Thermodynamic and economic analyses of a novel liquid air energy storage (LAES) coupled with thermoelectric generator and Kalina cycle

2022 ◽  
Vol 45 ◽  
pp. 103711
Author(s):  
Mohammad Hossein Nabat ◽  
Shakiba Sharifi ◽  
Amir Reza Razmi
2017 ◽  
Vol 38 (4) ◽  
pp. 65-87 ◽  
Author(s):  
Janusz Kotowicz ◽  
Łukasz Bartela ◽  
Klaudia Dubiel-Jurgaś

Abstract Paper presents the concept of energy storage system based on power-to-gas-to-power (P2G2P) technology. The system consists of a gas turbine co-firing hydrogen, which is supplied from a distributed electrolysis installations, powered by the wind farms located a short distance from the potential construction site of the gas turbine. In the paper the location of this type of investment was selected. As part of the analyses, the area of wind farms covered by the storage system and the share of the electricity production which is subjected storage has been changed. The dependence of the changed quantities on the potential of the hydrogen production and the operating time of the gas turbine was analyzed. Additionally, preliminary economic analyses of the proposed energy storage system were carried out.


Author(s):  
Michael Nakhamkin ◽  
John R. Stange ◽  
Richard Duttenhoffer ◽  
Robert Pelini ◽  
Robert B. Schainker

This paper presents results of engineering of a Circulating Fluidized Bed Combustor (CFBC) for Compressed Air Energy Storage (CAES) application. This development allows eliminating the use of premium fuels thus resolving economic as well as institutional issues. The paper summarizes the engineering, performance and cost data for a CFBC and presents comparative technical and economic analyses of a CAES plant with CFBC (burning coal) versus a conventional CAES plant (burning premium fuel).


Entropy ◽  
2019 ◽  
Vol 21 (3) ◽  
pp. 220 ◽  
Author(s):  
Tong Zhang ◽  
Xuelin Zhang ◽  
Xiaodai Xue ◽  
Guohua Wang ◽  
Shengwei Mei

Liquid air energy storage (LAES) is a promising energy storage technology in consuming renewable energy and electricity grid management. In the baseline LAES (B-LAES), the compression heat is only utilized in heating the inlet air of turbines, and a large amount of compression heat is surplus, leading to a low round-trip efficiency (RTE). In this paper, an integrated energy system based on LAES and the Kalina cycle (KC), called KC-LAES, is proposed and analyzed. In the proposed system, the surplus compression heat is utilized to drive a KC system to generate additional electricity in the discharging process. An energetic model is developed to evaluate the performance of the KC and the KC-LAES. In the analysis of the KC subsystem, the calculation results show that the evaporating temperature has less influence on the performance of the KC-LAES system than the B-LAES system, and the optimal working fluid concentration and operating pressure are 85% and 12 MPa, respectively. For the KC-LAES, the calculation results indicate that the introduction of the KC notably improves the compression heat utilization ratio of the LAES, thereby improving the RTE. With a liquefaction pressure value of eight MPa and an expansion pressure value of four MPa, the RTE of the KC-LAES is 57.18%, while that of the B-LAES is 52.16%.


2020 ◽  
Vol 275 ◽  
pp. 115392 ◽  
Author(s):  
Chen Wang ◽  
Nevzat Akkurt ◽  
Xiaosong Zhang ◽  
Yimo Luo ◽  
Xiaohui She

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