3D Finite Elements Technique for Collapse Causes of the Pylons in Egyptian Temples: A Study of the Great Pylon of Ramesseum Temple, Luxor, Egypt
- 1 Archaeological Conservation Department, Faculty of Archaeology, South Valley University, Qena, Egypt
Abstract
This research presents damage causes of the pylons in the ancient Egyptian temples based on 3D finite elements analysis. The main purpose of the research determines the failure causes of the first pylon of the Ramessium temple, which is situated in Upper Egypt, at Luxor “Thebes” on the west bank of the Nile River. The first pylon of Ramessium temple subjected to seismic activity effects on long term, combined with several structural damage factors such as the defects resulting from the construction technique, where the builder used the poor quality of stones in foundations of the pylon, the building materials residue was used as filler for the core of the pylon walls, and it lacked vertical joints between the courses. In addition to it founded on alluvial soil that is vulnerable to contaminated water, it is still suffering damage factors and urban trespasses at the moment. All of the former factors helped the pylon to be affected by the earthquakes loads that occurred on it. The structural behavior of the pylon under self-weight and earthquakes loads were carried out by Numerical analysis to find out the loads and stresses which caused collapsing of the pylon. Results of the study indicated that the pylon subjected to a horizontal displacement due to old earthquakes force, led to collapse of the pylon. Finally, the study represents use of modern technique to study the structural behavior of the most important architectural units in ancient Egyptian temples to identify the causes of its collapse.
- Mapunda, B.B. (1996) An Archaeological View of the History and Variation of Ironworking in South Western Tanzania. https://elibrary.ru/item.asp?id=5616259
- Kuentz, C. (1928) La bataille de Qadech: Les texts.
- Lipinska, J. (1969) Amenemone, Builder of the Ramesseum. étude et Travaux, 3, 42-49.
- Mohamed, E. (2014) The Conservation Methods of Archaeological Buildings Situated within Urban Surroundings in Cairo, with Application on Case Studies of the Archaeological Islamic Buildings, Located Saladin’s Square. A Thesis for the Degree of Doctor of Philosophy, Archaeology Conservation Department, Faculty of Archaeology, S.V.U University, Tirupati.
- Hemeda, S. (2019) 3D Finite Element Coupled Analysis Model for Geotechnical and Complex Structural Problems of Historic Masonry Structures: Conservation of Abu Serga Church, Cairo, Egypt. Heritage Science, 7, Article No. 6. https://doi.org/10.1186/s40494-019-0248-z
- Hemeda, S. and Atalaa, T.A.E.M. (2019) Intervention Retrofitting and Rehabilitation of Al-Gawhara Palace at the Saladin Citadel, Cairo, Egypt. Open Journal of Geology, 9, 109-141. https://doi.org/10.4236/ojg.2019.93009 http://www.scirp.org/journal/paperinformation.aspx?paperid=90923
- Ukasha, T. (1990) Egyptian Art. The Egyptian General Book Organization, 344.
- Tawfik, S. (1990) History of Architecture in Ancient Egypt (Luxor), Dar al-Nahda al-Arabiya.
- Arnold, D. (1991) Building in Egypt: Pharaonic Stone Masonry. Oxford University Press on Demand, Oxford. https://books.google.com.eg/books?hl
- Shaw, I. and Nicholson, P.T. (2008) The British Museum Dictionary of Ancient Egypt. British Museum Press, London.
- Arnold, D. (2003) The Encyclopaedia of Ancient Egyptian Architecture. Siglo XXI.
- Carruthers, W. (2009) Walter Bryan Emery and the History of Egyptology. Antiquity, p. 83.
- Shaw, I. and Nicholson, P.T. (2000) Ancient Egyptian Materials and Technology. Cambridge University Press, Cambridge.
- Stocks, D.A. (2013) Experiments in Egyptian Archaeology: Stone Working Technology in Ancient Egypt. Routledge, Abingdon-on-Thames. https://books.google.com.eg/books?id
- Golvin, J.C. (1995) Enceintes et portes monumentales des temples de Thèbes à l’époque ptolémaïque et romaine. Na.