TECHNICAL FIELD
[0001] The invention relates to a fire protection system comprising a control panel to which
first terminal units comprising an abnormality sensor such as a fire detector or a
gas sensor and second terminal units comprising disaster protection devices such as
a fire or emergency door, a smoke control orventing device, or a fire extinguishing
system are connected, in which system the state of the terminal units is subsequently
determinated and analyzed from the control panel by a polling method and control command
signals are delivered to the second terminal units from the control panel according
to the state information received in the control panel from said first and second
terminal units.
TECHNOLOGICAL BACKGROUND
[0002] Afire protection system of this kind is known from FR-A-2 319 166. This prior art
system employs the polling method which causes the fire control panel to circularly
call the terminal units in order and to read from each of the called terminal units
the state information (presence or absence of an abnormality signal from an abnormality
sensor, or ON/OFF of the control circuits for devices to be controlled) or to control
the called terminal units.
[0003] The above terminal units may be slave units to which are connected abnormality sensors
(fire detectors, gas sensors etc.) and/or devices to be controlled (fire doors, smoke
control devices, smoke venting devices, fire extinguishing systems etc.).
[0004] In the above-mentioned fire protection system the terminal units to be controlled
and the time needed for the control are stored in advance in memory means such as
ROM's in the fire control panel so that the fire control panel may control the appropriate
terminal units on the basis of the data stored in the memory means in case of an abnormality,
such as a fire or a gas leak.
[0005] Now, if there are various terminal units to be controlled, and yet, the time required
for their control varies with each terminal unit, For example, fire doors, emergency
doors, smoke venting dampers, or smoke control dampers which are kept locked in a
position by electric locks are released from locking by actuating the electric lock
control circuits in the slave units for about 10 seconds, and then move to the predetermined
positions with the aid of door closers or their own weight.
[0006] For opening, closing, and resetting a motor driven fire shutter, smoke venting damper,
or a smoke con- trol/fire damper provided in the duct of an air conditioning system,
it is necessary to operate the control circuits in the slave units for the control
of the motors, i.e. the forward or reverse rotation for a certain length of time ranging
from about 10 seconds to a few minutes.
[0007] In case of fire, the fire control panel sends a control start command to the terminal
unit to be controlled and causes the control circuit in said terminal unit to operate.
[0008] As can be seen from the above description, the time required for control varies,
and this imposes a heavy workload on the lines in conventional prior art systems.
[0009] Moreover, there are problems in that the contents stored in the memory means of the
fire control panel need to be newly prepared for each installation of a fire alarm
system, and that whenever changes are made with respect to devices to be controlled,
those stored contents have to be changed accordingly, and such preparation and changes
are troublesome.
DISCLOSURE OF THE INVENTION
[0010] The present invention was made in view of these problems involved in conventional
fire protection systems, and with the objective of creating a fire protection system
such as a fire alarm system using the polling method which reduces the workload of
the fire control panel when controlling the terminal units, and which may easily be
adapted to changes of the devices to be controlled.
[0011] The invention by which said object is achieved is characterized in that the second
terminal units comprise control circuits equipped with timer means wherein the timer
means are triggered by said control command signals and are generating an output signal
for a predetermined individual time for operating the control circuit of the respective
second terminal unit during said predetermined time.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
Figure 1 is a block diagram showing the control panel of an embodiment of the present
invention,
Figure 2 is a block diagram showing a slave unit in this embodiment,
Figure 3 is a flowchart showing the operation of the fire control panel in this embodiment,
Figure 4 is a flowchart showing the operation of the slave unit in this embodiment,
Figure 5 is a circuit diagram showing an embodiment of the timer of the above embodiment,
and
Figure 6 is a time chart showing the operation of the timer shown in Figure 5.
BEST MODE FOR CARRYING OUT THE
INVENTION
[0013] Figure 1 is a block diagram showing an embodiment of the present invention. In Figure
1 a fire control panel 10 is connected with slave units C 1, C 2, C n. While devices
other than the slave units C 1 - C n may also be connected as terminal units, the
slave units alone are shown in Figure 1 as example.
