Showing posts with label Microwave radiation. Show all posts
Showing posts with label Microwave radiation. Show all posts

Monday, December 28, 2020

MICROWAVE OVENS - How Do Microwave Ovens Work? - These handy kitchen appliances are actually packed with interesting science and physics. Microwaves are a very useful cooking device. They're compact, tiny, but incredibly versatile machines – so how do they work? There's an incredible amount of science and engineering behind microwaves, but it can all be broken down into easy to understand and digest bits. Microwave ovens mainly function by generating microwave radiation - which is passed through the food, cooking it. Microwaves aren't specific to microwave ovens, rather they are a form of electromagnetic waves with a wavelength in the frequency range of between 300 MHz and 300 GHz (a wavelength of around 1 m and 1 mm). Microwave ovens generally use a frequency of 2450 MHz (a wavelength of 12.24 cm). When compared to other types of radiation, microwaves fall between radio waves, which tend to be longer, and infrared waves, which are shorter. What makes microwaves so specialized for cooking is just how they interact with water molecules. Inside microwave ovens, the microwaves are created using a device called a magnetron. At their core, magnetrons are high-voltage motors that output energy in the form of microwaves rather than mechanical work. Inside the microwave oven, a transformer steps up electricity from the wall socket, 120V in the US, or 110V in Europe, to around 4000 volts.

.................................................................................................................................................................................................................................................................................................................................................................................................

Microwave Ovens

How Do Microwave Ovens Work?

These handy kitchen appliances are actually packed with interesting science and physics.

By  Trevor English

Interesting Engineering

 

Microwaves are a very useful cooking device. They're compact, tiny, but incredibly versatile machines – so how do they work?

There's an incredible amount of science and engineering behind microwaves, but it can all be broken down into easy to understand and digest bits.

Microwave ovens mainly function by generating microwave radiation - which is passed through the food, cooking it.

Microwaves aren't specific to microwave ovens, rather they are a form of electromagnetic waves with a wavelength in the frequency range of between 300 MHz and 300 GHz (a wavelength of around 1 m and 1 mm).

Microwave ovens generally use a frequency of 2450 MHz (a wavelength of 12.24 cm).

When compared to other types of radiation, microwaves fall between radio waves, which tend to be longer, and infrared waves, which are shorter.

What makes microwaves so specialized for cooking is just how they interact with water molecules.

The science behind microwaves

Inside microwave ovens, the microwaves are created using a device called a magnetron.

At their core, magnetrons are high-voltage motors that output energy in the form of microwaves rather than mechanical work.

Inside the microwave oven, a transformer steps up electricity from the wall socket, 120V in the US, or 110V in Europe, to around 4000 volts.

This increased voltage is needed to power the magnetron, causing a filament to heat up at the core of the device.

As this filament heats up, electrons are released.

The microwave oven puts these electrons to work.

A circular magnet is located near the heated filament.

Normally, the electrons that are released by the filament would become attracted to the anode, but because of the positioning of the magnet, the electrons loop back to the filament itself.

This looping of electrons is what actually creates microwaves.

All of that may have sounded a little bit complex, and it can be when explained without diagrams.

For a deeper dive into the understanding of how magnetrons and, ultimately, microwaves work, take a look at the video below.

https://youtu.be/kp33ZprO0Ck

Are you safe to stand next to a microwave?

One popular myth about microwaves is that they can give you cancer.

This may stem from the use of the word 'radiation' in describing how they work, as well as a fear that this microwave radiation can leak out of the microwave.

Radiation, in this case, refers to energy that radiates from a source, and not to radioactivity.

However, microwaves do not contain enough energy to chemically change substances through ionization - they are an example of non-ionizing radiation.

Other types of electromagnetic waves such as ultraviolet and x-rays possess more energy per photon and thus can cause cancer.

Microwaves can, of course, cause heating and burns, but microwave ovens are all designed with a metal mesh on the door of the appliance to keep the microwaves from leaking out.

These metal meshes are large enough for you to see your food cooking, but the holes aren't large enough for the microwaves to slip through.

Microwave ovens also have built-in safety devices that do not allow the oven to work while the door is open.

So, at the end of the day, you won't get cancer from standing too close to a microwave because the rays aren't ionizing, and you won't get cooked either.

We've gotten through the basic science, but we still haven't covered why exactly microwaves work so well to heat food quickly.

How microwaves heat up water molecules

The microwaves used in a microwave oven are sent out through a type of antenna that channels them into the cooking area of the appliance.

The waves are contained inside of the appliance thanks to the solid metal walls (and mesh door).

These microwaves are then absorbed by the water molecules inside of the food.

The energy from the microwaves causes the water molecules to vibrate rapidly, which heats the food.

In essence, because water molecules easily absorb microwaves, which cause the molecules to start vibrating rapidly, this becomes a mechanism to turn microwave energy into thermal energy.

Just like a cam and roller is a mechanical device for converting rotational energy into linear motion, so too are the interactions of microwaves and water molecules a way of converting microwave energy into heat energy.

https://youtu.be/SlkLa9Ezt00

But why are just the water molecules vibrating?

Water molecules are polar, meaning they have a positively charged side and a negatively charged side.

Microwaves have a positive crest and a negative crest, just like any wave does.

As the microwaves move throughout the inside of the microwave oven, the water molecules will try to align their poles with that of the microwave.

Since microwaves move about rapidly inside of the appliance, the water molecules rapidly try to keep aligning themselves with the motion of the waves.

Just how fast is this happening?

Microwaves' positive and negative fields are moving at roughly 2.5 billion times per second.

When you combine this effect with the water molecule's reaction, you can start to realize how microwaves cook food so fast and effectively.

Why do microwaves cook unevenly?

The last question we need to answer is why there are often dead spots on the inside of microwave ovens.

For example, why is the center of your food often much colder than the edges?

This occurs because some of the microwaves end up canceling each other out.

Oftentimes, these places of cancelation are localized, meaning some areas of the microwave oven don't get any "heat".

In essence, when the peak  of one wave hits the valley of another wave, the result is a canceled-out wave. This is why most microwaves use a rotating dish in order to ensure even cooking.

So, that's how microwave ovens work.

They are appliances that use magnets to produce electromagnetic radiation at a particular wavelength, which is directed at water molecules  in food, causing them to vibrate and heat up rapidly.

Next time you cook something in a microwave, you won't look at it the same way.

Founded on the core mission of connecting likeminded engineers around the globe, Interesting Engineering is now a leading community with more than 15 million+ minds. Every day we share a new idea, a new thought, an upcoming technology OR an engineering breakthrough that will change the way you think about technology and engineering in today’s world and in the near future. Whether it’s a device that can charge your mobile in seconds or it’s the latest model of Boeing that has launched moments ago, we will bring everything up on your screen to view, to share and to grant you the power to comment. We believe that sharing information is the only way that can enrich and empower humans on this earth and we follow this as our core mission and responsibility. If you have got something that could entice the world, then Interesting Engineering is a perfect platform to show off your work to the outside world.

https://interestingengineering.com/how-do-microwave-ovens-work


You might also like:

 

Microwave Radiation Definition

CLICK HERE . . . to view . . . 

https://puricare.blogspot.com/2019/10/microwave-radiation-in-electromagnetic.html

...........................................................................................................................................................................................................................................................................................

Dangerous Wavelengths and Frequencies

CLICK HERE . . . to view . . . 

https://puricare.blogspot.com/2019/05/dangerous-wavelengths-and-frequencies.html

...........................................................................................................................................................................................................................................................................................

Radiation And Cancer

CLICK HERE . . . to view . . . 

https://puricarechronicles.blogspot.com/2017/12/radiation-and-cancer-every-dose-of.html

...........................................................................................................................................................................................................................................................................................

Radio Waves & Cell Phone Waves

CLICK HERE . . . to view . . . 

https://puricare.blogspot.com/2020/11/radio-waves-cell-phone-waves.html

...........................................................................................................................................................................................................................................................................................

Phone Towers And Cancer

CLICK HERE . . . to view . . . 

https://puricare.blogspot.com/2019/09/phone-towers-and-cancer-phone-towers.html

...........................................................................................................................................................................................................................................................................................

Cancer And WiFi

CLICK HERE . . . to view . . . 

https://puricare.blogspot.com/2019/01/wifi-and-cancer-gamma-rays-x-rays-or.html

 

Friday, October 25, 2019

MICROWAVE RADIATION - In the electromagnetic spectrum, microwaves fall between infrared radiation and radio waves. Microwaves only travel line-of-sight, typically limited to 30-40 miles on the Earth's surface. Another important property of microwave radiation is that it's absorbed by moisture, a phenomenon called rain fade. Microwaves are used primarily for communications. They are also used for radar for weather tracking, radar speed guns, and air traffic control. Microwaves are used to transmit thermal energy to heat food and other materials. Cosmic microwave background radiation is a natural source of microwaves. Stars, including the Sun, are natural microwave sources. Man-made sources of microwaves include microwave ovens, masers, circuits, communication transmission towers, and radar.

Communications tower
......................................................................................................................................................
Microwave Radiation Definition
by Anne Marie Helmenstine, Ph.D. 


Microwave radiation is a type of electromagnetic radiation.
The prefix "micro-" in microwaves doesn't mean microwaves have micrometer wavelengths, but rather that microwaves have very small wavelengths compared with traditional radio waves (1 mm to 100,000 km wavelengths).
In the electromagnetic spectrum, microwaves fall between infrared radiation and radio waves.
Frequencies
Microwave radiation has a frequency between 300 MHz and 300 GHz (1 GHz to 100 GHz in radio engineering) or a wavelength ranging from 0.1 cm to 100 cm.
The range includes the SHF (super high frequency), UHF (ultra high frequency) and EHF (extremely high frequency or millimeter waves) radio bands.
While lower frequency radio waves can follow the contours of the Earth and bounce off layers in the atmosphere, microwaves only travel line-of-sight, typically limited to 30-40 miles on the Earth's surface.
Another important property of microwave radiation is that it's absorbed by moisture. A phenomenon called rain fade occurs at the high end of the microwave band.
Past 100 GHz, other gases in the atmosphere absorb the energy, making air opaque in the microwave range, although transparent in the visible and infrared region.
Band Designations
Because microwave radiation encompasses such a broad wavelength/frequency range, it is subdivided into IEEE, NATO, EU or other radar band designations:

