The present invention relates to an analog line-type fixed temperature fire detection cable, in which a fusible insulation layer is added between two detection conductors. Therefore, the problem of false alarm of an analog line-type fixed temperature fire detection cable resulted from the length of the detector and the environment temperature has been solved.
Conventional analog line-type fixed temperature fire detection cable of NTC characteristic is a kind of widely used fire detection cable of the prior art, wherein
The object of the present invention is to provide an analog line-type fixed temperature detection cable with a fusible insulation layer having a fusion temperature of 20□˜140□ positioned between two detection conductors, thereby increasing reliability and usable length of the analog line-type fixed temperature detection cable.
The object of the present invention is achieved by the following technical solution, that is, an analog line-type fixed temperature detection cable characterized by comprising two detection conductors positioned in parallel, an isolation layer of NTC characteristic, a fusible insulation layer having a fusion temperature of 20□˜140□, wherein the isolation layer of NTC characteristics and the fusible insulation layer are interposed between the two parallel detection conductors.
The present invention has the following advantage over the prior art:
1. The influence of the usable length of the detector and the temperature of environment where the detection cable is located on the alarm temperature of the detector is eliminated by using a fusible insulation layer having a fusion temperature of 20□˜140□ in the fixed temperature fire detection cable of the present invention.
2. The present invention has overcome false alarm resulted from the length of the detection cable and the environment temperature in the conventional analog line-type fixed temperature detector.
The present invention will be further described hereafter with reference to the accompanying drawings and the preferred embodiments.
Referring to
1. The two detection conductors 4, 5 are provided side by side, as shown in
2. The two detection conductors 4, 5 are twisted together. That is, one conductor may be twisted on the other or the two are twisted together with an equal pitch, as shown in
3. One “4” of the two detection conductors 4, 5 is a core-shaped conductor, and the other one “5” is a sleeve-shaped conductor. The sleeve-shaped conductor surrounds the core-shaped conductor to form a coaxial cable structure, as shown in
The detection conductor may be a hollow wire, solid wire or metal fiber woven wire in the present embodiment. In the practical application, the combination of the isolation layer of NTC characteristics and the fusible insulation layer with the detection conductor is in the form of conventional coating of a wire isolation layer, and may be in the following forms:
1. One of the two detection conductors is coated with a fusible insulation layer, while the other one is coated with an isolation layer of NTC characteristics, as shown in
2. At least one of the two detection conductors is coated with an isolation layer of NTC characteristics and a fusible insulation layer in such an order from inside to outside.
3. At least one of the two detection conductors is coated with a fusible insulation layer and an isolation layer of NTC characteristics in such an order from inside to outside.
In the present embodiment, the fusible insulation layer may be wax, naphthalene, anthracene, stearic acid, or rosone, it may also be polyvinyl chloride, polyethylene, caoutchouc, neoprene or acrylonitrile-butadiene rubber. The fusible insulation layer may have a thickness of 0.05-10 mm. The isolation layer of NTC characteristics (isolation layer of negative temperature coefficient characteristics) is made of one of the high molecular conducting materials including polyacetylene, polyaniline, polythiophene, polyphthalocyanine as main conducting material, and has a thickness of 0.1 mm˜5 mm. The temperature of the detection cable increases when heated. The two detection conductors are insulated from each other when the temperature has not reached the softening (fusing) temperature range of the fusible insulation layer. When the heating temperature of the detection cable continues to increase and reaches the fusing temperature range of the fusible insulation layer, the fusible insulation layer fuses or softens, and deformation stress in the two detection conductors eliminates the insulation resistance of the fusible insulation layer between the two detection conductors where the detection cable is heated. Thus, the detection cable is converted into a conventional NTC analog line-type fixed temperature fire alarm detection cable, the resistance between the two parallel conductors decreases as the temperature increases, and a fixed temperature alarm is performed according to the variance value of other electric parameters resulting from the resistance or resistance variance.
In the present invention, the conductor and insulator as mentioned mean relative conductor and relative insulator, and the difference between a conductor and an insulator may be defined by a ratio of resistance of an insulator to that of a conductor that is greater than 108.
Referring to
The detection conductors, isolation layer of NTC characteristics and fusible insulation layer are coated with an insulated sleeve 12. So called parallel means that the two detection conductors are either positioned side by side, or twisted together (one twisting on the other or the two are twisted together in equal pitches manner), or one of the two detection conductors is a core-shape conductor and the other is a sleeve-shape conductor, with the sleeve-shape conductor surrounding the core-shape conductor to form a coaxial cable structure. The insulated sleeve is used to provide insulation from outside.
Referring to
Referring to
Number | Date | Country | Kind |
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200510114820.4 | Nov 2005 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN06/00860 | 4/29/2006 | WO | 12/3/2007 |