2021 | OriginalPaper | Buchkapitel
Tipp
Weitere Kapitel dieses Buchs durch Wischen aufrufen
Erschienen in:
Full-Scale Field Tests of Different Types of Piles
All types of engineers are required to have sophisticated understanding and knowledge of subsurface conditions to undertake their projects. Soil analysis is more complicated than analysis of other materials because of soil’s non-continuum characteristic.
Bitte loggen Sie sich ein, um Zugang zu diesem Inhalt zu erhalten
Sie möchten Zugang zu diesem Inhalt erhalten? Dann informieren Sie sich jetzt über unsere Produkte:
Anzeige
Zurück zum Zitat Abu-Farsakh, M. Y., Haque, M. N., & Tsai, C. (2017). A full-scale field study for performance evaluation of axially loaded large-diameter cylinder piles with pipe piles and PSC piles. Acta Geotechnica, 12(4), 753–772. CrossRef Abu-Farsakh, M. Y., Haque, M. N., & Tsai, C. (2017). A full-scale field study for performance evaluation of axially loaded large-diameter cylinder piles with pipe piles and PSC piles.
Acta Geotechnica,
12(4), 753–772.
CrossRef
Zurück zum Zitat Alansari, O. M. A. (1999). Capacity and behavior of steel pipe piles in dry sand (Doctoral dissertation). Alansari, O. M. A. (1999).
Capacity and behavior of steel pipe piles in dry sand (Doctoral dissertation).
Zurück zum Zitat Alleyne, D., & Cawley, P. (1995). The long range detection of corrosion in pipes using Lamb waves. IEE Colloquium (Digest), 240, 6. Alleyne, D., & Cawley, P. (1995). The long range detection of corrosion in pipes using Lamb waves.
IEE Colloquium (Digest),
240, 6.
Zurück zum Zitat American Concrete Institute. (2006). Guide for the design and construction of structural concrete reinforced with FRP bars (ACI 440.1R-06s). American Concrete Institute. (2006).
Guide for the design and construction of structural concrete reinforced with FRP bars (ACI 440.1R-06s).
Zurück zum Zitat Ashford, S. A., & Jakrapiyanun, W. (2001). Drivability of glass FRP composite piling. Journal of Composites for Construction, 5(1), 58–60. CrossRef Ashford, S. A., & Jakrapiyanun, W. (2001). Drivability of glass FRP composite piling.
Journal of Composites for Construction,
5(1), 58–60.
CrossRef
Zurück zum Zitat ASTM International. (1994). Standard test methods for deep foundation under static load compressive load (ASTM-D-1143/D-07) (pp. 1–15). ASTM International. (1994).
Standard test methods for deep foundation under static load compressive load (ASTM-D-1143/D-07) (pp. 1–15).
Zurück zum Zitat ASTM International. (1995a). Standard test methods for deep foundations under static axial tensile load (ASTM-D-3689/D-07) (pp. 1–13). ASTM International. (1995a).
Standard test methods for deep foundations under static axial tensile load (ASTM-D-3689/D-07) (pp. 1–13).
Zurück zum Zitat ASTM International. (1995b). Standard test methods for deep foundations under lateral load (ASTM-D-3966/D-07) (pp. 1–18). ASTM International. (1995b).
Standard test methods for deep foundations under lateral load (ASTM-D-3966/D-07) (pp. 1–18).
Zurück zum Zitat ASTM International. (2007a). Standard test methods for direct shear test of soils under consolidated drained conditions (ASTM-D-3080–98) (pp. 1–6). ASTM International. (2007a).
Standard test methods for direct shear test of soils under consolidated drained conditions (ASTM-D-3080–98) (pp. 1–6).
Zurück zum Zitat ASTM International. (2007b). Standard test methods for one-dimensional consolidation properties of soils (ASTM-D-2435–06) (pp. 1–10). ASTM International. (2007b).
Standard test methods for one-dimensional consolidation properties of soils (ASTM-D-2435–06) (pp. 1–10).
Zurück zum Zitat Balasubramaniam, A., Oh, E., & Phienwej, N. (2009). Bored and driven pile testing in Bangkok sub-soils. Journal of Lowland Technology International, 11(1), 29–36. Balasubramaniam, A., Oh, E., & Phienwej, N. (2009). Bored and driven pile testing in Bangkok sub-soils.
Journal of Lowland Technology International,
11(1), 29–36.
Zurück zum Zitat Bergado, D., Ruenkrairergsa, T., Taesiri, Y., & Balasubramaniam, A. (1999). Deep soil mixing used to reduce embankment settlement. Ground Improvement, 3, 145–162. CrossRef Bergado, D., Ruenkrairergsa, T., Taesiri, Y., & Balasubramaniam, A. (1999). Deep soil mixing used to reduce embankment settlement.
Ground Improvement,
3, 145–162.
CrossRef
Zurück zum Zitat Boathong, P., Jamsawang, P., & Mairaing, W. (2014). Lateral movement of slope stabilized with DCM column rows. Electron Journal Geotechnical Engineering, 19(H), 1647–1664. Boathong, P., Jamsawang, P., & Mairaing, W. (2014). Lateral movement of slope stabilized with DCM column rows.
Electron Journal Geotechnical Engineering,
19(H), 1647–1664.
Zurück zum Zitat Buathong, P., & Mairaing, W. (2010). Failure behavior of large drainage canal reinforced by DCM piles. In Proceedings of the EIT-JSCE Joint International Symposium. Bangkok, Thailand. Buathong, P., & Mairaing, W. (2010). Failure behavior of large drainage canal reinforced by DCM piles. In
Proceedings of the EIT-JSCE Joint International Symposium. Bangkok, Thailand.
Zurück zum Zitat Bowles, J. E. (1977). Foundation analysis and design (3rd ed.). New York, NY: McGraw-Hill Book Company. Bowles, J. E. (1977).
Foundation analysis and design (3rd ed.). New York, NY: McGraw-Hill Book Company.
Zurück zum Zitat Brinch-Hansen, J. (1963). Hyperbolic stress-strain response: Cohesive soils discussion. American Society of Civil Engineers Journal of Soil Mechanics and Foundation Division, 89(SM4), 241–242. Brinch-Hansen, J. (1963). Hyperbolic stress-strain response: Cohesive soils discussion.
American Society of Civil Engineers Journal of Soil Mechanics and Foundation Division,
89(SM4), 241–242.
Zurück zum Zitat Brown, D. A., O’Neill, M., Hoit, M., McVay, M., El Naggar, M., & Chakraborty, S. (2001). Static and dynamic lateral loading of pile groups. In National Cooperative Highway Research Program Report (pp. 1–57). Brown, D. A., O’Neill, M., Hoit, M., McVay, M., El Naggar, M., & Chakraborty, S. (2001).
Static and dynamic lateral loading of pile groups. In National Cooperative Highway Research Program Report (pp. 1–57).
Zurück zum Zitat Bustamante, M., & Gianeselli, L. (1982). Pile bearing capacity prediction by means of static penetrometer CPT. Paper presented at the Proceedings of the 2nd European Symposium on Penetration Testing. Bustamante, M., & Gianeselli, L. (1982).
Pile bearing capacity prediction by means of static penetrometer CPT. Paper presented at the Proceedings of the 2nd European Symposium on Penetration Testing.
Zurück zum Zitat Butler, H. D., & Hoy, H. E. (1976). The Texas quick-load method for foundation load testing, user’s manual, NASA STI/Recon Technical Report N. (p. 77). Butler, H. D., & Hoy, H. E. (1976).
