Improved solar still productivity using PCM and nano- PCM composites integerated energy storage

被引:1
|
作者
Murali, G. [1 ]
Ramani, P. [2 ]
Murugan, M. [3 ]
Elumalai, P. V. [4 ,7 ,8 ]
Ranjan Goud, Nayani Uday [5 ]
Prabhakar, S. [6 ]
机构
[1] Koneru Lakshmaiah Educ Fdn, Dept Mech Engn, Guntur 522502, Andhra Pradesh, India
[2] SRM Inst Sci & Technol, Dept Elect & Commun Engn, Chennai 600089, Tamilnadu, India
[3] Vivekanandha Coll Engn Women, Dept Biotechnol, Tiruchengode 637205, Tamilnadu, India
[4] GITAM Deemed Univ, Dept Mech Engn, Visakhapatnam 530045, Andhra Pradesh, India
[5] MLR Inst Technol, Dept Aeronaut Engn, Hyderabad, Telangana, India
[6] Wollo Univ, Kombolcha Inst Technol, Dessie, Ethiopia
[7] Saveetha Inst Med & Tech Sci SIMATS, Saveetha Sch Engn, Dept Mech Engn, Chennai 602105, Tamil Nadu, India
[8] Shinawatra Univ, Fac Engn, Bang Toei 12160, Thailand
来源
SCIENTIFIC REPORTS | 2024年 / 14卷 / 01期
关键词
Nano-PCM; Energy storage; PCM; Productivity; Efficiency'; PHASE-CHANGE MATERIAL; PERFORMANCE;
D O I
10.1038/s41598-024-65418-1
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The study investigates the impact of Phase Change Material (PCM) and nano Phase Change Materials (NPCM) on solar still performance. PCM and a blend of NPCM are placed within 12 copper tubes submerged in 1 mm of water to enhance productivity. Thermal performance is assessed across four major scenarios with a fixed water level of 1 mm in the basin. These scenarios include the conventional still, equipped with 12 empty copper rods and 142 g of PCM in each tube, as well as stills with NPCM Samples 1 and 2. Sample 1 contains 0.75% nanoparticle concentration plus 142 g of PCM in the first 6 tubes, while Sample 2 features 2% nanoparticle concentration plus 142 g of PCM in the subsequent 6 tubes. Aluminum oxide (Al2O3) nanoparticles ranging in size from 20 to 30 nm are utilized, with paraffin wax (PW) serving as the latent heat storage (LHS) medium due to its 62 degrees C melting temperature. The experiments are conducted under the local weather conditions of Vaddeswaram, Vijayawada, India (Latitude-80.6480 degrees E, Longitude-16.5062 degrees N). A differential scanning calorimeter (DSC) is utilized to examine the thermal properties, including the melting point and latent heat fusion, of the NPCM compositions. Results demonstrate that the addition of nanoparticles enhances both the specific heat capacity and latent heat of fusion (LHF) in PCM through several mechanisms, including facilitating nucleation, improving energy absorption during phase change, and modifying crystallization behavior within the phase change material. Productivity and efficiency measurements reveal significant improvements: case 1 achieves 2.66 units of daily production and 46.23% efficiency, while cases 2, 3, and 4 yield 3.17, 3.58, and 4.27 units of daily production, respectively. Notably, the utilization of NPCM results in a 60.37% increase overall productivity and a 68.29% improvement in overall efficiency.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Design and Fabrication of Solar Thermal Energy Storage System Using Potash Alum as a PCM
    Malik, Muhammad Suleman
    Iftikhar, Naveed
    Wadood, Abdul
    Khan, Muhammad Omer
    Asghar, Muhammad Usman
    Khan, Shahbaz
    Khurshaid, Tahir
    Kim, Ki-Chai
    Rehman, Zabdur
    Rizvi, S. Tauqeer ul Islam
    ENERGIES, 2020, 13 (23)
  • [32] The performance of a modified solar still using hot air injection and PCM
    Kabeel, A. E.
    Abdelgaied, Mohamed
    Mahgoub, M.
    DESALINATION, 2016, 379 : 102 - 107
  • [33] Improved thermal energy storage for nearly zero energy buildings with PCM integration
    Stropnik, Rok
    Kozelj, Rok
    Zavrl, Eva
    Stritih, Uros
    SOLAR ENERGY, 2019, 190 : 420 - 426
  • [34] A new PCM storage system for managing simultaneously solar and electric energy
    Hammou, ZA
    Lacroix, M
    ENERGY AND BUILDINGS, 2006, 38 (03) : 258 - 265
  • [35] Modeling and Numerical Simulation of Solar Cooker with PCM as Thermal Energy Storage
    Tarwidi, D.
    2015 3rd International Conference on Information and Communication Technology (ICoICT), 2015, : 584 - 589
  • [36] PCM-Metal Foam Composite Systems for Solar Energy Storage
    Bhattacharya, Anirban
    SOLAR ENERGY: SYSTEMS, CHALLENGES, AND OPPORTUNITIES, 2020, : 207 - 234
  • [37] Phase Change Materials (PCM) for Solar Energy Usages and Storage: An Overview
    Mofijur, M.
    Mahlia, Teuku Meurah Indra
    Silitonga, Arridina Susan
    Ong, Hwai Chyuan
    Silakhori, Mahyar
    Hasan, Muhammad Heikal
    Putra, Nandy
    Rahman, S. M. Ashrafur
    ENERGIES, 2019, 12 (16)
  • [38] Thermal analysis of a weir-type cascade solar still integrated with PCM storage
    Dashtban, Mohammad
    Tabrizi, Farshad Farshchi
    DESALINATION, 2011, 279 (1-3) : 415 - 422
  • [39] Solidification of nano-enhanced PCM-porous composites in a cylindrical cold thermal energy storage enclosure
    Afsharpanah, Farhad
    Izadi, Masoud
    Hamedani, Farzam Akbarzadeh
    Ajarostaghi, Seyed Soheil Mousavi
    Yaici, Wahiba
    CASE STUDIES IN THERMAL ENGINEERING, 2022, 39 : 1DUMMY
  • [40] A controlled conditions of dynamic cold storage using nano fluid as PCM
    Liu B.
    Yang Z.
    Wang Y.
    Bennacer R.
    Fluid Dynamics and Materials Processing, 2017, 13 (01): : 37 - 47