Hot oil at a flow rate of 3.00 kg/s (cp = 1.92 kJ/kg K) enters an existing counterflow exchanger at 400 K and is cooled by water entering at 325 K and flowing at a rate of 0.70 kg/s. The overall U = 350 W/m2-K and A = 12.9 m?. Calculate the heat transfer rate and the exit oil temperature. Calculate the following: Cmin = Cmax = NTUmax = q (kW or kJ/s) = Effectiveness, ɛ = Exit temperature of oil (K) = Exit temperature of water (K) =

Introduction to Chemical Engineering Thermodynamics
8th Edition
ISBN:9781259696527
Author:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Publisher:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
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2. Hot oil at a flow rate of 3.00 kg/s (c, 1.92 kJ/kg K) enters an existing counterflow exchanger at 400 K and is
cooled by water entering at 325 K and flowing at a rate of 0.70 kg/s. The overall U = 350 W/m2-K and A = 12.9
m?. Calculate the heat transfer rate and the exit oil temperature.
Calculate the following:
Cmin =
Cmax =
NTUmax =
q (kW or kJ/s) =
Effectiveness, ɛ =
Exit temperature of oil (K) =
Exit temperature of water (K) =
Transcribed Image Text:2. Hot oil at a flow rate of 3.00 kg/s (c, 1.92 kJ/kg K) enters an existing counterflow exchanger at 400 K and is cooled by water entering at 325 K and flowing at a rate of 0.70 kg/s. The overall U = 350 W/m2-K and A = 12.9 m?. Calculate the heat transfer rate and the exit oil temperature. Calculate the following: Cmin = Cmax = NTUmax = q (kW or kJ/s) = Effectiveness, ɛ = Exit temperature of oil (K) = Exit temperature of water (K) =
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