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  • An X-ray of an energy efficient light bulb.
    energy-bulb1blue.jpg
  • An X-ray of an energy efficient light bulb.
    energy-bulb1blue.tif
  • An X-ray of an energy efficient light bulb.
    energy-bulb1blue.jpg
  • X-ray of an energy efficient light bulb. This buld uses Light emmitting diode (LED) technology. THis is a false color x-ray.
    K14X-LED-bulb01C.jpg
  • X-ray of an energy efficient light bulb. This buld uses Light emmitting diode (LED) technology. THis is a false color x-ray.
    K14X-LED-bulb01.jpg
  • X-ray of an energy efficient light bulb.
    K12X-light3A.jpg
  • X-ray of an energy efficient light bulb. This bulb uses Light emmitting diode (LED) technology.
    K15X-newLED002D.jpg
  • X-ray of an energy efficient light bulb.
    K12X-light3comboB.jpg
  • An energy efficient light bulb.
    K12X-light3-optical.jpg
  • X-ray of an energy efficient light bulb. This bulb uses Light emmitting diode (LED) technology.
    K15X-newLED002C.jpg
  • X-ray of an energy efficient light bulb. This buld uses Light emmitting diode (LED) technology. THis is a false color x-ray.
    K14X-LED-bulb01D.jpg
  • X-ray of an energy efficient light bulb. This bulb uses Light emmitting diode (LED) technology.
    K15X-newLED002B.jpg
  • X-ray of an energy efficient light bulb. This buld uses Light emmitting diode (LED) technology. THis is a false color x-ray.
    K14X-LED-bulb01B.jpg
  • X-ray of an energy efficient light bulb.
    K11-xbulbsc2.jpg
  • X-ray of an energy efficient light bulb.
    K11-xbulbsc1.jpg
  • X-ray of an energy efficient light bulb.
    K12X-light3combo.jpg
  • X-ray of an energy efficient light bulb. This bulb uses Light emmitting diode (LED) technology.
    K15X-newLED002.jpg
  • X-ray of an energy efficient light bulb.
    K12X-light3B.jpg
  • A ball bounces on a spring.  A special stroboscopic camera records the motion.  The record of the motion can be analyzed to show both the timing and range of the motion.  This type of image is very important in the science of biomechanics.
    spring8081.jpg
  • A velomobile or bicycle car is a human-powered vehicle, enclosed for protection from weather and collisions.  Here a young man is peddling the velomobile in a recumbent position.  The velomobile is built on a recumbent bike frame with two steerable wheels in the front and one wheel in the back.  This tricycle design allows for a stable vehicle on wet roads.  The vehicle is air streamed to decrease wind resistance and shield the rider from rain.  As fuel consumption becomes more of an issue, more commuters will switch to human powered vehicles.
    K08velomobile9963.jpg
  • A velomobile or bicycle car is a human-powered vehicle, enclosed for protection from weather and collisions.  Here a man is peddling the velomobile in a recumbent position.  The velomobile is built on a recumbent bike frame with two steerable wheels in the front and one wheel in the back.  This tricycle design allows for a stable vehicle on wet roads.  The vehicle is air streamed to decrease wind resistance and shield the rider from rain.  As fuel consumption becomes more of an issue, more commuters will switch to human powered vehicles.
    K08velomobile0106.jpg
  • A velomobile or bicycle car is a human-powered vehicle, enclosed for protection from weather and collisions.  Here a young man is peddling the velomobile in a recumbent position.  The velomobile is built on a recumbent bike frame with two steerable wheels in the front and one wheel in the back.  This tricycle design allows for a stable vehicle on wet roads.  The vehicle is air streamed to decrease wind resistance and shield the rider from rain.  As fuel consumption becomes more of an issue, more commuters will switch to human powered vehicles.
    K08velomobile9969.jpg
  • Schlieren image of a hot light bulb.  The schlieren images identifies areas of different temperature by using the change in the index of refraction of a fluid due to a change in temperature.
    K07Sch1327.jpg
  • Thermogram of a house in winter.  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..
    ir07-376.jpg
  • A stroboscopic image of a trebuchet launching a ball.  The trebuchet uses the potential energy of a weight falling to project a yellow ball.  A trebuchet is a type of catapult that was used as a siege engine in the Middle Ages. It is sometimes called a counterweight trebuchet or counterpoise trebuchet, to distinguish it from an earlier weapon called the traction trebuchet, which employed pulling men working the mechanism.  The counterweight trebuchet appeared in both Christian and Muslim lands around the Mediterranean in the 12th century. It could fling projectiles weighing up to 350 pounds (160 kg) at or into enemy fortifications. Its use continued into the 15th century, well after the introduction of gunpowder.
