The Electromagnetic Spectrum

Slides:



Advertisements
Similar presentations
Bellringer What is the relationship between an object and the sound waves it creates during a sonic boom?
Advertisements

Electromagnetic Waves & the Electromagnetic Spectrum
How does a Beam of Light Travel?
ELECTROMAGNETIC SPECTRUM
Electromagnetic Waves
Chapters 17 & 18 The Electromagnetic Spectrum
The Electromagnetic Spectrum
ELECTROMAGNETIC WAVES
Waves of the Electromagnetic Spectrum Magnetic Field Electric Field Producing EM waves Electric field causes magnetic field to vibrate and magnetic field.
Which day has the MOST sunlight in the United States?
The Electromagnetic Spectrum (EMS). Electromagnetic Wave An electromagnetic wave is a transverse wave that carries electrical and magnetic energy. The.
ELECTROMAGNETIC SPECTRUM.  Water and sound waves transfer energy from one place to another- they require a medium through which to travel. They are mechanical.
In pg 38 Fusion review Create a double bubble map comparing and contrasting fission and fusion Nuclear Fission Fusion.
Section 2: Waves of the Electromagnetic Spectrum Objectives: list and compare different types of electromagnetic waves describe how the electromagnetic.
Chapter 9: Waves and Light. Lesson 1: Waves of the Electromagnetic Spectrum Key Questions: – 1. How does the Sun’s energy arrive on Earth? – 2. How do.
Chapter 3: The Electromagnetic Spectrum
Chapter 12 Sections 1 & 2. Electric and Magnetic Fields  An electric charge is surrounded by an electric field  A moving electric charge produces a.
The Electromagnetic Spectrum. Electromagnetic Spectrum—name for the range of electromagnetic waves when placed in order of increasing frequency RADIO.
Waves we can’t see…. EM Spectrum The electromagnetic spectrum is the entire range of EM waves. It is divided into regions according to the length of the.
Electromagnetic Waves & the Electromagnetic Spectrum electromagnetic spectrum power point.
Ch. 17 ELECTROMAGNETIC SPECTRUM Electromagnetic waves  Are made of changing electric and magnetic fields  EM waves DO NOT need a medium to travel 
Electromagnetic Waves & the Electromagnetic Spectrum.
Electromagnetic Waves & the Electromagnetic Spectrum.
Chapter 12 Sections 1 & 2. Warm Up: How is an electromagnetic wave created? How is an electromagnetic wave different from a mechanical wave?
Electromagnetic Spectrum and Light
Electromagnetic Waves
The Electromagnetic Spectrum
Infrared radiation C. X-rays Gamma Rays D. UV Rays
Electromagnetic Spectrum:
Electromagnetic Radiation (Light).
ELECTROMAGNETIC SPECTRUM
Electromagnetic Waves and the EM Spectrum
Electromagnetic Waves
The Electromagnetic Spectrum
9.1 Waves of the Electromagnetic Spectrum
The Electromagnetic Spectrum
Introduction to light and the electromagnetic spectrum
The Electromagnetic Spectrum
Chapter 3– Electromagnetic Waves
Characteristics of EM Waves
Electromagnetic Waves
The Electromagnetic Spectrum
The Electromagnetic Spectrum
Electromagnetic Waves
ELECTROMAGNETIC WAVES AND LIGHT
The Electromagnetic Spectrum
The Electromagnetic Spectrum
Warm up 9/14/ What is the difference between rotation and revolution? 2.What are Kepler’s Three Laws of Planetary Motion and why are they important?
I. Electromagnetic Radiation
Electromagnetic Waves
The Electromagnetic Spectrum
ELECTROMAGNETIC SPECTRUM
Electromagnetic Waves & the Electromagnetic Spectrum
Electromagnetic Waves & the Electromagnetic Spectrum
CHAPTER 9: WAVES & LIGHT (& Sound)
I. Electromagnetic Radiation EM EM Radiation
The Electromagnetic Spectrum
Chapter 17, Section 1 and 2: Nature of Electromagnetic Waves
The Electromagnetic Spectrum
Electromagnetic Waves
The Electromagnetic Spectrum
The Electromagnetic Spectrum
The Electromagnetic Spectrum
The Electromagnetic Spectrum
Electromagnetic Waves & the Electromagnetic Spectrum
Chapter 3 The Electromagnetic Spectrum
Electromagnetic Spectrum
ELECTROMAGNETIC SPECTRUM
Electromagnetic Waves
Presentation transcript:

The Electromagnetic Spectrum Presentation for lesson 4: Exploring the Electromagnetic Spectrum, in the Waves: The Three Color Mystery unit The slides are animated so you can click (space bar, mouse, etc.) to show the next item when the class is ready. The Electromagnetic Spectrum

Electromagnetic Waves A transverse wave that transfers electrical and magnetic energy.

