Andrew Davies said:Why is it that the The fundamental thermodynamic relation dU = Tds - PdV works in general even though Tds > dQ for irreversible processes. Likiewise PdV >/= dW for irreversible processes. Do the two irreversible effects cancel out. How does this happen physically.
DrDu said:No, it really works in general (it has to be generalized if there are chemical reactions or electric fields, however), at least when you use it to calculate the change in energy between the starting and end point of the process.
But let me consider a simple example: suppose you are stirring a glass of some viscose liquid. The work done is not equal to -pdV obviously, ideally the volume does not change at all. Nevertheless all the work done on the liquid will eventually end up increasing the temperature of the liquid. So this is a completely irreversible process where all the work done is converted into entropy.
You may consider a reversible process (at least as judged from the liquid sub-system considered) where I heat up the liquid by bringing the liquid into contact with a heat bath whose temperature slowly increases (which can be due to a reversible or irreversible process). If the heat capacity of the heat bath is very small compared with the capacity of the liquid, I could imagine that the increase of temperature of the heat bath is also realized by stirring some viscous liquid (or rubbing the outside of the container). So the energy change dU is really the same in both cases, only that in one case the irreversible step takes place inside the container (then W neq -pdV=0 and TdS=W neq Q=0) and in the other case outside (then W =-pdV=0 and TdS=Q). In both cases dU=TdS-pdV and dU=Q+W are true.
DrDu said:You are right. But, as I wrote, in thermodynamics the initial and final states are necessarily equilibrium states, so you can use it to calculate the change of U and S between the initial and final state.
The example of stirring appears e.g. in the book on thermodynamics by Max Planck (who did his thesis on thermodynamics) and thus is quite a classic.
In the case of free expansion, you know that Delta U=0 as neither work nor heat is exchanged. On the other hand, you can calculate int (-p dV) for a reversible path connecting the initial and final state and thus get Delta S.
sawan.patnaik said:how can we explain for perfect gas (dU/dV)=0, using maxwell's thermo relation?
please help me, i can't solve this.
netheril96 said:You are just constructing a reversible process connecting the innitial and terminal state,but it doesn't mean that the formula applies to the corresponding irreversible process
The fundamental thermodynamic relation, also known as the First Law of Thermodynamics, states that energy cannot be created or destroyed, only transferred or converted from one form to another.
The fundamental thermodynamic relation is represented by the equation ΔU = Q - W, where ΔU is the change in internal energy of a system, Q is the heat added to the system, and W is the work done by the system.
The fundamental thermodynamic relation is used to analyze and understand the energy changes that occur in a system. It is a basic principle that is applied in various thermodynamic processes and calculations.
No, the fundamental thermodynamic relation is a fundamental law of nature and cannot be violated. It has been extensively tested and proven to hold true in all physical systems.
The fundamental thermodynamic relation describes the conservation of energy in a system, while the Second Law of Thermodynamics states that the total entropy of a closed system can never decrease over time. The Second Law is essentially an extension of the First Law and both are crucial in understanding thermodynamic processes.