跟读练习: Inside The World's Most Powerful Stealth Bomber - 通过视频学习英语口语

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This is the B-2 Spirit Bomber, and it is without a doubt the best stealth bomber ever made.
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But while its ability to hit any target anywhere in the world makes the headlines, there's a secret army of maintenance that goes on before each mission.
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Get any one of the several thousand steps wrong, and this two billion dollar aircraft becomes the world's most expensive lawn dart.
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It all starts here.
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Inside the 509th Munition Squadron's assembly facility, airmen are preparing the weapons that will eventually sit inside the bomber's internal base.
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This building is climate controlled because the guidance sections on these bombs can't tolerate dust or humidity.
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The temperature stays locked at 68 degrees, not for the technician's comfort, but for the ring laser gyros inside the guidance kits
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that will drift if the temperature swings more than just a few degrees.
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The first step is attaching the MAU-169 guidance section to the front of the weapon.
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This is where things get interesting.
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Inside this guidance kit sits a GPS antenna no bigger than a hockey puck.
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Below that, an inertial measurement unit with accelerometers that can detect movement smaller than the width of a human hair.
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The control module takes targeting data from the aircraft and generates commands for the fins.
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But here's the critical part, the umbilical connector.
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This is what allows the B-2 to talk to the bomb while it's still inside the aircraft.
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Without this connection working perfectly, you've got a very expensive paperweight.
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Technicians use torque wrenches to attach the guidance section.
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Too loose and vibration will cause it to fail.
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Too tight and you crack the housing.
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Then they bolt on the tail kit, which holds the fins and actuators.
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These fins aren't just metal flaps.
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Each one is independently controlled by electric motors that can adjust position in increments of a tenth of a degree.
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Before any JDAM leaves this building, technicians run the actuators through programmed movements to verify nothing binds.
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A fin that sticks for even half a second means the bomb misses by a hundred feet.
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Next, they weigh the finished weapon because the B-2's mission computer needs exact numbers for ballistic calculations.
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A five-pound difference changes the timing.
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During all of this, one rule never changes.
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The JDAM is completely safe.
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This means the fuse is unpowered.
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The guidance kit is in test mode.
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The weapon cannot detonate under any circumstance.
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The thermal battery that powers the fuse won't even activate until it experiences the massive g-forces of being ejected from an aircraft.
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It is essentially a sophisticated lawn dart until the B-2 releases it.
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Once each JDAM passes inspection, it's signed off in the weapons database and loaded onto transport trailers.
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These aren't normal trailers, they maintain the same climate control as the building
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because even a short trip across the tarmac in winter could affect the laser gyros.
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But loading doesn't happen yet, not until the bomber itself is proven ready for them.
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And getting a B-2 ready?
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That's where things get obsessive.
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Because unlike these weapons that need to be mechanically perfect, the B-2 has to be electromagnetically perfect.
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And that's a problem that requires maintainers to think in problems measured in millimeters.
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Out on the flight line, the 393rd Bomb Squadron's maintainers face their biggest enemy, physics.
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The B-2's stealth isn't magic.
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It's a careful manipulation of electromagnetic energy that depends on the surface being absolutely perfect.
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Before anything else happens, before fuel, weapons, or anyone even thinks about an engine start, the low-observable technicians get to work.
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The B-2 skin isn't painted like normal aircraft.
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It's covered in radar-absorbent material that's about as durable as a chalkboard.
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This coating contains tiny iron spheres that vibrate when hit by radar waves, converting that electromagnetic energy into heat.
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The problem is, this material is fragile.
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A bird strike, hail, even heavy rain can damage it.
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And damage means radar reflection.
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These technicians examine every inch of the aircraft's surface.
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They're looking for chips, bubbles, scratches, or rough patches.
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The leading edges get special attention.
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This is where radar waves hit first.
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The engine inlets are critical too.
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Any imperfection here creates what's called a radar scatterer, essentially a beacon that broadcasts the aircraft's position.
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They check panel seams where different sections meet.
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Each seam is filled with conductive tape that has to be perfectly smooth.
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A gap the width of a credit card can increase the
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radar signature enough to make the aircraft visible on a bad guy's radar screen.
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When they find problems, and they always find problems, the repair process begins.
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They sand down the damaged area with precision tools.
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Too aggressive and you create more radar reflection.
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Too gentle and the repair won't stick.
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They mix special radar-absorbent compounds that have a working time measured in minutes.
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Apply it wrong and you've just created a radar reflector instead of a radar absorber.
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Compound has to cure at exactly the right temperature too.
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Too hot and it bubbles.
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Too cold and it doesn't bond.
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Once cured, they sand it flush with tools that remove material in thousandths of an inch.
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The final surface can't vary by more than the thickness of a few sheets of paper over any foot long span.
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That's why B2 maintenance takes so long.
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You're not just fixing an airplane, you're sculpting it.
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While the stealth techs work their dark art, other maintainers inspect the mechanical systems.
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The B-2's hydraulics operate at pressures that could cut through steel.
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Four separate systems provide redundancy.
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Lose one, you're fine.
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Lose two, still flying.
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Lose three, you can land, but you'll need new underwear.
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The flight control actuators get checked for any sluggishness.
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On an aircraft without a tail, every control surface is critical.
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Landing gear, brakes, tires, everything gets inspected.
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The environmental systems that keep the pilots from freezing at altitude, the electrical buses that power everything from radios to bomb release mechanisms.
