Thermal Analysis of Building Roofs with Latent Heat Storage for Reduction in Energy Consumption and CO2 Emissions: An Experimental and Numerical Research

Author:

Cuce Erdem123ORCID,Shaik Saboor4ORCID,Roy Abin4ORCID,Arumugam Chelliah5ORCID,Afzal Asif67ORCID,Cuce Pinar Mert18ORCID,Ghosh Aritra9ORCID,Alam Tabish1011ORCID,Shaik Sharmas Vali12ORCID

Affiliation:

1. Low/Zero Carbon Energy Technologies Laboratory, Faculty of Engineering and Architecture, Recep Tayyip Erdogan University, Zihni Derin Campus, Rize 53100, Türkiye

2. Department of Mechanical Engineering, Faculty of Engineering and Architecture, Recep Tayyip Erdogan University, Zihni Derin Campus, Rize 53100, Türkiye

3. School of Engineering and the Built Environment, Birmingham City University, Birmingham B4 7XG, UK

4. School of Mechanical Engineering, Vellore Institute of Technology Vellore, Vellore 632014, Tamil Nadu, India

5. Department of Mechanical Engineering, SRM Institute of Science and Technology, Ramapuram Campus, Chennai 600089, Tamil Nadu, India

6. Department of Mechanical Engineering, P. A. College of Engineering (Affiliated to Visvesvaraya Technological University Belgavi), Mangaluru 574153, India

7. Department of Computer Science and Engineering, University Centre for Research & Development, Chandigarh University, Gharuan, Mohali, Punjab, India

8. Department of Architecture, Faculty of Engineering and Architecture, Recep Tayyip Erdogan University, Zihni Derin Campus, Rize 53100, Türkiye

9. Faculty of Environment, Science and Economy (ESE), Renewable Energy, Electric and Electronic Engineering, University of Exeter, Penryn TR10 9FE, UK

10. CSIR—Central Building Research Institute, Roorkee 247667, Uttarakhand, India

11. Academic of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, Uttar Pradesh, India

12. Department of Mechanical Engineering, Srinivasa Ramanujan Institute of Technology (Autonomous), Anantapur 515701, Andhra Pradesh, India

Abstract

In green energy buildings, air conditioning charges can be lowered through careful planning of the building’s envelope. This article investigates several strategically designed phase change material (PCM) roof envelopes for savings on air conditioning prices, CO2 emission abatement, and payback timeframes in hot–arid and warm-temperate climates, taking into account unsteady heat transfer characteristics, cooling, and heating degree–hours. This is accomplished by using six different PCMs–RCC (reinforced cement concrete) roof envelope cases (RCC roof with PCM layer on the outer side, RCC roof with PCM layer on the center (middle), RCC roof with PCM layer on the inside, RCC roof with PCM layers placed on the outside and center, RCC roof with PCM layers placed on the center and inside, and RCC roof with PCM layers placed on the outer side and inside) with three PCMs (FS29 (form stable mixture), HS29 (hydrated salt), and OM29 (organic mixture)). PCM thermophysical characteristics are experimentally measured. The analytical results are experimentally validated. In hot–arid and warm-temperate regions, the layer of PCM installed on the outside of the RCC with HS29 saved the most on air conditioning expenses, at 6.29 and 6.61 $/m2, respectively. They also reported the greatest carbon mitigation of 300.55 kg of CO2/year and 281.58 kg of CO2/year with the faster payback periods. PCM roof envelopes are the most energy-efficient option for green buildings.

Publisher

Hindawi Limited

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