KR20160001885A - Fire extinguisher - Google Patents
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- KR20160001885A KR20160001885A KR1020140079861A KR20140079861A KR20160001885A KR 20160001885 A KR20160001885 A KR 20160001885A KR 1020140079861 A KR1020140079861 A KR 1020140079861A KR 20140079861 A KR20140079861 A KR 20140079861A KR 20160001885 A KR20160001885 A KR 20160001885A
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Abstract
The present invention relates to a fire extinguisher. Disclosure of the Invention The present invention relates to an explosive device for igniting and igniting a flammable substance, And an ignition switch for igniting and igniting a flammable substance contained in the detonator, wherein the ignition switch is installed in an exposed state, and a fire extinguisher case having a fire extinguishing agent . The present invention can easily operate the fire extinguisher because the detonator ignites the ignition material inside by the ignition switch exposed to the outside.
Description
FIELD OF THE INVENTION The present invention relates to a fire extinguisher, and more particularly to a fire extinguisher equipped with a fire extinguisher for a fire extinguisher. More particularly, the present invention relates to a portable hand held type fire extinguisher.
Initiators, such as gunpowder, that are instantly bulky due to external impact or heat, are typically exploded by an explosive device. These detonators are mainly used for explosive materials, but they are also widely used in solid aerosol fire extinguishing systems that spray fire extinguishing agents.
Here, the above-mentioned solid aerosol fire extinguishing apparatus is roughly divided into a small portable fire extinguisher called a handheld based on the size and a middle or large-sized fire extinguisher. In the solid aerosol fire extinguishing device, a powdered fire extinguishing agent is embedded in the inside of the solid aerosol fire extinguishing device together with the above-mentioned detonating device, and when the detonator is operated by operating buttons or operating levers, fire extinguishing agent is generated while extinguishing agent is burned. And, in the solid aerosol fire extinguishing system, the extinguishing component is injected through the nozzle by the pressure of the gas generated together with the extinguishing component.
These solid aerosol fire extinguishing systems are superior to other fire extinguishing systems because of the small size of the particles generated during combustion. Therefore, the solid aerosol fire extinguishing system is used in various places such as factories, art museums, libraries, computer rooms, mobile communication facilities, ships and the like, and recently it is installed in vehicles.
On the other hand, the aforementioned solid aerosol fire extinguishing device is provided with an explosion device as disclosed in Korean Patent No. 10-1118618 (an activating part for a solid aerosol fire extinguishing device). 1, the detonator has a
The
When the
However, in such a prior art fire extinguishing device, since the heating portion is assembled in such a manner that the insulating material of a cylindrical structure is fitted into the through hole of the housing, the heating portion is basically difficult to increase the heating amount to the heating coil, It is necessary to change the size of the insulating material when changing the size. In this case, the size of the through hole of the housing must be changed, and the size of the detonator generally increases.
In addition, since the heating coil is disposed on one end face of the insulating material, the contact area between the heating coil and the extinguishing agent inside the housing is minimized, and the heat generating function is lowered accordingly.
On the other hand, in the detonator described above, the
In addition, since the battery is connected to the
On the other hand, the above-mentioned fire extinguisher has a built-in coolant for cooling the fire extinguishing component to be ejected. Particularly, among the above-mentioned fire extinguishers, small portable fire extinguishers are equipped with granular coolants on the side of the air outlet. Thus, the ejected extinguishing component is cooled while being ejected through the spaces between the coolants. However, these fire extinguishers occasionally block the pores between the coolants by the totally unburned fire extinguishers, so that the extinguishing components are often not ejected smoothly. In particular, as the extinguishing component is comprised of powder, the pores between the coolants are easily occluded.
In addition, since the extinguishing component to be burned is discharged only through the exhaust port, the extinguishing amount of the extinguisher is not smooth compared to the amount of combustion, and thus there is a risk of safety risk due to an increase in internal pressure.
