Dynamic analysis of a CCHP system based on fuel cells integrated with methanol-reforming and dehumidification for data centers

2022 ◽  
Vol 309 ◽  
pp. 118496
Author(s):  
Junjie Zhao ◽  
Huawei Chang ◽  
Xiaobing Luo ◽  
Zhengkai Tu ◽  
Siew Hwa Chan
Author(s):  
Tianyi Gao ◽  
Bahgat G. Sammakia ◽  
James F. Geer ◽  
Alfonso Ortega ◽  
Roger Schmidt

Electronics ◽  
2020 ◽  
Vol 9 (12) ◽  
pp. 2054
Author(s):  
Xiaoxuan Hu ◽  
Yanfei Sun

With the increase of data storage demands, the energy consumption of data centers is also increasing. Energy saving and use of power resources are two key problems to be solved. In this paper, we introduce the fuel cells as the energy supply and study power resource use in data center power grids. By considering the limited load following of fuel cells and power budget fragmentation phenomenon, we transform the main two objectives into the optimization of workload distribution problem and use a deep reinforcement learning-based method to solve it. The evaluations with real-world traces demonstrate the better performance of this work over state-of-art approaches.


2018 ◽  
Vol 163 ◽  
pp. 268-277 ◽  
Author(s):  
Yuqing Wang ◽  
Yixiang Shi ◽  
Yu Luo ◽  
Ningsheng Cai ◽  
Yabin Wang

2003 ◽  
Vol 69 (687) ◽  
pp. 2553-2559 ◽  
Author(s):  
Kazuyuki NARUSAWA ◽  
Morimasa HAYASHIDA ◽  
Daisuke KURASHIMA ◽  
Kenji MUROOKA ◽  
Katsuhiko WAKABAYASHI ◽  
...  

Author(s):  
Stefano Campanari ◽  
Paolo Iora ◽  
Andrea Lucchini ◽  
Matteo Romano

This work presents a computational thermofluid-dynamic analysis of circular-planar type intermediate-temperature solid oxide fuel cells (SOFCs), based on the Hexis design. A single cell, representative of the average conditions of a real stack, is simulated in detail considering the real anode and cathode channel design, featuring an array of square pegs supporting the interconnection layers. The analysis is developed starting from cell operating data assumed from real test experimental information for an anode-supported SOFC with a 100cm2 active area, fed with pure hydrogen, and is extended to different reactant flow rates and generated heat flux power densities to evidence a generalized correlation for the thermofluid-dynamic behavior of the fuel cell under variable operating conditions. Aiming to provide a set of general results for the calculation of the heat transfer coefficient, which is applicable for the purpose of a complete thermal and electrochemical finite volume analysis, the simulation calculates local temperature distributions depending on radial and angular positions. The fluid-dynamic analysis evidences the existence of preferential flow paths and nonuniformity issues of the gas flow field, which may affect significantly the cell performances, and indicates possible cell design improvements.


Sign in / Sign up

Export Citation Format

Share Document