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Title: Coupled Heat Power Operation of Smart Buildings via Modular Pumped Hydro Storage

Journal Article · · Journal of Energy Resources Technology
DOI: https://doi.org/10.1115/1.4053783 · OSTI ID:1847531

In the United States, building sector is responsible for around 40% of total energy consumption and contributes about 40% of carbon emissions since 2012. Within the past several years, various optimization models and control strategies have been studied to improve buildings’ energy efficiency and reduce operational expenses under the constraints of satisfying occupants’ comfort requirements. However, the majority of these studies consider building electricity demand and thermal load being satisfied by unidirectional electricity flow from the power grid or on-site renewable energy generation to electrical and thermal home appliances. Opportunities for leveraging low-grade heat for electricity have largely been overlooked due to impracticality at small scale. In 2016, a modular pumped hydro storage technology was invented in Oak Ridge National Laboratory, named Ground Level Integrated Diverse Energy Storage (GLIDES). In GLIDES, employing high-efficiency hydraulic machinery instead of gas compressor/turbine, liquid is pumped to compress gas inside high-pressure vessel creating head on ground level. This unique design eliminates the geographical limitation associated with the existing state-of-the-art energy storage technologies. It is easy to be scaled for building level, community level, and grid level applications. By using this novel hydro-pneumatic storage technology, opportunities for leveraging low-grade heat in building can be economical. In this research, the potential of utilizing low-grade thermal energy to augment electricity generation of GLIDES is investigated. Since GLIDES relies on gas expansion in the discharge process and the gas temperature drops during this non-isothermal process, available thermal energy, e.g., from thermal storage, combined cooling, heat and power system (CCHP), can be utilized by GLIDES to counter the cooling effect of the expansion process and elevate the gas temperature and pressure and boost the roundtrip efficiency. Here, several groups of comparison experiments have been conducted, and the experimental results show that a maximum 12.9% cost saving could be achieved with unlimited heat source for GLIDES, and a moderate 3.8% cost improvement can be expected when operated coordinately with CCHP and thermal energy storage in a smart building.

Research Organization:
Oak Ridge National Laboratory (ORNL), Oak Ridge, TN (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE)
Grant/Contract Number:
AC05-00OR22725
OSTI ID:
1847531
Journal Information:
Journal of Energy Resources Technology, Journal Name: Journal of Energy Resources Technology Journal Issue: 7 Vol. 144; ISSN 0195-0738
Publisher:
ASMECopyright Statement
Country of Publication:
United States
Language:
English

References (21)

Thermal analysis of near-isothermal compressed gas energy storage system journal October 2016
Modeling a novel CCHP system including solar and wind renewable energy resources and sizing by a CC-MOPSO algorithm journal December 2016
Experimental and analytical evaluation of a hydro-pneumatic compressed-air Ground-Level Integrated Diverse Energy Storage (GLIDES) system journal July 2018
A thermo-economic analysis and comparison of pumped-thermal and liquid-air electricity storage systems journal September 2018
Novel performance curves to determine optimal operation of CCHP systems journal September 2018
Preliminary analysis of market potential for a hydropneumatic ground-level integrated diverse energy storage system journal May 2019
Dynamic modeling and validation of a micro-combined heat and power system with integrated thermal energy storage journal August 2020
Toward efficient numerical modeling and analysis of large-scale thermal energy storage for renewable district heating journal December 2020
Comparative analysis on operation strategies of CCHP system with cool thermal storage for a data center journal September 2016
Influence analysis of building energy demands on the optimal design and performance of CCHP system by using statistical analysis journal October 2017
Study on configuration optimization and economic feasibility analysis for combined cooling, heating and power system journal June 2019
Environmental assessment of CCHP (combined cooling heating and power) systems based on biomass combustion in comparison to conventional generation journal August 2013
A collaborative operation decision model for distributed building clusters journal May 2015
Balancing collective and individual interests in transactive energy management of interconnected micro-grid clusters journal August 2016
PART 1- techno-economic analysis of a grid scale Ground-Level Integrated Diverse Energy Storage (GLIDES) technology journal October 2019
A review of energy storage types, applications and recent developments journal February 2020
Review of electrical energy storage technologies, materials and systems: challenges and prospects for large-scale grid storage journal January 2018
Surrogate Modeling for Capacity Planning of Charging Station Equipped With Photovoltaic Panel and Hydropneumatic Energy Storage journal January 2019
Bi-Level Optimization for Electricity Transaction in Smart Community With Modular Pump Hydro Storage
  • Chen, Yang; Kou, Xiao; Olama, Mohammed
  • ASME 2020 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, Volume 6: 25th Design for Manufacturing and the Life Cycle Conference (DFMLC) https://doi.org/10.1115/DETC2020-22368
conference November 2020
Transient Thermofluids Analysis of a Ground-Level Integrated Diverse Energy Storage (GLIDES) System conference March 2016
Increasing Compressed Gas Energy Storage Density Using CO2–N2 Gas Mixture journal May 2020