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2017 | OriginalPaper | Buchkapitel

17. Epoxy Modifications—A Novel Sealing Material for Rehabilitation of Pipe Joints

verfasst von : C. Schoberleitner, T. Koch, V.-M. Archodoulaki

Erschienen in: Deformation and Fracture Behaviour of Polymer Materials

Verlag: Springer International Publishing

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Abstract

The main reason for the flexibilisation of this epoxy sealing material is the necessity of the materials ability to compensate relative movements between the pipe segments. Epoxy (EP) modified with ethylene–propylene–diene rubber (EPDM) powder, reactive liquid polymer (ATBN—amine-terminated butadiene–acrylonitrile), and epoxidised modifiers as well as two customised epoxies were analysed. Concerning the dynamic-mechanical analysis, the formulations with reactive liquid polymer (ATBN) or EPDM showed nearly constant mechanical properties in the application temperature range (7–17 ℃). The formulations with epoxidised modifier and the customised proprietary epoxy showed a slope in this temperature range. Generally the glass transition temperature decreased and thus a change of the materials operating temperature range occurred. Thermogravimetric analysis showed that all epoxy modifications absorb water after immersion. Due to the water absorption a plasticisation effect was observed. Further changes in the materials operating temperature ranges have to be considered. A comparison with neat epoxy shows for all formulations a reduction of the mechanical properties like tensile strength and modulus of elasticity. However, no enhancement of strain at break could be achieved by modifying with EPDM powder. The modified epoxy EP/ATBN 2 as well as the customised epoxy C-EP 1 fulfilled the requirement of pressure resistance up to 1 MPa. The measured major strain was negligible. Results of the pressure and inclination test at the fibre concrete test rig show, that the tightness as well as the flexibility (inclination) of the repaired socket can be guaranteed up to a pressure of 1.3 MPa. Finally, a pressure test in a first field application confirmed the suitability of the epoxy based material C-EP 1 for use as a robot processed sealing material.

