The present invention relates to a fire extinguisher that extinguishes or suppresses a flame by generating aerosol by combustion.
A fire extinguishing agent composition for generating an aerosol by combustion to extinguish or suppress fire is known (for example, Patent Literature 1). Such a fire extinguishing agent composition can be used, for example, as liquid form such as dispersion, or as solid form such as powder or molded product having a desired shape.
For example, a fire extinguishing agent composition molded thinly like a sheet is considered to have high convenience because it can be installed in a limited space. However, with respect to such a form of the fire extinguishing agent, it is necessary to design separately for installation such as shape retention.
Therefore, an object of the present invention is to provide a fire extinguisher capable of easily installing a thinly molded fire extinguishing agent.
In order to solve the above-mentioned problems, the present invention provides a fire extinguisher comprising a fire extinguishing agent layer that generates aerosol by combustion, a first plate covering a first surface of the fire extinguishing agent layer and having a blowout aperture for the aerosol, and a second plate covering a second surface of the fire extinguishing agent layer, which is opposite to the first surface.
In the fire extinguisher of the present invention having the above-described configuration, it is preferable that an edge of the first plate and an edge of the second plate is connected to each other.
Further, in the fire extinguisher of the present invention having the above-described configuration, it is preferable that a peripheral wall extending toward the second plate is provided at the edge of the first plate.
In the fire extinguisher of the present invention having the above-described configuration, it is preferable that the first plate and the peripheral wall are made of a metal material or a resin material.
Further, in the fire extinguisher of the present invention having the above-described configuration, it is preferable that further comprises a fixing means for fixing the fire extinguisher to a desired mounting location.
Further, in the fire extinguisher of the present invention having the above-described configuration, it is preferable that the fire extinguishing agent layer contains potassium chlorate and a fire extinguishing agent having a DSC evaluation (100 to 400° C., 10° C. per minute temperature rise) and a total endothermic peak amount of 100 J/g to 900 J/g.
In accordance with the present invention, it is possible to easily install a thinly molded fire extinguishing agent.
Hereinafter, some of embodiments of the present invention will be described in detail with reference to the drawings. However, the present invention would not be limited to those drawings. Further, since the drawings are for conceptually explaining the present invention, dimensions of the respective constituent elements expressed and ratios thereof may be different from actual ones for easy understanding.
In the fire extinguisher disclosed below, the fire extinguishing agent layer (substantially a sheet-shaped fire extinguishing agent) housed in a housing ignites at a predetermined temperature to generate an aerosol, and the generated aerosol is ejected from apertures to extinguish or suppress the fire. The fire extinguisher is preferably attached, for example, in a closed space containing combustible materials or in the vicinity of equipment that may cause ignition. Examples of the former include electrochemical devices (storage batteries, capacitors, etc.), electronic devices and power generation equipment. (nacelles of wind power generation system, etc.), containers (trash box, etc.), and the like. Further, examples of the latter include a charger and a contact terminal. In other words, the fire extinguisher is so designed as to be installed in a limited space.
The fire extinguisher in accordance with the first embodiment will be described with reference to
The fire extinguisher 1 in accordance with the present embodiment includes a fire extinguishing agent layer 11, plates 13, 15 and a peripheral wall 17. The plates 13 and 15 and the peripheral wall 17 of these components constitute a fire extinguishing agent container.
The fire extinguisher 1 and the fire extinguishing agent container have a thin shape as a whole as shown in
The components of the fire extinguisher 1 will be described. The fire extinguishing agent layer 11 is a chemical agent that generates an aerosol by combustion, and is molded in a sheet shape. Here, the sheet shape means, for example, that the fire extinguishing agent has a thickness (thinness) that cannot maintain its shape due to its own weight when it is held horizontally, or has a thickness that cannot stand on its own when the peripheral surface is grounded. Therefore, the fire extinguishing agent layer 11 has a surface 111 corresponding to the first surface and a surface 113 corresponding to the second surface opposite to the first surface. The fire extinguishing agent layer 11 may have a shape that is continuous over the entire surface or a shape that has a partially discontinuous portion.
In the present embodiment, the fire extinguishing agent layer 11 has a rectangular shape corresponding to the shape of the storage space S (see
As shown in
As shown in
Next, as shown in
The plate 15 is attached to the peripheral wall 17 via a holding means (not shown). As the holding means, for example, there can be employed an adhesive tape, and a groove or a protrusion provided on the inner peripheral surface of the peripheral wall 17 which can engage with the outer edge of the plate 15.
As shown in
The storage space S is preferably closed except for the blowout aperture 131. As a result, the directivity of the aerosol ejected from the blowout aperture 131 is enhanced, and the flame can be effectively extinguished or suppressed.
In the present embodiment, for example, as shown in
The fire extinguisher 1 may also have a fixing means 19 for fixing the fire extinguisher 1 to a desired mounting location. In the present embodiment, as the fixing means 19, a screw aperture is assumed, but the fixing means 19 may be, for example, a double-sided tape or a hook. Further, the fire extinguisher 1 may be welded to the mounting location.
The fire extinguisher 1 having the above-described configuration is assembled by the following procedure.
As shown in
Then, the fire extinguisher 1 thus assembled in this manner is attached to a desired attachment location via the fixing means 19. At that time, it is preferable that the fire extinguisher 1 is installed so that the plate 13 having the blowout aperture 131 faces the expected fire source of the flame.
In accordance with the first embodiment, the shape of the fire extinguishing agent layer 11 formed thinly like a sheet can be easily maintained. Further, since the fire extinguisher 1 as a whole has a small thickness, it can be easily installed in a limited space.
Further, since the storage space S is closed except for the blowout aperture 19, the aerosol ejected from the blowout aperture 19 has a certain directivity. Therefore, the aerosol can be efficiently supplied to the fire source, which results in improvement in fire extinguishing performance.
Further, since the fire extinguishing agent layer 11 can be replaced by removing the plate 15, it is easy to replace the fire extinguishing agent layer 11 and maintain the fire extinguisher 1.
Here, the fire extinguishing agent (fire extinguishing agent composition) used for the fire extinguishing agent layer 11 of the present embodiment will be described. As the fire extinguishing agent composition, various ones belonging to or not belonging to the classification of explosives can be used.
The fire extinguishing agent in the present embodiment contains, for example, 20 to 50% by mass of a fuel (component A) and 80 to 50% by mass of a chlorate (component B), and further, contains 6 to 1000 parts by mass of a potassium salt (component C) with respect to 100 parts by mass of the total amount of the fuel and the chlorate, and has a thermal decomposition start temperature in the range of more than 90° C. to 260° C.
The fuel as the component A is a component for generating thermal energy by combustion together with the chlorate as the component B to generate an aerosol (potassium radical) derived from the potassium salt of the component C.
As the fuel for the component A, preferable is, for example, at least one selected from dicyandiamide, nitroguanidine, guanidine nitrate, urea, melamine, melamine cyanurate, avicel, guagam, sodium carboxylmethylcellulose, potassium carboxylmethylcellulose, ammonium carboxylmethylcellulose, nitrocellulose, aluminum, boron, and magnesium, magnalium, zirconium, titanium, titanium hydride, tungsten and silicon.
The chlorate of the component B is a strong oxidizing agent, and is a component for generating thermal energy by combustion together with the fuel of component A and generating an aerosol (potassium radical) derived from the potassium salt of component C.
As the chlorate of the component B, preferable is, for example, at least one selected from potassium chlorate, sodium chlorate, strontium chlorate, ammonium chlorate and magnesium chlorate is preferable.
Here, the content ratio of the fuel of the component A and the chlorate of the component B in the total 100% by mass is as follows.
Next, the potassium salt of the component C is a component for generating an aerosol (potassium radical) by the thermal energy generated by the combustion of the component A and the component B.
As the potassium salt for the component C, preferable is, for example, at least one selected from potassium acetate, potassium propionate, monopotassium citrate, dipotassium citrate, tripotassium citrate, monopotassium trihydrogen ethylenediaminetetraacetate, dipotassium dihydrogen ethylenediaminetetraacetate, tripotassium monohydrogen ethylenediaminetetraacetate, tetrapotassium ethylenediaminetetraacetate, potassium hydrogen phthalate, dipotassium phthalate, potassium hydrogen oxalate, dipotassium oxalate and potassium bicarbonate.
The content ratio of the C component is preferably 6 to 1000 parts by mass, and more preferably 10 to 900 parts by mass with respect to 100 parts by mass of the total amount of the component A and the component B.
Furthermore, the fire extinguishing agent composition of the present embodiment is a composition having a thermal decomposition start temperature in the range of more than 90° C. to 260° C., preferably more than 150° C. to 260° C. Such a range of the thermal decomposition start temperature can be adjusted by combining the above-mentioned component A, component B and component C in the above ratio.
When satisfying the above range of the thermal decomposition start temperature, in accordance with the fire extinguishing agent composition of the present embodiment, for example, without using an ignition device or the like, the component A and the component B can automatically be ignited and burned by receiving the heat at the time of the fire generation to generate an aerosol (potassium radical) derived from the component C, and then the fire can be extinguished.
Since the ignition temperature of woods, which are generally used as a combustible material in a room, is 260° C., when setting the thermal decomposition start temperature as a condition where it does not start at 90° C. or less, which is the general operating temperature of a heat detector of an automatic fire alarm system installed in a place where fire is handled, the fire can be extinguished quickly and the malfunction of the heat detector can be prevented. Particularly, since the maximum set temperature of the heat detector is 150° C., high availability can be obtained by setting the lower limit of the thermal decomposition start temperature to more than 150° C.
As an example of a method for molding the fire extinguishing agent, there is a method where mixing the above composition with a hinder, spread to a desired thickness, for example, with rollers and cut to a desired size. Alternatively, a mixture of the fire extinguishing agent composition and the binder may be applied to a support member such as a paper.
Here, specifical examples of the material of the binder include polyolefin resins such as a polypropylene-based resin, a polyethylene-based resin, a poly (1-)butene-based resin and a polypentene-based resin; thermoplastic resins such as a polystyrene-based resin, an acrylonitrile-butadiene-styrene-based resin, a methyl methacrylate-butadiene-styrene resin, ethylene-vinyl acetate resin, ethylene-propylene resin, a polycarbonate-based resin, a polyphenylene ether-based resin, an acrylic-based resin, a polyimide-based resin and a polyvinyl chloride-based resin; rubbers such as natural rubber (NR), isoprene rubber (IR), butadiene rubber (BR), 1,2-polybutadiene rubber (1,2-BR), styrene-butadiene rubber (SBR), chloroprene rubber (CR), nitrile rubber (NBR), butyl rubber (IIR), ethylene-propylene rubber (EPR, EPDM), chlorosulfonated polyethylene (CSM), acrylic rubber (ACM, ANM), epichlorohydrin rubber (CO, ECO), polysulfide rubber (T), silicone rubber (Q), fluororubber (FKM, FZ) and urethane rubber (U); thermosetting resins such as polyurethane resin, polyisocyanate resin, polyisocyanurate resin, phenol resin and epoxy resin; latexes of the above thermoplastic resins and the rubbers; emulsions such as thermoplastic resins and the rubbers; cellulose derivatives such as CMC (carboxymethyl cellulose), HEC (hydroxyethyl cellulose) and HPMC (hydroxypropyl methyl cellulose), and the like.
The fire extinguisher in accordance with the second embodiment will be described with reference to
The fire extinguisher 2 in accordance with the present embodiment includes, for example, a fire extinguishing agent layer 21, plates 23, 25, and a peripheral wall 27, as shown in
As the fire extinguishing agent layer 21, it is possible to use the same one as the fire extinguishing agent layer 11 of the first embodiment. The plate 25 may also be the same as the plate 15 of the first embodiment, for example, as shown in
In the present embodiment, the plate 23 and the peripheral wall 27 are constituted as separate members. Therefore, the plate 23 can be easily manufactured by drilling the blowout apertures 231 in the plate material, for example, as shown in
The plates 23 and 25 are attached to the peripheral wall 27 (see
One example of an assembly method of the fire extinguisher 2 having such a constitution will be described with reference to
Further, the other assembling method of the fire extinguisher 2 will be described with reference to
Firstly, the plate 23, the fire extinguishing agent layer 21, and the plate 25 are stacked in this order. Next, the peripheral wall 27 is formed by applying or winding the resin on the outer peripheral surface of the stacked members. Examples of the resin used here include modified polyphenylene ether (PPE) resin, polyimide resin, polycarbonate resin, polyethylene terephthalate (PET) resin, polybutylene terephthalate (PBT) resin, fluororesin, polyacetal (POM) resin, polyether imide (PEI) resin, polyether sulfone (PES) resin, polyphenylene sulfone (PPS) resin, liquid crystal polymer (LCP) resin, and the like.
In accordance with the second embodiment, as in the first embodiment, the thinly molded fire extinguishing agent layer 21 can be easily held and can be easily installed in a limited space. Furthermore, since each component has a simple shape, reduction in manufacturing cost can be expected.
The fire extinguisher in accordance with the third embodiment will be described with reference to
As shown in
The plate 33 has a blowout aperture 331 and is bent toward the plate 35 at the edge 33A. Further, the plate 35 is bent toward the plate 33 at the edge 35A. The materials of the plates 33 and 35 may be the same as the materials of the plates 13 and 15 of the first embodiment.
As shown in
In the present embodiment, the plates 33 and 35 also serve as the peripheral wall. Therefore, the plates 33 and 35 can be easily and inexpensively manufactured by drilling the blowout aperture 331 in the plate material and bending the edge.
The representative embodiments of the present invention have been described above, but the present invention is not limited only to these embodiments, and various design changes are possible, and those are included in the present invention.
For example, a screen may be inserted between the plate 13 (23, 33) and the fire extinguishing agent layer 11 (21, 31) to prevent the fire extinguishing agent constituting the fire extinguishing agent layer 11 (21, 31) from peeling off to the outside. As the screen, there may be a wire mesh, a thin paper, a resin sheet, or the like.
Number | Date | Country | Kind |
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2018-165072 | Sep 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/034401 | 9/2/2019 | WO | 00 |