Experimental Validation of a Test Apparatus for the Evaluation of Hydrogen Permeation in Silane-Modified Sealants on Fuel-Cell-Powered Vehicles
Abstract
:1. Introduction
- Electric traction, the realization of which is justified in economic terms by the presence of high traffic flows;
- Diesel traction, which can produce high emissions that are harmful to health.
- good adhesion on a wide range of substrates of different nature;
- possibility of use over a wide temperature range, indicatively from −40 to 100 °C;
- high resistance to UV (ultraviolet) rays.
- primary leaks through interstices between the adhesive and the substrates;
- secondary leaks due to hydrogen permeation and diffusion phenomena through the adhesive.
- It reduces the hydrogen leaks to evaluate the hydrogen permeability of the tested materials correctly;
- It allows the testing of sealants of different thickness (1–6 mm).
2. Materials and Methods
- Advantseal FR (fire retardant), a single-component sealant suitable for sealing joints and metal overlaps, with intumescent properties that make it suitable for the construction of fire barriers [20];
- Cristalcar Plus, a single-component adhesive suitable for semi-structural elastic bonding, particularly suitable for the assembly of glass or windshields [21].
3. Results and Discussion
- For 6 mm thick sealants, there is no hydrogen permeation detectable by the gas chromatograph, resulting in less than 0.6 ng/min (instrument sensitivity);
- For 3 mm thick sealants, there is hydrogen permeation below 3 ng/min, higher for Cristalcar than for Advantseal.
4. Conclusions
- Permeation properties of adhesives following aging cycles;
- Influence of the variation of environmental conditions (temperature, humidity, etc.) according to the minimum and maximum limits set by the train mission profile;
- Evaluations on the possible use of sealants for pressure applications, which are more interesting in the high-speed field (in this case, the regulatory reference for the test methods would be Part 1 of the BS ISO 15105 standard).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Number | Component |
---|---|
1 | Nitro hydrogen cylinder |
2 | Nitro hydrogen adapter |
3 | Nitro hydrogen needle tap |
4 | Upper chamber |
5 | Nitro hydrogen flow meter |
6 | Argon cylinder |
7 | Argon adapter |
8 | Argon needle tap |
9 | Lower chamber |
10 | Argon flow meter |
11 | “T” fitting |
12 | Gas chromatograph |
9 | Measure | Nominal Thickness [mm] | Rp [ng/min] | Rps [ng/(min*cm2)] |
---|---|---|---|---|
Advantseal FR | 1 | 3 | 1.9 | 0.15 |
2 | 2.2 | 0.18 | ||
3 | 2.3 | 0.18 | ||
4 | 2.1 | 0.17 | ||
1 | 6 | <0.6 | <0.05 | |
2 | <0.6 | <0.05 | ||
3 | <0.6 | <0.05 | ||
4 | <0.6 | <0.05 | ||
Cristalcar Plus | 1 | 3 | 2.6 | 0.20 |
2 | 2.6 | 0.21 | ||
3 | 2.3 | 0.19 | ||
4 | 2.8 | 0.23 | ||
1 | 6 | <0.6 | <0.05 | |
2 | <0.6 | <0.05 | ||
3 | <0.6 | <0.05 | ||
4 | <0.6 | <0.05 |
Material | Specimen | Nominal Thickness [mm] | Rp [ng/min] | Rps [ng/(min×cm2)] |
---|---|---|---|---|
Advantseal FR | AD | 3 | 2.1 ± 0.1 | 0.17 ± 0.01 |
6 | <0.6 | <0.05 | ||
Cristalcar Plus | CR | 3 | 2.6 ± 0.2 | 0.21 ± 0.02 |
6 | <0.6 | <0.05 |
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Locatelli Quacchia, P.T.; Sisca, L.; Ripa, P.; Giorcelli, N.; Inferrera, A. Experimental Validation of a Test Apparatus for the Evaluation of Hydrogen Permeation in Silane-Modified Sealants on Fuel-Cell-Powered Vehicles. Fluids 2022, 7, 300. https://doi.org/10.3390/fluids7090300
Locatelli Quacchia PT, Sisca L, Ripa P, Giorcelli N, Inferrera A. Experimental Validation of a Test Apparatus for the Evaluation of Hydrogen Permeation in Silane-Modified Sealants on Fuel-Cell-Powered Vehicles. Fluids. 2022; 7(9):300. https://doi.org/10.3390/fluids7090300
Chicago/Turabian StyleLocatelli Quacchia, Patrizio Tiziano, Lorenzo Sisca, Pietro Ripa, Noemi Giorcelli, and Alessandro Inferrera. 2022. "Experimental Validation of a Test Apparatus for the Evaluation of Hydrogen Permeation in Silane-Modified Sealants on Fuel-Cell-Powered Vehicles" Fluids 7, no. 9: 300. https://doi.org/10.3390/fluids7090300
APA StyleLocatelli Quacchia, P. T., Sisca, L., Ripa, P., Giorcelli, N., & Inferrera, A. (2022). Experimental Validation of a Test Apparatus for the Evaluation of Hydrogen Permeation in Silane-Modified Sealants on Fuel-Cell-Powered Vehicles. Fluids, 7(9), 300. https://doi.org/10.3390/fluids7090300