[dramatic music]
With ever greater concerns
about global warming,
the world's shipping industry
is facing a major challenge.
If it were a country, it would
be the sixth largest producer
of greenhouse gas emissions.
At current growth rates, if we do nothing,
those emissions could
double or even triple by 2050.
[waters roaring]
So is there anything we can do about this?
The good news is, yes there is.
[upbeat music]
A global industrial revolution is underway.
Yes.
We have a technological
challenge for our environment
for the wellbeing of the
population and the planet
for civilization
Driven by passionate,
dedicated individuals,
intent on shaping a new world.
I do it because I look at my kids
and I honestly, I'm
convinced that this is the way.
A cleaner world.
There is a way forward,
other than burning fossil fuels
out of our funnels.
A greener world.
This wind farm,
is producing more hours
of power into the grid,
than all wind farms in the UK
and probably in the world.
What we've done in the past,
is not going to solve these challenges.
We need to find new ways
and I think the only way to do that
is to bravely step forward
and implement technology.
Together,
they are pushing engineering to its limits,
to create extraordinary machines
that can protect our planet
for the future.
[somber music]
[somber music continues]
Gavin Allwright,
represents a growing number
of technology developers,
shipbuilders and operators
intent on reshaping the
future of global shipping
by harnessing a resource
that has transported
humankind for millennia.
So it's strange.
When we look at wind farms or wind turbines
we see those now as modern,
renewable energy solutions
but when our mind's eye
turns to wind-powered vessels,
we think of that as being old-fashioned.
Now there are still traditional
sailing vessels out there,
delivering cargo,
but there's a whole new
breed of naval architects,
designers,
who are using cutting edge technologies
to power the vessels of the future.
[upbeat music]
This is Black Pearl,
the world's largest sailing yacht.
Many in the shipping industry,
believe she could form the blueprint
for a new generation of
commercial sailing ships.
It's been two years,
since this extraordinary
vessel took to the sea
and having proved herself
on the world's oceans,
she's returned to Holland
where she was built
for what can best be
described as, some fine tuning.
[fast upbeat music]
It works well.
But having said that,
one of the reasons we're here in Amsterdam
is that we're tweaking, we're improving
because we believe we can make it better.
Chris Gartner, skipper of Black Pearl
appreciates more than most,
the ancestry of this
The inspiration comes from
the clipper ships, for sure.
The Cutty Sark or the Stad Amsterdam,
the high-speed that they travel,
super efficient easy in the wind.
To give some idea of just how efficient
these clipper ships were.
We need to look no further
than the Flying Cloud.
In 1854, she set the world
record for the fastest passage
between New York and San Francisco.
That record stood for 130 years.
It was only surpassed in 1989.
This was a vessel with
no motors or engines at all.
Large wind vessels were still operating
right up until World w*r II.
These ships were seriously fast.
Some of the clippers could exceed 20 knots.
Many modern ships don't do that.
The old sailing ships
did require a large crew.
On deck, they'll run with about 16 people
and they can drop all
their sails or set their sails
in approximately 25 minutes.
Then carbon fiber came,
then the game changed.
Voila! Will you come with the DynaRig?
We can maneuver the
boat at sea with one person.
[slow gentle music]
The DynaRig system utilizes rotating masts
to achieve the optimal
position for its square sails.
First conceived of in the 1960s,
it was not until 40 years later
that there were materials
strong and lightweight enough
to be up to the job.
Towering 232 feet above the waterline,
Black Pearl's three enormous masts,
are the largest example of the system,
by quite some margin.
They are built to be free-standing
and they're like a big
carbon fiber fishing pole.
We carry 2,900 square meters a sail area
which we can deploy in
just over seven minutes.
But more importantly,
we can furl them away
or close all the sails
in just under seven minutes.
Being able to react quickly
to changing wind conditions,
makes for more efficient
sailing and greater energy saving.
And what's more, it's all
done by remote control.
Basically, you have to
take three big deep breaths
before you really start
exerting your finger.
No, but it's as simple as that.
