{"id":22327592,"date":"2026-09-14T17:26:50","date_gmt":"2026-09-14T15:26:50","guid":{"rendered":"https:\/\/migflug.com\/afterburner\/angle-of-attack-and-the-stall-explained\/"},"modified":"2026-09-14T17:31:33","modified_gmt":"2026-09-14T15:31:33","slug":"angle-of-attack-and-the-stall-explained","status":"publish","type":"post","link":"https:\/\/migflug.com\/afterburner\/de\/angle-of-attack-and-the-stall-explained\/","title":{"rendered":"Angle of Attack and the Stall: Why Wings Stop Working"},"content":{"rendered":"<style>.et_pb_title_container h1.entry-title { padding-top: 40px !important; }<\/style>\r\n\r\n<p>There is one sentence that, properly understood, prevents a large fraction of fatal loss-of-control accidents. The US Federal Aviation Administration puts it like this:<\/p>\r\n\r\n\r\n<div style=\"background:#f8f9fa;border-left:4px solid #d32f2f;padding:20px 22px;margin:18px 0 24px;font-size:16px;line-height:1.7;display:flex;gap:20px;align-items:flex-start\"><div><em>&ldquo;It is possible to exceed the critical AOA at any airspeed, at any attitude, and at any power setting.&rdquo;<\/em><div style=\"margin-top:10px;font-size:14px;color:#555\"><strong>Federal Aviation Administration<\/strong> &mdash; Airplane Flying Handbook, FAA-H-8083-3C, Chapter 4, \u201cStalls\u201d<\/div><\/div><\/div>\r\n\r\n\r\n<p>Any airspeed. Any attitude. Any power setting. A wing does not stall because the aircraft is slow. It stalls because the angle of attack has become too large, and that can happen at 500 knots in a dive just as readily as at 60 knots in the circuit.<\/p>\r\n\r\n\r\n<div style=\"background:#f5f5f5;padding:20px 22px;margin:24px 0\"><p style=\"margin:0 0 10px;font-weight:700;font-size:17px;color:#1a1a1a\">Quick Facts<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Angle of attack:<\/strong> The angle between the wing\u2019s chord line and the relative wind. Not the pitch attitude<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Critical angle of attack:<\/strong> The angle beyond which the wing stalls. Typically around 16 to 17 degrees for a conventional wing<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>What triggers a stall:<\/strong> Exceeding the critical angle of attack. Nothing else<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Published stall speed:<\/strong> Valid only for unaccelerated 1G flight, coordinated, at one weight and one centre of gravity<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Accelerated stall:<\/strong> Any stall at more than 1G. Usually demonstrated at around 45 degrees of bank<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Above manoeuvring speed:<\/strong> The wing can reach its design load limit at an angle of attack below the critical one<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Recovery:<\/strong> Reduce angle of attack first. Everything else comes after<\/p><p style=\"margin:5px 0;font-size:15px;line-height:1.6\"><strong>Cruise margin:<\/strong> On an airliner at Mach 0.8, the gap between flight angle of attack and stall warning can be about 1.5 degrees<\/p><\/div>\r\n\r\n\r\n<h2 style=\"padding-top:22px\">It is not the nose attitude<\/h2>\r\n\r\n<p>The commonest confusion is between angle of attack and pitch attitude. They are different things and they can point in opposite directions.<\/p>\r\n\r\n<p>Pitch attitude is where the nose is relative to the horizon. Angle of attack is where the wing is relative to the air it is actually moving through. An aircraft descending steeply can have a low nose and a very high angle of attack at the same time, because the air is arriving from well below the nose.<\/p>\r\n\r\n<p>The FAA is blunt about what this means for the pilot: because an aeroplane can be stalled in any attitude, looking out of the window is not a reliable indicator.<\/p>\r\n\r\n\r\n<figure class=\"wp-block-image size-large\" style=\"margin:0 0 24px;width:100%\"><img decoding=\"async\" class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" width=\"1024\" src=\"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/09\/angle-of-attack-wing-in-airflow-diagram.png\" alt=\"Diagram showing the angle of attack of a wing in airflow\" style=\"width:100%;height:auto;max-width:100%;display:block\"><figcaption style=\"font-size:13px;color:#777;text-align:center;margin-top:6px;font-style:italic\">Angle of attack is measured between the chord line of the wing and the relative wind, not between the aircraft and the horizon. Diagram: Wikimedia Commons, CC BY-SA 3.0.<\/figcaption><\/figure>\r\n\r\n\r\n<h2 style=\"padding-top:22px\">Why the stall speed in the manual keeps lying to you<\/h2>\r\n\r\n<p>Every aircraft has a published stall speed, and every published stall speed comes with conditions attached that pilots routinely forget. The FAA lists them: unaccelerated 1G flight, coordinated flight with the ball centred, one specific weight, and one specific centre of gravity position.