[0001] The present invention relates to a fire detecting system of the kind comprising a
first radiation sensitive semi-conductor for measuring a first radiation intensity
at a first wavelength and emitted from an area susceptible of fire and creating a
first output signal representing the first radiation intensity, and at least one second
radiation sensitive semi-conductor for measuring at least one second radiation intensity
at at least one second wavelength and emitted from the area susceptible of fire, and
creating at least one second output signal representing the second radiation intensity.
[0002] Fires starts when both flammable and/or combustible material with an adequate supply
of oxygen or another oxidizer is subjected to enough heat. Some common fire-causing
sources of heat include e.g. a spark, another fire, e.g. an explosion, a cigarette
or a lit match, thermal radiation, e.g. sun light, a flue, incandescent light bulb
or a radiant heater.
[0003] Mechanical and electrical machinery may cause fire if combustible materials used
on or located near the equipment are exposed to intense heat. Fire may propagate to
an uncontrolled level and cause great damage to and destruct human life, animals plants
and property. Hence, a fire can be of considerably costs, detrimental to environment
and society and should be discovered as early as possible to avoid and ward off such
damages and adverse effects.
[0004] Often hot-spots are not recognised before it is too late and the fire develops to
the above mentioned stages in which considerable damage takes place.
[0005] Conventionally used technologies to recognise the early onset on fire include live
video from the fire and exact temperature measurement over long distances, to save
time and increase the reliability and safety in early fire detection.
[0006] Almost all objects or surfaces emit electromagnetic radiation, which intensity and
spectral distribution depends on the body's temperature. Detectors for the near-infrared
(NIR) spectral range of 750nm to 3000nm can detect thermal radiation from temperatures
of approx. 300°C on surfaces. NIR radiation is reflected by most surfaces, and direct
view on the flames is not necessary. For example NIR radiation is reflected or scattered
by aerosols such as fog, smoke and dust. Therefore in many situations open fires can
be localized through smoke.
[0007] This temperature is far below the limit at which the human eye can see radiation,
the visible light (VIS) spectral range within about 400nm to 750nm of the electromagnetic
spectrum to which the retina is sensitive. Open fire also emits in this range, and
low-cost alarm systems for late detection are easy to realize in this wavelength range.
[0008] To look at wavelengths even longer than the NIR spectral range like the mid infrared
(MIR) 3µm to 30µm makes it possible to register even lower temperatures. In this way
potential fire sources can be detected long before they burst into open flames.
[0009] When using known camera-based fire surveillance based on NIR video images and processing,
every pixel of an image is identified and used for precise localization of the potential
fire source. Thermography in the NIR is used to provide temperature measurement of
each single pixel within the video image. The shown object is displayed with precise
temperature values for each point on the surface, and these information help to detect
origins of fire before the flashpoint temperature is reached and therefore to prevent
fire. The image acquisition takes place in a wavelength range invisible for the human
eye and the image is transferred into a black and white video. Areas of unusual activity
that may give reason to alarm are highlighted with certain colours, to simplify the
situation judgment immense. For the detection of aerosols, the skilled observer can
decide whether it is smoke, fog or dust based on the development over time. Based
on the video images precise localization within a 3D room is possible. In case of
a known topography the distance to the observed surface can be determined, as the
direction of each pixel within the viewing angle is known. With a fixed installation
of the surveillance system only one camera is necessary for an exact localization.
This is mandatory for a targeted situation judgment and initiation of fire fighting
activities. Is the fire source detected by two cameras at the same time, the precise
localization is possible without further information. Therefore localization in three
dimensions is possible even with moving objects within the surveillance area when
multiple cameras are used.
[0010] The use of thermography combined with video images has many advantages. It ensures
clear sight through dense smoke and allows search and rescue of humans as well as
safe temperature measurement of objects close to the fire, however the technique requires
continuous day-and-night surveillance to spot abnormalities and deviation from standard
conditions, to safely distinguish between false temperature fluctuations and movements.
If the observing person is inattentive just for at short period or is not sufficiently
qualified to read the images the fire may develop anyway.
[0011] Artificial light, sunlight, controlled fire sources like lighters or Bunsen burners,
industrial ovens, welding arcs, etc emits in the IR-range and may cause false-alarms.
[0012] US Patent No. 6,927,394 discloses a method for detecting flames. The method uses that false-alarm sources
emit radiation in both the infrared and the visible wavelength ranges while potential
fire sources emit in the visible wavelength range only. If radiation is found in both
the infrared spectral range and in the visible spectral range, it is interpreted as
a false alarm. The method involves comparison of the measured frequency spectra and
known reference spectra from potential fire sources and radiation from false-alarm
sources. The method monitors potential fire sources in a zone in a general manner
and activate uncritical an extinguisher system, which e.g. sprinkles extinguishant
all over the zone. In addition all machinery are turned off resulting in unnecessary
great damage to the machines, longer closedown times of production resulting in high
costs. Only the temperature is measured and this known method does not provide any
measurements providing sufficient knowledge to enable target-directed and specific
early fire extinguishing using fire extinguishants particularly suited for the purpose.
[0013] Hence, there is a need within the art of fire detection to provide alternative and
safe measures to early fire detection.
[0014] In a first aspect according to the present invention is provided an early fire detection
method and system of the kind mentioned in the opening paragraph by means of which
enhanced security and huge costs savings can be obtained.
[0015] In a second aspect according to the present invention is provided an early fire detection
method and system of the kind mentioned in the opening paragraph providing a high
level of identification accuracy of the flammable and/or combustible material.
[0016] In a third aspect according to the present invention is provided an early fire detection
method and system of the kind mentioned in the opening paragraph by means of which
false alarms can be excluded to a higher degree than hitherto known.
[0017] In a fourth aspect according to the present invention is provided an early fire detection
method and system of the kind mentioned in the opening paragraph which can be tailored
to a specific environment based on prior knowledge of the compositions of the materials
used the environment.
[0018] In a fifth aspect according to the present invention is provided an early fire detection
method and system of the kind mentioned in the opening paragraph wherein counteractive
measures towards a fire can be initialized faster and much more targeted than hitherto
known.
[0019] In a sixth aspect according to the present invention is provided an early fire detection
method and system in which information of the material on fire is provided to the
fire fighters prior to initiating extinguishing the fire.
[0020] The novel and unique features whereby this is achieved according to the present invention
consists in that the fire detecting system comprises that the first radiation sensitive
semi-conductor and the at least one second radiation sensitive semi-conductor are
arranged in a predefined pattern, that the fire detecting system has means for converting
the first output signal into a first temperature indicating signal and the at least
second output signal to at least one second temperature indicating signals, processor
means for comparing the first temperature indicating signal with the at least second
temperature indicating signal, to provide a control for the first temperature indication
signal, a database including ignitibility data of materials on a susceptible fire
target, and compare means for comparing the temperature indication signals with the
database.
[0021] An optical system reproduces the zone on the radiation sensitive semi-conductors
so that each area in the zone corresponds to one radiation sensitive semi-conductor
or more.
