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Yellow River Diversion Project Use of Tunnel Boring Machines to Divert the Yellow River, China John Train & Philippa Reed
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Huang He Yellow River 5’464 km Average Discharge: 2,500 m³/s 37 kg/m 3 sediment 120million People 12 Hydroelectric Dams Shanxi Province Loess Plateau Sediment in the Water of the Yellow River
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Grand Main 44km 48m3/s South Main 100km, 20.5m3/s North Main 167km 22.2m3/s Routes US $1.93 billion Total of 5 TBM Tunnels
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Tunnel Details # Tunnel Length (km) Boring Diameter (m) Typical Rock TypeAdditional Information UCS (MPa) 16.64.92 Dipping Cambrian and Ordovician Limestone & Dolomite rock; Small flexures Occasional Faults Abundant Karsts in Ordovician Strata (often in-filled with Red Plastic Clay) 39-137 225.54.92 3144.9 4224.8 North: Dipping & folded Palaeozoic Dolomite limestone; South: Triassic sandstone & mudstone. Abundant and high-angled Faults Occasional Karsts Coal Seams Widespread water inflow (50l/s) 39-137 513.54.8 Limestone; Sandstone and Siltstone Faults: Occasional25-206 TBM
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Geology of Tunnel 4 Frequent variation rock strength Cavities in filled with wet clay Groundwater inflow Location of Jammed TBMBoreholes
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TBM Jam Inter-layer shear Zone Local Scratches: implying secondary compressive shearing Ground Stress Inter-layer shear zone Folding TBM Excavation
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Other Problems Huge energy requirements 3000KW for thrust Support trailer Difficult to transport Designed/made in the USA New infrastructure needed
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Tunnelling Methods New Austrian Tunnelling Method Good for short tunnels Varying cross-sections Drilling and Blasting Good for short tunnels Unsafe TBM and one pass lining Good for long tunnels Saves time
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Conclusions Project success Economically use of TBM TBMs are good in: Massive geology Long distances TBMs can be very economical Good quality geological information required Monitor conditions at the cutting face
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