Primary Seal Deformation in Multipane Glazing Units
Abstract
:Featured Application
Abstract
1. Introduction
1.1. Issues and Limitations of IGU Durability
1.2. State of the Art
1.3. Study Aims
2. Methodology
- First, we determine the assumed quasi-steady-state temperature field of the analysed IGU structure. According to the prescribed climatic conditions (including solar radiation-induced internal heating), individual pane temperatures are determined. With all glass-pane temperatures known, the temperatures of other structural elements may be determined using linear interpolation, which is an approximation of the alternative 3D heat transfer analysis. The temperature field serves as the input data for the subsequent thermo-mechanical analysis.
- A 3D finite element method (FEM) thermo-mechanical IGU model is built, where the mechanical influence of the PIB on the global mechanical response of the structure is neglected. Although the same assumption was also applied by Stewart et al. in [25], PIB notably contributes to the rigidity of the seal system when cold. However, due to the exponential growth of vapour permeation with increasing temperature, the primary longevity-related issue is the summer, when the PIB is also soft and its mechanical rigidity really becomes negligible. Additional mechanical loads, e.g., wind load and self-weight, can be optionally added. The analyses give a reliable strain-stress state for all structural components, except for the omitted PIB. However, the results include the displacements of the glass panes and spacers to which the PIB is attached. These displacements are the input data for the identification of the type and severity of the PIB deformation modes, as presented in Figure 1.
- The extracted, numerically determined, displacements represent the boundary conditions for the shear and normal strain calculations of the PIB for all deformation modes separately.
- In accordance with the superposition principle, the analytically calculated strains for all deformation modes are summed into a strain tensor for each point of the PIB along the unit’s circumference and for all PIB layers. Lastly, an equivalent strain calculation serves for the final comparative evaluation.
3. Numerical and Analytical Calculations
3.1. Individual Pane Temperature Calculations
3.2. IGU Mechanical Analysis
3.3. Primary Sealant Mechanical Behaviour
4. Derivation of Analytical Expressions for Deformation Mode D
- : The function will not correct the far-field solution of the horizontal displacement of points lying on the boundary.
- : The perpendicularity of the parabola and circular arc on the surface.
- : The smooth transition of the deformed curve, which was initially between both regions.
- : The points that are close to the right edge cannot have a wide region of correction. Although on the surface the condition of perpendicularity must be fulfilled, below the surface the points have to reach a vertical position not far from the surface; the limit case is exactly the right edge, which is vertical by definition, hence the correction from the inclined upper surface to the vertical position has to be theoretically made at a single point, i.e., in the upper right corner.
- : Assuming the symmetry of the influential region is reasonable.
- : This equation defines the range of the function on the symmetry plane, but according to the new unknown , another condition is needed. The free surface far from the right edge is traction-free (and consequently has no strains) on the free surface, hence let us consider . However, the strains must take into consideration the new displacement field, which already includes the correction:
5. Results and Discussion
5.1. Reference Case
5.2. Analysis of the Multipane IGU
5.3. Practical Aspects
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Stetson, T.D. Improvement in Window Glass. U.S. Patent 49167, 1 August 1865. [Google Scholar]
- Van Den Bergh, S.; Hart, R.; Jelle, B.P.; Gustavsen, A. Window spacers and edge seals in insulating glass units: A state-of-the-art review and future perspectives. Energy Build. 2013, 58, 263–280. [Google Scholar] [CrossRef]
- Carbary, L.D.; Kimberlain, J.H. Structural silicone glazing: Optimizing future designs based on historical performances. Intell. Build. Int. 2018, 1–11. [Google Scholar] [CrossRef]
- Klosowski, J.; Wolf, A.T. Sealants in Construction, 2nd ed.; CRC Press: Boca Raton, FL, USA, 2016. [Google Scholar]
- Torok, G.R. Predicting Time-to-Fogging of Insulating Glass Units. In Proceedings of the 11th Canadian Conference on Building Science and Technology, Banff, Alberta, 21–23 March 2007. [Google Scholar]
- Garvin, S.L.; Wilson, J. Environmental conditions in window frames with double-glazing units. Constr. Build. Mater. 1998, 12, 289–302. [Google Scholar] [CrossRef]
- Burgess, J.C. The history, scientific basis and application of international IGU durability tests. Build. Environ. 1999, 34, 363–368. [Google Scholar] [CrossRef]
- Knorr, M.D.; Wieser, J.; Geertz, G.; Buddenberg, S.; Oechsner, M.; Wittwer, W. Gas loss of insulating glass units under load: Internal pressure controlled permeation test. Glass Struct. Eng. 2016, 1, 289–299. [Google Scholar] [CrossRef] [Green Version]
