Metal detectors (Forensic Science)
At crime scenes, investigators often need to find metallic objects buried in soil or hidden in other materials. Metal detectors use the principle of electromagnetic induction to detect metal. The simplest detector consists of an oscillator that generates an alternating current that passes through a coil of wire. This produces an alternating magnetic field. When a piece of metal is relatively close to the coil, eddy currents are generated in the metal. The eddy currents produce their own alternating magnetic field, which is detected by a receiver in the metal detector.
Law-enforcement investigators often use metal detectors to locate stray bullets that may have become embedded in flooring, walls, furniture, and other objects at crime scenes and related locations, as well as to find cartridge cases that may have been left behind by perpetrators. Metal detectors are routinely used to map the locations and positions of buried human remains, as such devices can document the spatial positions of coins, belt buckles, eyeglasses, key rings, watches, and other items containing metal that people routinely carry with them. Metal detectors deployed in aircraft are particularly advantageous for locating metallic objects within soils that are underwater or otherwise inaccessible by road or by foot, perhaps because of steep terrain or vegetation cover.
Airport security personnel employ metal detectors as part of airline passenger screening, as the...
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Further Reading (Forensic Science)
Baker-Jarvis, James, et al. Metal Detector Studies: Research Materials. Washington, D.C.: National Institute of Standards and Technology, 2002.
James, Stuart H., and Jon J. Nordby, eds. Forensic Science: An Introduction to Scientific and Investigative Techniques. 2d ed. Boca Raton, Fla.: CRC Press, 2005.
Paulter, Nicholas G. Users’ Guide for Hand-Held and Walk-Through Metal Detectors. Washington, D.C.: National Institute of Justice, 2001.
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Metal Detectors (World of Forensic Science)
Metal detectors use electromagnetic fields to detect the presence of metallic objects. They exist in a variety of walk-through, hand-held, and vehicle-mounted models and are used to search personnel for hidden metallic objects at entrances to airports, public schools, courthouses, and other guarded spaces; to hunt for landmines, archaeological artifacts, and miscellaneous valuables; and for the detection of hidden or unwanted metallic objects in industry and construction. Metal detectors detect metallic objects, but do not image them. An x-ray baggage scanner, for example, is not classed as a metal detector because it images metallic objects rather than merely detecting their presence.
Metal detectors use electromagnetism in two fundamentally different ways, active and passive. Active detection methods illuminate some detection spacehe opening of a walk-through portal, for example, or the space directly in front of a hand-held unitith a time-varying electromagnetic field. Energy reflected from or passing through the detection space is affected by the presence of conductive material in that space; the detector detects metal by measuring these effects.
Passive detection methods do not illuminate the detection space, but take advantage of the fact that every unshielded detection space is already permeated by the Earth's natural magnetic field. Ferromagnetic objects moving through the detection space cause temporary, but detectable, changes in this natural field. (Ferromagnetic objects are made of metals, such as iron, that are capable of being magnetized; many metals, such as aluminum, are conducting but not ferromagnetic and cannot be detected by passive means.)
Walk-through or portal detectors are common in airports, public buildings, and military installations. They bracket their portal with two large coils or loop-type antennae, one a source and the other a detector. Electromagnetic waves (in this case, low-frequency radio waves) are emitted by the source coil into the detection space and interact with objects there. When the electromagnetic field of the transmitted wave impinges on a conducting object, it induces transient currents on the surface of the object; these currents, in turn, radiate electromagnetic waves. These secondary waves are sensed by the detector coil.
Metal detectors small enough to be hand-held are often used at security checkpoints to localize metal objects whose presence has been detected by a walk-through system. Forensic investigations can also utilize hand-held metal detectors. Some units are designed to be carried by a pedestrian scanning for metal objects in the ground (e.g., nails, loose change, landmines). All such devices operate on variations of the same physical principle as the walk-through metal detector, that is, they emit time-varying electromagnetic fields and listen for waves coming back from conducting objects. Some ground-search models further analyze the returned fields to distinguish various common metals from each other.
Gradiometer metal detectors are passive systems that exploit the effect of moving ferromagnetic objects on the Earth's magnetic field. A gradiometer is an instrument that measures a gradienthe difference in magnitude between two pointsn a magnetic field. When a ferromagnetic object moves through a gradiometer metal detector's detection space, it causes a temporary disturbance in the Earth's magnetic field, and this disturbance (if large enough) is detected. Gradiometer metal detectors are usually walk-through devices, but can also be mounted on a vehicle such as police car, with the intent of detecting ferromagnetic weapons (e.g., guns) carried by persons approaching the vehicle. Gradiometer metal detectors are limited to the detection of ferromagnetic objects and so are not suitable for security situations where a would-be evader of the system is likely to have access to nonferromagnetic weapons.
The magnetic imaging portal is a relatively new technology. Like traditional walk-through metal detectors, it illuminates its detection space with radio-frequency electromagnetic waves; however, it does so using a number of small antennas arranged in a ring-like formation around its portal, pointing inward. Each of these antennas transmits in turn to the antennas on the far side of the array; each antenna acts as a receiver whenever it is not transmitting. A complete scan of the detection space can take place in the time it takes a person to walk through the portal. Using computational techniques adapted from computed axial tomography (CAT) scanning, a crude image of the person (or other object) inside the portal is calculated and displayed. The magnetic imaging portal may for some purposes be classed as a metal detector rather than as an imaging system because it does not produce a detailed image of the metal object detected, but only reveals its location and approximate size.
SEE ALSO Crime scene investigation.