{"id":474345,"date":"2026-09-27T03:23:10","date_gmt":"2026-09-27T10:23:10","guid":{"rendered":"https:\/\/climatescience.press\/?p=474345"},"modified":"2026-09-27T03:23:12","modified_gmt":"2026-09-27T10:23:12","slug":"the-8-2-ka-cold-snap-how-a-catastrophic-lake-drainage-weakened-the-amoc-and-cooled-the-planet","status":"publish","type":"post","link":"https:\/\/climatescience.press\/?p=474345","title":{"rendered":"The 8.2 ka Cold Snap: How a Catastrophic Lake Drainage Weakened the AMOC and Cooled the Planet"},"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=\"474346\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474346\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.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 The 8.2 ka Cold Snap  How a Catastrophic Lake Drainage Weakened the AMOC and Cooled the Planet\" data-image-description=\"\" data-image-caption=\"&lt;p&gt;Signature: 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&lt;\/p&gt;\n\" data-large-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?fit=723%2C485&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?resize=723%2C485&#038;ssl=1\" alt=\"Infographic illustrating the 8.2 ka Cold Snap events, highlighting the catastrophic drainage of Glacial Lake Agassiz and Ojibway, the effects on the AMOC, and global cooling impacts.\" class=\"wp-image-474346\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?resize=1024%2C687&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?resize=300%2C201&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?resize=768%2C516&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?resize=640%2C430&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.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>The 8.2- kiloyear (ka) event (also called the 8.2 ka BP event or 8k event) was an abrupt global cooling episode around 8,200 years before present (BP; present \u2248 1950 CE), lasting roughly 150- 400 years (most precisely ~160 years in Greenland ice cores, with a ~60-70- year coldest central phase).<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">It is the most prominent abrupt climate anomaly of the <strong>Holocene (the current interglacial epoch) <\/strong>and marks the start of the Northgrippian stage. It was milder than the preceding <strong>Younger Dryas<\/strong> but more severe than the later Little Ice Age.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Timing and Magnitude<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li><strong>Onset in central Greenland:<\/strong> ~8,175 BP, with <strong>rapid cooling of ~3.3 \u00b0C <\/strong>(decadal average) in under 20 years.<\/li>\n\n\n\n<li><strong>Full event duration in Greenland ice cores:<\/strong> ~160.5 years (central cold phase ~69 years); temperatures then recovered in steps.<\/li>\n\n\n\n<li><strong>Broader estimates:<\/strong> 100- 200 years near the North Atlantic, up to ~400 years for some tropical monsoon impacts.<\/li>\n\n\n\n<li><strong>Cooling estimates: <\/strong>1- 5 \u00b0C regionally (strongest in the North Atlantic and Greenland; ~1- 1.5 \u00b0C over Europe); atmospheric methane dropped by ~80 ppb (~15% reduction), indicating hemispheric drying and cooling.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\">Evidence comes from <strong>Greenland ice cores <\/strong>(strongest signal), speleothems (<strong>caves<\/strong> across Eurasia, Mediterranean, South America, southern Africa), lake and ocean sediments, and other proxies, showing the event was globally synchronous or near synchronous.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Cause<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">The leading explanation is a massive freshwater pulse from the catastrophic drainage of proglacial Lakes Agassiz and Ojibway (formed by meltwater from the retreating Laurentide Ice Sheet in northeastern North America) into Hudson Bay and then the Labrador Sea\/North Atlantic around ~8.47 ka BP.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">This reduced the density of surface waters, weakening the <strong>Atlantic Meridional Overturning Circulation (AMOC)<\/strong> by an estimated 55- 62%. Reduced northward heat transport led to <strong>North Atlantic cooling<\/strong>, expanded sea ice, and atmospheric teleconnections that propagated the signal globally. Some researchers note it may have been superimposed on a longer cooler interval lasting up to several centuries.