High Density Thermal Energy Storage With Supercritical Fluids

Author:

Ganapathi Gani B.1,Wirz Richard2

Affiliation:

1. Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA

2. University of California, Los Angeles, Los Angeles, CA

Abstract

A novel approach to storing thermal energy with supercritical fluids is being investigated, which if successful, promises to transform the way thermal energy is captured and utilized. The use of supercritical fluids allows cost-affordable high-density storage with a combination of latent heat and sensible heat in the two-phase as well as the supercritical state. This technology will enhance penetration of several thermal power generation applications and high temperature water for commercial use if the overall cost of the technology can be demonstrated to be lower than the current state-of-the-art molten salt using sodium nitrate and potassium nitrate eutectic mixtures. An additional attraction is that the volumetric storage density of a supercritical fluid can be higher than a two-tank molten salt system due to the high compressibilities in the supercritical state. This paper looks at different elements for determining the feasibility of this storage concept — thermodynamics of supercritical state with a specific example, naphthalene, fluid and system cost and a representative storage design. A modular storage vessel design based on a shell and heat exchanger concept allows the cost to be minimized as there is no need for a separate pump for transferring fluid from one tank to another as in the molten salt system. Since the heat exchangers are internal to the tank, other advantages such as lower parasitic heat loss, easy fabrication can be achieved. Results from the study indicate that the fluid cost can be reduced by a factor of ten or even twenty depending on the fluid and thermodynamic optimization of loading factor. Results for naphthalene operating between 290 °C and 475 °C, indicate that the fluid cost is approximately $3/kWh compared with $25-$50/kWh for molten salt. When the storage container costs are factored in, the overall system cost is still very attractive. Studies for a 12-hr storage indicate that for operating at temperatures between 290–450 °C, the cost for a molten salt system can vary between $66/kWh to $184/kWh depending on molten salt cost of $2/kg or a more recent quote of $8/kg. In contrast, the cost for a 12-hr supercritical storage system can be as low as $40/kWh. By using less expensive materials than SS 316L, it is possible to reduce the costs even further.

Publisher

American Society of Mechanical Engineers

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Influence of the operational conditions on the transient charging performance of a thermal storage system using supercritical carbon dioxide;Numerical Heat Transfer, Part A: Applications;2023-03-27

2. Introduction to Binary Mixtures at Supercritical Pressures and Coupled Heat and Mass Transfer;Coupled Heat and Mass Transfer in Binary Mixtures at Supercritical Pressures;2022

3. Application of Supercritical Technologies in Clean Energy Production;Handbook of Research on Advancements in Supercritical Fluids Applications for Sustainable Energy Systems;2021

4. Enabling high conductance and high energy density in supercritical fluids for thermal storage applications;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2020-09-18

5. Application of Supercritical Technologies in Clean Energy Production;Advanced Applications of Supercritical Fluids in Energy Systems;2017

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