﻿{"id":27396730,"date":"2026-10-09T10:58:14","date_gmt":"2026-10-09T08:58:14","guid":{"rendered":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/"},"modified":"2026-10-09T10:58:22","modified_gmt":"2026-10-09T08:58:22","slug":"sr-71-mach-4-blackbird-j58-limits-nasa-844","status":"publish","type":"post","link":"https:\/\/migflug.com\/afterburner\/es\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/","title":{"rendered":"SR-71 at Mach 4: What It Would Take to Make the Blackbird Faster"},"content":{"rendered":"<style>.et_pb_title_container h1.entry-title { padding-top: 40px !important; }<\/style>\n<!-- mfsh:top -->\n\n<style>\n.mfsh-trigger{display:inline-flex;align-items:center;gap:10px;height:44px;padding:0 18px;margin:0 0 26px;border:2px solid #0F1720;background:#fff;color:#0F1720;font-family:inherit;font-size:14px;font-weight:700;line-height:1;letter-spacing:0;text-transform:none;cursor:pointer;box-shadow:none;transition:background .15s,color .15s}\n.mfsh-trigger:hover,.mfsh-trigger:focus-visible{background:#0F1720;color:#fff;outline:none}\n.mfsh-trigger svg{width:18px;height:18px;display:block;flex-shrink:0}\n.mfsh-trigger.mfsh-bottom{margin:8px 0 28px}\n.mfsh-meta{position:relative;padding-right:190px}\n.mfsh-trigger.mfsh-inmeta{position:absolute;right:0;bottom:0;margin:0;height:30px;padding:0 8.9px;font-size:13px}\n.mfsh-trigger.mfsh-inmeta svg{width:16px;height:16px}\n.mfsh-overlay{position:fixed;inset:0;background:rgba(15,23,32,.55);z-index:99999;display:flex;align-items:flex-end;justify-content:center;opacity:0;pointer-events:none;transition:opacity .2s}\n.mfsh-overlay.mfsh-open{opacity:1;pointer-events:auto}\n.mfsh-sheet{width:100%;max-width:520px;background:#fff;color:#0F1720;padding:18px 20px 28px;transform:translateY(24px);transition:transform .22s;box-shadow:0 12px 32px rgba(15,23,32,.25);font-family:inherit;max-height:92vh;overflow:auto;-webkit-overflow-scrolling:touch}\n.mfsh-overlay.mfsh-open .mfsh-sheet{transform:none}\n@media (min-width:640px){.mfsh-overlay{align-items:center}.mfsh-sheet{padding-bottom:20px}}\n.mfsh-head{display:flex;align-items:center;justify-content:space-between;margin:0 0 14px}\n.mfsh-head strong{font-size:18px;font-weight:800;display:flex;align-items:center;gap:8px;line-height:1}\n.mfsh-head strong svg{width:18px;height:18px}\n.mfsh-close{background:none;border:0;padding:6px;margin:0;cursor:pointer;color:#0F1720;line-height:0;box-shadow:none}\n.mfsh-close svg{width:18px;height:18px}\n.mfsh-preview{display:grid;grid-template-columns:96px 1fr;gap:12px;border:1px solid #DCE3EE;background:#F5F7FB;padding:10px;margin:0 0 12px;align-items:center}\n.mfsh-preview img{width:96px;height:72px;object-fit:cover;display:block;margin:0}\n.mfsh-preview .mfsh-kicker{font-size:10px;font-weight:700;letter-spacing:.14em;text-transform:uppercase;color:#5C91FF;margin:0 0 4px;line-height:1.2}\n.mfsh-preview .mfsh-title{font-size:14px;line-height:1.3;font-weight:700;margin:0;display:block}\n.mfsh-list{display:grid;margin:0;padding:0}\n.mfsh-item{display:flex;align-items:center;gap:14px;height:50px;width:100%;border:0;border-top:1px solid #DCE3EE;background:none;padding:0 4px;margin:0;text-align:left;font-family:inherit;font-size:15px;font-weight:600;color:#0F1720;cursor:pointer;box-shadow:none;letter-spacing:0;text-transform:none;line-height:1}\n.mfsh-item:hover,.mfsh-item:focus-visible{background:#F5F7FB;outline:none}\n.mfsh-item svg{width:20px;height:20px;color:#5C91FF;flex-shrink:0;display:block}\n.mfsh-item small{margin-left:auto;color:#5B6674;font-weight:500;font-size:12px}\n.mfsh-item.mfsh-done svg{color:#1E9E5A}\n.mfsh-toast{position:fixed;left:50%;bottom:32px;transform:translate(-50%,10px);background:#0F1720;color:#fff;padding:10px 16px;font-weight:700;font-size:13px;font-family:inherit;opacity:0;pointer-events:none;transition:opacity .2s,transform .2s;z-index:100000}\n.mfsh-toast.mfsh-show{opacity:1;transform:translate(-50%,0)}\n@media (prefers-reduced-motion:reduce){.mfsh-overlay,.mfsh-sheet,.mfsh-toast,.mfsh-trigger{transition:none}}\n<\/style>\n<svg width=\"0\" height=\"0\" style=\"position:absolute\" aria-hidden=\"true\">\n  <symbol id=\"mfsh-i-share\" viewBox=\"0 0 24 24\"><path fill=\"none\" stroke=\"currentColor\" stroke-width=\"1.9\" stroke-linecap=\"square\" d=\"M12 3v12M8 7l4-4 4 4M5 12v8h14v-8\"\/><\/symbol>\n  <symbol id=\"mfsh-i-close\" viewBox=\"0 0 24 24\"><path fill=\"none\" stroke=\"currentColor\" stroke-width=\"2\" stroke-linecap=\"square\" d=\"m5 5 14 14M19 5 5 19\"\/><\/symbol>\n  <symbol id=\"mfsh-i-wa\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M12 2a10 10 0 0 0-8.6 15.1L2 22l5.1-1.3A10 10 0 1 0 12 2Zm0 1.8a8.2 8.2 0 1 1-4.2 15.3l-.3-.2-3 .8.8-2.9-.2-.3A8.2 8.2 0 0 1 12 3.8Zm-3 4.4c-.2 0-.5 0-.8.4-.3.3-1 1-1 2.4s1 2.8 1.2 3c.1.2 2 3.2 5 4.4 2.5 1 3 .8 3.5.7.5 0 1.7-.7 2-1.4.2-.7.2-1.3.1-1.4l-.5-.3-2-1c-.3 0-.5-.1-.7.2l-.9 1.1c-.2.2-.3.2-.6.1-.3-.2-1.3-.5-2.4-1.5-.9-.8-1.5-1.8-1.7-2-.2-.4 0-.5.2-.7l.4-.5.3-.5v-.5l-.9-2.2c-.2-.5-.4-.5-.6-.5H9Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-x\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M17.8 3h3l-6.7 7.7L22 21h-6.2l-4.8-6.3L5.4 21h-3l7.2-8.2L2 3h6.3l4.4 5.8L17.8 3Zm-1.1 16.2h1.7L7.4 4.7H5.6l11.1 14.5Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-fb\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M13.5 22v-8h2.7l.4-3.2h-3.1V8.8c0-.9.3-1.6 1.6-1.6h1.7V4.4c-.3 0-1.3-.1-2.5-.1-2.5 0-4.1 1.5-4.1 4.2v2.3H7.4V14h2.8v8h3.3Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-li\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M6.5 8.5H3V21h3.5V8.5ZM4.8 3a2 2 0 1 0 0 4 2 2 0 0 0 0-4ZM21 13.4c0-3.4-1.8-5.2-4.5-5.2-1.6 0-2.7.8-3.2 1.7V8.5H9.9V21h3.4v-6.4c0-1.7.6-2.8 2.1-2.8 1.4 0 2 1 2 2.8V21H21v-7.6Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-rd\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M22 12.1a2.4 2.4 0 0 0-4.1-1.7 11.7 11.7 0 0 0-5.5-1.7l1-4.5 3.1.7a1.7 1.7 0 1 0 .2-1l-3.6-.8a.5.5 0 0 0-.6.4l-1.1 5.2a11.8 11.8 0 0 0-5.8 1.7A2.4 2.4 0 1 0 3 14.3v.5c0 3.4 4 6.2 9 6.2s9-2.8 9-6.2v-.5a2.4 2.4 0 0 0 1-2.2ZM7.5 13.8a1.7 1.7 0 1 1 3.4 0 1.7 1.7 0 0 1-3.4 0Zm8.9 4.5c-1.2 1.2-3.4 1.3-4.4 1.3s-3.3-.1-4.4-1.3a.5.5 0 0 1 .7-.7c.7.8 2.4 1 3.7 1s2.9-.2 3.7-1a.5.5 0 0 1 .7.7Zm-.6-2.8a1.7 1.7 0 1 1 0-3.4 1.7 1.7 0 0 1 0 3.4Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-tg\" viewBox=\"0 0 24 24\"><path fill=\"currentColor\" d=\"M21.9 4.6 18.7 19.9c-.2 1-.9 1.3-1.7.8l-4.9-3.6-2.3 2.3c-.3.3-.5.5-1 .5l.4-5 9-8.2c.4-.3-.1-.5-.6-.2L6.4 13.5 1.6 12c-1-.3-1.1-1 .2-1.5l18.8-7.2c.9-.3 1.6.2 1.3 1.3Z\"\/><\/symbol>\n  <symbol id=\"mfsh-i-mail\" viewBox=\"0 0 24 24\"><path fill=\"none\" stroke=\"currentColor\" stroke-width=\"1.8\" d=\"M3 6h18v12H3z\"\/><path fill=\"none\" stroke=\"currentColor\" stroke-width=\"1.8\" d=\"m3 7 9 6 9-6\"\/><\/symbol>\n  <symbol id=\"mfsh-i-link\" viewBox=\"0 0 24 24\"><path fill=\"none\" stroke=\"currentColor\" stroke-width=\"1.9\" stroke-linecap=\"square\" d=\"M10 14a4 4 0 0 0 5.7 0l3-3a4 4 0 0 0-5.7-5.7l-1.5 1.5M14 10a4 4 0 0 0-5.7 0l-3 3a4 4 0 0 0 5.7 5.7l1.5-1.5\"\/><\/symbol>\n  <symbol id=\"mfsh-i-more\" viewBox=\"0 0 24 24\"><circle cx=\"5\" cy=\"12\" r=\"2\" fill=\"currentColor\"\/><circle cx=\"12\" cy=\"12\" r=\"2\" fill=\"currentColor\"\/><circle cx=\"19\" cy=\"12\" r=\"2\" fill=\"currentColor\"\/><\/symbol>\n<\/svg>\n<span class=\"mfsh-top-slot\"><button type=\"button\" class=\"mfsh-trigger\" data-mfsh-placement=\"top\" aria-haspopup=\"dialog\"><svg><use href=\"#mfsh-i-share\"\/><\/svg>Share this story<\/button><\/span>\n<script>\n(function(){\n  if (window.