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Associated sea- level rise from the meltwater pulse is estimated at ~0.4- 2.2 m (or higher in some delta records).<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Global Impacts<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li><strong>Cooling:<\/strong> Strongest around the North Atlantic; milder elsewhere in the Northern Hemisphere.<\/li>\n\n\n\n<li><strong>Hydrology:<\/strong> Widespread drying in Northern Hemisphere tropics and monsoon regions (e.g., weakened Asian\/Indian monsoons, droughts in parts of Southeast Asia, Near East, and Africa); some wetter conditions or shifts in the Southern Hemisphere consistent with a southward displacement of the <strong>Intertropical Convergence Zone <\/strong>(bipolar seesaw pattern). Impacts on monsoons sometimes lagged the North Atlantic cooling by ~100 years and lasted longer.<\/li>\n\n\n\n<li><strong>Other:<\/strong> Reduced snow accumulation in Greenland; possible increased storminess in places like coastal California; atmospheric circulation changes.<\/li>\n\n\n\n<li><strong>Human societies:<\/strong> Linked to stresses on early Neolithic farming communities in the Near East (e.g., changes at sites like \u00c7atalh\u00f6y\u00fck), possible accelerated migrations, and shifts in settlement and food strategies.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\">The event serves as a key analogue for t<strong>esting climate models\u2019 sensitivity<\/strong> to North Atlantic freshwater forcing under near- interglacial conditions, relevant to potential future AMOC weakening from Greenland ice- sheet melt.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>It is also known regionally as the <em>Misox oscillation (Switzerland)<\/em> or <em>Finse event (Norway)<\/em>.<\/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=\"421\" data-attachment-id=\"474401\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474401\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?fit=2031%2C1182&amp;ssl=1\" data-orig-size=\"2031,1182\" 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-148.png?fit=723%2C421&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=723%2C421&#038;ssl=1\" alt=\"World map illustrating the regional distribution of meltwater release, with color-coded levels indicating varying amounts of meltwater across different regions.\" class=\"wp-image-474401\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=1024%2C596&amp;ssl=1 1024w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=300%2C175&amp;ssl=1 300w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=768%2C447&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=1536%2C894&amp;ssl=1 1536w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?resize=640%2C372&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?w=2031&amp;ssl=1 2031w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-148.png?w=1446&amp;ssl=1 1446w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\"><a href=\"https:\/\/link.springer.com\/article\/10.1007\/s00382-025-07915-1\">The sea level rise of the 8.2&nbsp;ka event simulated by the iCESM1.3 | Climate Dynamics | Springer Nature Link<\/a><\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>The 8.6- kiloyear (ka) interval is not a distinct, sharply defined abrupt climate event equivalent to the well-known 8.2 ka event. Instead, it marks the approximate onset of a broader, multi- centennial (centennial-scale) cooling anomaly in the early Holocene that lasted roughly from ~8.6- 8.5 ka to ~8.0 ka BP, within which the sharper ~8.2 ka cold event is superimposed.<\/strong><\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Relationship to the 8.2 ka Event<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Many paleoclimate records<\/strong> (ice cores, speleothems, marine sediments, and others) show climate anomalies spanning 400- 600 years that begin around 8.6- 8.5 ka. The rapid, high- amplitude cooling centered near 8.2 ka (lasting ~150-160 years in Greenland ice cores) appears as a sudden \u201cspike\u201d or intensification within this longer cooler interval.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Some studies explicitly refer to a cooling event spanning ~8.6- 8.2 ka, often linked to progressive freshwater inputs into the North Atlantic from the decaying Laurentide Ice Sheet.