The Texas quick-load method for foundation load testing, user’s manual, NASA STI/Recon Technical Report N. (p. 77).
Zurück zum Zitat Casagrande, A. (1936). The determination of the pre-consolidation load and its practical. Paper presented at the 1st International Soil Mechanics and Foundation Engineering Conference, Cambridge, MA. Casagrande, A. (1936).
The determination of the pre-consolidation load and its practical. Paper presented at the 1st International Soil Mechanics and Foundation Engineering Conference, Cambridge, MA.
Zurück zum Zitat Chen, J.-J., Wang, J.-H., Ke, X., & Jeng, D.-S. (2011). Behavior of large-diameter rock-socketed piles under lateral loads. International Journal of Offshore and Polar Engineering, 21(04). Chen, J.-J., Wang, J.-H., Ke, X., & Jeng, D.-S. (2011). Behavior of large-diameter rock-socketed piles under lateral loads.
International Journal of Offshore and Polar Engineering,
21(04).
Zurück zum Zitat Cheney, R. S., & Chassie, R. G. (2000). Soils and foundations workshop manual. Washington, DC: Federal Highway Administration, National Highway Institute. Cheney, R. S., & Chassie, R. G. (2000).
Soils and foundations workshop manual. Washington, DC: Federal Highway Administration, National Highway Institute.
Zurück zum Zitat Cheng, A., & Cheng, A. (1999). Characterization of layered cylindrical structures using cylindrical waves. In Review of progress in quantitative nondestructive evaluation (pp. 223–230). Springer. Cheng, A., & Cheng, A. (1999). Characterization of layered cylindrical structures using cylindrical waves.
In Review of progress in quantitative nondestructive evaluation (pp. 223–230). Springer.
Zurück zum Zitat Chim-oye, W., & Marumdee, N. (2013). Estimation of uplift pile capacity in the sand layers. International Transaction Journal of Engineering, Management, & Applied Sciences & Technologies, 4(1), 57–65. Chim-oye, W., & Marumdee, N. (2013). Estimation of uplift pile capacity in the sand layers.
International Transaction Journal of Engineering, Management, & Applied Sciences & Technologies,
4(1), 57–65.
Zurück zum Zitat Chin, F. K. (1970). Estimation of the ultimate load of piles not carried to failure. In Proceedings of the 2nd Southeast Asian Conference on Soil Engineering (pp. 81–91). Chin, F. K. (1970). Estimation of the ultimate load of piles not carried to failure. In
Proceedings of the 2nd
Southeast Asian Conference on Soil Engineering (pp. 81–91).
Zurück zum Zitat Coulomb, C. A. (1776). Essai sur une application des regles des maximis et minimis a quelquels problemesde statique relatifs, a la architecture. Mem. Acad. Roy. Div., 7, 343–387. Coulomb, C. A. (1776). Essai sur une application des regles des maximis et minimis a quelquels problemesde statique relatifs, a la architecture.
Mem. Acad. Roy. Div.,
7, 343–387.
Zurück zum Zitat Craig, R. F. (1983). Soil mechanics (3rd ed.). Department of Civil Engineering, University of Dundee: Springer Science & Business Media LLC. CrossRef Craig, R. F. (1983).
Soil mechanics (3rd ed.). Department of Civil Engineering, University of Dundee: Springer Science & Business Media LLC.
CrossRef
Zurück zum Zitat Dapp, S., Muchard, M., & Brown, D. (2006). Experiences with base grouted drilled shafts in the southeastern United States. In Proceedings of the 10th International Conference on Piling and Deep Foundations (pp. 1553–1562). Amsterdam, the Netherlands: Deep Foundations Institute. Dapp, S., Muchard, M., & Brown, D. (2006). Experiences with base grouted drilled shafts in the southeastern United States. In
Proceedings of the 10th
International Conference on Piling and Deep Foundations (pp. 1553–1562). Amsterdam, the Netherlands: Deep Foundations Institute.
Zurück zum Zitat Davisson, M. T. (1972). High capacity piles. Proceedings of the Soil Mechanics Lecture Series on Innovations in Foundation Construction, American Society of Civil Engineers, IIIinois Section, Chicago, 81–112. Davisson, M. T. (1972).
High capacity piles. Proceedings of the Soil Mechanics Lecture Series on Innovations in Foundation Construction, American Society of Civil Engineers, IIIinois Section, Chicago, 81–112.
Zurück zum Zitat De Kuiter, J., & Beringen, F. (1979). Pile foundations for large North Sea structures. Marine Georesources & Geotechnology, 3(3), 267–314. CrossRef De Kuiter, J., & Beringen, F. (1979). Pile foundations for large North Sea structures.
Marine Georesources & Geotechnology,
3(3), 267–314.
CrossRef
Zurück zum Zitat DeBeer, E. E. (1970). Experimental determination of the shape factors and the bearing capacity factors of sand. Geotechnique, 20(4), 387–411. CrossRef DeBeer, E. E. (1970). Experimental determination of the shape factors and the bearing capacity factors of sand.
Geotechnique,
20(4), 387–411.
CrossRef
Zurück zum Zitat Dong, P., Qin, R., & Chen, Z. (2004). Bearing capacity and settlement of concrete-cored DCM pile in soft ground. Geotechnical and Geological Engineering, 22(1), 105–119. CrossRef Dong, P., Qin, R., & Chen, Z. (2004). Bearing capacity and settlement of concrete-cored DCM pile in soft ground.
Geotechnical and Geological Engineering,
22(1), 105–119.
CrossRef
Zurück zum Zitat Fam, A. Z. (2000). Concrete-filled fibre-reinforced polymer tubes for axial and flexural structural members (Doctoral thesis). Fam, A. Z. (2000).
Concrete-filled fibre-reinforced polymer tubes for axial and flexural structural members (Doctoral thesis).
Zurück zum Zitat Fellenius, B. H. and Samson, L. (1976). Testing of drivability of concrete piles and disturbance to sensitive clay. Canadian Geotechnical Journal, 13(2), (pp. 139–160). Fellenius, B. H. and Samson, L. (1976). Testing of drivability of concrete piles and disturbance to sensitive clay.
Canadian Geotechnical Journal, 13(2), (pp. 139–160).
Zurück zum Zitat Fellenius, B. H. (1991). Pile foundations. In H. S. Fang (Ed.), Foundation engineering handbook (pp. 511–536). New York, NY: Van Nostrand Reinhold Publisher. CrossRef Fellenius, B. H. (1991). Pile foundations. In H. S. Fang (Ed.),
Foundation engineering handbook (pp. 511–536). New York, NY: Van Nostrand Reinhold Publisher.
CrossRef
Zurück zum Zitat Fellenius, B. H. (2002). Determining the True Distributions of Load in Instrumented Piles (p. 116). Paper presented at the ASCE International Deep Foundation Congress: Geotechnical Special Publications. Fellenius, B. H. (2002).
Determining the True Distributions of Load in Instrumented Piles (p. 116). Paper presented at the ASCE International Deep Foundation Congress: Geotechnical Special Publications.
Zurück zum Zitat Fuller, F. M. (1983). Engineering of pile installations. McGraw-Hill Companies. Fuller, F. M. (1983).
Engineering of pile installations. McGraw-Hill Companies.
Zurück zum Zitat Goble, G., & Rausche, F. (1970). Pile load test by impact driving. Washington, DC: Paper presented at the Highway Research Board Annual Meeting. Goble, G., & Rausche, F. (1970).
