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Dive into the research topics where Heike Schreiber is active.

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Featured researches published by Heike Schreiber.


Archive | 2017

Experiments and Validated Models for Adsorption Thermal Energy Storage in Industrial and Residential Applications

Heike Schreiber; André Bardow; Gerhard Schmitz

Thermal energy storage (TES) helps to reduce energy consumption and peak demands by balancing heat supply and demand on all time scales from short-term to seasonal. Thus, TES is an important technology to improve flexibility and efficiency of energy systems. In particular, adsorption TES systems, which exploit the enthalpy of adsorption, provide high energy storage density and high efficiency. The present thesis therefore analyzes an adsorption TES unit for residential and industrial applications. Industrial energy supply can be made more efficient by integrating waste heat into the process heat supply and by using energy-efficient technologies. Adsorption TES contributes to both approaches: waste heat can be integrated via the heat pump effect and TES allows for energy-efficient cogeneration heat supply for batch processes. We evaluate the energy efficiency of the heat supply for an industrial batch process by adsorption TES and cogeneration. To evaluate the performance, a dynamic model of an adsorption TES unit is developed. Measurements from earlier experimental investigations of an adsorption TES unit are used to calibrate the storage model. As benchmark, a peak boiler and TES based on a phase-change material are considered. Our comparison demonstrates the significance of the process conditions for the choice of the appropriate technology. The study shows that adsorption TES offers significant potential to increase the energy efficiency: primary energy consumption can be reduced by up to 25 %. The key is the availability of low-grade heat at times of discharging and of a low-grade heat demand when charging the storage unit. The study reveals that a comprehensive evaluation of the storage performance requires dynamic models that precisely describe the storage performance and the heat losses in particular. The present thesis provides the basis with a new experimental setup to precisely characterize the adsorption TES unit. In an experimental analysis of the TES performance, we quantify the heat losses, the energy recovery ratio (69–91 %) and the energy storage density (20.4 kW h/m3) of the adsorption TES unit for varying charging temperatures and storage times ranging from continuous operation to seasonal storage. The extensive experimental study provides the basis to improve our model of the adsorption TES unit. The model is calibrated to heat-loss measurements and a storagecycle measurement. We quantify the simulation accuracy and validate the model with measurements at various process conditions. The model achieves a higher prediction accuracy than other models from literature. The thesis thus provides a basis for future investigations of energy systems to exploit the advantages of adsorption TES.


Applied Thermal Engineering | 2015

Adsorption thermal energy storage for cogeneration in industrial batch processes: Experiment, dynamic modeling and system analysis

Heike Schreiber; Stefan Wilhelm Graf; Franz Lanzerath; André Bardow


Applied Thermal Engineering | 2016

The impact of filling level resolved: Capillary-assisted evaporation of water for adsorption heat pumps

Franz Lanzerath; Jan Seiler; Meltem Erdogan; Heike Schreiber; Matthias Steinhilber; André Bardow


Applied Thermal Engineering | 2016

Heat lost or stored: Experimental analysis of adsorption thermal energy storage

Heike Schreiber; Franz Lanzerath; Christiane Reinert; Christoph Grüntgens; André Bardow


international modelica conference | 2014

Adsorption energy systems library - Modeling adsorption based chillers, heat pumps, thermal storages and desiccant systems

Uwe Bau; Franz Lanzerath; Manuel Gräber; Stefan Wilhelm Graf; Heike Schreiber; Niklas Thielen; André Bardow


Archive | 2014

Combination of finned tubes and thermal coating for high performance water evaporation in adsorption heat pumps

Franz Lanzerath; Heike Schreiber; André Bardow; Meltem Erdogan; Matthias Steinhilber


Applied Thermal Engineering | 2017

Dynamic optimisation of adsorber-bed designs ensuring optimal control

Uwe Bau; Pooya Hoseinpoori; Stefan Wilhelm Graf; Heike Schreiber; Franz Lanzerath; Christian Kirches; André Bardow


Heat Powered Cycles 2016 | 2016

Rigorous assessment of adsorber bed designs using dynamic optimization

Uwe Bau; Heike Schreiber; André Bardow; Pooya Hoseinpoori; Franz Lanzerath; Stefan Wilhelm Graf


Archive | 2014

Adsorption heat storage for combined heat and power units in industrial batch processes

Heike Schreiber; André Bardow; Stefan Wilhelm Graf; Franz Lanzerath


Applied Thermal Engineering | 2018

Predicting performance of adsorption thermal energy storage: From experiments to validated dynamic models

Heike Schreiber; Franz Lanzerath; André Bardow

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Uwe Bau

RWTH Aachen University

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Jan Seiler

RWTH Aachen University

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