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Causes and Context<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Freshwater forcing:<\/strong> Early meltwater pulses, including the collapse of the Hudson Bay Ice Saddle (around 8.6- 8.5 ka) and initial drainage phases of proglacial Lakes Agassiz and Ojibway, contributed to surface- water freshening. This preceded the larger catastrophic lake drainage timed closer to the peak <strong>8.2 ka cooling.<\/strong> These inputs likely weakened the <strong>Atlantic Meridional Overturning Circulation (AMOC)<\/strong> over an extended period.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Other factors:<\/strong> Possible contributions from solar variability minima and volcanic activity (including a large sulphate peak near ~8.6 ka, potentially linked to Icelandic eruptions such as the \u00dej\u00f3rs\u00e1 lava flow). Freshwater routing and ice- margin dynamics were complex and evolving.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>The broader anomaly<\/strong> is viewed by some as part of a repeating pattern of <strong>Holocene climate variability<\/strong>, rather than solely a response to a single flood.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Impacts and Evidence<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Proxy records indicate cooler and often drier conditions across parts of the <strong>Northern Hemisphere <\/strong>during this interval, with <strong>regional hydroclimate shifts<\/strong> (e.g., monsoon weakening in some tropical areas). The signal is clearer and more coherent in North Atlantic and European records but appears more variable or muted farther afield. Sea- level data also show periods of rapid rise around this time related to ice- sheet melt.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">In summary, references to<strong> \u201c8.6 ka\u201d<\/strong> typically point to the start of this longer cooling phase that frames the classic 8.2 ka event. The sharp <strong>8.2 ka anomaly<\/strong> remains the most prominent and <strong>best- defined feature of the early Holocene in high- resolution records<\/strong> such as <strong>Greenland ice cores.<\/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=\"855\" data-attachment-id=\"474403\" data-permalink=\"https:\/\/climatescience.press\/?attachment_id=474403\" data-orig-file=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?fit=1280%2C1514&amp;ssl=1\" data-orig-size=\"1280,1514\" 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-149.png?fit=723%2C855&amp;ssl=1\" src=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?resize=723%2C855&#038;ssl=1\" alt=\"Diagram illustrating the Atlantic Meridional Overturning Circulation (AMOC), showing ocean currents like the Gulf Stream and their impact on temperature regulation in the Northern Hemisphere.\" class=\"wp-image-474403\" srcset=\"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?resize=866%2C1024&amp;ssl=1 866w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?resize=254%2C300&amp;ssl=1 254w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?resize=768%2C908&amp;ssl=1 768w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?resize=640%2C757&amp;ssl=1 640w, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/image-149.png?w=1280&amp;ssl=1 1280w\" sizes=\"auto, (max-width: 723px) 100vw, 723px\" \/><figcaption class=\"wp-element-caption\">Ocean currents: AMOC, the Atlantic Ocean&#8217;s conveyor belt.<\/figcaption><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>The Atlantic Meridional Overturning Circulation (AMOC) is widely regarded as the primary oceanographic mechanism linking freshwater forcing from the Laurentide Ice Sheet region to the climate anomalies of the ~8.6- 8.0 ka interval and the sharper 8.2 ka event.<\/strong><\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Background on AMOC<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">The AMOC is a major system of ocean currents that transports warm, salty surface water northward in the Atlantic and returns colder, denser deep water southward. It plays a key role in northward heat transport (contributing significantly to the relatively mild climate of northwest Europe and the North Atlantic region). <strong>Weakening reduces<\/strong> this <strong>heat transport<\/strong>, leading to cooling in the North Atlantic and associated atmospheric teleconnections.