Answer:
(a) S₁-S₂ = 0 ⇒ S₁=S₂ (b) S₁-S₂<0 ⇒ S₁<S₂ (c) S₁-S₂>0 ⇒ S₁>S₂ (d)S₁-S₂>0 ⇒ S₁>S₂
Step-by-step explanation:
Solution
Now,
From the entropy rate balance at steady state, the equation is stated below:
Qcv =/Tb + m (S₁-S₂) +σcv = 0
ΔS = Qcv/Tb +σcv
So,
S₁-S₂ = Qcv/mTb +σcv/m
(a) No internal irreversibilities and Q cv =0
Now,
If Qcv =0, the and value of σcv = 0
S₁-S₂ = (Qcv/mTb + σcv/m) = 0
hence
S₁-S₂ = 0 which is S₁=S₂
(b) no internal irreversibilities, and Q cv <0
If Q cv <0 the value becomes this,
S₁-S₂ = (Qcv/mTb + σcv/m) <0
So,
S₁-S₂<0 which is S₁<S₂
(c) no internal irreversibilities and Q cv >0
If Q cv >0 the value is
S₁-S₂ = (Qcv/mTb + σcv/m) >0
So,
S₁-S₂>0 which is S₁>S₂
(d) internal irreversibilities and Qcv ≥ 0
If Q cv ≥0 the value is
S₁-S₂ = (Qcv/mTb + σcv/m) >0
So,
S₁-S₂>0 which is S₁>S₂
Note: option (d) and (e) are the same