Pile load test by impact driving. Washington, DC: Paper presented at the Highway Research Board Annual Meeting.
Zurück zum Zitat Goble, G. G., Likins Jr, G., & Rausche, F. (1975). Bearing capacity of piles from dynamic measurements (No. OHIO-DOT-05–75 Final Rpt.). United States Department of Transportation. Goble, G. G., Likins Jr, G., & Rausche, F. (1975).
Bearing capacity of piles from dynamic measurements (No. OHIO-DOT-05–75 Final Rpt.). United States Department of Transportation.
Zurück zum Zitat Gregersen, O. S., Aas, G., & Dibiagio, E. (1975). Load tests on friction piles in loose sand. International Journal of Rock Mechanics and Mining Sciences and Geomechanics Abstracts, 12(7), 98–98. CrossRef Gregersen, O. S., Aas, G., & Dibiagio, E. (1975). Load tests on friction piles in loose sand.
International Journal of Rock Mechanics and Mining Sciences and Geomechanics Abstracts,
12(7), 98–98.
CrossRef
Zurück zum Zitat Ground Engineering. (2003). Getting to grips with friction. Ground Engineering, Magazine of the British Geotechnical Association, 26, 20–21. Ground Engineering. (2003). Getting to grips with friction.
Ground Engineering,
Magazine of the British Geotechnical Association,
26, 20–21.
Zurück zum Zitat Guades, E., Aravinthan, T., Islam, M., & Manalo, A. (2012). A review on the driving performance of FRP composite piles. Composite Structures, 94(6), 1932–1942. CrossRef Guades, E., Aravinthan, T., Islam, M., & Manalo, A. (2012). A review on the driving performance of FRP composite piles.
Composite Structures,
94(6), 1932–1942.
CrossRef
Zurück zum Zitat Hannigan, P. J. (1990). Dynamic monitoring and analysis of pile foundation installations—Continuing education short course text. Deep Foundations Institute. Hannigan, P. J. (1990).
Dynamic monitoring and analysis of pile foundation installations—Continuing education short course text. Deep Foundations Institute.
Zurück zum Zitat Hannigan, P. J., Goble, G. G., Likins, G. E., & Rausche, F. (2006). Design and construction of driven pile foundations (FHWA-NHI-05-043) (FHWA-NHI-05-043). Federal Highway Administration: United States. Hannigan, P. J., Goble, G. G., Likins, G. E., & Rausche, F. (2006).
Design and construction of driven pile foundations
(FHWA-NHI-05-043) (FHWA-NHI-05-043). Federal Highway Administration: United States.
Zurück zum Zitat Hannigan, P. J., Goble, G. G., Likins, G. E., & Becker, M. L. (2016). Design and construction of driven pile foundations (FHWA-NHI-16-009) (FHWA-NHI-16-009). Federal Highway Administration: United States. Hannigan, P. J., Goble, G. G., Likins, G. E., & Becker, M. L. (2016).
Design and construction of driven pile foundations
(FHWA-NHI-16-009) (FHWA-NHI-16-009). Federal Highway Administration: United States.
Zurück zum Zitat Hassan, M., & Iskander, M. G. (1998). State of the Practice Review in FRP Composite Piling. Journal of Composites for Construction, 2(3), 116–120. CrossRef Hassan, M., & Iskander, M. G. (1998). State of the Practice Review in FRP Composite Piling.
Journal of Composites for Construction,
2(3), 116–120.
CrossRef
Zurück zum Zitat Helwany, S., & Wiley, B. (2007). Applied soil mechanics: With ABAQUS applications. Hoboken, NJ: John Wiley & Sons. CrossRef Helwany, S., & Wiley, B. (2007).
Applied soil mechanics: With ABAQUS applications. Hoboken, NJ: John Wiley & Sons.
CrossRef
Zurück zum Zitat Ho, C. E. (2003). Base grouted bored pile on weak granite. In Proceedings of the Third International Conference on Grouting and Ground Treatment (pp. 716–727). Ho, C. E. (2003). Base grouted bored pile on weak granite. In
Proceedings of the Third International Conference on Grouting and Ground Treatment (pp. 716–727).
Zurück zum Zitat Hsu, S.-T. (2014). Behaviors of large-scale driven PC piles. Journal of Marine Science and Technology, 22(4), 487–497. Hsu, S.-T. (2014). Behaviors of large-scale driven PC piles.
Journal of Marine Science and Technology,
22(4), 487–497.
Zurück zum Zitat Huo, S., Chao, Y., Dai, G., & Gong, W. (2015). Field test research of inclined large-scale steel pipe pile foundation for offshore wind farms. Journal of Coastal Research, SI(73), 132–138. Huo, S., Chao, Y., Dai, G., & Gong, W. (2015). Field test research of inclined large-scale steel pipe pile foundation for offshore wind farms.
Journal of Coastal Research,
SI(73), 132–138.
Zurück zum Zitat Hussein, M. H., Woerner, I., Wayne, A., Sharp, M., & Hwang, C. (2006). Pile driveability and bearing capacity in high-rebound soils. In GeoCongress 2006: Geotechnical Engineering in the Information Technology Age (pp. 1–4). Hussein, M. H., Woerner, I., Wayne, A., Sharp, M., & Hwang, C. (2006). Pile driveability and bearing capacity in high-rebound soils. In
GeoCongress 2006: Geotechnical Engineering in the Information Technology Age (pp. 1–4).
Zurück zum Zitat Jamiolkowski, M., Lo Presti, D., & Manassero, M. (2003). Evaluation of relative density and shear strength of sands from CPT and DMT. Soil behavior and soft ground construction (pp. 201–238). Jamiolkowski, M., Lo Presti, D., & Manassero, M. (2003). Evaluation of relative density and shear strength of sands from CPT and DMT.
Soil behavior and soft ground construction (pp. 201–238).
Zurück zum Zitat Jamsawang, P., Bergado, D. T., & Voottipruex, P. (2011). Field behaviour of stiffened deep cement mixing piles. Proceedings of the Institution of Civil Engineers—Ground Improvement, 164(1), 33–49. Jamsawang, P., Bergado, D. T., & Voottipruex, P. (2011). Field behaviour of stiffened deep cement mixing piles.
Proceedings of the Institution of Civil Engineers—Ground Improvement, 164(1), 33–49.
Zurück zum Zitat Jiao, Q. Z. (2007). Shaft wall design for a shield to directly cut through. Modern Tunneling Technology, 44(4), 20–23. Jiao, Q. Z. (2007). Shaft wall design for a shield to directly cut through.
Modern Tunneling Technology,
44(4), 20–23.
Zurück zum Zitat Jongpradist, P., Youwai, S., & Jaturapitakkul, C. (2010). Effective void ratio for assessing the mechanical properties of cement-clay admixtures at high water content. Journal of Geotechnical and Geoenvironmental Engineering, 137(6), 621–627. CrossRef Jongpradist, P., Youwai, S., & Jaturapitakkul, C. (2010). Effective void ratio for assessing the mechanical properties of cement-clay admixtures at high water content.
Journal of Geotechnical and Geoenvironmental Engineering,
137(6), 621–627.
CrossRef
Zurück zum Zitat Juran, I., & Komornik, U. (2006). Behavior of fiber-reinforced polymer composite piles under vertical loads (No. FHWA-HRT-04–107). United States Department of Transportation. Juran, I., & Komornik, U. (2006).
Behavior of fiber-reinforced polymer composite piles under vertical loads (No. FHWA-HRT-04–107). United States Department of Transportation.
