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Why can't you put metal in a mic… — TED-Ed luyện shadowing | TryShadowing
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TED-Ed
Why can't you put metal in a microwave? - Aaron Slepkov
Why can't you put metal in a microwave? - Aaron Slepkov
TED-Ed
·
5:49 · 15 thg 2, 2024
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American engineer Percy Spencer developed World War II RADAR technology
0:12
that helped detect Nazi airplanes—
0:15
but it would soon have other surprising applications.
0:19
One day in 1945, Spencer was standing near a RADAR instrument called a magnetron,
0:25
a device that produced high-intensity microwaves that could reflect off planes.
0:31
Suddenly, he noticed that the candy bar in his pocket had melted.
0:36
He exposed other things to the magnetron and, sure enough, popcorn kernels popped,
0:41
and an egg—well— exploded onto a colleague.
0:45
Soon after, the first microwave oven became available, operating using the very same technology.
0:52
So, how does it work?
0:54
All light energy travels in waves of oscillating electric and magnetic fields.
1:00
These oscillations span a range of frequencies comprising the electromagnetic spectrum.
1:06
The higher the frequency, the more energetic.
1:09
Gamma rays and X-rays have the highest frequencies; microwaves and radio waves,
1:15
the lowest.
1:16
Generally, light’s oscillating electric field exerts forces on charged particles,
1:21
like the electrons in a molecule.
1:23
When light encounters polar molecules, like water, it can make them rotate,
1:29
as their positive and negative regions are pushed and pulled in different directions.
1:34
The frequency the light is traveling at also determines how it interacts with matter.
1:40
Microwaves interact strongly with the water molecules found in most foods.
1:45
Essentially, they make the molecules jostle against each other, creating frictional heat.
1:52
Household microwave ovens are fitted with cavity magnetrons.
1:56
When you activate a microwave oven, a heated element within the magnetron ejects electrons,
2:02
and a strong magnet forces them to spiral outwards.
2:06
As they pass over the magnetron’s metallic cavities,
2:09
the electrons induce an oscillating charge, generating a continuous stream of electromagnetic microwaves.
2:17
A metal pipe directs the microwaves into the main food compartment,
2:21
where they bounce off the metal walls
2:23
and penetrate a few centimeters into the food inside.
2:28
When the microwaves encounter polar molecules in the food, like water,
2:32
they make them vibrate at high frequencies.
2:36
This can have interesting effects depending on the food's composition.
2:41
Oil and sugar absorb fewer microwaves than water, so if you microwave them alone,
2:47
not much happens.
2:49
But when microwaves encounter a marshmallow,
2:52
they heat the moisture trapped within its gelatin-sugar matrix,
2:56
making the hot air expand and the marshmallow puff.
3:00
Butter is essentially a suspension of water droplets in fat.
3:05
When microwaved, the water rapidly vaporizes, making the butter melt quickly— and sometimes,
3:11
a bit violently.
3:13
So microwaves heat food molecules mechanically, through friction— but they don't alter them chemically.
3:20
Soup heated in the microwave is molecularly indistinguishable from soup heated using a stove
3:25
or oven.
3:26
The term “microwave radiation” can be alarming.
3:30
But in physics, radiation simply describes any transfer of energy across a gap.
3:36
High frequency, ionizing radiation may be harmful because it can strip electrons from molecules,
3:43
including DNA.
3:45
However, microwaves aren’t energetic enough to alter chemical bonds.
3:50
And microwave ovens are designed to prevent leakage— for safety and efficiency’s sake.
3:56
Nonetheless, to totally limit exposure,
3:59
experts recommend simply standing a few feet away when a microwave oven is on.
4:05
Microwaving metal is dangerous, though, right?
4:10
Well, it depends.
4:11
Metals are conductors, meaning their electrons are loosely bound to their atoms
4:16
and move freely in response to electric fields.
4:19
Instead of absorbing microwave radiation, the metal’s electrons concentrate on the surface,
4:25
leading to high voltages at sharp edges, corners, and small gaps.
4:29
This includes areas between the creases on a sheet of aluminum foil,
4:33
the prongs of a fork,
4:35
or a metal object and the microwave oven’s metal walls.
4:39
Sometimes, voltages get high enough to strip electrons from the surrounding air molecules.
4:45
This electrically charged gas, or plasma,
4:48
may then form lightning-like sparks and grow as it absorbs more microwaves.
4:53
Once the oven is turned off, the plasma dissipates.
4:58
But not all metal objects spark in the microwave—
5:01
though they might make things cook a little unevenly.
5:04
In fact, a lot of microwavable packaging takes advantage of this,
5:09
using a thin metal coating to crisp the food’s surface.
5:13
And overall, as long as it doesn't approach the oven's walls,
5:16
leaving a metal spoon in a microwaving bowl of soup should be a pretty
5:20
uneventful affair.
5:22
That’s just another neat benefit of cooking with RADAR.
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