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Steady Flow Energy Equation in Hindi

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Автор: Gear Institute Mechanical Engineering Videos

Загружено: 2024-04-15

Просмотров: 27870

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The region of space enclosed by open system boundaries is usually called a control volume. It may or may not correspond to physical walls. It is convenient to define the shape of the control volume so that all flow of matter, in or out, occurs perpendicular to its surface. One may consider a process in which the matter flowing into and out of the system is chemically homogeneous.[1] Then the inflowing matter performs work as if it were driving a piston of fluid into the system. Also, the system performs work as if it were driving out a piston of fluid. Through the system walls that do not pass matter, heat (δQ) and work (δW) transfers may be defined, including shaft work.

Classical thermodynamics considers processes for a system that is initially and finally in its own internal state of thermodynamic equilibrium, with no flow. This is feasible also under some restrictions, if the system is a mass of fluid flowing at a uniform rate. Then for many purposes a process, called a flow process, may be considered in accord with classical thermodynamics as if the classical rule of no flow were effective.[2] For the present introductory account, it is supposed that the kinetic energy of flow, and the potential energy of elevation in the gravity field, do not change, and that the walls, other than the matter inlet and outlet, are rigid and motionless.

Under these conditions, the first law of thermodynamics for a flow process states: the increase in the internal energy of a system is equal to the amount of energy added to the system by matter flowing in and by heating, minus the amount lost by matter flowing out and in the form of work done by the system. Under these conditions, the first law for a flow process is written:

{\displaystyle \mathrm {d} U=\mathrm {d} U_{in}+\delta Q-\mathrm {d} U_{out}-\delta W\,}\mathrm{d}U=\mathrm{d}U_{in}+\delta Q-\mathrm{d}U_{out}-\delta W\,
2.4 Steady flow energy equation
ΔH represents the change in the energy of the gas in the system. ΔH has capacity to hold heat (specific heat) and is called the change in the stagnation or total enthalpy in the thermodynamic system.


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Steady Flow Energy Equation (In Hindi)

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Steady Flow Energy Equation in hindi || Steady flow energy equation thermodynamics in hindi

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