<link rel="stylesheet" href="styles.f3b1fba60ec7970c.css">

Hygrothermal Aging and Thermomechanical Characterization of As-Manufactured Tidal Turbine Blade Composites

dc.contributor.authorMurdy, Paul
dc.contributor.authorMurray, Robynne E.
dc.contributor.authorBarnes, David
dc.contributor.authorLusty, Ariel
dc.contributor.authorRognerud, Erik G.
dc.contributor.authorCreveling, Peter
dc.contributor.authorSamborsky, Daniel
dc.date.accessioned2026-04-16T21:07:05Z
dc.date.issued2025-09
dc.description.abstractThis study investigates the hygrothermal aging behavior and thermomechanical properties of as-manufactured glass fiber-reinforced epoxy and thermoplastic composite tidal turbine blades. The blades were previously deployed in a marine environment and subsequently analyzed through a comprehensive suite of material characterization techniques, including hygrothermal aging, dynamic mechanical analysis (DMA), tensile testing and X-ray computed tomography (XCT). Hygrothermal aging experiments revealed that while thermoplastic composites exhibited lower overall water absorption (0.78% vs. 0.47%), they had significantly higher diffusion coefficients than epoxy (2.1 vs. 12.1 × 10−13 m2s−1), suggesting faster saturation in operational environments. DMA results demonstrated that water ingress caused plasticization in epoxy matrices, reducing the glass transition temperature and increasing damping (112 °C to 104 °C), while thermoplastic composites showed more stable thermal behavior (87 °C glass transition temperature). Tensile testing revealed substantial reductions in ultimate strength (>40%) for both materials after prolonged water exposure, with minimal change in elastic modulus, highlighting the role of matrix degradation over fiber reinforcement. XCT image analysis showed that both composites were manufactured with high quality: no large voids or cracks were present, and the degree of misalignment was low. These findings inform future marine renewable energy composite designs by emphasizing the critical influence of moisture on long-term structural integrity and the need for optimized material systems in harsh marine environments. This work provides a rare real-world comparison of epoxy and recyclable thermoplastic tidal turbine blades, showing how laboratory aging tests and advanced imaging reveal the influence of material and manufacturing choices on long-term marine durability.
dc.identifier.citationMurdy, P., Murray, R. E., Barnes, D., Lusty, A. F., Rognerud, E. G., Creveling, P. J., & Samborsky, D. (2025). Hygrothermal Aging and Thermomechanical Characterization of As-Manufactured Tidal Turbine Blade Composites. Journal of Marine Science and Engineering, 13(9), 1790.
dc.identifier.doi10.3390/jmse13091790
dc.identifier.issn2077-1312
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/19762
dc.language.isoen_US
dc.publisherMDPI AG
dc.rightscc-by
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjecthygrothermal aging
dc.subjectultimate strength
dc.subjectfailure
dc.subjectmarine composites
dc.subjectepoxy resin
dc.subjectthermoplastic resin
dc.subjectdegradation
dc.subjectmaterial characterization
dc.titleHygrothermal Aging and Thermomechanical Characterization of As-Manufactured Tidal Turbine Blade Composites
dc.typeArticle
mus.citation.extentfirstpage1
mus.citation.extentlastpage16
mus.citation.issue9
mus.citation.journaltitleJournal of Marine Science and Engineering
mus.citation.volume13
mus.relation.collegeCollege of Engineering
mus.relation.departmentMechanical & Industrial Engineering
mus.relation.universityMontana State University - Bozeman

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
murdy-hygrothermal-aging-2025.pdf
Size:
1.23 MB
Format:
Adobe Portable Document Format

License bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
license.txt
Size:
825 B
Format:
Item-specific license agreed upon to submission
Description: