Concept explainers
A shell-and-tube heat exchanger is to heat an acidic liquidthat flows in untinned tubes of inside and outside diameters
(a) Determine the ratio of plastic to metal tube surface areas needed to transfer the same amount of heat.
(b) Determine the ratio of plastic to metal muss associated with the two heat exchanger designs.
(c) The cost of the metal alloy per Unit muss is threetimes that of the plastic. Determine which tubematerial should be specified on the basis of cost.
Want to see the full answer?
Check out a sample textbook solutionChapter 11 Solutions
Fundamentals of Heat and Mass Transfer
Additional Engineering Textbook Solutions
Vector Mechanics for Engineers: Statics
Thinking Like an Engineer: An Active Learning Approach (3rd Edition)
Engineering Mechanics: Statics & Dynamics (14th Edition)
Vector Mechanics for Engineers: Statics and Dynamics
Vector Mechanics for Engineers: Dynamics
Applied Statics and Strength of Materials (6th Edition)
- 3.21 You must cool 78 kg/min of a 60%-by-mass mixture of glycerin in wa- ter from 108°C to 50°C using cooling water available at 7°C. Design a one-shell-pass, two-tube-pass heat exchanger if U = 637 W/m²K. Which side should the water flow through? Explain any design decision you make and report the area, TH₂0out and any other relevant features.arrow_forwardWater enters a 3 cm diameter inner copper pipe of a heat exchanger with a temperature of 18oC and a flow rate of 20 kg / min. The pipe is heated by condensing steam at 110 oC. If the total length of the pipe used in the heat exchanger is 80 m, to increase the water to 90 oC at the exit: What will be the targeted heat transfer rate ?̇ (W) from this pipe?arrow_forwardA shell-and-tube heat exchanger is used to cool compressed liquid methanol from 176 °F to 104 °F. The methanol flows on the shell side of the exchanger. The coolant is water that rises in temperature from 50 °F to 86 °F and flows within the tubes at a rate of 68.9 kg s1. Finding the appropriate thermophysical data and applying the proper equations, you are required to do the following: (a) Calculate i) methanol mass flow rate in the exchanger, ii) methanol volumetric flowrate at the inlet of the exchanger. (b) i) For the counter-current flow of the fluids calculate the log temperature difference, ii) explain the purpose of calculating this difference, iii) explain, quantitatively, why is the counter-current flow in heat exchangers preferred to co-current flow. meanarrow_forward
- Steam condensing at 120°C (h = 2203 kJ/kg) on the shell side of (1 shell and 12 thin-walled tubes) heat exchanger. Water (18 °C, C, =4180 J/kg-°C) enters the tube @ 2.9 kg/s and the temperature difference between the two fluids at the exit is 42°C, assume LMTD correction factor of 1.0, for each tube: length = 2.7 m, diameter = 2.4 cm. What is the overall heat transfer coefficient (W/m .°C)? "fg Select one: A. 4402.97 B. 2905.96 C. 5019.38 D. 3390.28 E. 3874.61arrow_forwardHeat exchangerarrow_forwardHERE ARE SOME APPLICATIONS OF SHEEL AND TUBE HEAT EXCHANGER: Power Generation HVAC Marine Applications Pulp and Paper Refrigeration Pharmaceuticals Air Processing and Compressor Cooling Metals and MiningPLEASE MAKE A EXPLANATION FOR THISarrow_forward
- A heat exchanger with an effectiveness of 75 percent is used to heat 5 kg/s of water from 2. ( 50 °C with condensing steam at 1 atm. Calculate the area for U = 1200 W/m2.°C. Suppose fouling occurred on both the tube and shell side with the following fouling factors, Rwater = 0.0002 m2-°C/W, and Risteam = 0.00009 m2. °C/W, what will be the new exiting temperature of the water?arrow_forwardBlowtorch is used to connect the two pipes together. Length of the pipe section shown is 150 cm with an inner diameter of 85 cm. The thickness of the pipe wall is 4 mm. The conductivity of the pipe section is 167 Wim^2K. Environment has a temperature of 30 C and convective heat transfer coefficient of 28 WI(mC), find the required heat transfer to join the pipe sections at 220 C? HINT: Assume that the welding section is the base plate and the pipe is 1D extended surface (fin) symmetric about the torch melting line. Heat transfer happens by conduction along the pipe thíckness in horizontal direction and by convection to the environment. Length thickness Torch melting line 200 W 275 W none 314 W 453 Warrow_forwardA heat exchanger is to be designed to condense 8 kg/sec of an organic liquid (tsat=80°C, hfg=600 KJ/kg) with cooling water available at 15°C and at a flow rate of 60 kg/sec. The overall heat transfer coefficient is 480 W/m2 -°C calculate: a) The number of tubes required. The tubes are to be of 25 mm outer diameter, 2 mm thickness and 4.85 m length b) The number of tube passes. The velocity of the cooling water is not to exceed 2 m/sec.arrow_forward
- Principles of Heat Transfer (Activate Learning wi...Mechanical EngineeringISBN:9781305387102Author:Kreith, Frank; Manglik, Raj M.Publisher:Cengage Learning