FLOW FIELD PLATE DESIGN ANALYSIS WITH CROSS-SECTION WAVE RECTANGULAR SERPENTINE USING 3D FLOW SIMULATION ON PROTON EXCHANGE MEMBRANE FUEL CELL

Teguh Imam Prasetya, Deni Shidqi Khaerudini

Abstract


The availability of petroleum which continues to decrease and the level of public consumption which is always increasing are serious problems today. Renewable energy needs to be researched on an ongoing basis to anticipate the availability problems above. Proton Exchange Membrane Fuel Cell (PEMFC) is an environmentally friendly source of electrical energy because it only requires hydrogen and oxygen as raw materials and water as a result of the reaction. This study will discuss the PEMFC flow field plate because this component dominates the weight and cost of manufacture. Research on flow field plate PEMFC with wave rectangular cross-section is necessary to develop the PEMFC concept with better performance results. This study aims to determine the effect of the wavy cross-section shape on the distribution of channel average speed, channel outlet speed, inlet pressure, channel average pressure, and channel outlet pressure. This study uses a computational fluid dynamic (CFD) method using SolidWorks flow simulation software. This study provides an overview of the serpentine type of flow field plate with a wave rectangular and rectangular cross-section. The wave rectangular cross-section has a higher average velocity, outlet velocity, inlet pressure, and pressure than the rectangular cross-section. This is what will make PEMFC performance higher. The wave rectangular cross-section has nearly the same number of outlet pressures as the rectangular cross-section. Possible development of this research is the creation of simulation software to calculate other parameters that affect PEMFC performance.


Keywords


Cross-section; PEMFC; Flow field; Serpentine

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References


S. Praneeth, A. Das, and F. Liou, “Design of metallic bipolar plates for PEM fuel cells.,” Missouri University of Science and Technology. Center for Transportation, 2012.

F. Xie et al., “Recent progresses in H2-PEMFC at DICP,” J. Energy Chem., vol. 36, pp. 129– 140, 2019, doi: 10.1016/j.jechem.2019.07.012.

J. M. Andújar and F. Segura, “Fuel cells: History and updating. A walk along two centuries,” Renew. Sustain. energy Rev., vol. 13, no. 9, pp. 2309–2322, 2009.

M. L. Perry and T. F. Fuller, “A historical perspective of fuel cell technology in the 20th century,” J. Electrochem. Soc., vol. 149, no. 7, p. S59, 2002, doi: 10.1149/1.1488651.

R. Taherian, “A review of composite and metallic bipolar plates in proton exchange membrane fuel cell: Materials, fabrication, and material selection,” J. Power Sources, vol. 265, pp. 370–390, 2014.

K. Yao, D. Adams, A. Hao, J. P. Zheng, Z. Liang, and N. Nguyen, “Highly conductive and strong graphite-phenolic resin composite for bipolar plate applications,” Energy & Fuels, vol. 31, no. 12, pp. 14320–14331, 2017.

V. Mehta and J. S. Cooper, “Review and analysis of PEM fuel cell design and manufacturing,” J. Power Sources, vol. 114, no. 1, pp. 32–53, 2003.

C. T. Wang et al., “A modified serpentine flow slab for in Proton Exchange Membrane Fuel Cells (PEMFCs),” Energy Procedia, vol. 142, pp. 667–673, 2017, doi: 10.1016/j.egypro.2017.12.110.

B. Wu, G. Lin, Y. Fu, M. Hou, and B. Yi, “Chromium-containing carbon film on stainless steel as bipolar plates for proton exchange membrane fuel cells,” Int. J. Hydrogen Energy, vol. 35, no. 24, pp. 13255–13261, 2010.

H.-C. Chiu, J.-H. Jang, W.-M. Yan, H.-Y. Li, and C.-C. Liao, “A three-dimensional modeling of transport phenomena of proton exchange membrane fuel cells with various flow fields,”Appl. Energy, vol. 96, pp. 359–370, 2012.

M. Z. Chowdhury and Y. E. Akansu, “Novel convergent-divergent serpentine flow fields effect on PEM fuel cell performance,” Int. J. Hydrogen Energy, vol. 42, no. 40, pp. 25686–25694, 2017, doi: 10.1016/j.ijhydene.2017.04.079.

E. L. Dewi and J. Raharjo, “Perbandingan Grafit Bipolar Plate Model Parallel dan Serpentine sebagai Komponen Separator pada Pemfc,” in Prosiding Seminar Nasional Teknoin, 2008, vol. 3, no. November, pp. 47–50.

Y. M. Ferng and A. Su, “A three-dimensional full-cell CFD model used to investigate the effects of different flow channel designs on PEMFC performance,” Int. J. Hydrogen Energy, vol. 32, no. 17, pp. 4466–4476, 2007, doi: 10.1016/j.ijhydene.2007.05.012.

J. Larminie, A. Dicks, and M. S. McDonald, Fuel cell systems explained, vol. 2. J. Wiley Chichester, UK, 2003.

M. Seyhan, Y. E. Akansu, M. Murat, Y. Korkmaz, and S. O. Akansu, “Performance prediction of PEM fuel cell with wavy serpentine flow channel by using artificial neural network,” Int. J. Hydrogen Energy, vol. 42, no. 40, pp. 25619–25629, 2017, doi: 10.1016/j.ijhydene.2017.04.001.

X. Chen et al., “Performance investigation on a novel 3D wave flow channel design for PEMFC,” Int. J. Hydrogen Energy, no. xxxx, 2020, doi: 10.1016/j.ijhydene.2020.06.057.

Teguh, “Bipolar Plate t5,” vol. 1, Jakarta: Idea Laboratory Engineering, p. 1, 2018




DOI: http://dx.doi.org/10.22441/ijimeam.v3i2.11623

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