Given Information:
Mass = m = 10 kg
Work done by system = W = 0.147 kJ/kg
Elevation = Δh = -50m (minus sign because decreases)
Final velocity = v₂ = 30 m/s
Initial velocity = v₁ = 15 m/s
Internal energy = ΔU = -5 kJ/kg (minus sign because decreases)
Required Information:
Heat transfer = Q = ?
Answer:
Heat transfer ≈ -50 kJ
Explanation:
We know that heat transferred to the system is equal to
Q = W + ΔKE + ΔPE + ΔU
The Work done by the system in Joules is
W = 0.147 kJ/kg * 10 kg
W = 1.47 kJ
The change in kinetic energy is given by
ΔKE = ½m(v₂ - v₁)²
ΔKE = ½*10*(30 - 15)²
ΔKE = 5*(675)
ΔKE = 3.375 kJ
The change in potential energy is given by
ΔPE = mgΔh
Where g is 9.7 m/s²
ΔPE = 10*9.7*-50
ΔPE = -4.85 kJ
The Internal energy in Joules is
ΔU = -5 kJ/kg * 10 kg
ΔU = -50 kJ
Therefore, the heat transfer for the process is
Q = W + ΔKE + ΔPE + ΔU
Q = 1.47 + 3.375 - 4.85 - 50
Q = 50.005 kJ
Q ≈ -50 kJ
Bonus:
The negative sign indicates that the heat was transferred from the system. It would have been positive if the heat was transferred into the system.