<\/p>\r\n\r\n<p>Change any of those and the speed changes. Load the aircraft heavier and it stalls faster. Pull G in a turn and it stalls faster still, because in a 60-degree banked level turn the wing is carrying twice the aircraft\u2019s weight and therefore needs the lift it would produce at a much higher speed.<\/p>\r\n\r\n<p>What does not change is the critical angle of attack. That number is a property of the wing. It sits there, unmoved by weight, bank, altitude or how the day is going.<\/p>\r\n\r\n\r\n<figure class=\"wp-block-image size-large\" style=\"margin:0 0 24px;width:100%\"><img decoding=\"async\" class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" width=\"1024\" src=\"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/09\/lift-and-drag-coefficient-vs-angle-of-attack.jpg\" alt=\"A graph of lift and drag coefficients plotted against angle of attack\" style=\"width:100%;height:auto;max-width:100%;display:block\"><figcaption style=\"font-size:13px;color:#777;text-align:center;margin-top:6px;font-style:italic\">The lift curve. It climbs almost linearly, peaks at the critical angle of attack, and then falls away. The FAA\u2019s own worked example places that peak between 16 and 17 degrees. Diagram: Wikimedia Commons, CC BY-SA 3.0.<\/figcaption><\/figure>\r\n\r\n\r\n<p>Accelerated stalls are the practical consequence. The FAA calls them accelerated manoeuvre stalls and defines them as any stall occurring above 1G, typically demonstrated in a steep turn at or below manoeuvring speed.<\/p>\r\n\r\n<p>There is a nuance in the FAA text that deserves more attention than it gets. Above manoeuvring speed, the wing can reach the design load limit at an angle of attack <em>below<\/em> the critical one. In other words, pull hard enough up there and you will break the aeroplane before you stall it.<\/p>\r\n\r\n\r\n<div style=\"position:relative;padding-bottom:56.25%;height:0;overflow:hidden;margin:24px 0\"><iframe class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"https:\/\/www.youtube.com\/embed\/feFx-ahQBKc\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\" allowfullscreen><\/iframe><\/div>\r\n\r\n\r\n<h2 style=\"padding-top:22px\">Why airspeed is a poor cue where it matters most<\/h2>\r\n\r\n<p>The clearest illustration comes from the French investigation into the loss of Air France 447 over the Atlantic in June 2009, and the BEA\u2019s report contains a number that explains a great deal about why high-altitude stalls are so dangerous.<\/p>\r\n\r\n<p>At takeoff or approach speeds, a one-degree change in angle of attack corresponds to roughly a five-knot change in indicated airspeed. In cruise, the same one degree corresponds to about twenty-five knots. So in the cruise the speed tape moves a long way for a very small change in the thing that actually matters, and at Mach 0.8 the margin between the flight angle of attack and the stall warning angle can be of the order of one and a half degrees.<\/p>\r\n\r\n<p>The BEA report also records, plainly, the divergence between attitude and angle of attack that night. At maximum altitude the aircraft\u2019s pitch attitude and angle of attack were both around sixteen degrees. Later, as it descended at around ten thousand feet per minute, the angle of attack exceeded forty degrees while the pitch attitude never exceeded fifteen.<\/p>\r\n\r\n\r\n<div style=\"background:#f8f9fa;border-left:4px solid #1565c0;padding:20px 22px;margin:18px 0 24px;font-size:16px;line-height:1.7;display:flex;gap:20px;align-items:flex-start\"><div><em>&ldquo;The angle of attack, when it was valid, always remained above 35 degrees.&rdquo;<\/em><div style=\"margin-top:10px;font-size:14px;color:#555\"><strong>Bureau d\u2019Enqu\u00eates et d\u2019Analyses<\/strong> &mdash; Final report on the accident of 1 June 2009 to Airbus A330-203 registered F-GZCP<\/div><\/div><\/div>\r\n\r\n\r\n<p>The phrase \u201cwhen it was valid\u201d matters. Below sixty knots of indicated airspeed the angle of attack values are declared invalid, which is why the stall warning stopped after sounding continuously for fifty-four seconds. The aircraft was deeply stalled and the warning had gone quiet.<\/p>\r\n\r\n\r\n<figure class=\"wp-block-image size-large\" style=\"margin:0 0 24px;width:100%\"><img decoding=\"async\" class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" width=\"1024\" src=\"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/09\/x-29-high-angle-of-attack-smoke-generators.jpg\" alt=\"The NASA X-29 flying at high angle of attack with smoke generators\" style=\"width:100%;height:auto;max-width:100%;display:block\"><figcaption style=\"font-size:13px;color:#777;text-align:center;margin-top:6px;font-style:italic\">The NASA X-29 at high angle of attack, smoke generators making the flow visible. Research aircraft explore this region deliberately. Airliners are not supposed to visit it. NASA photograph, public domain.