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Microwave

physical science Maturity 9-11

Microwaves are waves of energy.

Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG
They help us cook food. They also help us talk on phones. We use them for many things. Can you find a microwave in your home?
Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg

42 words

Microwaves are tiny waves of energy.

Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG
They are smaller than regular radio waves. These waves help us do many things.
Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg
They can cook our food. They also help us talk on phones.

Microwaves travel in a straight line. They cannot go around hills. They also cannot bounce off the sky. This means they must see where they are going.

Sometimes, the air can stop them. Water in the air can soak up the waves. This can make the signal weak.

We use big dishes to catch them.

SuperDISH121.jpg
SuperDISH121.jpg
These dishes help send signals to space. They help us talk to satellites.

Microwaves are all around us. They help our world work every day.

124 words

Microwaves are a type of wave. They are part of the electromagnetic spectrum.

Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
This is a big group of waves. Microwaves are smaller than radio waves. But they are longer than infrared light.
Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG
Their size can range from one meter down to one millimeter.

These waves travel in a straight line. They move from one point to another. This is called line-of-sight. They do not go around hills. They also do not bounce off the sky. Because of this, they can only travel as far as you can see.

Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg

Sometimes, the air stops them. Gases in the air can soak up the waves. This is called absorption. Moisture in the air can also cause rain fade. This makes the signal weak.

SuperDISH121.jpg
SuperDISH121.jpg
We use large dish antennas to catch them. These dishes help us talk to satellites in space. Microwaves also help us cook food and use cell phones. They even help with radar to see objects.

175 words

Microwaves are a special kind of energy. They are part of the electromagnetic spectrum. This is a big family of waves. Microwaves sit between radio waves and infrared light.

Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Their waves are shorter than radio waves. They are longer than infrared waves. The length of these waves is quite small. They range from one meter down to one millimeter. This small size is why we call them "micro" waves.
Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG

These waves work in a very specific way. They travel in a straight line. Scientists call this line-of-sight. This means they move where they can see. Unlike radio waves, they do not bend around hills. They also do not bounce off the sky. This makes it hard to send them over long distances. They are limited by the visual horizon of the Earth.

Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg
If there is a mountain in the way, the signal stops. This is why we use towers to help.

People have used these waves for many years. A famous system of naming waves started in World War 2. It was a top-secret way for the U.S. to label radar. This became the IEEE radar band system. It uses letters like S, C, X, Ku, and Ka.

LNB dissassembled.JPG
LNB dissassembled.JPG
These letters help engineers know which frequency to use. During the war, scientists also learned about the air. They found that water vapor can soak up waves. This is why they split the K band into Ku and Ka. This helped avoid problems with the atmosphere.

There are many important facts about microwave bands. The S band goes from 2 to 4 GHz. It is used for things like Bluetooth and Wi-Fi. The X band goes from 8 to 12 GHz. It is great for satellite and space communication.

SuperDISH121.jpg
SuperDISH121.jpg
Some waves are very high, like the W band. It goes from 75 to 110 GHz. These waves can be absorbed by gases in the air. At high frequencies, the air becomes opaque. This means the waves cannot pass through easily. This happens at about 40 GHz or higher.

You probably use microwaves every single day. They are in your kitchen to cook food. A magnetron is a part that makes these waves.

Radar speed gun internal works.jpg
Radar speed gun internal works.jpg
They are also in your cell phone. Small antennas in your phone catch these signals. They help you talk to friends wirelessly. Microwaves also help cars avoid hitting things. They even help doctors treat certain types of cancer.
ASR-9 Radar Antenna.jpg
ASR-9 Radar Antenna.jpg
It is amazing how much these tiny waves do.

436 words

Microwaves are a specific form of electromagnetic radiation. They occupy a unique place within the electromagnetic spectrum. This spectrum includes everything from long radio waves to short gamma rays. Microwaves sit between ordinary radio waves and infrared light.

Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Their wavelengths are shorter than radio waves but longer than infrared waves. Typically, their wavelengths range from about one meter to one millimeter. This corresponds to frequencies between 300 MHz and 300 GHz. Because these waves are so small, the name "microwave" was chosen to indicate their size compared to earlier radio technology.

Understanding how microwaves move is essential for engineering. Unlike lower frequency radio waves, microwaves travel via line-of-sight paths. They do not diffract, which means they cannot bend around hills or obstacles. They also do not follow the Earth's surface as ground waves. Furthermore, they do not reflect off the ionosphere like skywaves do.

Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg
This means terrestrial communication links are limited by the visual horizon. On the Earth's surface, the range is limited to about 40 kilometers. At the highest frequencies, the atmosphere itself interferes with the signal. Gases in the air absorb the energy, which limits practical distances to around one kilometer.

Engineers categorize microwave frequencies into specific bands. These designations often use letters to identify different ranges. One common system is the IEEE radar band designations. These include the S, C, X, Ku, K, and Ka bands. Another system used by the Radio Society of Great Britain (RSGB) provides even more detail. For example, the S band ranges from 2 to 4 GHz. This band is used for weather radar, Bluetooth, and Wi-Fi. The X band ranges from 8 to 12 GHz and is used for satellite communications. The Ku band covers 12 to 18 GHz, while the Ka band spans 26.5 to 40 GHz. These specific bands allow different technologies to work without interfering with one another.

History shows how our understanding of these bands has evolved. During World War 2, the U.S. used a top-secret classification system for radar bands. This became the foundation for the modern letter-based system. Scientists also discovered a problem while developing radar at the K band. They realized that water vapor and oxygen in the atmosphere absorb certain frequencies. To solve this, they split the original K band into two parts. They created the lower Ku band and the upper Ka band to avoid these atmospheric absorption issues.

Microwaves are used in a vast array of modern technologies. In your kitchen, a device called a magnetron generates waves to cook food.

Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG
In the world of telecommunications, they power satellite and spacecraft communication.
SuperDISH121.jpg
SuperDISH121.jpg
They are also vital for radar systems and wireless networks. Even medical science uses them for diathermy and cancer treatment. You might also encounter them in small consumer electronics. Garage door openers and keyless entry systems rely on these waves to function. They are even used in particle accelerators and radio astronomy to study the universe.

Because of their short wavelengths, microwave antennas can be very small. This is why your cell phone can have a tiny antenna inside it.

Radar speed gun internal works.jpg
Radar speed gun internal works.jpg
Portable devices often use small antennas like whip antennas or patch antennas. However, for long-distance communication, larger antennas are required. Parabolic "dish" antennas are the most common type used for directing beams.
ASR-9 Radar Antenna.jpg
ASR-9 Radar Antenna.jpg
These dishes can create narrow beams. Narrow beams are helpful because they do not interfere with nearby equipment. This allows engineers to reuse the same frequency in different locations.

Moving microwaves requires specialized hardware. At low frequencies, engineers use coaxial cables. However, at microwave frequencies, these cables lose too much power. Instead, engineers use metal pipes called waveguides to carry the signals.

Diplexer1.jpg
Diplexer1.jpg
In some high-frequency applications, the atmosphere becomes almost opaque. Above 100 GHz, the absorption by the atmosphere is so strong that signals cannot pass easily. This makes microwave technology a precise tool that must be carefully managed based on the environment and the specific frequency being used.

682 words
🖼️ Images & Media (10)
File:Frazier Peak, tower and Honda Element.jpg
Frazier Peak, tower and Honda Element.jpg
File:Atmospheric Microwave Transmittance at Mauna Kea (simulated).svg
Atmospheric Microwave Transmittance at...
File:Diplexer1.jpg
Diplexer1.jpg
File:Radar speed gun internal works.jpg
Radar speed gun internal works.jpg
File:SuperDISH121.jpg
SuperDISH121.jpg
File:ASR-9 Radar Antenna.jpg
ASR-9 Radar Antenna.jpg
File:Electrodomésticos de línea blanca 18.JPG
Electrodomésticos de línea blanca 18.JPG
File:Microwave tunnel closeup.jpg
Microwave tunnel closeup.jpg
File:Ondamtr.JPG
Ondamtr.JPG
File:LNB dissassembled.JPG
LNB dissassembled.JPG
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