__mfsh) return; window.__mfsh = true;\n  var SECTION = 'afterburner';\n  function meta(p){ var m=document.querySelector('meta[property=\"'+p+'\"]'); return m ? m.getAttribute('content') : ''; }\n  function pageUrl(){ var c=document.querySelector('link[rel=\"canonical\"]'); return (c && c.href) || (location.origin + location.pathname); }\n  function pageTitle(){ var h=document.querySelector('h1.entry-title'); return (h && h.textContent.trim()) || meta('og:title') || document.title; }\n  function slug(){ return location.pathname.replace(\/\\\/+$\/,'').split('\/').pop() || 'home'; }\n  function kicker(){ var c=document.querySelector('.et_pb_title_container a[rel=\"category tag\"], .et_pb_title_container a[rel=\"category\"], a[rel=\"category tag\"]'); return 'Afterburner' + (c && c.textContent.trim() ? ' \u00b7 ' + c.textContent.trim() : ''); }\n  function shareUrl(ch, placement){ return pageUrl() + '?utm_source=share&utm_medium=' + ch + '&utm_campaign=' + SECTION + '&utm_content=sheet_' + placement; }\n  function track(ch, placement, extra){\n    window.dataLayer = window.dataLayer || [];\n    var ev = { event:'share', share_channel:ch, share_variant:'sheet', share_placement:placement, page_section:SECTION, content_id:slug() };\n    if (extra) for (var k in extra) ev[k]=extra[k];\n    window.dataLayer.push(ev);\n  }\n  var CH = [\n    ['whatsapp','WhatsApp','mfsh-i-wa',''],\n    ['x','X','mfsh-i-x',''],\n    ['facebook','Facebook','mfsh-i-fb',''],\n    ['linkedin','LinkedIn','mfsh-i-li',''],\n    ['reddit','Reddit','mfsh-i-rd','r\/aviation, r\/WarplanePorn'],\n    ['telegram','Telegram','mfsh-i-tg',''],\n    ['email','Email','mfsh-i-mail',''],\n    ['copy','Copy link','mfsh-i-link',''],\n    ['native','More','mfsh-i-more','Instagram, Signal, AirDrop']\n  ];\n  var overlay, toastEl, toastT, placement = 'top';\n  function build(){\n    overlay = document.createElement('div'); overlay.className = 'mfsh-overlay'; overlay.setAttribute('role','dialog'); overlay.setAttribute('aria-modal','true'); overlay.setAttribute('aria-label','Share');\n    var img = meta('og:image');\n    var items = CH.filter(function(c){ return c[0] !== 'native' || !!navigator.share; }).map(function(c){\n      return '<button type=\"button\" class=\"mfsh-item\" data-mfsh-ch=\"'+c[0]+'\"><svg><use href=\"#'+c[2]+'\"\/><\/svg>'+c[1]+(c[3]?'<small>'+c[3]+'<\/small>':'')+'<\/button>';\n    }).join('');\n    overlay.innerHTML = '<div class=\"mfsh-sheet\"><div class=\"mfsh-head\"><strong><svg><use href=\"#mfsh-i-share\"\/><\/svg>Share<\/strong><button type=\"button\" class=\"mfsh-close\" aria-label=\"Close\"><svg><use href=\"#mfsh-i-close\"\/><\/svg><\/button><\/div>'\n      + '<div class=\"mfsh-preview\">' + (img ? '<img decoding=\"async\" class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"'+img+'\" alt=\"\">' : '<span><\/span>') + '<div><div class=\"mfsh-kicker\">'+kicker()+'<\/div><span class=\"mfsh-title\">'+pageTitle()+'<\/span><\/div><\/div>'\n      + '<div class=\"mfsh-list\">'+items+'<\/div><\/div>';\n    document.body.appendChild(overlay);\n    toastEl = document.createElement('div'); toastEl.className = 'mfsh-toast'; document.body.appendChild(toastEl);\n    overlay.addEventListener('click', function(e){\n      if (e.target === overlay || e.target.closest('.mfsh-close')) { close(); return; }\n      var b = e.target.closest('.mfsh-item'); if (b) act(b.getAttribute('data-mfsh-ch'), b);\n    });\n    document.addEventListener('keydown', function(e){ if (e.key === 'Escape') close(); });\n  }\n  function open(p){ placement = p || 'top'; if (!overlay) build(); overlay.classList.add('mfsh-open'); track('open', placement); }\n  function close(){ if (overlay) overlay.classList.remove('mfsh-open'); }\n  function toast(m){ toastEl.textContent = m; toastEl.classList.add('mfsh-show'); clearTimeout(toastT); toastT = setTimeout(function(){ toastEl.classList.remove('mfsh-show'); }, 1600); }\n  function act(ch, btn){\n    var url = shareUrl(ch, placement), t = pageTitle(), enc = encodeURIComponent;\n    if (ch === 'copy') {\n      var done = function(){ toast('Link copied'); btn.classList.add('mfsh-done'); setTimeout(function(){ btn.classList.remove('mfsh-done'); close(); }, 900); };\n      track(ch, placement);\n      if (navigator.clipboard && navigator.clipboard.writeText) navigator.clipboard.writeText(url).then(done, done); else done();\n      return;\n    }\n    if (ch === 'native') {\n      track(ch, placement, { share_result:'opened' });\n      navigator.share({ title:t, text:t, url:url }).then(function(){ track('native', placement, { share_result:'completed' }); close(); }).catch(function(){});\n      return;\n    }\n    var target = {\n      whatsapp: 'https:\/\/api.whatsapp.com\/send?text=' + enc(t + ' ' + url),\n      x:        'https:\/\/twitter.com\/intent\/tweet?text=' + enc(t) + '&url=' + enc(url) + '&via=MiGFlug',\n      facebook: 'https:\/\/www.facebook.com\/sharer\/sharer.php?u=' + enc(url),\n      linkedin: 'https:\/\/www.linkedin.com\/sharing\/share-offsite\/?url=' + enc(url),\n      reddit:   'https:\/\/www.reddit.com\/submit?url=' + enc(url) + '&title=' + enc(t),\n      telegram: 'https:\/\/t.me\/share\/url?url=' + enc(url) + '&text=' + enc(t),\n      email:    'mailto:?subject=' + enc(t) + '&body=' + enc('Thought you would like this, from Afterburner, MiGFlug\\'s magazine:\\n' + t + '\\n' + url)\n    }[ch];\n    track(ch, placement);\n    if (target) { if (ch === 'email') location.href = target; else window.open(target, '_blank', 'noopener,width=680,height=560'); }\n    close();\n  }\n  var mq = window.matchMedia('(min-width:981px)');\n  function place(){\n    var t = document.querySelector('.mfsh-trigger[data-mfsh-placement=\"top\"]'), slot = document.querySelector('.mfsh-top-slot');\n    var meta = [].slice.call(document.querySelectorAll('.et_pb_title_meta_container, .et_post_meta_wrapper .post-meta, .single .post-meta')).filter(function(m){ return m.offsetParent !== null; })[0];\n    if (!t || !slot) return;\n    if (meta && mq.matches) { meta.classList.add('mfsh-meta'); t.classList.add('mfsh-inmeta'); if (t.parentNode !== meta) meta.appendChild(t); var a = meta.querySelector('a'); if (a) { var pr = document.createElement('span'); pr.style.cssText = 'display:inline-block;width:0;height:0;vertical-align:baseline'; a.appendChild(pr); var base = pr.getBoundingClientRect().bottom; pr.remove(); var fs = parseFloat(getComputedStyle(a).fontSize) || 14, mb = meta.getBoundingClientRect().bottom; t.style.bottom = Math.max(0, mb - (base + fs * 0.12)) + 'px'; } }\n    else { t.classList.remove('mfsh-inmeta'); if (t.parentNode !