參考文獻 |
1. 土質工學會,土質試驗法,日本土質工學會,第76-78頁,第172-188頁 (1976)。
2. 公路橋梁設計規範,交通部公路總局,台北 (2011)。
3. 王偉輝、許榮均,「陸上運輸系統噪音、振動抽測」,行政院環境保護署委託研究計畫成果報告,第113-114頁 (2010)。
4. 古翰,「基樁減振器空氣填充度之減振特性與變形特性」,碩士論文,國立中央大學土木工程學系,中壢 (2012)。
5. 林思銘,「基樁之減振改良研究」,碩士論文,國立中央大學土木工程學系,中壢 (2010)。
6. 林筠原,「減振基樁之瞬間變形與減振效果」,碩士論文,國立中央大學土木工程學系,中壢 (2009)。
7. 建築物基礎構造設計規範,內政部營建署,台北 (2012)。
8. 施國欽,大地工程學(二)基礎工程篇,文笙書局,台北 (2010)。
9. 倪勝火、莊明仁、鐘啟泰,「台南科學園區背景及相關振源量測與分析」,第20屆中日工程技術研討會,公共工程組(10-2),高速鐵路行車引致軌道振動之問題論文集,第113-129頁 (1999)。
10. 張國鎮、黃正興、張晴茂、李森枬,結構消能減震控制及隔震設計,全華書局,台北 (2008)。
11. 陳斗生,「樁基礎之沉陷問題淺論」,地工技術,第101卷,第67-78頁 (2004)。
12. 陳怡云,「場鑄基樁軸向承載行為及性能設計應用之研究」,碩士論文,國立臺灣科技大學營建工程系,台北 (2012)。
13. 陳政昇,「基樁之減振與沉陷特性」,碩士論文,國立中央大學土木工程學系,中壢 (2013)。
14. 曾乙哲,「複合勁度減振彈簧對砂土中模型樁動態性質之影響」,碩士論文,國立中央大學土木工程學系,中壢 (2006)。
15. 游以民,「減振基樁與樁周土壤之振波傳遞行為」,碩士論文,國立中央大學土木工程學系,中壢 (2005)。
16. 廖文彬,「由模型樁試驗探討砂土層中軸向基樁摩擦行為」,碩士論文,國立臺灣科技大學營建工程系,台北 (1999)。
17. 歐韋麟,「砂土中減振模型基樁之動態性質」,碩士論文,國立中央大學土木工程學系,中壢 (2007)。
18. 蔡瑋育,「高鐵列車行經南科園區引致環境振動之分析」,碩士論文,國立成功大學土木工程學系,台南 (2009)。
19. 鐵路橋梁設計規範,交通部臺灣鐵路管理局,台北 (2004)。
20. 鹽田正純,「地盤內の振動傳搬特性(<小特集>建築分野における固体音制御への流れ)」,日本音響學會誌,第五十卷,第四期,第325-331 頁 (1994)。
21. Athanasopoulos, G.A., Pelekis, P.C., and Anagnostopoulos, G.A., “Effect of soil stiffness in the attenuation of Rayleigh-wave motions from field measurements,” Soil Dynamics and Earthquake Engineering, Vol. 19, No. 4, pp. 277-288 (2000).
22. Attewell, P.B., and Farmer, I.W., “Attenuation of ground vibrations from pile driving,” Ground Engineering, Vol. 6, No. 4, pp. 9-26 (1973).
23. Bjerrum, L., “Allowable settlement of structures,” Proceedings of the 6th European Conference on Soil Mechanics and Foundation Engineering, Weisbaden, Germany, Vol. 3, pp. 135-137 (1963).
24. Chehab, A.G., and El Naggar, M.H., “Design of efficient base isolation for hammers and presses,” Soil Dynamics and Earthquake Engineering, Vol. 23, No. 2, pp. 127-141 (2003).
25. Coyle, H.M., and Reese, L.C., “Load transfer for axially loaded piles in clay,” Journal of the soil Mechanics and Foundation Division, Vol. 92, No. 2, pp. 1-26 (1966).
26. Coyle, H.M., and Sulaiman, I.H., “Skin friction for steel piles in sand,” Journal of Soil Mechanics and Foundation Division, Vol. 93, No. 6, pp. 261-278 (1967).
27. Das, B.M., Principles of Geotechnical Engineering, Cengage Learning, U.S.A., pp. 641 (2010).
28. Ewing, W.M., Jardetzky, W. S., and Press, P., “Elastic waves in layered media, ” McGraw-Hill, New York, pp. 380 (1957).