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If any of these fail the check, weapons loading stops.
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The aircraft has to be perfect before a single bomb goes near it.
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Once the aircraft passes all checks, weapons loaders roll the JDAMs into position under the aircraft.
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Each bomb sits on a hydraulic lift that will raise it into the weapons bay.
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Unlike every other bomber in the inventory, the B-2 cannot hang anything externally.
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Everything goes inside or it doesn't go at all.
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The weapons bay doors are massive.
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Each one weighs about as much as an SUV.
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They open on hinges that have to be perfectly aligned or they'll create radar reflections.
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Inside the bay is the rotary launcher.
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This is where the B2 gets clever.
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Think of it as a revolver cylinder, scaled up to hold bombs.
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Eight positions, each one capable of holding a 2,000 pound weapon.
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The entire assembly can rotate 360 degrees in under 3 seconds,
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which sounds smooth until you realize it's spinning 8 tons of high explosive fast enough to make the whole aircraft wobble.
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Weapons attached to suspension hooks rated for forces that seem absurd.
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14,000 pounds per hook for a 2,000 pound bomb.
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But that's because during combat maneuvers, G-forces multiply everything.
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A 2G turn makes that bomb weigh 4,000 pounds.
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Add turbulence, and suddenly those overbuilt hooks make sense.
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The mechanical interface has to align perfectly, missed by the width of a penny, and the weapon won't receive power or data.
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Load crews lock the lugs that hold the weapon.
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They contain the cables that allow the JDAM to communicate with the aircraft's store's management system.
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This is critical.
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Without this connection, the bomb never receives its targeting data.
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It would fall like any regular gravity bomb, missing potentially by miles.
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However, the coordinates aren't loaded into the bomb just yet on the ground.
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The bomb doesn't know where it's going.
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That information stays in the aircraft's mission computer until seconds before release.
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This isn't just security, it allows targets to be changed in flight, adapting to battlefield conditions in real time.
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Even fully loaded, the weapons remain inert.
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The fuses stay unpowered.
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The guidance systems are essentially asleep.
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The only functions that work are basic communication and diagnostic tests.
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The entire design philosophy is to keep the weapon as dumb as possible until the last possible second.
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It's safer that way.
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But once the plane is loaded, the ground crews need to ensure the pilots are safe, too.
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At the 509th Operational Support Squadron's Air Crew Flight Equipment,
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or AFE, shop, Specialists prepare the gear that keeps B-2 pilots alive at altitude.
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The B-2 flies high enough that a depressurization event would be fatal without immediate access to oxygen.
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The B-2's altitude ceiling is classified, but it's high enough that the pilots need pressure suits, not just oxygen masks.
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AFV specialists connect masks to pressure rigs that simulate high-altitude breathing.
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The mask has to deliver oxygen even when the pilot is pulling Gs
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and the simple act of breathing feels like someone sitting on your chest.
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They check the microphone.
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Communication has to work perfectly, even with oxygen flowing.
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In an emergency, there's no time to troubleshoot any communication problems.
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The helmet alone costs more than most people's houses.
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But it's not just protection.
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It contains heads-up displays, night vision compatibility, and flash protection that can block the blinding light of a nuclear detonation.
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The visor can go from clear to completely opaque in milliseconds, faster than the human eye can register pain from intense light.
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They inspect the survival vest with its emergency beacon, signal mirror, and water purification tablets.
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Everything designed for the possibility that a B-2 crew might have to eject over hostile territory.
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The Anti-G suit receives special attention.
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Its inflatable bladders have to hold exact pressures.
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Too low and the pilots black out during maneuvers.
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Too high and it restricts breathing.
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These suits are custom fitted to each pilot.
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What works for someone who's 6'2 won't work for someone who's 5'8.
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In the B2, where missions can last 40 hours with air refueling, comfort isn't luxury, it's operational necessity.
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Once these checks have been completed, the ground crew then performs one of the most dangerous maintenance evolutions in the US Air Force.
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Most refueling happens with engines off, but in a hot pit refueling, the engines keep running.
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The B-2's four engines stay at idle, each one generating enough heat to melt aluminum.
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This happens when the aircraft needs to turn around quickly, no time for the hours-long shutdown and restart cycle.
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Fuel crews approach wearing silver proximity suits that make them look like astronauts.
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These suits can handle short exposures to extreme heat, just enough time to disconnect a fuel hose if something goes catastrophically wrong.
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They carry fire bottles capable of shooting suppressant foam to 30 feet.
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Everyone moves deliberately.
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The first step is grounding.
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The aircraft builds up static electricity in flight.
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Thousands of volts looking for a path to ground.
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One spark near fuel vapors, and the explosion would be visible from orbit.
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The grounding cable is as thick as a garden hose, clamped to a specific point on the landing gear where the metal is bare.
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They connect high-flow hoses to the single-point refueling port.
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Fuel flows at 600 gallons per minute.
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The entire process takes less than 30 minutes to load 167,000 pounds of JP-8.
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But it's not just about quantity.
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The fuel has to be distributed correctly across the B-2's tanks.
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Too much weight forward and the aircraft becomes nose heavy.
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Too much aft and it becomes unstable.
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The flying wing design has no tail to provide stability, so weight distribution is everything.
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The fuel has to be the right temperature, too.
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Too cold and it won't flow properly through the engines.
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Too hot and it creates vapor bubbles that can flame out an engine.
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Crews monitor temperature, pressure, and flow rate constantly.
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The noise is overwhelming.
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Each engine sounds like a continuous explosion.