== slot) slot.appendChild(t); }\n  }\n  if (document.readyState === 'loading') document.addEventListener('DOMContentLoaded', place); else place(); window.addEventListener('load', place); if (document.fonts && document.fonts.ready) document.fonts.ready.then(place); window.addEventListener('resize', place);\n  if (mq.addEventListener) mq.addEventListener('change', place); else mq.addListener(place);\n  document.addEventListener('click', function(e){ var b = e.target.closest('.mfsh-trigger'); if (b) { e.preventDefault(); open(b.getAttribute('data-mfsh-placement') || 'top'); } });\n})();\n<\/script><!-- \/mfsh:top -->\n<p>Twenty-seven years ago today, on 9 October 1999, a black aeroplane with NASA 844 on its fin took off from Edwards Air Force Base for an open-house display and landed again. Nobody knew it was the last flight any <a href=\"https:\/\/migflug.com\/aircraft\/sr-71-blackbird\/\">SR-71 Blackbird<\/a> would ever make. The aircraft went onto a display pad, and the fastest air-breathing crewed jet in history became a monument.<\/p>\n<p>This autumn the monument is gone from its pad, NASA is sounding out old Blackbird hands, and on 7 October The War Zone asked the question every enthusiast has argued about in a bar: could the SR-71 be modified to fly at Mach 4? The man they asked had actually studied it. Tim Conners was NASA Dryden\u2019s lead SR-71 propulsion engineer in the 1990s, and in the early part of that decade he ran the numbers on pushing the aircraft beyond its record.<\/p>\n<p>His answer, and the answer of the pilots who flew it, is more interesting than yes or no. The Blackbird was never short of thrust. It was short of cool air. Understanding why tells you almost everything about how the SR-71 worked, and what an SR-71 Mach 4 testbed would really have to be.<\/p>\n\n<div style=\"background:#f4f6f8;border-left:4px solid #5C91FF;padding:18px 22px;margin:26px 0\"><p style=\"margin:0 0 10px;font-weight:700;font-size:17px;color:#0d1117\">Quick Facts<\/p><p style=\"margin:5px 0\"><strong>Aircraft in question:<\/strong> NASA 844, Lockheed SR-71A serial 61-7980, last flown 9 October 1999 at Edwards AFB<\/p><p style=\"margin:5px 0\"><strong>Absolute speed record:<\/strong> 2,193.2 mph, about Mach 3.3, set by SR-71A 61-7958 on 28 July 1976<\/p><p style=\"margin:5px 0\"><strong>Design point:<\/strong> Mach 3.2 cruise on a standard day; the flight manual limit was Mach 3.3<\/p><p style=\"margin:5px 0\"><strong>The real limit:<\/strong> Compressor inlet temperature of 427 \u00b0C (800 \u00b0F) at the face of the J58 engine<\/p><p style=\"margin:5px 0\"><strong>Thrust above Mach 3:<\/strong> Inlet 54 per cent, ejector nozzle 28.4 per cent, the engine itself only 17.6 per cent<\/p><p style=\"margin:5px 0\"><strong>Air temperature at Mach 4:<\/strong> About 637 \u00b0C at the engine face in a standard stratosphere, roughly 210 \u00b0C over the J58 limit (Afterburner calculation)<\/p><p style=\"margin:5px 0\"><strong>Fuel:<\/strong> JP-7, so stable it needed triethylborane (TEB) to light, and the aircraft\u2019s only heat sink<\/p><\/div>\n\n<h2 style=\"padding-top:22px\">Mach 3.3 was a temperature, not a speed<\/h2>\n<p>The official record belongs to SR-71A 61-7958, flown by Capt. Eldon Joersz and Maj. George Morgan on 28 July 1976: 2,193.2 mph over a straight course, roughly Mach 3.3. That number has stood for half a century, and it is easy to assume it marks where the Blackbird ran out of puff.<\/p>\n<p>It does not. The aircraft was designed around a cruise of Mach 3.2 on a standard day, and the flight manual capped it at Mach 3.3. The thing doing the capping was a thermometer. A probe in front of each engine measured compressor inlet temperature, or CIT, and above 427 \u00b0C, about 800 \u00b0F, the J58\u2019s front end was in trouble. Blackbird historian Paul Crickmore made the same point to TWZ this week: CIT was the primary critical limitation.<\/p>\n<p>The physics is pleasingly simple. Slow air down from flight speed to the near-standstill an engine can swallow and its kinetic energy reappears as heat. In the stratosphere, where the standard temperature is minus 56.5 \u00b0C, the stagnation temperature at Mach 3.2 is about 387 \u00b0C. At Mach 3.3 it is about 415 \u00b0C. The 427 \u00b0C line arrives at almost exactly Mach 3.34, which is why the record sits where it does. At Mach 4 the same sum gives about 637 \u00b0C, some 210 degrees past the limit.<\/p>\n\n<div style=\"background:#f8f9fa;border-left:4px solid #5C91FF;padding:20px 22px;margin:18px 0 24px;font-size:16px;line-height:1.7\"><em>&ldquo;The SR-71 could attain Mach 3.5, but the aircraft would be in an untested and prohibited area outside of its flight envelope, and serious damage to the aircraft might occur. The SR-71 was point-designed to cruise continuously at Mach 3.2, which is quite an achievement, but it was not intended to have a lot of margin above that speed.&rdquo;<\/em><div style=\"margin-top:10px;font-size:14px;color:#555\"><strong>BC Thomas<\/strong> &mdash; former SR-71 pilot, interviewed by Hush-Kit, 2021<\/div><\/div>\n\n<p>Because the limit was a temperature, the top speed moved with the weather. Thomas said the SR-71 was not power-limited at all; flying faster would simply exceed the inlet temperature limit, along with other heat and structural limits. The late SR-71 pilot David Peters, quoted this week by the Habubrats SR-71 account on X, described being held below Mach 3 on unusually warm days and seeing Mach 3.49 on a cold one without getting near 427 \u00b0C.<\/p>\n<p>Brian Shul has written that he exceeded Mach 3.5 over Libya in April 1986 while evading a missile. So the aircraft could go past its record, briefly, when the air was cold enough. Mach 4 is a different proposition.<\/p>\n\n<div style=\"max-width:550px;margin:0 auto 28px\"><iframe class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"https:\/\/platform.twitter.com\/embed\/Tweet.html?id=2107594850707141059&theme=light\" style=\"width:100%;height:400px;border:none;overflow:hidden\" allowfullscreen><\/iframe><\/div>\n\n<h2 style=\"padding-top:22px\">The engine that turned itself into a ramjet<\/h2>\n<p>To see why the limit sits at the front of the engine, you have to understand that the Pratt &amp; Whitney J58 was not really the Blackbird\u2019s engine at all. It was one part of a propulsion system with three: the inlet, the J58 inside its nacelle, and an ejector nozzle that formed part of the airframe.<\/p>\n<p>Above Mach 3 in maximum afterburner, the inlet produced 54 per cent of the thrust, the ejector 28.4 per cent and the engine just 17.6 per cent. NASA puts it more bluntly in its own caption material: less than 20 per cent of the thrust used to fly at Mach 3 came from the basic engine.<\/p>\n<p>The trick that made this possible was Pratt &amp; Whitney engineer Robert Abernethy\u2019s bleed bypass. Six prominent tubes on the outside of each J58 took 20 per cent of the compressor air after the fourth stage and dumped it straight into the afterburner. At high Mach the engine effectively stopped behaving like a turbojet and started behaving like a ramjet with a turbojet in the middle, with an 80 per cent pressure loss from compressor to exhaust, typical of a ramjet. Up front, a conical spike began creeping aft at Mach 1.6 and kept retracting as speed built, holding the shock waves where the inlet could use them.