Esimesed 200 rida.
Today on "Impossible Engineering"...
The littoral combat ships, the U.S. Navy's
fastest combat vessels.
If you're a pirate or you're a drug runner
and you see that ship coming towards ya,
it's time to shut down your engines
and put up your hands.
To create a vessel in a class all its own.
She's basically one of a kind as far as warships goes.
I am sailing a ship that's unprecedented.
Engineers had to turn to the pioneering
innovations of the past.
Here we go.
Yes!
If these engines were to cut out,
this boat would be in serious trouble.
Oh, ho, ho! This is really incredible.
What an amazing airplane.
That made the impossible possible.
captions paid for by discovery communications
the U.S. Navy has the largest sea force on the planet.
Throughout its over 240-year history,
its ships have carried out operations
in the deep blue waters of the world's oceans.
But today the Navy's assignments are evolving.
Gone are the days of open-water blue Navy battles.
Many of the places where we need to be as a Navy
are in coastal regions.
To combat problems such as piracy,
people-trafficking, and aid distribution,
the fleet must operate in shallow coastal waters,
known as the littorals.
To navigate waters close to the shore,
shipbuilding program manager captain Tom Anderson
had to construct a particular type of ship.
To operate effectively in the littorals...
We need a high-speed ship, and it's gotta be adaptable.
It's gotta be capable of doing multiple missions.
That's our challenge.
It's a challenge that chief engineer
lieutenant Damon Gilbert also had to overcome.
The ideal ship for this environment
would be a ship that's light,
a ship that has a very shallow draft,
and a ship that can handle itself
and move very quickly.
The solution...
The littoral combat ship class.
Made up of both the mono-hull freedom variant
and the trimaran independence variant,
this revolutionary class of ship
is at the vanguard of marine engineering.
This is gonna change the face of how we operate inside
those waters for years to come.
Built for speed,
both the freedom variant semi-plaining hull
and the independence variant's trimaran design
create ultra hydrodynamic efficiency.
Using lightweight aluminum, powered by an innovative
propulsion system,
each ship can travel over 45 miles per hour
in only 14 feet of water.
It's capable of being reconfigured
for multiple missions,
and it's able to deploy smaller boats.
A vast helicopter pad also extends the crew's reach.
But to produce a high-performance,
fast-moving fleet for shallow waters,
the ship's designers had to create
the most effective propulsion system.
The problem was standard propeller systems
significantly push the ship below the water line
and require much deeper waters.
If you want to chase down a ship
or you want to elude another vessel
to get out of danger, you want to be able
to maneuver as quickly as possible.
So how do you propel a ship this fast
in near swimming-pool depths?
This would not have been possible
without a breakthrough innovation from the past.
Humans have always needed to navigate
the world's shallow waterways.
Initially, we used arm power to paddle.
It was effective, but tiring.
Arg!
Out of the way!
Oh!
The vikings added a sail to conquer the coastlines.
This worked well, but... Huh?
Only when there was wind.
Gah! for Odin's sake!
With its small draft, the paddle steamer seemed to be the answer.
Well, I do declare... vikings!
But they had significant problems.
Oh, my!
In the 1940s, the introduction of air boats
brought high-speed travel to the everglades.
Whee!
Oh, no!
Whoa!
But a better system was needed.
Show-off!
In the Grand Canyon, mechanical engineer Dan Dickrell
is riding upstream on the Colorado river
to reveal one of history's great engineering achievements.
The beautiful noise you hear
right now is two 550-horsepower
8.3-liter engines pushing this 20-ton boat
up these crazy, crazy rapids.
If these engines were to cut out,
this boat would be in serious, serious trouble.
But the key to driving against the current
isn't in the engines.
It's due to a pioneering propulsion system.
Getting to places where others can't,
in extremely shallow water,
was born out of the imagination
of someone whose childhood desire
was to challenge the rapids
and go where no one else could.
To do this, New Zealand-born
inventor William Hamilton
needed to overcome the limitations
of standard motorboats.
Now, Hamilton had a problem with this.
Because the waters he wanted to to go on were too shallow.
Huge rocks would effectively wreck this crude propeller.
So Hamilton got rid of the propeller altogether.
In 1954, he commissioned a plywood boat
and attached a centrifugal pump to its engine,
creating a unique water-driven jet propulsion system.
How the Hamilton jet motor functions
is around the middle of the boat,
there's an intake that brings water in
from whatever body of water the vessel is navigating.
Hamilton's uses an impeller that's spinning very fast
to greatly accelerate this stream of water.
That water is highly turbulent and twisty.
And so the Hamilton passes the water through a series
of stator vanes, creating a uniform,
but high-velocity jet.
And in 1960, Hamilton tested his bold
water jet design at the Grand Canyon.
Hamilton vowed to be the first to take a vessel up
a 160 kilometer section of this
notoriously unnavigable Colorado river.
Now, it may look calm right here, but upriver,
the rapids are crazy.
He traveled against the current,
including the notorious Vulcan rapids in just nine days.
With his son John at the helm, Hamilton made history
and conquered the mighty river.
- Whoo! - almost 60 years later,
Hamilton's water jet's sheer power...
This acceleration is intense.
...And its ability to navigate shallow waters
with the added benefit
of mind-blowing maneuverability... Here we go!
Yes!
...Continues to open up new waters.
Whoo!
Thanks to this spectacular demonstration
of man versus rapids, this unique propulsion system
was embraced across the planet.
All right, let's go!
The ships' engineers have super-sized
Hamilton's water jet innovation
to create a revolutionary propulsion system,
capable of going 45 miles per hour in shallow waters.
The way that this ship achieves that speed is through the use
of two gas turbines and two diesel engines
that drive a propulsion train
that is propelled by water jets.
At Austal U.S.A.'s shipyard in mobile, Alabama,
the latest independence variant, u.S.S. Tulsa,
is having her jets inspected
and getting ready for launch.
When this ship is going full power,
there's roughly 24,000 gallons
per second passing through these four water jets,
which equates to the ability
to fill two Olympic-sized swimming pools
in less than a minute.
Not only do these massive jets
generate colossal power, they also act as a rudder.
Each water jet is capable of independently being steered,
which allows for a lot of flexibility and maneuverability.
Like Hamilton's water jet system,
water goes through four mighty impellers
and discharges at high velocity.
To steer, each jet's water flow is deflected
by a rotating nozzle,
enabling fast, agile maneuvers.
And to reverse, buckets pivot over the exit nozzles,
forcing the jet flow backwards.
Built into the hull, these massive ships
can operate in just 14 feet of water.
300 yards, turn.
Next course... 309.
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