Philip Canlas Fall 2009. Infrared Camera  Infrared Camera’s used in many application, most are used thermal sensing.  Most common Infrared Camera is.

Slides:



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

The Electromagnetic Spectrum

Light and the Electromagnetic Spectrum
Flame Test and the EMS. Absorption and Emission of Light in a Flame When a substance is heated in a flame, the substances electrons absorb energy from.
Thermal radiation Any object that is hot gives off light known as Thermal Radiation.  The hotter an object is, the more light it emits.  As the temperature.
Electromagnetic Waves Spectrum Foldable
Colors – part 1 K1066BI – Graphical Design Teppo Räisänen
ELECTROMAGNETIC WAVES
Astronomy 1 – Winter 2011 Lecture 7; January
1 Perception. 2 “The consciousness or awareness of objects or other data through the medium of the senses.”
Matt Bretoi FLIR Systems, Inc. Security & Surveillance Solutions PH: (941) Applying Thermal Imaging: Python Detection Meeting.
Electricity, Sound and Light Chapter Ten: Light and Color 10.1 Properties of Light 10.2 Color and Vision 10.3 Optics.
17.2 Waves of the electromagnetic Spectrum
Exploring Color Vision with LED’s Mort Sternheim, Rob Snyder, Chris Emery March, 2014.
Warm Up #1 Copper chloride turned the fire a bluish green. Blue-Green has a wavelength of 492 nm. Calculate this amount in meters. What are ALL the major.
Thermal imaging and SMS alert for farmers Ninad Mehendale.
Spectral contrast enhancement
Chapter 3 Astronomy TEST REVIEW. WHAT ARE ALL THE FORMS OF ENERGY THAT COME FROM THE SUN? Radio waves Microwaves Infrared Rays (Heat) Visible light Ultraviolet.
Electromagnetic Spectrum
Waves of the Electromagnetic Spectrum Magnetic Field Electric Field Producing EM waves Electric field causes magnetic field to vibrate and magnetic field.
The Electromagnetic Spectrum . Electromagnetic Waves Waves that are able to travel without a medium They consist of changing electric and magnetic fields.
 Radiation emitted by hot objects is called thermal radiation.  Recall that the total radiation power emitted is proportional to T 4, where T is the.
The Electromagnetic Spectrum (EMS). Electromagnetic Wave An electromagnetic wave is a transverse wave that carries electrical and magnetic energy. The.
Light and Color. What is Light? A wave of Electromagnetic Radiation Light behaves just like any other wave Reflects, interferes, oscillates with a certain.
Blackbody Radiation And Spectra. Light is a form of _______. Why is this important? With very few exceptions, the only way we have to study objects in.
Light Chapter 16.
Electromagnetic Spectrum ColorOptic Tools The Human Eye Grab Bag
Electromagnetic Waves. Wave Types Electromagnetic waves are transverse waves Can travel through empty space We use 300,000 km/s for the velocity.
Guilford County SciVis V Applying Pixel Values to Digital Images.
Color in image and video Mr.Nael Aburas. outline  Color Science  Color Models in Images  Color Models in Video.
WHAT DO WE KNOW ABOUT LIGHT?. What is Light? Light is a wave that we can see. –Light can carry heat and warmth. –Light has color. –Light can be bright.
10/23/2015 GEM Lecture 4 Content Electromagnetic wave.
ELECTROMAGENTIC RADIATION. ELECTROMAGNETIC RADIATION IS A FORM OF ENERGY. IT CAN BEHAVE AS PARTICLES OR WAVES. SOMETIMES, WE USE THE TERM “LIGHT” WHEN.
5-1 How we measure the speed of light 5-2 How we know that light is an electromagnetic wave 5-3 How an object’s temperature is related to the radiation.
The Electromagnetic Spectrum A continuous range of oscillating electric and magnetic waves. The energy in an electromagnetic wave increases as the frequency.
The History of the Electron When we last left the atom, this is how it looked.
 Peak  Trough  Amplitude  Wavelength ( ) (in meters)  Frequency measured in Hertz: (Hz): cycles per second.
Section 2: Electrons in the Atom. Review (NOT ON NOTES)  Atoms are the basic units of matter  Nucleus (center of atom) made up of protons and neutrons.
Electromagnetic Spectrum. Different Types of Light  Light is a form of energy  It travels in waves  Also called Electromagnetic Radiation  Some Electromagnetic.
Brain pop.
Section 2: Waves of the Electromagnetic Spectrum Objectives: list and compare different types of electromagnetic waves describe how the electromagnetic.
Chapter 3: The Electromagnetic Spectrum
Energy Kinetic Energy Potential Energy.
And the seven waves in the electromagnetic spectrum. By: Caleb Goforth.
The Electromagnetic Spectrum
Applying Pixel Values to Digital Images
Electromagnetic Spectrum
Nature of Light Waves Unit.
2 pt 3 pt 4 pt 5pt 1 pt 2 pt 3 pt 4 pt 5 pt 1 pt 2pt 3 pt 4pt 5 pt 1pt 2pt 3 pt 4 pt 5 pt 1 pt 2 pt 3 pt 4pt 5 pt 1pt Nature of Light Electromagnetic Spectrum.
THERMOGRAPHY Presented By: Nagaraj S Patil. Contents Introduction What it is? Where it is used? What makes it useful? Principle Application Advantages.
Sound waves transfer energy through vibrations. Sound Produced by vibrations Mechanical waves Vibrate particles Medium affects sound waves. (p. 42) Temperature.
Ch. 17 ELECTROMAGNETIC SPECTRUM Electromagnetic waves  Are made of changing electric and magnetic fields  EM waves DO NOT need a medium to travel 
Types of Electromagnetic Radiation and Law of Reflection Chapter 18:2 And Chapter 19.1 page 570.
Lab (9): Measurement of colors Spectrophotometry Analytical biochemistry lab KAU-Biochemistry dep. Nouf Alshareef
M. Manser (2014). Module P1:  Cooking with infrared and with microwaves (comparing) *[6 mark question] M. Manser Sackville School.
The Study of Light. The Electromagnetic Spectrum  includes gamma rays, X-rays, ultraviolet light, visible light, infrared radiation, microwaves, and.
The Electromagnetic Spectrum Scripps Classroom Connection
The Study of Light.
Cool, invisible galactic gas (60 K, f peak in low radio frequencies) Dim, young star (600K, f peak in infrared) The Sun’s surface (6000K, f peak in visible)
Unit 3.  Much of the information we get in astronomy is carried by “light”.
Light.
Waves (2) S3 Physics
Aerial Images.
The Electromagnetic Spectrum
Principles of Heat and Radiation
How Could You Measure IR Directly On Buildings?
CHAPTER 7: Waves, Sound, Light
Electromagnetic Radiation
1pt 1 pt 1 pt 1pt 1 pt 2 pt 2 pt 2pt 2pt 2 pt 3 pt 3 pt 3 pt 3 pt 3 pt
Presentation transcript:

Philip Canlas Fall 2009

Infrared Camera  Infrared Camera’s used in many application, most are used thermal sensing.  Most common Infrared Camera is the Forward Looking Infrared or FLIR.  Applications: Military, Civilian, Hobby, Science.

Infrared Camera  Applications infrared sensing *NASA, Google imagery

Infrared Camera  Applications of an Infrared Camera IR Filter AppliedRegular Camera Lens *

Infrared Camera  A thermographic camera, sometimes called a FLIR (Forward Looking InfraRed), or an infrared camera less specifically, is a device that forms an image using infrared radiation, similar to a common camera that forms an image using visible light. Instead of the 450–750 nanometer range of the visible light camera, infrared cameras operate in wavelengths as long as 14,000 nm (14 µm).FLIRinfrared radiationcameravisiblelight wavelengths * Wikipedia

Infrared Camera  Science behind infrared sensing Violet Blue Green Yellow Red

Infrared Camera  Science behind infrared sensing IR Filter  All Infrared Camera’s pick-up Infrared energy waves and device converts this to digital photos.  Infrared Camera models are based from the Planck’s Law: *Thermal Imaging Systems; J.M. Lloyd ISBN Digital Camera Object

Infrared Camera  Science behind infrared sensing  All Infrared Camera’s pick-up Infrared energy waves and device converts this to digital photos.  Infrared Camera’s are based from the Planck’s Law: the spectral radiance of electromagnetic radiation at all wavelengths from a black body at temperature. *Thermal Imaging Systems; J.M. Lloyd ISBN

Backup  Infrared energy is just one part of the electromagnetic spectrum that encompasses radiation from gamma rays, x-rays, ultra violet, a thin region of visible light, infrared, terahertz waves, microwaves, and radio waves. These are all related and differentiated in the length of their wave (wavelength). All objects emit a certain amount of black body radiation as a function of their temperatures. Generally speaking, the higher an object's temperature is, the more infrared radiation as black-body radiation it emits. A special camera can detect this radiation in a way similar to an ordinary camera does visible light. It works even in total darkness because ambient light level does not matter. This makes it useful for rescue operations in smoke-filled buildings and underground.electromagnetic spectrumgamma rays x-raysultra violetvisible lightinfraredterahertz wavesmicrowavesradio waves black bodytemperaturescamera  Images from infrared cameras tend to be monochromatic because the cameras are generally designed with only a single type of sensor responding to single wavelength range of infrared radiation. Color cameras require a more complex construction to differentiate wavelength and color has less meaning outside of the normal visible spectrum because the differing wavelengths do not map uniformly into the system of color vision used by humans. Sometimes these monochromatic images are displayed in pseudo-color, where changes in color are used rather than changes in intensity to display changes in the signal. This is useful because although humans have much greater dynamic range in intensity detection than color overall, the ability to see fine intensity differences in bright areas is fairly limited. This technique is called density slicing.wavelengthpseudo-colordensity slicing  For use in temperature measurement the brightest (warmest) parts of the image are customarily colored white, intermediate temperatures reds and yellows, and the dimmest (coolest) parts blue. A scale should be shown next to a false color image to relate colors to temperatures. Their resolution is considerably lower than of optical cameras, mostly only 160x120 or 320x240 pixels. Thermographic cameras are much more expensive than their visible-spectrum counterparts, and higher-end models are often deemed as dual-use and export-restricted.dual-use  In uncooled detectors the temperature differences at the sensor pixels are minute; a 1 °C difference at the scene induces just a 0.03 °C difference at the sensor. The pixel response time is also fairly slow, at the range of tens of milliseconds.  Thermal imaging photography finds many other uses. For example, firefighters use it to see through smoke, find persons, and localize hotspots of fires. With thermal imaging, power line maintenance technicians locate overheating joints and parts, a telltale sign of their failure, to eliminate potential hazards. Where thermal insulation becomes faulty, building construction technicians can see heat leaks to improve the efficiencies of cooling or heating air-conditioning. Thermal imaging cameras are also installed in some luxury cars to aid the driver, the first being the 2000 Cadillac DeVille. Some physiological activities, particularly responses, in human beings and other warm-blooded animals can also be monitored with thermographic imaging. Cooled infrared cameras can also be found at most major astronomy research telescopes.firefighterssmokepower linethermal insulationbuilding constructionCadillac DeVilletelescopes * Wikipedia