Testing the Heat Transfer Efficiency of a Finned-tube Heat Exchanger
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1. Start and Flow Rate Determination
Open the charge valve located below the steam generator.
Start the unit, and allow 15 min for steam to begin forming.
Calculate the flow rate of water
Start a stopwatch and monitor the gauge displaying the volume of water.
Stop the watch after 30 s and record the total volume of water displayed on the gauge.
Divide the volume of water by the time to determine the volumetric flow rate.
Record the MEG flow rate from the flow meter.
Observe the temperature from the thermocouples, and record the values.
2. Varying the flow rate and shut down
To collect data for 6 different runs, set the flow rate of water to either a high or low flow rate and run it with a high, medium, or low flow rate of MEG.
For reference, the previous flow rates have been used: 0.0439, 0.0881, and 0.1323 gal/sec for the low, medium, and high flow rates of MEG, respectively.
As previous, record the volumetric flow rates and temperature difference on the thermocouple for each run.
When finished, shut down the instrument.
Close the valves to stop the flow of steam, monoethylene glycol and water.
Turn off the main switch.
3. Calculations
Use Equation 1 to calculate the total heat transferred, Q, with the temperature difference read from the thermocouples (devices used to measure temperature) and the known physical dimensions of the heat exchanger (found in the user manual for the unit being operated). The temperature differences can be taken from the temperature readings of each run.
Calculate the heat transferred for each unique trial run, and use the Wilson plot method to find the heat transfer coefficients for the three MEG flow rates.
Compare the calculated heat transferred and Reynolds number to theoretical values of the heat exchanger without fins.
Source: Michael G. Benton and Kerry M. Dooley, Department of Chemical Engineering, Louisiana State University, Baton Rouge, LA