A perfect gas goes from state A to state B by absorbing 8 × 105 J of heat and doing 6.5 × 105 J of external work. It is now transferred between the same two states in another process in which it absorbs 105 J of heat. In the second process

Question

A perfect gas goes from state A to state B by absorbing 8 × 105 J of heat and doing 6.5 × 105 J of external work. It is now transferred between the same two states in another process in which it absorbs 105 J of heat. In the second process (A) work done on gas is 105 J  (B) work done on gas is 0.5 × 105 J  (C) work done by gas is 105 J  (D) work done by gas is 0.5× 105 J

Tardigrade Admin · Accepted Answer

From first law of thermodynamics d U=d Q-d W d U=8 × 105-6.5 × 105 d U=1.5 × 105 J In the second process, d U remains the same. ∴ d W=d Q-d U=1 × 105-1.5 × 105 d W=-0.5 × 105 J Negative sign shows that work is done on the gas.

Q. A perfect gas goes from state $A$ to state $B$ by absorbing $8 \times 1 0^{5} J$ of heat and doing $6.5 \times 1 0^{5} J$ of external work. It is now transferred between the same two states in another process in which it absorbs $1 0^{5} J$ of heat. In the second process

work done on gas is $1 0^{5} J$

work done on gas is $0.5 \times 1 0^{5} J$

work done by gas is $1 0^{5} J$

work done by gas is $0.5 \times 1 0^{5} J$

Q. A perfect gas goes from state A to state B by absorbing 8×105J of heat and doing 6.5×105J of external work. It is now transferred between the same two states in another process in which it absorbs 105J of heat. In the second process

work done on gas is 105J

work done on gas is 0.5×105J

work done by gas is 105J

work done by gas is 0.5×105J

From first law of thermodynamics dU=dQ−dW dU=8×105−6.5×105 dU=1.5×105J In the second process, dU remains the same. ∴dW=dQ−dU=1×105−1.5×105 dW=−0.5×105J Negative sign shows that work is done on the gas.

Q. A perfect gas goes from state $A$ to state $B$ by absorbing $8 \times 1 0^{5} J$ of heat and doing $6.5 \times 1 0^{5} J$ of external work. It is now transferred between the same two states in another process in which it absorbs $1 0^{5} J$ of heat. In the second process

work done on gas is $1 0^{5} J$

work done on gas is $0.5 \times 1 0^{5} J$

work done by gas is $1 0^{5} J$

work done by gas is $0.5 \times 1 0^{5} J$