{"id":474218,"date":"2026-09-26T10:03:59","date_gmt":"2026-09-26T17:03:59","guid":{"rendered":"https:\/\/climatescience.press\/?p=474218"},"modified":"2026-09-26T12:39:47","modified_gmt":"2026-09-26T19:39:47","slug":"jericho-11000-years-of-survival-against-climate-extremes","status":"publish","type":"post","link":"https:\/\/climatescience.press\/?p=474218","title":{"rendered":"Jericho: 11,000 Years of Survival Against Climate Extremes"},"content":{"rendered":"\n<figure class=\"wp-block-image size-large\"><img data-recalc-dims=\"1\" loading=\"lazy\" decoding=\"async\" width=\"723\" height=\"485\" data-attachment-id=\"474219\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474219\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?fit=1168%2C784&amp;ssl=1\" data-orig-size=\"1168,784\" data-comments-opened=\"1\" data-image-meta=\"{&quot;aperture&quot;:&quot;0&quot;,&quot;credit&quot;:&quot;\\u00fe&quot;,&quot;camera&quot;:&quot;&quot;,&quot;caption&quot;:&quot;Signature: 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&quot;,&quot;created_timestamp&quot;:&quot;0&quot;,&quot;copyright&quot;:&quot;&quot;,&quot;focal_length&quot;:&quot;0&quot;,&quot;iso&quot;:&quot;0&quot;,&quot;shutter_speed&quot;:&quot;0&quot;,&quot;title&quot;:&quot;&quot;,&quot;orientation&quot;:&quot;0&quot;,&quot;alt&quot;:&quot;&quot;}\" data-image-title=\"0 Jericho 11,000 Years of Survival Against Climate Extremes\" data-image-description=\"\" data-image-caption=\"&lt;p&gt;Signature: SDkfsia\/+XEoi92LG6huvMOxxyt88ECJ+BCfnzoa4Pf7LkrTxiRKE\/y1c9ZOeBhRgrhDZv42rddcLB3TRA8WHRwldS3QP\/Sda9sSVKvki86LGDkNBNyZgA5Ne86HF2k8oPRmTsC6f3045Lxmoe3dOE+dD5iAC\/aWnFSQBpAuGQUuoFWqbnO3ySIk5LgBT7Hj5rjaodTRlVK2n+7ABL6XUmLTAOS1b7gLdv7N1JQzGaeOoL50USJksVVxan0Y\/vFEyG7iUnYDGdqxL1TOrA5MqY9\/\/EUsGVnRu7klLNjKHJ8GPnKYc1NgatmIq6drYo7hWYgBL1nxi4fMAfCOOTOLrVwpVtnn\/QjBNxCmkKb0Na9EOWq7iPQdd262\/6Hy4TFjW5fInsmAJkDx27F+mIDea84OC\/jOLXbOlo7BjAbKsoJFDN2ToqlL+ToJlqFivAr2n8t+bEwHMkNshM8OdnPNEalnSCWtBC36kiyYsad1s7KNFBVbXuagEnCq3WT4gqFHr6Czc1XO23WTT+fZsadjzA2ZIsXFEmJelB8MkSTq6SwU4Hi+JeoXlKJbO1txOcpSnqrnBfsaCoQPUcTk5Xy8rBeTBxDktNGO5h0K6IlfR2MHg4KDNXIAigeVV3m6EKzilKSnuffRvlbFtn62Qb\/tDDuECA10tpjucON3HYPoryd6Eud0U9LB6mmc4WxuzdR2VHACcXyF+d\/wvHipTrm87OfRqeIIWBYC+X4\/NgfL6reZJZjoNWPIof7BR66p1D6TU8VWBDOs1EI9pUBOV2owwO\/IbTXGDUMKr2Fww8K5kUp3iC68wZvtvQBafBJb6AgiHLyTTdTByo5RiNwbOtpq1yXR8Ck+df\/7m95CwtVqV7Cbz\/XuEnBNDhz3HRRgoSe9UvzJ+jSPENmlfC2zRvGqDibcYNcOWoYJwa9\/26EzOB5ZnWS6UcXsN9LXJGZo\/pbV&lt;\/p&gt;\n\" data-large-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?fit=723%2C485&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes-1024x687.jpg?resize=723%2C485&#038;ssl=1\" alt=\"An artistic representation of Jericho, showcasing the ancient tower and city ruins surrounded by palm trees and a water stream, with a panoramic view of desert landscapes in the background. The image highlights '11,000 Years of Survival Against Climate Extremes,' featuring various historical milestones from Neolithic to modern Jericho along the top.\" class=\"wp-image-474219\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?resize=1024%2C687&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?resize=300%2C201&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?resize=768%2C516&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?resize=640%2C430&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?w=1168&amp;ssl=1 1168w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\">AI generated by Grok<\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Jericho (specifically the archaeological site of Tell es- Sultan, Ancient Jericho, near the modern city in the West Bank) is widely recognized as one of the oldest continuously inhabited settlements in the world, with archaeological evidence of human presence dating back more than 11,000 years.<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Key points from the archaeological record:<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">The earliest evidence points to Natufian hunter- gatherer activity and the beginnings of permanent settlement between roughly 10,500- 9,000 BCE (around 12,500- 11,000 years ago), associated with the nearby perennial spring of \u02bfAin es- Sultan.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">By the Pre- Pottery Neolithic A period (c. 8500- 7500 BCE), it had developed into a substantial fortified settlement with a stone wall, a ditch, and the well-known Tower of Jericho (about 8- 9 meters high), one of the earliest known monumental stone structures. Population estimates for this phase reach around 2,000-3,000 people.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Excavations (notably by Kathleen Kenyon in the 1950s and later Italian Palestinian teams) have revealed a long sequence of occupation layers, often described as more than 20 successive settlements, spanning the Neolithic, Bronze Age, and later periods, with the modern city continuing nearby.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">In 2023, <strong>UNESCO<\/strong> inscribed Tell es- Sultan, the Ancient Jericho as a <strong>World Heritage Site <\/strong>under the title reflecting \u201ca Testimony to Human Civilizations for 11,000 Years,\u201d highlighting its continuous sequence of settlement layers and its role in the transition to sedentary life and early agriculture in the Fertile Crescent.