[0022] Since the position of the radiation sensitive semi-conductors according to the present
invention is arranged in a defined pattern the areas which the radiation sensitive
semi-conductors monitor are also well-defined. Two radiation sensitive semi-conductors
are selected to monitor and register at two different wavelengths radiated from the
same area and the results are compared to confirm if the registration are either a
false alarm or a true alarm. Two radiation sensitive semi-conductors situated at different
spots in the pattern will monitor different areas in e.g. a room or an open place.
When a potential fire source turns up in the area within a monitoring zone of one
of the radiation sensitive semi-conductors it will send an alarm signal so that the
extinguisher system can focus its resources in that area only. If e.g. extinguishant
is sprinkled it is only sprinkled in that area and only electricity and heat sources,
like machines, in that area are turned off. In this inventive way damages and tidying-up
operations can be considerably reduced compared to a situation in which extinguishant
is sprinkled all over an assembly of machinery. The production can be resumed early,
cost of repair is low, and reduction of income is kept at a minimum. It is even possible
to have the production line going in spite of the incident in one part of the zone
that is not close to the incident, which further minimizes economical loss.
[0023] Within the scope of the present invention in the following the term black body means
an object that absorbs all electromagnetic radiation that falls onto it. No radiation
passes through it and none is reflected, which make black bodies ideal sources of
thermal radiation. The amount and spectrum of electromagnetic radiation they emit
is directly related to their temperature. Black bodies below around 430°C produce
very little radiation at visible wavelengths and appear black. Black bodies above
this temperature produce radiation at visible wavelengths starting at red, going through
orange, yellow, and white before ending up at blue as the temperature increases.
[0024] Hence, a body emits broadband radiation due to its temperature, so-called blackbody
radiation, the hotter the object the higher the radiation. The centre of the radiation
is also blue shifted with higher temperature of the blackbody. The intensity of a
radiation sensitive semi-conductor, which responds to a known wavelength from a blackbody
can be transformed to a temperature that is the temperature of the blackbody. A second
radiation sensitive semi-conductor measuring at another wavelength will register another
intensity but when transformed into temperature will indicate the same temperature,
unless the registered radiation is not from a blackbody or there is some fault in
the fire detecting system.
[0025] The air absorbs radiation at some IR wavelength ranges. This must be considered when
selecting the measuring wavelengths, i.e. the first wavelength and the at least one
second wavelength. A radiation sensitive semi-conductor that measures the radiation
from an object at a wavelength where air absorbs will return an output signal corresponding
to a too low temperature. Therefore, the wavelengths where the radiation sensitive
semi-conductors respond should be chosen to be in the ranges where the gas molecules
in air do not absorb.
[0026] If the two radiation sensitive semi-conductors indicate the same temperature, the
temperature is compared with the known ignitibility temperature of the material in
the monitored zone, area or room. A temperature, e.g. 200°C, is critical if the object
is paper while there is no need to send an alarm signal if a piece of metal have reached
that temperature.
[0027] In an advantageously embodiment of the present invention the pattern can be selected
from the group comprising a 2-dimensional array, a 3-dimensional array, concentric
circles, polygons or arbitrary order. How the radiation sensitive semi-conductors
are organised is less important as long as their positions within the pattern are
known together with information of from which area each radiation sensitive semi-conductors
detects radiation.
[0028] In a preferred embodiment of the invention the radiation sensitive semi-conductors
can be selected from the group comprising photo diodes, PIN diodes, CMOS circuits,
bolometer or CCD chips and combination of these. Anything that is photosensitive could
be used as e.g. photodiodes like PIN diodes. In a photosensitive CMOS the photodiodes
are prearranged in a defined array where the amount of radiation that reaches each
photodiode can be read out. If a very high detecting level is required a liquid nitrogen
cooled CCD chip is especially preferred.
[0029] The inventive fire detecting system is particularly suited to use radiation sensitive
semi-conductors that can measure in the wavelength range from about 200nm to about
3,500nm. To detect the potential fire source early, the MIR spectral range from 3µm
to 30µm is best suited. But to avoid that the air absorbs some of the radiation it
is better to measure in the wavelength range between 8µm and 14µm. There are other
sources that emit radiation in this spectral range without being potential fire sources,
such as artificial light, sunlight, lighters or Bunsen burners, industrial ovens,
welding arcs, etc. In addition these potential fire sources also emit radiation in
the visible spectral range. A detector responding to a wavelength in the visible spectral
range from 400nm to 750nm can determine that it is not a potential fire source since
it emits in both the MIR and visible range. If the fire detecting system is to monitor
a very well illuminated zone or an outdoor place during a sunny day visible radiation
from a false-alarm source is drowned by the background visible radiation. To sort
out a welding arc as a false-alarm source it is better to use a radiation sensitive
semi-conductor that responds to a wavelength in the ultraviolet (UV) spectral range
from 200nm to 400nm since such an arc is a strong UV radiation emitter. In many factory
zones fluorescent lamps are used as illumination. They emit relatively little radiation
in the infrared range. In a zone very illuminated with fluorescent lamps the radiation
sensitive semi-conductors used for reference and control can advantageously be chosen
to respond to radiation in the NIR spectral range from 750nm to 3000nm.
[0030] The means for converting an output signal into a temperature indicating signal, the
processor means and the compare means preferably may expediently include a control
unit in the form of e.g. a microprocessor, a field-programmable gate array (FPGA)
or a programmable logic controller (PLC) and appropriately designed software-programs.
The control unit and the software-programs are designed and configured to process
the output signal from the radiation sensitive semi-conductors, converting the output
signal to a temperature indicating signal, comparing the temperature indicating signals,
and to fetch data about the location in the zone of different materials and the ignition
temperature of the material in the monitored area, to compare the temperature indicating
signal and the ignition temperature of the material in the monitored area and react
to the result by issuing an alarm.
[0031] The fire detecting system can in a preferred embodiment according to the present
invention comprise at least one gas detector. The system resembles that of the fire
detecting system. An optical system reproduces different areas of the zone onto the
photoactive components which are radiation sensitive semi-conductors organized in
a known pattern like an array. The gas detector uses in a first embodiment the blackbody
radiation from the background like the walls, floor and the machines as a radiation
source. If a gas evolves e.g. due to heated plastic the gas molecules from the plastic
will absorb at some wavelengths characteristic of the gas molecules.
[0032] The fire detecting system can in yet a further preferred embodiment include in the
database, data representing the wavelengths at which at least some gases absorb radiation.
The database enables the specification of the heated gas molecules. The database can
further comprise detailed information from which plastic said gas molecules originate.
If also the temperature at the area of the heated plastic is measured it is possible
to determine how close to the ignition point the temperature is. If the wavelengths
for e.g. CO are recorded in the database the gas detector can send an alarm that there
is a poisonous gas in the zone. Especially for CO it can be important since it does
not smell. Other important gases could include the gas dioxin.
[0033] The fire detecting system can advantageously comprise an external radiation source.
The detection limit will increase so that lower concentrations can be detected.