It is an object of the present invention to provide a fire extinguisher capable of expelling an explosive device through an ignition switch by exposing an ignition switch.
In addition, a fire extinguisher having a detonator equipped with a heating element capable of discharging a flammable and gasified flammable substance at a high pressure in addition to heating the flammable vapor while being in surface contact with the flammable explosive is provided The purpose is to do that.
In particular, it is an object of the present invention to provide a fire extinguisher equipped with an exothermic body which is composed of an area heating body and generates heat by electricity, and which is capable of supplying power stored in the heating body.
It is also possible to provide a fire extinguisher equipped with a detonator capable of discharging the initiator to be gasified at high pressure, preventing the outflow of the initiator made of the ignition-ignition material, and firmly fixing the internal part in a fixed position It is another purpose to do so.
Another object of the present invention is to provide a fire extinguisher having an explosive device capable of protecting a circuit provided with a device for storing power.
Another object of the present invention is to provide a fire extinguisher capable of being portable, capable of cooling an ejected fire extinguishing agent, and capable of separating the coolant and the fire extinguishing agent.
Another object of the present invention is to provide a fire extinguisher capable of not only completely preventing the completely unburned fire extinguishing agent from being supplied to the voids of the coolants but also discharging the extinguishing agent smoothly.
According to an aspect of the present invention, there is provided a fire extinguisher comprising: an igniter for igniting and igniting an internal ignition material; And an ignition switch for igniting and igniting a flammable substance contained in the detonator, wherein the ignition switch is installed in an exposed state, and a fire extinguisher case having a fire extinguishing agent .
The detonator may include, for example, a heating element having a power supply terminal to which power is supplied and generating heat by a power supply of the power supply terminal; Wherein the flammable material which is ignited in a gasified state while being heated by the heating element and the heating element is embedded in one side and the four sides are shielded in a sealed state to isolate the heating element and the flammable material from the outside, A casing provided with an orifice for discharging the flammable material vaporized through the orifice to the outside; And ignition power supply means for supplying a power stored in the power terminal of the heating element as an ignition power supply.
Here, the ignition power supply means may supply power stored in the power terminal of the heating element through a cable.
The heating element is, for example, a plate formed in a plate shape and composed of a heat conductive material capable of generating heat; And a heating unit provided on the surface of the base plate, the heater being provided on the surface of the base plate and generating heat by a power source of the power terminal.
It is preferable that the heating element is constituted by a conductive pattern of a conductive material in which the base plate is made of a ceramic material and the heat generating portion is printed on at least one of the both side surfaces of the base plate.
The casing may further include a filter formed with a hole having a size smaller than the size of the particles of the flammable material to allow discharge of the flammable material while preventing the flow of the flammable material.
The detonator may further include a fastener installed inside the casing in which the phosphor material is embedded and a fastener supporting the heating element to which power is supplied from the cable to fix the heating element in a predetermined position.
The fastener may include, for example, a hollow sleeve which is embedded in the casing and supports the side of the heating element.
The sleeve is formed of a rod or a block of elastic material formed elongated along the longitudinal direction of the casing and is formed in a hollow shape by forming a guide hole through which the heating element penetrates.
The cable may be splined to an end of the sleeve at an end.
The casing further includes a stopper shielding one side of the sleeve facing the print material to block heat of the print material vaporized.
Wherein the casing is a hollow tube in which a part of the heating element and the cable are respectively located at one side and the other side of the inside and the other side where the cable is positioned is sealed by cogging; And a cap for sealing one side of the hollow tube where the heating element is located.
The casing includes: a step seating portion for restricting entry of the cable; And a washer which is installed in the step seating portion and is made of an elastic material and is expanded and contracted while being pressed by the cogging of the hollow tube.
The ignition power supply means includes, for example, a battery for supplying power; An energy storage device for storing power supplied from the battery and supplying power stored in the power terminal of the heating element; And an ignition switch for interrupting a charged power source supplied from the energy storage device to the power source terminal of the heating element to ignite the printed material of the casing through the heating element, The switch is characterized by being connected in a circuit.