<\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Connection to the 8.6 ka \/ 8.2 ka Events<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Broader ~8.6- 8.0 ka cooling:<\/strong> Proxy records and reconstructions indicate a multi-centennial period of generally cooler conditions starting around 8.6- 8.5 ka. This is linked to progressive meltwater inputs, including early drainage phases, the collapse of the Hudson Bay Ice Saddle (~8.6- 8.5 ka), and sustained freshwater fluxes from the retreating Laurentide Ice Sheet. These inputs freshened surface waters in the Labrador Sea and North Atlantic, reducing density and inhibiting deep-water formation, thereby weakening the AMOC over an extended interval.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><strong>Sharp 8.2 ka event:<\/strong> The most prominent <strong>Holocene cooling<\/strong> anomaly (onset ~8.25- 8.17 ka in Greenland ice cores, lasting ~150- 160 years overall with a colder central phase of ~60- 70 years) is strongly associated with the final catastrophic drainage of proglacial Lakes Agassiz and Ojibway into Hudson Bay and then the <strong>Labrador Sea and North Atlantic<\/strong> (dated around 8.47 \u00b1 0.3 ka, with final stages closer to the cooling onset). This large freshwater pulse is thought to have caused a more <strong>abrupt AMOC slowdown.<\/strong><\/p>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Estimates of AMOC weakening during the 8.2 ka event vary:<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Model simulations commonly show reductions of ~10- 50% (or more in some hosing experiments), with Wikipedia and related sources citing figures of 55- 62% in certain reconstructions or models.<\/li>\n\n\n\n<li>Proxy-based estimates (e.g., from sediment cores tracking deep- water flow speed, chemistry, or <math xmlns=\"http:\/\/www.w3.org\/1998\/Math\/MathML\"><semantics style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><msup style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><\/mrow><mn style=\"color: black; background-color: transparent; font-family: sans-serif;\">231<\/mn><\/msup><\/mrow><annotation encoding=\"application\/x-tex\" style=\"color: black; background-color: transparent; font-family: sans-serif;\">^{231}<\/annotation><\/semantics><\/math>Pa\/<math xmlns=\"http:\/\/www.w3.org\/1998\/Math\/MathML\"><semantics style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><msup style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><\/mrow><mn style=\"color: black; background-color: transparent; font-family: sans-serif;\">230<\/mn><\/msup><\/mrow><annotation encoding=\"application\/x-tex\" style=\"color: black; background-color: transparent; font-family: sans-serif;\">^{230}<\/annotation><\/semantics><\/math>Th ratios) often indicate more modest changes, such as ~10- 15% or up to a few Sverdrups (Sv; 1 Sv = 10<math xmlns=\"http:\/\/www.w3.org\/1998\/Math\/MathML\"><semantics style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><msup style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><\/mrow><mn style=\"color: black; background-color: transparent; font-family: sans-serif;\">6<\/mn><\/msup><\/mrow><annotation encoding=\"application\/x-tex\" style=\"color: black; background-color: transparent; font-family: sans-serif;\">^6<\/annotation><\/semantics><\/math><code>^6<\/code> m<math xmlns=\"http:\/\/www.w3.org\/1998\/Math\/MathML\"><semantics style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><msup style=\"color: black; background-color: transparent; font-family: sans-serif;\"><mrow style=\"color: black; background-color: transparent; font-family: sans-serif;\"><\/mrow><mn style=\"color: black; background-color: transparent; font-family: sans-serif;\">3<\/mn><\/msup><\/mrow><annotation encoding=\"application\/x-tex\" style=\"color: black; background-color: transparent; font-family: sans-serif;\">^3<\/annotation><\/semantics><\/math>) relative to pre- industrial strength, sometimes as part of a broader weakening between ~9.2- 8 ka. <\/li>\n\n\n\n<li>The response typically involved reduced North Atlantic Deep Water (NADW) formation, possible shoaling of the overturning cell, and recovery over decades to a couple of centuries after the main freshwater pulse ended.<\/li>\n<\/ul>\n\n\n\n<p class=\"has-medium-font-size wp-block-paragraph\"><strong>Climate Consequences of the AMOC Weakening<\/strong><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Reduced northward heat transport produced strong cooling around the North Atlantic (e.g., <strong>~3.3 \u00b0C<\/strong> in central Greenland within decades; <strong>~1- 1.5 \u00b0C<\/strong> or more in parts of Europe). Atmospheric teleconnections then propagated the signal globally: southward shift of the <strong>Intertropical Convergence Zone (ITCZ)<\/strong>, <strong>weakened Northern Hemisphere monsoons<\/strong> (Asia, India, Africa), <strong>drier conditions in many tropical regions<\/strong>, and some opposing (wetter) signals in parts of the Southern Hemisphere. Methane concentrations also dropped, consistent with widespread cooling and drying.