A Practical Construction Technique to Enhance the Performance of Rock Bolts in Tunnels
Commenced in January 2007
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Edition: International
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A Practical Construction Technique to Enhance the Performance of Rock Bolts in Tunnels

Authors: O. Chaudhari, A. N. Ghafar, G. Zirgulis, M. Mousavi, T. Ellison, S. Pousette, P. Fontana

Abstract:

In Swedish tunnel construction, a critical issue that has been repeatedly acknowledged is corrosion and, consequently, failure of the rock bolts in rock support systems. The defective installation of rock bolts results in the formation of cavities in the cement mortar that is regularly used to fill the area under the dome plates. These voids allow for water-ingress to the rock bolt assembly, which results in corrosion of rock bolt components and eventually failure. In addition, the current installation technique consists of several manual steps with intense labor works that are usually done in uncomfortable and exhausting conditions, e.g., under the roof of the tunnels. Such intense tasks also lead to a considerable waste of materials and execution errors. Moreover, adequate quality control of the execution is hardly possible with the current technique. To overcome these issues, a non-shrinking/expansive cement-based mortar filled in the paper packaging has been developed in this study which properly fills the area under the dome plates without or with the least remaining cavities, ultimately that diminishes the potential of corrosion. This article summarizes the development process and the experimental evaluation of this technique for the installation of rock bolts. In the development process, the cementitious mortar was first developed using specific cement and shrinkage reducing/expansive additives. The mechanical and flow properties of the mortar were then evaluated using compressive strength, density, and slump flow measurement methods. In addition, isothermal calorimetry and shrinkage/expansion measurements were used to elucidate the hydration and durability attributes of the mortar. After obtaining the desired properties in both fresh and hardened conditions, the developed dry mortar was filled in specific permeable paper packaging and then submerged in water bath for specific intervals before the installation. The tests were enhanced progressively by optimizing different parameters such as shape and size of the packaging, characteristics of the paper used, immersion time in water and even some minor characteristics of the mortar. Finally, the developed prototype was tested in a lab-scale rock bolt assembly with various angles to analyze the efficiency of the method in real life scenario. The results showed that the new technique improves the performance of the rock bolts by reducing the material wastage, improving environmental performance, facilitating and accelerating the labor works, and finally enhancing the durability of the whole system. Accordingly, this approach provides an efficient alternative for the traditional way of tunnel bolt installation with considerable advantages for the Swedish tunneling industry.

Keywords: corrosion, durability, mortar, rock bolt

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References:


[1] G. Song, W. Li, B. Wang, S. C. M. Ho, A review of rock bolt monitoring using smart sensors, Sensors. 17 (2017) 776.
[2] E. B. Stillborg, Professional user’s handbook for rock bolting, Trans Tech publication (1986).
[3] I. Thenevin, L. Blanco-Martín, F. Hadj-Hassen, J. Schleifer, Z. Lubosik, A. Wrana, Laboratory pull-out tests on fully grouted rock bolts and cable bolts: Results and lessons learned, Journal of Rock Mechanics and Geotechnical Engineering. 9 (2017) 843–855.
[4] P. Gray, Bearing plates: new developments in the unsung heroes of ground support, in: Coal 1998: Coal Operators’ Conference, University of Wollongong & the Australasian Institute of Mining and Metallurgy, 1998.
[5] R. Hassell, E. Villaescusa, A. Thompson, Testing and evaluation of corrosion on cable bolt anchors, in: Golden Rocks 2006: The 41st U.S. Symposium on Rock Mechanics (USRMS), Golden, Colorado, (2006).
[6] A. Crosky, B. Smith, B. Hebblewhite, Failure of rockbolts in underground mines in Australia, Practical Failure Analysis. 3 (2003) 70–78.
[7] E. Villalba, A. Atrens, Hydrogen embrittlement and rock bolt stress corrosion cracking, Engineering Failure Analysis. 16 (2009) 164–175.
[8] C. C. Li, G. Kristjansson, A. H. Høien, Critical embedment length and bond strength of fully encapsulated rebar rockbolts, Tunnelling and Underground Space Technology. 59 (2016) 16–23.
[9] T. Ellison, Improved method for piling of rock bolt - a feasibility study, Vinnova. Sweden, (2018).
[10] Standard SS-EN-197-1, Cement - part 1: Composition and claims for ordinary cement, (2011).
[11] Standard SS-EN 196-3, Methods of testing Cement- part 3: Determination of binding time and volume resistance, (2005).
[12] Standard SS-EN 1015-3 Methods of test for mortar for masonry - part 3: Fresh mortar - Determination of consistency with set cone, (2006).
[13] Standard SS-EN 445, Grout for prestressing tendons - Test methods, (2007).
[14] Standard SS-EN 196-1, Methods of testing Cement- part 1: Determination of strength, (2016).
[15] Standard SS-EN 196-11, Methods of testing Cement- part 11: Heat development - Isothermal calorimetric method, (2011).
[16] J. Hu, Z. Ge, K. Wang, Influence of cement fineness and water-to-cement ratio on mortar early-age heat of hydration and set times, Construction and Building Materials. 50 (2014) 657–663.
[17] V. S. Ramachandran, Concrete admixtures handbook - Properties, Science, and Technology, Noyes Publications, (1996).
[18] P.-C. Aïtcin, R. J. Flatt, Science and Technology of Concrete Admixtures, Woodhead Publishing, (2015).
[19] G. Le Saoût, B. Lothenbach, A. Hori, T. Higuchi, F. Winnefeld, Hydration of Portland cement with additions of calcium sulfoaluminates, Cement and Concrete Research. 43 (2013) 81–94.
[20] A. Mardani-Aghabaglou, H. T. Öztürk, M. Kankal, K. Ramyar, Assessment and prediction of cement paste flow behavior; Marsh-funnel flow time and mini-slump values, Construction and Building Materials. 301 (2021) 124072.
[21] P. Chaunsali, P. Mondal, Influence of calcium sulfoaluminate (CSA) cement content on expansion and hydration behavior of various ordinary portland cement-CSA blends, Journal of the American Ceramic Society. 98 (2015) 2617–2624.
[22] M. Stankovská, J. Gigac, M. Fišerová, E. Opálená, Relationship between structural parameters and water absorption of bleached softwood and hardwood kraft pulps, Wood Research. 64 (2019) 12.