- Domjan, S.; Arkar, C.; Begelj, Z.; Medved, S. Evolution of all-glass nearly Zero Energy Buildings with respect to the local climate and free-cooling techniques. Build. Environ. 2019, 160, 106183. [Google Scholar] [CrossRef]
- Kralj, A.; Drev, M.; Znidarsic, M.; Cerne, B.; Hafner, J.; Jelle, B.P. Investigations of 6-pane glazing: Properties and possibilities. Energy Build. 2019, 190, 61–68. [Google Scholar] [CrossRef]
- Wolf, A.T. Silicone Sealed Insulating Glass Units. In Proceedings of the ISAAG—International Symposium on the Application of Architectural Glass-Engineering and Architectural Design of Glass, Munich, Germany, 15–16 November 2004. [Google Scholar]
- Wolf, A.T.; Waters, L.J. Factors governing the life expectancy of dual-sealed insulating glass units. Constr. Build. Mater. 1993, 7, 101–107. [Google Scholar] [CrossRef]
- Foraboschi, P. Analytical modeling to predict thermal shock failure and maximum temperature gradients of a glass panel. Mater. Des. 2017, 134, 301–319. [Google Scholar] [CrossRef]
- Scherer, C.; Semar, E.; Wittwer, W.; Wolthaus, J.; Scherer, T. A New Reactive Thermoplastic Spacer with Excellent Durable Energy Efficiency for Structural Glazing Façades. Chall. Glass Conf. Proc. 2016, 5, 233–248. [Google Scholar] [CrossRef]
- Asphaug, S.K.; Jelle, B.P.; Gullbrekken, L.; Uvslokk, S. Accelerated ageing and durability of double-glazed sealed insulating window panes and impact on heating demand in buildings. Energy Build. 2016, 116, 395–402. [Google Scholar] [CrossRef]
- IGMA-GANA. TB-1250-XX, Polyisobutylene (PIB) Primary Sealant; Insulating Glass Manufacturers Alliance, Glass Association of North America: Ottawa, ON, Canada, 2017. [Google Scholar]
- Wolf, A. New development in the field of insulating glass units. Constr. Build. Mater. 1988, 2, 134–144. [Google Scholar] [CrossRef]
- Wolf, A.T. Studies into the Life-Expectancy of Insulating Glass Units. Build. Environ. 1992, 27, 305–319. [Google Scholar] [CrossRef]
- Ihara, T.; Gustavsen, A.; Jelle, B.P. Sealant aging and its correlation with facade reflectance. Constr. Build. Mater. 2014, 69, 390–402. [Google Scholar] [CrossRef]
- Song, S.Y.; Jo, J.H.; Yeo, M.S.; Kim, Y.D.; Song, K.D. Evaluation of inside surface condensation in double glazing window system with insulation spacer: A case study of residential complex. Build. Environ. 2007, 42, 940–950. [Google Scholar] [CrossRef]
- Park, S.; Song, S.Y. Thermally improved triple-glazing windows considering the condensation resistance (TDR) and thermal transmittance (U-factor) to meet Korean standards. Build. Simul. China 2019, 12, 87–98. [Google Scholar] [CrossRef]
- Wolf, A.T. Design and Material Selection Factors That Influence the Service-Life and Utility Value of Dual-Sealed Insulating Glass Units; Dow Corning SA: Barcelona, Spain, 2002. [Google Scholar]
- Grynning, S.; Jelle, B.P.; Gustavsen, A.; Gao, T.; Time, B. Multilayer glazing technologies: Key performance and future perspectives. In Proceedings of the CLIMA 2016—12th REHVA World Congress, Aalborg, Denmark, 22–25 May 2016; Volume 2. [Google Scholar]
- Hagl, A. Experimental and Numerical Analysis of Edge Seal Spacers of Insulated Glass Units for Structural Sealant Glazing Applications. In Challenging Glass 3; Delft University Press: Delft, The Netherlands, 2012; pp. 221–234. [Google Scholar] [CrossRef]
- Stewart, J.; Brien, W.; Wolf, A. Quantification of Differential Thermal Movement in Insulating Glass Edge Seals Using Finite Element Analysis. J. Astm Int. 2006, 3, 1–7. [Google Scholar] [CrossRef]
- Rosendahl, P.L.; Staudt, Y.; Schneider, A.P.; Schneider, J.; Becker, W. Nonlinear elastic finite fracture mechanics: Modeling mixed-mode crack nucleation in structural glazing silicone sealants. Mater. Des. 2019, 182, 108057. [Google Scholar] [CrossRef]
- Window. Window 7.4 Manual, Lawrence Berkeley National Laboratory; Window: Berkeley, CA, USA, 2016. [Google Scholar]
- van Honschoten, J.W.; Tas, N.R.; Elwenspoek, M. The profile of a capillary liquid bridge between solid surfaces. Am. J. Phys. 2010, 78, 277–286. [Google Scholar] [CrossRef]
- Abaqus. Abaqus 6.12 Documentation, Dassault Systemes. 2012. Available online: http://130.149.89.49:2080/v6.12/index.html (accessed on 19 February 2020).
- SIKA. SIKA Facade Systems: Sealing and Bonding in Facades—Specification Guide; Innovation and Consistency: Zurich, Switzerland, 2016. [Google Scholar]
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Starman, B.; Maček, A.; Rus, P.; Obid, Š.; Kralj, A.; Halilovič, M. Primary Seal Deformation in Multipane Glazing Units. Appl. Sci. 2020, 10, 1390. https://doi.org/10.3390/app10041390
Starman B, Maček A, Rus P, Obid Š, Kralj A, Halilovič M. Primary Seal Deformation in Multipane Glazing Units. Applied Sciences. 2020; 10(4):1390. https://doi.org/10.3390/app10041390
Chicago/Turabian StyleStarman, Bojan, Andraž Maček, Primož Rus, Štefan Obid, Aleš Kralj, and Miroslav Halilovič. 2020. "Primary Seal Deformation in Multipane Glazing Units" Applied Sciences 10, no. 4: 1390. https://doi.org/10.3390/app10041390
APA StyleStarman, B., Maček, A., Rus, P., Obid, Š., Kralj, A., & Halilovič, M. (2020). Primary Seal Deformation in Multipane Glazing Units. Applied Sciences, 10(4), 1390. https://doi.org/10.3390/app10041390