logo

EbookBell.com

Most ebook files are in PDF format, so you can easily read them using various software such as Foxit Reader or directly on the Google Chrome browser.
Some ebook files are released by publishers in other formats such as .awz, .mobi, .epub, .fb2, etc. You may need to install specific software to read these formats on mobile/PC, such as Calibre.

Please read the tutorial at this link:  https://ebookbell.com/faq 


We offer FREE conversion to the popular formats you request; however, this may take some time. Therefore, right after payment, please email us, and we will try to provide the service as quickly as possible.


For some exceptional file formats or broken links (if any), please refrain from opening any disputes. Instead, email us first, and we will try to assist within a maximum of 6 hours.

EbookBell Team

Article Tracking The Evolution Of Mechanical Degradation In Fuel Cell Membranes Using 4d In Situ Visualization Yadvinder Singh

  • SKU: BELL-7284684
Article Tracking The Evolution Of Mechanical Degradation In Fuel Cell Membranes Using 4d In Situ Visualization Yadvinder Singh
$ 31.00 $ 45.00 (-31%)

4.0

46 reviews

Article Tracking The Evolution Of Mechanical Degradation In Fuel Cell Membranes Using 4d In Situ Visualization Yadvinder Singh instant download after payment.

Publisher: Journal of Power Sources
File Extension: PDF
File size: 2.81 MB
Pages: 224
Author: Yadvinder Singh, Robin T White et al
ISBN: 9782501345019, 2501345010
Language: English
Year: 2019

Product desciption

Article Tracking The Evolution Of Mechanical Degradation In Fuel Cell Membranes Using 4d In Situ Visualization Yadvinder Singh by Yadvinder Singh, Robin T White Et Al 9782501345019, 2501345010 instant download after payment.

Mechanical degradation occurs in fuel cell membranes due to the dynamic environmental conditions of operational duty cycles, and is regarded as a critical determinant of fuel cell durability and lifetime. Imaging-based failure analysis is typically employed to characterize structural and morphological aspects of the degradation, and 3D visualization capability of X-ray computed tomography is effectively expanding the scope of this analysis. This work further leverages the additional non-destructive and non-invasive attributes of this visualization technique to capture 4D information pertaining to the evolution of mechanical degradation in fuel cell membranes. A custom fuel cell fixture is utilized to periodically track identical membrane locations during the course of its mechanical degradation, which is generated through an accelerated stress test. The predominant fatigue-driven membrane crack development process is found to proceed non-linearly in time and is spatially concentrated under the uncompressed channel regions. Membrane cracking location is shown to be strongly correlated with beginning-of-life MEA defects, namely, electrode cracks and delamination. In situ crack propagation rates are quantified and the presence of a ‘crack closure’ effect during mechanical membrane degradation is demonstrated. Unlike crack initiation, crack propagation in the membranes does not appear to be significantly influenced by electrode morphology.

Related Products