The disclosed technology relates generally to fire prevention, and more particularly to prevention of the spreading of fires through electrical conduits.
In a technologically advanced society, personal injuries and financial damage continue to result from structure fires all over the world. While electricity makes our lives easier in many ways, the increase in electronically powered devices in a given building means a greater number of wires laid throughout the structure of the building. Having a great number of wires increases the risk of a faulted or frayed wire. Furthermore, a greater number of wires results in faster spreading of fire started from other sources. Due to the wires' conduction of heat and/or electricity, fires are easily spread along conductors to different rooms and portions of a structure.
Different devices and materials are often used at electrical through-penetrations to prevent the spread of fire. Through-penetrations are the openings between rooms or portions of a given structure through which utility conduits pass. Typically, such conduits are plumbing pipes, stand-alone wires, or conduits containing wires. The fire-resistant materials used provide an effective impedance to the spread of fires. One such device and/or material used to prevent fire from spreading through these junctures is firestop. Firestop components typically involve intumescents, cemetitious mortars, silicone, firestop pillows, mineral fibers and rubber compounds strategically places at through-penetrations and other locations to impede the spread of a fire.
While these firestop systems prove effective in preventing the spread of fire to different rooms or regions of a building, they are typically only used at through-penetrations and thus only stop the burning of conduits at these points. Thus, in a large room or long corridor, where no through-penetrations exist, there may not be any firestop systems along a large length of a given conduit. As such, no effective measure would be place to prevent the spread of a fire throughout that particular room or corridor.
Therefore, it is an object of the disclosed technology to prevent the spreading of fires through an entire length of an electrical conduit.
In an embodiment of the disclosed technology, a conduit has opening on at least two ends thereof. The conduit has a conductive metal wire extending substantially to said at least two ends. The conduit also has a non-conductive wire that is formed primarily of heat-expandable material. The non-conductive wire extends substantially to said at least two ends. The non-conductive wire is calibrated to fill a cross-section of said conduit upon reaching a threshold temperature.
“Substantially” is defined as covering an entire distance of within 20 cm of a total length of the conduit, or at least 95% of an entire length of the conduit. “Conduit” is defined as an elongated tube having a hollow passageway extending at least substantially there through from a first opening to a second opening. The tube may have a circular, rectangular, or other shaped cross-section. A “wire” is defined as an elongated, thin, flexible thread or rod of material. “Conductive,” for purposes of this disclosure, is defined as “designed for transmission of electric power or electric signals.” A “non-conductive wire,” for the purposes of this disclosure, is defined as an elongated length of material designed to insulate (stop) the passage of electric signals there through. The non-conductive wire may consist or comprise of a single strand of such wire, or multiple strands which are run together or separately through a conduit, forming the entirety of the “non-conductive wire”. The “cross-section” of the wire is defined as the surface or shape that is or would be exposed by making a straight/perpendicular cut through any portion of the length of the conduit.
In a further embodiment of the disclosed technology, the non-conductive wire occupies less than 25% of the cross-section before expansion, and occupies greater than 90% of said cross-section after expansion. Still further, all of the wires in the conduit, including the non-conductive wire, may be braided or intertwined with one another. In another embodiment, the non-conductive wire may surround the conductive wire or wires. The non-conductive wire may be permanently affixed to the conductive wire as well. “Permanently affixed” is defined as being irreversibly adhered to or around the conductive wire. Further, the non-conductive wire may fill at least a majority of a void between the conductive wire and the conduit.
In still a further embodiment of the disclosed technology, the filled cross-section extends along a substantially the length of the conduit between the at least two ends. Upon the threshold temperature being reached, the non-conductive wire expands to multiple times its original volume/cross-section. The expanding material may cause the conductive wires and/of the outer sleeve to rupture. At the very least, the material shall engulf the conductive wires, thereby preventing the spread of heat and fire along the length of the conductive wire and/or the conduit.
In another embodiment of the disclosed technology, a conduit has an opening on at least two ends thereof. The conduit has at least one conductive wire extending along an interior length of the conduit, between the two ends. The conduit also has a sleeve or outer covering surrounding the wire and extending between the two ends of the conduit. The sleeve may be formed of an insulating material, such as a polymer or rubber. A “sleeve” is defined as a tubular, flexible insulation in which a bare metal wire may be disposed or inserted. The space between the sleeve and conductive wires may define a void. A volume of heat-expandable, non-conductive material injected into the void.
In a further embodiment the heat-expandable, non-conductive material may occupy at least 90% of the void extending substantially between the two ends. The non-conductive material may be expandable to rupture the conductive wire upon exposure to heat exceeding a temperature threshold. The expanding material may also rupture the sleeve of the conduit such that the entire conduit is engulfed in the non-conductive material.
It should be understood that the use of “and/or” is defined inclusively such that the term “a and/or b” should be read to include the sets: “a and b,” “a or b,” “a,” “b.” Further details are set forth in the detailed description below.
Embodiments of the disclosed technology are directed to apparatuses having a conduit with at least one length of conductive metal wire therein along with a length of non-conductive wire therein. The length of non-conductive wire comprises a heat-expandable firestop insulator material. Upon reaching a pre-defined temperature corresponding to that of a fire, the non-conductive wire expands to fill a length of the conduit. Alternatively, the firestop insulator material may be disposed in the (former) void within the conduit that exists outside of the conductors. The expansion of the material prevents the spread of fire along the length of the conduit.
Embodiments of the disclosed technology will become clearer in view of the following description of the Figures.
Referring still to
The firestop material used to form the non-conductive wire may be an intumescent. Intumescents are substances that swell as a result of heat exposure. The swelling causes an increase in volume and a correlating decrease in density. Intumescents typically come in two forms: 1) soft chars and 2) hard chars. Soft chars contain a significant amount of hydrates which retard heat transfer. As the hydrates are heated, water vapor is released which provides a cooling effect, thereby further preventing the transfer of heat. The expanded material blocks the spread of fire by formed a non-flammable, soft carbonaceous char. Hard chars on the other hand are composed of sodium silicates and/or graphite. These chars produce a much greater expansion pressure which is capable of exerting a greater force on surrounding objects. As such, a hard char may be more suitable for embodiments in which a small volume or void is filled with firestop material.
The non-conductive tube 50 may have ridges 52 extending along an outer surface thereof 52. Upon application of a flame to the non-conductive tube 50 the heat-activated material expands to at least the conductors 40. Depending on the density of the filling forming the non-conductive tube 50, the expansion of the filling may either engulf, rupture or pull apart the braided conductors 40. Further, the expansion of the non-conductive tube 50 may rupture the sleeve 110 of the conduit 100.
In an alternative embodiment, one or more of the braid wires 40 may be a non-conductive heat-expandable wire. In this embodiment, other conductors may extend along the central axis 200 of the conduit 100 or be intertwined with the braided non-conductive wire. If the entire braided portion 40 of the conduit 100 is formed of heat-expandable material, the interior conductors would be inaccessible by a flame because a fire would first reach the exterior non-conductive wire and cause expansion of the wire prior to reaching the interior conductors.
Thermal conductivity of the intumescense that is used as the filling may vary. A given intumescense has an active or transition temperature of Ta. This represents the temperature at which the intumescense coating should divide into two layers. The two layers are called the virgin layer and the char layer. This division is governed by the effective thermal conductivity of the intumescense. Assuming a constant specific mass and a constant specific heat, the effective thermal conductivity of the intumescense is governed by the following equation:
Where 0<x<L(t). Thus, at the surface or boundary of the intumescense coating, the heat entering the char is equal to the heat arriving at the coating minus any heat losses due to convection and/or radiation. Thus, the coefficient of thermal conductivity, keff, over this gradient is governed by:
Where qr is the radiant heat flux emitted and x=L(t). The effective thermal conductivity of an intumescense may be used to determine how much filling is needed in embodiments of the disclosed technology. These defined reaction mechanisms account for an initial stage of preheating where thermal energy is absorbed by the coating and its temperature increases quick. When the temperature at the virgin coating surface reaches the an activation temperature, heat is absorbed by the coating, and gas bubbles are formed thereby resulting in initiation of growth of a black carbonaceous char.
As the heat propagates through the virgin material (the unheated intumescense) the carbonaceous char keeps growing until the moving boundary reaches the substrate and the entirety of the intumescense coating has been consumed. The growing of the char demonstrates the heat-expanding properties of the firestop material. Given the above equations, the amount of virgin material exponentially increases the volume of the char upon exposure to heat. Thus, the amount of firestop material needed to engulf or rupture the conductive wires may be determined using these equations.
In embodiments of the disclosed technology, a heat sensitive wire, such as wire 290 may be used. This wire may be a conductive wire or a firestop wire or both. In the art, this is known as a “resistance thermometer” which has sensors used to measure temperature by determining temperature based on resistance in the wire. This may be accomplished, for example, by using a length of fine coiled wire wrapped around a ceramic or glass core, as represented by 290 in
While the disclosed technology has been taught with specific reference to the above embodiments, a person having ordinary skill in the art will recognize that changes can be made in form and detail without departing from the spirit and the scope of the disclosed technology. The described embodiments are to be considered in all respects only as illustrative and not restrictive. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope. Combinations of any of the methods, systems, and devices described hereinabove are also contemplated and within the scope of the disclosed technology.
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Number | Date | Country | |
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20160045773 A1 | Feb 2016 | US |