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  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-A4114Bee.jpg
  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-E4510Bee.jpg
  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-F-4520Bee.jpg
  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-C4503Bee.jpg
  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-B4497Bee.jpg
  • A Sunflower seen in one form of simulated “bee vision” or insect vision. Since many insects have vision that ranges from the yellow to the ultraviolet part of the spectrum, this image has been adjusted to have the areas of highest reflectivity in the green part of the spectrum. This sunflower image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-G-4523Bee.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-C4503Bug.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-E4510Bug.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-F-4520Bug.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-A4114Bug.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-G-4523Bug.jpg
  • A Sunflower seen in simulated insect vision. In this image the UV reflectivity from the flower has been added to a normal human vision image to create one interpretation of what an insect might see. The image shows the different patterns on the flower petals as perceived by insects that can see well into the ultraviolet region of the spectrum. These special patterns that have evolved to attract insects to the flower are called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation, visible light, insect vision, and simulated bee vision.
    K19Flower-B4497Bug.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-B4497UV.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15Xfull-lobster004.jpg
  • X-ray of a Smooth Butterfly Ray (Gymnura micrura).Common English names for this species include: lesser butterfly ray, diamond skate, butterfly ray, short-tailed lesser butterfly ray, and skeete.  The smooth butterfly ray is found in the western and eastern Atlantic Ocean and in the Gulf of Mexico. In the western Atlantic it occurs from Maryland to Brazil. It occurs in the Gulf of Mexico and northern South America to Brazil. It also occurs in the eastern Atlantic off the coasts of Senegal, Gambia, Sierra Leone, Cameroon and Democratic Republic of the Congo.
    K15X-butterflyray-blue.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab001A2.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-F-4520.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-C4503.jpg
  • The atomic emission spectra of mercury gas. <br />
Mercury vapor emission spectroscopy. Emission spectroscopy examines the wavelengths of photons emitted by atoms or molecules during their transition from an excited state to a lower energy state.
    K18-Mercury-Spectra.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15X-HE-full-lobster-2015C.jpg
  • X-ray of a starfish.
    K12X-sea-starsJD-001.jpg
  • X-ray of a starfish.
    K12X-sea-starsJC-010.jpg
  • X-ray of a starfish.
    K12X-sea-starsJ2-A.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab005C.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab004A.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-E4510UV.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-A4114UV.jpg
  • The atomic emission spectra of Hydrogen gas. <br />
Hydrogen vapor emission spectroscopy. Emission spectroscopy examines the wavelengths of photons emitted by atoms or molecules during their transition from an excited state to a lower energy state.
    K18-HYDROGEN-Spectra.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15Xfull-lobster005.jpg
  • X-ray of a Smooth Butterfly Ray (Gymnura micrura).Common English names for this species include: lesser butterfly ray, diamond skate, butterfly ray, short-tailed lesser butterfly ray, and skeete.  The smooth butterfly ray is found in the western and eastern Atlantic Ocean and in the Gulf of Mexico. In the western Atlantic it occurs from Maryland to Brazil. It occurs in the Gulf of Mexico and northern South America to Brazil. It also occurs in the eastern Atlantic off the coasts of Senegal, Gambia, Sierra Leone, Cameroon and Democratic Republic of the Congo.
    K15X-butterflyray-whiteBW.jpg
  • X-ray of a starfish.
    K12X-sea-starsJD-001B.jpg
  • X-ray of a starfish.
    K12X-sea-starsJD-001A.jpg
  • X-ray of a starfish.
    K12X-sea-starsJ004.jpg
  • X-ray of a starfish.
    K12X-sea-starsJ002.jpg
  • X-ray and optical image of a Deep Water Crab.  The left side of the image is an X-ray, while the right side is a visible light photograph.
    K12X-deep-crab-half-half005A.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab005B.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab005A.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab004B.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab001A3.jpg
  • An X-ray of a hiking boot.
    x07hikerboot.jpg
  • An X-ray a Laser tube.  This is a helium neon laser tube with the high voltage leads.
    x07-laser-tubeHeNeFC.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-G-4523UV.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-G-4523.jpg
  • Polarized light photograph of ice crystals. Under polarized light the ice appears to have many colors within it. The colors are due to the ice crystals being birefringent in polarized light.
    K17Polarized-ice_0302.jpg
  • The atomic emission spectra of Helium gas. <br />
Helium vapor emission spectroscopy. Emission spectroscopy examines the wavelengths of photons emitted by atoms or molecules during their transition from an excited state to a lower energy state.
    K18-Helium-Spectra.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15X-HE-full-lobster-2015.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15Xfull-lobster003.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15Xfull-lobster002.jpg
  • X-ray of a Smooth Butterfly Ray (Gymnura micrura).Common English names for this species include: lesser butterfly ray, diamond skate, butterfly ray, short-tailed lesser butterfly ray, and skeete.  The smooth butterfly ray is found in the western and eastern Atlantic Ocean and in the Gulf of Mexico. In the western Atlantic it occurs from Maryland to Brazil. It occurs in the Gulf of Mexico and northern South America to Brazil. It also occurs in the eastern Atlantic off the coasts of Senegal, Gambia, Sierra Leone, Cameroon and Democratic Republic of the Congo.
    K15X-butterflyray-whiteBW2.jpg
  • X-ray of a starfish.
    K12X-sea-starsJC-010B.jpg
  • X-ray of a starfish.
    K12X-sea-starsJ001.jpg
  • X-ray of a Deep Water Crab
    K12X-deep-crab001A.jpg
  • An X-ray of an ice skate.
    x07iceskateablue.jpg
  • An x-ray of bamboo.  the x-ray shows the internal structure of the plant. This is Common bamboo (Bambusa vulgaris).
    x07bamboo.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-E4510.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-B4497.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-F-4520UV.jpg
  • A Sunflower seen in ultraviolet (UV) radiation. The image shows the different patterns on the flower petals that have evolved to attract insects to the flower. These patterns are often called honey guides. This image is part of a series showing the same flower in ultraviolet (UV) radiation and visible light.
    K19Flower-C4503UV.jpg
  • X-ray of a Smooth Butterfly Ray (Gymnura micrura).Common English names for this species include: lesser butterfly ray, diamond skate, butterfly ray, short-tailed lesser butterfly ray, and skeete.  The smooth butterfly ray is found in the western and eastern Atlantic Ocean and in the Gulf of Mexico. In the western Atlantic it occurs from Maryland to Brazil. It occurs in the Gulf of Mexico and northern South America to Brazil. It also occurs in the eastern Atlantic off the coasts of Senegal, Gambia, Sierra Leone, Cameroon and Democratic Republic of the Congo.
    K15X-butterflyray-white.jpg
  • A Sunflower seen in visible light. This image is part of a series showing the same flower in ultraviolet (UV) radiation.
    K19Flower-A4114.jpg
  • Polarized light photograph of ice crystals. Under polarized light the ice appears to have many colors within it. The colors are due to the ice crystals being birefringent in polarized light.
    K17Polarized-ice_0292.jpg
  • The atomic emission spectra of Neon gas. <br />
Neon  vapor emission spectroscopy. Emission spectroscopy examines the wavelengths of photons emitted by atoms or molecules during their transition from an excited state to a lower energy state.
    K18-Neon-Spectra.jpg
  • X-ray of an American Lobster (Homarus americanus)
    K15X-HE-full-lobster-2015B.jpg
  • X-ray of a starfish.
    K12X-sea-stars-large015.jpg
  • Kiwi fruit, (Actinidia deliciosa). The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series
    K20-UVIVF_4473.jpg
  • Kiwi fruit, (Actinidia deliciosa). The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series
    K20-UVIVF_4468.jpg
  • A Black walnut fruit (Juglans nigra). The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series
    K20-UVIVF_4392.jpg
  • Daffodil flower as seen in UV light. The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series.
    K20-C_3541UVVF.jpg
  • A Thermogram of a coffee machine as it warms up.  This is one image from a series. The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-444.jpg
  • A Thermogram of a boy.  This image is part of a series and has a corresponding visible light image.   The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-419.jpg
  • Thermogram of two ice skaters.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-273.jpg
  • A Thermogram of a young girl sleeping.  This image is part of a series.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1912.jpg
  • A Thermogram of fireplace.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-163.jpg
  • A Thermogram of a young child lost in the woods.  This image is part of a series.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1603.jpg
  • Thermogram of penguins.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1400.jpg
  • Thermogram of two White Rhinos (Ceratotherium simum).  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1362.jpg
  • Thermogram of two Cinnamon Teal Ducks. (Anas cvanoptera)  Note the warm leg on the duck on the right - the ducks tuck one leg under their feathers to keep warm.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1309.jpg
  • Thermogram of a mouse.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1181.jpg
  • Thermogram of a girl eating pizza.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1149.jpg
  • Thermogram of milk jug and hand.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1147.jpg
  • Thermogram of steam pipes for a hot water heating system.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    Ir07-1079.jpg
  • Thermogram of steam pipes for a hot water heating system.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    Ir07-1077.jpg
  • Thermogram of a hot dishwasher and coffee machine.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    dish-washer.jpg
  • A boy holding up a sheet of black plastic. This image has a corresponding visible light image.  This plastic is opaque to visible light, but is transparent to far-infrared light.  This image was taken inthe far-infrared.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    combo-ir07-350.jpg
  • A browning banana. The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. There was a small amout of white light added to the exposure to show the yellow of the banana. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series
    K20-UVIVF_4448.jpg
  • Daffodil flower as seen in UV light. The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series.
    K20-D_3539UVVF.jpg
  • Daffodil flower as seen in UV light. The specimen was illuminated with shortwave ultraviolet light (UV) that cannot be detected with the camera used for this image. The tissues in the plant absorbed the UV light and fluoresced in the visible spectrum. This technique is called ultraviolet light induced visible light fluorescence (UVIVLF) and is often used in biology to detect unique compounds in samples. This image is part of a series.
    K20-A_3552UVVF.jpg
  • An x ray of a neon light bulb.  THis type of bulb is often used for spectrum experiments.
    x07-bulb12.jpg
  • A Thermogram of a coffee machine as it warms up.  This is one image from a series. The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-445.jpg
  • A Thermogram of a dog.  Note the dog's cold nose. The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-250.jpg
  • A Thermogram of a young girl curling her hair with a hot iron.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-174.jpg
  • Thermogram of an energy efficient fluorescent light.  These lights use less energy than incandescent lights and operate at a cooler temperature.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1643.jpg
  • Thermogram of Guineafowl.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1470.jpg
  • Thermogram of penguins.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1398.jpg
  • Thermogram of a woman. This image is part of a series including a matching image in visible light.   The different colors represent different temperatures on the object. The lightest colors are the coldest temperatures, while the darker colors represent a hotter temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1343.jpg
  • Thermogram of a boy drinking cold water.  This image is part of a series.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1314.jpg
  • Thermogram of a Scarlet Ibis. (Eudocimus ruber) The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1304.jpg
  • Thermogram of a mouse and a snake.  The cold blooded snake is much darker  (cooler) than the mouse.  The warm spot to the right is where the mouse was sitting for a while.   The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1245.jpg
  • Thermogram of a mouse.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    ir07-1224.jpg
  • A Thermogram of an injured hand.  Note the colder temperature of the index finger.  The top part of the finger was lost in an accident.  The lack of blood flow in the finger results in a lower temperature.  The different colors represent different temperatures on the object. The lightest colors are the hottest temperatures, while the darker colors represent a cooler temperature.  Thermography uses special cameras that can detect light in the far-infrared range of the electromagnetic spectrum (900?14,000 nanometers or 0.9?14 µm) and creates an  image of the objects temperature..
    Ir07-105.jpg
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Ted Kinsman

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