According to the present invention, there is provided an ignition power supply apparatus comprising: an ignition power supply unit configured to ignite an ignition power supply unit, the ignition power supply unit being configured to control the energization of a stored power source applied to the heating element according to a capacity of a power source stored in the energy storage device, And energization control means for protecting the circuit of the power supply means.
For example, when the power stored in the energy storage device is stored at a predetermined voltage, the power supply control means applies the stored power to the heating element, and when the voltage of the stored power supply becomes lower than the set voltage, the stored power is supplied to the heating element And a MOSFET for blocking off the on-off state.
On the other hand, the fire extinguisher case includes, for example, an outer case having the detonator built in one side, the ignition switch of the detonator being mounted in an exposed state, having an air outlet in the form of a hole and at least one handle; A fire extinguishing agent is embedded in the other side of the outer case so that the casing of the fire extinguishing device is inserted therethrough and the fire extinguishing device is embedded with an extinguishing agent which is burned by the ignition material ignited as the ignition material is ignited, An inner case communicating with an ejection port of the outer case in an opened state and being sprayed to the ejection port through one end of the extinguishing medium which is burned by the burning substance; And a shield cover which shields one end of the inner case so as to be airtight so as to confine the extinguishing agent inside the inner case in a state capable of ejecting the extinguishing agent.
The inner case may be filled with a coolant in a granular form for cooling the extinguishing agent sprayed through the shielding cover on one side where the shielding cover is installed.
The present invention further needs to include a spacer which is built in the inner case and separates air between the coolant and the extinguishing agent so as to be airtightly separated.
The spacer may include, for example, a plurality of extinguishing agent adhering plates closely adhered to the extinguishing agent; A coolant adhering plate which is in an alternating state with the extinguishing medium adhering plate and is closely adhered to the coolant; And a linkage connecting the coolant adhering plate and the extinguishing medium adhering plate.
In the inner case, an additional coolant in the form of a granule configured in the same manner as the coolant is embedded along the inner circumferential surface so that the coolant can shield the outside of the extinguishing agent.
The additional coolant is cooled while guiding the extinguishing agent burned inside the inner case through the air gap.
The inner case is made up of a solid aerosol cake in which the extinguishing agent is formed into a solid mass.
In the inner case, a hollow is formed at the center of the extinguishing agent to guide the extinguishing agent to be burned through the hollow.
As described above, according to the fire extinguisher of the present invention, the fire extinguishing device ignites the ignition material inside by the ignition switch which is exposed to the outside, so that the fire extinguisher can be operated easily.
In addition, since the flammable material ignited by the detonator is vaporized and discharged through the orifice of the casing, the vaporized flammable material can be discharged at a high pressure. In addition, the heat generated from the heating element, which is provided on the surface of the base plate, Since the heat is generated on the surface by the power source of the power terminal, the contact area with the initiator made of a flammable material is maximized, so that the thermal efficiency for the initiator can be increased and the rate of temperature rise can be shortened. It is possible to provide a compact fire extinguisher as a whole and to stably extinguish the fire extinguishing agent in a short time.
In particular, since the plate-like base plate constituting the heating element of the detonator is made of ceramic, heat can be generated with high heat and the heat-generating portion is formed as a pattern on the base plate so as to be patterned, The base plate can be easily heated as a whole in a short time.
In addition, since the power terminal is brazed to the brazing portion of the base plate, the power terminal is easily fixed to the base plate.
In addition, when the plurality of heating elements are formed in the overlapping state, not only the heating efficiency can be doubled, but also the heat generation amount can be controlled by controlling the quantity of the heating elements. Since gasified burned material is ejected through the orifice of the casing, The material can be ejected at a high pressure.
In addition, since the filter installed in the casing discharges only the vaporized flammable material, it is possible to prevent the flammable material from flowing out due to the pressure during the explosion, and the heating element can be easily fixed to the fixed position with the fastener being provided. Since it is composed of a sleeve, it can be easily fixed in the inside of the casing while protecting the heating element.
In addition, since the sleeve is composed of the rod or the block of the elastic material formed with the guide hole through which the heating element penetrates, the heating element can be easily protected, the sleeve can be easily inserted into the casing, and the heating element can be easily So that the heat generating element can be protected from the impact while being insulated. Since the end of the cable is splined to the end of the sleeve, the sleeve can be easily secured in place.
In addition, since the casing is provided with the stopper for shielding one side of the sleeve to block heat, ignition or melting of the sleeve can be prevented, and the casing is composed of the hollow tube and the cap, And since the casing has a step seating portion, the cable can be easily fixed to a desired position, and the assembling tolerance of parts embedded in the casing can be adjusted while sealing the fixed portion of the cable by the elastic washer .
In addition, since the high-density power stored through the ignition power supply means can be supplied to the heating element, it is possible to heat the heating element in a short period of time, thereby quickly igniting the ignition material and igniting it.
Further, after a power source of a battery (including a storage battery) is charged in an energy storage device such as a super capacitor or a super capacitor excellent in input / output characteristics and storage performance (capacity), the power source stored in accordance with the operation of the ignition switch is instantaneously or continuously heated It is possible not only to supply a high-density power source to the heating element stably, but also to provide a high-density power source even if it is stored for a long period of time owing to the characteristics of an energy storage device in which leakage current is hardly generated. The battery supplies power to the energy storage device only when necessary, so that leakage current from the battery can be prevented as much as possible during long-term storage.
In addition, since the energization control means controls the energization of the stored power source in accordance with the capacity of the power source stored in the energy storage device, the overheat of the heating element can be prevented, and the overcurrent can be prevented when the short is generated, .
In addition, since the outer case having the handle can be carried and easily used, and one end of the inner case having the extinguishing agent is shielded by the ventilating shielding cover, the extinguishing agent can be stored in a state in which leakage of the extinguishing agent can be prevented In addition, since the extinguishing agent is formed of a solid aerosol cake, the extinguishing agent can be easily embedded. Further, when a hollow is formed in the extinguishing agent, the extinguishing agent burned through the hollow can be easily So that the air reaction of the extinguishing agent can be promoted. At the same time, the extinguishing agent can be sprayed smoothly, and overpressure can be prevented from being formed inside the inner case.
In addition, since granular coolants are installed on one side of the inner case with the shielding cover, the fire extinguishing agent is ejected through the gap between the coolants, so that the coolant can be injected in a cooled state. Since the communication path of the extinguishing agent to be burned is substantially provided along the inner circumferential surface of the inner case, the extinguishing agent to be burned can be guided to the inner circumferential surface of the inner case so as to be injected, so that the internal pressure of the inner case can be damped, It is possible to cool the extinguishing agent and furthermore, when the heat insulating material is provided on the inner circumferential surface of the inner case, the heat of the extinguishing agent to be burned is cut off, thereby preventing a safety accident.
In addition, since a space is formed between the coolant and the extinguishing agent while the coolant and the extinguishing agent are spaced apart by the spacer, the extinguishing agent to be burned can be easily reacted with the air. Further, the spacer is separated from the extinguishing agent and the coolant Since the fire extinguishing agent is formed in a zigzag form and is injected through the pores of the coolants, the fire extinguishing agent that is not completely burned can be prevented from flowing into the coolants as much as possible have.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a schematic diagram showing an explosion device according to the prior art; FIG.
2 is a perspective view showing a heating element of an explosion device applied to a fire extinguisher according to an embodiment of the present invention.
3 is a perspective view showing an explosive device applied to a fire extinguisher according to an embodiment of the present invention.
4 is an exploded perspective view showing an explosive device applied to a fire extinguisher according to an embodiment of the present invention.
5 is a exploded perspective view showing an explosive device applied to a fire extinguisher according to an embodiment of the present invention.
6 is a cross-sectional view of an exploder applied to a fire extinguisher according to an embodiment of the present invention.
FIG. 7 is a schematic cross-sectional view of a fire extinguisher applied to a fire extinguisher according to an embodiment of the present invention.
8 to 10 are circuit diagrams showing ignition power supply means of an explosion device applied to a fire extinguisher according to an embodiment of the present invention.
11 is a perspective view of a portable fire extinguisher according to an embodiment of the present invention.
12 is a sectional view of the portable fire extinguisher shown in Fig.
13 is a sectional view of the inner case shown in Fig.
14 is an enlarged cross-sectional view of a part of the inner circumferential surface side of the inner case shown in Fig.
15 is an enlarged cross-sectional view of a portion of the inner case shown in Fig.
16 is a perspective view of the spacer shown in Fig.
17 is a perspective view showing the use state of the spacer shown in Fig.
Hereinafter, a fire extinguisher according to an embodiment of the present invention will be described with reference to the accompanying drawings.
The extinguisher according to the embodiment of the present invention includes the detonator D and the extinguisher case C as shown in Fig.
The detonator D includes a
As shown in FIG. 2, the
The
The
The
The
2, the
As shown in FIG. 2, the
Here, the size (length, width, and thickness) of the
In order to improve the electrical stability and responsiveness of the
On the other hand, the aforementioned detonator may be provided with a
The
The casing is embedded with a pyramid material (not shown) as shown in Fig. The casing may be composed of, for example, a
As shown in FIGS. 4 and 6, the
The
The
The
5 and 6, the
Meanwhile, the
The
5 and 6, an end portion of the
The
4 and 6, when the
Meanwhile, the
4 and 6, the
On the other hand, the flammable substance (F) described above can be applied to various flammable substances such as explosives and charcoal powder. However, it is preferable to use the same solid aerosol fire extinguishing powder as the fire extinguishing agent filled in fire extinguishers. It may be constituted of a powder type applied directly or a solid material obtained by solidifying the powder type. Such solid aerosol digestion powders are activated during heating as described in the prior art to generate high temperature and high pressure gas to operate the fire extinguisher.
As shown in Fig. 7, the detonator D constructed as described above is constituted by a hollow tube 20 (see Fig. 7) of a casing in which a
The
On the other hand, the
The ignition power supply means of the detonator D described above is electrically connected to the
The ignition power supply means may comprise, for example, a battery B, an energy storage device E and an ignition switch S, as shown in Figs. The positive electrode (+) of the battery B is connected to one end of the energy storage device E and one end of the ignition switch S, respectively. The cathode (-) of the battery B is connected to the other end of the energy storage device (E) and one end of the power supply terminal of the
The energy storage device (E) stores electric energy sufficient for electric energy to be completely stored or ignited through the heating element (10).
The current flows between the battery B and the energy storage device E when the ignition switch S is off and the voltage difference between the voltage of the battery B and the voltage of the energy storage device E is present. 8 (a), when the voltage of the battery B is higher than the voltage of the energy storage device E, the current flows from the battery B to the energy storage device E, (E).
As shown in Fig. 8 (b), the aforementioned battery B, energy storage device E and ignition switch S are connected in a circuit. Therefore, when the ignition switch S is turned on, the current from the battery B or the energy storage device E flows into the
It is preferable that a super capacitor or a super capacitor is applied to the energy storage device (E). Since a supercapacitor or a super capacitor has a minute leakage current value, it can maintain a long-term power storage state, has a very low internal resistance, It is possible to supply a high current to the
Here, the above-described energy storage device E may be constituted by one unit, but may alternatively be constituted by a plurality of units. In this energy storage device E, the quantity is determined according to the required power storage capacity.
On the other hand, the ignition power supply means according to the embodiment of the present invention is constituted in the circuit of the above-mentioned ignition power supply means, and is connected to the
The energization control means is disposed between the
When the ignition switch S is in an off state, a current can flow between the battery B and the energy storage device E. At this time, when a voltage higher than the gate-to-source threshold voltage of the MOSFET (P) is applied to both ends, a channel between the drain and the source is formed and the MOSFET (P) can be conducted. However, since the ignition switch S is in the OFF state, no current is supplied to the
The MOSFET P maintains the conduction state when a sufficient voltage is applied from the battery B or the energy storage device E to the MOSFET P so that when the ignition switch S is turned on, The electric current from the energy storage device E accumulated by the ignition switch B can be applied to the
The battery B or the energy storage device E gradually discharges and the battery B or the energy storage device E is discharged as electric energy is supplied from the battery B or the energy storage device E to the
Accordingly, since excessive electric energy is supplied to the
As a result, when the power stored in the energy storage device E is stored at a predetermined voltage, the MOSFET P generates a heat by heating the
On the other hand, when the battery B or the energy storage device E, particularly the super capacitor, is charged, a natural discharge occurs due to an internal resistance or a physical action. Therefore, even if the electric energy is not supplied to the
In the embodiment described above, the means for supplying the electric energy to the
In order to compensate for this, in the detonator for a fire extinguisher according to an embodiment of the present invention, as shown in Fig. 10, the ignition power supply device includes not only the MOSFET P described above but also the insulation switch S ').
In order to use the fire extinguisher, the user must remove the safety pin Sa of the fire extinguisher, which will be described later, before the ignition switch S is pressed. In the embodiment of the present invention, The isolation switch S 'is turned on. It is preferable that the isolation switch S 'is constituted by a circuit so as to be electronically operated.
When the isolation switch S 'is off, the electrical connection between the battery B and the energy storage device E is cut off so that no current flow occurs in the ignition power supply means.
However, when the safety pin is removed and the insulation switch S 'is turned on, the battery B stores the energy storage device E, and the energy storage device E is charged to a sufficient level The electric energy stored in the energy storage device E is supplied to the
It is preferable that sufficient energy storage is performed in the energy storage device E for a period of time after the safety pin is removed and the ignition switch S is turned on. In the energy storage device E, for example, in the case of a supercapacitor, The speed at which electricity is stored in the supercapacitor can be adjusted in accordance with the combined resistance in the circuit of the supply means, the capacitance of the supercapacitor and the current capacity of the battery (B).
That is, the ignition power supply device according to the embodiment of the present invention prevents ignition if the voltage of the energy storage device E is below a certain voltage (below the gate-source threshold voltage of the MOSFET) The electrical connection of the detonator can be protected and electric energy can be supplied from the battery B to the energy storage device E only when ignition is required, so that the life of the battery B can be further increased as compared with the conventional case.
Meanwhile, the
The fire extinguisher case C may include an outer case C1, an inner case C2 and a shielding
As shown in the figure, the outer case C1 is provided with the detonator D on one side, the above-described button S-1 is mounted in the exposed state, and the above-mentioned air outlet OT and the at least one handle HD, . The handle HD is formed in the shape of an upper handle HD and a lever formed on the upper portion of the outer case C1 so as to be fixed to the lower portion of the outer case C1 with a hinge H, And a lower handle (HD) that is folded while being rotated in a single direction. The upper handle HD is used to lift the outer case C1. The lower handle HD is normally used as a clip which is secured to the vehicle or the wall by forming a direction parallel to the longitudinal direction of the outer case C1 and is rotated laterally of the outer case C1 during a fire, And is used to prevent the flow of the outer case C1. Therefore, the
As shown in FIG. 12, the outer case C1 is preferably provided with the ignition switch S described above in the upper handle HD. The ignition switch S includes a button S-1 operated by the user as shown in the enlarged view, an elastic body S-2 for elastically supporting the button S-1 and returning the button S- 3 for interrupting the supply of the stored power source applied by the energy storage device E of the above-mentioned ignition power supply means. The ignition switch S is provided with a safety pin Sa as shown in the enlarged view. The safety pin Sa is mounted to support the lower end of the button S-1 as shown. Therefore, the button S-1 can not be lowered when the safety pin Sa is mounted, so that the button S-3 can not be operated. However, since the button S-1 can be lowered when the safety pin Sa is removed, the tax position S-3 can be operated.
The outer case C1 may be provided with a chamber CB in which the above-described battery B is built in and the substrate in which the above-described circuit is built, as shown in Fig. Thus, the battery B and the substrate are protected from the outside.
As shown in Fig. 12, the inner case C2 is formed of a tubular body which is only opened at one end. As shown in the figure, the inner case C2 is embedded in the other side of the outer case C1 so that the
The shielding
Meanwhile, as shown in FIG. 13, the inner case C2 may be equipped with an extinguishing
The inner case C2 is filled with
The inner case C2 can be embedded along the inner circumferential surface with
As shown in Figs. 13 and 15, the inner case C2 may be provided with a
The inner case C2 may be provided with a
The
The
In the fire extinguisher configured as described above, the detonator D ignites and fires the internal burning substance F by the operation of the ignition switch S shown in Fig. At this time, the detonator D injects gasified flammable substance F into the inner case C2 to burn the extinguishing
The inner case C2 discharges the
On the other hand, the extinguishing
While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, it is clearly understood that the same is by way of illustration and example only and is not to be taken by way of limitation, It should be understood that all of the techniques that can be easily changed and used by those skilled in the art are included in the technical scope of the present invention.
DESCRIPTION OF REFERENCE NUMERALS
10: Heating element
11:
12: heating part 13: power terminal
20: hollow tube 21: orifice
22: hanging jaw 23:
24: inner step 25: threaded
26: polygonal surface 30: sleeve
31: guide ball 40: cap
50: filter 60: cable
61: Extension 62: Cable cable
63: Cable terminal 64:
65:
65b: second stage jaw 70: washer
80: Stopper 90: Connector
100: Fire extinguisher 101: Fire extinguisher
102:
103: shielding cover 105: insulation
106: spacer B: battery
C: Case C1: Outer case
C2: inner case D: detonator
E: energy storage device H: hinge
HD: Handle P: MOSFET
S: Ignition switch S ': Isolation switch
Sa: Safety pin
Claims (10)
A fire extinguisher case having the fire extinguishing device built therein, an ignition switch for igniting and igniting a burning substance contained in the fire extinguishing device mounted in an exposed state, and a fire extinguishing agent which is burned by the ignition of the burning substance and is ejected to the outside; .
An outer case having the detonator installed at one side thereof, the ignition switch of the detonator being mounted in an exposed state, the outer case having a vent hole and at least one handle;
A fire extinguishing agent is embedded in the other side of the outer case so that the casing of the fire extinguishing device is inserted therethrough and the fire extinguishing device is embedded with an extinguishing agent which is burned by the ignition material ignited as the ignition material is ignited, An inner case communicating with an ejection port of the outer case in an opened state and being sprayed to the ejection port through one end of the extinguishing medium which is burned by the burning substance; And
And a shielding cover which shields one end of the inner case so as to be airtight so as to confine the extinguishing agent inside the inner case in a state capable of ejecting the extinguishing agent.
And a coolant in the form of granules for cooling the extinguishing agent sprayed through the shielding cover is filled on one side of the shielding cover.
And a spacer embedded in the inner case to allow air between the coolant and the extinguishing agent to be airtightly separated.
A plurality of extinguishing agent adhering plates closely adhered to the extinguishing agent;
A coolant adhering plate which is in an alternating state with the extinguishing medium adhering plate and is closely adhered to the coolant; And
And a linkage connecting the coolant adhering plate and the extinguishing agent adhering plate.
An additional coolant in the form of a granule configured the same as the coolant is embedded along the inner circumferential surface to shield the outside of the extinguishing agent with the additional coolant,
The additional coolant may include,
Wherein the extinguishing agent is cooled while guiding the extinguishing agent burned in the inner case through the gap.
Wherein said extinguishing agent is built up of a solid aerosol cake formed of a solid mass,
In the inner case,
Wherein the extinguishing agent is guided through the hollow by forming a hollow in the center of the extinguishing agent and burning the extinguishing agent.
A heating element provided with a power supply terminal to which power is supplied and generating heat by a power supply of the power supply terminal;
Wherein the flammable material which is ignited in a gasified state while being heated by the heating element and the heating element is embedded in one side and the four sides are shielded in a sealed state to isolate the heating element and the flammable material from the outside, A casing provided with an orifice for discharging the flammable material vaporized through the orifice to the outside; And
And ignition power supply means for supplying the power stored in the power terminal of the heating element as an ignition power supply.
A base plate formed in a plate shape and made of a heat conductive material capable of generating heat; And
And a heating unit provided on the surface of the base plate in an identical form and generating heat by a power source of the power terminal.
A battery for supplying power;
At least one energy storage device for storing power supplied from the battery and supplying power stored in the power terminal of the heating element; And
And an ignition switch for interrupting a stored power source supplied to the power terminal of the heating element in the energy storage device to ignite the printed material of the casing through the heating element,
Wherein the battery, the energy storage device, and the ignition switch are connected in a circuit.
Priority Applications (1)
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KR1020140079861A KR101583681B1 (en) | 2014-06-27 | 2014-06-27 | Fire extinguisher |
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KR101583681B1 KR101583681B1 (en) | 2016-01-11 |
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Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2016137259A1 (en) * | 2015-02-25 | 2016-09-01 | Samsung Electronics Co., Ltd. | Transmitter and method for generating additional parity thereof |
KR20180090649A (en) | 2017-02-03 | 2018-08-13 | 황준영 | Cabinet at bathroom |
Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
KR200447025Y1 (en) * | 2008-11-21 | 2009-12-21 | 고려화공 주식회사 | Electric Solid Aerosol Automatic Fire Extinguisher |
KR20110089843A (en) * | 2008-08-25 | 2011-08-09 | 디에스피에이. 엔엘 비.브이. | Fire extinguishing device and fire management system |
KR101118618B1 (en) | 2011-06-07 | 2012-03-06 | 윤종원 | Activator for solid-aerosol automatic extinguisher |
KR20130042835A (en) * | 2011-10-19 | 2013-04-29 | 박정섭 | Actuator of a condensed aerosol fire extinguisher |
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2014
- 2014-06-27 KR KR1020140079861A patent/KR101583681B1/en not_active IP Right Cessation
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
KR20110089843A (en) * | 2008-08-25 | 2011-08-09 | 디에스피에이. 엔엘 비.브이. | Fire extinguishing device and fire management system |
KR200447025Y1 (en) * | 2008-11-21 | 2009-12-21 | 고려화공 주식회사 | Electric Solid Aerosol Automatic Fire Extinguisher |
KR101118618B1 (en) | 2011-06-07 | 2012-03-06 | 윤종원 | Activator for solid-aerosol automatic extinguisher |
KR20130042835A (en) * | 2011-10-19 | 2013-04-29 | 박정섭 | Actuator of a condensed aerosol fire extinguisher |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2016137259A1 (en) * | 2015-02-25 | 2016-09-01 | Samsung Electronics Co., Ltd. | Transmitter and method for generating additional parity thereof |
KR20180090649A (en) | 2017-02-03 | 2018-08-13 | 황준영 | Cabinet at bathroom |
Also Published As
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KR101583681B1 (en) | 2016-01-11 |
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