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Hand signals are the only communication that works.
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When refueling is finally complete, the B-2 is loaded, fueled, stealth certified, and finally ready for its crew.
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The pilots enter through a hatch behind the nose gear, climbing a ladder into the cockpit.
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They strap into ejection seats that cost more than a college education.
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These aren't just chairs survival systems capable of shooting the crew clear of the aircraft in less than a second,
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even if the B-2 is inverted or at zero altitude.
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The crew connects oxygen lines, plugs into the intercom, and begins the start-up sequence.
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The B-2's cockpit is a glass panel of displays and keyboards.
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No steam gauges here, everything is digital.
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The mission computer alone has more processing power than the entire Apollo program.
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All that technology means nothing if the initialization sequence isn't perfect.
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The inertial navigation units begin their alignment.
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For eight minutes, the aircraft cannot move.
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Not even an inch.
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The Ring Laser Gyros are measuring the Earth's rotation to establish their reference.
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Interrupt this process and they have to start over.
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GPS loads next, but not just civilian GPS.
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Military GPS that's encrypted and accurate to within feet instead of yards.
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During taxi, the pilots run control surface checks.
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The B2 has no rudder, no vertical surfaces at all.
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Yaw control comes from split drag rudders at the wingtips, surfaces that open like air brakes on one side to induce a turn.
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If these don't work, the aircraft can't maintain coordinated flight.
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The elevons move through their full range, up, down, differential for roll control.
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Each movement verified by multiple sensors, because on a flying wing, one failed control surface means loss of aircraft.
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Even the taxi itself requires planning.
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The nose wheel is 110 feet ahead of the main gear.
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The pilot has to think that far ahead for every turn.
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Too sharp and the main gear goes off the taxiway.
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It's like driving a semi-truck, but in reverse, except the truck weighs 336,500 pounds and costs $2 billion.
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They brief the takeoff.
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Rotation speed, abort criteria, emergency procedures if an engine fails.
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The B2 needs most of the runway at max weight.
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There's no margin for error.
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Speed comes fast.
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Once you pass that point, you're going flying whether you want to or not.
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The throttles advance.
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Four engines spool up from idle to military power.
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The acceleration pushes everyone back as 69,200 pounds of thrust fights 336,500 pounds of aircraft.
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The nose wheel lifts first, then finally, reluctantly, the massive wing generates enough lift to break free from the runway.
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At altitude, the B-2 cruises in air so thin that the engines produce a fraction of their sea level power.
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The aircraft is on autopilot, but the flight control computers make constant adjustments a thousand corrections per second to keep this tailless aircraft stable.
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Without these computers, the B-2 would depart controlled flight in seconds.
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As they approach the target area, the crew runs through the weapons checklist.
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They select which JDAM to drop first.
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The rotary launcher inside the bay begins to move, rotating the chosen weapon to the release position.
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The weapons bay doors remain closed.
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Opening them too early would light up every radar screen for miles.
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When the moment comes, the doors open for exactly as long as necessary.
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No longer.
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The sudden change in airflow causes the aircraft to buck.
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The flight computers immediately compensate.
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Now, finally, the JDAM wakes up.
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Under the umbilical connection, the mission computer floods the weapon with data.
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GPS coordinates to 10 decimal places, wind speed and direction at multiple altitudes, barometric pressure, time to impact,
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the planned angle of attack.
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The JDAM's internal computer processes all of this in milliseconds.
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It runs diagnostic tests on every subsystem.
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Fins, operational.
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GPS receiver, acquiring satellites.
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Inertial navigation, aligned.
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Battery ready to activate.
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Everything happens in the space between heartbeats.
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The release sequence happens in fractions of a second.
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The suspension hooks open.
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Pneumatic ejectors fire, pushing the bomb clear of the aircraft.
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The JDAM falls away at 4 feet per second, fast enough to clear the bay, slow enough to remain stable.
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The instant the umbilical breaks, everything changes.
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The thermal battery ignites, reaching operating temperature almost instantly.
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The fuse begins its arming sequence, sensing the required G-forces, waiting the required time delay.
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The tail fins unlock and deploy.
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The GPS receiver locks onto satellites.
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Four, then six, then eight.
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The more satellites, the better the accuracy.
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Inside the JDAM, the mission computer is running calculations at a rate that would have required a room-sized computer in the 1990s.
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It knows where it is.
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It knows where it needs to be.
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It calculates the optimal flight path.
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Not a straight line, but a complex curve that accounts for wind, air density, and the Earth's rotation.
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The fins make their first adjustment two seconds after release, a slight bank to the left, compensating for a crosswind the B2 sensors detected.
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The JDAM doesn't fly.
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It falls with precision.
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Each fin movement trades altitude for lateral movement, gradually walking the impact point toward the target.
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If GPS gets jammed, the inertial system takes over.
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It's not as accurate, but it's good enough.
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30 meters instead of 10.
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The bomb continues to make corrections, smaller and more frequent as it descends.
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In the last 10 seconds, the fins might adjust hundreds of times, movement so small they look like vibration.
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The radar altimeter activates in the final moments, giving precise height above ground.
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The mission computer calculates exact time to impact.
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The last correction appears fraction of a second before impact, a tiny adjustment that moves the impact point by just a few feet.
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And then it hits.
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Bye for now.

