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Geo-archaeological markers reveal magnitude and rates of Israeli coastal cliff erosion and retreat

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Abstract

Geo-archaeological studies along the Mediterranean coast of Israel and its seabed have revealed shipwrecks, anchorages, coastal installations and natural features that can act as markers to estimate the formation date and retreat rates of the coastal cliff of central Israel. The Sharon coastal ridge consists of alternating layers of kurkar (local term for aeolian carbonate-cemented, quartz sandstone) and poorly consolidated palaeosol deposits. The ridge was formed during the Late Pleistocene (about 70,000 to 10,000 yr. BP). At about 7,500 yr. BP, sea level reached the western edge of the present coastal ridge, currently located about 8 m below the present sea level, and a coastal cliff developed. Since then the cliff has continuously been eroded and retreated eastward by natural processes, as well as by anthropogenic impact. This article is an interdisciplinary geo-archaeological study of the extent and rates of retreat of the coastal cliff over the last 7,500 years. The findings suggest that overall the cliff has retreated about 730 m in this period, at an average rate of 9.7 cm/yr. However, the study shows that a considerably higher rate of cliff retreat occurred between about 7,500 and 3,900 yr. BP (about 650 m in about 3,600 years, at about 18 cm/yr). Sea level reached its present level at about 4,000 yr. BP (Middle Bronze Age) and has not changed significantly since. Since the Middle Bronze Age, the cliff has retreated about 80 m in 3,900 years (at about 2 cm/yr). Human activity and sea level rise during the last 100 years have significantly accelerated coastal erosion and cliff retreat.

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References`

  • Almagor G (1979) Relict sandstone of Pleistocene age on the continental shelf of northern Sinai and Israel. Isr J Earth Sci 28:70–76

    Google Scholar 

  • Almagor G, Hall JK (1980) Morphology of the continental margin off northern Israel and southern Lebanon. Isr J Earth Sci 29(4):245–252

    Google Scholar 

  • Almagor G, Hall JK (1984) Morphology and bathymetry of the Mediterranean continental margin of Israel. Geol Surv Isr Bull 77, Jerusalem, 31 pp

    Google Scholar 

  • Almagor G, Perath I (2016) The Mediterranean coast of Israel. Geol Surv Isr, Rep GSI/28/2016, Jerusalem, 469 pp (in Hebrew)

  • Arkin Y, Michaeli L (1985) Short- and long-term erosional processes affecting the stability of Mediterranean coastal cliffs of Israel. Eng Geol 21:153–174

    Article  Google Scholar 

  • Bard KA, Fattovich R, (2007) Chapter 9, Synthesis. In: Bard KA, Fattovich R, (eds) Harbor of the pharaohs to the land of Punt: archaeological investigations at Mersa/Wadi Gawasis, Egypt, 2001–2005, pp 239-253

  • Bard E, Hamelin B, Fairbanks RG, Zindler A (1990) Calibration of the 14C timescale over the past 30,000 years using mass spectrometric U-Th ages from Barbados corals. Nature 345:405–409

    Article  Google Scholar 

  • Bard E, Hamelin B, Arnold M, Montaggioni L, Cabioch G, Faure G, Rougerie F (1996) Deglacial Sea-level record from Tahiti corals and the timing of global melt water discharge. Nature 382:241–244

    Article  Google Scholar 

  • Barkai O, Katz O, Mushkin A, Goodman-Tchernov BN (2017) Erosion of archaeological sites along the Israeli Mediterranean coastline and its application for assessing long-term retreat rates of the sea cliff. Geoarchaeology 2017:1–14

    Google Scholar 

  • Ben-Avraham Z, Hall JK (1977) Geophysical survey of Mount Carmel and its extension into the eastern Mediterranean. J Geophys Res 82(5):793–802

    Article  Google Scholar 

  • Bruun P (1962) Sea-level rise as a cause of shore erosion. J Waterw Harbours Div 88(1–3):117–130

    Google Scholar 

  • Church J, White N (2011) Sea-level rise from the late 19th to the early 21st century. Surv Geophys 32:585–602

    Article  Google Scholar 

  • De Conto RM, Pollard D (2016) Contribution of Antarctica to past and future sea-level rise. Nature 531:591–597

    Article  Google Scholar 

  • Engelmann A, Neber A, Frenchen M, Boenigk W, Ronen A (2001) Luminescence chronology of Upper Pleistocene and Holocene aeolianites from Netanya South Sharon coastal plain, Israel. Quat Sci Rev 20:799–804

    Article  Google Scholar 

  • Fairbanks RG (1989) A 17,000-year Glacio-Eustatic Sea-level record: influence of glacial melting rates on the younger Dryas event and deep-ocean circulation. Nature 342:637–642