Both Electric and Magnetic These types of waves are produced by charged particles . Because it is charged it produces the electric field and when charged particles move they produce a magnetic field.

Things to know…. EM waves do not require media in which to travel or move. The energy that is transferred through space by electromagnetic waves is called Electromagnetic Radiation. All EM waves travel at the same speed. 3.0 x 108 m/s or 186,000 miles/sec. A photon is a packet of light energy. The Photoelectric Effect occurs when light shines on a substance and causes electrons to move and be knocked out of the substance. Play an interactive tutorial to explore the classical representation of an electromagnetic wave as a sine function; you can vary amplitude and wavelength to demonstrate how this function appears in three dimensions. (requires java plug-in) See: http://micro.magnet.fsu.edu/primer/java/electromagnetic/index.html

Animations Photoelectric effect photon http://cleanvideosearch.com/media/action/yt/watch?videoId=2PtsEWcDyms http://cleanvideosearch.com/media/action/yt/watch?videoId=1LmcUaWuYao

The Electromagnetic Spectrum The EM spectrum is the ENTIRE range of EM waves in order of increasing frequency and decreasing wavelength. As you go from left  right, the wavelengths get smaller and the frequencies get higher. This is an inverse relationship between wave size and frequency. (As one goes up, the other goes down.) This is because the speed of ALL EM waves is the speed of light (300,000 km/s).

The Waves (in order…) Radio waves: Have the longest wavelengths and the lowest frequencies; wavelengths range from 1000s of meters to .001 m Used in: RADAR, cooking food, satellite transmissions

Infrared waves (heat): Have a shorter wavelength, from Infrared waves (heat): Have a shorter wavelength, from .001 m to 700 nm, and therefore, a higher frequency. Used for finding people in the dark and in TV remote control devices Visible light: Wavelengths range from 700 nm (red light) to 30 nm (violet light) with frequencies higher than infrared waves. These are the waves in the EM spectrum that humans can see. Visible light waves are a very small part of the EM spectrum!

Visible Light Remembering the Order ROY G. BV red orange yellow green blue violet Light from the sun looks white, but it is really made up of all the colors of the rainbow. A prism is a specially shaped crystal. When white light shines through a prism, the light is separated into all its colors.

Ultraviolet Light: Wavelengths range from 400 nm to 10 nm; the frequency (and therefore the energy) is high enough with UV rays to penetrate living cells and cause them damage. Although we cannot see UV light, bees, bats, butterflies, some small rodents and birds can. UV on our skin produces vitamin D in our bodies. Too much UV can lead to sunburn and skin cancer. UV rays are easily blocked by clothing. Used for sterilization because they kill bacteria.

X-Rays: Wavelengths from 10 nm to. 001 nm X-Rays: Wavelengths from 10 nm to .001 nm. These rays have enough energy to penetrate deep into tissues and cause damage to cells; are stopped by dense materials, such as bone. Used to look at solid structures, such as bones and bridges (for cracks), and for treatment of cancer.

Gamma Rays: Carry the most energy and have the shortest wavelengths, less than one trillionth of a meter (10-12). Gamma rays have enough energy to go through most materials easily; you would need a 3-4 ft thick concrete wall to stop them! Gamma rays are released by nuclear reactions in nuclear power plants, by nuclear bombs, and by naturally occurring elements on Earth. Sometimes used in the treatment of cancers.

Gamma Rays This picture is a “scintigram”  It shows an asthmatic person’s lungs. The patient was given a slightly radioactive gas to breath, and the picture was taken using a gamma camera to detect the radiation. The colors show the air flow in the lungs.

Image Sources Micro Worlds, Lawrence Berkeley National Laboratory. http://www.lbl.gov/MicroWorlds/ALSTool/EMSpec/EMSpec2.html 2004 Microsoft Corporation, One Microsoft Way, Redmond, WA 98052-6399 USA. NASA http://science-edu.larc.nasa.gov/EDDOCS/Wavelengths_for_Colors.html NASA http://spaceplace.nasa.gov/blue-sky/ NASA http://missionscience.nasa.gov/ems/11_xrays.html Andy Darvill, Broadoak Community School, Radioactivity Uses http://www.northallertoncoll.org.uk/science/Additional%20Physics/Nuclear/Nuclear/Radioactivity/uses.htm