[0014] The fire control panel 10 is equipped with a CPU 11 for overall control, an operating
part 12, an interface 13, a serial/parallel conversion circuit 14 converting serial
data into parallel data (or vice versa), a signal transmission/receiving circuit 15
for signal transmission or receiving, an indication part 16 for indicating predetermined
data, and an interface 17.
[0015] The fire control panel 10 is also equipped with a ROM 1, a ROM 2, a ROM 3, a ROM
4, a ROM 5, a RAM 1, a RAM 2, a RAM 3, a RAM 4, and a RAM 5 which store the system
program, the address classification map, the program for analyzing state information,
the control program, the program for analyzing the control results, the polling address,
the command codes, the terminal numbers and classifications of the terminal units
to which the control state commands need to be sent, the terminal numbers and classifications
of the terminal units ti which the reset commands need to be sent, the terminal numbers
and classifications of the terminal units which need to be checked for proper control,
respectively, and with a RAM 6 for working.
[0016] Figure 2 is a block diagram showing a practical example of the slave unit C 1. The
slave units C 2 - C n, too, have the same composition as that of slave unit C 1. The
slave unit C 1 is equipped with a circuit 61 which detects the fire signal from a
fire detector DE, with a control circuit 62 which controls an electric lock C of a
fire door, a control timer TM 1 for the fire door control circuit 62, a control circuit
63 which controls the forward/reverse rotation of a motor M for a fire shutter, a
timer TM 2 which controls the forward rotation time of the motor M, a timer TM 3 which
controls the reverse rotation time of the motor M, a control circuit 64 which controls
the forward/reverse rotation of a motor DM for a smoke venting damper, a timer TM
4 which controls the forward rotation of the motor DM, and a timer TM 5 which controls
the reverse rotation of the motor DM.
[0017] The timers TM 1 - TM 5 have their operating times set for the intended controls,
for example, TM 1 has an operating time of 5 seconds, TM 2 of 60 seconds, TM 3 of
90 seconds, and both TM 4 and TM 5 have 20 seconds.
[0018] The fire door control circuit 62, the fire shutter control circuit 63, and the smoke
venting dampercon- trol circuit 64 are shown as examples of control circuits which
control the terminal units themselves or devices connected with and controlled by
the terminal units. The fire door, the fire shutter, and the smoke venting damper
are shown as examples of controlled devices.
[0019] The timers TM 1 - TM 5 are shown as examples of the timer means which are triggered
by the control command signal from the fire control panel and generate an output for
a predetermined length of time. The output time of the timer means is adjustable.
[0020] The operation of the above embodiment is described hereinafter.
[0021] Figure 3 is a flowchart showing the operation of the fire control panel 10.
[0022] On the part of the fire control panel 10, firstly an initial value is set (S 1),
a terminal number n (a terminal unit number, i.e. a polling address) is incremented
by 1 (S 2) and referred to the terminal numbers and classifications stored in the
RAM 3 - RAM 5, with respect to the terminal units to which the control start command,
the reset command, and the command for checking the controls need to be sent. If there
is the terminal number n in one of the RAM 3 - RAM 5, a corresponding command code
is prepared. In the absence of the terminal number n in any of them, a command code
requesting a state information is prepared (S 3). Then, the address code and the command
code prepared in step S 3 are sent to the terminal unit (S4).
[0023] After this, if there is a return signal from the polled terminal unit (S 5) indicating
a result of the control (S 6), this information on the control result is analyzed
by the analyzing program stored in the ROM 5, the result of which is indicated by
the means of the indicating part 16 (S 7).
[0024] If the return signal from the terminal unit does not represent a control result but
rather a state of the terminal unit, the state information is analyzed by the analyzing
program stored in ROM 3 and indicated by indicator 16 (S 8).
[0025] If it is necessary to start controlling a device such as a fire door (S 11) as a
result of the analyzation of the state information from the fire detector DE, the
classification (classification of the control device) and the number n of the terminal
unit are stored in the RAM 3 (S 12). If it is necessary to reset the controlled device
(S 13), the classification and the terminal number n of the controlled device are
stored in the RAM 4 (S 14). If it is required to know a result of the control (S 15),
the classification and the terminal number n of the device to which the command for
checking the control applies is stored in the RAM 5 (S 16).
