Thermodynamic cycle
A cycle returns a system to its initial state.
A thermodynamic cycle consists of linked sequences of thermodynamic processes that involve transfer of heat and work into and out of the system, while varying pressure, temperature, and other state variables within the system, and that eventually returns the system to its initial state. The repeating nature of the process path allows for continuous operation, making the cycle an important concept in thermodynamics. Thermodynamic cycles are often represented mathematically as quasistatic processes in the modeling of the workings of an actual device.
- field
- Thermodynamics
- known_for
- Power cycles and heat pump cycles; basis for heat engines and heat pumps
- key_property
- Net entropy change of the system is zero over a complete cycle
- first_law_relation
- ΔU = 0 over the cycle; net work equals net heat transfer
Lore & Background
A thermodynamic cycle consists of linked sequences of thermodynamic processes that involve transfer of heat and work into and out of the system, while varying pressure, temperature, and other state variables within the system, and that eventually returns the system to its initial state. In the process of passing through a cycle, the working fluid may convert heat from a warm source into useful work, and dispose of the remaining heat to a cold sink, thereby acting as a heat engine. Conversely, the cycle may be reversed and use work to move heat from a cold source and transfer it to a warm sink thereby acting as a heat pump.
Reader's Guide
Thermodynamic cycles are fundamental to the operation of heat engines, which supply most of the world's electric power and run the vast majority of motor vehicles. Power cycles convert some heat input into a mechanical work output, while heat pump cycles transfer heat from low to high temperatures by using mechanical work as the input. On a pressure–volume (PV) diagram or temperature–entropy diagram, the clockwise and counterclockwise directions indicate power and heat pump cycles, respectively. The area enclosed by the loop on a P-V diagram is the net work done by the cycle, equal to the net heat transferred. Common processes used in cycles include adiabatic, isothermal, isobaric, isochoric, isentropic, isenthalpic, polytropic, and reversible processes. The Otto cycle is an example of a reversible thermodynamic cycle, consisting of isentropic expansion, isochoric cooling, isentropic compression, and isochoric heating.
Did You Know?
- During a closed cycle, the system returns to its original thermodynamic state of temperature and pressure.
- The net entropy change of the system is zero over a complete cycle, as entropy is a state function.
- On a P-V diagram, the area enclosed by the loop equals the net work done by the cycle.
- If the cyclic process moves clockwise on a P-V diagram, the machine acts as a heat engine; if counterclockwise, it acts as a heat pump.
Frequently Asked Questions
What exactly is a thermodynamic cycle?
It is a closed loop of linked thermodynamic processes in which heat and work flow into and out of a system, shifting pressure, temperature, and other state variables along the way, before the system snaps back to its exact starting state. Because the path can repeat indefinitely, it underpins continuous operation in engines, refrigerators, and heat pumps.
Why is the net entropy change of the system zero over a complete cycle?
Entropy is a state function, so when the system returns to its initial state every state variable—including entropy—must be identical to where it started. Any entropy carried in during one segment of the path is exactly offset by entropy carried out in another, leaving the system with no net change.
What does the first law of thermodynamics demand for a full cycle?
Since internal energy is a state function, ΔU over the entire cycle is zero, which forces the net work delivered by the system to equal the net heat transferred into it. That single accounting identity is the backbone of every power-cycle and heat-pump design.
What are the two main families of thermodynamic cycles that fans and engineers talk about?
Power cycles (Carnot, Otto, Diesel, Brayton, etc.) convert absorbed heat into useful net work, while heat-pump cycles (vapor-compression, absorption) use work input to shuttle heat from a cold reservoir to a hot one. They are essentially mirror images of the same underlying cycle logic.
Why do textbooks and fan wikis model cycles as quasistatic processes?
Quasistatic idealization lets you trace a smooth, reversible path on a P-V or T-S diagram and evaluate exact work and heat integrals. Real machines deviate through friction and irreversibility, but the quasistatic benchmark gives the upper-bound performance every actual cycle is judged against.
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