lead to an increase in the internal energy of the system?

EASY
KEAM
IMPORTANT

Five moles of an ideal monoatomic gas with an initial temperature of 150 °C expand and in the process absorb 1500 J of heat and does 2500 J of work. The final temperature of the gas in °C is (ideal gas constant, R=8.314 J K-1 mol-1 ). 

MEDIUM
KEAM
IMPORTANT

A Carnot engine is operating between a hot body and cold body maintained at temperature T1 and T2 respectively. Consider the following three cases

Case I : The temperature of the hot body is changed to T1+ΔT and cold body is at T2

Case II : The temperature of the hot body is at T1 and cold body is changed to T2+ΔT

Case III : The temperature of the hot body is

MEDIUM
KEAM
IMPORTANT

A Carnot engine whose low-temperature reservoir is at 350 K has an efficiency of 50% . It is desired to increase this to 60% . If the temperature of the low-temperature reservoir remains constant, then the temperature of the high-temperature reservoir must be increased by how many degrees?