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  • A .22 caliber bullet is fired from a rifle. The pullet is passing through a thin sheet of glass. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0046.jpg
  • A .22 caliber bullet is fired from a rifle. The pullet is passing through a thin sheet of glass. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second. The origional colors have been changed in Photoshop.
    K20-polint-bullet_0030X.jpg
  • A .22 caliber bullet is fired from a rifle. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0028.jpg
  • A .22 caliber bullet is fired from a rifle. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0015.jpg
  • A .22 caliber bullet is fired from a rifle.  The schlieren optical system images different air pressures with different colors of light.  The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound.  The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-22quickshot_4400.jpg
  • A .22 caliber bullet is fired from a rifle. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0015.jpg
  • A .22 caliber bullet is fired from a rifle. The pullet is passing through a thin sheet of glass. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second. The origional colors have been changed in Photoshop.
    K20-polint-bullet_0046X.jpg
  • A .22 caliber bullet is fired from a rifle. The pullet is passing through a thin sheet of glass. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second. The origional colors have been changed in Photoshop.
    K20-polint-bullet_0046X.jpg
  • A .22 caliber bullet is fired from a rifle. The pullet is passing through a thin sheet of glass. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0030A.jpg
  • A .357 caliber bullet is fired from a hand gun.  The schlieren optical system images different air pressures with different colors of light.  The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound.  The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-357magt4426.jpg
  • A .22 caliber bullet is fired from a rifle. Here the bullet is seen in a polarizing interferometer. The different colors of light represent different air pressures. The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound. The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle. This image freezes the motion by using a high speed flash with a duration of 1/2,000,000th of a second.
    K20-polint-bullet_0028.jpg
  • A .22 caliber bullet is fired from a rifle.  The schlieren optical system images different air pressures with different colors of light.  The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound.  The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-22quickshot_4398blue.jpg
  • A .22 caliber bullet is fired from a rifle.  The schlieren optical system images different air pressures with different colors of light.  The clear bow wave in front of the bullets shows that the bullet is moving faster than the speed of sound.  The exact velocity of this supersonic bullet can be calculated from measurements of the bow wake angle.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-22quickshot_4398.jpg
  • A .22 caliber bullet is fired from a rifle.  The schlieren optical system images different air pressures with different colors of light.  The lack of a bow wave in front of the bullets shows that the bullet is moving slower than the speed of sound.  This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.  .
    K08-22subsonic_4411.jpg
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple020.JPG
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple033.JPG
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple043.JPG
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple026.JPG
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple019.JPG
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    apple_0021_RT8.jpg
  • A .22 caliber bullet hitting crayons. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and crayons photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13HScrayons037.jpg
  • A .22 caliber bullet hitting a glass containing water. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and glass photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13HSglass040.jpg
  • A .22 caliber bullet hitting crayons. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and crayons photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13HScrayons032.jpg
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K12-HSapple-2752.jpg
  • A .22 caliber bullet hitting an apple. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and apple photographed at at 1/1,000,000th of a second flash/strobe speed.
    K13apple044.JPG
  • A .22 caliber bullet hitting four pencils.  The bullet is traveling at 660 feet per second (201.2 meters per second). This image shows the collision of the bullet and pencil photographed at  1/1,000,000th of a second.
    K08HSbullets_3777.jpg
  • A .22 caliber bullet hitting a pencil.  The bullet is traveling at 660 feet per second (201.2 meters per second). This image shows the collision of the bullet and pencil photographed at  1/1,000,000th of a second.
    K08HSbullets_3768.jpg
  • A .22 caliber bullet hitting a pencil.  The bullet is traveling at 660 feet per second (201.2 meters per second). This image shows the collision of the bullet and pencil photographed at  1/1,000,000th of a second.
    K08HSbullets_3656.jpg
  • A .22 caliber bullet hitting a hot pepper. The bullet is travelling at 660 feet per second (201 meters per second). This image shows the collision of the bullet and hot pepper photographed at 1/1,000,000th of a second lash/strobe speed.
    hot-pepperbullet.jpg
  • A .45 caliber handgun firing a bullet.  This image freezes the motion by using a high speed flash with a duration of   1/2,000,000th of a second.  The sparks are from gunpowder that was still burring as it left the barrel behind the bullet.
    K0845calB_3822B.jpg
  • A .45 caliber handgun firing a bullet.  This image freezes the motion by using a high speed flash with a duration of   1/2,000,000th of a second.  The sparks are from gunpowder that was still burring as it left the barrel behind the bullet.
    K0845calB_3822B2.jpg
  • A .45 caliber handgun firing a bullet.  This image freezes the motion by using a high speed flash with a duration of   1/2,000,000th of a second.  The sparks are from gunpowder that was still burring as it left the barrel behind the bullet.
    K0845calA_3822.jpg
  • A .45 caliber bullet exiting the gun. This image is part of a series taken 1/1,000,000th of a second apart.  The gunpowder still has velocity and will travel up to 20 feet from the point of discharge.  This gunpowder can be detected on clothing and skin to determine the location of individuals at the scene of a crime.  The schlieren optical system images different air pressures with different colors of light.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-45auto-sequence1.jpg
  • A .45 caliber bullet exiting the gun. This image is part of a series taken 1/1,000,000th of a second apart.  The gunpowder still has velocity and will travel up to 20 feet from the point of discharge.  This gunpowder can be detected on clothing and skin to determine the location of individuals at the scene of a crime.  The schlieren optical system images different air pressures with different colors of light.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-45auto-sequence2.jpg
  • A .45 caliber bullet exiting the spent gunpowder.  This event takes place approximately 6 inches in front of the gun.  The gunpowder still has velocity and will travel up to 20 feet from the point of discharge.  This gunpowder can be detected on clothing and skin to determine the location of individuals at the scene of a crime.  The schlieren optical system images different air pressures with different colors of light.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-22quicksho4424.jpg
  • A .45 caliber bullet exiting the gun. This image is part of a series taken 1/1,000,000th of a second apart.  The gunpowder still has velocity and will travel up to 20 feet from the point of discharge.  This gunpowder can be detected on clothing and skin to determine the location of individuals at the scene of a crime.  The schlieren optical system images different air pressures with different colors of light.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-45autot_4439.jpg
  • A Thermogram of a hot rifle.  This gun has just fired a dozen bullets and the barrel is quite hot.  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..
    gun-1.jpg
  • A historic wooden duck decoy is imaged with x-rays.  The nails, construction, and lead paint show up clearly in the image.  This type of image is often used to establish age of duck decoys.  Note the buck shot, or lead bullets still in the duck decoy.
    duck-Three.jpg
  • A paintball is fired into an egg.
    K09paintball4710.jpg
  • A paintball is fired into an egg.
    K09paintball4707.jpg
  • A paintball is fired directly at the vertical edge of a razor blade.
    K09paintball4694.jpg
  • A paintball is fired directly at the vertical edge of a razor blade.
    K09paintball4678.jpg
  • A paintball is fired directly at the vertical edge of a razor blade.
    K09paintball4684.jpg
  • A paintball is fired directly at the vertical edge of a razor blade.
    K09paintball4673.jpg
  • A paintball is fired directly at the vertical edge of a razor blade.
    K09paintball4661.jpg
  • A paintball is fired into an egg.
    K09paintball4713.jpg
  • The supersonic shockwave that exits the barrel a .22 caliber rifle in front of the bullet.  This pressure wave is responsible for the loud sound of the gun.  The schlieren optical system images different air pressures with different colors of light.   This image freezes the motion by using a high speed flash with a duration of  1/2,000,000th of a second.
    K08-22quicksho4416.jpg
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