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">The 8.2 ka event (and the surrounding 8.6- 8.0 ka interval) is considered a key natural analogue for testing AMOC sensitivity to freshwater forcing under near- interglacial boundary conditions, with relevance to potential future weakening from Greenland ice- sheet melt under anthropogenic warming.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">In short, the AMOC acted as the critical intermediary: meltwater freshening \u2192 reduced overturning and heat transport \u2192 North Atlantic cooling \u2192 global climate anomalies. The broader 8.6 ka- onset cooling reflects more gradual or multi- pulse forcing, while the 8.2 ka peak reflects the most intense disruption.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>The 8.2- kiloyear (ka) event (also called the 8.2 ka BP event or 8k event) was an abrupt global cooling episode around 8,200 years before present (BP; present \u2248 1950 CE), lasting roughly 150- 400 years (most precisely ~160 years in Greenland ice cores, with a ~60-70- year coldest central phase).<\/p>\n<p>The 8.6- kiloyear (ka) interval is not a distinct, sharply defined abrupt climate event equivalent to the well-known 8.2 ka event. Instead, it marks the approximate onset of a broader, multi- centennial (centennial-scale) cooling anomaly in the early Holocene that lasted roughly from ~8.6- 8.5 ka to ~8.0 ka BP, within which the sharper ~8.2 ka cold event is superimposed.<\/p>\n","protected":false},"author":121246920,"featured_media":474346,"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 the 8.2 ka cold snap: a dramatic climate event that reshaped global temperatures and human societies, triggered by glacial lake drainage.","jetpack_seo_html_title":"Understanding the 8.2 ka Cold Snap: Impacts and Causes","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":[691845768,691845773,691844348,691821384,691845769,691845774,691818192,691828852,691845770,691845772,691845771,691837251],"class_list":["post-474345","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-uncategorized","tag-8-2-kiloyear-ka-event","tag-8-6-kiloyear-ka","tag-amoc-weakening","tag-atlantic-meridional-overturning-circulation-amoc","tag-climate-anomaly","tag-global-climate-anomalies","tag-holocene","tag-intertropical-convergence-zone-itcz","tag-north-atlantic-cooling","tag-north-atlantic-freshwater","tag-testing-climate-models-sensitivity","tag-younger-dryas","fallback-thumbnail"],"jetpack_publicize_connections":[],"jetpack_likes_enabled":true,"jetpack_sharing_enabled":true,"jetpack_shortlink":"https:\/\/wp.me\/paxLW1-1ZoJ","jetpack-related-posts":[{"id":467293,"url":"https:\/\/climatescience.press\/?p=467293","url_meta":{"origin":474345,"position":0},"title":"World\u2019s Oldest Fortresses Discovered in Siberia \u2014 Built by Hunter-Gatherers 8,000 Years Ago","author":"uwe.roland.gross","date":"08\/31\/2026","format":false,"excerpt":"Oldest fortresses in the world just discovered are 8,000 years old- Archaeologists have discovered the oldest fortresses in the world. Around 6100- 6000 BCE, the climate in the Northern Hemisphere (including western Siberia) was shaped by the aftermath of the prominent 8.2- kiloyear event, an abrupt global cooling episode. This\u2026","rel":"","context":"In \"Amnya River\"","block_context":{"text":"Amnya River","link":"https:\/\/climatescience.press\/?tag=amnya-river"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Worlds-Oldest-Fortresses-Discovered-in-Siberia-%E2%80%94-Built-by-Hunter-Gatherers-8000-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\/08\/0-Worlds-Oldest-Fortresses-Discovered-in-Siberia-%E2%80%94-Built-by-Hunter-Gatherers-8000-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Worlds-Oldest-Fortresses-Discovered-in-Siberia-%E2%80%94-Built-by-Hunter-Gatherers-8000-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Worlds-Oldest-Fortresses-Discovered-in-Siberia-%E2%80%94-Built-by-Hunter-Gatherers-8000-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-Worlds-Oldest-Fortresses-Discovered-in-Siberia-%E2%80%94-Built-by-Hunter-Gatherers-8000-Years-Ago.