<\/p>\n\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\/10\/nasa-sr-71b-head-on-inlet-spikes-palmdale.jpg\" alt=\"NASA SR-71B Blackbird seen head-on on the ramp at Palmdale, showing both engine inlets and their conical spikes\" 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\">NASA\u2019s SR-71B trainer head-on at Plant 42, Palmdale, in July 1991. The cones in the intakes are the movable spikes; the inlet, not the engine behind it, did most of the work at Mach 3. Photo: NASA\/Jim Bean<\/figcaption><\/figure>\n\n<p>That design is why the Blackbird was most efficient at the top of its envelope, and why it hit a wall there. The J58 still had to pass air through its compressor, and that compressor was made of metal that had a temperature it could not exceed. Conners told TWZ the speed limitation was driven primarily by the material strength of the engine front frame.<\/p>\n\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\/MJrXUh0eZjw\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\" allowfullscreen><\/iframe><\/div>\n\n<p style=\"font-size:13px;color:#777;text-align:center;margin:-10px 0 24px;font-style:italic\">The Air Zoo on the Pratt &amp; Whitney J58, the engine that behaved like a turbojet on take-off and increasingly like a ramjet at cruise.<\/p>\n<h2 style=\"padding-top:22px\">The second wall: shock waves<\/h2>\n<p>Suppose you solved the temperature problem. The next wall is aerodynamic, and it is built into the inlet geometry.<\/p>\n<p>In the account quoted by TWZ, Peters put the as-built limiting speed at around Mach 3.55. That is where the spike, already fully retracted, loses the intercept on the shock wave and can no longer position it correctly in the inlet. At the same time, he said, the shock starts spilling over the wing and interfering with the flight controls.<\/p>\n<p>Anyone who has read about inlet unstarts knows why that matters. When the shock system was mispositioned, it could pop forward out of the inlet in an instant, killing the afterburner on one side and slewing the aircraft so violently that crews\u2019 helmets struck the canopy. An inlet that cannot hold its shock at Mach 3.6 is not a minor inconvenience.<\/p>\n\n<div style=\"background:#f8f9fa;border-left:4px solid #d32f2f;padding:20px 22px;margin:18px 0 24px;font-size:16px;line-height:1.7\"><em>&ldquo;The faster you go, the narrower that cone, and the closer it gets to the wingtips, which is not good. This is the thing: People say, \u2018Oh yeah, we can go maybe Mach 6.\u2019 Well, right. But it\u2019s not just about that. It\u2019s about a lot of other things.&rdquo;<\/em><div style=\"margin-top:10px;font-size:14px;color:#555\"><strong>Paul F. Crickmore<\/strong> &mdash; SR-71 historian and author, speaking to The War Zone, October 2026<\/div><\/div>\n\n<p>Conners is more optimistic on this point. Shock effects at the inlet, he told TWZ, can be accommodated by rescheduling the spike movement and perhaps the bypass schedules. Not simple, he added, and every change would need careful envelope expansion. But not impossible.<\/p>\n\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\/10\/yf-12-inlet-model-ames-supersonic-wind-tunnel-1971.jpg\" alt=\"A metal model of the Lockheed YF-12 mounted in a NASA Ames supersonic wind tunnel for an inlet test\" 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\">A YF-12 model set up for an inlet-airframe interaction test in the NASA Ames 8-by-7-foot supersonic wind tunnel, January 1971. Getting the Blackbird inlet to behave took years of this kind of work. Photo: NASA\/Art Melliar<\/figcaption><\/figure>\n\n<h2 style=\"padding-top:22px\">The NASA study that never left the desk<\/h2>\n<p>So what did Conners actually propose? Not cooling the engine structure. Cooling the air before it reached it.<\/p>\n<p>The concept, he told TWZ, was spray cooling of the incoming airflow to lower its bulk temperature, used only when accelerating beyond about Mach 3.4. The aircraft would make brief excursions to a higher Mach number and then come back. The engineering name for the family of ideas is mass injection pre-compressor cooling: spray water, or water and liquid oxygen, ahead of the compressor so the engine sees cooler, denser air than the flight condition would give it. A later NASA Dryden study of the idea for <a href=\"https:\/\/migflug.com\/aircraft\/f-4-phantom-ii\/\">F-4 Phantom II<\/a> and <a href=\"https:\/\/migflug.com\/aircraft\/f-15-eagle\/\">F-15 Eagle<\/a> launch aircraft describes the engine seeing an apparent Mach number lower than the actual flight Mach number. DARPA studied it in its RASCAL space-launch programme, ground-testing it on F100 engines, before the programme was scaled back in 2006.<\/p>\n<p>The catch, Conners said, is what happens when it fails. If the system clogs or freezes at high speed, the crew has to slow down in a hurry to protect the engines. His own work never got beyond sizing tank volume and choosing candidate coolants. NASA\u2019s leadership, he said, was not interested in the risk, and nobody was asking for that Mach range.<\/p>\n\n<div style=\"background:#f8f9fa;border-left:4px solid #5C91FF;padding:20px 22px;margin:18px 0 24px;font-size:16px;line-height:1.7\"><em>&ldquo;So that weak link was the J58. It had the performance, but not the material strength. If we\u2019re looking at alternate engines designed to handle the higher Mach capability, then that could put the limiter on the airframe at that point, which we were told at NASA was somewhere like up near Mach 4 for brief excursions.&rdquo;<\/em><div style=\"margin-top:10px;font-size:14px;color:#555\"><strong>Tim Conners<\/strong> &mdash; former NASA Dryden lead SR-71 propulsion engineer, to The War Zone, 7 October 2026<\/div><\/div>\n\n<p>Read that carefully, because it is the heart of the matter. The airframe, by the estimate NASA was given, could stand brief excursions near Mach 4. The engine could not. Change the engine and the limit moves to the airframe.<\/p>\n<h2 style=\"padding-top:22px\">Heat, titanium and a fuel that would not burn<\/h2>\n<p>Everything else on the aircraft was also tuned to Mach 3.2. Titanium made up 85 per cent of the structure, and Lockheed chose an alloy that was easier to work but softened at a lower temperature. At cruise the outer skin ran well beyond 260 \u00b0C and the windscreen exterior could reach about 320 \u00b0C. The panels were deliberately loose on the ground and only closed up as the airframe heated and grew by several inches, which is why the aircraft famously leaked fuel on the ramp.<\/p>\n<p>The fuel was the cooling system. JP-7 soaked up heat from the cockpit, the avionics and the hydraulics before it was burned, and it reached the engine fuel nozzles at about 316 \u00b0C. It was so stable that the J58 needed a shot of triethylborane, which ignites on contact with air, to light it, and the tell-tale green flash became part of Blackbird lore.<\/p>\n\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\/10\/nasa-sr-71-kc-135-aerial-refueling-lasre-1997.jpg\" alt=\"NASA SR-71 Blackbird refuelling from a USAF KC-135 tanker over the Mojave Desert\" 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\">NASA 844 takes fuel from an Edwards KC-135 on the first Linear Aerospike SR-71 Experiment flight, 31 October 1997. The Blackbird\u2019s fuel was also its coolant, and every extra Mach number makes that job harder. Photo: NASA\/Lori Losey<\/figcaption><\/figure>\n\n<p>Push the stagnation temperature from roughly 390 \u00b0C to well over 600 \u00b0C and every one of those margins shrinks at once. More heat into the fuel, hotter skin, more thermal growth. Conners framed the boundary neatly when explaining why so many new systems cluster between Mach 2 and Mach 4: stay below the speed that demands more exotic metals, he said, and you stay in the titanium regime, flying up to Mach 3.5 with brief excursions to about Mach 4. That is the corner of the envelope a modified Blackbird would live in. Not a cruise. A dash.<\/p>\n<p>And the fuel itself is gone. NASA\u2019s JP-7 stockpile at Edwards was discarded about 20 years ago, Conners said, although he understood refiners believe a suitable surrogate can be made. That is not a showstopper. It is one more line in a very long list.<\/p>\n<h2 style=\"padding-top:22px\">What an SR-71 Mach 4 testbed would actually be<\/h2>\n<p>Which brings us back to NASA 844. Conners told TWZ that, based on inspection, its J58s are unserviceable after 27 years of sitting still: flattened bearings, cracked seals, fuel turned to gunk in the lines. That is why, if the airframe flies again, he expects it to fly with something else.<\/p>\n<p>Different engines, he said, would have to be high-Mach bypass systems, and he declined to say whose. The interesting part is what that would make the aircraft. An SR-71 Mach 4 project would not be a speed record attempt. It would be a flying test stand for exactly the regime where a combined-cycle engine hands over from its turbine to a ramjet or scramjet, the same concept behind Lockheed\u2019s SR-72 idea, on an airframe that is no longer classified.<\/p>\n\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\/10\/nasa-844-sr-71-lasre-cold-flow-water-dump-1998.jpg\" alt=\"NASA 844 SR-71 in flight with the Linear Aerospike SR-71 Experiment pod on its back, venting water during a cold-flow test\" 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\">NASA 844 vents water from the Linear Aerospike SR-71 Experiment on its back during the first in-flight cold-flow test, 4 March 1998. Conners puts that package at 20,000 to 25,000 lb, proof the airframe can carry a big propulsion experiment. Photo: NASA\/Carla Thomas<\/figcaption><\/figure>\n\n<p>NASA has done this sort of thing to 844 before. In 1997 and 1998 it carried the Linear Aerospike SR-71 Experiment on its spine, a package Conners puts at 20,000 to 25,000 pounds. Getting the aircraft through the transonic drag rise with that load was part of his job. Armstrong still has a deep bench for modifying titanium structure, he said, if it wanted to.<\/p>\n<p>TWZ\u2019s editor-in-chief Tyler Rogoway made the wider point on X this week: learning how to get the aircraft back into the air could be as valuable as the flight testing itself.<\/p>\n\n<div style=\"max-width:550px;margin:0 auto 28px\"><iframe class=\"skip-lazy\" data-no-lazy=\"1\" loading=\"eager\" src=\"https:\/\/platform.twitter.com\/embed\/Tweet.html?id=2104987933640130625&theme=light\" style=\"width:100%;height:400px;border:none;overflow:hidden\" allowfullscreen><\/iframe><\/div>\n\n<p>NASA, for its part, has said nothing about engines, speeds or plans. Its latest statement on 844, given to Aviation Week, was that it has no additional information to share. Everything above is informed speculation from people who worked on the aircraft, and it should be read that way.<\/p>\n\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\/KrhJ3vFD3fE\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;border:0\" allowfullscreen><\/iframe><\/div>\n\n<p style=\"font-size:13px;color:#777;text-align:center;margin:-10px 0 24px;font-style:italic\">NASA Armstrong footage of 844 carrying the Linear Aerospike SR-71 Experiment over the Mojave, the last time the airframe was rebuilt around a propulsion test.<\/p>\n<h2 style=\"padding-top:22px\">So, could it?<\/h2>\n<p>Strip away the bar-room version and the engineering answer is reasonably clear. The original SR-71 could not reach Mach 4: the J58 would have cooked its own front end around Mach 3.34 on a standard day, and the inlet would have lost its grip on the shock wave somewhere around Mach 3.55 even if it had not.<\/p>\n<p>A modified SR-71 is another matter. Cool the incoming air, or install an engine built for that temperature, and reschedule the inlet, and the people who knew the aircraft best believed the airframe could make brief dashes near Mach 4. Not cruise there. Touch it, and come back.<\/p>\n<p>For half a century the Blackbird\u2019s speed has been a story about how fast it went. If NASA really is rebuilding 844 around new engines, the next chapter will be about something else entirely: what it can teach the aircraft that come after it. That would be a fitting second career for a jet that was always limited by the air, never by its nerve.<\/p>\n<p><em>Sources: The War Zone, Howard Altman, Thomas Newdick and Tyler Rogoway, \u201cCould NASA\u2019s SR-71 Blackbird Be Modified To Reach Mach 4?\u201d (7 October 2026) and Howard Altman and Tyler Rogoway, interview with Tim Conners (2 October 2026); Hush-Kit, interview with SR-71 pilot BC Thomas (6 February 2021); Habubrats SR-71 on X (6 October 2026); Edwards AFB \/ AFMC, \u201cMission Possible: Pilots, crew relive absolute speed record\u201d; Vintage Aviation News, final flight of the SR-71; NASA image library captions (EC91-0365-7, EC95-43024-2, EC97-44295-114, EC98-44440-4, ARC-1971-AC71-1988); Kloesel and Clark, NASA Dryden, Preliminary MIPCC-Enhanced F-4 and F-15 Performance Characteristics for a First-Stage Reusable Launch Vehicle; The Aviationist, SR-71 engine nacelles (2019); Wikipedia, Lockheed SR-71 Blackbird and Pratt &amp; Whitney J58. Stagnation temperatures are Afterburner\u2019s own calculation for a standard atmosphere at minus 56.5 \u00b0C.<\/em><\/p>\n<!-- mfsh:bottom -->\n\n<button type=\"button\" class=\"mfsh-trigger mfsh-bottom\" data-mfsh-placement=\"bottom\" aria-haspopup=\"dialog\"><svg><use href=\"#mfsh-i-share\"\/><\/svg>Share this story<\/button>\n\n<!-- \/mfsh:bottom -->\n\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>\n\n\n<section class=\"mfq\"><h2>Frequently Asked Questions<\/h2><div class=\"qa\"><details open><summary>Could the SR-71 Blackbird reach Mach 4?<\/summary><div class=\"a\">Not as built. The J58 engines hit their 427 \u00b0C compressor inlet temperature limit around Mach 3.3 to 3.4, and pilots put the inlet\u2019s aerodynamic limit near Mach 3.55. Former NASA engineer Tim Conners says that with different engines or inlet air cooling, the airframe was believed capable of brief excursions near Mach 4.<\/div><\/details><details><summary>What was the SR-71 Blackbird\u2019s top speed?<\/summary><div class=\"a\">The official record is 2,193.2 mph, about Mach 3.3, set by SR-71A 61-7958 on 28 July 1976. The aircraft was designed to cruise at Mach 3.2 and the flight manual limit was Mach 3.3. Pilots have described brief flights near Mach 3.5 when the outside air was unusually cold.<\/div><\/details><details><summary>Why was the SR-71 limited to Mach 3.3?<\/summary><div class=\"a\">The SR-71 was limited by temperature, not thrust. Air slowed down in the inlet heats up, and above about 427 \u00b0C, or 800 \u00b0F, at the compressor face the J58 engine could be damaged. In a standard stratosphere that temperature is reached at roughly Mach 3.34, which matches the aircraft\u2019s record speed.<\/div><\/details><details><summary>How much thrust did the SR-71\u2019s J58 engine produce at Mach 3?<\/summary><div class=\"a\">Above Mach 3 in maximum afterburner, the SR-71\u2019s inlet produced 54 per cent of the thrust, the ejector nozzle 28.4 per cent and the J58 engine itself only 17.6 per cent. Bleed tubes routed 20 per cent of compressor air straight to the afterburner, making the engine behave much like a ramjet.<\/div><\/details><details><summary>What is NASA 844?<\/summary><div class=\"a\">NASA 844 is SR-71A serial 61-7980, the last SR-71A built. NASA flew it from 1990, and on 9 October 1999 it made the last flight of any SR-71 Blackbird, at the Edwards Air Force Base open house. In 2026 it was moved off public display at NASA Armstrong into a hangar.<\/div><\/details><details><summary>Would a revived SR-71 use its original J58 engines?<\/summary><div class=\"a\">Probably not. Tim Conners, NASA\u2019s former lead SR-71 propulsion engineer, told The War Zone the J58s on NASA 844 have been judged unserviceable on inspection after 27 years idle. He expects any revived aircraft to be used as a testbed for new high-Mach engines. NASA has not confirmed any plans.<\/div><\/details><\/div><\/section>\n\n\n<script type=\"application\/ld+json\">{\"@context\":\"https:\/\/schema.org\",\"@type\":\"FAQPage\",\"mainEntity\":[{\"@type\":\"Question\",\"name\":\"Could the SR-71 Blackbird reach Mach 4?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Not as built. The J58 engines hit their 427 \u00b0C compressor inlet temperature limit around Mach 3.3 to 3.4, and pilots put the inlet\u2019s aerodynamic limit near Mach 3.55. Former NASA engineer Tim Conners says that with different engines or inlet air cooling, the airframe was believed capable of brief excursions near Mach 4.\"}},{\"@type\":\"Question\",\"name\":\"What was the SR-71 Blackbird\u2019s top speed?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"The official record is 2,193.2 mph, about Mach 3.3, set by SR-71A 61-7958 on 28 July 1976. The aircraft was designed to cruise at Mach 3.2 and the flight manual limit was Mach 3.3. Pilots have described brief flights near Mach 3.5 when the outside air was unusually cold.\"}},{\"@type\":\"Question\",\"name\":\"Why was the SR-71 limited to Mach 3.3?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"The SR-71 was limited by temperature, not thrust. Air slowed down in the inlet heats up, and above about 427 \u00b0C, or 800 \u00b0F, at the compressor face the J58 engine could be damaged. In a standard stratosphere that temperature is reached at roughly Mach 3.34, which matches the aircraft\u2019s record speed.\"}},{\"@type\":\"Question\",\"name\":\"How much thrust did the SR-71\u2019s J58 engine produce at Mach 3?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Above Mach 3 in maximum afterburner, the SR-71\u2019s inlet produced 54 per cent of the thrust, the ejector nozzle 28.4 per cent and the J58 engine itself only 17.6 per cent. Bleed tubes routed 20 per cent of compressor air straight to the afterburner, making the engine behave much like a ramjet.\"}},{\"@type\":\"Question\",\"name\":\"What is NASA 844?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"NASA 844 is SR-71A serial 61-7980, the last SR-71A built. NASA flew it from 1990, and on 9 October 1999 it made the last flight of any SR-71 Blackbird, at the Edwards Air Force Base open house. In 2026 it was moved off public display at NASA Armstrong into a hangar.\"}},{\"@type\":\"Question\",\"name\":\"Would a revived SR-71 use its original J58 engines?\",\"acceptedAnswer\":{\"@type\":\"Answer\",\"text\":\"Probably not. Tim Conners, NASA\u2019s former lead SR-71 propulsion engineer, told The War Zone the J58s on NASA 844 have been judged unserviceable on inspection after 27 years idle. He expects any revived aircraft to be used as a testbed for new high-Mach engines. NASA has not confirmed any plans.\"}}]}<\/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\/nasa-844-sr-71a-vanished-armstrong-edwards-2026\/\">NASA 844: The Last SR-71A Has Vanished From Edwards<\/a><\/p><p style=\"margin:4px 0\"><a href=\"https:\/\/migflug.com\/afterburner\/sr-71-blackbird-titanium-fuel-leak-design-jp-7\/\">The SR-71 Blackbird Was Designed to Leak Fuel on the Ground<\/a><\/p><p style=\"margin:4px 0\"><a href=\"https:\/\/migflug.com\/afterburner\/sr-71-libya-1986-brian-shul-walter-watson-64-17960\/\">SR-71 Over Libya, 1986: Brian Shul\u2019s Run Past Gaddafi\u2019s Missiles<\/a><\/p><p style=\"margin:4px 0\"><a href=\"https:\/\/migflug.com\/afterburner\/ge-aerospace-derecho-mach-5-hypersonic-testbed-diu-hycat-2026\/\">GE Aerospace Wins DIU Contract for Mach 5 Derecho Testbed<\/a><\/p><\/div>\n","protected":false},"excerpt":{"rendered":"<p>The SR-71 was never short of thrust. It was short of cool air. What actually capped the Blackbird at Mach 3.3, and what a Mach 4 version would need.<\/p>","protected":false},"author":23,"featured_media":27396720,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"editor_notices":[],"footnotes":""},"categories":[665,664],"tags":[],"class_list":["post-27396730","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-aviation-world","category-military-aviation"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.6 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>SR-71 at Mach 4: What It Would Take | MiGFlug<\/title>\n<meta name=\"description\" content=\"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/migflug.com\/afterburner\/es\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/\" \/>\n<meta property=\"og:locale\" content=\"es_ES\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"SR-71 at Mach 4: What It Would Take | MiGFlug\" \/>\n<meta property=\"og:description\" content=\"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.