[0034] If there is more than one gas detector and they are situated at two different places
they will look across each other and the system can reproduce a three-dimensional
picture of the distribution of gases in e.g. a monitored zone, room or area.
[0035] In an embodiment of the invention the fire detecting system can comprise a spark
detector with a response time faster than or around 8 ms and with a sensitivity lower
than or around 1.1 mW/cm
2. To detect the sparks it is only possible to monitor closed environments where there
is no external light. In such an environment where dry materials are transported a
spark detector is useful. The woodworking industry where the sawdust or wood chips
are sucked in transportation pipes is one example. In all forms of treatment of materials
dust is created, which can be ignited by a spark. This is the case in the steel industry
and the flour milling industry. Fluids with a low flash point in the form of a spray
can easily be ignited by a spark. Such an environment can be found in painting industry,
printing industry, petroleum refinery, semi-conductor production, etc. What is most
important is that the fire detecting system according to the present invention reacts
really fast. Therefore it is preferred to keep electronic analysis simple and fast,
to increase the reaction time. This further means that there is not time for detailed
investigating whether the fire alarm is due to a false-alarm source. The spark detector
may advantageously consist of many radiation sensitive semi-conductors that monitor
different areas of the zone or area susceptible to fire. Only machines in the area
corresponding to the radiation sensitive semi-conductor that sends an alarm are shut
down and extinguishant is only sprinkled in that same area. In this way the damage
and production losses are kept low. This can be a huge benefit if there are many false
alarms.
[0036] In another embodiment of the invention the fire detecting system can comprise a smoke
detector. The smoke detector reads the signal from a radiation source. A radiation
source is placed at each area that is monitored by a radiation sensitive semi-conductor.
If in such area smoke starts to evolve the smoke will scatter and absorb the radiation
until there is no light entering the smoke detector. Again the fire detecting system
knows where the potential fire source is situated and the fire preventing measures
can be localised.
[0037] In yet another embodiment of the invention the fire detecting system can comprise
a temperature sensor. The temperature sensor can e.g. be a bolometer.
[0038] The invention also relates to a method for detecting fire using the fire detecting
system according to the present invention.
[0039] The method comprises the steps of, storing in a database on a control unit ignition
temperatures of at least some materials localized in an area susceptible of fire,
measuring radiation intensity from at least one point in the area at a first specified
wavelength by a first radiation sensitive semi-conductor returning a first output
signal, measuring radiation intensity from the at least one point in the area at at
least one second specified wavelength by at least one second radiation sensitive semi-conductor
returning at least one second output signal, converting the returned first output
signal from the first radiation sensitive semi-conductor measured at the first wavelength
into a first temperature indicating signal, converting the at least second output
signal from the at least one second radiation sensitive semi-conductor measured at
the at least one second wavelength into at least one second temperature indicating
signal, comparing the first temperature indicating signal with the at least one second
temperature indicating signal, and determining a first difference value, and if first
difference value is less than a first predefined difference value then, comparing
the first temperature indicating signal with the database ignition temperature of
the material in the monitored area and a second difference value is determined, and
if the second difference value is below a second predefined difference value an alarm
signal is sent.
[0040] By means of these steps it is possible to detect fires at a very early stage and
to target the fire extinguishing procedure to the materials and compositions located
in a specific zone. When the alert or alarm is send to the fire station the fire fighters
are able to take specific precautions as to extinguishing means and what to wear prior
to leaving the fire station. Hence the fire fighters will be able to prepare themselves
to the fire by using the inventive target directed effective fire extinguishing method
above.
[0041] In the preferred embodiment the first predefined difference value is chosen to be
lower than or around 10°C. This temperature has been established as the lower limit
which defines a reasonable discrimination limit for false alarms.
[0042] In a modified expedient embodiment, the method according to the present invention
is specifically adapted to treat fires involving combustible gases or gas generation
qualified.
[0043] To this aspect the method comprises the steps of, storing in a database on a control
unit absorption wavelengths of a plurality of gas molecules, measuring radiation intensity
from at least one zone in the area at at least one absorption wavelength of the at
least one monitored gas molecule by a first radiation sensitive semi-conductor returning
an absorption output signal, measuring radiation intensity from the at least one zone
in the area at at least one non-absorption wavelength of the at least one monitored
gas molecule by at least one second radiation sensitive semi-conductor returning at
least one non-absorption output signal, comparing the at least one absorption output
signal with the at least one non-absorption output signal and determining whether
there is a difference between at least one absorption output signal and the at least
one non-absorption output signal that is due to absorption, and sending an alarm signal
if the difference is due to absorption.
[0044] The method may advantageously further comprise the step of, converting the temperature
corresponding to the first temperature indicating signal to an intensity for at least
one absorption wavelength of at least one gas molecule into a first database intensity,
measuring the radiation intensity from the at least one area in the zone at at least
one absorption wavelength of the at least one monitored gas molecule by at least one
second radiation sensitive semi-conductor returning at least one absorption output
signal, comparing the at least one absorption output signal with the at least one
first database intensity and if the relation between the absorption output signal
and the first database intensity for the wavelength characteristic of at least one
gas molecule is less than a third predefined relation value, then sending an alarm
signal.
[0045] Using the method minimizes the risk of explosion and that persons get poisoned by
gas formations. Again the fire fighter is able to take considerate precautions and
the gas formations may even be realized in such an early stage that no fire occur
at all.
[0046] This part of the invention may advantageously be used in manufacturing processes
in which undesired gasses can evolve during the manufacturing process.
[0047] The invention will be explained in greater detail below, describing preferred embodiments
with reference to the drawings, in which
fig. 1 shows the blackbody radiation from two bodies at 900°C and 1000°C, respectively,
fig. 2 shows the transmission of radiation through air,
fig. 3 shows schematically a block diagram of a first embodiment of a fire detecting
system according to the present invention, and
fig. 4 shows a detailed circuitry of a part of the hardware of a preferred embodiment
of a fire detecting system according to the invention,
[0048] Fig. 1 illustrates two blackbody radiation curves from two different bodies. Curve
1 and curve 2 show the spectral radiation intensities from two different bodies at
37°C and at 100°C as a function of wavelengths, respectively. Curve 1 and curve 2
are similar in appearance but curve 1 has its maximum radiation at around 9000nm while
curve 2 is a little blue-shifted with a maximum at around 7500nm. The radiation intensity
of curve 2 is higher in the whole spectral range than the radiation intensity of curve
1.
[0049] The Planck's radiation law describes the radiation intensity from a blackbody as
a function of wavelength and temperature:

in which h is Planck's constant, c is the speed of light, λ is the wavelength, k is
Boltzmann's constant and T is the temperature.
[0050] From formula (I) follows that the radiation ε from a body with an even higher temperature
will show a spectrum with a maximum, which is further blue-shifted, and where the
radiation intensity is higher for all wavelengths. The Planck's radiation law relates
at a specified wavelength the intensity of the emitted radiation from a material to
a certain temperature, thus measuring the intensity at a certain wavelength determines
the temperature.
