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Year 2023, Volume: 9 Issue: 4, 1053 - 1069, 04.08.2023
https://doi.org/10.18186/thermal.1337469

Abstract

References

  • International Energy Agency. Key World Energy Statistics. Paris: International Energy Agency; 2017.
  • Abu-Jdayil B, Mourad AH, Hittini W, Hassan H, Hameedi S. Traditional, state-of-the-art and renewable thermal building insulation materials: An overview. Constr Build Mater 2019;214:709–735. [CrossRef]
  • Kaynakli O. A review of the economical and optimum thermal insulation thickness for building applications. Renew Sustain Energy Rev 2012;16:415–425. [CrossRef]
  • Jelle BP. Traditional, state-of-the-art and future thermal building insulation materials and solutions - Properties, requirements and possibilities. Energy Build 2011;43:2549–2563. [CrossRef]
  • Yu QL, Spiesz P, Brouwers HJH. Development of cement-based lightweight composites - Part 1: Mix design methodology and hardened properties. Cem Concr Compos 2013;44:17–29. [CrossRef]

Thermal insulation performance curves for exterior walls in heating and cooling seasons

Year 2023, Volume: 9 Issue: 4, 1053 - 1069, 04.08.2023
https://doi.org/10.18186/thermal.1337469

Abstract

Determination of thermal insulation performance (i.e. optimum insulation thickness, energy saving and payback period) is a tedious and time-consuming task that requires a thorough knowledge in thermal insulation engineering and economics. The main goal of this paper is to make the determination of insulation performance simple and timesaving by introduc-ing thermal insulation performance curves (TIPCs) from which the insulation performance can easily be found for any climate condition and all economic factors related to energy and insulation. These curves were generated based on a life-cycle cost analysis (LCCA) method. The curves can be easily read based on a single factor, called the f-factor, which comprises the number of degree-day, coefficient of performance, present worth factor, energy cost, and insu-lation cost. With the gain of heating and cooling degree days (i.e. HDD and CDD), TIPCs can be used for both heating and cooling loads. TIPCs cover commonly used insulation materials for building walls with thermal conductivities range from 0.020 to 0.055 W/m K. TIPCs were validated against published data.

References

  • International Energy Agency. Key World Energy Statistics. Paris: International Energy Agency; 2017.
  • Abu-Jdayil B, Mourad AH, Hittini W, Hassan H, Hameedi S. Traditional, state-of-the-art and renewable thermal building insulation materials: An overview. Constr Build Mater 2019;214:709–735. [CrossRef]
  • Kaynakli O. A review of the economical and optimum thermal insulation thickness for building applications. Renew Sustain Energy Rev 2012;16:415–425. [CrossRef]
  • Jelle BP. Traditional, state-of-the-art and future thermal building insulation materials and solutions - Properties, requirements and possibilities. Energy Build 2011;43:2549–2563. [CrossRef]
  • Yu QL, Spiesz P, Brouwers HJH. Development of cement-based lightweight composites - Part 1: Mix design methodology and hardened properties. Cem Concr Compos 2013;44:17–29. [CrossRef]
There are 5 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Mohammad Ahmad Batıha This is me 0000-0001-5165-431X

Saleh Rawadieh This is me 0000-0001-5194-0527

Marwan Batıha This is me 0000-0002-2416-3256

Leema Al-makhadmeh This is me 0000-0003-2974-3302

Muhammet Kayfecı This is me 0000-0001-9783-7381

Freabdullah Marachlı This is me 0000-0002-5982-8983

Publication Date August 4, 2023
Submission Date July 20, 2022
Published in Issue Year 2023 Volume: 9 Issue: 4

Cite

APA Batıha, M. A., Rawadieh, S., Batıha, M., Al-makhadmeh, L., et al. (2023). Thermal insulation performance curves for exterior walls in heating and cooling seasons. Journal of Thermal Engineering, 9(4), 1053-1069. https://doi.org/10.18186/thermal.1337469
AMA Batıha MA, Rawadieh S, Batıha M, Al-makhadmeh L, Kayfecı M, Marachlı F. Thermal insulation performance curves for exterior walls in heating and cooling seasons. Journal of Thermal Engineering. August 2023;9(4):1053-1069. doi:10.18186/thermal.1337469
Chicago Batıha, Mohammad Ahmad, Saleh Rawadieh, Marwan Batıha, Leema Al-makhadmeh, Muhammet Kayfecı, and Freabdullah Marachlı. “Thermal Insulation Performance Curves for Exterior Walls in Heating and Cooling Seasons”. Journal of Thermal Engineering 9, no. 4 (August 2023): 1053-69. https://doi.org/10.18186/thermal.1337469.
EndNote Batıha MA, Rawadieh S, Batıha M, Al-makhadmeh L, Kayfecı M, Marachlı F (August 1, 2023) Thermal insulation performance curves for exterior walls in heating and cooling seasons. Journal of Thermal Engineering 9 4 1053–1069.
IEEE M. A. Batıha, S. Rawadieh, M. Batıha, L. Al-makhadmeh, M. Kayfecı, and F. Marachlı, “Thermal insulation performance curves for exterior walls in heating and cooling seasons”, Journal of Thermal Engineering, vol. 9, no. 4, pp. 1053–1069, 2023, doi: 10.18186/thermal.1337469.
ISNAD Batıha, Mohammad Ahmad et al. “Thermal Insulation Performance Curves for Exterior Walls in Heating and Cooling Seasons”. Journal of Thermal Engineering 9/4 (August 2023), 1053-1069. https://doi.org/10.18186/thermal.1337469.
JAMA Batıha MA, Rawadieh S, Batıha M, Al-makhadmeh L, Kayfecı M, Marachlı F. Thermal insulation performance curves for exterior walls in heating and cooling seasons. Journal of Thermal Engineering. 2023;9:1053–1069.
MLA Batıha, Mohammad Ahmad et al. “Thermal Insulation Performance Curves for Exterior Walls in Heating and Cooling Seasons”. Journal of Thermal Engineering, vol. 9, no. 4, 2023, pp. 1053-69, doi:10.18186/thermal.1337469.
Vancouver Batıha MA, Rawadieh S, Batıha M, Al-makhadmeh L, Kayfecı M, Marachlı F. Thermal insulation performance curves for exterior walls in heating and cooling seasons. Journal of Thermal Engineering. 2023;9(4):1053-69.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering