Narrator: today on
"How it's made" -- automotive
Fuel pumps...
Cricket bats...
Change machines...
Change machines...
And ductile-iron pipe.
And ductile-iron pipe.
When you start your car, it
Activates a pump that's usually
Located inside the gas tank.
This electrical system pushes
The gas out of the tank and into
Injectors, which aerate the gas
And deliver it to
the engine cylinders.
Without a pump to get the fuel
Flowing, your car would be going
Nowhere fast.
You might think that submerging
An electric pump in gasoline
Would be a risky thing, but
Liquid fuel can't explode, so
It's actually a very safe place
To be.
Production begins with the
Pumping mechanism.
A gear and several rollers are
Sandwiched between two metal
Plates.
The rollers will rotate to pull
Fuel into the pump before
Pushing it out of the tank.
Each roller assembly is tested
By spinning it from the bottom.
A robot then pops it out and
Moves it to the next station.
Here the electric motor is
Attached to the roller
pumping mechanism.
Then it gets a magnetic sleeve
And a plastic cap.
All the parts that make up the
Pumping mechanism have now been
Assembled.
Next comes an end cap with a
Filter made of metal mesh.
A metal sleeve slides over the
Pump unit, and the whole thing
Is press-fit together.
Inside this chamber, large
Magnets generate a very strong
Force field.
This causes the metal sleeve to
Collapse, crimping at one end so
That it holds everything
Together.
Next, retainer rings go into
Slots in the fuel-pump cap.
A metal bracket goes over the
Pump.
It steadies the assembly and
Serves as a guide as workers
Install the brushes and coils
Which will supply electricity to
The fuel-pump motor.
A brass terminal slides onto the
End of each coil and brush
Assembly to facilitate the
Electrical connection.
Then the terminals are attached
To the assembly.
When the job is done, a robot
Removes the bracket.
They built this fuel pump from
The inside out, and now the
Actual workings are complete.
Inspectors hook each pump up to
A power source and run fluid
Through them to test
the pumping action.
Then they check for proper flow
And pressure.
If the pump passes inspection, a
Robot sends it down the assembly
Line...
Where a tubing system is being
Assembled to carry the gasoline
To the engine.
The joints are sealed with a
Brazing paste.
Then it's into a gas oven, where
The paste hardens and fuses to
The tubing.
Workers remove the tubing from
The oven and brush off any
Unwanted bits of metal and
Unwanted bits of metal and
hardened paste.
Hardened paste.
The ends of the apparatus are
Capped to keep them from
Collecting dirt and debris
During shipping.
Rubber tubing is attached to the
Pump and secured with metal
Clamps.
Then the rubber tubing is
Clamped to the metal tubing
System.
Workers wire the fuel pump, then
Hook up a connector which will
Attach to the engine's wiring.
This is the sending unit.
It's a float with a metal arm
That's attached to an electronic
Sensor.
The sensor sends information
About fuel levels to the fuel
Gauge on the dashboard.
A computerized system checks the
Sending unit's accuracy as the
Sensor is moved up and down.
Once everything checks out, it's
Time to fill the tank and hit
The road.
Up next -- cricket, anyone?
We'll go behind the scenes at a
bat factory.
Narrator: references to the
Game of cricket
date back to the 1300s.
Historians believe it started as
A children's game.
In the 1600s, working men took
Up the pastime, and before long,
It caught on with
the upper classes.
By the 18th century, cricket was
One of england's favorite
Organized sports.
Cricket bats are made of a
Particular species
of white willow.
It has stringy wood fibers that
Are usually long.
These give the wood elasticity,
The key to its performance.
Bat makers use as much sapwood
As possible because it's moister
And more flexible than the
Heartwood at the tree's core.
Production begins with willow
Pieces about 2 1/2 feet long.
The first machine trims them
Down roughly to size.
A few sprays of water limber up
The wood fibers.
Then each piece goes through a
Pressing machine three to four
Times.
A curved roller applies up to
Three tons of pressure, rounding
The bat's face and compressing
The wood by almost half an inch.
This pressing is essential to
The bat's performance and
Durability.
The bat maker draws a "v" on the
End where the
handle will attach.
Then he removes the bulk of wood
Behind the "v" on a table saw.
This minimizes the amount of
Work he'll have to do by hand
Later.
Now he cuts out the "v."
This creates a joint in which to
Insert the handle.
The handle is made of cane,
Dried vine stems, glued together
In sections, and coated with
Rubber.
The grip end has been shaped on
A lathe.
The other end will attach to the
Blade.
The bat maker cuts the
Block-shape tip into a wedge
That will fit into the "v" cut,
Then glues the two
pieces together.
A few taps with a hammer ensures
A tight fit.
He spreads the excess glue all
Over the joint to seal it.
Now he shapes the bat's profile
Using a classic woodworking tool
Called a drawknife.
This takes only a few minutes
But requires years of experience
And an expert eye.
Then he completes the shaping
With another pressing to curve
The bottom third of the bat.
International cricket rules
Regulate the length and width of
Bats, but there's no restriction
On curve.
Getting it right is tricky,
though.
Too much curve, and he'll limit
The blade's flexibility and
Performance.
The bat maker finishes off the
Shape using specialized tools.
Then he uses a metal hand plane
To flatten the blade's edges.
He ensures the bat has good
Spring by hitting it with a
Dense wooden mallet.
He also analyzes the
sound of the strike.
The softer the sound, the softer
The wood, and the better the bat
Will play.
He smooths the bat against an
Air-filled drum sander that
Molds to the bat so it doesn't
Wear away the shape he worked so
Hard to achieve.
Then a worker smooths out the
Rest of the surface with a belt
Sander designed specifically for
Cricket bats.
The entire bat is sanded twice,
First with a coarse abrasive,
Then with a fine one.
Next, the bat is mounted on a
Binding machine, where its
Handle gets a coat of glue.
A wrapping of twine binds
Together the sections of cane
That make up the handle.
Extra glue prevents the twine
From unraveling.
Next, they polish the blade
Using a cotton wheel.
Once the wood is shiny enough,
Brand-name decals go on.
Finally, a rubber grip goes over
The binding to prevent the
Player's hands from slipping.
The bat's two main components
Complement each other when
Striking the ball.
The willow-wood blade flexes
Enough to deliver a good hit,
And the cane handle absorbs that
Energy, protecting the player's
Hands.
When you return -- making the
Machines that make our change.
Narrator: change machines
Were invented in the mid-1950s
In response to the
Vending-machine boom.
They began as simple mechanical
Coin changers, converting a
Quarter into nickels and dimes.
Today's modern machines can even
Convert $20 bills.
Times sure have changed.
It's like magic.
In goes the bill, and presto,
Out comes the exact change.
But behind the scenes, there's
No slight of hand -- just
Innovative design and some
Pretty high-tech equipment.
Production begins with the
Machine's cabinet.
A computer-guided laser cuts the
Cabinet parts from a sheet of
Steel measuring 1 by 1/2 yards.
Workers shake the parts free and
Push out the openings in the
Panel that will become the
Cabinet's front door.
The parts are then shaped in a
Machine called the press break.
This is one of the door panels.
The machine forces it against
A die, bending the edge.
These bent edges will strengthen
The door and help it fit snugly
Into the frame.
The laser cutter also makes a
Series of holes in
another cabinet part.
Then workers press threaded
Studs into the holes.
A vibrating feeder automatically
Dispenses the studs into the
Insertion machine.
Now they bend the sheet, again
Using a press break, and make
The three-sided panel that will
Become the cabinet sides and
Back.
They attach the top and bottom
Panels.
Then they position the cabinet
On a computerized welding
Station and rotate the table.
A robot makes precision welds
Behind a steel partition that
Shields workers from heat and
Harmful rays.
Now they assemble the change
Machine's coin dispenser.
It has two counter-rotating
Discs fitted to the diameter and
Thickness of a coin.
They work together to seize and
Align the coins, then drop them
Into the coin chute.
Workers set in these metal
Discs, along with a plastic gear
Mechanism that rotates them.
Then they secure the parts on a
Fixture...
And drill holes into
the gear mechanism.
Roll pins are inserted to hold
The parts together.
Then workers make sure the coin
Discs spin freely.
The next task is to assemble the
Coin-dispenser discs and gears.
This is precision work.
First, they set the parts in a
Metal casing.
Plastic rings go around the
Discs to guide and support the
Gears.
Then they attach the gear-train
Motor which powers the
change-dispensing discs.
A plastic guide on the casing
Helps the coins drop in
Properly.
Next comes the coin chute that
Guides the change out of the
Dispenser and into the machine's
Coin cup.
The dispenser holds up to $800,
Which can weigh a hefty 45
Pounds,
so it needs a strong handle.
It's locked into place with this
Tool, called a ring fastener.
Now it's time to put the whole
Machine together.
First, an electric power supply
Is installed on the inside back
Wall.
Next comes the bill validator.
And the coin cup.
Then the coin dispenser and
Electronic control board, the
Brains of the machine that
Calculates the change.
Finally,
on go the instruction decals.
So, how do bills
transform into coins?
Let's open the door and see.
First, the bill acceptor scans
The bill's paper and ink, then
Stacks it in a box.
The processor calculates the
Transaction, then cha-ching,
Exact change.
Coming up... Turning iron and
Steel into the pipes that keep
Steel into the pipes that keep
our cities running.
Our cities running.
Narrator: chances are you use
Ductile-iron pipe every day and
Don't even know it.
The underground pipes that
Transport a city's drinking
Water are cast
from ductile iron.
So are the sewer pipes that take
Away household waist.
Ductile iron is more flexible
Than ordinary gray iron.
Under pressure, it will bend
Before it breaks.
Ductile-iron pipes are made of
Life-span of hundreds of years.
Production begins in the pipe
Factory's scrapyard.
These old cars are on their way
To a shredder that chews them up
Into little bits.
The factory sorts
the bits by material.
It discards the plastic, sells
The aluminum and copper, but
Keeps the steel and iron.
The factory also gets scrap
Steel from demolished buildings
And other sources.
The shredded metal is analyzed
By its chemical composition and
Sorted accordingly.
A crane operator uses an
Industrial magnet to gather
Precise amounts of steel and
Iron.
The shredded metals then go into
A blast furnace fueled by coke,
A form of coal.
At 2,500 degrees fahrenheit, the
Iron and steel liquefy, while
Impurities are carried away.
Workers then add magnesium.
This turns the metal from
Ordinary gray iron into
Stronger, more flexible ductile
Iron.
The molten iron travels down a
Trough into a casting machine.
It enters a spinning mold, where
Centrifugal force spreads the
Centrifugal force spreads the
iron against the mold walls.
Iron against the mold walls.
A cooling system chills the
Walls, and the iron solidifies
Within seconds.
Then an extractor pulls out a
Standard industry length.
Before each casting, workers
Insert a round form, called a
Core, into one end of the pipe
Mold.
The molten iron fills the void
Between the core and mold,
Forming a flared edge,
Called a bell.
The core also seals off that end
Of the mold, preventing molten
Iron from flying
out during casting.
When it's time to connect the
Pipes, installers will fit the
Bell of one pipe over the
Straight end of another.
A rubber gasket seals the link
Together.
The casting machine can make
Pipes of different diameters by
Changing the size of the mold
Inside.
After the pipe is extracted,
Inspectors weigh it and measure
The wall thickness to be sure
Everything meets specifications.
Then, on the bell end, they
Remove the core.
Since it's made of sand and
Plastic resin, it simply
Plastic resin, it simply
disintegrates.
Disintegrates.
This factory makes pipes in
Several diameters, but
Regardless of size, the casting
Process is always the same.
It just takes less time with
Smaller pipes because they
Harden faster.
A freshly cast pipe is around
Cools quickly after leaving the
Mold.
Such rapid cooling makes the
Iron brittle, so the pipe goes
Directly into a gas-fired
Annealing furnace that reheats
It to 1,700 degrees fahrenheit.
This alters the internal
Structure of the iron, making it
Strong and flexible.
The pipe then runs through a
Cooling chamber that showers it
In cold water.
To prevent the iron from
Corroding, the inside gets
Sprayed with cement, building up
A lining an eighth
of an inch thick.
Thick.
Then the pipe is spun for a few
Seconds to smooth
out the cement.
The entire pipe is painted
Inside and out.
This seals the surface, enabling
The cement to cure over the
Next 24 hours.
It also provides some extra rust
Protection.
Finally, a robot paints a stripe
Around the straight
end of each pipe.
This is a depth guideline so
Installation crews know when
They've inserted the straight
End of one pipe as far as it can
Go into the bell end of another.
If you have any comments about
The show, or if you'd like to
Suggest topics for future shows,
drop us at line at...
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