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  • Multiple lightning strikes photographed over the Finger Lakes in New York.
    K08biglightning-full.jpg
  • The strong electric fields created by the tesla coil cause the gas in a neon emission tube to glow.
    K10teslane3833.jpg
  • The corona discharge from a Wimshurst machine.  This machine glows as the high voltage from the static electric generator ionized the surrounding air.  This image was taken with a modern camera able to photograph at very low levels of light.  This effect is bright enough to be observed with human eyes in a very dark room.
    K16wimshurst00149.jpg
  • A microscopic view of an inkjet printer head.  The circular hole is the ink nozzle and the flow is often controlled with electrostatics.  The magnification is 200x on the 35 mm camera.
    K09printerhead046.jpg
  • A microscopic view of an inkjet printer head.  The circular hole is the ink nozzle and the flow is often controlled with electrostatics.  The magnification is 100x on the 35 mm camera.  There is a dropplet of red ink on the head.
    K09printerhead0016.jpg
  • Girl placing her hand on a Van de Graaff electrostatic generator, a device that transmits excess electrons. Strands of the young woman's hair repel each other because they are similarly charged; the child's hairstyle displays electric field lines.
    K11-vandeMere002.JPG
  • Girl placing her hand on a Van de Graaff electrostatic generator, a device that transmits excess electrons. Strands of the young woman's hair repel each other because they are similarly charged; the child's hairstyle displays electric field lines.
    K11-vandeMere005.JPG
  • Girl placing her hand on a Van de Graaff electrostatic generator, a device that transmits excess electrons. Strands of the young woman's hair repel each other because they are similarly charged; the child's hairstyle displays electric field lines.
    K11-vandeMere008.JPG
  • Girl placing her hand on a Van de Graaff electrostatic generator, a device that transmits excess electrons. Strands of the young woman's hair repel each other because they are similarly charged; the child's hairstyle displays electric field lines.
    K11-vandeMere007.JPG
  • Girl placing her hand on a Van de Graaff electrostatic generator, a device that transmits excess electrons. Strands of the young woman's hair repel each other because they are similarly charged; the child's hairstyle displays electric field lines.
    K11-vandeMere006.JPG
  • The electrostatic field lines around a point charge and a cylinder.   The electric fields are shown by placing the two charged objects in a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left point is charged to -30,000 volts while the right ring has a potential of + 30,000 volts.  This image is part of a series showing different charging conditions.  Of special importance is the lack of fields showing inside the cylinder.  This is the classic case of no electrical fields inside an electrical conductor.  In this image the cylinder acts as a Faraday cage and shields the enclosed area from any external electrical fields..
    K11-efield010.JPG
  • The electrostatic field lines around a point charge and a cylinder.   The electric fields are shown by placing the two charged objects in a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left point is charged to -30,000 volts while the right ring has a potential of + 30,000 volts.  This image is part of a series showing different charging conditions.  Of special importance is the lack of fields showing inside the cylinder.  This is the classic case of no electrical fields inside an electrical conductor.  In this image the cylinder acts as a Faraday cage and shields the enclosed area from any external electrical fields..
    K11-efield012.JPG
  • The electrostatic field lines around two parallel plates are shown by placing the two plates below a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left and right plates have idential gharge of +30,000 volts. This image is part of a series showing different charging conditions.
    K11-efield003C.jpg
  • The electrostatic field lines around two parallel plates are shown by placing the two plates below a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left and right plates have idential gharge of +30,000 volts. This image is part of a series showing different charging conditions.
    K11-efield003A.jpg
  • The electrostatic field lines around  a point charge and a plate.The electric field is shown by placing the two plates below a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left point is charged to -30,000 volts while the right plate has a potential of + 30,000 volts.   This image is part of a series showing different charging conditions.
    K11-efield006A.jpg
  • The electrostatic field lines around two parallel plates are shown by placing the two plates below a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left plate is charged to -30,000 volts while the right plate has a potential of + 30,000 volts.  This image is part of a series showing different charging conditions.
    K11-efield001B.jpg
  • The electrostatic field lines around  a point charge and a plate.The electric field is shown by placing the two plates below a pan filled with cooking oil and pepper flakes.  The pepper flakes align in the electric field and allow visualization of the field.  In this image the left point is charged to -30,000 volts while the right plate has a potential of + 30,000 volts.   This image is part of a series showing different charging conditions.
    K11-efield006.JPG
  • Cannabis Bud<br />
<br />
The large well developed bud of a cannabis plant. The buds of a cannabis (Cannabis sativa) plant store THC. Tetrahydrocannabinol (THC), the active component of cannabis when used as a drug.
    K19-Cannabisbud01.jpg
  • Cannabis Bud<br />
<br />
The large well developed bud of a cannabis plant. Here the plant has been attached to a high voltage generator to show electrical discharge at the tips of the leaves. The buds of a cannabis (Cannabis sativa) plant store THC. Tetrahydrocannabinol (THC), the active component of cannabis when used as a drug.
    K19Canna0305GLOWA.jpg
  • Cannabis Bud<br />
<br />
The large well developed bud of a cannabis plant. Here the plant has been attached to a high voltage generator to show electrical discharge at the tips of the leaves. The buds of a cannabis (Cannabis sativa) plant store THC. Tetrahydrocannabinol (THC), the active component of cannabis when used as a drug.
    K19-Cannabisbud-sparks01.jpg
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