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Literatur
1.
Zurück zum Zitat Werderitsch, M.: Personal communication, 25th Aug. 2010 Werderitsch, M.: Personal communication, 25th Aug. 2010
2.
Zurück zum Zitat Kottmann, A.: Rohre und Rohrwerkstoffe in der Gas- und Wasserversorgung. Vulkan-Verlag, Essen (1997) Kottmann, A.: Rohre und Rohrwerkstoffe in der Gas- und Wasserversorgung. Vulkan-Verlag, Essen (1997)
3.
Zurück zum Zitat Burn, S., DeSilva, D., Eiswirth, M., Hunaidi, O., Speers, A., Thornton, J.: Pipe leakage—Future challenges and sulutions. In: Pipes Wagga Wagga (Wagga Wagga, 12.–14.10.1999). Wagga Wagga (1999), p. 18 Burn, S., DeSilva, D., Eiswirth, M., Hunaidi, O., Speers, A., Thornton, J.: Pipe leakage—Future challenges and sulutions. In: Pipes Wagga Wagga (Wagga Wagga, 12.–14.10.1999). Wagga Wagga (1999), p. 18
4.
Zurück zum Zitat Rajani, B., Zhan, C., Kuraoka, S.: Pipe-soil interaction analysis of jointed water mains. Can. Geotech. J. 33, 393–404 (1996)CrossRef Rajani, B., Zhan, C., Kuraoka, S.: Pipe-soil interaction analysis of jointed water mains. Can. Geotech. J. 33, 393–404 (1996)CrossRef
5.
Zurück zum Zitat Hunaidi, O., Chu, W., Wang, A., Guan, W.: Detecting leaks in plastic pipes. J. Am. Water Works Assoc. 92, 82–94 (2000) Hunaidi, O., Chu, W., Wang, A., Guan, W.: Detecting leaks in plastic pipes. J. Am. Water Works Assoc. 92, 82–94 (2000)
6.
Zurück zum Zitat Werderitsch, M.: Personal communication, 17th Oct. 2012 Werderitsch, M.: Personal communication, 17th Oct. 2012
7.
Zurück zum Zitat Schoberleitner, C., Archodoulaki, V.-M., Koch, T., Lüftl, S., Mateos, L.A., Vincze, M., Werderitsch, M., Kuschnig, G.: Development of a sealing material and robot for automatic socket rehabilitation of grey cast iron pipes in drinking water supply systems. Water Sci. Technol. Water Supply 13, 924–931 (2013)CrossRef Schoberleitner, C., Archodoulaki, V.-M., Koch, T., Lüftl, S., Mateos, L.A., Vincze, M., Werderitsch, M., Kuschnig, G.: Development of a sealing material and robot for automatic socket rehabilitation of grey cast iron pipes in drinking water supply systems. Water Sci. Technol. Water Supply 13, 924–931 (2013)CrossRef
8.
Zurück zum Zitat Jansen, B.J.P., Tamminga, K.Y., Meijer, H.E.H., Lemstra, P.J.: Preparation of thermoset rubbery epoxy particles as novel toughening modifiers for glassy epoxy resins. Polymer 40, 5601–5607 (1999)CrossRef Jansen, B.J.P., Tamminga, K.Y., Meijer, H.E.H., Lemstra, P.J.: Preparation of thermoset rubbery epoxy particles as novel toughening modifiers for glassy epoxy resins. Polymer 40, 5601–5607 (1999)CrossRef
9.
Zurück zum Zitat Chikhi, N., Fellahi, S., Bakar, M.: Modification of epoxy resin using reactive liquid (ATBN) rubber. Eur. Polym. J. 38, 251–264 (2002)CrossRef Chikhi, N., Fellahi, S., Bakar, M.: Modification of epoxy resin using reactive liquid (ATBN) rubber. Eur. Polym. J. 38, 251–264 (2002)CrossRef
10.
Zurück zum Zitat Ikram, S., Munir, A.: Mechanical and thermal properties of chemically modified epoxy resin. Open J. Synth. Theor. Appl. 1, 36–43 (2012)CrossRef Ikram, S., Munir, A.: Mechanical and thermal properties of chemically modified epoxy resin. Open J. Synth. Theor. Appl. 1, 36–43 (2012)CrossRef
11.
Zurück zum Zitat Park, S.J., Jin, F.L., Lee, J.R.: Thermal and mechanical properties of tetrafunctional epoxy resin toughened with epoxidized soybean oil. Mater. Sci. Eng., A 374, 109–114 (2004)CrossRef Park, S.J., Jin, F.L., Lee, J.R.: Thermal and mechanical properties of tetrafunctional epoxy resin toughened with epoxidized soybean oil. Mater. Sci. Eng., A 374, 109–114 (2004)CrossRef
12.
Zurück zum Zitat Schoberleitner, C., Archodoulaki, V.-M., Koch, T., Lüftl, S., Werderitsch, M., Kuschnig, G.: Developing a sealing material: Effect of epoxy modification on specific physical and mechanical properties. Materials 6, 5490–5501 (2013)CrossRef Schoberleitner, C., Archodoulaki, V.-M., Koch, T., Lüftl, S., Werderitsch, M., Kuschnig, G.: Developing a sealing material: Effect of epoxy modification on specific physical and mechanical properties. Materials 6, 5490–5501 (2013)CrossRef
13.
Zurück zum Zitat de Nève, B., Shanahan, M.E.R.: Effects of humidity on an epoxy adhesive. Int. J. Adhes. Adhes. 12, 191–196 (1992)CrossRef de Nève, B., Shanahan, M.E.R.: Effects of humidity on an epoxy adhesive. Int. J. Adhes. Adhes. 12, 191–196 (1992)CrossRef
14.
Zurück zum Zitat Zhou, J., Lucas, J.P.: Hygrothermal effects of epoxy resin. Part II: Variations of glass transition temperature. Polymer 40, 5513–5522 (1999)CrossRef Zhou, J., Lucas, J.P.: Hygrothermal effects of epoxy resin. Part II: Variations of glass transition temperature. Polymer 40, 5513–5522 (1999)CrossRef
15.
Zurück zum Zitat Balakrishnan, S., Start, P.R., Raghavan, D., Hudson, S.D.: The influence of clay and elastomer concentration on the morphology and fracture energy of preformed acrylic rubber dispersed clay filled epoxy nanocomposites. Polymer 46, 11255–11262 (2005)CrossRef Balakrishnan, S., Start, P.R., Raghavan, D., Hudson, S.D.: The influence of clay and elastomer concentration on the morphology and fracture energy of preformed acrylic rubber dispersed clay filled epoxy nanocomposites. Polymer 46, 11255–11262 (2005)CrossRef
16.
Zurück zum Zitat Miwa, M., Takeno, A., Hara, K., Watanabe, A.: Volume fraction and temperature dependence of mechanical properties of silicone rubber particulate/epoxy blends. Composites 26, 371–377 (1995)CrossRef Miwa, M., Takeno, A., Hara, K., Watanabe, A.: Volume fraction and temperature dependence of mechanical properties of silicone rubber particulate/epoxy blends. Composites 26, 371–377 (1995)CrossRef
17.
Zurück zum Zitat Moy, P., Karasz, F.E.: Epoxy–water interactions. Polym. Eng. Sci. 20, 315–319 (1978)CrossRef Moy, P., Karasz, F.E.: Epoxy–water interactions. Polym. Eng. Sci. 20, 315–319 (1978)CrossRef
18.
Zurück zum Zitat Zhou, J., Lucas, J.P.: Hygrothermal effects of epoxy resin. Part I: The nature of water in epoxy. Polymer 40, 5505–5512 (1999)CrossRef Zhou, J., Lucas, J.P.: Hygrothermal effects of epoxy resin. Part I: The nature of water in epoxy. Polymer 40, 5505–5512 (1999)CrossRef
Metadaten
Titel
Epoxy Modifications—A Novel Sealing Material for Rehabilitation of Pipe Joints
verfasst von
C. Schoberleitner
T. Koch
V.-M. Archodoulaki
Copyright-Jahr
2017
DOI
https://doi.org/10.1007/978-3-319-41879-7_17

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