Following figure shows two process A and B for a gas. If `Delta Q_(A)` and `Delta Q_(B)` are the amount of heat absorbed by the system in two case, and `Delta U_(A)` and `Delta U_(B)` are changes in internal energies, respectively, then :

Figure shows two processes a and b for a given sample of gas. If DeltaQ_1, DeltaQ_2 are the amount of heat absorbed by the systemin the two cases , and DeltaU_1, DeltaU_2 are changes ininternal energy respeclively, then

A system absorbs 300 cal of heat. The work done by the system is 200 cal. Delta U for the above change is

An ideal gas is taken from state A to state B via three different processes as shown in the pressure volume (P-V) diagram. If Q_1 , Q_2 & Q_3 indicates the heat absorbed by the gas and Delta U_1 , Delta U_2 & Delta U_3 indicate change in internal energy in three processes, then

Two path 1 and 2 are shown in figure. If the change in internal energies are U, and U2 for path 1 and 2 respectively, then

For which reaction, (DeltaH > DeltaU) ? ( Delta H = change in enthalpy, Delta U = change in internal energy)

An ideal gas undergoes an expansion from a state with temperature T_(1) and volume V_(1) through three different polytropic processes A, B and C as shown in the P - V diagram. If |Delta E_(A)|, |Delta E_(B)| and |Delta E_(C )| be the magnitude of changes in internal energy along the three paths respectively, then :

A: Total enthalpy change of a multistep process is sum of Delta H_(1) + Delta H_(2) + Delta H_(3) + .... R: When heat is absorbed by the system, the sign of q is taken to be negative.

Let (Delta W_a) and (Delta W_b) be the work done by the system A and B respectively in the previous question.

For the reaction, A(s) + 3B(g) rarr 4C(g) + d(l) Delta H and Delta U are related as :

The given figure shows PQ = PR and angle Q = angle R . Prove that Delta PQS = Delta PRT