Performance Optimization of a Petrochemical Cooling Tower via Fill Replacement: Cleanflow vs Cleanflow Plus
DOI:
https://doi.org/10.26877/asset.v8i3.2574Keywords:
Cooling tower, fill media, heat transfer, thermal performance, optimizationAbstract
This study investigates the performance improvement of an induced draft, counterflow cooling tower after replacing the existing Cleanflow fill with Cleanflow Plus. One cell (E) was upgraded while four cells (A–D) served as the baseline under CTI ATC-105 procedures. Measurements included outlet temperature, wet-bulb temperature, circulation flow, and fan power. Results show that Cell E achieved a higher cooling range (9.20°C vs. 8.63°C average) and a lower approach (6.29°C vs. 6.87°C average). Heat-transfer capacity increased from 37.12 MW average to 39.60 MW (+6.68%). Tower capability improved from 89.00% average to 94.47% (+5.47% absolute, +6.1% relative). Number of Transfer Units (NTU) increased significantly from 2.341 to 2.889 units (+23.4%), and effectiveness improved from 71.5% to 75.9% (+6.1%). Evaporation increased from 1.21% to 1.29% (6.6%), while electrical fan power was 149.65 kW (+2.4% relative to baseline). These enhancements are attributed to the higher specific surface area (140.7 m²/m³ vs. 127.0 m²/m³, +10.8%) and improved wettability of Cleanflow Plus fill. The findings support phased implementation and further optimization across remaining cells.
References
[1] Eurovent Middle East, “Evaporative Cooling and Cooling Towers: Guidebook,” 1st ed., 2021. Available: https://www.eurovent.eu/wp-content/uploads/2021-11-23-eme-ct-guidebook-first-edition-en-web-1.pdf
[2] J. Primo, “Cooling Towers: Basic Calculations (Course M374),” PDH Online, 2020. Available: https://pdhonline.com/courses/m374/m374content.pdf
[3] Purdue University, “Cooling Towers: Heat and Mass Transfer Processes (Chapter SM 3),” School of Mechanical Engineering, 2024. Available: https://www.purdue.edu/freeform/me418/wp-content/uploads/sites/30/2024/09/Chapter-SM-3-Cooling_towers.pdf
[4] Z. Hashemi, A. Zamanifard, M. Gholampour, J.-S. Liaw, and C.-C. Wang, “Recent Progress in Fill Media Technology for Wet Cooling Towers,” Processes, vol. 11, no. 9, 2578, 2023. doi: https://doi.org/10.3390/pr11092578
[5] J. Liao et al., “Optimization of corrugated sheet packing structure based on falling film flow characteristics,” Appl. Therm. Eng., vol. 229, 121563, 2024. doi: https://doi.org/10.1016/j.applthermaleng.2024.121563
[6] P. Navarro, J. Ruiz, A. S. Kaiser, and M. Lucas, “Effect of fill length and distribution system on the thermal performance of an inverted cooling tower,” Appl. Therm. Eng., vol. 231, 120876, 2023. doi: https://doi.org/10.1016/j.applthermaleng.2023.120876
[7] SPX Cooling Technologies, “Purposes and Types of Fills (CTII 02A),” 2024. Available: https://spxcooling.com/wp-content/uploads/CTII-02A.pdf
[8] SPX Cooling Technologies, “Evaporation and Water Usage: Basic Theory and Practice,” 2024. Available: https://spxcooling.com/wp-content/uploads/AE-AS-24-1.pdf
[9] S. S. Shinde et al., “Analysis of the Effect of Packing Materials (Fills) and Flow Rate on the Range and Efficiency of a Forced Draft Evaporative Cooling Tower,” Energies, vol. 16, no. 14, 5255, 2023. doi: https://doi.org/10.3390/en16145255
[10] CTI (Cooling Technology Institute), “ATC 105: Acceptance Test Code for Water Cooling Towers,” latest ed. (accessed by authors).
[11] D. Wheeler and K. Hennon, “Review of new 2019 CTI ATC 105 acceptance test code for cooling towers,” CleanAir Engineering, 2020.
[12] S. D. O. Araujo et al., “Comparative study of cooling tower fills: experimental analysis and CFD simulation of an alternative fill,” J. Braz. Soc. Mech. Sci. Eng., vol. 46, art. 412, 2024. https://link.springer.com/article/10.1007/s40430-024-04990-z
[13] M. M. A. Mujtaba et al., “Leveraging machine learning to optimize cooling tower efficiency for sustainable power generation,” Front. Energy Res., vol. 13, 2025. https://doi.org/10.3389/fenrg.2025.1473946
[14] ASME J. Energy Resour. Technol., “A dynamic model for performance and efficiency of evaporative cooling towers,” Accepted Manuscript, 2025. https://doi.org/10.1115/1.4070699
[15] D. Joshi and C. Jaiswal, “Cooling Tower Performance and Determining Energy Saving Opportunities through Economizer Operation: A Review,” IOSR JMCE, vol. 13, no. 1, pp. 01–12, 2016.
[16] B. Celenza and S. Shank, “Optimize Water and Energy Use in Evaporative Cooling Towers,” Chem. Eng. Prog. (AIChE), Jun. 2019.
[17] Thermal Control Business Update, “Cooling Towers: Balancing Efficiency, Water, and Sustainability,” May 22, 2025.
[18] S. T. Dehaghani and H. Ahmadikia, “Retrofit of a wet cooling tower to reduce water and fan power consumption using a wet/dry approach,” Appl. Therm. Eng., 2017.
[19] N. S. Lafta, F. A. Kareem, and M. Ghafur, “Experimental and numerical analysis of the forced draft wet cooling,” J. Therm. Eng., 2023.
[20] A. V. Dmitriev, O. S. Zinovieva, and I. N. Madyshev, “Experimental investigation of fill pack impact on thermal hydraulic performance of evaporative cooling tower,” Therm. Sci. Eng. Prog., 2021.
[21] J. A. Okari, J. I. Sodiki, and A. K. Le ol, “Evaluation of cooling tower performance in a process plant,” Int. J. Eng., Manag. & Technol., 11(10), 276–289, 2025.
[22] M. Al Bloushi, M. Ahmed, Y. Al Wazzan, N. Al Mutairi, and M. Al Rashidi, “Effect of organic on chemical oxidation for biofouling control in pilot scale seawater cooling towers,” J. Water Process Eng., 2017.
[23] Y. A. Çengel, *Heat Transfer: A Practical Approach*, 2nd ed., McGraw Hill, 2003.
[24] M. G. Qalbi, B. H. Suharto, and S. Wuryanti, “Analisis efektivitas cooling tower sebelum dan sesudah pergantian filler pack,” 2024.
[25] G. Widotomo, “Improving Analysis of Risk Based Maintenance Management Strategies Through Reliability Centered Maintenance. Case Study: Coal Crushing Plant. Central Kalimantan. Indonesia,” *Advance Sustainable Science, Engineering and Technology (ASSET)*, Vol. 6, No. 1, Jan. 2024.
[26] Hamon Thermal Europe, “Hamon Wet Cooling Systems,” Hamon Group, Technical Brochure, 2015.
[27] F. P. Incropera, D. P. DeWitt, T. L. Bergman, and A. S. Lavine, "Fundamentals of Heat and Mass
Transfer," 6th ed. Hoboken, NJ: John Wiley & Sons, 2007.
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