\" \/>\n<meta property=\"og:url\" content=\"https:\/\/migflug.com\/afterburner\/es\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/\" \/>\n<meta property=\"og:site_name\" content=\"Afterburner - MiGFlug&#039;s Magazine\" \/>\n<meta property=\"article:publisher\" content=\"https:\/\/www.facebook.com\/MiGFlug\/\" \/>\n<meta property=\"article:published_time\" content=\"2026-10-09T08:58:14+00:00\" \/>\n<meta property=\"article:modified_time\" content=\"2026-10-09T08:58:22+00:00\" \/>\n<meta property=\"og:image\" content=\"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg\" \/>\n\t<meta property=\"og:image:width\" content=\"1280\" \/>\n\t<meta property=\"og:image:height\" content=\"720\" \/>\n\t<meta property=\"og:image:type\" content=\"image\/jpeg\" \/>\n<meta name=\"author\" content=\"Max Gr\u00fcnwald\" \/>\n<meta name=\"twitter:card\" content=\"summary_large_image\" \/>\n<meta name=\"twitter:creator\" content=\"@migflug\" \/>\n<meta name=\"twitter:site\" content=\"@migflug\" \/>\n<meta name=\"twitter:label1\" content=\"Written by\" \/>\n\t<meta name=\"twitter:data1\" content=\"Max Gr\u00fcnwald\" \/>\n\t<meta name=\"twitter:label2\" content=\"Est. reading time\" \/>\n\t<meta name=\"twitter:data2\" content=\"15 minutes\" \/>\n<script type=\"application\/ld+json\" class=\"yoast-schema-graph\">{\"@context\":\"https:\\\/\\\/schema.org\",\"@graph\":[{\"@type\":\"Article\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#article\",\"isPartOf\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/\"},\"author\":{\"name\":\"Max Gr\u00fcnwald\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#\\\/schema\\\/person\\\/da89e4a5834c9a932ee20751ed75569c\"},\"headline\":\"SR-71 at Mach 4: What It Would Take to Make the Blackbird Faster\",\"datePublished\":\"2026-10-09T08:58:14+00:00\",\"dateModified\":\"2026-10-09T08:58:22+00:00\",\"mainEntityOfPage\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/\"},\"wordCount\":3035,\"commentCount\":0,\"publisher\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#organization\"},\"image\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#primaryimage\"},\"thumbnailUrl\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/10\\\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg\",\"articleSection\":[\"Aviation World\",\"Military Aviation\"],\"inLanguage\":\"en-US\",\"potentialAction\":[{\"@type\":\"CommentAction\",\"name\":\"Comment\",\"target\":[\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#respond\"]}]},{\"@type\":\"WebPage\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/\",\"url\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/\",\"name\":\"SR-71 at Mach 4: What It Would Take | MiGFlug\",\"isPartOf\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#website\"},\"primaryImageOfPage\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#primaryimage\"},\"image\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#primaryimage\"},\"thumbnailUrl\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/10\\\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg\",\"datePublished\":\"2026-10-09T08:58:14+00:00\",\"dateModified\":\"2026-10-09T08:58:22+00:00\",\"description\":\"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.\",\"breadcrumb\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#breadcrumb\"},\"inLanguage\":\"en-US\",\"potentialAction\":[{\"@type\":\"ReadAction\",\"target\":[\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/\"]}]},{\"@type\":\"ImageObject\",\"inLanguage\":\"en-US\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#primaryimage\",\"url\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/10\\\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg\",\"contentUrl\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/10\\\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg\",\"width\":1280,\"height\":720},{\"@type\":\"BreadcrumbList\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/sr-71-mach-4-blackbird-j58-limits-nasa-844\\\/#breadcrumb\",\"itemListElement\":[{\"@type\":\"ListItem\",\"position\":1,\"name\":\"Startseite\",\"item\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/\"},{\"@type\":\"ListItem\",\"position\":2,\"name\":\"SR-71 at Mach 4: What It Would Take to Make the Blackbird Faster\"}]},{\"@type\":\"WebSite\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#website\",\"url\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/\",\"name\":\"Afterburner - MiGFlug's Magazine\",\"description\":\"for those interested in flying military jets and aviation related  topics\",\"publisher\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#organization\"},\"potentialAction\":[{\"@type\":\"SearchAction\",\"target\":{\"@type\":\"EntryPoint\",\"urlTemplate\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/?s={search_term_string}\"},\"query-input\":{\"@type\":\"PropertyValueSpecification\",\"valueRequired\":true,\"valueName\":\"search_term_string\"}}],\"inLanguage\":\"en-US\"},{\"@type\":\"Organization\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#organization\",\"name\":\"MiGFlug GmbH\",\"url\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/\",\"logo\":{\"@type\":\"ImageObject\",\"inLanguage\":\"en-US\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#\\\/schema\\\/logo\\\/image\\\/\",\"url\":\"https:\\\/\\\/ml5psubhxdln.i.optimole.com\\\/cb:0e0_.b970\\\/w:897\\\/h:278\\\/q:mauto\\\/ig:avif\\\/https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/06\\\/MIGFLUG_LOGO-no-background.png\",\"contentUrl\":\"https:\\\/\\\/ml5psubhxdln.i.optimole.com\\\/cb:0e0_.b970\\\/w:897\\\/h:278\\\/q:mauto\\\/ig:avif\\\/https:\\\/\\\/migflug.com\\\/afterburner\\\/wp-content\\\/uploads\\\/sites\\\/4\\\/2026\\\/06\\\/MIGFLUG_LOGO-no-background.png\",\"width\":897,\"height\":278,\"caption\":\"MiGFlug GmbH\"},\"image\":{\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#\\\/schema\\\/logo\\\/image\\\/\"},\"sameAs\":[\"https:\\\/\\\/www.facebook.com\\\/MiGFlug\\\/\",\"https:\\\/\\\/x.com\\\/migflug\",\"https:\\\/\\\/www.instagram.com\\\/migflug\\\/\",\"https:\\\/\\\/www.youtube.com\\\/user\\\/MiGFlug\",\"https:\\\/\\\/www.linkedin.com\\\/company\\\/migflug.com\\\/\",\"https:\\\/\\\/www.pinterest.ch\\\/migflug\\\/\"]},{\"@type\":\"Person\",\"@id\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/it\\\/#\\\/schema\\\/person\\\/da89e4a5834c9a932ee20751ed75569c\",\"name\":\"Max Gr\u00fcnwald\",\"image\":{\"@type\":\"ImageObject\",\"inLanguage\":\"en-US\",\"@id\":\"https:\\\/\\\/secure.gravatar.com\\\/avatar\\\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g\",\"url\":\"https:\\\/\\\/secure.gravatar.com\\\/avatar\\\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g\",\"contentUrl\":\"https:\\\/\\\/secure.gravatar.com\\\/avatar\\\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g\",\"caption\":\"Max Gr\u00fcnwald\"},\"description\":\"Max Gr\u00fcnwald writes MiGFlug\u2019s technical deep-dives \u2014 engines, avionics and weapons systems, with every number checked twice.\",\"url\":\"https:\\\/\\\/migflug.com\\\/afterburner\\\/es\\\/author\\\/maxgruenwald\\\/\"}]}<\/script>\n<!