    Article  Google Scholar 

  • Flemming NA, Raban A, Goetschel C (1978) Tectonic and eustatic changes on the Mediterranean coast of Israel in the last 9,000 years. In: Gamble JC, Yorke RA (eds), progress in underwater science, Vol. 3 (new series) of the report of the underwater association, proceedings of the 11th symposium at the British museum (natural history), 33–93

  • Frenchen M, Dermann B, Boenigk W, Ronen A (2001) Luminescence chronology of aeolianites from the section at Givat Olga coastal plain of Israel. Quat Sci Rev 20:805–809

    Article  Google Scholar 

  • Frenchen M, Neber A, Dermann B, Tsatskin A, Boenigk W, Ronen A (2002) Chronostratigraphy of aeolianites from the Sharon coastal plain of Israel. Quat Int 89:31–44

    Article  Google Scholar 

  • Frost H (1970) Bronze-age stone anchors from the eastern Mediterranean. Dating and identification. Mariners Mirror 56:381–385

    Google Scholar 

  • Frost H (1973) Anchors, the potsherds of marine archaeology: on the recording of pierced stones from the Mediterranean. In: Blackman D, (ed), Marine Archaeology, London, 397–409

  • Fugro Engineers BV (1998) Geotechnical survey, offshore sand resources, Israel. Report N-3607/01F: 4 pans appendices 1, 4, 5.

  • Galili E (1985a) A group of stone anchors from Newe-yam. Int J Naut Archaeol 14.2:143–153

    Article  Google Scholar 

  • Galili E (1985b) Clay exposures and archaeological finds on the sea bottom, between Haifa and Atlit. Unpublished MA Thesis, Dept. of Maritime Civilizations, University of Haifa, Israel (in Hebrew)

  • Galili E (2004) PhD Dissertation, Faculty of Humanities, Department of Archaeology and Near- Eastern cultures, Tel Aviv University, Submerged settlements of the ninth-seventh mill. BP off the Carmel coast (in Hebrew)

  • Galili E, Arenson S (2014) Ancient coastal and underwater sites on the Mediterranean coast of Israel: risk assessment, protection, salvage excavations and conservation of endangered maritime cultural resources: Part I - Riparia 0:151–177 http://hdl.handle.net/10498/17040

  • Galili E, Arenson S (2015) Ancient coastal and underwater sites on the Mediterranean coast of Israel: risk assessment, protection, salvage excavations and conservation of endangered maritime cultural resources: Part II - Riparia 1:55–96 http://hdl.handle.net/10498/17335

  • Galili E, Nir Y (1993) The submerged pre-pottery Neolithic water well of Atlit-yam, northern Israel, and its palaeoenvironmental implications. The Holocene 3:265–270

    Article  Google Scholar 

  • Galili E, Rosen B (2010) Preserving the maritime cultural heritage of the Mediterranean, a cradle of cultures, religions and civilizations - the holy land perspective. J Coast Conserv 14:303–315

    Article  Google Scholar 

  • Galili E, Sharvit J (1989) Ancient coastal installations and the tectonic stability of the Israeli coast in historical times. In: Stewart IS, Vita-Finzi C (eds) Coastal Tectonics, Geological Society, vol 146. Special Publications, London, pp 147–163

  • Galili E, Weinstein-Evron M, Ronen A (1988) Holocene Sea-level changes based on submerged archaeological sites off the northern Carmel coast in Israel. Quat Res 29:36–42

    Article  Google Scholar 

  • Galili E, Dahari U, Sharvit J (1993a) Underwater surveys and rescue excavations along the Israeli coast. Int J Naut Archaeol 22:61–77

    Article  Google Scholar 

  • Galili E, Weinstein-Evron M, Hershkovitz I, Gopher A, Kislev M, Lernau O, Kolska Horowitz L, Lernau H (1993b) Atlit-yam: a prehistoric site on the sea floor off the Israeli coast. J Field Archaeol 20:133–156

    Google Scholar 

  • Galili E, Sharvit J, Artzy M (1994) Reconsidering Byblian and Egyptian stone anchors using numeral methods: new finds from the Israeli coast. Int J Naut Archaeol 23.2:93–107

    Article  Google Scholar 

  • Galili E, Raban A, Sharvit J (2002) Forty years of marine archaeology in Israel. In: Tzalas H (ed) Tropis VII, Proceedings of 7th international symposium on ship construction in antiquity. Pylos 1999, 927–961

  • Galili E, Zviely D, Weinstein-Evron M (2005) Holocene Sea-level changes and landscape evolution on the northern Carmel coast (Israel). Mediterranée 1.2–2005:1–8

