Abstract
Energy efficiency and energy savings have become an important factor as industries look for ways to save energy and minimize their energy consumption while reducing their carbon footprint. Cooling towers are utilized significantly in industries for either serving chillers or process cooling. Depending on the size of the cooling tower, it can use a surprising amount of energy and water, which is why it is crucial to make sure that the facility has optimized their cooling tower. A modeling tool has been developed to perform a thorough analysis of a cooling tower and its various operations to ensure that the facility has optimized its cooling tower. This model analyzes an annual base case in comparison with the revised case of a cooling tower operation. This modeling tool simulates 8,760 hourly calculations for fan power for various fan controls, water consumption, and pumping energy consumption and demand based on the user's location and its corresponding Typical Meteorological Year 3 (TMY3) weather data. This model is capable to simulate up to five cooling tower cells as one large tower utilizing one pump or parallel pumping. The successful validated cooling tower model should assist industry to save energy at their facility through their cooling tower, whether they use it for process cooling or heating, ventilation and air conditioning (HVAC) applications. The entering/leaving water temperatures based on a monthly operating schedule or a wetbulb temperature schedule will be used as inputs, and the model can calculate savings in energy for various conditions including variable-frequency drive (VFD) on the fan/pump, drift eliminators, number of cycles of concentration, reduced water flow rate, etc.
| Original language | English |
|---|---|
| Title of host publication | Heat Transfer and Thermal Engineering |
| Publisher | American Society of Mechanical Engineers (ASME) |
| ISBN (Electronic) | 9780791885673 |
| DOIs | |
| State | Published - 2021 |
| Event | ASME 2021 International Mechanical Engineering Congress and Exposition, IMECE 2021 - Virtual, Online Duration: Nov 1 2021 → Nov 5 2021 |
Publication series
| Name | ASME International Mechanical Engineering Congress and Exposition, Proceedings (IMECE) |
|---|---|
| Volume | 11 |
Conference
| Conference | ASME 2021 International Mechanical Engineering Congress and Exposition, IMECE 2021 |
|---|---|
| City | Virtual, Online |
| Period | 11/1/21 → 11/5/21 |
Funding
This model is the culmination of two previous graduate students to graduate from Tennessee Technological University, Ms. Pallavi Patil and Mr. Travis Howard. This model took their previous work and finalized the program discussed in this paper. Authors from Tennessee Tech University would like to thank the Tennessee Tech University Industrial Assessment Center and John Smegal, Program Manager, for providing the financial support for this research. Authors also thank Dr. Thomas Wenning with Oak Ridge National Lab for their guidance in the creation of this cooling tower modeling tool, and the valuable contributions they have made to the program, Andy Loftis, the Power Plant Manager at Tennessee Tech University, for his input into the model, Jill Rowen with O’Brien Equipment and Eric Rasmussen with Marley Cooling Towers for their counsel of operational and design assumptions in cooling towers, along with their testing of this model.
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