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Caveats that appear in scholarly discussion include:<\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Definitions of \u201ccity,\u201d \u201ccontinuously inhabited,\u201d and exact continuity can vary (there were periods of reduced occupation or possible short gaps, especially in later prehistory, though the overall sequence is exceptionally long).<\/li>\n\n\n\n<li>Other places (such as Damascus or Byblos) are sometimes also claimed as among the oldest continuously inhabited cities, depending on the criteria used. history.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\">Overall, Jericho\u2019s claim as one of the earliest and longest- occupied sites with urban characteristics is strongly supported by archaeology and widely accepted in both popular and academic contexts.<\/p>\n\n\n\n<figure class=\"wp-block-image size-large\"><img data-recalc-dims=\"1\" loading=\"lazy\" decoding=\"async\" width=\"723\" height=\"456\" data-attachment-id=\"474263\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474263\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?fit=1920%2C1212&amp;ssl=1\" data-orig-size=\"1920,1212\" data-comments-opened=\"1\" data-image-meta=\"{&quot;aperture&quot;:&quot;0&quot;,&quot;credit&quot;:&quot;&quot;,&quot;camera&quot;:&quot;&quot;,&quot;caption&quot;:&quot;&quot;,&quot;created_timestamp&quot;:&quot;0&quot;,&quot;copyright&quot;:&quot;&quot;,&quot;focal_length&quot;:&quot;0&quot;,&quot;iso&quot;:&quot;0&quot;,&quot;shutter_speed&quot;:&quot;0&quot;,&quot;title&quot;:&quot;&quot;,&quot;orientation&quot;:&quot;0&quot;,&quot;alt&quot;:&quot;&quot;}\" data-image-title=\"image\" data-image-description=\"\" data-image-caption=\"\" data-large-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?fit=723%2C456&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=723%2C456&#038;ssl=1\" alt=\"Aerial view of a rural landscape featuring a mix of fields, rocky outcrops, and a small village with numerous houses.\" class=\"wp-image-474263\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=1024%2C646&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=300%2C189&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=768%2C485&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=1536%2C970&amp;ssl=1 1536w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?resize=640%2C404&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?w=1920&amp;ssl=1 1920w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-145.png?w=1446&amp;ssl=1 1446w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\">Tell es-Sultan         <a href=\"https:\/\/en.wikipedia.org\/wiki\/Tell_es-Sultan\">Tell es-Sultan &#8211; Wikipedia<\/a><\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Pre- Pottery Neolithic (PPN) architecture <\/strong>marks a pivotal shift in human building practices in the Near East (primarily the Levant, Anatolia, and adjacent regions), spanning roughly 10,000- 6,500 BCE. It is divided into Pre- Pottery Neolithic A (PPNA, c. 10,000- 8,800 BCE) and Pre- Pottery Neolithic B (PPNB, c. 8,800-6,500 BCE), originally defined by Kathleen Kenyon at Jericho. <\/p>\n\n\n\n<p class=\"wp-block-paragraph\">These periods saw the rise of permanent villages, early monumental constructions, and innovations in materials and form tied to increasing sedentism, plant cultivation, and social complexity, before the widespread use of pottery.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Key Characteristics by Phase<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>PPNA Architecture<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Buildings were typically small, circular or oval, and often semi- subterranean.  <\/p>\n\n\n\n<p class=\"wp-block-paragraph\">They featured stone foundations with upper walls of sun- dried mudbrick (plano- convex in cross- section) or pis\u00e9 (rammed earth), sometimes with wooden posts and beams supporting flat or slightly domed roofs of brush or reeds covered in mud.  <\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Floors could include terrazzo- like surfaces or simple plaster; hearths were common, often cobbled; and storage bins of stone or mudbrick appeared frequently. Houses were generally 5- 6 m in diameter (or smaller, around 3- 5 m in some sites) and suited to nuclear families, with limited internal partitioning.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Communal and special structures stood out:<\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>At <strong>Jericho (Tell es- Sultan)<\/strong>, a massive stone wall (over 3.6 m high and 1.8 m thick at the base) enclosed a settlement of about 2.5- 4 hectares, with an associated conical stone tower ~8.5 m high, ~9 m diameter at the base tapering to ~7 m, and an internal staircase of 22 steps. Built around 8,300- 8,000 BCE of undressed stone, it is among the earliest known monumental stone architecture (estimated to require thousands of person- days of labor). Its purpose remains debated, possible flood control, defense, ritual\/ceremonial use, or even astronomical alignment related to the summer solstice shadow from nearby mountains. Round mudbrick houses (c. 5 m across) with clay- and- straw bricks and mud- smeared brush roofs filled the interior.<\/li>\n\n\n\n<li><strong>Other sites<\/strong> like WF16 (southern Jordan) feature large communal semi- subterranean structures with benches (one ~22 \u00d7 19 m), workshops, and storage buildings with raised mud- plaster floors. Northern Levant sites (e.g., Jerf el- Ahmar, Mureybet) include larger round or multi- chambered communal buildings.