    Google Scholar 

  • Galili E, Kolska-Horwitz L, Eshed V, Rosen B, Hershkovitz I, (2015a) Submerged prehistoric settlements off the Mediterranean coast of Israel, Skyllis, 13 Jahrgang 2013 Heft 2 pp 181–204

  • Galili E, Sevketoglu M, Salamon A, Zviely D, Mienis HK, Rosen B, Moshkovitz S (2015b) Late Quaternary morphology, beach deposits, sea-level changes and uplift along the coast of Cyprus and its possible implications on the early colonists. In: Harff J, Bailey G, Lüth F (eds) Geology and Archaeology: submerged landscapes of the continental shelf, vol 411. Geological Society, London, Special Publications, pp 179–218

    Google Scholar 

  • Galili E, Kolska-Horwitz L, Rosen B, Eshed V (2017), Submerged Pottery Neolithic settlements off the Mediterranean Coast of Israel., In Bailey G, Harff J, Sakellariou D (eds) Under the Sea: Archaeology and Palaeolandscapes of the Continental Shelf, Cham, Switzerland, pp 105–130

  • Gill D, Almagor G (2002) The geological infrastructure of the coastal escarpment, factors affecting its retreat and methods of its preservation. Geol Surv Isr Rep GSI/21/2002, Jerusalem (in Hebrew)

    Google Scholar 

  • Grossmann E (1997) Maritima Apollonia (Arsuf) and its harbours. Mariner's Mirror 83:80–83

    Google Scholar 

  • Gvirtzman G, Shachnai E, Bakler N, Ilani S (1984) Stratigraphy of the Kurkar group (quaternary) of the coastal plain of Israel. Geol Surv Isr Curr Res 1983-4:70–82

    Google Scholar 

  • Katz O, Mushkin A (2013) Characteristics of sea-cliff erosion induced by a strong winter storm in the eastern Mediterranean. Quat Res 80:20–31

    Article  Google Scholar 

  • Katz O, Hecht H, Petranker G, Almog E (2007) Retreat rate of the Israeli coastal cliff and its estimated location at 2100. Geol Surv Isr Rep GSI/21/07, Jerusalem, 34 pp (In Hebrew, abstract in English)

  • Katz O, Mushkin A, Crouvi O, Shemesh R (2016) The background and modern retreat rates of Israel’s coastal cliffs and a new method for effective monitoring of changes in rates. Geol Surv Isr Rep GSI/26/2016, Jerusalem

    Google Scholar 

  • Klein M, Zviely D (2001) The environmental impact of marina development on adjacent beaches: a case study of the Herzliya marina Israel. Appl Geogr 21:145–156

    Article  Google Scholar 

  • Lambeck K, Bard E (2000) Sea-level change along the French Mediterranean coast for the past 30,000 years. Earth Planet Sc Lett 175:203–222

    Article  Google Scholar 

  • Lambeck K, Purcell A (2005) Sea-level change in the Mediterranean Sea since the LGM: model predictions for tectonically stable areas. Quat Sci Rev 24:1969–1988

    Article  Google Scholar 

  • Lambeck K, Yokoyama Y, Purcell T (2002) Into and out of the last glacial maximum: sea-level change during oxygen isotope stages 3 and 2. Quat Sci Rev 21:343–360

    Article  Google Scholar 

  • Lambeck K, Antonioli F, Purcell A, Silenzi S (2004) Sea-level change along the Italian coast for the past 10,000 yr. Quat Sci Rev 23:1567–1598

    Article  Google Scholar 

  • Marriner N, Morhange C, Boudagher-Fadel M, Bourcier M, Carbonel P (2005) Geoarchaeology of Tyre’s ancient northern harbour, Phoenicia. J Archaeologi Sci 32:1302–1132

    Article  Google Scholar 

  • Mauz B, Hijma MP, Amorosi A, Porat N, Galili E, Bloemendal J (2013) Aeolian beach ridges and their significance for climate and sea level: concept and insight from the Levant coast (East Mediterranean). Earth-Sci Rev 121:31–54

    Article  Google Scholar 

  • Mirkin D, Cvikel D, Tal O (2016) Arsur castle maritime installation (1241-1265 CE). Palest Explor Q 148.4:294–312

    Article  Google Scholar 

  • Morhange C, Laborel J, Hesnard A (2001) Changes of relative sea-level during the past 5,000 years in the ancient harbor of Marseilles, southern France. Palaeogeogr Palaeocl 166:319–329

    Article  Google Scholar 

  • Morhange C, Pirazzoli PA, Marriner N, Montaggioni LF, Nammour T (2006) Late Holocene relative sea-level changes in Lebanon, eastern Mediterranean. Mar Geol 230:99–114

    Article  Google Scholar 

  • Neev D, Almagor G, Arad A, Ginsburg A, Hall JK (1976) The geology of the southeastern Mediterranean Sea. Geol Surv Isr Bull 68, Jerusalem, 51 pp

