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Effect of moisture on the delamination properties of fractured PVB-laminated glass: A joint experimental and numerical study

Chen, Xing ; Lin, Binbin ; Schuster, Miriam ; Chen, Suwen ; Xu, Bai-Xiang ; Schneider, Jens (2023)
Effect of moisture on the delamination properties of fractured PVB-laminated glass: A joint experimental and numerical study.
In: Composite Structures, 322
doi: 10.1016/j.compstruct.2023.117381
Artikel, Bibliographie

Kurzbeschreibung (Abstract)

In practical applications of laminated glass, local moisture exchange may occur through panel edges or glass cracks and leads to a significant impact on the post-fracture behavior of laminated glass. In this paper, the effect of moisture on the interfacial delamination properties of PVB-laminated glass is studied. At the experimental level, quasi-static uniaxial tensile tests on pure PVB and through-cracked tensile tests on PVB-laminated glass were conducted at room temperature, considering four initial moisture levels, i.e., 0.2, 0.4, 0.6, and 0.8, corresponding to relative humidity of 13.6, 25.6, 36.1, and 44.5, respectively. It is worth noting that for each laminated glass specimen used in the TCT tests, a controlled moisture content was uniformly introduced into the interlayer during the manufacturing process, which is different from traditional aging tests. This allowed for characterization of the moisture-dependent material properties of PVB and interfacial delamination properties of fractured PVB-laminated glass under controlled and uniform moisture conditions. At the numerical level, the moisture-dependent material behavior of the PVB interlayer was first calibrated with 5-parameter Mooney-Rivlin hyperelastic material laws. The moisture-dependent material laws and through-cracked tensile (TCT) test results were then used for an inverse determination of the cohesive strength and interfacial fracture energy at PVB-glass interface through a numerical cohesive zone approach. This study found that the moisture content can significantly affect the interfacial properties of the PVB-laminated glass, with the cohesive strength and interfacial fracture energy decreasing by approximately 70 and 50, respectively, as the moisture content increases from 0.2 to 0.8. The changes of the above interfacial parameters can be approximated by linear relationships. In addition, the energy absorption of fractured PVB laminated glass decreases significantly with increasing moisture content due to the degradation of PVB interlayer performance and reduced interfacial adhesion. Therefore, the effect of moisture content should be considered in the practical design of certain laminated glass applications to ensure post-fracture load-bearing capacity.

Typ des Eintrags: Artikel
Erschienen: 2023
Autor(en): Chen, Xing ; Lin, Binbin ; Schuster, Miriam ; Chen, Suwen ; Xu, Bai-Xiang ; Schneider, Jens
Art des Eintrags: Bibliographie
Titel: Effect of moisture on the delamination properties of fractured PVB-laminated glass: A joint experimental and numerical study
Sprache: Englisch
Publikationsjahr: Oktober 2023
Verlag: Elsevier BV
Titel der Zeitschrift, Zeitung oder Schriftenreihe: Composite Structures
Jahrgang/Volume einer Zeitschrift: 322
DOI: 10.1016/j.compstruct.2023.117381
URL / URN: https://www.sciencedirect.com/science/article/pii/S026382232...
Kurzbeschreibung (Abstract):

In practical applications of laminated glass, local moisture exchange may occur through panel edges or glass cracks and leads to a significant impact on the post-fracture behavior of laminated glass. In this paper, the effect of moisture on the interfacial delamination properties of PVB-laminated glass is studied. At the experimental level, quasi-static uniaxial tensile tests on pure PVB and through-cracked tensile tests on PVB-laminated glass were conducted at room temperature, considering four initial moisture levels, i.e., 0.2, 0.4, 0.6, and 0.8, corresponding to relative humidity of 13.6, 25.6, 36.1, and 44.5, respectively. It is worth noting that for each laminated glass specimen used in the TCT tests, a controlled moisture content was uniformly introduced into the interlayer during the manufacturing process, which is different from traditional aging tests. This allowed for characterization of the moisture-dependent material properties of PVB and interfacial delamination properties of fractured PVB-laminated glass under controlled and uniform moisture conditions. At the numerical level, the moisture-dependent material behavior of the PVB interlayer was first calibrated with 5-parameter Mooney-Rivlin hyperelastic material laws. The moisture-dependent material laws and through-cracked tensile (TCT) test results were then used for an inverse determination of the cohesive strength and interfacial fracture energy at PVB-glass interface through a numerical cohesive zone approach. This study found that the moisture content can significantly affect the interfacial properties of the PVB-laminated glass, with the cohesive strength and interfacial fracture energy decreasing by approximately 70 and 50, respectively, as the moisture content increases from 0.2 to 0.8. The changes of the above interfacial parameters can be approximated by linear relationships. In addition, the energy absorption of fractured PVB laminated glass decreases significantly with increasing moisture content due to the degradation of PVB interlayer performance and reduced interfacial adhesion. Therefore, the effect of moisture content should be considered in the practical design of certain laminated glass applications to ensure post-fracture load-bearing capacity.

Freie Schlagworte: PVB-laminated glass, Moisture, Interlayer property, Interfacial adhesion, Cohesive zone model, Post-fracture behavior
ID-Nummer: 117381
Fachbereich(e)/-gebiet(e): 11 Fachbereich Material- und Geowissenschaften
11 Fachbereich Material- und Geowissenschaften > Materialwissenschaft
11 Fachbereich Material- und Geowissenschaften > Materialwissenschaft > Fachgebiet Mechanik Funktionaler Materialien
13 Fachbereich Bau- und Umweltingenieurwissenschaften
13 Fachbereich Bau- und Umweltingenieurwissenschaften > Institut für Statik und Konstruktion
Zentrale Einrichtungen
Zentrale Einrichtungen > Hochschulrechenzentrum (HRZ)
Zentrale Einrichtungen > Hochschulrechenzentrum (HRZ) > Hochleistungsrechner
Hinterlegungsdatum: 07 Aug 2023 07:23
Letzte Änderung: 26 Jan 2024 09:21
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