Resonance in ESS Energy Storage Systems: Sand oval and structural memory codes
DOI:
https://doi.org/10.66778/RM.v09n02.02Keywords:
Modern physics, symmetrical compensation, waves, sand-based thermal energy storage systems (SSTES)Abstract
The objective of the present study is to propose a structure to model the stages of a complex physical system and a technique for the characterization of renewable energy collection and storage systems, the case study being a sand-based seasonal thermal energy storage system SSTES, using concepts from modern physics and waves in engineering applications. The method comprises the identification of the correspondence of the LFSR convolution operator (linear feedback shift register circuit) and the direct relationship through the interpretation of the system dynamics. A set of self-similar equations is obtained in stages, and the harmonic oscillator model is applied to obtain the coefficient matrix of the thermodynamic system with flow line feedback and wave interaction of the system, to improve efficiency by 61.8 %. on the efficiency of the sand battery. Managing to conclude the importance of the comprehensive analysis of the stages of the system, with contributions of compensation of interference patterns, optimization of wave trajectories in kinetic projective geometry, bistable systems, resonance and constructive geometry of the potential energy system.
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Abderezzak, B., & Randi, S. (2020). Experimental investigation of waste heat recovery potential from car radiator with thermoelectric generator. Thermal Science and Engineering Progress, 20, 100686.
Acuna, D., Gutiérrez, F., Silva, R., Palza, H., Nunez, A. S., & Düring, G. (2022). A three-step recipe for designing auxetic materials on demand. Communications Physics, 5(1), 113. https://doi.org/10.1038/s42005- 022-00876-5
Bermúdez, D., Suárez, G., Rodríguez, C., y Carrillo, A. (2023). Desarrollo de una batería de arena para almacenamiento de energía renovable en zonas rurales. Encuentro Internacional de Educación en Ingeniería ACOFI 2023. https://doi. org/10.26507/paper.3027
Chung, K. M., & Chen, R. (2023). Black coating of quartz sand towards low-cost solarabsorbing and thermal energy storage material for concentrating solar power. Solar Energy, 249, 98–106.
Conesa, J. (2013). Mecanismos de transferencia de calor (conducción, convección, radiación). Experimentación en ingeniería. Universidad de Alicante.
Ecoinventos. (2022). La primera batería de arena del mundo comienza a almacenar energía en Finlandia. https:// ecoinventos.com/primera-bateria-dearena- del-mundo-finlandia/
Explorador Solar. (2024). Herramienta de estimación de potencial térmico solar y retorno de inversión a escala industrial. https://solar.minenergia.cl/termico
Grabusts, P., & Uzhga-Rebrov, O. (2024). Applications of the symmetrical structures of Cassini ovals. Symmetry, 16(3), 334. https://doi.org/10.3390/ sym16030334
Jalili, B., Sadighi, S., Jalili, P., & Ganji, D. D. (2022). Numerical analysis of MHD nanofluid flow and heat transfer in a circular porous medium containing a Cassini oval under the influence of the Lorentz and buoyancy forces. Heat Transfer, 51(7), 6122–6138. https://doi.org/10.1002/ htj.22582
Kang, M., Kim, S., Qian, Y., Neves, P. M., Ye, L., Jung, J., ... Comin, R. (2024). Measurements of the quantum geometric tensor in solids. Nature Physics, 1–8.
Odoi-Yorke, F., Opoku, R., Davis, F., & Obeng, G. Y. (2024). Employing bibliometric analysis to identify the trends, evolution, and future research directions of sand-based thermal energy storage systems. Journal of Energy Storage, 94, 112343.
Pinto, R., & Beausoleil-Morrison, I. (2023). Experimental validation of a numerical model for a sand-based seasonal thermal energy storage. Journal of Building Performance Simulation, 16(6), 644–659. https://doi.org/10.1080/1940149 3.2023.2191338
Pinto, R. I. (2023). Modelling and experimental evaluation of a sand-based seasonal storage system [Doctoral dissertation, Carleton University].
Poulose, T., Kumar, S., & Torell, G. (2022). Power storage using sand and engineered materials as an alternative for existing energy storage technologies. Journal of Energy Storage, 51, 104381.
Sandoval-Ruiz, C. (2025a). Modelado de sistemas físicos aplicando código de entrelazado convolucional. RBEF, 47.
Sandoval-Ruiz, C. (2025b). Modelado de sistemas de energía renovables sobre códigos de convolución mediante patrones de interferencia. UCT, 29(126).
Sandoval-Ruiz, C. (2024a). Ω-vórtices y acoplamientos resonantes en modelo de patrón de flujo toroidal regenerativo mediante física moderna y ondas. CALIBRE-Revista Brasiliense de Engenharia e Física Aplicada, 9(1), 1–20. https://doi.org/10.5281/zenodo.13926923
Sandoval-Ruiz, C. (2024b). ZPF para arreglo de proyección de onda: φ-LFSR en modelado Fp[x]/f(x) de sistemas de energías renovables. Revista de la Universidad del Zulia, 15(42), 281–305. https://doi.org/10.46925/rdluz.42.16
Sandoval-Ruiz, C. (2024c). e-KiteLab: Investigación en física aplicada para mantenimiento y optimización de sistemas de energías renovables. Revista Investigación & Desarrollo, 24(1), 95–105. https://doi.org/10.23881/idupbo.024.1-8i
Sandoval-Ruiz, C. (2024d). xyz modelo de optimización de arreglos de cometas captadoras de energías sostenibles. Revista Técnica de la Facultad de Ingeniería Universidad del Zulia, 46(2), e244701. https://doi.org/10.22209/ rt.v47a01
Sandoval-Ruiz, C. (2024e). Operador matemático para caracterización y optimización de etapas de sistemas físicos. Revista Colegiada de Ciencia, 5(2), 88–98. https:// doi.org/10.48204/j.colegiada.v5n2.a5029
Sandoval-Ruiz, C. (2024f). Unificación de la ecuación de modelado de sistemas de energías renovables. Ciencia y Tecnología, 24, 3–16. https://doi. org/10.18682/cyt.vi24.10675
Sandoval-Ruiz, C. (2023a). Biomimética aplicada a modelos de sistemas de energías renovables reconfigurables basados en estructuras autosimilares. Revista Técnica de Ingeniería LUZ, 46, e234602. https://doi.org/10.22209/rt.v46a02
Sandoval-Ruiz, C. (2023b). YPR-alignment angles for wind energy harvesting kite arrangement: α, β, γ-coefficients for control and maintenance of regenerative flow patterns. UCSA, 10(3), 3–15. https://doi.org/10.18004/ucsa/2409- 8752/2023.010.03.003
Sandoval-Ruiz, C. (2021). Fractal mathematical over extended finite fields Fp[x]/(f(x)). Proyecciones, 40(3), 731–742. https://doi. org/10.22199/issn.0717-6279-4322
Sigalotti, L. D. G., Rendón, O., & Luévano, J.- R. (2024). Real-space diffusion theory from quantum mechanics using analytic continuation. Heliyon, 10(19), e38867. https://doi.org/10.1016/j. heliyon.2024.e38867
Vyas, A., & Kushwah, G. (2023). Sand battery: An innovative solution for renewable energy storage (A review). In IEEE Renewable Energy and Sustainable E-Mobility Conference (pp. 1–5).
World Energy Council. (2010). Eficiencia energética: Una receta para el éxito. https://www.worldenergy.org
Wu, C., Zhao, Y., Li, W., Fan, J., Xu, H., Yuan, D., & Ling, Z. (2024). Layered operation optimization methods for concentrated solar power (CSP) technology and multienergy flow coupling systems. Energies, 17(24), 6297.
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