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>PPNB Architecture<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">A major transition occurred: dwellings shifted predominantly to rectangular (quadrilinear) plans, reflecting new spatial concepts, denser settlement, and more complex household organization. Houses became larger and more elaborate, often multi- roomed, sometimes two- storied, with thick<strong> lime- plaster floors<\/strong> (highly polished, produced by heating limestone to 800- 900\u00b0C) that were a hallmark of the period.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Walls used mudbrick (increasingly rectangular and molded) on stone foundations, <strong>double- wall techniques <\/strong>(two faces of large stones with rubble fill), or stone slab construction in some areas.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>\u201cPier houses\u201d<\/strong> or <strong>\u201ccorridor\/megaron\u201d<\/strong> plans, rectangular halls subdivided by perpendicular piers and buttresses, were common in the southern Levant (e.g., at \u02bfAin Ghazal, Beidha, Yiftahel, Jericho). These supported roofs and created distinct <strong>activity zones<\/strong> (living, storage, workshops).<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Lime and gypsum plaster expanded dramatically for floors, walls, and even sculptures or vessels (White Ware). Settlements grew larger (up to several hectares), with denser clustering of buildings. Special and ritual structures <strong>included cult areas, temples, or podium features<\/strong> (e.g., at \u02bfAin Ghazal, Beidha, Kfar HaHoresh).<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">In southeastern Anatolia (e.g., \u00c7ay\u00f6n\u00fc), <strong>plans evolved from \u201cgrill\u201d buildings <\/strong>to more complex tripartite or cellular forms, sometimes multi- level.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Building Materials and Techniques<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Earth- based:<\/strong> Mudbrick (hand- formed or later molded, often tempered with chaff and straw), pis\u00e9, and mud mortar. Experimental reconstructions confirm local sediments mixed with plant temper and water worked well for walls and floors.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Stone:<\/strong> Undressed or roughly worked for foundations, walls, towers, and pillars; more refined slabs for stairs or paving.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Plaster:<\/strong> Lime (labor- intensive pyro technology) and gypsum; often burnished and sometimes painted or pigmented. This technology had roots in earlier periods but flourished in PPNB.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Organic:<\/strong> Wooden posts, beams, reeds and brush for roofs; perishable upper structures are poorly preserved.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Construction<\/strong> required coordinated labor, especially for monumental works, implying emerging social organization. Roofs were typically flat and usable as working platforms<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Notable Sites Beyond Jericho<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>G\u00f6bekli Tepe (southeastern Turkey): <\/strong>Iconic for monumental circular enclosures (10- 30 m diameter) with T-shaped limestone pillars (up to 5.5 m tall, some anthropomorphic with animal reliefs), arranged around central pairs and set into stone walls and benches. Dated mainly PPNA to early PPNB (c. 9,600- 8,000 BCE); later phases show smaller rectangular structures. Built by hunter- gatherer groups with sophisticated planning (possible geometric alignments); interpreted as ritual and communal centers rather than purely domestic.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Southern Levant examples:<\/strong> <strong>\u02bfAin Ghazal<\/strong> (complex rectangular houses and ritual buildings), <strong>Beidha <\/strong>(pier houses and cult areas), <strong>WF16<\/strong>, <strong>Shk\u0101rat Msaied<\/strong>, and <strong>Ba\u02bfja<\/strong> (well- preserved stone architecture with rebuilding sequences).<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Northern sites:<\/strong> <strong>Mureybet<\/strong>, <strong>Jerf el- Ahmar<\/strong> (communal buildings), <strong>\u00c7ay\u00f6n\u00fc<\/strong>, and others showing regional variation.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Broader Significance<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">PPN architecture reflects the Neolithic transition: from mobile or semi-sedentary Natufian circular and semi-subterranean dwellings to more permanent, planned, and socially differentiated built environments. <\/p>\n\n\n\n<p class=\"wp-block-paragraph\">The circular- to- rectangular shift, use of plaster, and monumental projects (towers, walls, enclosures) signal changes in social organization, ritual practices (including plastered skulls under floors in some cases), and concepts of <strong>\u201chome\u201d<\/strong> and community space. <\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Continuity with earlier traditions existed, but innovations supported larger populations and more complex societies. Regional diversity was high, stone- heavy in some areas, mudbrick- dominant in others, and form was driven more by cultural choices than purely by available materials or environment.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">This architecture laid foundations for <strong>later Neolithic<\/strong> and urban developments across the Fertile Crescent. Ongoing excavations and experimental archaeology continue to refine understandings of construction processes, functions, and social implications.<\/p>\n\n\n\n<figure class=\"wp-block-image size-large\"><img data-recalc-dims=\"1\" loading=\"lazy\" decoding=\"async\" width=\"723\" height=\"407\" data-attachment-id=\"474265\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474265\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?fit=1920%2C1080&amp;ssl=1\" data-orig-size=\"1920,1080\" data-comments-opened=\"1\" data-image-meta=\"{&quot;aperture&quot;:&quot;0&quot;,&quot;credit&quot;:&quot;&quot;,&quot;camera&quot;:&quot;&quot;,&quot;caption&quot;:&quot;&quot;,&quot;created_timestamp&quot;:&quot;0&quot;,&quot;copyright&quot;:&quot;&quot;,&quot;focal_length&quot;:&quot;0&quot;,&quot;iso&quot;:&quot;0&quot;,&quot;shutter_speed&quot;:&quot;0&quot;,&quot;title&quot;:&quot;&quot;,&quot;orientation&quot;:&quot;0&quot;,&quot;alt&quot;:&quot;&quot;}\" data-image-title=\"image\" data-image-description=\"\" data-image-caption=\"\" data-large-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?fit=723%2C407&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=723%2C407&#038;ssl=1\" alt=\"Ruins of ancient columns surrounded by stone structures in a historical archaeological site under a clear blue sky.\" class=\"wp-image-474265\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=1024%2C576&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=300%2C169&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=768%2C432&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=1536%2C864&amp;ssl=1 1536w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?resize=640%2C360&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?w=1920&amp;ssl=1 1920w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-146.png?w=1446&amp;ssl=1 1446w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\"><a href=\"https:\/\/www.levyisraeltours.com\/post\/the-wonders-of-jericho-exploring-the-oldest-continuously-inhabited-city-on-earth\">The Wonders of Jericho: Exploring the Oldest Continuously Inhabited City on Earth<\/a><\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Ancient Jericho (Tell es- Sultan) in the Jordan Valley was profoundly shaped by climate and hydrology. Its long occupation history, spanning more than 11,000 years, owes much to the reliable perennial spring of Ein es- Sultan (Elisha\u2019s Spring), which provided a stable water source in an otherwise arid, rain- shadow environment. Climate fluctuations, however, repeatedly influenced settlement size, continuity, agriculture, and periods of decline or abandonment.<\/strong><\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Environmental Setting<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Jericho sits deep in the Jordan Rift Valley (<strong>about 250- 260 m below modern sea level near the site<\/strong>), in a <strong>hot desert climate<\/strong>. Annual rainfall is low (around 200 mm today, concentrated in winter), and the area is shielded by the Judean Mountains. The <strong>Ein es- Sultan spring<\/strong>, fed by a large groundwater catchment in limestone aquifers, has historically discharged thousands of liters per minute and has remained relatively stable for millennia. This oasis enabled early sedentism, plant cultivation (emmer wheat, barley, pulses), and later irrigation- based farming even when regional conditions were harsh.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Flood risks from seasonal runoff off nearby slopes (e.g., Jebel Quruntul) were also a factor; some researchers interpret the <strong>early Neolithic wall and tower<\/strong> partly as protection <strong>against flash floods and mudslides<\/strong>, which would have been more intense under wetter conditions.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Key Climate Phases and Impacts<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Paleoclimate records (especially Dead Sea lake- level fluctuations, a proxy for regional precipitation) show clear links between hydroclimatic shifts and cultural developments at Jericho and nearby sites:<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Late Pleistocene to early Holocene transition (including Younger Dryas, ~12,900- 11,600 years ago):<\/strong> Cold, dry conditions disrupted earlier patterns, but the subsequent warming and increased moisture at the start of the Holocene (~11,700-10,000 BP \/ ~9,700- 8,000 BCE) supported the shift to sedentism. Natufian groups and early <strong>Pre- Pottery Neolithic A (PPNA) <\/strong>communities at Jericho benefited from expanded resources, fertile soils (partly from earlier dust deposition), and reliable spring flow. This coincided with the rise of permanent villages and the beginnings of agriculture across the southern Levant.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Early Holocene wet phase and PPNA\/PPNB flourishing (~10,000- 8,600 cal BP):<\/strong> Wetter conditions (higher Dead Sea levels) favored larger settlements. Jericho grew into a substantial proto- urban community with monumental architecture (wall and tower ~8,300- 8,000 BCE). Agriculture expanded under relatively favorable moisture regimes.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Arid events around 8.6 and 8.2 ka (~6,600\u20136,200 BCE):<\/strong> Abrupt drying (linked to the global 8.2 ka cold event and regional aridification) correlated with settlement stress. Jericho\u2019s PPNB phase saw degeneration from a larger settlement toward a smaller village, and some nearby sites were abandoned. <strong>Dead Sea levels<\/strong> dropped sharply. Overall, the later Pottery Neolithic and Chalcolithic (~8,600- 5,600 cal BP) were relatively inhospitable, with fewer and smaller settlements regionally.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Mid- to- late Holocene fluctuations:<\/strong> Wetter intervals (e.g., ~5,600- 3,500 cal BP) supported recovery and growth of farming communities. Drier episodes, including the ~4.2 ka event, aligned with broader Near Eastern cultural disruptions and temporary declines or abandonments. Jericho experienced occupational hiatuses or reduced occupation at various points (including after the Early Bronze Age and in later periods), sometimes linked to drought, earthquakes (common along the Dead Sea Transform fault), or a combination of factors. One proposed major earthquake contributed to a long rural decline around the end of the 5th to early 4th millennium BCE.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Resilience and Limitations<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Jericho\u2019s oasis setting conferred unusual resilience compared with rain- dependent sites. The spring buffered against short- term droughts, allowing continuity or rapid reoccupation when conditions improved. However, prolonged aridification reduced agricultural productivity, limited population size, and contributed to abandonments or shifts in settlement patterns (e.g., movement toward better-watered valleys or higher ground). Seismic activity, flooding, and human factors (conflict, resource management) interacted with climate stresses.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>In summary, climate amelioration after the last Ice Age enabled Jericho\u2019s early success as one of the world\u2019s oldest permanent settlements, while later arid pulses repeatedly tested its resilience. The Ein es-Sultan spring remained the critical constant that allowed repeated recovery. Modern studies of the spring system note ongoing hydrogeological and climate- related pressures, underscoring the long- term sensitivity of this oasis environment.<\/strong><\/p>\n\n\n\n<figure class=\"wp-block-image size-large\"><img data-recalc-dims=\"1\" loading=\"lazy\" decoding=\"async\" width=\"723\" height=\"482\" data-attachment-id=\"474268\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474268\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?fit=1920%2C1280&amp;ssl=1\" data-orig-size=\"1920,1280\" data-comments-opened=\"1\" data-image-meta=\"{&quot;aperture&quot;:&quot;0&quot;,&quot;credit&quot;:&quot;&quot;,&quot;camera&quot;:&quot;&quot;,&quot;caption&quot;:&quot;&quot;,&quot;created_timestamp&quot;:&quot;0&quot;,&quot;copyright&quot;:&quot;&quot;,&quot;focal_length&quot;:&quot;0&quot;,&quot;iso&quot;:&quot;0&quot;,&quot;shutter_speed&quot;:&quot;0&quot;,&quot;title&quot;:&quot;&quot;,&quot;orientation&quot;:&quot;0&quot;,&quot;alt&quot;:&quot;&quot;}\" data-image-title=\"image\" data-image-description=\"\" data-image-caption=\"\" data-large-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?fit=723%2C482&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=723%2C482&#038;ssl=1\" alt=\"Interior view of a historic site featuring tall, ancient stone columns arranged in a spacious area with intricate tiled flooring and a modern roof structure.\" class=\"wp-image-474268\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=1024%2C683&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=300%2C200&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=768%2C512&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=1536%2C1024&amp;ssl=1 1536w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?resize=640%2C427&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?w=1920&amp;ssl=1 1920w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-147.png?w=1446&amp;ssl=1 1446w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\">Khirbet al-Mafjar, Jericho    <a href=\"https:\/\/en.wikipedia.org\/wiki\/Jericho\">Jericho &#8211; Wikipedia<\/a><\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>The 4.2- kiloyear event (also called the 4.2 ka BP event)<\/strong> was a major aridification episode that began around 2200 BCE (approximately 4,200 years before present) and lasted for much of the 22nd century BCE. It ranks among the most severe climatic events of the Holocene and marks the start of the current Meghalayan age. It involved prolonged drought, reduced precipitation (estimates of 30- 50% drops in parts of the eastern Mediterranean and Near East), cooler conditions in some regions, and increased dust flux. Evidence comes from lake levels (including the Dead Sea), speleothems, marine cores, and other proxies across North Africa, the Middle East, the Arabian Peninsula, the Indian subcontinent, and beyond.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>It has been linked to societal disruptions, including the collapse of the Akkadian Empire in Mesopotamia, the end of Egypt\u2019s Old Kingdom, and changes in the Indus Valley and elsewhere. <\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">In the Levant, the event often appears as a \u201cW- shaped\u201d pattern of two dry phases separated by a wetter interval in the south- central region.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Connection to Ancient Jericho (Tell es- Sultan)<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Jericho\u2019s Early Bronze Age (EBA) urban phase (roughly the 3rd millennium BCE) saw the site develop into a fortified city with substantial walls, public buildings, and agricultural intensification around the Ein es-Sultan spring. Radiocarbon and stratigraphic evidence indicate continuous occupation from the Early Bronze Age into the early Middle Bronze Age, followed by destruction and abandonment around 2000\/1950 BCE. The city was later rebuilt and reached a peak in the Middle Bronze Age (c. 1700-1550 BCE).<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Direct causation by the 4.2 ka event is debated and not straightforward for Jericho or the southern Levant more broadly:<\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Broader Near Eastern narratives often group the end of Early Bronze III urban cultures in Palestine\/the southern Levant with the 4.2 ka drought, alongside Mesopotamian and Egyptian collapses.<\/li>\n\n\n\n<li>However, high- resolution radiocarbon dating from multiple southern Levantine sites indicates that de-urbanization and the decline of EBA urban centers began earlier, around the mid-3rd millennium BCE (closer to 2500 BCE or the late 29th- 25th centuries BCE in some cases), well before the main onset of the 4.2 ka aridity. By the time the climatic event intensified around 2200 BCE, much of the region\u2019s first urban system had already fragmented into smaller, more rural Early Bronze IV\/Intermediate Bronze settlements. researchgate.net<\/li>\n\n\n\n<li>At Jericho specifically, the abandonment dated near 2000\/1950 BCE falls slightly after the core of the event. Possible contributing factors include residual or prolonged drought effects, earthquakes (common along the Dead Sea Transform fault), conflict, or socio- economic stresses. The oasis spring provided a buffer that supported resilience and later reoccupation, unlike purely rain- fed sites.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\">In the wider Jordan Valley and southern Levant, the event contributed to settlement contraction, shifts toward more mobile or pastoral strategies in drier zones, and habitat tracking (populations moving to better-watered areas such as river banks or spring- fed locations). Dead Sea level drops and regional arid proxies align with these cultural changes, though local responses varied and continuity existed in some well-watered spots.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Overall, while the 4.2 ka event formed part of a challenging climatic backdrop for late 3rd- millennium societies across the Near East, Jericho\u2019s trajectory reflects a more complex interplay of climate, seismicity, and human factors. The site\u2019s long- term continuity was repeatedly enabled by the reliable Ein es-Sultan spring, allowing recovery even after arid pulses and destructions. Scholarly views continue to refine the precise timing and relative weight of climate versus other drivers through improved radiocarbon sequences and multi- proxy studies.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Jericho (specifically the archaeological site of Tell es- Sultan, Ancient Jericho, near the modern city in the West Bank) is widely recognized as one of the oldest continuously inhabited settlements in the world, with archaeological evidence of human presence dating back more than 11,000 years.<\/p>\n<p>Ancient Jericho (Tell es- Sultan) in the Jordan Valley was profoundly shaped by climate and hydrology. Its long occupation history, spanning more than 11,000 years, owes much to the reliable perennial spring of Ein es- Sultan (Elisha\u2019s Spring), which provided a stable water source in an otherwise arid, rain- shadow environment. Climate fluctuations, however, repeatedly influenced settlement size, continuity, agriculture, and periods of decline or abandonment.<\/p>\n","protected":false},"author":121246920,"featured_media":474219,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_coblocks_attr":"","_coblocks_dimensions":"","_coblocks_responsive_height":"","_coblocks_accordion_ie_support":"","advanced_seo_description":"Discover Jericho, the world's oldest continuously inhabited city, with over 11,000 years of rich history shaped by climate and agriculture.","jetpack_seo_html_title":"Jericho: 11,000 Years of Resilience Against Climate Change","jetpack_seo_noindex":false,"jetpack_seo_schema_type":"","_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_wpcom_ai_launchpad_first_post":false,"_jetpack_feature_clip_id":0,"_jetpack_memberships_contains_paid_content":false,"footnotes":"","jetpack_publicize_message":"","jetpack_publicize_feature_enabled":true,"jetpack_social_post_already_shared":false,"jetpack_social_options":{"image_generator_settings":{"template":"highway","default_image_id":0,"font":"","enabled":false},"version":2},"jetpack_post_was_ever_published":false},"categories":[1],"tags":[691845762,691845760,691845758,691845761,691845763,691845759,691845767,691845764,691845766,691845757,691845765,691837251],"class_list":["post-474218","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-uncategorized","tag-4-2-kiloyear-event-2","tag-8-6-and-8-2-ka","tag-ancient-jericho","tag-dead-sea-levels","tag-early-bronze-iii-urban-cultures","tag-hot-desert-climate","tag-later-neolithic","tag-neolithic-a-period","tag-pre-pottery-neolithic-ppn-architecture","tag-tell-es-sultan","tag-world-heritage-site","tag-younger-dryas","fallback-thumbnail"],"jetpack_publicize_connections":[],"jetpack_likes_enabled":true,"jetpack_sharing_enabled":true,"jetpack_shortlink":"https:\/\/wp.me\/paxLW1-1ZmG","jetpack-related-posts":[{"id":465082,"url":"https:\/\/climatescience.press\/?p=465082","url_meta":{"origin":474218,"position":0},"title":"G\u00f6bekli