[0051] In vacuum, the radiation intensity emitted from a blackbody will be the same as the
measured radiation intensity in the whole wavelength range. But in air, the gas molecules
in air will absorb radiation at some wavelength ranges, which is shown in fig. 2.
There is a first absorption peak 3 or dip in the transmission spectrum at around 1.3µm,
a second absorption peak 4 at around 1.9µm, a third absorption peak 5 at around 2.7µm,
a fourth absorption peak 6 at around 4.4µm, a fifth absorption peak 7 at around 5.8µm
and a sixth absorption peak 8 at around 6.7µm. The fifth 7 and sixth 8 absorption
peaks overlap and form a unit absorption band 9. Between these absorption peaks 3,4,5,6,7,8
or dips in the transmissions there are in the IR range for wavelengths up to 15 µm,
six ranges where the absorption of air is low. The widest range 10 is between 8µm
and 14µm. A second range 11 of low air absorption is identified from 4.8µm to 5µm,
a third 12 from 3.2µm to 4.1µm 12, a fourth 13 from 2µm to 2.3µm 13, a fifth 14 from
1.5µm to 1.8µm, and a sixth 15 from 0.750µm to 1.1µm. The limit 0.750µm is not due
to absorption but due to that the visible range starts. Only in the wavelength ranges
10 to 15 the measured intensity at a certain wavelength determines the temperature.
[0052] Fig. 3 shows a block diagram of a preferred embodiment of a fire detecting system
16. At installation a computer (not shown) communicates through the programming interface
17 and electronic connection 18 with control unit 19. The programming interface could
in another embodiment be wireless. Data is entered into the computer and transferred
through the programming interface 17 and electronic connection 18 to the control unit
19, which stores data for used in the inventive method in a random access memory (RAM)
21. The data include among others the type and distribution of the materials in the
monitored zone, in particular the ignition temperatures of said materials, the areas
of the zone monitored by the radiation sensitive semi-conductors, the radiation wavelengths
each radiation sensitive semi-conductor responds to and a first predefined difference
value as well as second predefined difference values identifying the materials of
relevance. The meaning of the first predefined difference value and second predefined
difference values are explained in further detail below. From the database 20 the
control unit 19 fetches data about ignition temperatures of materials in the monitored
zone. The ignition temperatures of the materials in the monitored zone and the distribution
of the materials in said zone is in the following detailed description commonly denominated
"first database data". This is in no way intended to limit the understanding that
many more data are included in the database.
[0053] If the materials in the monitored zone are changed e.g. by introducing new machines,
or an extra pattern, e.g. an array, of radiation sensitive semi-conductors is introduced,
these data is entered into the computer and transferred through programming interface
17 and electronic connection 18 to the control unit 19 that stores the new information
in the RAM 21.
[0054] A sensor unit 22 include three radiation sensitive semi-conductors 22a, 22b and 22c
respond to radiation by sending electrical analogue output signals through the electrical
connections 23a, 23b and 23c to the A/D converter 24, which can if preferred by arranged
in the control unit 19. The sizes of the currents of the output signals are measures
of the intensity of the radiation at the measured wavelengths. The A/D converter 24
converts the analogue output signals to digital output signals and sends them through
electronic connections 27a, 27b and 27c to the control unit 19. The control unit 19
comprises means (not shown) to convert the digital output signals into digital temperature
indicating signals. The control unit 19 fetches information about to which wavelengths
each radiation sensitive semi-conductors 22a, 22b and 22c respond. The control unit
19 stores the digital temperature indicating signals in the RAM 21. The digital temperature
data indicating signals and from which areas each digital temperature indicating signal
is measured are in the following description denominated "first measured data".
[0055] The control unit 19 comprises means to compare the digital temperature indicating
signals converted from the digital output signals measured by different radiation
sensitive semi-conductors at different wavelengths but at the same area. According
to Planck's radiation law (I) the temperature should be the same. If the difference
of the digital temperature indicating signals from the measurements at the same area
is less than the first predefined difference value the radiation is due to blackbody
radiation and the measured temperature is deemed to be the temperature of the body.
This means that the measured temperature can be compared to e.g. ignition temperature.
If the difference is higher than the first predefined difference value the radiation
is partly caused by radiation not from a blackbody, or a fault has occurred in the
measurements or in the signal treatment. The measurements from that area are not considered
until measurements indicate radiation from a blackbody. A notification or error message,
alert or an alarm may by triggered according to the factual need and circumstances.
[0056] The control unit 19 comprises means to compare the first measured data and the first
database data, thereby comparing temperature in an area from the first measured data
with the ignition temperature of the material in the area from the first database
data. If the difference is not less than the second predefined difference value for
the material the situation is not interpreted to be threatening and no action is performed.
If the difference between the temperatures is less than the second predefined difference
value for the material an alarm signal is sent. The alarm signal is sent through the
electronic connection 25 to an alarm diode 26 that can be a light emitting diode.
An alarm signal is also sent through the bus 28 to an external fire alarm or to an
extinguisher system that will turn off the electricity and the machines situated in
the area and e.g. sprinkle extinguishant in the area. Both the electronic connection
25 and the bus 28 can be wireless connections.
[0057] The address of the fire detecting system 16 is set manually from the outside of the
fire detector through the address dipswitch 29 in connection with the control unit
19 through electronic connection 30. A power supply 31 powers the control unit 19
through electrical connection 32.
[0058] In one embodiment the function dipswitch 33 is used to manually change the function
of the fire detecting system to a gas detecting system or to a smoke detecting system.
The function dipswitch is connected with the control unit 19 through electronic connection
34.
[0059] If the fire detector is used as a gas detector the procedure resembles the procedure
described for the fire detector. The gases can e.g. be part of or used during a production,
processing or refining in the industry, be created if something in the production,
processing or refining goes wrong, or be created during burning of materials in the
monitored room. Measured gas identification data are entered on the computer and transferred
through the programming interface 17 and electronic connection 18 to the control unit
19, which stores the data in a RAM 21 situated in the control unit. Also data identifying
the areas of the monitored room, which the radiation sensitive semi-conductors monitor,
which radiation wavelength each radiation sensitive semi-conductor responds, and the
first predefined difference value and a third predefined relation value. The meaning
of the third predefined relation value is explained below. From the database the control
unit 19 fetches data about the absorption wavelengths of the gases to be monitored
in a manner similar to the described above for the fire detecting system.
[0060] It is important that some of the radiation sensitive semi-conductors are selected
to have response wavelengths at the absorption wavelengths of the gases studied and
of interest and others are chosen not to have response wavelengths at the absorption
wavelengths of these gases. Walls, floor, ceiling and machines etc., all emit room
temperature blackbody radiation. Curve 1 in fig.1 illustrates the spectral distribution
of the radiation at nearly room temperature. If the machines are hot the machines
will of course emit a more intense and more blue shifted blackbody radiation.
[0061] When a gas turns up in the monitored room it will be seen as dips in the blackbody
radiation spectrum from the objects behind the gas seen from the detector. The wavelengths
of the dips are the characteristic wavelength for the absorption peaks of the gas.
The relative size of the dips in the blackbody radiation spectrum corresponds to the
relative heights of the different absorption peaks and can be used to further confirm
the presence of the gas.
[0062] The radiation sensitive semi-conductors 22a, 22b and 22c, respond to radiation by
sending electrical analogue output signals through the electrical connections 23a,
23b and 23c to the A/D converter 24, in the present embodiment situated in the control
unit 19. The sizes of the currents of the output signals are measures of the intensity
of the radiation at the measured wavelengths. The A/D converter 24 converts the analogue
output signals to digital output signals and sends them through electronic connections
27a, 27b and 27c to the control unit 19.
[0063] The control unit 19 fetches information about to which wavelengths each radiation
sensitive semi-conductors 22a, 22b and 22c respond. The control unit 19 parts the
digital output signals in two categories, where the first category comprises the digital
output signals measured by radiation sensitive semi-conductors responding to wavelengths
not at the absorption wavelengths of the gases studied and the second category comprises
the digital output signals measured by radiation sensitive semi-conductors responding
to wavelengths at the absorption wavelengths of the gases studied.
[0064] The control unit 19 comprises means to convert the digital output signals of the
first category into digital temperature indicating signals. The control unit 19 stores
the first category of digital temperature indicating signals and the second category
of digital output signals in the RAM 21. The data about the digital temperature indicating
signals from the first category and from which areas each digital temperature indicating
signal from the first category is measured are in the following description denominated
"second measured data". The data about the digital output signals from the second
category and from which areas each digital output signal from the second category
is measured are in the following description denominated "first measured intensity".
[0065] The control unit 19 comprises means to compare the digital temperature indicating
signals from the second measured data converted from the digital output signals measured
by different radiation sensitive semi-conductors at different wavelengths but at the
same area. According to Planck's radiation law (I) the temperature should be the same.
If the difference of the digital temperature indicating signals from the first category
from the measurements at the same area is less than the first predefined difference
value the radiation is due to blackbody radiation and the measured temperature is
deemed to be the temperature of the body, in the following denominated "first measured
temperature". If the difference is higher than the first predefined difference value
the radiation is partly caused by radiation not from a blackbody, or a fault has occurred
in the measurements or in the signal treatment. The measurements from that area are
not considered until measurements indicate radiation from a blackbody. A notification
or error message, alert or an alarm may by triggered according to the factual need
and circumstances.
[0066] The control unit 19 converts the first measured temperature into intensities according
to Planck's radiation law (I) for each stored wavelength at which the studied gases
absorb. These intensities and corresponding wavelengths are in the following denominated
"first database intensities".
[0067] The control unit 19 comprises means to compare the first measured intensities and
the first database intensities so the radiation intensities at a wavelength from the
first measured intensities are compared to the radiation intensities at the same wavelength
from the first database intensities and their relation is calculated.
[0068] If the relation is less than the third predefined value for the material the situation
is not interpreted to be threatening and no action is performed. If the difference
between the temperatures is not less than the third predefined value for the material
an alarm signal is sent. The alarm signal is sent through the electronic connection
25 to an alarm diode 26 that can be a light emitting diode. An alarm signal is also
sent through the bus 28 to an external gas alarm or to e.g. ventilation system that
will blow in fresh air or soak the gas out and maybe turn off the electricity and
the machines situated in the area if the gas is explosive.
[0069] Fig. 4 discloses an example of the configuration of the fire detection system 16
shown in fig. 3 in more detailed, with three radiation sensitive semi-conductors 35a,
35b and 35c. Electrical connections 36a, 36b and 36c forward the electrical output
signals from the radiation sensitive semi-conductors to amplifiers 37a, 37b and 37c,
respectively. The amplifiers have a negative feedback to avoid oscillation and temperature
drift. A circuit 38 with a zener diode 39 keeps the voltage that supplies the amplifiers
through electrical connection 40 constant, to give stable amplification. The subcircuit
38 feeds a control unit 41 with a high and a low stable reference potentials through
electrical connections 42 and 43, respectively. Electrical connections 44a, 44b and
44c connect three amplifiers with low pass filters 45a, 45b and 45c. Electrical connections
46a, 46b and 46c direct the output signals to the control unit 41. To the control
unit is connected an external 8GHz oscillator 47, which functions as the clock for
the control unit 41. The power supply (not shown) feeds the control unit through electronic
connection 48. A switch function 49, used to switch the detector between the functions
fire detector, gas detector and smoke detector is attached by electronic connections
50a, 50b, 50c and 50d to the control unit at four pins. The switch in one embodiment
is done manually by a dipswitch.
[0070] A programming interface 51 is used to enable the communication between the control
unit and a computer. It consists of a JTAG port 52 that is connected to the control
unit 41 through electronic connection 53a, 53b, 53c, 53d and 53e.
1. A fire detecting system (16) of the kind comprising a first radiation sensitive semi-conductor
(22a,35a) for measuring a first radiation intensity at a first wavelength and emitted
from an area susceptible of fire and creating a first output signal representing the
first radiation intensity and at least one second radiation sensitive semi-conductor
(22b,22c,35b,35c) for measuring at least one second radiation intensity at at least
one second wavelength and emitted from the area susceptible of fire and creating at
least one second output signal representing the second radiation intensity, wherein
the fire detecting system (16) comprises,
- that the first radiation sensitive semi-conductor (22a, 35a) and the at least one
second radiation sensitive semi-conductor (22b,22c,35b,35c) are arranged in a predefined
pattern,
- that the fire detecting system (16) has means for converting the first output signal
into a first temperature indicating signal and the at least one second output signal
to at least one second temperature indicating signal,
- processor means for comparing the first temperature indicating signal with the at
least one second temperature indicating signal, serving as a control for the first
temperature indication signal,
- a database (21) including ignitibility data of materials on a susceptible fire target,
and
- compare means for comparing the temperature indication signals with the database.
2. A fire detecting system (16) according to claim 1, wherein the pattern is selected
from the group comprising a 2-dimensional array, a 3-dimensional array, concentric
circles, polygons or arbitrary order.
3. A fire detecting system (16) according to claim 1, wherein the radiation sensitive
semi-conductors (22a,22b,22c,35a,35b,35c) are selected from the group comprising photo
diodes, PIN diodes, CMOS circuits, bolometer or CCD chips and combination of these.
4. A fire detecting system (16) according to claim 1, wherein the radiation sensitive
semi-conductors (22a,22b,22c,35a,35b,35c) measure in wavelength range from about 200nm
to about 30µm.
5. A fire detecting system (16) according to claim 1, wherein the means for converting
an output signal into a temperature indicating signal, the processor means and the
compare means include a control unit (19,41) and software-programs.
6. A fire detecting system (16) according to any of the preceding claims 1 - 5 wherein
the fire detecting system (16) further comprises at least one gas detector.
7. A fire detecting system (16) according to claim 6, wherein the database (21) includes
data representing the wavelengths at which at least some gases absorb radiation.
8. A fire detecting system (16) according to claim 6, wherein the fire detecting system
(16) has an external radiation source.
9. A fire detecting system (16) according to claim 6, wherein the fire detecting system
(16) comprises a spark detector with a response time faster than or around 8 ms and
with a sensitivity lower than or around 1.1 mW/cm2.
10. A fire detecting system (16) according to claim 6, wherein the fire detecting system
(16) comprises a smoke detector.
11. A fire detecting system (16) according to claim 6, wherein the fire detecting system
(16) comprises a temperature sensor.
12. A method for detecting fire using the fire detecting system (16) according to any
of the preceding claims 1 - 11, wherein the method comprises the steps of,
- storing in a database (20) on a control unit (19,41) ignition temperatures of at
least some materials localized in an area susceptible of fire,
- measuring radiation intensity from at least one area in the zone at a first specified
wavelength by a first radiation sensitive semi-conductor (22a,35a) returning a first
output signal,
- measuring radiation intensity from the at least one area in the zone at at least
one second specified wavelength by at least one second radiation sensitive semi-conductor
(22b,22c,35b,35c) returning at least one second output signal,
- converting the returned first output signal from the first radiation sensitive semi-conductor
(22a,35a) measured at the first wavelength into a first temperature indicating signal,
- converting the at least one second output signal from the at least one second radiation
sensitive semi-conductor (22b,22c,35b,35c) measured at the at least one second wavelength
into at least one second temperature indicating signal,
- comparing the first temperature indicating signal with the at least one second temperature
indicating signal, and determining a first difference value, and if first difference
value is less than a first predefined difference value then,
- comparing the first temperature indicating signal with the database ignition temperature
of the material in the monitored area and a second difference value is determined,
and
- if the second difference value is below a second predefined difference value an
alarm signal is sent.
13. A method according to claim 12 wherein the first predefined difference value is chosen
to be lower than or around 10°C.
14. A method for detecting fire according to claim 12 wherein the method comprises the
steps of,
- storing in a database (20) on a control unit (19,41) absorption wavelengths of a
plurality of gas molecules,
- measuring radiation intensity from at least one area in the zone at at least one
absorption wavelength of the at least one monitored gas molecule by a first radiation
sensitive semi-conductor (22a,35a) returning an absorption output signal,
- measuring radiation intensity from the at least one area in the zone at at least
one non-absorption wavelength of the at least one monitored gas molecule by at least
one second radiation sensitive semi-conductor (22b,22c,35b,35c) returning at least
one non-absorption output signal,
- comparing the at least one absorption output signal with the at least one non-absorption
output signal and determining whether there is a difference between at least one absorption
output signal and the at least one non-absorption output signal that is due to absorption,
and
- sending an alarm signal if the difference is due to absorption.
15. A method for detecting fire according to any of the preceding claims 12, 13 or 14,
wherein the method further comprises the step of,
- converting the temperature corresponding to the first temperature indicating signal
to an intensity for at least one absorption wavelength of at least one gas molecule
into a first database intensity,
- measuring the radiation intensity from the at least one area in the zone at at least
one absorption wavelength of the at least one monitored gas molecule by at least one
second radiation sensitive semi-conductor (22b,22c,35b,35c) returning at least one
absorption output signal,
- comparing the at least one absorption output signal with the at least one first
database intensity and if the relation between the absorption output signal and the
first database intensity for the wavelength characteristic of at least one gas molecule
is less than a third predefined value, then
- sending an alarm signal.
1. Ein Feuermeldesystem (16) von der Art mit einem ersten strahlungsempfindlichen Halbleiter
(22a, 35a) zum Messen einer ersten Strahlungsintensität mit einer ersten Wellenlänge,
die von einem ersten für einen Brand anfälligen Fläche emittiert wird, und Erzeugen
eines ersten Ausgangssignals, das die erste Strahlungsintensität wiedergibt und mit
wenigstens einem zweiten strahlungsempfindlichen Halbleiter (22b, 22c, 35b, 35c) zum
Messen wenigstens einer zweiten Strahlungsintensität mit wenigstens einer zweiten
Wellenlänge, die von einer für einen Brand anfälligen Fläche emittiert wird und Erzeugen
wenigstens eines zweiten Ausgangssignals, das die zweite Strahlungsintensität wiedergibt,
wobei das Feuermeldesystem (16) derart ausgebildet ist,
- dass der erste strahlungsempfindliche Halbleiter (22a, 35a) und der wenigstens eine
zweite strahlungsempfindliche Halbleiter (22b, 22c, 35b, 35c) in einem vorgegebenen
Muster angeordnet sind,
- dass das Feuermeldesystem (16) Mittel zum Wandeln des ersten Ausgangssignals in
ein erstes die Temperatur angebendes Signal und des wenigstens einen zweiten Ausgangssignal
in wenigstens ein zweites die Temperatur angebenden Signal wandelt, mit
- einem Prozessor zum Vergleichen des ersten die Temperatur angebenden Signals mit
dem wenigstens einen zweiten die Temperatur angebenden Signal, das zur Kontrolle des
ersten die Temperatur angebenden Signals dient,
- einer Datenbasis (21) mit Entzündungsdaten von Materialien an einem für eine Entzündung
anfälligen Objekt, und
- einem Komparator zum Vergleichen der Temperaturangabensignale mit denen der Datenbasis.
2. Ein Feuermeldesystem (16) nach Anspruch 1, wobei das Muster ausgewählt ist aus der
Gruppen bestehend aus einem 2-dimensionalen Feld, einem 3-dimensionalen Feld, konzentrischen
Kreisen, Polygonen oder einer willkürlichen Reihenfolge.
3. Ein Feuermeldesystem (16) nach Anspruch 1, wobei die für Strahlung empfindlichen Halbleiter
(22a, 22b, 22c, 35a, 35b, 35c) ausgewählt sind aus einer Gruppe bestehend aus Photodioden,
PIN Dioden, CMOS Schaltkreisen, Bolometern oder CCD-Chips oder Kombinationen aus diesen.
4. Ein Feuermeldesystem (16) nach Anspruch 1, wobei die strahlungsempfindlichen Halbleiter
(22a, 22b, 22c, 35a, 35b, 35c) in einem Wellenbereich von etwa 200 nm bis etwa 30
µm messen.
5. Ein Feuermeldesystem (16) nach Anspruch 1, wobei das Mittel zum Wandeln eines Ausgangssignals
in das eine Temperatur angebende Signal, der Prozessor und der Komparator eine Steuereinheit
(19, 41) und Softwareprogramme beinhalten.
6. Ein Feuermeldesystem (16) nach einem der vorangehenden Ansprüche 1-5, wobei das erste
Feuermeldesystem (16) weiter wenigstens einen Gasdetektor aufweist.
7. Ein Feuermeldesystem (16) nach Anspruch 6, wobei die Datenbasis (21) Daten beinhaltet,
die die Wellenlänge wiedergeben, bei der wenigstens einige Gase Strahlung absorbieren.
8. Ein Feuermeldesystem (16) nach Anspruch 6, wobei das Feuermeldesystem (16) eine externe
Strahlungsquelle hat.
9. Ein Feuermeldesystem (16) nach Anspruch 6, wobei das Feuermeldesystem (16) einen Funkendetektor
hat, dessen Antwortzeit schneller oder etwa 8 ms ist und mit einer Empfindlichkeit,
die geringer oder etwa gleich 1,1 mW/cm2 ist.
10. Ein Feuermeldesystem (16) nach Anspruch 6, wobei das Feuermeldesystem (16) einen Rauchdetektor
aufweist.
11. Ein Feuermeldesystem (16) nach Anspruch 6, wobei das Feuermeldesystem (16) einen Temperatursensor
aufweist.
12. Ein Verfahren zum Feuermelden unter Verwendung des Feuermeldesystems (16) nach einem
der vorangehenden Ansprüche 1-11, wobei das Verfahren die folgenden Schritte aufweist:
- Speichern in einer Datenbasis (20) auf einer Steuereinheit (19, 41) die Entzündungstemperaturen
von wenigstens einigen Materialien, die in einem für Brand anfälligen Bereich vorhanden
sind,
- Messen der Strahlungsintensität von wenigstens einem Bereich in der Zone bei einer
ersten vorgegebenen Wellenlänge durch einen ersten auf Strahlung ansprechenden Halbleiter
(22a, 35a), der ein erstes Ausgangssignal zurückgibt,
- Messen der Strahlungsintensität von dem wenigstens einen Bereich in der Zone bei
wenigstens einer zweiten vorgegebenen Wellenlänge von wenigstens einem zweiten auf
Strahlung ansprechenden Halbleiter (22b, 22c, 35b, 35c), der wenigstens ein zweites
Ausgangssignal zurückgibt,
- Wandeln des von dem ersten auf Strahlung ansprechenden Halbleiter (22a, 35a) zurückgegebenen
ersten Ausgangssignal, das bei einer ersten Wellenlänge gemessen ist, in ein erstes
die Temperatur angebendes Signal,
- Wandeln des wenigstens einen zweiten Ausgangssignals von dem wenigstens einen zweiten
auf Strahlung ansprechenden Halbleiter (22b, 22c, 35b, 35c), der bei wenigstens einer
zweiten Wellenlänge gemessen ist, in wenigstens ein eine zweite Temperatur angebendes
Signal,
- Vergleichen des ersten die Temperatur angebenden Signals dem wenigstens einen zweiten
die Temperatur angebenden Signal und Bestimmen eines ersten Differenzwerts und, wenn
der erste Differenzwert kleiner ist als ein erster vorgegebener Differenzwert,
- Vergleichen des ersten die Temperatur angebenden Signals mit der Entzündungstemperatur
des Materials in dem beobachtenden Bereich, der in der Datenbasis gespeichert ist,
und Bestimmen eines zweiten Differenzwerts, und
- wenn der zweite Differenzwert unterhalb eines zweiten vorgegebenen Differenzwerts
ist, Aussenden eines Alarmsignals.
13. ein Verfahren nach Anspruch 12, wobei der erste vorgegebene Differenzwert derart ausgewählt
wird, dass er geringer oder gleich etwa 10°C ist.
14. Ein Verfahren zum Melden von Feuer nach Anspruch 12, wobei das Verfahren die folgenden
Schritte aufweist:
- Speichern von Absorptionswellenlängen einer Mehrzahl von Gasmolekülen in einer Datenbasis
(20) auf einer Steuereinheit (19, 41),
- Messen der Strahlungsintensität von wenigstens einem Bereich in der Zone bei wenigstens
einer Absorptionswellenlänge wenigstens eines beobachteten Gasmoleküls durch einen
ersten auf Strahlung ansprechenden Halbleiter (22a, 35a) unter Ausgabe eines Absorptionsausgangssignals,
- Messen der Strahlungsintensität von dem wenigstens einen Bereich in der Zone bei
wenigstens einer Nicht-Absorptionswellenlänge von dem wenigstens einen beobachteten
Gasmolekül durch wenigstens einen zweiten auf Strahlung ansprechenden Halbleiter (22b,
22c, 35b, 35c) unter Ausgabe wenigstens eines Nicht-Absorptionsausgabesignals,
- Vergleichen des wenigstens einen Absorptionsausgangssignals mit dem wenigstens einen
Nicht-Absorptionsausgangssignals und Bestimmen, ob eine Differenz zwischen dem wenigstens
einen Absorptionsausgangssignal und dem wenigstens einen Nicht-Absorptionsausgangssignal
aufgrund von Absorption vorhanden ist, und
- Senden eines Alarmsignals, wenn die Differenz auf einer Absorption beruht.
15. Ein Verfahren zum Melden von Feuer nach einem der vorangehenden Ansprüche 12, 13 oder
14, wobei das Verfahren weiter die folgenden Schritte aufweist:
- Wandeln der Temperatur, die dem erste Temperatur angebenden Signal entspricht, in
eine Intensität für wenigstens eine Absorptionswellenlänge wenigstens eines Gasmoleküls
in eine erste Datenbasisintensität,
- Messen der Strahlungsintensität von dem wenigstens einen Bereich der Zone bei der
wenigstens einen Absorptionswellenlänge des wenigstens einen beobachtenden Gasmoleküls
durch wenigstens einen zweiten auf Strahlung ansprechenden Halbleiter (22b, 22c, 35b,
35c) und Ausgeben wenigstens eines Absorptionsausgangssignals,
- Vergleichen wenigstens eines Absorptionsausgangssignals mit der wenigstens einen
ersten Datenbasisintensität und dann, wenn die Beziehung zwischen dem Absorptionsausgangssignal
und der ersten Datenbasisintensität für die Wellenlänge, die für wenigstens ein Gasmolekül
charakteristisch dafür ist, dass wenigstens ein Gasmolekül kleiner als ein dritter
vorgegebener Wert ist, und ggf.
- Aussenden eines Alarmsignals.
1. Système de détection d'incendie (16) du type qui comprend un premier semi-conducteur
sensible au rayonnement (22a, 35a) destiné à mesurer une première intensité de rayonnement
à une première longueur d'onde et émise à partir d'une zone présentant un risque d'incendie
et à créer un premier signal de sortie représentant la première intensité de rayonnement,
et au moins un second semi-conducteur sensible au rayonnement (22b, 22c, 35b, 35c)
destiné à mesurer au moins une seconde intensité de rayonnement à au moins une seconde
longueur d'onde et émise à partir de la zone présentant un risque d'incendie et à
créer au moins un second signal de sortie représentant la seconde intensité de rayonnement,
dans lequel le système de détection d'incendie (16) comprend :
- le premier semi-conducteur sensible au rayonnement (22a, 35a) et le au moins un
second semi-conducteur sensible au rayonnement (22b, 22c, 35b, 35c) sont agencés selon
un motif prédéfini ;
- le système de détection d'incendie (16) présente des moyens pour convertir le premier
signal de sortie en un premier signal d'indication de la température et le au moins
un second signal de sortie en au moins un second signal d'indication de la température
;
- des moyens de traitement pour comparer le premier signal d'indication de la température
à le au moins un second signal d'indication de la température, servant de commande
pour le premier signal d'indication de la température ;
- une base de données (21) qui comprend des données d'inflammabilité des matériaux
se rapportant à une cible présentant un risque d' incendie ; et
- des moyens de comparaison pour comparer les signaux d'indication de la température
à la base de données.
2. Système de détection d'incendie (16) selon la revendication 1, dans lequel le motif
est sélectionné dans le groupe constitué par un réseau bidimensionnel, un réseau tridimensionnel,
des cercles concentriques, des polygones ou un ordre arbitraire.
3. Système de détection d'incendie (16) selon la revendication 1, dans lequel les semi-conducteurs
sensibles au rayonnement (22a, 22b, 22c, 35a, 35b, 35c) sont sélectionnés dans le
groupe constitué par des photodiodes, des diodes PIN, des circuits CMOS, un bolomètre
ou des puces CCD et une combinaison de ceux-ci.
4. Système de détection d'incendie (16) selon la revendication 1, dans lequel les semi-conducteurs
sensibles au rayonnement (22a, 22b, 22c, 35a, 35b, 35c) effectuent leur mesure dans
une plage de longueurs d'onde comprise entre 200 nm environ et 30 µm environ.
5. Système de détection d'incendie (16) selon la revendication 1, dans lequel les moyens
pour convertir un signal de sortie en un signal d'indication de la température, les
moyens de traitement et les moyens de comparaison comprennent une unité de commande
(19, 41) et des programmes informatiques.
6. Système de détection d'incendie (16) selon l'une quelconque des revendications précédentes
1 à 5, dans lequel le système de détection d'incendie (16) comprend en outre un détecteur
de gaz au moins.
7. Système de détection d'incendie (16) selon la revendication 6, dans lequel la base
de données (21) comprend des données représentant les longueurs d'onde auxquelles
certains gaz au moins absorbent le rayonnement.
8. Système de détection d'incendie (16) selon la revendication 6, lequel système de détection
d'incendie (16) présente une source de rayonnement extérieure.
9. Système de détection d'incendie (16) selon la revendication 6, lequel système de détection
d'incendie (16) comprend un détecteur d'étincelles dont le temps de réponse est inférieur
ou à peu près égal à 8 ms, et dont la sensibilité est inférieure ou à peu près égale
à 1,1 mW / cm2.
10. Système de détection d'incendie (16) selon la revendication 6, lequel système de détection
d'incendie (16) comprend un détecteur de fumée.
11. Système de détection d'incendie (16) selon la revendication 6, lequel système de détection
d'incendie (16) comprend un capteur de température.
12. Procédé destiné à détecter un incendie en utilisant le système de détection d'incendie
(16) selon l'une quelconque des revendications précédentes 1 à 11, le procédé comprenant
les étapes consistant à :
- stocker dans une base de données (20) dans une unité de commande (19, 41) les températures
d'inflammation de certains matériaux au moins qui se situent dans une zone présentant
un risque d'incendie ;
- mesurer une intensité de rayonnement en provenance d'au moins un secteur dans la
zone à une première longueur d'onde spécifiée à l'aide d'un premier semi-conducteur
sensible au rayonnement (22a, 35a) qui renvoie un premier signal de sortie ;
- mesurer une intensité de rayonnement en provenance du le au moins un secteur dans
la zone à au moins une seconde longueur d'onde spécifiée à l'aide d'au moins un second
semi-conducteur sensible au rayonnement (22b, 22c, 35b, 35c) qui renvoie au moins
un second signal de sortie ;
- convertir le premier signal de sortie renvoyé par le premier semi-conducteur sensible
au rayonnement (22a, 35a) mesuré à la première longueur d'onde en un premier signal
d'indication de la température ;
- convertir le au moins un second signal de sortie en provenance du le au moins un
second semi-conducteur sensible au rayonnement (22b, 22c, 35b, 35c) mesuré à la au
moins une seconde longueur d'onde, en au moins un second signal d'indication de la
température ;
- comparer le premier signal d'indication de la température à le au moins un second
signal d'indication de la température, et déterminer une première valeur de différence,
et si la première valeur de différence est inférieure à une première valeur de différence
prédéfinie, alors :
- comparer le premier signal d'indication de la température à la température d'inflammation
de la base de données du matériau dans le secteur surveillé, et une deuxième valeur
de différence est déterminée ; et
- si la deuxième valeur de différence est inférieure à une deuxième valeur de différence
prédéfinie, un signal d'alarme est envoyé.
13. Procédé selon la revendication 12, dans lequel la première valeur de différence prédéfinie
est sélectionnée de façon à être inférieure ou à peu près égale à 10 °C.
14. Procédé destiné à détecter un incendie selon la revendication 12, le procédé comprenant
les étapes consistant à :
- stocker dans une base de données (20) dans une unité de commande (19, 41), les longueurs
d'onde d'absorption d'une pluralité de molécules de gaz ;
- mesurer une intensité de rayonnement en provenance d'au moins un secteur dans la
zone à au moins une longueur d'onde d'absorption de la au moins une molécule de gaz
surveillée à l'aide d'un premier semi-conducteur sensible au rayonnement (22a, 35a)
qui renvoie un signal de sortie d'absorption ;
- mesurer une intensité de rayonnement en provenance du le au moins un secteur dans
la zone à au moins une longueur d'onde de non absorption de la au moins une molécule
de gaz surveillée à l'aide d'au moins un second semi-conducteur sensible au rayonnement
(22b, 22c, 35b, 35c) qui renvoie au moins un signal de sortie de non absorption ;
- comparer le au moins un signal de sortie d'absorption à le au moins un signal de
sortie de non absorption, et déterminer s'il y a ou pas une différence entre au moins
un signal de sortie d'absorption et le au moins un signal de sortie de non absorption,
qui est due à l'absorption ; et
- envoyer un signal d'alarme si la différence est due à l'absorption.
15. Procédé destiné à détecter un incendie selon l'une quelconque des revendications précédentes
12, 13 ou 14, le procédé comprenant en outre les étapes consistant à :
- convertir la température correspondant au premier signal d'indication de la température
en une intensité pour au moins une longueur d'onde d'absorption d'au moins une molécule
de gaz, en une première intensité de base de données ;
- mesurer l'intensité de rayonnement en provenance du le au moins un secteur dans
la zone à au moins une longueur d'onde d'absorption de la au moins une molécule de
gaz surveillée à l'aide d'au moins un second semi-conducteur sensible au rayonnement
(22b, 22c, 35b, 35c) qui renvoie au moins un signal de sortie d'absorption ;
- comparer le au moins un signal de sortie d'absorption à la au moins une première
intensité de base de données et si la relation entre le signal de sortie d'absorption
et la première intensité de base de données pour la longueur d'onde caractéristique
d'au moins une molécule de gaz est inférieure à une troisième valeur prédéfinie ;
alors
- envoyer un signal d'alarme.