    Google Scholar 

  • Neev D, Bakler N, Emery KO (1987) Mediterranean coast of Israel and Sinai. Taylor & Francis, New York, 130 pp

    Google Scholar 

  • Perath I (1982) Rate of retreat of the Sharon escarpment - a new method of measurements. In: Erlich A, Katz B, (eds), Geol Surv Isr, Curr Res 1982, Jerusalem, 62–65

  • Perath I, Almagor G (2000) The Sharon escarpment (Mediterranean coast, Israel): stability, dynamics, risks and environmental management. J Coast Res 16:207–224

    Google Scholar 

  • Pirazzoli PA (1991) World atlas of Holocene sea-level changes. Elsevier Oceanography Series 58, Elsevier, Amsterdam, 299 pp

    Google Scholar 

  • Porat N, Wintle AG, Rite M (2004) Mode and timing of kurkar and hamra formation, central coastal plain, Israel. Isr J Earth Sci 53:13–25

    Article  Google Scholar 

  • Rohling EJ, Fenton M, Jorissen FJ, Bertrand P, Ganssen G, Caulet JP (1998) Magnitude of sea-level lowstands of the past 500,000 years. Nature 394:162–165

    Article  Google Scholar 

  • Roll I (1999) Introduction: history of the site, its research and excavations. In: Roll I, Tal O, (eds) (1999) Apollonia-Arsuf, final report of the excavations, Volume 1: The Persian and the Hellenistic Periods, Emery and Clair Yass Publications in Archaeology: 1–62

  • Ronen A (1977) Mousterian sites in the red loam in the coastal plain of Mount Carmel. In: Arensburg B, Bar-Yosef O, (eds), Eretz Israel - archaeological, historical, and geographical studies, Israel Exploration Society Publication 13 (Moshe Stekelis Volume):183–190

  • Ronen A (1980) The origin of the reddish pelecypod beds along the Mediterranean coast of Israel. Paléorient 6:163–170

    Article  Google Scholar 

  • Ronen A (2011) An AMS of the "Café-au-Lait" paleosol (Nahsholim horizon) in the Sharon coastal plain, Israel, (poster). Radiocarbon Archaeology, 6th international Symposium, 10–15.4.2011, Paphos, Cyprus

  • Sivan D, Widowinski S, Lambeck K, Galili E, Raban A (2001) Holocene Sea-level changes along the Mediterranean coast of Israel, based on archaeological observations and numerical model. Palaeogeogr Palaeocl 167:101–117

    Article  Google Scholar 

  • Sivan D, Lambeck K, Toueg R, Raban A, Porath Y, Shirnam B (2004) Ancient coastal wells of Caesarea Maritima, Israel, an indicator for relative sea level changes during the last 2000 years. Earth Planet Sc Lett 222(1):315–330

    Article  Google Scholar 

  • Zazzaro C (2007) Stone anchors and pierced stones. In: Bard KA, Fattovich R (eds) Harbor of the pharaohs to the land of punt: archaeological investigations at Mersa/Wadi Gawasis, Egypt. Università degli Studi di Napoli “l’Orientale”, Naples, pp 2001–2005

    Google Scholar 

  • Zviely D, Klein M (2004) Coastal cliff retreat rates at Beit-Yannay, Israel, in the 20th century. Earth Surf Process Landf 29:175–184

    Article  Google Scholar 

  • Zviely D, Klein M, Rosen DS (2000) The impact of the Herzliya marina, Israel, on the width of its neighbouring beaches. 27th international conference on coastal engineering (ICCE), book of abstracts, Vol. 2, poster no. 62, Sydney (16-21.7.2000)

    Google Scholar 

  • Zviely D, Sivan D, Ecker A, Bakler N, Rohrlich V, Galili E, Boaretto E, Klein M, Kit E (2006) The Holocene evolution of Haifa Bay area, Israel, and its influence on the ancient human settlements. The Holocene 16(6):849–861

    Article  Google Scholar 

  • Zviely D, Kit E, Klein M (2007) Longshore sand transport estimates along the Mediterranean coast of Israel in the Holocene. Mar Geol 238:61–73

    Article  Google Scholar 

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Acknowledgments

The authors wish to thank the Israel Antiquities Authority and the University of Haifa for the institutional support, and to Dr. Burch Rosen, Dr. Gideon Almagor and the anonymous reviewer, for their useful comments, that helped us improving the manuscript.

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Galili, E., Zviely, D. Geo-archaeological markers reveal magnitude and rates of Israeli coastal cliff erosion and retreat. J Coast Conserv 23, 747–758 (2019). https://doi.org/10.1007/s11852-018-0644-7

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