Application of Geographic Information Systems, ground penetrating radar and transient electromagnetic methods for locating water supply structures at the ancient site of Aptera in Crete
DOI:
https://doi.org/10.21701/bolgeomin.125.3.001Keywords:
ancient water supply, Aptera, geophysics, ground penetration radar, transient electromagnetic methodAbstract
The ancient town of Aptera is located in the western part of the island of Crete. The prominent size of the Lshaped cistern that is visible today suggests an intensive domestic use of water. The existing research on the method of water supply for the cistern is inconclusive. There is no indication of the existence of remnants of either rain harvesting structure or an aqueduct. Therefore it is wide open area for research and field investigations. The developed hypothesis suggests the collection of the surface runoff for filling the cistern.
Developed Geographic Information Systems (GIS) is a terrain-based hydrologic model which outlined a possible drainage area to the main L-shaped cistern in Aptera. When the delineated area was overlain on the contemporary map of Aptera it showed the coincidence between the lower drainage area boundary and the modern road leading to Aptera. The end of the modern road almost touches the corner of the cistern. This coincidence indicates a possibility of the existence of a water supply structure that could be used to fill the cistern with the surface runoff.
We applied two geophysical methods to identify the possible structure: Ground Penetrating Radar (GPR) and the Transient Electromagnetic Method (TEM). Preliminary results show a strong and complementary signal returns along the road from both methods, mapping different depth layers of the subsurface. The combined application of GIS and geophysical methods shows complimentary benefits for locating subsurface features when they are associated with the surface characteristics of the terrain.
Downloads
References
Abu-Zreiga, M., Attomb, M., Hamasha, N. 2000. Rainfall harvesting using sand ditches in Jordan. Agricultural Water Management, 46, 183-192. https://doi.org/10.1016/S0378-3774(00)00082-2
Annan, A.P. and Davis, J.L. 1976. Impulse radar sounding in permafrost. Radio Science, 11, 383-394. https://doi.org/10.1029/RS011i004p00383
Davis, J.L. and Annan, A.P. 1989. Ground penetrating radar for high resolution mapping of soil and rock stratigraphy. Geophysical Prospecting, 37, 531-551. https://doi.org/10.1111/j.1365-2478.1989.tb02221.x
Barsukov, P.O., Fainberg, E.B., Khabensky E.O. 2007. Shallow investigation by TEM-FAST technique: methodology and case histories. In: Spichak V.V. (ed) Methods of geochemistry and geophysics.Elsevier, 55-77. https://doi.org/10.1016/S0076-6895(06)40003-2
Carluer, N., DeMarsily, G. 2004. Assessment and modelling of the influence of man-made networks on the hydrology of a small watershed: implications for fast flow components, water quality and landscape management Journal of Hydrology, 285, 76-95. https://doi.org/10.1016/j.jhydrol.2003.08.008
Digital Crete. Institute for Mediterranean Studies, Archaeological Atlas of Crete. http://digitalcrete.ims.forth.gr/si-tes_display.php?id=1144&l=1.
Gikas, P., Christodulakos, Y., Gikas, V., and Angelakis, A. N. 2009. Water Supply in the Roman City of Aptera, Crete, Greece. In: Proc. of the 2nd IWA International Symposium on Water and Wastewater Technologies in Ancient Civilizations, May 28-30, 2009, Bari, Italy.
Goodman, D., Nishimura, Y. and Rogers, J. D. 1995. GPR time slices in archaeological prospection. Archaeological Prospection, 2, 85-89. https://doi.org/10.1002/1099-0763(199506)2:2<85::AID-ARP6140020204>3.0.CO;2-#
Gorokhovich, Y., Alexopoulos, A., Gikas, V., Angelakis A., Gikas P. 2012. Water Supply and Use in the Roman City of Aptera, Crete, Greece: the mystery of the ancient water system. In: Proc. of the 3d IWA International Symposium on Water and Wastewater Technologies in Ancient Civilizations, March 22-24, 2012, Istanbul, Turkey.
Kanta, A., Soupios, P., Barsukov P., Kouli, M. and Vallianatos F. 2013. Aquifer characterization using shallow geophysics in the Keritis Basin of Western Crete, Greece, Environmental Earth Sciences (Springer). https://doi.org/10.1007/s12665-013-2503-z
Kaufman, A, Keller, G. 1983. Frequency and Transient Soundings. Methods in Geochemistry and Geophysics, Elsevier, Amsterdam.
Kedar, Y. 1957. Ancient agriculture at Shivtah in the Negev. Israel Exploration Journal, 7(3), 178-189.
Leckebusch, J. 2003, Ground-penetrating radar: a modern three-dimensional prospection method. Archaeological Prospection, 10: 213-240. https://doi.org/10.1002/arp.211
Leggo, P.J. 1982. Geological applications of ground impulse radar. Transactions of the Institute of Mining and Metallurgy; B: Applied Earth Sciences, 91, B1-5.
Nabighian, M.N., Macnae J.C. 1991. Time domain electromagnetic prospecting methods. Electromagnetic methods in Applied Geophysics, Tulsa, 427-520. https://doi.org/10.1190/1.9781560802686.ch6
Nagata, T., Rock Magnetism, Maruzen, Tokyo, 1961.
Neel, L. 1950. Theorie du trainage magnetique des substances massives dans le domaine Le Rayleigh. Journal de Physique et le Radium, 2, 49. https://doi.org/10.1051/jphysrad:0195000110204900
Niniou-Kindeli, V. and Christodoulakos, Y. 2004. [Roman Aptera - An Initial Approximation]. International Conference, Creta Romana e Protobizantina, Heraclion, Greece, Bottega d'Erasmo, Padova, Italy, (In Greek).
Olsson, O., Sandberg, E. and Nilsson, B. 1983. The use of borehole radar for the detection of fractures in crystalline rock. Stripa Project Report, IR-83-06, SKB, Stockholm, Sweden.
Schultz, J. J. 2012. The Application of Ground-Penetrating Radar for Forensic Grave Detection, in A Companion to Forensic Anthropology (ed D. C. Dirkmaat), John Wiley & Sons, Ltd, Chichester, UK. https://doi.org/10.1002/9781118255377.ch4
Soupios, P, Kalisperi D, Kanta A, Kouli M, Barsukov P, Vallianatos F. 2010. Coastal aquifer assessment based on geological and geophysical survey, North Western Crete, Greece. Environmental Earth Sciences, 61(1), 63-77. https://doi.org/10.1007/s12665-009-0320-1
Toulouse, J.H. 1945. Archaeology Early Water Systems at Gran Quivira National Monument. American Antiquity, 10(4), 362-372. https://doi.org/10.2307/275578
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Consejo Superior de Investigaciones Científicas (CSIC)

This work is licensed under a Creative Commons Attribution 4.0 International License.
© CSIC. Manuscripts published in both the print and online versions of this journal are the property of the Consejo Superior de Investigaciones Científicas, and quoting this source is a requirement for any partial or full reproduction.
All contents of this electronic edition, except where otherwise noted, are distributed under a Creative Commons Attribution 4.0 International (CC BY 4.0) licence. You may read the basic information and the legal text of the licence. The indication of the CC BY 4.0 licence must be expressly stated in this way when necessary.
Self-archiving in repositories, personal webpages or similar, of any version other than the final version of the work produced by the publisher, is not allowed.






