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Prestressed Concrete-Lined Pressure Tunnels
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Prestressed Concrete-Lined Pressure Tunnels : Towards Improved Safety and Economical Design

Book Details

Format Hardback or Cased Book
ISBN-10 1138373346
ISBN-13 9781138373341
Publisher Taylor & Francis Ltd
Imprint CRC Press
Country of Manufacture GB
Country of Publication GB
Publication Date Sep 27th, 2018
Print length 148 Pages
Weight 430 grams
Product Classification: Structural engineering
Ksh 31,500.00
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Hydropower can be a source of sustainable energy, provided environmental considerations are taken into account and economic aspects of hydropower design are addressed. Using concrete-lined pressure tunnels instead of steel pipes may be economically attractive but may also have limitations due to the low tensile strength of concrete. This research indicates that prestressing the concrete lining by grouting the circumferential gap between the concrete lining and the rock mass at high pressure can enhance the tunnel bearing capacity and increases safety. Moreover, grouting will seal off the seepage into the rock mass, which is favourable for tunnel stability.

Hydropower can be a source of sustainable energy, provided environmental considerations are taken into account and economic aspects of hydropower design are appropriately addressed. Using concrete-lined pressure tunnels instead of steel pipes may be economically attractive but may also have limitations due to the low tensile strength of concrete.

Cracking in concrete tunnel linings can lead to loss of energy production, extensive repairs, and even accidents. One of the techniques available to improve the bearing capacity of pressure tunnels is through prestressing the concrete lining by grouting the circumferential gap between the concrete lining and the rock mass at high pressure. A classical approach to determine the bearing capacity of such tunnels is based on the theory of elasticity, assuming impervious concrete. In this research, a new concept is introduced to assess the effect of seepage on the bearing capacity of pressure tunnels. Also, an innovative approach is proposed to explore the effects of the in-situ stress ratio on the lining performance. Distinction is made based on whether the rock mass behaves as an elasto-plastic isotropic, or elastic anisotropic material. Furthermore, a simplified method is introduced to quantify seepage associated with cracks around the tunnel, which is useful for assessing tunnel stability.


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