Published December 2021 | Version v1
Journal article

Quantification on fuel cell degradation and techno-economic analysis of a hydrogen-based grid-interactive residential energy sharing network with fuel-cell-powered vehicles

  • 1. College of Civil Engineering, National Center for International Research Collaboration in Building Safety and Environment, Hunan University, Changsha, Hunan (China)
  • 2. Center for the Built Environment, University of California, Berkeley, Berkeley, CA (United States)
  • 3. Department of Building Services Engineering, Faculty of Construction and Environment, Hong Kong Polytechnic University, Kowloon, Hong Kong (China)
  • 4. Building Technology and Urban Systems Division, Lawrence Berkeley National Laboratory, Berkeley, CA (United States)
  • 5. Faculty of Architecture and The Built Environment, Delft University of Technology, Delft (Netherlands)

Description

Highlights: • A H2-based interactive energy sharing network with microgrid and hydrogen vehicles. • A cabin thermal model for cabin temperature and energy consumption of vehicle HVAC. • A fuel cell degradation model for dynamic estimation for multiple applications. • Trade-off strategy to compensate fuel cell degradation cost with import cost saving. • Hydrogen energy for the carbon-neutrality transition in a residential community. Hydrogen-based (H2-based) interactive energy networks for buildings and transportations provide novel solutions for carbon-neutrality transition, regional energy flexibility and independence on fossil fuel consumption, where vehicle fuel cells are key components for H2-electricity conversion and clean power supply. However, due to the complexity in thermodynamic working environments and frequent on/off operations, the proton exchange membrane fuel cells (PEMFCs) suffer from performance degradation, depending on cabin heat balance and power requirements, and the ignorance of the degradation may lead to the performance overestimation. In order to quantify fuel cell degradation in both daily cruise and vehicle-to-grid (V2G) interactions, this study firstly proposes a two-space cabin thermal model to quantify the ambient temperature of vehicle PEMFCs and the power supply from PEMFCs to vehicle HVAC systems. Afterwards, a stack voltage model is proposed to quantify the fuel cell degradation for multiple purposes, such as daily transportation and V2G interactions. Afterwards, the two models are coupled in a community-level based building-vehicle energy network, consisting of twenty single residential buildings, rooftop PV systems, four hydrogen vehicles (HVs), a H2 station, community-served micro power grid, local main power grid, and local H2 pipelines, located in California, U.S.A. Comparative analysis with and without fuel cell degradation is conducted to study the impact of dynamic fuel cell degradation on the energy flexibility and operating cost. Furthermore, a parametrical analysis is conducted on the integrated HV quantity and the grid feed-in tariff to reach trade-off strategies between associated fuel cell degradation costs and grid import cost savings. The results indicate that, in the proposed hydrogen-based building-vehicle energy network, the total fuel cell degradation is 3.16% per vehicle within one year, where 2.50% and 0.66% are caused by daily transportation and V2G interactions, respectively. Furthermore, in the H2-based residential community, the total fuel cell degradation cost is US$6945.2, accounting for 33.4% of the total operating cost at $20770.61. The sensitivity analysis results showed that, when the HV quantity increases to twenty, the fuel cell degradation of each HV decreases to 2.50%, whereas the total fuel cell degradation cost increases to 42.8% of the total operating cost. Last but not the least, the cost saving by V2G interactions can compensate the fuel cell degradation cost when the grid feed-in tariff is reduced by 40%. Research results can provide basic modelling tools on dynamic fuel cell degradation, in respect to vehicle power supply, vehicle HVAC and V2G interactions, together with techno-economic feasibility analysis, paving path for the development of hydrogen energy for the carbon-neutrality transition.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.apenergy.2021.117444

Additional details

Identifiers

DOI
10.1016/j.apenergy.2021.117444;
PII
S0306261921008345;

Publishing Information

Journal Title
Applied Energy
Journal Volume
303
Journal Page Range
vp.
ISSN
0306-2619
CODEN
APENDX

Optional Information

Copyright
Copyright (c) 2021 Elsevier Ltd. All rights reserved.