- Lichtenberg figure
Lichtenberg figures (Lichtenberg-Figuren, or "Lichtenberg Dust Figures") are branching
electric discharge s that sometimes appear on the surface or the interior of insulating materials. They are named after the German physicistGeorg Christoph Lichtenberg , who originally discovered and studied them. When they were first discovered, it was thought that their characteristic shapes might help to reveal the nature of positive and negative electric "fluids". In1777 , Lichtenberg built a largeElectrophorus in order to generate highvoltage static electricity throughinduction . By discharging a high voltage point to the surface of an insulator, he was able to record the resulting radial patterns in fixed dust. By then pressing blank sheets of paper onto these pattens, Lichtenberg was able to transfer and record these images, thereby discovering the basic principle of modernXerography . This discovery was also the forerunner of modern dayplasma physics . Although Lichtenberg only studied 2-dimensional (2D) figures, modern high voltage researchers study 2D and 3D figures (electrical tree s) on, and within, insulating materials. Lichtenberg figures are now known to be examples offractals .Formation
Two-dimensional (2D) Lichtenberg figures can be produced by placing a sharp-pointed needle perpendicular to the surface of a non-conducting plate, such as of
resin ,ebonite , orglass . The point is positioned very near to, or in contact with, the plate. A source of high voltage, such as aLeyden jar (a type ofcapacitor ) or astatic electricity generator, is applied to the needle, typically through aspark gap . This creates a sudden, small electrical discharge to the surface of the plate. This deposits areas of charge onto the surface of the plate. These electrified areas are then tested by sprinkling a mixture of powdered flowers ofsulfur and red lead (Pb3O4 orlead tetroxide ) onto the plate.During handling, powdered sulfur tends to acquire a slight negative charge, while red lead tends to acquire a slight positive charge. The negatively electrified sulfur is attracted to the positively electrified areas of the plate, while the positively electrified red lead is attracted to the negatively electrified areas. In addition to the distribution of colors thereby produced, there is also a marked difference in the form of the figure, according to the polarity of the electrical charge that was applied to the plate. If the charge areas were positive, a widely extending patch is seen on the plate, consisting of a dense nucleus, from which branches radiate in all directions. Negatively charged areas are considerably smaller and have a sharp circular or fan-like boundary entirely devoid of branches.
If the plate receives a mixture of positive and negative charges as, for example, from an
induction coil , a mixed figure results, consisting of a large red central nucleus, corresponding to the negative charge, surrounded by yellow rays, corresponding to the positive charge. The difference between positive and negative figures seems to depend on the presence ofair ; for the difference tends to disappear when the experiment is conducted in vacuo. Riess explains it by the negative electrification of the plate caused by the friction of the water vapour, etc., driven along the surface by theexplosion which accompanies thedisruptive discharge at the point. This electrification would favor the spread of a positive, but hinder that of a negative discharge. Lichtenberg figures are fully described in his memoir "Super nova methodo motum ac naturam fluidi electrici investigandi" (Göttinger Novi Commentarii, Göttingen, 1777). It is now known that charges are transferred to the insulator's surface through small spark discharges that occur along the boundary between the gas and insulator surface. Once transferred to the insulator, excess charges become temporarily stranded. The shapes of the resulting charge distributions reflect the shape of the spark discharges which, in turn, depend on the HV polarity and pressure of the gas. Using a higher applied voltage will generate larger diameter and more branched figures.Another type of 2D Lichtenberg Figure can be created when an insulating surface becomes contaminated with semiconducting material. When a high voltage is applied across the surface, leakage currents may cause localized heating and progressive degradation and charring of the underlying material. Over time, branching, tree-like carbonized patterns are formed upon the surface of the insulator called
electrical tree s. These may ultimately bridge the insulating space, leading to catastrophic failure of the insulating material.Modern 3D Lichtenberg figures
Modern Lichtenberg Figures can also be created within solid insulating materials, such as acrylic (polymethyl methacrylate or
PMMA ) or glass by injecting them with a beam of high speedelectrons from a linear electron beam accelerator (or Linac, a type ofparticle accelerator ). Inside the Linac, electrons are focused and accelerated to form a beam of high speed particles. Electrons emerging from the accelerator have energies up to 25MeV and are moving an appreciable fraction (95 - 99+ percent) of thespeed of light (relativistic velocities). If the electron beam is aimed towards an acrylic specimen, the electrons easily penetrate the surface of the acrylic, rapidly slowing down as they collide with molecules inside the plastic, finally coming to rest deep inside the specimen. Since acrylic is an excellent electrical insulator, these electrons become temporarily trapped within the specimen, forming a plane of excess negative charge. Under continued irradiation, the amount of trapped charge builds, until the effective voltage inside the specimen reaches millions of volts. Once the electrical stress exceeds thedielectric strength of the plastic, some portions suddenly become conductive in a process called dielectric breakdown. Dielectric breakdown can be manually initiated by piercing the acrylic specimen with a grounded metal point.During breakdown, branching tree or fern-like conductive channels rapidly form and propagate through the plastic, allowing the trapped charge to suddenly rush out in a miniature
lightning -like flash and bang. Breakdown of a charged specimen may also be manually triggered by poking the plastic with a pointed conductive object to create a point of excessive voltage stress. During the discharge, the powerful electricalspark s leave thousands of branching chains of fractures behind - creating a permanent Lichtenberg figure inside the specimen. Although the internal charge within the specimen is negative, the actual discharge is initiated from the positively charged exterior surfaces of the specimen, so that the resulting discharge actually creates a positive Lichtenberg figure. These rare and beautiful objects are sometimes called electron trees, beam trees, or lightning trees. As the electrons rapidly decelerate inside the acrylic, they also generate powerfulX-rays . The X-rays darken the acrylic by introducing defects (color centers) in a process calledsolarization . Solarization turns acrylic specimens an amber or brownish color, although older acrylic blends sometimes turn a lime green. The color usually fades over time, and gentle heating, combined with oxygen, accelerates the fading process.Natural occurrences
Lichtenberg figures may also appear on the skin of
lightning strike victims. These are reddish, fernlike patterns that may persist for hours or days on survivors. They are also a useful indicator for medical examiners when trying to determine the cause of death in a victim. Lichtenberg figures appearing on people are sometimes called lightning flowers, and they are thought to be caused by the rupture of smallcapillaries under the skin due to either the passage of the lightning current or theshock wave from the lightning discharge. A lightning strike can also create a large Lichtenberg Figure in the grass surrounding the point hit by the bolt. These are sometimes found ongolf course s or in grassy meadows.Fulgurite s may also be created assand andsoil is fused into glassy tubes by the heat of the high current lightning discharge.Electrical treeing often occurs in high-voltage equipment just before breakdown. Following these Lichtenberg figures in the insulation during post-mortem investigation of an insulation failure can be most useful in finding the cause of breakdown. An experienced high-voltage engineer can see from the direction and the shape of trees and their branches where the primary cause of the breakdown was situated and possibly find the initial cause. Broken-down transformers, high-voltage cables, bushings and other equipment can usefully be investigated in this manner; the insulation is unrolled (in the case of paper insulation) or sliced in thin slices (in the case of solid insulating materials). The results are then sketched or photographed in order to create an archive of the breakdown process.Fractal similarities
The branching,
self-similar patterns observed in Lichtenberg figures exhibitfractal properties. Lichtenberg figures often develop during thedielectric breakdown of solids, liquids, and even gases. Their appearance and growth appear to be related to a process calleddiffusion-limited aggregation or DLA. A useful macroscopic model that combines an electric field with DLA was developed by Niemeyer, Pietronero, and Weismann in 1984, and is known as thedielectric breakdown model (DBM). Although the electrical breakdown mechanisms of air and PMMA are considerably different, the branching discharges turn out to be related. So, it should not be surprising that the branching forms taken by natural lightning also have fractal characteristics.ee also
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Electrical treeing External links
* [http://lichdesc.teslamania.com What are Lichtenberg Figures and how are they created?]
* [http://www.orau.org/ptp/collection/Lichtenberg%20figures/Lichtenbergfigures.htm Lichtenberg Figures, Glass and Gemstones]
* [http://scienceservice.si.edu/pages/044138.htm 1927 General Electric Review Article about Lichtenberg Figures]
* [http://science.nasa.gov/newhome/headlines/essd18jun99_1.htm NASA article on lightning's effects on humans]
* [http://volcaniclightning.tripod.com/index.htm About Electricity, Lightning, and Lichtenberg Figures]
* [http://205.243.100.155/photos/For_Sale/June04/Golfcourse.jpgPhoto of a Lichtenberg Figure on a golf course]
* [http://205.243.100.155/frames/human_LF2.jpgPhoto of a Lichtenberg Figure on a man's back]
* [http://classes.yale.edu/fractals/Panorama/Physics/DLA/DBM/DBM.html Dielectric Breakdown Model (DBM)]
* [http://classes.yale.edu/fractals/Panorama/Physics/DLA/DBM/DBM2.html Mathematical Description of Diffusion-Limited Aggregation]
* [http://www.youtube.com/watch?v=FWOst4VwwEU Short video clip showing an 18" x 18" x 1" Lichtenberg figure being discharged]
* [http://vids.myspace.com/index.cfm?fuseaction=vids.individual&VideoID=28880357 Video of a Lichtenberg figure being created by a tap from a nail]
* [http://chemistry.about.com/b/a/201545.htm Making 2D Lichtenberg Figures on wood]
* [http://www.popsci.com/diy/article/2008-02/trap-lightning-block Trap Lightning in a Block] .(DIY Lichtenberg Figure at Popular Science)
* Lichtenbergs in acrylic in 3d. [http://theodoregray.com/PeriodicTable/Samples/Electrons.1/index.qtvr.s10.html 1] [http://theodoregray.com/PeriodicTable/Samples/Electrons.2/index.qtvr.s10.html 2] [http://theodoregray.com/PeriodicTable/Samples/Electrons.3/index.qtvr.s10.html 3] (Requires Quicktime VR to view.)
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