Lukas Geissbühler
ETH Zurich
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Featured researches published by Lukas Geissbühler.
SOLARPACES 2016: International Conference on Concentrating Solar Power and Chemical Energy Systems | 2017
Simone Zavattoni; Lukas Geissbühler; Maurizio Barbato; Giw Zanganeh; Andreas Haselbacher; Aldo Steinfeld
The concept of combined sensible/latent heat thermal energy storage (TES) has been exploited to mitigate an intrinsic thermocline TES systems drawback of heat transfer fluid outflow temperature reduction during discharging. In this study, the combined sensible/latent TES prototype under investigation is constituted by a packed bed of rocks and a small amount of encapsulated phase change material (AlSi12) as sensible heat and latent heat sections respectively. The thermo-fluid dynamics behavior of the combined TES prototype was analyzed by means of a computational fluid dynamics approach. Due to the small value of the characteristic vessel-to-particles diameter ratio, the effect of radial void-fraction variation, also known as channeling, was accounted for. Both the sensible and the latent heat sections of the storage were modeled as porous media under the assumption of local thermal non-equilibrium (LTNE). The commercial code ANSYS Fluent 15.0 was used to solve the model’s constitutive conservation and transport equations obtaining a fairly good agreement with reference experimental measurements.The concept of combined sensible/latent heat thermal energy storage (TES) has been exploited to mitigate an intrinsic thermocline TES systems drawback of heat transfer fluid outflow temperature reduction during discharging. In this study, the combined sensible/latent TES prototype under investigation is constituted by a packed bed of rocks and a small amount of encapsulated phase change material (AlSi12) as sensible heat and latent heat sections respectively. The thermo-fluid dynamics behavior of the combined TES prototype was analyzed by means of a computational fluid dynamics approach. Due to the small value of the characteristic vessel-to-particles diameter ratio, the effect of radial void-fraction variation, also known as channeling, was accounted for. Both the sensible and the latent heat sections of the storage were modeled as porous media under the assumption of local thermal non-equilibrium (LTNE). The commercial code ANSYS Fluent 15.0 was used to solve the model’s constitutive conservation and tr...
Chimia | 2015
Lukas Geissbühler; Simone Zavattoni; Maurizio Barbato; Giw Zanganeh; Andreas Haselbacher; Aldo Steinfeld
Combined sensible/latent heat storage allows the heat-transfer fluid outflow temperature during discharging to be stabilized. A lab-scale combined storage consisting of a packed bed of rocks and steel-encapsulated AlSi(12) was investigated experimentally and numerically. Due to the small tank-to-particle diameter ratio of the lab-scale storage, void-fraction variations were not negligible, leading to channeling effects that cannot be resolved in 1D heat-transfer models. The void-fraction variations and channeling effects can be resolved in 2D models of the flow and heat transfer in the storage. The resulting so-called bypass fraction extracted from the 2D model was used in the 1D model and led to good agreement with experimental measurements.
Applied Thermal Engineering | 2016
Lukas Geissbühler; Michael Kolman; Giw Zanganeh; Andreas Haselbacher; Aldo Steinfeld
Journal of energy storage | 2018
Lukas Geissbühler; Viola Becattini; Giw Zanganeh; Simone Zavattoni; Maurizio Barbato; Andreas Haselbacher; Aldo Steinfeld
Applied Energy | 2018
Jan Marti; Lukas Geissbühler; Viola Becattini; Andreas Haselbacher; Aldo Steinfeld
Journal of energy storage | 2018
Viola Becattini; Lukas Geissbühler; Giw Zanganeh; Andreas Haselbacher; Aldo Steinfeld
SCCER Summer School 2017 | 2017
Viola Becattini; Lukas Geissbühler; Giw Zanganeh; Simone Zavattoni; Maurizio Barbato; Andreas Haselbacher; Aldo Steinfeld
Archive | 2017
Simone Zavattoni; Maurizio Barbato; Lukas Geissbühler; Andreas Haselbacher; Giw Zanganeh; Aldo Steinfeld
ASME Power & Energy Conference | 2017
Lukas Geissbühler; Adrian Mularczyk; Viola Becattini; Anoop Mathur; Andreas Haselbacher; Aldo Steinfeld
ASME 2017 Summer Heat Transfer Conference (SHTC2017) | 2017
Lukas Geissbühler; David Weibel; Andreas Haselbacher; Philipp Furler; Aldo Steinfeld