Tepe\u2019s Climate Story: How Early Holocene Warming and Abrupt Shifts Shaped the World\u2019s First Monuments","author":"uwe.roland.gross","date":"08\/23\/2026","format":false,"excerpt":"Radiocarbon dating places the earliest monumental phases around 9500\u20139000 BCE. G\u00f6bekli Tepe\u2019s climate context sits at a major turning point in Earth\u2019s recent climate history: the transition from the cold, dry Younger Dryas into the warmer, wetter early Holocene.","rel":"","context":"In \"early Holocene\"","block_context":{"text":"early Holocene","link":"https:\/\/climatescience.press\/?tag=early-holocene"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Gobekli-Tepes-Climate-Story-How-Early-Holocene-Warming-and-Abrupt-Shifts-Shaped-the-Worlds-First-Monuments.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Gobekli-Tepes-Climate-Story-How-Early-Holocene-Warming-and-Abrupt-Shifts-Shaped-the-Worlds-First-Monuments.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Gobekli-Tepes-Climate-Story-How-Early-Holocene-Warming-and-Abrupt-Shifts-Shaped-the-Worlds-First-Monuments.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Gobekli-Tepes-Climate-Story-How-Early-Holocene-Warming-and-Abrupt-Shifts-Shaped-the-Worlds-First-Monuments.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Gobekli-Tepes-Climate-Story-How-Early-Holocene-Warming-and-Abrupt-Shifts-Shaped-the-Worlds-First-Monuments.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":465584,"url":"https:\/\/climatescience.press\/?p=465584","url_meta":{"origin":474218,"position":1},"title":"10,000 Years of Hidden History: How Humans Shaped the \u201cUntouched\u201d High Pyrenees","author":"uwe.roland.gross","date":"08\/25\/2026","format":false,"excerpt":"Researchers from the Universitat Aut\u00f2noma de Barcelona (UAB) have compiled an open-access radiocarbon database documenting more than 10,000 years of human presence in high-altitude areas of the Spanish Pyrenees, showing these landscapes were repeatedly used rather than pristine wilderness.","rel":"","context":"In \"Holocene\"","block_context":{"text":"Holocene","link":"https:\/\/climatescience.press\/?tag=holocene"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-10000-Years-of-Hidden-History-How-Humans-Shaped-the-Untouched-High-Pyrenees.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-10000-Years-of-Hidden-History-How-Humans-Shaped-the-Untouched-High-Pyrenees.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-10000-Years-of-Hidden-History-How-Humans-Shaped-the-Untouched-High-Pyrenees.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-10000-Years-of-Hidden-History-How-Humans-Shaped-the-Untouched-High-Pyrenees.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-10000-Years-of-Hidden-History-How-Humans-Shaped-the-Untouched-High-Pyrenees.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":472378,"url":"https:\/\/climatescience.press\/?p=472378","url_meta":{"origin":474218,"position":2},"title":"Drought and Decline: How the 4.2 ka Climate Event Helped End Malta\u2019s Temple Builders","author":"uwe.roland.gross","date":"09\/20\/2026","format":false,"excerpt":"The Megalithic Temples of Malta (and Gozo) form a group of prehistoric monumental stone buildings constructed mainly between roughly 3600 BC and 2500 BC. The Megalithic Temples of Malta (including sites such as \u0120gantija, \u0126a\u0121ar Qim, Mnajdra, and Tarxien) are widely understood as sacred and ceremonial spaces central to the\u2026","rel":"","context":"In \"4.2 ka event\"","block_context":{"text":"4.2 ka event","link":"https:\/\/climatescience.press\/?tag=4-2-ka-event"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Drought-and-Decline-How-the-4.2-ka-Climate-Event-Helped-End-Maltas-Temple-Builders.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Drought-and-Decline-How-the-4.2-ka-Climate-Event-Helped-End-Maltas-Temple-Builders.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Drought-and-Decline-How-the-4.2-ka-Climate-Event-Helped-End-Maltas-Temple-Builders.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Drought-and-Decline-How-the-4.2-ka-Climate-Event-Helped-End-Maltas-Temple-Builders.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Drought-and-Decline-How-the-4.2-ka-Climate-Event-Helped-End-Maltas-Temple-Builders.