Energy Performance Analysis of Variable Refrigerant Flow System Retrofit: A Building Consumption Comparison Study

Authors

  • Azli Abd Razak School of Mechanical Engineering, College of Engineering, Universiti Teknologi MARA
  • Muhamed Azly Abdul Aziz School of Mechanical Engineering, College of Engineering, Universiti Teknologi MARA
  • Ahmad Abidi Jaafar Pejabat Pembangunan Infrasturuktur dan Infostruktur, Universiti Teknologi MARA
  • Mohd Faizal Mohamad - School of Mechanical Engineering, College of Engineering, Universiti Teknologi MARA

Keywords:

VRF, energy performance, retrofit, IPMVP, academic building

Abstract

This study investigates the energy-saving potential of retrofitting an academic building at Universiti Teknologi MARA (UiTM) by replacing a conventional water-cooled chiller system with a Variable Refrigerant Flow (VRF) system. The research focuses on the College of Built Environment's academic building, which has a total area of 251.68 m², comprising 3,441.76 m² of conditioned space. Using Option C of the International Performance Measurement and Verification Protocol (IPMVP), the study compared pre-retrofit (2019) and post-retrofit (2023) energy consumption data. The analysis revealed that the VRF system implementation resulted in a 15.13% reduction in total building energy consumption, from 32,233 kWh to 27,356 kWh. With air conditioning accounting for 66% of the building's energy usage, the retrofit achieves a significant decrease in the ACMV system's energy consumption from 21,273.78 kWh to 16,396.78 kWh. The economic analysis, based on TNB Tariff C1 (Medium Voltage General Commercial), demonstrates monthly cost savings of RM 5,411, equivalent to an annual reduction of RM 64,935. These findings provide empirical evidence supporting the effectiveness of VRF systems in achieving substantial energy and cost savings of academic building applications within Malaysia's tropical climate.

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References

"UI GreenMetric World University Rankings." Universitas Indonesia. https://greenmetric.ui.ac.id/ (accessed 5 February, 2025).

B. T. Universiti, UiTM 2025 Strategic Plan, 2nd ed. Universiti Teknologi MARA: National Design Centre, 2022. [Online]. Available: https://online.fliphtml5.com/nhtyi/cikd/#p=4.

S. B. M. Ali, M. Hasanuzzaman, N. Rahim, M. Mamun, and U. H. Obaidellah, "Analysis of energy consumption and potential energy savings of an institutional building in Malaysia," Alexandria Engineering Journal, vol. 60, no. 1, pp. 805-820, 2021.

J. S. H. Teo, K. H. Law, and V. C. C. Lee, "Energy management controls for chiller system: A review," in 2021 International Conference on Green Energy, Computing and Sustainable Technology (GECOST), 2021: IEEE, pp. 1-5.

A. B. Eltawil, S. Atef, S. Attia, K. Kuwamori, and T. Megaed, "Energy Efficiency Comparative Analysis of Inverter-based and Traditional Air Conditioning Systems in Residential Buildings: A Case Study in Egypt," in 2023 3rd International Conference on Electronic Engineering (ICEEM), 2023: IEEE, pp. 1-4.

W. Goetzler, "Variable refrigerant flow systems," Ashrae Journal, vol. 49, no. 4, pp. 24-31, 2007.

D. Kim, S. J. Cox, H. Cho, and P. Im, "Evaluation of energy savings potential of variable refrigerant flow (VRF) from variable air volume (VAV) in the US climate locations," Energy Reports, vol. 3, pp. 85-93, 2017.

A. Standard, "Performance Rating of Variable Refrigerant Flow (VRF) Multi-split Air-conditioning and Heat Pump Equipment," 2010.

A. Amarnath and M. Blatt, "Variable refrigerant flow: where, why, and how," Engineered systems, vol. 25, no. 2, pp. 54-60, 2008.

X. Yu, D. Yan, K. Sun, T. Hong, and D. Zhu, "Comparative study of the cooling energy performance of variable refrigerant flow systems and variable air volume systems in office buildings," Applied energy, vol. 183, pp. 725-736, 2016.