Band Designation
Frequency
Wavelength
Uses
L band
1 to 2 GHz
15 to 30 cm
amateur radio, mobile phones, GPS, telemetry
S band
2 to 4 GHz
7.5 to 15 cm
radio astronomy, weather radar, microwave ovens, Bluetooth, some communication satellites, amateur radio, cell phones
C band
4 to 8 GHz
3.75 to 7.5 cm
long-distance radio
X band
8 to 12 GHz
25 to 37.5 mm
satellite communications, terrestrial broadband, space communications, amateur radio, spectroscopy
Ku band
12 to 18 GHz
16.7 to 25 mm
satellite communications, spectroscopy
K band
18 to 26.5 GHz
11.3 to 16.7 mm
satellite communications, spectroscopy, automotive radar, astronomy
Ka band
26.5 to 40 GHz
5.0 to 11.3 mm
satellite communications, spectroscopy
Q band
33 to 50 GHz
6.0 to 9.0 mm
automotive radar, molecular rotational spectroscopy, terrestrial microwave communication, radio astronomy, satellite communications
U band
40 to 60 GHz
5.0 to 7.5 mm
V band
50 to 75 GHz
4.0 to 6.0 mm
molecular rotational spectroscopy, millimeter wave research
W band
75 to 100 GHz
2.7 to 4.0 mm
radar targeting and tracking, automotive radar, satellite communication
F band
90 to 140 GHz
2.1 to 3.3 mm
SHF, radio astronomy, most radars, satellite tv, wireless LAN
D band
110 to 170 GHz
1.8 to 2.7 mm
EHF, microwave relays, energy weapons, millimeter wave scanners, remote sensing, amateur radio, radio astronomy
Uses
Microwaves are used primarily for communications, include analog and digital voice, data, and video transmissions.
They are also used for radar (RAdio Detection and Ranging) for weather tracking, radar speed guns, and air traffic control. 
Radio telescopes use large dish antennas to determine distances, map surfaces, and study radio signatures from planets, nebulas, stars, and galaxies.
Microwaves are used to transmit thermal energy to heat food and other materials.
Sources
Cosmic microwave background radiation is a natural source of microwaves. The radiation is studied to help scientists understand the Big Bang.
Stars, including the Sun, are natural microwave sources.
Under the right conditions, atoms and molecules can emit microwaves.
Man-made sources of microwaves include microwave ovens, masers, circuits, communication transmission towers, and radar.
Either solid state devices or special vacuum tubes may be used to produce microwaves.
Examples of solid-state devices include masers (essentially lasers where the light is in the microwave range), Gunn diodes, field-effect transistors, and IMPATT diodes.
The vacuum tube generators use electromagnetic fields to direct electrons in a density-modulated mode, where groups of electrons pass through the device rather than a stream. These devices include the klystron, gyrotron, and magnetron.
Health Effects
Microwave radiation is called "radiation" because it radiates outward and not because it's either radioactive or ionizing in nature.
Low levels of microwave radiation are not known to produce adverse health effects. However, some studies indicate long-term exposure may act as a carcinogen.
Microwave exposure can cause cataracts, as dielectric heating denatures proteins in the eye's lens, turning it milky.
While all tissues are susceptible to heating, the eye is particularly vulnerable because it doesn't have blood vessels to modulate temperature.
Microwave radiation is associated with the microwave auditory effect, in which microwave exposure produces buzzing sounds and clicks. This is caused by thermal expansion within the inner ear.
Microwave burns can occur in deeper tissue — not just on the surface — because microwaves are more readily absorbed by tissue that contains a lot of water.
However, lower levels of exposure produce heat without burns. This effect may be used for a variety of purposes.
The United States military uses millimeter waves to repel targeted persons with uncomfortable heat.
As another example, in 1955, James Lovelock reanimated frozen rats using microwave diathermy. 

Anne Marie Helmenstine, Ph.D.
Introduction
Ph.D. in biomedical sciences from the University of Tennessee at Knoxville - Oak Ridge National Laboratory.
Science educator with experience teaching chemistry, biology, astronomy, and physics at the high school, college, and graduate levels.
ThoughtCo and About Education chemistry expert since 2001.
Widely-published graphic artist, responsible for printable periodic tables and other illustrations used in science.
Experience
Anne Helmenstine, Ph.D. has covered chemistry for ThoughtCo and About Education since 2001, and other sciences since 2013. She taught chemistry, biology, astronomy, and physics at the high school, college, and graduate levels. She has worked as a research scientist and also abstracting and indexing diverse scientific literature for the Department of Energy.
In addition to her work as a science writer, Dr. Helmenstine currently serves as a scientific consultant, specializing in problems requiring an interdisciplinary approach. Previously, she worked as a research scientist and college professor. 
Education
Dr. Helmenstine holds a Ph.D. in biomedical sciences from the University of Tennessee at Knoxville and a B.A. in physics and mathematics with a minor in chemistry from Hastings College. In her doctoral work, Dr. Helmenstine developed ultra-sensitive chemical detection and medical diagnostic tests.
ThoughtCo and Dotdash
ThoughtCo is a premier reference site focusing on expert-created education content. We are one of the top-10 information sites in the world as rated by comScore, a leading Internet measurement company. Every month, more than 13 million readers seek answers to their questions on ThoughtCo.
For more than 20 years, Dotdash brands have been helping people find answers, solve problems, and get inspired. We are one of the top-20 largest content publishers on the Internet according to comScore, and reach more than 30% of the U.S. population monthly. Our brands collectively have won more than 20 industry awards in the last year alone, and recently Dotdash was named Publisher of the Year by Digiday, a leading industry publication.
Communications tower