Materiały konferencyjne SEP 2022

C U R A B I T U R P U L V I N A R Q U A M 15 X X X I S z k o ł a E k s p l o a t a c j i P o d z i e m n e j K r a k ó w , 1 1 - 1 3 k w i e t n i a 2 0 2 2 Rys. Stosunek powierzchni bocznej cylindra do jego objętości w funkcji współczynnika smukłości [1] Singh S., et al., Investigation on transient performance of a large-scale packed-bed thermal energy storage. Applied Energy 2019;239:1114-1129 [2] McTigue J.D., et al., Performance response of packed-bed thermal storage to cycle duration perturbations. Journal of Energy Storage 2018;19:379-392 [3] Sciacovelli A., et al., Dynamic simulation of Adiabatic Compressed Air Energy Storage (A-CAES) plant with integrated thermal storage – Link between components performance and plant performance. Applied Energy 2017;185:16-28 [4] Wang P., et al., Performance analysis of a combined heat and compressed air energy storage system with packed bed unit and electrical heater. Applied Thermal Engineering 2019;162:114321 [5] Trevisan S., et al., Coatings utilization to modify the effective properties of high temperature packed bed thermal energy storage. Applied Thermal Engineering 2021;185:116414 [6] Ortega-Fernandez I., et al., Analysis of an integrated packed bed thermal energy storage system for heat recovery in compressed air energy storage technology. Applied Energy 2017;205:280-293 [7] Tola V., et al., Performance assessment of Adiabatic Compressed Air Energy Storage (A-CAES) power plants integrated with packed-bed thermocline storage systems. Energy Conversion and Management 2017;151:343-356 [8] Cascetta M., et al., A comparison between CFD simulation and experimental investigation of a packed-bed thermal energy storage system. Applied Thermal Engineering 2016;98:1263-1272 [9] Geissbühler L., et al., Pilot-scale demonstration of advanced adiabatic compressed air energy storage, Part 1: Plant description and tests with sensible thermal-energy storage. Journal of Energy Storage 2018;17:129- 139 [10] Tuttle J.F., et al., A novel dynamic simulation methodology for high temperature packed-bed thermal energy storage with experimental validation. Sustainable Energy Technologies and Assessments 2020;42:100888 [11] Hoffmann J.-F., et al., Experimental and numerical investigation of a thermocline thermal energy storage tank. Applied Thermal Engineering 2017;114:896-904 [12] Mohammad M.S.Al-Azawii, et al., Experimental study on the cyclic behavior of thermal energy storage in an air-alumina packed bed. Journal of Energy Storage 2018;18:239-249 [13] He W., et al., Study of cycle-to-cycle dynamic characteristics of adiabatic Compressed Air Energy Storage using packed bed Thermal Energy Storage. Energy 2017;141:2120-2134 [14] Elouali A.,et al., Physical models for packed bed: Sensible heat storage systems. Journal of Energy Storage 2019;23:69-78 [15] Hänchen M., et al., High-temperature thermal storage using a packed bed of rocks – Heat transfer analysis and experimental validation. Applied Thermal Engineering 2011;31:1798-1806 [16] Liao Z., Efficiency analyses of high temperature thermal energy storage systems of rocks only and rock-PCM capsule combination. Solar En rgy 2018;162153-164

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