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Carnot Cycle & Carnot Engine Video Lecture | Thermodynamics - Mechanical Engineering

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FAQs on Carnot Cycle & Carnot Engine Video Lecture - Thermodynamics - Mechanical Engineering

1. What is a Carnot Cycle?
Ans. The Carnot Cycle is a theoretical thermodynamic cycle that represents the most efficient heat engine operating between two temperature levels. It consists of four reversible processes: isothermal expansion, adiabatic expansion, isothermal compression, and adiabatic compression.
2. How does a Carnot Engine work?
Ans. A Carnot Engine is a hypothetical heat engine that operates on the Carnot Cycle. It works by taking in heat energy from a high-temperature reservoir, performing work, and then releasing excess heat energy to a low-temperature reservoir. This cycle is repeated to produce continuous work output.
3. What is the efficiency of a Carnot Engine?
Ans. The efficiency of a Carnot Engine is given by the formula: Efficiency = 1 - (Tc/Th), where Tc is the temperature of the cold reservoir and Th is the temperature of the hot reservoir. The Carnot Engine is considered to have the highest possible efficiency for a heat engine operating between two given temperature levels.
4. Can a Carnot Engine ever achieve 100% efficiency?
Ans. No, a Carnot Engine cannot achieve 100% efficiency. According to the second law of thermodynamics, it is impossible for any engine to convert all heat energy into work without any loss. The efficiency of a Carnot Engine is limited by the temperature difference between the hot and cold reservoirs.
5. What are the practical applications of the Carnot Cycle and Carnot Engine?
Ans. Although the Carnot Cycle and Carnot Engine are idealized concepts, they provide a benchmark for comparing the efficiency of real-world heat engines. The principles of the Carnot Cycle are used in the design and analysis of power plants, refrigeration systems, and other thermodynamic processes. By understanding the limitations set by the Carnot Cycle, engineers can strive to optimize the efficiency of practical systems.
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