29. Fioravante, V., “On the shaft friction modelling of non-displacement piles in sand,” Soils and Foundations, JGS, Vol. 42, No. 2, pp. 23-33 (2002).
30. Kim, D.S., and Lee, J.S., “Propagation and attenuation characteristics of various ground vibrations,” Soil Dynamics and Earthquake Engineering, Vol. 19, pp. 115-126 (2000).
31. Kramer, S.L., Geotechnical Earthquake Engineering, Prentice-Hall International Series in civil Engineering Mechanics, Upper Saddle River, New Jersey, pp. 174-180 (1996).
32. Li, Y., and Qiang, S., “Dynamics of wind-rail vehicle-bridge systems,” Journal of Wind Engineering and Industrial Aerodynamics, Vol. 93, Issue. 6, pp. 483-507 (2005).
33. Miller, G.F., and Pursey, H., "On the partitioning of energy between elastic waves in a semi-infinite solid," Proceedings of the Royal Society of London, London, U.K., Series A 233, pp. 55-69 (1955).
34. Nowak, E.R., Knight, J.B., Povinelli, M.L., Jaeger, H.M., and Nagel, S.R., “Reversibility and irreversibility in the packing of vibrated granular material,” Powder Technology, Vol. 94, pp. 79-83 (1997).
35. O’Rourke, T.D., and Kulhawy, F.H., “Observations on load tests on drilled shafts,” Drilled Piers and Caissons II, New York, pp. 113-128(1985).
36. Parry, R.H., and Swain, C.W., “Effective stress method of calculating skin friction on driven piles in soft clay,” Ground Engineering, Vol. 4, pp. 24-26 (1977).
37. Poulos, H.G., and Davis, E.H., Pile Foundation Analysis and Design, Wiley, New York, pp. 125 (1980).
38. Randolph, M.F., and Wroth, C.P., “Application of the failure state in undrained simple shear to the shaft capacity of driven piles,” Géotechnique, Vol. 31, No. 1, pp. 143-157 (1981).
39. Randolph, M.F., and Wroth, C.P., “Analysis of deformation of vertically loaded piles,” Journal of the Geotechnical Engineering Division, Vol. 104, No. 12, pp. 1465-1488 (1978).
40. Richart, D.W., “Dynamic effect of pile installations on adjacent structures,” NCHRP Synthesis Report 253, Washington, U.S.A. (1997).
41. Seed, H.B., and Reese, L.C., “The action of soft clay along friction piles,” Transaction of ASCE, Vol. 122, No. 2882, pp. 731-764 (1957).
42. Terzaghi, K., Theoretical Soil Mechanics, John Wiley and Sons, New York (1943).
43. Theissen, J.R., and Wood, W.C., “Vibration in structures adjacent to pile driving,” Dames and Moore Engineering, Bulletin, No. 60, pp. 4-21 (1982).
44. Tomlinson, M.J., “Some Effects of pile driving on skin friction,” Proceedings of the Conference on Behavior of Piles, London, U.K., pp. 107-114 (1971).
45. Verhas, H.P., “Prediction of the propagation of train-induced ground vibration,” Journal of Sound and Vibration, Vol. 66, pp. 371-376 (1979).
46. Vesic, A.S., Design of pile foundation, Synthesis of Highway Practice 42, National Cooperative Highway Research Program, Transportation Research Board, National Research Council, Washington D.C. (1977).
47. Wernick, E., “Skin friction of cylindrical anchors in non-cohesive soils,” Symposium on Soil Reinforcing and Stabilising Techniques, Sydney, Australia, pp. 201-219 (1978).
48. Wiss, J.F., “Construction vibrations: state-of-the-art,” Journal of Geotechnical Engineering Division, ASCE, Vol. 107, No. GT2 (1981).
49. Woods, R.D., and Jedele, L.P., “Energy attenuation from construction vibrations,” Vibration Problems in Geotechnical Engineering, pp. 229-246 (1985).
50. Xia, H., Zhang, N., and Cao, Y.M., “Experimental study of train-induced vibrations of environments and buildings,” Journal of Sound and Vibration, Vol. 280, No. 3-5, pp. 1017-1029 (2005).
51. Yoshimi, Y., and Kishida, T., “Friction between sand and metal surface, 10th ICSMFE, Stockholm, Sweden, pp. 831-834 (1981).
|