Zurück zum Zitat Khaleghi, B., Lehman, D., & Roeder, C. (2016). Concrete Filled Steel Tube Bridge Pier Connections-An ABC Solution. Produced by Accelerated Bridge Construction: Center & Florida International University. Khaleghi, B., Lehman, D., & Roeder, C. (2016).
Concrete Filled Steel Tube Bridge Pier Connections-An ABC Solution. Produced by Accelerated Bridge Construction: Center & Florida International University.
Zurück zum Zitat Kim, S., Whang, S.-W., Kim, S., & Hyung, W. G. (2017). Application of extended end composite pile design in pile foundation work. Proceedings of the Institution of Civil Engineers-Geotechnical Engineering, 170(5), 455–465. CrossRef Kim, S., Whang, S.-W., Kim, S., & Hyung, W. G. (2017). Application of extended end composite pile design in pile foundation work.
Proceedings of the Institution of Civil Engineers-Geotechnical Engineering,
170(5), 455–465.
CrossRef
Zurück zum Zitat Knappett, J., & Craig, R. F. (2012). Craig’s soil mechanics (8th ed.). Abingdon, Oxon, New York: Spon Press. Knappett, J., & Craig, R. F. (2012).
Craig’s soil mechanics (8th ed.). Abingdon, Oxon, New York: Spon Press.
Zurück zum Zitat Kumar, S., Alarcon, C., & Hosin, A. (2004). O-cell testing of reinforced concrete driven piles. In International Conference on Case Histories in Geotechnical Engineering (pp. 1–7). Kumar, S., Alarcon, C., & Hosin, A. (2004). O-cell testing of reinforced concrete driven piles.
In International Conference on Case Histories in Geotechnical Engineering (pp. 1–7).
Zurück zum Zitat Kundu, T., & Ryu, Y.-S. (2002). Underwater inspection of concrete-filled steel pipes using guided waves. KSCE Journal of Civil Engineering, 6(1), 25–31. CrossRef Kundu, T., & Ryu, Y.-S. (2002). Underwater inspection of concrete-filled steel pipes using guided waves.
KSCE Journal of Civil Engineering,
6(1), 25–31.
CrossRef
Zurück zum Zitat Kyfor, Z. G., Schnore, A. R., Carlo, T. A., & Baily, P. F. (1992). Static testing of deep foundations (No. FHWA-NHI-16–009). US Department of Transportation. Kyfor, Z. G., Schnore, A. R., Carlo, T. A., & Baily, P. F. (1992).
Static testing of deep foundations (No. FHWA-NHI-16–009). US Department of Transportation.
Zurück zum Zitat Lai, P., Mullins, G., & Dapp, S. D. (2000). Pressure-grouting drilled shaft tips in sand. Paper presented at the New Technological and Design Developments in Deep Foundations. Lai, P., Mullins, G., & Dapp, S. D. (2000).
Pressure-grouting drilled shaft tips in sand. Paper presented at the New Technological and Design Developments in Deep Foundations.
Zurück zum Zitat Lai, Y., Bergado, D., Lorenzo, G., & Duangchan, T. (2006). Full-scale reinforced embankment on deep jet mixing improved ground. Proceedings of the Institution of Civil Engineers-Ground Improvement, 10(4), 153–164. CrossRef Lai, Y., Bergado, D., Lorenzo, G., & Duangchan, T. (2006). Full-scale reinforced embankment on deep jet mixing improved ground.
Proceedings of the Institution of Civil Engineers-Ground Improvement,
10(4), 153–164.
CrossRef
Zurück zum Zitat Lao, W. K., Zhou, L. Y., & Wang, Z. (2004). Field test and theoretical analysis on flexible large-diameter rock-socketed steel pipe piles under lateral load [J]. Chinese Journal of Rock Mechanics and Engineering, 10, 1–35. Lao, W. K., Zhou, L. Y., & Wang, Z. (2004). Field test and theoretical analysis on flexible large-diameter rock-socketed steel pipe piles under lateral load [J].
Chinese Journal of Rock Mechanics and Engineering,
10, 1–35.
Zurück zum Zitat Lee, J., & Song, K. (2010). Material properties and bearing capacities of extended PHC pile with enlarged pile thickness. Architectural Institute of Korea, 30(1), 207–208. Lee, J., & Song, K. (2010). Material properties and bearing capacities of extended PHC pile with enlarged pile thickness.
Architectural Institute of Korea,
30(1), 207–208.
Zurück zum Zitat Lehane, B. M., Williams, R., & Li, Y. (2013). Shaft capacity of displacement piles in clay using the cone penetration tests. Journal of Geotechincal and Geoenvironmental Engineering, 139(2), 253–266. CrossRef Lehane, B. M., Williams, R., & Li, Y. (2013). Shaft capacity of displacement piles in clay using the cone penetration tests.
Journal of Geotechincal and Geoenvironmental Engineering,
139(2), 253–266.
CrossRef
Zurück zum Zitat Li, W. J., Qin, L., Zhong, C., & Wang, L. K. (2015). Study of vibration characteristics about two-layered composite pile. Integrated Ferroelectrics, 167(1), 41–51. CrossRef Li, W. J., Qin, L., Zhong, C., & Wang, L. K. (2015). Study of vibration characteristics about two-layered composite pile.
Integrated Ferroelectrics,
167(1), 41–51.
CrossRef
Zurück zum Zitat Li, X., Xie, K., Zeng, G., & Hou, X. (2000). Research of bored pile slurry effect created during construction. Structural Construction, 30(5), 21–23. Li, X., Xie, K., Zeng, G., & Hou, X. (2000). Research of bored pile slurry effect created during construction.
Structural Construction,
30(5), 21–23.
Zurück zum Zitat Liao, S. S., & Whitman, R. V. (1986). Overburden correction factors for SPT in sand. Journal of geotechnical engineering, 112(3), 373–377. Liao, S. S., & Whitman, R. V. (1986). Overburden correction factors for SPT in sand.
Journal of geotechnical engineering,
112(3), 373–377.
Zurück zum Zitat Liew, S., Ng, H., & Lee, K. (2004). Comparison of HSDPT and SLT results of driven piles in Malaysian residual soils. Paper presented at the Malaysian Geotechnical Conference. Liew, S., Ng, H., & Lee, K. (2004).
Comparison of HSDPT and SLT results of driven piles in Malaysian residual soils. Paper presented at the Malaysian Geotechnical Conference.
Zurück zum Zitat Liu, J., Yuan, H. J., Li, J. F., Zhou, H., & Sun, H. Y. (2014). Current state of research and application of GFRP in shield engineering. Urban Rapid Rail Transit, 27(1), 81–86. Liu, J., Yuan, H. J., Li, J. F., Zhou, H., & Sun, H. Y. (2014). Current state of research and application of GFRP in shield engineering.
Urban Rapid Rail Transit,
27(1), 81–86.
Zurück zum Zitat Liu, S.-Y., Du, Y.-J., Yi, Y.-L., & Puppala, A. J. (2011). Field investigations on performance of T-shaped deep mixed soil cement column–supported embankments over soft ground. Journal of Geotechnical and Geoenvironmental Engineering, 138(6), 718–727. CrossRef Liu, S.-Y., Du, Y.-J., Yi, Y.-L., & Puppala, A. J. (2011). Field investigations on performance of T-shaped deep mixed soil cement column–supported embankments over soft ground.
Journal of Geotechnical and Geoenvironmental Engineering,
138(6), 718–727.