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":466346,"url":"https:\/\/climatescience.press\/?p=466346","url_meta":{"origin":474345,"position":1},"title":"When the Rains Failed: How Climate Crisis Shaped the Fate of the World\u2019s Earliest Cities","author":"uwe.roland.gross","date":"08\/28\/2026","format":false,"excerpt":"Both the Caral (Norte Chico) civilization in Peru and Mesopotamian societies (especially the Akkadian Empire) experienced major stresses linked to the global 4.2- kiloyear (4.2 ka) aridification event around 2200- 1800 BC. This period involved widespread drying that reduced rainfall, river flows, and agricultural reliability in multiple regions. While the\u2026","rel":"","context":"In \"Akkadian Empire\"","block_context":{"text":"Akkadian Empire","link":"https:\/\/climatescience.press\/?tag=akkadian-empire"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-When-the-Rains-Failed-How-Climate-Crisis-Shaped-the-Fate-of-the-Worlds-Earliest-Cities.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-When-the-Rains-Failed-How-Climate-Crisis-Shaped-the-Fate-of-the-Worlds-Earliest-Cities.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-When-the-Rains-Failed-How-Climate-Crisis-Shaped-the-Fate-of-the-Worlds-Earliest-Cities.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-When-the-Rains-Failed-How-Climate-Crisis-Shaped-the-Fate-of-the-Worlds-Earliest-Cities.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/08\/0-When-the-Rains-Failed-How-Climate-Crisis-Shaped-the-Fate-of-the-Worlds-Earliest-Cities.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":387102,"url":"https:\/\/climatescience.press\/?p=387102","url_meta":{"origin":474345,"position":2},"title":"New Study Indicates The North Atlantic Is Colder Now Than Any Other Time In The Last 9000 Years","author":"uwe.roland.gross","date":"07\/05\/2025","format":false,"excerpt":"According to a\u00a0new study, abrupt (\u00b11-2\u00b0C per century) shifts in North Atlantic Sea surface temperature (SST) have occurred routinely over the last 9000 years. These decadal- to centennial-scale climate changes were \u201cinduced by Holocene summer insolation and atmosphere-ocean internal variability.\u201d","rel":"","context":"In \"Climate change\"","block_context":{"text":"Climate change","link":"https:\/\/climatescience.press\/?tag=climate-change"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/07\/0AQNIufr_LyzLiWjseRqh9t51BpXUnTki9ljFPn-bIBfLLeZoM_7gfvlh8TfDD8UOvRl6CaSZvKP_RD3kuI36ePF6rWiExQuAtl3eEEt0uMdUEebFexrrSNwo0ixuWL4SqPhvaq12xfaY5sEHHhY8u8O0D_od3A-1.jpeg?fit=1200%2C1200&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/07\/0AQNIufr_LyzLiWjseRqh9t51BpXUnTki9ljFPn-bIBfLLeZoM_7gfvlh8TfDD8UOvRl6CaSZvKP_RD3kuI36ePF6rWiExQuAtl3eEEt0uMdUEebFexrrSNwo0ixuWL4SqPhvaq12xfaY5sEHHhY8u8O0D_od3A-1.jpeg?fit=1200%2C1200&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/07\/0AQNIufr_LyzLiWjseRqh9t51BpXUnTki9ljFPn-bIBfLLeZoM_7gfvlh8TfDD8UOvRl6CaSZvKP_RD3kuI36ePF6rWiExQuAtl3eEEt0uMdUEebFexrrSNwo0ixuWL4SqPhvaq12xfaY5sEHHhY8u8O0D_od3A-1.jpeg?fit=1200%2C1200&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/07\/0AQNIufr_LyzLiWjseRqh9t51BpXUnTki9ljFPn-bIBfLLeZoM_7gfvlh8TfDD8UOvRl6CaSZvKP_RD3kuI36ePF6rWiExQuAtl3eEEt0uMdUEebFexrrSNwo0ixuWL4SqPhvaq12xfaY5sEHHhY8u8O0D_od3A-1.jpeg?fit=1200%2C1200&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/07\/0AQNIufr_LyzLiWjseRqh9t51BpXUnTki9ljFPn-bIBfLLeZoM_7gfvlh8TfDD8UOvRl6CaSZvKP_RD3kuI36ePF6rWiExQuAtl3eEEt0uMdUEebFexrrSNwo0ixuWL4SqPhvaq12xfaY5sEHHhY8u8O0D_od3A-1.jpeg?fit=1200%2C1200&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":473151,"url":"https:\/\/climatescience.press\/?p=473151","url_meta":{"origin":474345,"position":3},"title":"The Climate Catastrophe That Toppled the World\u2019s First Empire","author":"uwe.roland.gross","date":"09\/22\/2026","format":false,"excerpt":"The Akkadian Empire (c. 2334- 2154 BCE, Middle Chronology) was the world\u2019s first known multi-ethnic empire. The 4.2- kiloyear event (also called the 4.2 ka BP event or 4.2 ka megadrought) was a major aridification episode that began around 2200 BCE and lasted roughly 100- 300 years. Before the empire,\u2026","rel":"","context":"In \"100\u2013 300 years megadrought\"","block_context":{"text":"100\u2013 300 years megadrought","link":"https:\/\/climatescience.press\/?tag=100-300-years-megadrought"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-Climate-Catastrophe-That-Toppled-the-Worlds-First-Empire.