关于本课

在本课中,学员将通过观看标题为“世界上最强大的隐形轰炸机内部”的视频,学习相关的专业英语词汇和短语。该视频介绍了B-2轰炸机的隐形技术及其维护过程,学员将可以了解如何描述高科技武器及其复杂操作。此外,学员还将练习听力并模仿视频中的发音和语调,以提高英语口语能力。通过看YouTube学英语,学员将能在有趣的背景下提升自己的语言技能。

关键词汇与短语

  • B-2轰炸机 - 一种高科技隐形轰炸机。
  • 隐形技术 - 使飞机在雷达上不可见的技术。
  • 维护(Maintenance) - 保持设备功能正常的过程。
  • 指引系统(Guidance system) - 用于导向武器的高科技装置。
  • 环境控制(Climate controlled) - 维持特定温度和湿度的系统。
  • 雷达吸收材料(Radar-absorbent material) - 减少雷达反射的涂层。
  • 重力(G-forces) - 飞行器在飞行时所受的重力影响。
  • 扭矩扳手(Torque wrench) - 精确安装材料的工具。

练习技巧

在观看视频时,请注意调整播放速度,以便跟上视频的语速。可以使用shadow speech的技巧,通过模仿视频中的发音和语调,帮助自己提高英语发音。视频中的讲解语速适中,非常适合shadowspeaks的练习。您可以一边听一边跟读,将视频中的句子暂停下来,进行反复练习。此外,重复观看视频中关键的段落,慢慢加快语速,帮助记忆和掌握难度较大的发音。坚持进行这种练习,您将发现自己的口语能力在短时间内明显提升,进而达到提升英语发音的目的。

什么是跟读法?

跟读法 (Shadowing) 是一种有科学依据的语言学习技巧,最初开发用于专业口译员的培训,并由多语言者Alexander Arguelles博士普及。这个方法简单而强大:您在听英语母语原声的同时立即大声重复——就像是一个延迟1-2秒紧跟说话者的影子。与被动听力或语法练习不同,跟读法强迫您的大脑和口腔肌肉同时处理并模仿真实的讲话模式。研究表明它能显着提高发音准确性,语调,节奏,连读,听力理解和口语流利度——使其成为雅思口语备考和真实英语交流最有效的方法之一。