G. Y. Yun, J. H. Lee, and H. J. Kim, "Development and application of the load responsive control of the evaporating temperature in a VRF system for cooling energy savings," Energy and Buildings, vol. 116, pp. 638-645, 2016.

R. Karunakaran, S. Iniyan, and R. Goic, "Energy efficient fuzzy based combined variable refrigerant volume and variable air volume air conditioning system for buildings," Applied Energy, vol. 87, no. 4, pp. 1158-1175, 2010.

Y. M. Li, J. Y. Wu, and S. Shiochi, "Experimental validation of the simulation module of the water-cooled variable refrigerant flow system under cooling operation," Applied Energy, vol. 87, no. 5, pp. 1513-1521, 2010.

T. N. Aynur, Y. Hwang, and R. Radermacher, "Field performance measurements of a VRV AC/HP system," 2006.

A. G. Cabrera and D. Ntimos, "Comparative study of measurement and verification (M&V) baseline models for quantifying energy savings in building renovations," in IOP Conference Series: Earth and Environmental Science, 2020, vol. 410, no. 1: IOP Publishing, p. 012057.

E. Alamin, N. Kamaruzaman, and H. M. Kamar, "A pragmatic retrofitting approach to enhancing the thermal, energy and economic performance of an educational building: a case study in Malaysia," Clean Energy, vol. 7, no. 6, pp. 1282-1299, 2023.

D. Energy, "International performance measurement & verification protocol," Handbook of financing energy projects, vol. 249, 2001.

ASHRAE, 2009 ASHRAE handbook: Fundamentals. American Society of Heating, Refrigeration and Air-Conditioning Engineers, 2009.

R. A. Lara, G. Pernigotto, F. Cappelletti, P. Romagnoni, and A. Gasparella, "Energy audit of schools by means of cluster analysis," Energy and Buildings, vol. 95, pp. 160-171, 2015.

X. Gao and A. Malkawi, "A new methodology for building energy performance benchmarking: An approach based on intelligent clustering algorithm," Energy and Buildings, vol. 84, pp. 607-616, 2014.

W. Chung, Y. Hui, and Y. M. Lam, "Benchmarking the energy efficiency of commercial buildings," Applied energy, vol. 83, no. 1, pp. 1-14, 2006.

H. Fu, J.-C. Baltazar, and D. E. Claridge, "Review of developments in whole-building statistical energy consumption models for commercial buildings," Renewable and Sustainable Energy Reviews, vol. 147, p. 111248, 2021.

R. Zailan and M. T. C. Kar, "Energy audit: A case study in FTK building Universiti Malaysia Pahang," International Journal of Engineering Technology and Sciences, vol. 5, no. 2, pp. 91-101, 2018.

N. Hussin, A. A. Razak, F. Baharum, and Y. Yaakob, "Simulation of energy consumption in the library building," in AIP Conference Proceedings, 2019, vol. 2129, no. 1: AIP Publishing.

Z. H. Mohamad Munir, N. Ahmad Ludin, M. M. Junedi, N. A. Ahmad Affandi, M. A. Ibrahim, and M. A. Mat Teridi, "A Rational Plan of Energy Performance Contracting in an Educational Building: A Case Study," Sustainability, vol. 15, no. 2, p. 1430, 2023.

M. Balbis-Morejon, J. J. Cabello-Eras, J. M. Rey-Hernandez, C. Isaza-Roldan, and F. J. Rey-Martínez, "Selection of HVAC technology for buildings in the tropical climate case study," Alexandria Engineering Journal, vol. 69, pp. 469-481, 2023.

M. Standard, "MS 1525: 2019 Energy efficiency and use of renewable energy for non-residential buildings–Code of practice (Third revision)," ed: Department of Standard Malaysia, 2019.

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Published

2025-04-25

How to Cite

Abd Razak, A., Abdul Aziz, M. A., Jaafar, A. A. ., & Mohamad -, M. F. (2025). Energy Performance Analysis of Variable Refrigerant Flow System Retrofit: A Building Consumption Comparison Study. Journal of Applied Engineering Design and Simulation, 5(1), 75-86. Retrieved from https://jaeds.uitm.edu.my/index.php/jaeds/article/view/92