<\/figcaption><\/figure>\r\n\r\n\r\n<h2 style=\"padding-top:22px\">Recovery: the order is the lesson<\/h2>\r\n\r\n<p>The FAA is explicit about the most common fatal error in stall recovery, which is not failing to recover but recovering in the wrong order.<\/p>\r\n\r\n<p>Its wording is that there have been numerous situations where pilots did not first reduce angle of attack, and instead prioritised power and maintaining altitude, which resulted in a loss of control. The instinct to avoid losing height is exactly the instinct that keeps the wing stalled.<\/p>\r\n\r\n<p>The manufacturer-derived template runs: autopilot off, pitch nose-down until the stall indications stop, roll wings level, add thrust as needed, retract speedbrakes, then recover the flight path. Altitude is the last thing on the list, and deliberately so.<\/p>\r\n\r\n\r\n<div style=\"position:relative;padding-bottom:56.25%;height:0;overflow:hidden;margin:24px 0\"><iframe class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"https:\/\/www.youtube.com\/embed\/1G98A32P-b8\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\" allowfullscreen><\/iframe><\/div>\r\n\r\n\r\n<h2 style=\"padding-top:22px\">Why not just fit an angle of attack indicator?<\/h2>\r\n\r\n<p>Many aircraft do, and military fast jets have flown approaches on angle of attack rather than airspeed for decades, because it is the correct parameter and it is independent of weight.<\/p>\r\n\r\n<p>The FAA notes the caveats honestly: different manufacturers calculate the indication differently, some systems take flap position into account and some do not, and accuracy depends on calibration, on the wing being clean, and on the probe or vane being heated. An angle of attack indicator that has iced up is worse than none, because it is confidently wrong.<\/p>\r\n\r\n\r\n<div style=\"position:relative;padding-bottom:56.25%;height:0;overflow:hidden;margin:24px 0\"><iframe class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"https:\/\/www.youtube.com\/embed\/E3i_XHlVCeU\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\" allowfullscreen><\/iframe><\/div>\r\n\r\n\r\n<p>None of which changes the underlying sentence. The wing does not know how fast it is going, how much the aircraft weighs, or which way up it is. It only knows the angle at which the air is arriving, and past a certain angle it stops working.<\/p>\r\n\r\n<p><em>Sources: FAA, Airplane Flying Handbook (FAA-H-8083-3C), Chapter 4, \u201cStalls\u201d; Bureau d\u2019Enqu\u00eates et d\u2019Analyses, Final Report on the accident on 1 June 2009 to the Airbus A330-203 registered F-GZCP; NASA Glenn Research Center.<\/em><\/p>\r\n\r\n\r\n<style>.mfq{margin:34px 0 8px}.mfq h2{font:26px\/1.3 \"Gilroy semiBold\",Helvetica,Arial,sans-serif;color:#0d1117;padding-top:22px;margin:0 0 6px}.mfq .qa details{border-top:1px solid #5C91FF;margin:0;padding:0}.mfq .qa details:last-of-type{border-bottom:1px solid #e2e7ee}.mfq .qa summary{cursor:pointer;list-style:none;display:flex;justify-content:space-between;align-items:center;gap:16px;padding:22px 26px;font:18px\/1.7 \"Gilroy semiBold\",Helvetica,Arial,sans-serif;color:#0d1117}.mfq .qa summary::-webkit-details-marker{display:none}.mfq .qa summary::after{content:\"+\";font:24px Helvetica,sans-serif;color:#3568e0;flex:0 0 auto}.mfq .qa details[open] summary::after{content:\"\\2013\"}.mfq .qa details:hover summary{color:#3568e0}.mfq .qa .a{font:16px\/1.7 \"Gilroy regular\",Helvetica,Arial,sans-serif;color:#454e5e;padding:0 26px 24px}.mfq .qa .a a{color:#3568e0}@media(max-width:680px){.mfq .qa summary{padding:18px 14px;font-size:17px}.mfq .qa .a{padding:0 14px 20px}}<\/style>\r\n\r\n\r\n<section class=\"mfq\"><h2>Frequently Asked Questions<\/h2><div class=\"qa\"><details open><summary>What is angle of attack?<\/summary><div class=\"a\">The angle between the wing\u2019s chord line and the relative wind, meaning the air the wing is actually moving through. It is not the same as pitch attitude, which is the angle between the aircraft and the horizon, and the two can differ substantially.<\/div><\/details><details><summary>What actually causes a stall?<\/summary><div class=\"a\">Exceeding the critical angle of attack, and nothing else. The FAA states that it is possible to exceed the critical angle of attack at any airspeed, any attitude and any power setting. Low speed makes it likelier, but low speed is not the cause.<\/div><\/details><details><summary>What is the critical angle of attack?<\/summary><div class=\"a\">The angle beyond which airflow separates from the upper surface of the wing and lift collapses. For a conventional wing it is typically around 16 to 17 degrees, though the exact value depends on the airfoil. It does not change with weight, bank angle or altitude.