$$Q = \dotm_w (4180)(85 - 50) \Rightarrow \dotm_w = \frac1326004180 \times 35 = 0.906 \text kg/s$$
$$\fracT_0 - T_\inftyT_i - T_\infty = \frac119 - 12125 - 121 = \frac-2-96 = 0.02083$$
$$\boxedt \approx 2.28 \text hours$$ Problem 5.14: Heat Exchanger Design (Pasteurizer) Given: Milk ($c_p = 3.9 \text kJ/kg\cdot\textK$) flows at 0.5 kg/s from 4°C to 72°C. Hot water ($c_p = 4.18 \text kJ/kg\cdot\textK$) enters at 85°C, exits at 50°C. Overall $U = 1500 \text W/m^2\cdot\textK$. Find area for counter-flow.
Introduction To Food Engineering Solutions Manual May 2026
$$Q = \dotm_w (4180)(85 - 50) \Rightarrow \dotm_w = \frac1326004180 \times 35 = 0.906 \text kg/s$$
$$\fracT_0 - T_\inftyT_i - T_\infty = \frac119 - 12125 - 121 = \frac-2-96 = 0.02083$$ Introduction To Food Engineering Solutions Manual
$$\boxedt \approx 2.28 \text hours$$ Problem 5.14: Heat Exchanger Design (Pasteurizer) Given: Milk ($c_p = 3.9 \text kJ/kg\cdot\textK$) flows at 0.5 kg/s from 4°C to 72°C. Hot water ($c_p = 4.18 \text kJ/kg\cdot\textK$) enters at 85°C, exits at 50°C. Overall $U = 1500 \text W/m^2\cdot\textK$. Find area for counter-flow. $$Q = \dotm_w (4180)(85 - 50) \Rightarrow \dotm_w