What does it feel like when
we are sailing this boat?
It's incredible.
Just over 24 knots is our
max under sails, so far.
Prediction is with the
right winds and stuff,
we should reach 28, 30 knots.
Which is the equivalent
of over 34 miles per hour.
Well, I think we had a classic example
on our very first voyage from Rotterdam
down to Gibraltar,
where one of the Portuguese
coastal stations called us up,
"Black Pearl, Black Pearl.
Can you please confirm
that you are a sailing vessel?"
"Yes, we are a sailing vessel"
and there was a slight pause there,
then there was this,
"Black Pearl, Black Pearl,
are you actually sailing?
"Yes, we are actually sailing."
And at the time we were
doing 22 knots, I think it was,
and passing all the cruise
ships, the container ships
and the tankers and motorboats
and they just couldn't believe it.
That was a great trip. [chuckles]
But the designers of Black Pearl
were determined to take
things a stage further.
When under sail, the propellors of the ship
can be used as underwater
turbines, generating electricity.
[engines purring]
Let's have a look in the engine room.
This is our main engine
ramp, starboard main engine.
Attached to this is the gearbox.
And over this side, our electric motor
which gives our electric propulsion
when we wanna drive off batteries.
So we have the option of
running on diesel or electric
or a combination of both, which
gives us our maximum speed.
So obviously when we're driving the boat,
the propulsion is that way.
When we're sailing and regenerating,
the power comes back through the shaft
into the electric motor here
and is then distributed to
the IEC distribution board
at the front of the engine room
and that's how we get
her our battery power.
In here we have the starboard battery room,
A motorboat might do 17, 18
knots as its maximum speed
but majority of the time
a motorbike is cruising at 12
because that's the
optimum for fuel consumption
and everything else.
So for us to be able to
do that and regenerate
and not use fossil fuels is very cool.
Currently,
the team are looking to add solar panels
either to the superstructure
or flexible ones in the sails
and the ship has already been pre-wired
to accept both options.
I think the ambition,
right at the beginning
was to be the first and set
an example to our industry
and commercial shipping
is taking it very seriously
Beyond yachting,
the DynaRig can move into
the commercial side of shipping.
There's already many studies done
for having multiple DynaRigs
placed on large ships
And a sailing boat can go
everywhere a motorboat can go
just nicer, quieter, and no pollutions.
[airplane engine roars]
Now the good news is,
the International Maritime
Organization, the IMO,
has set an ambitious target,
to reduce greenhouse gas
emissions by at least 50%,
by the year 2050.
Now some shipping companies
have gone beyond that,
with more ambitious targets
to be carbon neutral by that year.
But to make it happen,
will require a radical transformation.
Let me give you a few
shipping facts to set the scene
to show where shipping is at the moment.
Over 90% of world trade
is carried across our oceans
by anywhere up to 90,000 large ships.
The fuel burned by many of these ships
is called heavy fuel oil.
That's a toxic sludge,
that's highly polluting.
Shipping however, is the most efficient way
of moving large quantities
of goods around the world,
by far.
Now, obviously we can't
change things overnight.
So we need to be looking
at transition technologies,
ones that take into
account that very few people
have retained those skills
to operate traditional sails.
We need to be looking at modern solutions
Just 40 miles away,
from where Black Pearl is currently moored,
lies the Marine Research
Institute, Netherlands,
better known as MARIN.
It's a world-renowned organization,
which for over 80 years has
provided the maritime industry
with expertise and independent advice.
Today, they are at the
forefront of research
into sustainable marine propulsion.
One mistake that many people do
is to think that the wind is pushing a sail
and that's why it's hollow
and that's why you're going forward.
Actually, it's working with
suction, not with pushing.
The wind is blowing.
You have a flow coming on a given object
and this object is diverting the flow
and creating on one side, a high velocity,
and on the other side,
a lower, smaller velocity.
It's known as the Bernoulli Principle,
after an 18th century Swiss mathematician
called Daniel Bernoulli.
He discovered that
the faster of fluid flows,
the lower the pressure.
It's why a wing creates
lift on an aircraft.
The shape of the wing makes
the air flow at a faster speed
on the upper surface,
creating lower pressure
and effectively sucking the wing upwards.
In the 1980s,
designers began experimenting
with rigid wings on boats.
So it started with simple,
smaller sails in area
but with a metal rigid profiles.
And then some engineer
pushed the idea further
and only looked at the way
lifting surfaces is working
Collaborating
with the famous undersea
explorer, Jacques Cousteau,
two French engineers
came up with a rigid sail
which had a perforated
outer surface and inside a fan
which created suction
affecting the boundary layer.
This amplified the pressure difference
and increased the lift effect,
making it four times more effective
than the best conventional
sails of the same size.
And people who are
looking at traditional sails,
cannot believe that a pillar,
just a round thing can produce lift.
But it's a very smart
and very powerful system.
And then this invention
was just left on the side
and never used again.
Five, six years ago, we made presentation
to try to revive the idea
because we were believing
that was a very smart system.
And my hope, was that at
least one person in the room
would raise his hand and say,
"Well, this is a nice idea.
I will pick it up and apply it on ships."
One man who did just that,
was Frank Nieuwenhuis.
We first started on scale models.
The first one I took on top of my car
in order to see if the
suction's actually working.
There's quite some technology
to combine an airplane wing
which is only the wind
always comes from one side
and in sailing, sometimes
it comes from one side,
sometimes it comes from the other side.
Also the suction
technology is quite difficult
and we needed to that
all in the right balance.
And of course, all of this
we wanted to get ready
as quickly as possible.
What they really needed,
was access to an
immensely powerful computer,
able to handle the hugely
complex calculations
associated with air flow and pressure.
Luckily for them, just such
a computer is to be found
at the MARIN Test Facility.
We have been working
with them on the calculations
to further optimize the profile.
The amount of suction you should apply
to boost the performance.
The effects of the heights of the sail.
And then they studied,
how does this suction work?
How does the angles work
and what is the right shape?
And they've been extremely helpful
But even with access to a supercomputer
you still need to conduct
physical experiments.
And if a car worked for a small model
there was no reason not to try it
with something a little larger.
Our approach is to
have a little bit of saving
on many ships
and we try therefore to make systems
that can be installed on the ships
that are already out on the sea today.
We don't have to wait to build new ships.
And if we want to save quickly in shipping,
we have to install something fast and easy,
things that are produced
on an industrial scale,
that gives you the result.
One of the key issues of this wing,
is that this big ventilator
is sucking out the air from the wing.
And by that, influencing
the airflow around the wing.
And it's done through
these little holes here
which run all the way through the wing.
And this ventilator just expels the air
and throws it outside in the bottom
creating vacuum in the wing
and influencing the
airflow around the wing.
So one of the most
challenging things really
is to get this big ventilator,
two and a half thousand kilos of steel
inside this wing construction.
And it has to be glued in and
connected to the bolts here.
And once it goes in, we
only have 10, 15 minutes
before it has to be perfectly aligned.
[light upbeat music]
One of the first ships to adopt the system
is the freighter, Anke.
You can push the start button
and it will sense where the wind is
and it will position itself
correctly, relative to the wind.
This wing can actually
tack as they say in sailing.
So depending if the
wind is on the left side
or on the right side,
would change the shape of the wing
and the boundary layer is being sucked away
from the other side.
And if you suck away this boundary layer,
then you influence the rest of the airflow.
And with the sails in operation,
the captain can reduce engine power
and still maintain the same speed.
When the ship changes direction,
the wings are following
the change in the direction.
They will always keep the
same heading towards the wind.
So the captain doesn't have to do anything
other than to decide
he wants to sail or not.
The system's already proven itself
to be both rugged and effective.
From the tempestuous
seas off the African coast
to the Arctic conditions
of Northern Europe.
Best as any sailor knows this,
that when you have half wind
so the wind comes from the side,
then the effect of wind
propulsion is the best.
But when it's from 25 degrees
to about 180 degrees, it works
But Frank and his team
weren't finished there.
They had the idea to make something,
all together, more portable.
[door thudding]
So this is where the
magic is going to happen.
This is the container.
There will be one wing here
and there will be one wing down here
and in the end they will
open up and start saving fuel.
This is the MS Royale, a container barge
plying the route between
Amsterdam and Harlingen.
What happens is, with a normal crane,
they put the container on the ship.
And then we press a
button and the wings flap out.
So at that moment it's already installed.
Which means that any ship
with a space for container
could theoretically install a
system quickly and easily.
The team at Econowind,
estimate that in optimum conditions,
a ship could reduce fuel
consumption by as much as 25%.
However, as the wind
is not always consistent,
they predict a still impressive
average saving of around 10%
In maritime sector
is pretty conservative for good reasons.
I mean, this is a very harsh environment
so it's difficult to introduce innovation
in the maritime segment.
So I'm extremely happy
to see that this very smart invention
is now applied again on more ships.
And we're actually
discussing now about a system.
It will be 20 meters high.
One wing will be about
two and a half times,
the total force of the two wings,
which are in the container.
What we need for wind
propulsion to be taken seriously
is not just one or two
companies out there doing it.
We need a vibrant, thriving industrial base
with many companies
delivering many new technologies.
[upbeat music]
This is the M/V Copenhagen.
Together with her sister ship, Berlin,
she operates on the busy route
between Rostock on Germany's Baltic Coast
and the Danish port of Gedser.
Built in 2016, they're two
of the largest hybrid ferries
in the world,
able to carry 1300 passengers and 460 cars.
Well, welcome to the battery room
of the hybrid ferry Copenhagen.
A hybrid ferry,
is a ferry that has a
battery system installed
to supply energy when it's needed
and to store energy when it's not needed
Scandlines estimate
that their hybrid systems
reduce CO2 emissions
by up to 15,000 tons a year
the same amount as produced
by over 340 average German households
And the journey doesn't stop here.
It is our overall ambition to
operate zero emission ferries,
but due to the energy
requirements for a two-hour voyage,
it is much more complicated
and it's all of the small
things that add up.
As efficient as she is,
Copenhagen wasn't originally designed
to make use of the free and abundant energy
that wind provides.
But tonight, all that is about to change.
Once the passengers leave the ship,
she'll make her way to the nearby dock
and be fitted, not with a sail,
but with a device first
conceived of over a century ago,
which works on a principle
known as the Magnus effect.
[light upbeat music]
The Magnus effect,
gets its name from a German physicist
named Heinrich Gustav Magnus.
In 1853,
he was investigating the
reason why spinning objects,
traveling through the air,
such as a spinning ball,
don't move in a straight line
but actually follow a curved path.
So what you have, for
example, on the football
you have the forward velocity of your ball
which is rotating,
and the flow sees two pattern.
On one side, the high velocity
on the other side a low velocity,
so a lower and a higher pressure
and through the pressure
difference, you have a site force
and that's why with spinning a ball,
you can give a certain trajectory.
If you take a mast, a vertical cylinder
which is rotating in wind,
you will have the same effect
In the 1920s,
a German aircraft engineer
named Anton Flettner
with a little help from a
certain Albert Einstein,
came up with the idea
of using just such a device
to propel a ship.
[upbeat music]
By 1924, they'd retrofitted a schooner,
with two rotors driven
by an electric motor,
enabling it to travel at 10 knots.
Having proved the concept worked,
they went on to create
a three rotor freighter
but the great depression,
an abundance of cheap fuel
and no pressure on carbon emissions
meant the idea was all
but doomed, for decades.
But there was one legacy.
Even today, these spinning cylinders
are still called, Flettner rotors.
It's just such a device,
that's to be fitted to the Copenhagen.
But this mega rotor is twice
the size of those originals.
Standing 98 feet high
and 16 feet in diameter,
it's built by Norsepower, a Finnish company
who specialize in this technology.
It's an exciting day.
Even with careful planning for months
there's always something you
can't, perhaps, see in advance.
One angle to it,
is that we have people
speaking three four languages
and people from three four nationalities
working together here.
The reason why Copenhagen and Berlin
are the perfect ships for this,
and in this case, we are
trying it out on Copenhagen,
is because our ships
are trading North-South
and the predominant wind is westerly wind.
So to have the best
result out of a rotor sail
like this one,
the wind should be perpendicular
to the direction of the ship.
So it is the best conditions
to test something like this.
But for the system to be effective,
it must be commercially viable.
Such a valuable financial
asset as a large ship,
cannot afford to sit idle,
while engineering work is carried out.
Even now trucks booked
to travel on the Copenhagen,
the following morning,
are already driving
across Europe to meet her.
For the installation team,
it's going to be a race against the clock.
To enable the operation,
to be completed as quickly
and as efficiently as possible,
the team from Norsepower
have already installed
the steel rotor foundation
along with the control
system and power supply.
With this massive piece of equipment,
we need to be extremely careful
that everything is done right.
[upbeat music]
I had a long checklist that I went through
line by line,
to make sure that everything
is correctly attached.
Weighing 42 tons, precision is vital.
The placement of the rotor
has to be millimeter perfect
to enable it to fit
correctly to its foundation.
The rotor produces such massive forces
that it needs to be connected
with hundred really big bolts.
It's a job that can only be undertaken
by a crew working inside the rotor.
These bolts will need to cope
with a 300kN force,
the water could potentially generate.
That's the equivalent of
the pressure of over 30 tons
being acted upon by gravity.
We are extremely excited,
to finally see this project
become a realization now.
And to me and my colleagues,
this is a way of really showing
that there is a way forward,
other than burning fossil
fuels out of our funnels,
because it's extremely feasible.
The team will now work through the night
connecting the electrical
system and tightening bolts.
And tomorrow, the testing will begin.
If successful, it could mark
a new era for Scandlines
whose combined fleet transports
seven and a half million passengers
and over two and a half
million vehicles every year.
But the team at Norsepower are well aware
that many other shipping
companies around the world
will be taking a very keen interest.
But some ports present certain challenges
to the concept.
Challenges that must be overcome,
if Flettner rotors are going
to be adopted universally.
At a test facility on the wind-swept coast
of North Eastern England,
British company Anemoi,
have developed a system
to address just such problems.
The Anemoi journey began over a decade ago
with a environmentally driven ship owner
and a group of shipping professionals,
who embarked on a mission
to develop technology,
that would benefit the industry
through reduced emissions.
It was a program that would take place
across the world
and involve extensive investigation
into the way wind flowed
around a ship's infrastructure.
It was during this period,
that a renewed interest
in the potential of Flettner rotors began
and work was undertaken to
develop an automated system,
compatible with the demands
of 21st century shipping.
The initial testing involved
scale model testing,
with use of wind tunnel
and 25 to one scale models
at South Hampton, Warsash Academy,
where actually the scale model vessels
managed to reach a speed of 17 knots
with no engine power on the lake tests.
It was an invaluable proving ground.
This renowned training
facility attracts ships' captains
from around the world
because the handling
characteristics of these large models
perfectly mimics their
full size counterparts.
Having perfected the theory,
Anemoi's decision as to
where to put it into practice,
certainly can't be
described as the easy option.
They chose the bulk carrier market.
When developing solutions
for these ship-types,
the crane operations govern so much.
So having a large static
structure on the deck of the ship
would not be an idea that
you could sell to anybody.
[rotors whirring]
A folding rotor
was one of a number of options developed
and being able to test
prototypes such as this one,
over long periods of time,
has provided a wealth of
essential performance data.
The maximum RPM of this particular rotor,
you can see in the background is 450 RPM.
Now the relationship between
wind speed and rotor RPM
is quite important in
terms of the performance.
The surface speed of the rotor, typically,
has to be somewhere
between three and five times,
the wind speed.
That's pretty much the general target
But the owners of the 64,000 ton MV Afros
needed something even more flexible.
They needed the ability
to actually move the rotors.
So we developed a new solution
which enables the rotors to be transported
along the deck forward aft
to avoid cargo operations.
The system employs a series of trolleys
on rails.
When the ship is loading or unloading,
the rotors can be moved into positions
which best suit cargo operations,
whether that be offshore or in port.
Upon leaving, the rotors are then moved
into their operational position
and mechanically logged onto the deck.
The system is very easy to
operate for the crew on board.
The system takes care of
most facets of the operation
including starting and stopping,
choosing what rotational speed to go out
which direction to rotate in.
Effectively the crew can
turn the rotors on leaving port.
The control system will
take care of everything.
So for the crew, it's a very simple task.
Flettner rotors provide
most thrust in stronger winds.
Our rotors have been
designed to operate safely
in wind speeds up to 35 meters per second,
which is a very strong wind.
They have also been designed
to operate in heavy weather,
when the ship motions are quite large.
The wind direction also plays its part
and the ideal wind direction
is from the beam of the vessel.
So coming from 90 degrees or just behind.
In those conditions,
strong winds from the beam
you end up with very high fuel savings.
And the savings in fuel,
means a corresponding
reduction of emissions.
We believe that the savings
can be anywhere between five and 30%,
depending on a number of variables.
I think in shipping, as you've
seen with the wind industry
and the wind turbine industry,
bigger is proving to be better,
but with ships there are
limitations on operations.
So there will be a ceiling
of where you can go
with wind propulsion,
but I don't think we've
reached that ceiling yet.
[dramatic music]
Back in the Baltic,
the new silhouette of the M/V Copenhagen
has been drawing much
attention in the shipping world.
The rotor installation was
scheduled to be completed
in just one night.
With the ship needed in
service the following morning,
there was no margin for error.
Remarkably though,
the team was able to
meet this ambitious target
with room to spare.
It didn't last more than,
I will say, 10 hours or so,
then the rotor was on boarded
and we could go again.
At the moment, it's the height of summer,
when the prevailing
winds are at their lightest
but the crew have wasted
no time in testing the system,
ready for when the winds become stronger.
[fast upbeat music]
Of course, the idea with this rotor
is that it's fully automatic.
So normally we do not have to do anything,
it just runs in the background.
We have done some
testing to prove efficiency.
On a cruising,
we have been stopping the
rotor, see what will happen.
And we realized that the ship speed
went down with half a knot.
Then we started again and
we gained the half a knot.
So it actually works.
We still need to see the good season for it
but we have already seen promising results
With installation of this rotor,
the expectation is that
we will save up to 5%
on our fuel line
but a 5% fuel saving is
also a 5% emissions saving.
Although the rotor may be huge,
its control panel is remarkably small.
It not only automatically controls
when and how fast to spin the rotor,
but it also provides valuable data
about all aspects of its performance.
But how has such a large addition
to the superstructure
affected the ship's handling?
We feel a little difference. It's not much.
We can see when the rotor starts,
then the ship will heel a little.
In high winds, it will yield more
up to two degrees, we have seen.
So the one thing we have to do,
every time the rotor starts,
is that we have to move some balance water.
So for our customers, they will not notice
because this ship will always be even keel.
And we can see when we have high winds
in Gedser our smallest port,
we also feel that we
have to work a little more
with the maneuvering.
In the same way,
that a wheel of a car requires balancing
to avoid vibration.
So the giant spinning rotor
has required a little fine tuning, as well
but that has been finally completed today.
Now when we have made the last corrections
that makes it possible to run even faster
the most optimum speed with the rotor.
We acknowledge it's a technology
that has been around for a hundred years
but so far, very few commercial operators
have had the courage to actually try it
in a live environment.
We sincerely believe that
we are in the right spot,
we are the right size of
ship to make this a success.
I can't explain how thrilled I am,
to be given the opportunity
to run a project like this
which will be allowed to do things
that are good for the environment.
It's good for the company as well.
And it draws a lot of positive attention,
we have to say.
It is fantastic in all respects
But it's not just how ships are propelled,
that is currently undergoing a revolution.
It's also where they sail, and when.
In the 21st century,
we have advantages that even 50 years ago
would have been unthinkable
By making use of ocean currents,
it's possible for ships to make
significant energy savings.
But how do you monitor
these ever-changing current
in real time,
in order to be of use to ships' captains?
Our system is about measuring
oceans' surface currents
by observing how the
vessels, ships are behaving.
Always they move around
and we do that by analyzing
marine traffic information.
So every single commercial
vessel has a beacon
which broadcasts real
time, its position, its speed
and some information.
It's called AIS, Automated
Identification System,
which is to avoid
collision between vessels.
We utilize 120,000 vessels,
continuously sailing around the world
and sending their
position every two minutes.
And this information is collected
by some telecommunication satellites.
And we get this data into our server
and with our processing systems.
So we learn with some
machine learning algorithm
from the ways the vessels are behaving.
And we deduce the ocean current
that the vessels are going through.
And with access to accurate information
about currents,
ships' captains can alter course
to either avoid adverse currents
or take advantage of favorable ones.
It's estimated that if
applied to shipping globally
it could reduce fuel and emissions by 5%.
However, on some routes,
those savings can
increase to as much as 15%.
And this is just on
conventional powered ships
without taking into account
the additional benefits
that wind-assisted propulsion would bring.
But for global industries,
which have grown used
to a just-in-time delivery
of parts and materials,
there are still huge
questions to be resolved,
if we are to achieve a new greener future.
What if there's no wind
or the wind's blowing
in the wrong direction?
Well, in that case, we
need a hybrid approach.
[light gentle music]
This is Energy Observer,
a French vessel, which is halfway through
an extraordinary seven year odyssey
Energy Observer is a floating laboratory.
The idea is to test different
technologies constantly
and improve them as we work hand-in-hand
with the maritime industry
to help them find ways
to limit their impact.
It's also a media boat.
So the idea is to be able to
communicate and educate people
about renewable energy, everywhere we go.
So the boat evolves all the time
and it's a work in progress.
The project is the brainchild
of master mariner, Victorien Erussard
and journalist filmmaker and
explorer, Jerome Delafosse
and the boat, reflecting
the ethos of the mission,
is, of course, recycled.
Energy Observer was
built in 1983 in Canada.
Her first name was Formule TAG.
And it was one of the first
big, big racing catamarans
and it's basically a boat
that we completely refitted.
I mean, the boat was wreck when we got it.
Turning a racing machine
into a laboratory meant
doubling its weight to 30 tons
which in turn required
putting in extra foam
to keep it afloat,
but it was necessary,
as it gave the boat the
ability to install, test and adapt
a wide variety of technology.
But as with all experiments,
it's often as useful to
see what doesn't work.
For example, we try the
vertical axis wind turbines
and I think it's not a
solution for this type of ship.
Other things have worked so well
that the decision was
taken to increase their use.
At the beginning, we had
only 100 square meters
of solar panels
and now we have more
than 200 square meters.
The good thing about Energy Observer
is that they're prepared
to try new approaches,
new technologies
that may not be ideal for them
but could be solutions for others.
The kite system is a solution,
but it's not a solution
for us at the beginning
because we sail along the European coast
and is a solution for
the off shore navigation,
for example, when you cross the Atlantic
and after we want to
try another technology,
and it's impossible on this ship,
to keep all the technology
because [indistinct] the
weight is too important.
While kite sails,
may not have been ideal
for the Energy Observer,
they are being tested on larger ships.
One benefit being, that
they're an off the deck system.
An off the deck system
means they don't take
up valuable deck space,
which could be very beneficial
for things like container vessels.
Having now been fitted
with highly efficient rigid
sails called Oceanwings,
Energy Observer can use its
propeller and electric motors
to generate electric power while sailing,
much like Black Pearl.
However, what has got so
many in the maritime world excited
is what they do with the
electricity they generate.
With that energy,
we take sea water, we
desalinize it, we de-mineralize it.
Then it goes through a electrolyzer,
which divides the molecule
of water into H2 and oxygen.
The oxygen we let go
and then we'll be compressing
the hydrogen in eight tanks,
which are at the front of the boat.
And this ship, Energy Observer,
she's the first ship ever to
make her hydrogen onboard
Working with Toyota,
they installed a new, highly
efficient hydrogen fuel cell,
which uses the hydrogen
they create and store,
to produce electricity
which can then be used to
power the electric motors.
The maintenance of
these type of technologies
are very, very easy.
You don't have [indistinct],
you don't have noise.
You don't have a fine particles
everywhere on the ship,
so it's very clean.
So it's really the future.
When we started Energy Observer,
the maritime industry
was kind of laughing at us.
I think people were like "Yeah, whatever."
I mean, this is just-
It's peanuts. It's never gonna work,"
but because we've proved the energy mix
that we've implemented on the ship works,
they're really interested.
And now they're like,
"Oh, so how can we implement?
How can we have hydrogen on board?
How can we add solar panels?
How can we reduce our emissions
by using the Oceanwings, for instance?"
So we're only at the
beginning of this phase
but it's very, very exciting.
So successful has this project been
that it spawned Energy
Observer developments
which is creating a range
of commercial applications
based on lessons learned.
From hydrogen generators
to floating green hydrogen fuel stations.
But the crew know from
firsthand experience,
it's a race against time.
And one that none of us can afford to lose.
When you see the glaciers,
it's absolutely breathtaking.
But at the same time,
you know that the
polar bears are all dying,
then that the glaciers are all melting,
so you know how fragile they are
because they're all
disappearing, as we're exploring
Thanks to the efforts
and research of just such pioneers,
there are now many in the shipping industry
that are daring to believe
that the next decade could
be one of transformation.
So a lot of people ask me,
is this really going to happen?
Is this not just a fantasy?
Well, my answer to that
is, it's already happening.
Year on year, we're
seeing momentum growing,
a doubling of installations, every year.
And that trend is set to continue.
Really, it's not only transition
and energy transition pattern,
but it's really a revolution.
So we are going to see new type of ships
but what people will mainly see, I think,
is the fact that large wind power device
will be installed on board the ships.
The bigger, the better.
If you want to catch a lot of wind
you will need at the end, quite some area.
There might not be
sails like the Cutty Sark
but I think this will be quite
welcomed by everybody,
to see sails again on ships.
Can wind do the heavy lifting on its own?
Of course not.
Alternative low carbon
and zero emissions fuels
are really going to be necessary too.
We know that we will need
different types of power,
so the new vessels will
be much more complex,
I would say, in terms of
design and engineering
because they will have to cope
with different sources of energy.
You will have to handle them smartly,
typically with the wind
because the shortest route
will not be the best route.
It's been estimated that by 2050,
wind could provide up to a
third of the energy required
by the maritime industry,
with some new designs on certain routes,
getting as much as 80% of
their energy from the wind.
Well by 2050, we could be seeing vessels
that have far more hydrodynamic
and aerodynamic hulls.
The hull itself functioning
as a wing sail, perhaps.
We will be seeing things
like kites and suction wings
being standard equipment on vessels.
We need to dare to go
ahead at very high pace,
so that means also taking risks.
But, we have no choice, it has to happen
and it has to happen extremely quickly.
At this moment, in terms of climate change
or loss of diversity
and all the issues
related to human activity.
I mean, it would be hard
to make larger mistakes.
The basket of solutions
that we see coming for shipping,
will allow to transport goods
from A to B on the planet
without producing any harmful emissions.
And this is a very nice
horizon, not only for the shipping,
but for all mankind.
[upbeat music]
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01x05 - Maritime
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An engineering revolution is underway. Driven by dedicated individuals who are building extraordinary machines that will change our lives.
An engineering revolution is underway. Driven by dedicated individuals who are building extraordinary machines that will change our lives.