<\/div><\/details><details><summary>Why does stall speed change but critical angle of attack does not?<\/summary><div class=\"a\">Published stall speed assumes unaccelerated 1G flight, coordinated, at one weight and one centre of gravity. Add weight or pull G in a turn and the wing needs more lift, so it reaches the critical angle at a higher speed. The angle itself is a property of the wing.<\/div><\/details><details><summary>What is an accelerated stall?<\/summary><div class=\"a\">A stall occurring at more than 1G, typically in a steep turn or an abrupt pull-up. The FAA calls it an accelerated manoeuvre stall. Above manoeuvring speed a wing can reach its structural load limit at an angle of attack below the critical one.<\/div><\/details><details><summary>What is the correct order for stall recovery?<\/summary><div class=\"a\">Reduce angle of attack first. The FAA notes numerous accidents where crews prioritised power and holding altitude instead, and lost control. The standard template is autopilot off, pitch down until indications cease, wings level, thrust as needed, then recover the flight path.<\/div><\/details><details><summary>Can I fly a real fighter jet and feel this?<\/summary><div class=\"a\">Yes. MiGFlug flies civilians in genuine military aircraft including the L-39 Albatros and the MiG-29 Fulcrum with professional crews, where angle of attack and G are a good deal more tangible than on a diagram. Details at <a href=\"https:\/\/migflug.com\/flights-prices\/\">migflug.com\/flights-prices<\/a>.<\/div><\/details><\/div><\/section>\r\n\r\n\r\n<script type=\"application\/ld+json\">{\"@context\":\"https:\/\/schema.org\",\"@type\":\"FAQPage\",\"mainEntity\":[{\"@type\":\"Question\",\"name\":\"What is angle of attack?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"The angle between the wing\u2019s chord line and the relative wind, meaning the air the wing is actually moving through. It is not the same as pitch attitude, which is the angle between the aircraft and the horizon, and the two can differ substantially.\"}},{\"@type\":\"Question\",\"name\":\"What actually causes a stall?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Exceeding the critical angle of attack, and nothing else. The FAA states that it is possible to exceed the critical angle of attack at any airspeed, any attitude and any power setting. 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The angle itself is a property of the wing.\"}},{\"@type\":\"Question\",\"name\":\"What is an accelerated stall?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"A stall occurring at more than 1G, typically in a steep turn or an abrupt pull-up. The FAA calls it an accelerated manoeuvre stall. Above manoeuvring speed a wing can reach its structural load limit at an angle of attack below the critical one.\"}},{\"@type\":\"Question\",\"name\":\"What is the correct order for stall recovery?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Reduce angle of attack first. The FAA notes numerous accidents where crews prioritised power and holding altitude instead, and lost control. The standard template is autopilot off, pitch down until indications cease, wings level, thrust as needed, then recover the flight path.\"}},{\"@type\":\"Question\",\"name\":\"Can I fly a real fighter jet and feel this?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Yes. MiGFlug flies civilians in genuine military aircraft including the L-39 Albatros and the MiG-29 Fulcrum with professional crews, where angle of attack and G are a good deal more tangible than on a diagram. Details at migflug.com\/flights-prices.\"}}]}<\/script><div style=\"background:#f0f4ff;border-left:4px solid #5C91FF;padding:16px 20px;margin:32px 0 8px\"><p style=\"margin:0 0 8px;font-weight:600;color:#333\">Related Posts<\/p><p style=\"margin:4px 0\"><a href=\"https:\/\/migflug.com\/afterburner\/coffin-corner-aerodynamics-stall-mach-high-altitude\/\">The Corner of the Sky That Kills Both Ways<\/a><\/p><p style=\"margin:4px 0\"><a href=\"https:\/\/migflug.com\/afterburner\/how-does-an-aircraft-fly-four-forces-lift-explained\/\">How Does an Aircraft Fly? 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It stalls because the angle of attack is too big, and that can happen at any speed, any attitude and any power setting.<\/p>","protected":false},"author":27,"featured_media":22324899,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"editor_notices":[],"footnotes":""},"categories":[665],"tags":[],"class_list":["post-22327592","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-aviation-world"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.4 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Angle of Attack and the Stall Explained | MiGFlug<\/title>\n<meta name=\"description\" content=\"A wing does not stall because it is slow. 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