A heat engine takes a diatomic gas around the cycle shown in Fig. 20-24. ( a ) Using the ideal gas law , determine how many moles of gas are in this engine. ( b ) Determine the temperature at point c. ( c ) Calculate the heat input into the gas during the constant volume process from points b to c. ( d ) Calculate the work done by the gas during the isothermal process from points a to b. ( e ) Calculate the work done by the gas during the adiabatic process from points c to a. ( f ) Determine the engine's efficiency, ( g ) What is the maximum efficiency possible for an engine working between T a and T c ? FIGURE 20-24 Problem 63.
A heat engine takes a diatomic gas around the cycle shown in Fig. 20-24. ( a ) Using the ideal gas law , determine how many moles of gas are in this engine. ( b ) Determine the temperature at point c. ( c ) Calculate the heat input into the gas during the constant volume process from points b to c. ( d ) Calculate the work done by the gas during the isothermal process from points a to b. ( e ) Calculate the work done by the gas during the adiabatic process from points c to a. ( f ) Determine the engine's efficiency, ( g ) What is the maximum efficiency possible for an engine working between T a and T c ? FIGURE 20-24 Problem 63.
A heat engine takes a diatomic gas around the cycle shown in Fig. 20-24. (a) Using the ideal gas law, determine how many moles of gas are in this engine. (b) Determine the temperature at point c. (c) Calculate the heat input into the gas during the constant volume process from points b to c. (d) Calculate the work done by the gas during the isothermal process from points a to b. (e) Calculate the work done by the gas during the adiabatic process from points c to a. (f) Determine the engine's efficiency, (g) What is the maximum efficiency possible for an engine working between Ta and Tc?
FIGURE 20-24 Problem 63.
Definition Definition Law that is the combined form of Boyle's Law, Charles's Law, and Avogadro's Law. This law is obeyed by all ideal gas. Boyle's Law states that pressure is inversely proportional to volume. Charles's Law states that volume is in direct relation to temperature. Avogadro's Law shows that volume is in direct relation to the number of moles in the gas. The mathematical equation for the ideal gas law equation has been formulated by taking all the equations into account: PV=nRT Where P = pressure of the ideal gas V = volume of the ideal gas n = amount of ideal gas measured in moles R = universal gas constant and its value is 8.314 J.K-1mol-1 T = temperature
For the following circuit, consider the resistor values given in the table and that it is powered by a battery having a fem of ε= 10.0 V and internal resistance r= 1.50 Ω. Determine:(a)Equivalent resistance from points a and b.b)Potential difference of EACH of the seven resistors.
ANSWER ALL PARTS OF THE QUESTION AND SHOW/EXPLAIN YOUR WORK.
ANSWER ALL PARTS OF THE QUESTION AND SHOW/EXPLAIN YOUR WORK.
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Chemistry: An Introduction to General, Organic, and Biological Chemistry (13th Edition)
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The Second Law of Thermodynamics: Heat Flow, Entropy, and Microstates; Author: Professor Dave Explains;https://www.youtube.com/watch?v=MrwW4w2nAMc;License: Standard YouTube License, CC-BY