CrossRef
Zurück zum Zitat Liu, X. J. (2014). Comparative study on expansive soil steep slope FRP materials bolt support. Applied Mechanics and Materials, 454, 250–254. CrossRef Liu, X. J. (2014). Comparative study on expansive soil steep slope FRP materials bolt support.
Applied Mechanics and Materials,
454, 250–254.
CrossRef
Zurück zum Zitat Lunne, T., Robertson, P., & Powell, J. (1997). Cone penetration testing. Geotechnical Practice. Lunne, T., Robertson, P., & Powell, J. (1997).
Cone penetration testing. Geotechnical Practice.
Zurück zum Zitat Luo, L. (2014). Development and application of FRP materials in the structural in China. In Recent advances in material, analysis, monitoring, and evaluation in foundation and bridge engineering (pp. 126–132). Luo, L. (2014). Development and application of FRP materials in the structural in China. In
Recent advances in material, analysis, monitoring, and evaluation in foundation and bridge engineering (pp. 126–132).
Zurück zum Zitat Madhyannapu, R. S., & Puppala, A. J. (2015). Design and construction guidelines for deep soil mixing to stabilize expansive soils. Journal of Geotechnical and Geoenvironmental Engineering, 141(9). Madhyannapu, R. S., & Puppala, A. J. (2015). Design and construction guidelines for deep soil mixing to stabilize expansive soils. Journal of Geotechnical and Geoenvironmental Engineering,
141(9).
Zurück zum Zitat Malik, A. A., Kuwnao, J., Tachibana, S., & Maejima, T. (2016). Interpretation of screw pile load test data using extrapolation method in dense sand. International Journal of GEOMATE, 10(1), 1567–1574. Malik, A. A., Kuwnao, J., Tachibana, S., & Maejima, T. (2016). Interpretation of screw pile load test data using extrapolation method in dense sand.
International Journal of GEOMATE,
10(1), 1567–1574.
Zurück zum Zitat Manh, T., Jensen, G. U., Johansen, T. F., & Hoff, L. (2013). Microfabricated 1–3 composite acoustic matching layers for 15MHz transducers. Ultrasonics, 53(6), 1141–1149. CrossRef Manh, T., Jensen, G. U., Johansen, T. F., & Hoff, L. (2013). Microfabricated 1–3 composite acoustic matching layers for 15MHz transducers.
Ultrasonics,
53(6), 1141–1149.
CrossRef
Zurück zum Zitat Mansur, C. I., & Hunter, A. H. (1970). Pile tests-Arkansas river project. Journal of Soil Mechanics & Foundations Division. Mansur, C. I., & Hunter, A. H. (1970). Pile tests-Arkansas river project.
Journal of Soil Mechanics & Foundations Division.
Zurück zum Zitat Marcos, M. C. M., Chen, Y.-J., & Kulhawy, F. H. (2013). Evaluation of compression load test interpretation criteria for driven precast concrete pile capacity. KSCE Journal of Civil Engineering, 17(5), 1008–1022. CrossRef Marcos, M. C. M., Chen, Y.-J., & Kulhawy, F. H. (2013). Evaluation of compression load test interpretation criteria for driven precast concrete pile capacity.
KSCE Journal of Civil Engineering,
17(5), 1008–1022.
CrossRef
Zurück zum Zitat Mayne, P. W., Christopher, B., Berg, R., & DeJong, J. (2002). Subsurface Investigations (Geotechnical Site Characterization), (FHWA NHI-01-031) (Geotechnical Site Characterization), (FHWA NHI-01-031). National Highway Institute, Federal Highway Administration, Washington, D.C.: U.S. Dept. of Transportation. Mayne, P. W., Christopher, B., Berg, R., & DeJong, J. (2002).
Subsurface Investigations
(Geotechnical Site Characterization), (FHWA NHI-01-031) (Geotechnical Site Characterization), (FHWA NHI-01-031). National Highway Institute, Federal Highway Administration, Washington, D.C.: U.S. Dept. of Transportation.
Zurück zum Zitat Mayne, P. (2007). Cone penetration testing—A synthesis of highway practice. Washington DC: Transportation Research Board, National Academies Press. Mayne, P. (2007).
Cone penetration testing—A synthesis of highway practice. Washington DC: Transportation Research Board, National Academies Press.
Zurück zum Zitat McNamara, A., & Gorasia, R. J. (2016). High-capacity ribbed pile foundations. Proceedings of the Institution of Civil Engineers: Geotechnical Engineering, 169(3), 264–275. McNamara, A., & Gorasia, R. J. (2016). High-capacity ribbed pile foundations.
Proceedings of the Institution of Civil Engineers: Geotechnical Engineering,
169(3), 264–275.
Zurück zum Zitat Meyerhof, G. G. (1956). Penetration tests and bearing capacity of cohesionless soils. Journal of the Soil Mechanics and Foundations Division, 82(1), 1–19. Meyerhof, G. G. (1956). Penetration tests and bearing capacity of cohesionless soils.
Journal of the Soil Mechanics and Foundations Division,
82(1), 1–19.
Zurück zum Zitat Meyerhof, G. G. (1976). Bearing capacity and settlement of pile foundations International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts, 13(6), A67–A67. Meyerhof, G. G. (1976). Bearing capacity and settlement of pile foundations International
Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts,
13(6), A67–A67.
Zurück zum Zitat Ming, Z. (2011). The design and application of GFRP concrete structure in Dongwan subway tunnel project. China Academic Journal Electronic Publishing House, 6, 40–42. Ming, Z. (2011). The design and application of GFRP concrete structure in Dongwan subway tunnel project.
China Academic Journal Electronic Publishing House,
6, 40–42.
Zurück zum Zitat Ministry of Construction of the People’s Republic of China. (2002). Code for design of concrete structures (GB 50010–2002). Beijing, China: National Standard of the People’s Republic of China. Ministry of Construction of the People’s Republic of China. (2002).
Code for design of concrete structures (GB 50010–2002). Beijing, China: National Standard of the People’s Republic of China.
Zurück zum Zitat Mirmiran, A., & Shahawy, M. (1996). A new concrete-filled hollow FRP composite column. Composites Part B-Engineering, 27(3–4), 263–268. CrossRef Mirmiran, A., & Shahawy, M. (1996). A new concrete-filled hollow FRP composite column.
Composites Part B-Engineering,
27(3–4), 263–268.
CrossRef
Zurück zum Zitat Miura, N., Horpibulsuk, S., & Nagaraj, T. (2001). Engineering behavior of cement stabilized clay at high water content. Soils and Foundations, 41(5), 33–45. CrossRef Miura, N., Horpibulsuk, S., & Nagaraj, T. (2001). Engineering behavior of cement stabilized clay at high water content.
Soils and Foundations,
41(5), 33–45.
CrossRef
Zurück zum Zitat Mokhlesur, M., Rahman, P., & Rabbi, M. Z. (2011). Strength and deformation characteristics of cement treated soft Bangladesh clays. IEM Journal, 72(4), 21–31. Mokhlesur, M., Rahman, P., & Rabbi, M. Z. (2011). Strength and deformation characteristics of cement treated soft Bangladesh clays.
IEM Journal,
72(4), 21–31.
Zurück zum Zitat Naesgaard, E. (1992). Lateral load tests to examine large-strain (seismic) behaviour of piles. Canadian Geotechnical Journal, 29(2), 245–252. CrossRef Naesgaard, E. (1992). Lateral load tests to examine large-strain (seismic) behaviour of piles.
