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Dive into the research topics where Kevin J. Albrecht is active.

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Featured researches published by Kevin J. Albrecht.


international conference on fuel cell science engineering and technology fuelcell collocated with asme international conference on energy sustainability | 2015

Thermodynamic Analysis of Non-Stoichiometric Perovskites as a Heat Transfer Fluid for Thermochemical Energy Storage in Concentrated Solar Power

Kevin J. Albrecht; Robert J. Braun

The implementation of efficient and cost effective thermal energy storage in concentrated solar power (CSP) applications is crucial to the wide spread adoption of the technology. The current push to high-temperature receivers enabling the use of advanced power cycles has identified solid particle receivers as a desired technology. A potential way of increasing the specific energy storage of solid particles while simultaneously reducing plant component size is to implement thermochemical energy storage (TCES) through the use of non-stoichiometric perovskite oxides. Materials such as strontium-doped lanthanum cobalt ferrites (LSCF) have been shown to have significant reducibility when cycling temperature and oxygen partial pressure of the environment [1]. The combined reducibility and heat of the oxidation and reduction reactions with the sensible change in temperature of the material leads to specific energy storage values approaching 700 kJ kg−1. A potential thermochemical energy storage system configuration and modeling strategy is reported on, leading to a parametric study of critical operating parameters on the TCES subsystem performance. For the LSCF material operating between 500 and 900°C with oxygen partial pressure swings from ambient to 0.0001 bar, system efficiencies of 68.6% based on the net thermal energy delivered to the power cycle relative to the incident solar flux on the receiver and auxiliary power requirements, with specific energy storage of 686 kJ kg−1 are predicted. Alternatively, only cycling the temperature between 500 and 900°C without oxygen partial pressure swings results in TCES subsystem efficiencies up to 76.3% with specific energy storage of 533 kJ kg−1.Copyright


Applied Energy | 2016

Thermodynamically consistent modeling of redox-stable perovskite oxides for thermochemical energy conversion and storage

Kevin J. Albrecht; Gregory S. Jackson; Robert J. Braun


Solar Energy | 2017

Thermochemical energy storage in strontium-doped calcium manganites for concentrating solar power applications

Luca Imponenti; Kevin J. Albrecht; Jake W. Wands; Michael D. Sanders; Gregory S. Jackson


Journal of Power Sources | 2016

The effect of coupled mass transport and internal reforming on modeling of solid oxide fuel cells part I: Channel-level model development and steady-state comparison

Kevin J. Albrecht; Robert J. Braun


229th ECS Meeting (May 29 - June 2, 2016) | 2016

Measuring Thermochemical Energy Storage Capacity with Redox Cycles of Doped-CaMnO3

Luca Imponenti; Kevin J. Albrecht; Robert J. Braun; Gregory S. Jackson


Journal of Power Sources | 2016

The effect of coupled mass transport and internal reforming on modeling of solid oxide fuel cells part II: Benchmarking transient response and dynamic model fidelity assessment

Kevin J. Albrecht; Robert J. Braun


Solar Energy | 2018

Evaluating thermodynamic performance limits of thermochemical energy storage subsystems using reactive perovskite oxide particles for concentrating solar power

Kevin J. Albrecht; Gregory S. Jackson; Robert J. Braun


ECS Conference on Electrochemical Energy Conversion & Storage with SOFC-XIV (July 26-31, 2015) | 2015

Modeling Intermediate Temperature Protonic Ceramic Fuel Cells

Kevin J. Albrecht; Chuancheng Duan; Ryan O'Hayre; Robert J. Braun


Applied Energy | 2018

Redox cycles with doped calcium manganites for thermochemical energy storage to 1000 °C

Luca Imponenti; Kevin J. Albrecht; Rounak Kharait; Michael D. Sanders; Gregory S. Jackson


Archive | 2016

CSP ELEMENTS: High-Temperature Thermochemical Storage with Redox-Stable Perovskites for Concentrating Solar Power

Gregory S. Jackson; Robert J. Braun; Zhiwen Ma; Janna Martinek; Judy Netter; Luca Imponenti; Kevin J. Albrecht; Daniel C. Miller

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Luca Imponenti

Colorado School of Mines

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Jake W. Wands

Colorado School of Mines

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Rounak Kharait

Colorado School of Mines

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Ryan O'Hayre

Colorado School of Mines

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Zhiwen Ma

National Renewable Energy Laboratory

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