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-The-Climate-Catastrophe-That-Toppled-the-Worlds-First-Empire.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-Climate-Catastrophe-That-Toppled-the-Worlds-First-Empire.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-Climate-Catastrophe-That-Toppled-the-Worlds-First-Empire.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-The-Climate-Catastrophe-That-Toppled-the-Worlds-First-Empire.jpg?fit=1168%2C784&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":426755,"url":"https:\/\/climatescience.press\/?p=426755","url_meta":{"origin":474345,"position":4},"title":"New Study: A 4\u00b0C Warmer Beaufort Sea Had \u2018No Sea Ice\u2019 11,700 \u2013 8200 Years Ago","author":"uwe.roland.gross","date":"02\/17\/2026","format":false,"excerpt":"According to a\u00a0new study, there was \u201cno sea ice\u201d in the Arctic\u2019s Beaufort Sea from 11,700 to 8200 years ago.","rel":"","context":"In \"Atlantic meridional overturning circulation (AMOC)\"","block_context":{"text":"Atlantic meridional overturning circulation (AMOC)","link":"https:\/\/climatescience.press\/?tag=atlantic-meridional-overturning-circulation-amoc"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/04\/0arcticseaice.jpg?fit=1200%2C685&ssl=1&resize=350%2C200","width":350,"height":200,"srcset":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/04\/0arcticseaice.jpg?fit=1200%2C685&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/04\/0arcticseaice.jpg?fit=1200%2C685&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/04\/0arcticseaice.jpg?fit=1200%2C685&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2025\/04\/0arcticseaice.jpg?fit=1200%2C685&ssl=1&resize=1050%2C600 3x"},"classes":[]},{"id":473809,"url":"https:\/\/climatescience.press\/?p=473809","url_meta":{"origin":474345,"position":5},"title":"AMOC Collapse Would Be Catastrophic: And Ice- Age Records Show It\u2019s Happened Before","author":"uwe.roland.gross","date":"09\/25\/2026","format":false,"excerpt":"Yeah, a full collapse of the Atlantic Meridional Overturning Circulation (AMOC) would produce severe, far- reaching climate disruptions that scientists widely describe as catastrophic for large regions, especially northwestern Europe, the U.S. East Coast, and monsoon-dependent areas in Africa, Asia, and South America. The AMOC has switched states in the\u2026","rel":"","context":"In \"Atlantic meridional overturning circulation (AMOC)\"","block_context":{"text":"Atlantic meridional overturning circulation (AMOC)","link":"https:\/\/climatescience.press\/?tag=atlantic-meridional-overturning-circulation-amoc"},"img":{"alt_text":"","src":"https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-AMOC-Collapse-Would-Be-Catastrophic-And-Ice-Age-Records-Show-Its-Happened-Before.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-AMOC-Collapse-Would-Be-Catastrophic-And-Ice-Age-Records-Show-Its-Happened-Before.jpg?fit=1168%2C784&ssl=1&resize=350%2C200 1x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-AMOC-Collapse-Would-Be-Catastrophic-And-Ice-Age-Records-Show-Its-Happened-Before.jpg?fit=1168%2C784&ssl=1&resize=525%2C300 1.5x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-AMOC-Collapse-Would-Be-Catastrophic-And-Ice-Age-Records-Show-Its-Happened-Before.jpg?fit=1168%2C784&ssl=1&resize=700%2C400 2x, https:\/\/i0.wp.com\/climatescience.press\/wp-content\/uploads\/2026\/09\/0-AMOC-Collapse-Would-Be-Catastrophic-And-Ice-Age-Records-Show-Its-Happened-Before.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-The-8.2-ka-Cold-Snap-How-a-Catastrophic-Lake-Drainage-Weakened-the-AMOC-and-Cooled-the-Planet.jpg?fit=1168%2C784&ssl=1","_links":{"self":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474345","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=474345"}],"version-history":[{"count":37,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474345\/revisions"}],"predecessor-version":[{"id":474405,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/posts\/474345\/revisions\/474405"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=\/wp\/v2\/media\/474346"}],"wp:attachment":[{"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=474345"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=474345"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/climatescience.press\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=474345"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}