Canadian Geotechnical Journal,
29(2), 245–252.
CrossRef
Zurück zum Zitat Nakamura, S. (1998). Design strategy to make steel bridges more economical. Journal of Constructional Steel Research, 1(46), 58. CrossRef Nakamura, S. (1998). Design strategy to make steel bridges more economical.
Journal of Constructional Steel Research,
1(46), 58.
CrossRef
Zurück zum Zitat Nguyen, V. L., Nie, L., & Zhang, M. (2012). Method Cement Post-grouting to Increase the Load Capacity for Bored Pile. Research Journal of Applied Sciences, Engineering and Technology, 5(19), 4727–4732. CrossRef Nguyen, V. L., Nie, L., & Zhang, M. (2012). Method Cement Post-grouting to Increase the Load Capacity for Bored Pile.
Research Journal of Applied Sciences, Engineering and Technology,
5(19), 4727–4732.
CrossRef
Zurück zum Zitat Nordlund, R. L. (1963). Bearing capacity of piles in cohesionless soils. American Society of Civil Engineers Journal of the Soil Mechanics and Foundations Division, SM3, 1–35. Nordlund, R. L. (1963). Bearing capacity of piles in cohesionless soils.
American Society of Civil Engineers Journal of the Soil Mechanics and Foundations Division,
SM3, 1–35.
Zurück zum Zitat Nordlund, R.L. (1979). Point Bearing and Shaft Friction of Piles in Sand. Missouri-Rolla 5 th Annual Short Course on the Fundamentals of Deep Foundation Design. Nordlund, R.L. (1979). Point Bearing and Shaft Friction of Piles in Sand.
Missouri-Rolla 5
th
Annual Short Course on the Fundamentals of Deep Foundation Design.
Zurück zum Zitat Paikowsky, S. G., & Tolosko, T. A. (1999). Extrapolation of pile capacity from non-failed load tests (No. FHWA-RD-99–170). US Department of Transportation. Paikowsky, S. G., & Tolosko, T. A. (1999).
Extrapolation of pile capacity from non-failed load tests (No. FHWA-RD-99–170). US Department of Transportation.
Zurück zum Zitat Pando, M. A. (2003). A laboratory and field study of composite piles for bridge substructures (Doctoral dissertation). Pando, M. A. (2003).
A laboratory and field study of composite piles for bridge substructures (Doctoral dissertation).
Zurück zum Zitat Pando, M. A., Ealy, C. D., Filz, G. M., Lesko, J. J., & Hoppe, E. J. (2006). A laboratory and field study of composite piles for bridge substructures (No. FHWA-HRT-04–043). US Department of Transportation. Pando, M. A., Ealy, C. D., Filz, G. M., Lesko, J. J., & Hoppe, E. J. (2006).
A laboratory and field study of composite piles for bridge substructures (No. FHWA-HRT-04–043). US Department of Transportation.
Zurück zum Zitat Pando, M. A., Hoppe, E. J., Filz, G. M., & Dove, J. E. (2002). Interface shear tests on FRP composite piles. In Deep Foundations 2002: An International Perspective on Theory, Design, Construction, and Performance (pp. 1486–1500). Pando, M. A., Hoppe, E. J., Filz, G. M., & Dove, J. E. (2002). Interface shear tests on FRP composite piles.
In Deep Foundations 2002: An International Perspective on Theory, Design, Construction, and Performance (pp. 1486–1500).
Zurück zum Zitat Park, J.-S., Lee, S.-H., Park, S.-S., Cho, J.-W., Jung, S.-W., Han, J.-H., & Kang, S.-G. (2003). Acoustic and electromechanical properties of 1–3 PZT composites for ultrasonic transducer arrays fabricated by sacrificial micro PMMA mold. Sensors and Actuators a: Physical, 108(1), 206–211. CrossRef Park, J.-S., Lee, S.-H., Park, S.-S., Cho, J.-W., Jung, S.-W., Han, J.-H., & Kang, S.-G. (2003). Acoustic and electromechanical properties of 1–3 PZT composites for ultrasonic transducer arrays fabricated by sacrificial micro PMMA mold.
Sensors and Actuators a: Physical,
108(1), 206–211.
CrossRef
Zurück zum Zitat Patel, D., Glover, S., Chew, J., & Austin, J. (2015). The Pinnacle-design and construction of large diameter deep base grouted piles in London. Ground Engineering, 24–31. Patel, D., Glover, S., Chew, J., & Austin, J. (2015). The Pinnacle-design and construction of large diameter deep base grouted piles in London.
Ground Engineering, 24–31.
Zurück zum Zitat Peck, R. B., Hanson, W. E., & Thornburn, T. H. (1974). Foundation engineering (Vol. 10). New York, NY: Wiley. Peck, R. B., Hanson, W. E., & Thornburn, T. H. (1974).
Foundation engineering (Vol. 10). New York, NY: Wiley.
Zurück zum Zitat Perko, H. A. (2009). Helical piles: A practical guide to design and installation. John Wiley & Sons. Perko, H. A. (2009).
Helical piles: A practical guide to design and installation. John Wiley & Sons.
Zurück zum Zitat Peterson, T. (1999). Structural properties of steel-encased concrete piles (master’s dissertation). Peterson, T. (1999).
Structural properties of steel-encased concrete piles (master’s dissertation).
Zurück zum Zitat Rausche, F., Moses, F., & Goble, G. G. (2004). Soil resistance predictions from pile dynamics Current Practices and Future Trends in Deep Foundations (pp. 418–440). Rausche, F., Moses, F., & Goble, G. G. (2004). Soil resistance predictions from pile dynamics Current Practices and Future Trends in Deep Foundations (pp. 418–440).
Zurück zum Zitat Reese, L. C. (1984). Handbook on design of piles and drilled shafts under lateral load (No. FHWA-NHI-16–009). US Department of Transportation. Reese, L. C. (1984).
Handbook on design of piles and drilled shafts under lateral load (No. FHWA-NHI-16–009). US Department of Transportation.
Zurück zum Zitat Robertson, P. (1990). Soil classification using the cone penetration test. Canadian Geotechnical Journal, 27(1), 151–158. CrossRef Robertson, P. (1990). Soil classification using the cone penetration test.
Canadian Geotechnical Journal,
27(1), 151–158.
CrossRef
Zurück zum Zitat Robinson, B., & Iskander, M. (2008). Static and dynamic load tests on driven polymeric piles. In GeoCongress 2008: Geosustainability and Geohazard Mitigation (pp. 939–946). Robinson, B., & Iskander, M. (2008). Static and dynamic load tests on driven polymeric piles. In
GeoCongress 2008: Geosustainability and Geohazard Mitigation (pp. 939–946).
Zurück zum Zitat Rose, J. L., Cho, Y., & Ditri, J. J. (1994). Cylindrical guided wave leakage due to liquid loading. Review of Progress in Quantitative Nondestructive Evaluation, 13, 259–259. Rose, J. L., Cho, Y., & Ditri, J. J. (1994). Cylindrical guided wave leakage due to liquid loading.
Review of Progress in Quantitative Nondestructive Evaluation,
13, 259–259.
Zurück zum Zitat Samtani, N. C., & Nowatzki, E. A. (2006a). Soils and foundations—Volume I (No. FHWA-NHI-16–009). US Department of Transportation. Samtani, N. C., & Nowatzki, E. A. (2006a).
Soils and foundations—Volume I (No. FHWA-NHI-16–009). US Department of Transportation.