-- \/ Yoast SEO plugin. -->","yoast_head_json":{"title":"SR-71 at Mach 4: What It Would Take | MiGFlug","description":"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.","robots":{"index":"index","follow":"follow","max-snippet":"max-snippet:-1","max-image-preview":"max-image-preview:large","max-video-preview":"max-video-preview:-1"},"canonical":"https:\/\/migflug.com\/afterburner\/es\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/","og_locale":"es_ES","og_type":"article","og_title":"SR-71 at Mach 4: What It Would Take | MiGFlug","og_description":"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.","og_url":"https:\/\/migflug.com\/afterburner\/es\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/","og_site_name":"Afterburner - MiGFlug's Magazine","article_publisher":"https:\/\/www.facebook.com\/MiGFlug\/","article_published_time":"2026-10-09T08:58:14+00:00","article_modified_time":"2026-10-09T08:58:22+00:00","og_image":[{"width":1280,"height":720,"url":"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg","type":"image\/jpeg"}],"author":"Max Gr\u00fcnwald","twitter_card":"summary_large_image","twitter_creator":"@migflug","twitter_site":"@migflug","twitter_misc":{"Written by":"Max Gr\u00fcnwald","Est. reading time":"15 minutes"},"schema":{"@context":"https:\/\/schema.org","@graph":[{"@type":"Article","@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#article","isPartOf":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/"},"author":{"name":"Max Gr\u00fcnwald","@id":"https:\/\/migflug.com\/afterburner\/it\/#\/schema\/person\/da89e4a5834c9a932ee20751ed75569c"},"headline":"SR-71 at Mach 4: What It Would Take to Make the Blackbird Faster","datePublished":"2026-10-09T08:58:14+00:00","dateModified":"2026-10-09T08:58:22+00:00","mainEntityOfPage":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/"},"wordCount":3035,"commentCount":0,"publisher":{"@id":"https:\/\/migflug.com\/afterburner\/it\/#organization"},"image":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#primaryimage"},"thumbnailUrl":"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg","articleSection":["Aviation World","Military Aviation"],"inLanguage":"en-US","potentialAction":[{"@type":"CommentAction","name":"Comment","target":["https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#respond"]}]},{"@type":"WebPage","@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/","url":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/","name":"SR-71 at Mach 4: What It Would Take | MiGFlug","isPartOf":{"@id":"https:\/\/migflug.com\/afterburner\/it\/#website"},"primaryImageOfPage":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#primaryimage"},"image":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#primaryimage"},"thumbnailUrl":"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg","datePublished":"2026-10-09T08:58:14+00:00","dateModified":"2026-10-09T08:58:22+00:00","description":"Could NASA\u2019s revived Blackbird reach SR-71 Mach 4 speeds? The J58\u2019s 427 \u00b0C inlet limit, shock waves, titanium and fuel explain what stands in the way.","breadcrumb":{"@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#breadcrumb"},"inLanguage":"en-US","potentialAction":[{"@type":"ReadAction","target":["https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/"]}]},{"@type":"ImageObject","inLanguage":"en-US","@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#primaryimage","url":"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg","contentUrl":"https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/10\/nasa-844-sr-71a-f-16xl-849-formation-sonic-boom-research-16x9-1.jpg","width":1280,"height":720},{"@type":"BreadcrumbList","@id":"https:\/\/migflug.com\/afterburner\/sr-71-mach-4-blackbird-j58-limits-nasa-844\/#breadcrumb","itemListElement":[{"@type":"ListItem","position":1,"name":"Startseite","item":"https:\/\/migflug.com\/afterburner\/it\/"},{"@type":"ListItem","position":2,"name":"SR-71 at Mach 4: What It Would Take to Make the Blackbird Faster"}]},{"@type":"WebSite","@id":"https:\/\/migflug.com\/afterburner\/it\/#website","url":"https:\/\/migflug.com\/afterburner\/it\/","name":"Postcombusti\u00f3n - Revista de MiGFlug","description":"Para aquellos interesados en pilotar aviones militares y temas relacionados con la aviaci\u00f3n.","publisher":{"@id":"https:\/\/migflug.com\/afterburner\/it\/#organization"},"potentialAction":[{"@type":"SearchAction","target":{"@type":"EntryPoint","urlTemplate":"https:\/\/migflug.com\/afterburner\/it\/?s={search_term_string}"},"query-input":{"@type":"PropertyValueSpecification","valueRequired":true,"valueName":"search_term_string"}}],"inLanguage":"en-US"},{"@type":"Organization","@id":"https:\/\/migflug.com\/afterburner\/it\/#organization","name":"MiGFlug GmbH","url":"https:\/\/migflug.com\/afterburner\/it\/","logo":{"@type":"ImageObject","inLanguage":"en-US","@id":"https:\/\/migflug.com\/afterburner\/it\/#\/schema\/logo\/image\/","url":"https:\/\/ml5psubhxdln.i.optimole.com\/cb:0e0_.b970\/w:897\/h:278\/q:mauto\/ig:avif\/https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/06\/MIGFLUG_LOGO-no-background.png","contentUrl":"https:\/\/ml5psubhxdln.i.optimole.com\/cb:0e0_.b970\/w:897\/h:278\/q:mauto\/ig:avif\/https:\/\/migflug.com\/afterburner\/wp-content\/uploads\/sites\/4\/2026\/06\/MIGFLUG_LOGO-no-background.png","width":897,"height":278,"caption":"MiGFlug GmbH"},"image":{"@id":"https:\/\/migflug.com\/afterburner\/it\/#\/schema\/logo\/image\/"},"sameAs":["https:\/\/www.facebook.com\/MiGFlug\/","https:\/\/x.com\/migflug","https:\/\/www.instagram.com\/migflug\/","https:\/\/www.youtube.com\/user\/MiGFlug","https:\/\/www.linkedin.com\/company\/migflug.com\/","https:\/\/www.pinterest.ch\/migflug\/"]},{"@type":"Person","@id":"https:\/\/migflug.com\/afterburner\/it\/#\/schema\/person\/da89e4a5834c9a932ee20751ed75569c","name":"Max Gr\u00fcnwald","image":{"@type":"ImageObject","inLanguage":"en-US","@id":"https:\/\/secure.gravatar.com\/avatar\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g","url":"https:\/\/secure.gravatar.com\/avatar\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g","contentUrl":"https:\/\/secure.gravatar.com\/avatar\/4a7af37924a5c24d0712babd0e5eafec09d37b3a41831dd4c4ee30f54ebfc1a7?s=96&d=mm&r=g","caption":"Max Gr\u00fcnwald"},"description":"Max Gr\u00fcnwald escribe los an\u00e1lisis t\u00e9cnicos en profundidad de MiGFlug: motores, avi\u00f3nica y sistemas de armamento, con cada dato verificado dos veces.","url":"https:\/\/migflug.com\/afterburner\/es\/author\/maxgruenwald\/"}]}},"_links":{"self":[{"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/posts\/27396730","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/users\/23"}],"replies":[{"embeddable":true,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/comments?post=27396730"}],"version-history":[{"count":1,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/posts\/27396730\/revisions"}],"predecessor-version":[{"id":27396762,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/posts\/27396730\/revisions\/27396762"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/media\/27396720"}],"wp:attachment":[{"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/media?parent=27396730"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/categories?post=27396730"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/migflug.com\/afterburner\/es\/wp-json\/wp\/v2\/tags?post=27396730"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}