TY - JOUR
T1 - Simulation of solidification for saving energy with using nanomaterial involving conduction heat transfer
AU - Alazwari, Mashhour A.
AU - Basem, Ali
AU - AL-bonsrulah, Hussein A.Z.
AU - Abu-Hamdeh, Nidal H.
AU - Albdeiri, Mahmood Shaker
AU - Alashaari, Galal A.Ahmed
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2024/11
Y1 - 2024/11
N2 - The current article studies the improvement of the discharging rate in cold storage systems by modifying the tank configuration and incorporating additives. Specifically, the study inspects how varying the diameter (dp) and fraction (ϕ) of nano-powders affects the process duration. The governing equations, derived under the assumption of negligible slip velocity of nanoparticles and convection terms, were solved using the Galerkin method. The computational grid was modified owing to location of the ice front, and unsteady terms were discretized using an unconditionally stable approach. The results indicate that initially, increasing dp decreases the process duration by approximately 20.01 %, but further increases in dp lead to a 49.53 % rise in the duration. As the process time increases, the amount of ice produced also increases, with nanoparticle loading resulting in a significantly higher ice yield. Specifically, the incorporation of nanoparticles enhances the storage rate by approximately 41.37 %.
AB - The current article studies the improvement of the discharging rate in cold storage systems by modifying the tank configuration and incorporating additives. Specifically, the study inspects how varying the diameter (dp) and fraction (ϕ) of nano-powders affects the process duration. The governing equations, derived under the assumption of negligible slip velocity of nanoparticles and convection terms, were solved using the Galerkin method. The computational grid was modified owing to location of the ice front, and unsteady terms were discretized using an unconditionally stable approach. The results indicate that initially, increasing dp decreases the process duration by approximately 20.01 %, but further increases in dp lead to a 49.53 % rise in the duration. As the process time increases, the amount of ice produced also increases, with nanoparticle loading resulting in a significantly higher ice yield. Specifically, the incorporation of nanoparticles enhances the storage rate by approximately 41.37 %.
KW - Diameter of powder
KW - Galerkin method
KW - Nanomaterial
KW - Storage of cold energy
KW - Unsteady phenomena
UR - http://www.scopus.com/inward/record.url?scp=85206289703&partnerID=8YFLogxK
U2 - 10.1016/j.csite.2024.105248
DO - 10.1016/j.csite.2024.105248
M3 - Article
AN - SCOPUS:85206289703
SN - 2214-157X
VL - 63
JO - Case Studies in Thermal Engineering
JF - Case Studies in Thermal Engineering
M1 - 105248
ER -