Zurück zum Zitat Samtani, N. C., & Nowatzki, E. A. (2006b). Soils and foundations—Volume II (No. FHWA-NHI-16–009). US Department of Transportation. Samtani, N. C., & Nowatzki, E. A. (2006b).
Soils and foundations—Volume II (No. FHWA-NHI-16–009). US Department of Transportation.
Zurück zum Zitat Schmertmann, J. H. (1978). Guidelines for cone penetration test (performance and design) (Final Report No. FHWA-TS-78–209). US Department of Transportation. Schmertmann, J. H. (1978).
Guidelines for cone penetration test (performance and design) (Final Report No. FHWA-TS-78–209). US Department of Transportation.
Zurück zum Zitat Shi, C. (2005). The application of the pile-end mud-jacking technique in the construction of bored caisson pile. Sci/Tech Information Development & Economy, 15(23), 293–296. Shi, C. (2005). The application of the pile-end mud-jacking technique in the construction of bored caisson pile.
Sci/Tech Information Development & Economy,
15(23), 293–296.
Zurück zum Zitat Shin, Y., Kim, M., Ko, J., & Jeong, S. (2014). Proposed design chart of mechanical joints on steel-PHC composite piles. Materials and Structures, 47(7), 1221–1238. CrossRef Shin, Y., Kim, M., Ko, J., & Jeong, S. (2014). Proposed design chart of mechanical joints on steel-PHC composite piles.
Materials and Structures,
47(7), 1221–1238.
CrossRef
Zurück zum Zitat Sinnreich, J., & Simpson, R. C. (2013). Base Grouting Case Studies Including Full Scale Comparative Load Testing. Seventh International Conference on Case Histories in Geotechnical Engineering. No. 2.16, 1–8. Sinnreich, J., & Simpson, R. C. (2013). Base Grouting Case Studies Including Full Scale Comparative Load Testing.
Seventh International Conference on Case Histories in Geotechnical Engineering. No. 2.16, 1–8.
Zurück zum Zitat Skempton, A. W. (1986). Standard penetration test procedures and the effects in sands of overburden pressure, relative density, particle size, ageing and overconsolidation. Geotechnique, 36(3), 425–447. CrossRef Skempton, A. W. (1986). Standard penetration test procedures and the effects in sands of overburden pressure, relative density, particle size, ageing and overconsolidation.
Geotechnique,
36(3), 425–447.
CrossRef
Zurück zum Zitat Standards Australia. (1998a). Methods of testing soils for engineering purposes—Method 6.2.2: Soil strength and consolidation tests—Direct shear test using a shear box (AS 1289.6.2.2) (pp. 1–25). Standards Australia. (1998a).
Methods of testing soils for engineering purposes—Method 6.2.2: Soil strength and consolidation tests—Direct shear test using a shear box (AS 1289.6.2.2) (pp. 1–25).
Zurück zum Zitat Standards Australia. (1998b). Methods of testing soils for engineering purposes—Method 6.6.1: Soil strength and consolidation tests—Determination of the one-dimensional consolidation properties of a SOI (AS 1289.6.6.1) (pp. 1–12). Standards Australia. (1998b).
Methods of testing soils for engineering purposes—Method 6.6.1: Soil strength and consolidation tests—Determination of the one-dimensional consolidation properties of a SOI (AS 1289.6.6.1) (pp. 1–12).
Zurück zum Zitat Standards Australia. (2009). Piling—Design and installation (AS 2159) (pp. 1–97). Standards Australia. (2009).
Piling—Design and installation (AS 2159) (pp. 1–97).
Zurück zum Zitat Standards Australia. (2016a). Methods of testing soils for engineering purposes—Method 6.4.1: Determination of compressive strength of a soil—Compressive strength of a specimen tested in undrained triaxial compression without measurement of pore water pressure (AS 1289.6.4.1) (pp. 1–9). Standards Australia. (2016a). Methods of testing soils for engineering purposes—Method 6.4.1:
Determination of compressive strength of a soil—Compressive strength of a specimen tested in undrained triaxial compression without measurement of pore water pressure (AS 1289.6.4.1) (pp. 1–9).
Zurück zum Zitat Standards Australia. (2016b). Methods of testing soils for engineering purposes—Method 6.4.2: Determination of compressive strength of a soil—Compressive strength of a saturated specimen tested in undrained triaxial compression with measurement of pore water pressure (AS 1289.6.4.2) (pp. 1–17). Standards Australia. (2016b).
Methods of testing soils for engineering purposes—Method 6.4.2: Determination of compressive strength of a soil—Compressive strength of a saturated specimen tested in undrained triaxial compression with measurement of pore water pressure (AS 1289.6.4.2) (pp. 1–17).
Zurück zum Zitat Taesiri, Y., & Chantaranimi, P. (2001). Slope stabilizations of highway embankments adjacent to irrigation/drainage canal. In Proceedings of Soft Ground Improvement and Geosynthetics Applications (pp. 211–227). Thailand. Taesiri, Y., & Chantaranimi, P. (2001). Slope stabilizations of highway embankments adjacent to irrigation/drainage canal. In
Proceedings of Soft Ground Improvement and Geosynthetics Applications (pp. 211–227). Thailand.
Zurück zum Zitat Taylor, D. W. (1948). Fundamentals of soil mechanics. New York, NY: John Wiley & Sons. CrossRef Taylor, D. W. (1948).
Fundamentals of soil mechanics. New York, NY: John Wiley & Sons.
CrossRef
Zurück zum Zitat Terzaghi, K. (1944). Theoretical soil mechanics. New York: Chapman and Hali, Limited John Wiley and Sons. Terzaghi, K. (1944).
Theoretical soil mechanics. New York: Chapman and Hali, Limited John Wiley and Sons.
Zurück zum Zitat Tomlinson, M. J. (1980). Foundation design and construction (5th ed.). Harlow, England: Longman Scientific & Technical. Tomlinson, M. J. (1980).
Foundation design and construction (5th ed.). Harlow, England: Longman Scientific & Technical.
Zurück zum Zitat Tomlinson, M. J. (2001). Foundation design and construction. Pitman Publishing Limited, 1963, 1–583. Tomlinson, M. J. (2001). Foundation design and construction.
Pitman Publishing Limited,
1963, 1–583.
Zurück zum Zitat Tomlinson, M. J., & Boorman, R. (2001). Foundation design and construction (7th ed.). New York; Harlow, England: Prentice Hall. Tomlinson, M. J., & Boorman, R. (2001).
Foundation design and construction (7th ed.). New York; Harlow, England: Prentice Hall.
Zurück zum Zitat Uddin, K., Balasubramaniam, A., & Bergado, D. (1997). Engineering behavior of cement-treated Bangkok soft clay. Geotechnical Engineering, 28, 89–119. Uddin, K., Balasubramaniam, A., & Bergado, D. (1997). Engineering behavior of cement-treated Bangkok soft clay.
Geotechnical Engineering,
28, 89–119.
Zurück zum Zitat Vesic, A. S. (1977). Design of pile foundations. NCHRP synthesis of highway practice (42). Vesic, A. S. (1977).
Design of pile foundations. NCHRP synthesis of highway practice (42).
Zurück zum Zitat Voottipruex, P., Suksawat, T., Bergado, D. T., & Jamsawang, P. (2011). Numerical simulations and parametric study of SDCM and DCM piles under full scale axial and lateral loads. Computers and Geotechnics, 38(3), 318–329. CrossRef Voottipruex, P., Suksawat, T., Bergado, D. T., & Jamsawang, P. (2011). Numerical simulations and parametric study of SDCM and DCM piles under full scale axial and lateral loads.
