References
- Burgess, N., Fagents, J. and Paterson, J. (2002), "Northern line tunnel reconstruction at old street", Proceedings of the ICE, Transport, 153(1).
- Castings Technology International (2003), CTI-L001-N416-DTAAWP2-TUN-RPT-00001 - Mechanical Evaluation of Properties of Tunnel Segment Castings.
- Cheung, L.K.L. (2008), Fibre optic strain measurement for monitoring tunnel lining movements, M Phil Dissertation, Cambridge.
- Curtis, D.J. (1976), "Discussion on the circular tunnel in elastic ground", Geotechnique, 26(1), 231-237. https://doi.org/10.1680/geot.1976.26.1.231
- Day, J.R. and Reed, J. (2008), The story of London's underground, Capital Transport Publishing.
- Duddeck, H. and Erdmann, J. (1985), "On structural design models for tunnels in soft soil", Underg. Space, 9, 245-259.
- Follenfant, H.G. (1974), Reconstructing London's Underground, London Transport, London, England.
- Hight, D.W., Gasparre, A., Nishimura, S., Minh, N.A., Jardine, R.J. and Coop, M.R. (2007), "Characteristics of the London clay from the terminal 5 site at heathrow airport", Geotechnique, 57(1), 3-18. https://doi.org/10.1680/geot.2007.57.1.3
- Hight, D.W., McMillan, F., Powell, J.J.M., Jardine, R.J. and Allenou, C.P. (2003), Some characteristics of London clay, Characterisation and engineering properties of natural soils (eds T. S. Tan, K. K. Phoon, D.W. Hight and S. Leroueil).
- Lankelma/NGI (2005), LAL-L001-N416-DTAAWP2-TUN-RPT-00001 - Special Laboratory Tests on London Clay.
- Lankelma/SETech (2006), LAL-L001-N416-DTAAWP2-TUN-RPT-00002 - Tube Lines CPT Testing and Sampling Interpretive Report.
- London Underground (2008), Standard 1-521: Safety Decision Making.
- London Underground (2007), Standard 1-055 A1: Civil Engineering - Deep Tube Tunnels and Shafts.
- Mair, R.J. (1999), "Design and construction of tunnels in soft ground", Proceedings of the 12th European Conference on Soil Mechanics and Geotechnical Engineering, Amsterdam, June, 1915-1921.
- Manex UK (2004), Risk Based Evaluation of Deep Tube Tunnel Assessment Techniques.
- Morgan, H.D. (1961), "A contribution to the analysis of stress in a circular tunnel", Geotechnique, 11, 37-46. https://doi.org/10.1680/geot.1961.11.1.37
- Muir Wood, A.M. (1975), "The circular tunnel in elastic ground", Geotechnique, 25, 115-127. https://doi.org/10.1680/geot.1975.25.1.115
- Transport for London (2002), Amended and Restated PPP Contract between London Underground Limit and Infraco JNP Limited, 31st Dec.
- TSC Inspection Systems (2004), TSC-L001-N416-DTAAWP2-TUN-RPT-00001 -Measurement of Stress in Tunnel Liners Stages 1, 2 and 3.
- Tube Lines (2006), Standard TLL-ENG-S3466-A1 : Deep tunnels and Shafts - Assessment.
- Tube Lines (2007a), TLL-L001-N416-DTAAWP2-TUN-RPT-00001 - Soil Parameters Report.
- Tube Lines (2007b), TLL-L001-N416-DTAAWP2-TUN-RPT-00013 - Historical Study Report.
- Tube Lines (2008a), TLL-L001-N416-DTAAWP2-TUN-RPT-00002 - Cast Iron Tunnel and Shafts Report.
- Tube Lines (2008b), TLL-L001-N416-DTAAWP2-TUN-RPT-00003 - Cast Iron Openings Report.
- Tube Lines (2008c), TLL-L001-N416-DTAAWP2-TUN-RPT-00004 - Expanded Concrete Linings Report.
- Tube Lines (2008d), TLL-L001-N416-DTAAWP2-TUN-RPT-00019 - Cast Iron Coring Report.
- Wolmar, C. (2005), The Subterranean Railway: How the London Underground Was Built and How it Changed the City Forever, Atlantic Books.
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