Identification of Energy Efficiency Improvement Measures of an Existing Residential Building Using Audit-Assisted Energy Simulation and Analysis †
Abstract
1. Introduction
2. Literature Review
3. Energy Analysis Methodology
4. Results and Discussion
Potential Energy Efficent Improvement Meausres
5. Conclusions and Recommendation
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| S. No. | Result Parameters | Percentage Reduction Potential in EUI | Percentage Reduction Potential in Cost |
|---|---|---|---|
| 1 | Operating schedule as 12/7 | 27.9% | 18% |
| 2 | Wall construction for R38 Wood | 30% | 18.87% |
| 3 | Roof construction for R60 | 2.2% | 12% |
| 4 | Infiltration for 0.17 ACH (air changes per hour) | 0.1% | 0% |
| 5 | Lightening efficiency for 3.23 W/sq. m | 1.03% | 7.62% |
| 6 | HVAC for high efficiency packaged terminal AC | 3.98% | 14.8% |
| 7 | Window shades | Gives optimum results | Gives optimum results |
| 8 | Window glass | Gives optimum results | Gives optimum results |
| 9 | Window to wall ratio for the southern walls increasing WWR from 23% to 50% | 2.33% | 4.54% |
| Load Replacement% | Installed Panel Area (m2) | Installed Panel Cost PKR | Annual Energy Production (kWh) | Potential Cost Savings (per Year) |
|---|---|---|---|---|
| 20% | 157.10 | 87,932 | 31,144.8 | 551,784 |
| 30% | 222.32 | 124,436 | 46,717.2 | 817,600 |
| 37% | 271.93 | 152,204 | 57,552 | 1,017,561.58 |
| Areas For Improvement | Improvement Measures | Percent Reduction | |
|---|---|---|---|
| EUI | Cost | ||
| Window to Wall Ratio (WRW) in Southern Walls | Increase the window to wall ratio from 26% to 50% | 2.33% | 4.54% |
| HVAC | Install highly efficient packaged terminal air conditioners, or DC inverters | 3.98% | 14.80% |
| Lighting Efficiency | Replace energy savers and tube lights with LED lights | 1.03% | 7.62% |
| Total Percent Reduction | 7.34% | 26.96% | |
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Arif, F.; Khalid, R.; Azhar, N. Identification of Energy Efficiency Improvement Measures of an Existing Residential Building Using Audit-Assisted Energy Simulation and Analysis. Eng. Proc. 2021, 12, 18. https://doi.org/10.3390/engproc2021012018
Arif F, Khalid R, Azhar N. Identification of Energy Efficiency Improvement Measures of an Existing Residential Building Using Audit-Assisted Energy Simulation and Analysis. Engineering Proceedings. 2021; 12(1):18. https://doi.org/10.3390/engproc2021012018
Chicago/Turabian StyleArif, Farrukh, Rabia Khalid, and Nida Azhar. 2021. "Identification of Energy Efficiency Improvement Measures of an Existing Residential Building Using Audit-Assisted Energy Simulation and Analysis" Engineering Proceedings 12, no. 1: 18. https://doi.org/10.3390/engproc2021012018
APA StyleArif, F., Khalid, R., & Azhar, N. (2021). Identification of Energy Efficiency Improvement Measures of an Existing Residential Building Using Audit-Assisted Energy Simulation and Analysis. Engineering Proceedings, 12(1), 18. https://doi.org/10.3390/engproc2021012018