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":471437,"url":"https:\/\/climatescience.press\/?p=471437","url_meta":{"origin":474218,"position":3},"title":"Ancient Wall in Morocco Rewrites North African History: 5,000-Year-Old Farming Hub Linked to Mediterranean Trade and Climate Resilience","author":"uwe.roland.gross","date":"09\/16\/2026","format":false,"excerpt":"History is being rewritten at an archaeological site in Morocco: Discovery of an ancient wall at Oued Beht. Oued Beht and climate impacts center on how the site\u2019s location in northwestern Morocco buffered it against broader North African aridification during the later Holocene, enabling a major Final Neolithic farming complex\u2026","rel":"","context":"In \"4.2 -kiloyear event\"","block_context":{"text":"4.2 -kiloyear event","link":"https:\/\/climatescience.press\/?tag=4-2-kiloyear-event"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Ancient-Wall-in-Morocco-Rewrites-North-African-History-5000-Year-Old-Farming-Hub-Linked-to-Mediterranean-Trade-and-Climate-Resilience.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Ancient-Wall-in-Morocco-Rewrites-North-African-History-5000-Year-Old-Farming-Hub-Linked-to-Mediterranean-Trade-and-Climate-Resilience.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Ancient-Wall-in-Morocco-Rewrites-North-African-History-5000-Year-Old-Farming-Hub-Linked-to-Mediterranean-Trade-and-Climate-Resilience.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Ancient-Wall-in-Morocco-Rewrites-North-African-History-5000-Year-Old-Farming-Hub-Linked-to-Mediterranean-Trade-and-Climate-Resilience.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Ancient-Wall-in-Morocco-Rewrites-North-African-History-5000-Year-Old-Farming-Hub-Linked-to-Mediterranean-Trade-and-Climate-Resilience.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":473613,"url":"https:\/\/climatescience.press\/?p=473613","url_meta":{"origin":474218,"position":4},"title":"China\u2019s Ancient \u201cVenice of the Stone Age\u201d Collapsed Under Extreme Monsoon Floods 4,300 Years Ago","author":"uwe.roland.gross","date":"09\/24\/2026","format":false,"excerpt":"The Liangzhu culture (Chinese: \u826f\u6e1a\u6587\u5316; c. 3300- 2300 BCE) was a late Neolithic society in the Yangtze River Delta of eastern China (primarily modern Zhejiang, Jiangsu, and Shanghai provinces). It is widely regarded as one of East Asia\u2019s earliest complexes, state- level societies and a key contributor to the origins\u2026","rel":"","context":"In \"El Ni\u00f1o\u2013Southern Oscillation (ENSO)\"","block_context":{"text":"El Ni\u00f1o\u2013Southern Oscillation (ENSO)","link":"https:\/\/climatescience.press\/?tag=el-nino-southern-oscillation-enso-4"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Chinas-Ancient-Venice-of-the-Stone-Age-Collapsed-Under-Extreme-Monsoon-Floods-4300-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Chinas-Ancient-Venice-of-the-Stone-Age-Collapsed-Under-Extreme-Monsoon-Floods-4300-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Chinas-Ancient-Venice-of-the-Stone-Age-Collapsed-Under-Extreme-Monsoon-Floods-4300-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Chinas-Ancient-Venice-of-the-Stone-Age-Collapsed-Under-Extreme-Monsoon-Floods-4300-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Chinas-Ancient-Venice-of-the-Stone-Age-Collapsed-Under-Extreme-Monsoon-Floods-4300-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":465199,"url":"https:\/\/climatescience.press\/?p=465199","url_meta":{"origin":474218,"position":5},"title":"From G\u00f6bekli Tepe to Noah: Separating Real Catastrophes from Ancient Flood Myths","author":"uwe.roland.gross","date":"08\/23\/2026","format":false,"excerpt":"Mesopotamian flood archaeology focuses on water-laid sediment layers (sterile silt or clay deposits) found at several ancient sites in southern Iraq. G\u00f6bekli Tepe has no archaeological connection to the later Mesopotamian or biblical flood narratives, but it does sit in the immediate aftermath of a major real climate disruption known\u2026","rel":"","context":"In \"G\u00f6bekli Tepe\"","block_context":{"text":"G\u00f6bekli Tepe","link":"https:\/\/climatescience.press\/?tag=gobekli-tepe"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-From-Gobekli-Tepe-to-Noah-Separating-Real-Catastrophes-from-Ancient-Flood-Myths.jpg?fit=1168%2C784&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-From-Gobekli-Tepe-to-Noah-Separating-Real-Catastrophes-from-Ancient-Flood-Myths.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-From-Gobekli-Tepe-to-Noah-Separating-Real-Catastrophes-from-Ancient-Flood-Myths.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-From-Gobekli-Tepe-to-Noah-Separating-Real-Catastrophes-from-Ancient-Flood-Myths.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-From-Gobekli-Tepe-to-Noah-Separating-Real-Catastrophes-from-Ancient-Flood-Myths.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]}],"jetpack_featured_media_url":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-Jericho-11000-Years-of-Survival-Against-Climate-Extremes.jpg?fit=1168%2C784&ssl=1","_links":{"self":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474218","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/users\/121246920"}],"replies":[{"embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=474218"}],"version-history":[{"count":49,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474218\/revisions"}],"predecessor-version":[{"id":474349,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474218\/revisions\/474349"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/media\/474219"}],"wp:attachment":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=474218"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=474218"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=474218"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}