    K14-trebuchet0126.jpg
  • A stroboscopic image of a trebuchet launching a ball.  The trebuchet uses the potential energy of a weight falling to project a yellow ball.  A trebuchet is a type of catapult that was used as a siege engine in the Middle Ages. It is sometimes called a counterweight trebuchet or counterpoise trebuchet, to distinguish it from an earlier weapon called the traction trebuchet, which employed pulling men working the mechanism.  The counterweight trebuchet appeared in both Christian and Muslim lands around the Mediterranean in the 12th century. It could fling projectiles weighing up to 350 pounds (160 kg) at or into enemy fortifications. Its use continued into the 15th century, well after the introduction of gunpowder.
    K14-trebuchet0127.jpg
  • This is a demonstration of a ball rolling down an incline, slowing down, and then speeding back to where it started.  The ball is rolling from left to right in this image.  The analysis of this demo requires the use of the  kinetic energy, potential energy, rolling energy, and friction.   The  ball is 2.5 cm in diameter. The flash illuminates the scene at 40 hz showing images every  .025 seconds of time.
    K12-coaster8298.jpg
  • A golf club moving at 97 miles per hour (43.36 m/s) hits a stationary golf ball.  The action is recorded by a fast strobe with a duration of 1/20,000th of a second.  In all collisions momentum is conserved. .
    K07-golfb0167.jpg
  • A golf club moving at 97 miles per hour (43.36 m/s) hits a stationary golf ball.  The action is recorded by a fast strobe with a duration of 1/1,000,000th of a second.  In all collisions momentum is conserved. .
    K07-golfb0152.jpg
  • A golf club moving at 97 miles per hour (43.36 m/s) hits a stationary golf ball.  The action is recorded by a fast strobe with a duration of 1/1,000,000th of a second.  In all collisions momentum is conserved.   This ball is a soft driving ball - not a regulation play ball..
    K07-golfb0147.jpg
  • A tennis ball moving at 95 feet per second, or 28.95 meters per second collides with a cinderblock wall. During the collision, the tennis ball compresses. In this type of Collison momentum is conserved. The tennis ball was launched from an air cannon as is commonly used to practice tennis.
    K18HittingWall6919.jpg
  • A tennis ball moving at 95 feet per second, or 28.95 meters per second collides with a cinderblock wall. During the collision, the tennis ball compresses. In this type of Collison momentum is conserved. The tennis ball was launched from an air cannon as is commonly used to practice tennis.
    K18HittingWall6913.jpg
  • An x-ray of a gas pump nozzle.
    K08X-gasspump-BG.jpg
  • A tennis ball moving at 95 feet per second, or 28.95 meters per second is captured in flight just after a collision with a  cinderblock wall. The tennis ball was launched from an air cannon as is commonly used to practice tennis.
    K18AfterCollision6922.jpg
  • A tennis ball moving at 95 feet per second, or 28.95 meters per second is captured in flight just before it collides with a cinderblock wall. The tennis ball was launched from an air cannon as is commonly used to practice tennis.
    K18BeforeCollision6927.jpg
  • This image is a combination of two images, one taken in visible light and one taken in infrared light. In the IR thermogram the temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseD-ir-combo1.tif
  • This image is a combination of two images, one taken in visible light and one taken in infrared light. In the IR thermogram the temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseC-ir-combo.tif
  • This image is a combination of two images, one taken in visible light and one taken in infrared light. In the IR thermogram the temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseA-ir-combo.tif
  • An x-ray of a gas pump nozzle.
    K08X-gasspump-BR.jpg
  • A home in winter.  This image was taken to have a visual photograph to compare with a matching infrared image.  This image is one of a set used to compare a house in visible light to infrared light (heat).
    K07houseD001.TIF
  • A thermogram of a home in winter. The temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseC-ir02.tif
  • A thermogram of a home in winter. The temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07HouseB-IRNW.tif
  • This image is a combination of two images, one taken in visible light and one taken in infrared light. In the IR thermogram the temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseB-ir-combo.tif
  • A thermogram of a home in winter. The temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07HouseD-IR01.tif
  • A home in winter.  This image was taken to have a visual photograph to compare with a matching infrared image.  This image is one of a set used to compare a house in visible light to infrared light (heat).
    K07houseA001.TIF
  • A thermogram of a home in winter. The temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseA-IR-NW.tif
  • A home in winter.  This image was taken to have a visual photograph to compare with a matching infrared image.  This image is one of a set used to compare a house in visible light to infrared light (heat).
    K07houseC002.TIF
  • This image is a combination of two images, one taken in visible light and one taken in infrared light. In the IR thermogram the temperature range goes from hot (white) to cold (blue). Thermography is a technique for visualizing the temperature of surfaces by recording the emission of long-wavelength infrared radiation. This heat radiation is detected electronically and displayed with different colors representing different temperatures.  In this image the whiter colors are the hottest.  The windows in homes are a major source of heat loss.
    K07houseD-ir-combo2.tif
  • A home in winter.  This image was taken to have a visual photograph to compare with a matching infrared image.  This image is one of a set used to compare a house in visible light to infrared light (heat).
    K07houseB002.TIF
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Ted Kinsman

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