Computers and Geotechnics,
38(3), 318–329.
CrossRef
Zurück zum Zitat Wang, S. T., & Reese, L. C. (1993). Laterally loaded pile analysis program for the microcomputer (No. FHWA-SA-91–048). US Department of Transportation. Wang, S. T., & Reese, L. C. (1993).
Laterally loaded pile analysis program for the microcomputer (No. FHWA-SA-91–048). US Department of Transportation.
Zurück zum Zitat Werasak, R., & Meng, J. (2013). Field testing of stiffened deep cement mixing piles under lateral cyclic loading. Earthquake Engineering and Engineering Vibration, 12(2), 261–265. CrossRef Werasak, R., & Meng, J. (2013). Field testing of stiffened deep cement mixing piles under lateral cyclic loading.
Earthquake Engineering and Engineering Vibration,
12(2), 261–265.
CrossRef
Zurück zum Zitat Wilkins, E., & Castelli, R. J. (2004). Osterberg load cell test results on base grouted bored piles in Bangladesh. In GeoSupport 2004: Drilled Shaft, Microiling, Deep Mixing, Remedial Methods, and Specialty Foundation Systems (pp. 587–602). Wilkins, E., & Castelli, R. J. (2004). Osterberg load cell test results on base grouted bored piles in Bangladesh. In
GeoSupport 2004: Drilled Shaft, Microiling, Deep Mixing, Remedial Methods, and Specialty Foundation Systems (pp. 587–602).
Zurück zum Zitat Wonglert, A., & Jongpradist, P. (2015). Impact of reinforced core on performance and failure behavior of stiffened deep cement mixing piles. Computers and Geotechnics, 69, 93–104. CrossRef Wonglert, A., & Jongpradist, P. (2015). Impact of reinforced core on performance and failure behavior of stiffened deep cement mixing piles.
Computers and Geotechnics,
69, 93–104.
CrossRef
Zurück zum Zitat Xu, G. (2009). Effects of frozen soils on site response and lateral behavior of concrete-filled steel pipe pile (dissertation). ProQuest Dissertations Publishing. Xu, G. (2009).
Effects of frozen soils on site response and lateral behavior of concrete-filled steel pipe pile (dissertation). ProQuest Dissertations Publishing.
Zurück zum Zitat Yang, H., & Xiao, D. (2011). Back analysis of static pile load test for SPT-based pile design: A Singapore experience. In Advances in Pile Foundations, Geosynthetics, Geoinvestigations, and Foundation Failure Analysis and Repairs (pp. 144–152). Yang, H., & Xiao, D. (2011). Back analysis of static pile load test for SPT-based pile design: A Singapore experience. In
Advances in Pile Foundations, Geosynthetics, Geoinvestigations, and Foundation Failure Analysis and Repairs (pp. 144–152).
Zurück zum Zitat Yang, J., Wang, F., Lu, S., & Wang, C. (2014). Application of compactness detection to complicated concrete-filled steel tube by ultrasonic method. Transactions of Tianjin University, 20(2), 126–132. CrossRef Yang, J., Wang, F., Lu, S., & Wang, C. (2014). Application of compactness detection to complicated concrete-filled steel tube by ultrasonic method.
Transactions of Tianjin University,
20(2), 126–132.
CrossRef
Zurück zum Zitat Yang, P., Hu, H.-S., & Xu, J.-F. (2012). Settlement characteristics of pile composite foundation under staged loading. Procedia Environmental Sciences, 12, 1055–1062. CrossRef Yang, P., Hu, H.-S., & Xu, J.-F. (2012). Settlement characteristics of pile composite foundation under staged loading.
Procedia Environmental Sciences,
12, 1055–1062.
CrossRef
Zurück zum Zitat Yttrup, P., & Abramsson, G. (2003). Ultimate strength of steel screw piles in sand. Australian Geomechanics: Journal and News of the Australian Geomechanics Society, 38(1), 17. Yttrup, P., & Abramsson, G. (2003). Ultimate strength of steel screw piles in sand.
Australian Geomechanics: Journal and News of the Australian Geomechanics Society,
38(1), 17.
Zurück zum Zitat Yu, F., & Yang, J. (2012). Base capacity of open-ended steel pipe piles in sand. Journal of Geotechnical and Geoenvironmental Engineering, 138(9), 1116–1128. CrossRef Yu, F., & Yang, J. (2012). Base capacity of open-ended steel pipe piles in sand.
Journal of Geotechnical and Geoenvironmental Engineering,
138(9), 1116–1128.
CrossRef
Zurück zum Zitat Zhang, H., Chen, S., Zhao, Y. B., & Li, M. W. (2011). The application of GFRP in shield tunnel construction. Railway Standard Design, 3(24), 73–76. Zhang, H., Chen, S., Zhao, Y. B., & Li, M. W. (2011). The application of GFRP in shield tunnel construction.
Railway Standard Design,
3(24), 73–76.
Zurück zum Zitat Zhang, H. W., Smith, S. T., & Kim, S. J. (2012). Optimisation of carbon and glass FRP anchor design. Construction and Building Materials, 32, 1–12. CrossRef Zhang, H. W., Smith, S. T., & Kim, S. J. (2012). Optimisation of carbon and glass FRP anchor design.
Construction and Building Materials,
32, 1–12.
CrossRef
Zurück zum Zitat Zhou, J., Oh, E., Zhang, X., Jiang, H., Bolton, M., & Wang, P. (2017a). Compressive and Uplift Static Load Tests of Shaft and Base Grouted Concrete Bored Piles. 27th International Ocean and Polar Engineering Conference (pp. 685–692). Zhou, J., Oh, E., Zhang, X., Jiang, H., Bolton, M., & Wang, P. (2017a). Compressive and Uplift Static Load Tests of Shaft and Base Grouted Concrete Bored Piles.
27th
International Ocean and Polar Engineering Conference (pp. 685–692).
Zurück zum Zitat Zhou, J. L., Zhang, X., Jiang, H. S., Bolton, M., & Oh, E. (2016). A review of geotechnical application of fibre reinforced polymer materials. In 8th International Conference on Fibre-Reinforced Polymer Composite in Civil Engineering (pp. 856–862). Zhou, J. L., Zhang, X., Jiang, H. S., Bolton, M., & Oh, E. (2016). A review of geotechnical application of fibre reinforced polymer materials. In
8th
International Conference on Fibre-Reinforced Polymer Composite in Civil Engineering (pp. 856–862).
Zurück zum Zitat Zhou, D., Lam, K. H., Chen, Y., Zhang, Q., Chiu, Y. C., Luo, H., & Chan, H. L. W. (2012). Lead-free piezoelectric single crystal based 1–3 composites for ultrasonic transducer applications. Sensors and Actuators a: Physical, 182, 95–100. CrossRef Zhou, D., Lam, K. H., Chen, Y., Zhang, Q., Chiu, Y. C., Luo, H., & Chan, H. L. W. (2012). Lead-free piezoelectric single crystal based 1–3 composites for ultrasonic transducer applications.
Sensors and Actuators a: Physical,
182, 95–100.
CrossRef
- Titel
- General Principles and Practices
- DOI
- https://doi.org/10.1007/978-981-33-6183-6_2
- Autoren:
-
Jialin Zhou
Erwin Oh
- Verlag
- Springer Singapore
- Sequenznummer
- 2
- Kapitelnummer
- Chapter 2