[0026] These operations of S 6 - S 16 are repeated until all the received information is
processed (S 21). After processing all the received information, the above operations
are repeated until the terminal number n reaches the set value N which represents
the last terminal number. When the terminal number n matches the set value N, the
terminal number n is set to O (S 23), and the operation returns to step S 2.
[0027] Now, the operation of the slave unit C 1 is described hereunder.
[0028] Figure 4 is a flowchart showing the operation of the slave unit C 1.
[0029] Firstly, the initial value is set (S 31). If there is a return signal through the
signal line (S 32), and yet the polling terminal number (address) in the return signal
matches the terminal number stored in ROM 2 (S 33), the state information is stored
(S 34).
[0030] The state information includes data indicating whether or not there is a fire signal
from the fire signal detecting circuit 61 and the ON/OFF state of each of the control
circuit 62, 63, 64 for the fire door, the fire shutter, and for thesmoke venting damper,
respectively.
[0031] Secondly, the command code in the return signal received from the fire control panel
10 is decoded. If this command code is a control command (S 35) and yet a control
start command (S 41), the timers TM 1, TM 2, TM 4 are triggered (S 42) to send the
state information of the detecting circuit 61 and the control circuits 62 - 64 which
had previously been read and stored at step S 34 to the fire control panel 10 (S 43).
With the outputs of the timers TM 1, TM 2, TM 4 the control circuits 62 - 64 are operated
for a predetermined time to close the fire door and the fire shutter, and to open
the smoke venting damper, resp.
[0032] On the other hand, if the control command is a reset command (S 51), the timers TM
3, TM 5 are triggered (S 52) to send the state information which has already been
read and stored at step S 34 to the fire control panel 10 (S 43). With the outputs
of the timers TM 3, TM 5 the control circuits 63, 64 are operated for the predetermined
time to open the fire shutter and to close the smoke venting damper, respectively.
[0033] If the received command code is not a control command (S 35) but a request from the
fire control panel 10 for information on results of the controls (S 61), the control
results of the controlled devices (Information as to open/close of the fire door,
the fire shutter, and the smoke venting damper) are read from the respective control
circuits (S 62), and the information on the control results and the state information
stored at step S 34 are sent to the fire control panel 10 (S 63). In brief, information
on results of the controls is given with respect to those controlled devices which
need to be checked for their proper controls, while state information of the control
circuits is given with respect to those controlled devices which need not to be checked
for their controls Then, the operation of the slave unit returns to step S 32.
[0034] In the above embodiment each of the control circuits in the terminal units is provided
with a control timer which is triggered by the command from the fire control panel
and generates an output signal to the control circuit in the terminal unit for a predetermined
length of time (Time needed for control). With this arrangement the control of the
above control circuits is completed by merely sending the control signal from the
fire control panel to the corresponding terminal unit when such control is required
due to fire or other accidents, and there is no need for the fire control panel to
manage the control time for each control circuit. This reduces the workload on the
part of the fire control panel for the control of the terminal units to a large extent.
[0035] Furthermore, by providing control timers which control the operating time of the
control circuits, it is possible to perform precise control of the control devices
and to control each terminal unit within the optimum length of time, and consequently
the power consumption for control can be reduced.
[0036] Figure 5 shows an example of the timers TM 1 - TM 5, the output time of which can
optionally be changed by means of the dip switches, thus they can be adapted to devices
of the same kind which have different control times (timer output times).
[0037] Figure 6 is a time chart showing the operation of the timers shown in Figure 5. This
time chart shows a case where an 8-bit binary counter with preset priority function
is used.
[0038] The time T of the timer output (output of the OR circuit) is given by the following
formula:

[0039] Therefore, the length of the output time of the timer is variable within a range
of 1 second - 255 seconds.
[0040] Although the numerical value indicated on the counter at the time of turning on the
power supply, it is set to zero by the power-on reset signal immediately after the
power-on, and the output of the OR circuit reaches the L level, causing the counter
to clear itself through the AND circuit and to lock in the cleared state.
[0041] Because of the preset priority function the counter is released from the cleared
state when the start pulse is applied, and the ON/OFF state of the dip switches S
0 - S 7 is preset in the counter. After this, the counter keeps counting and again
returns to and locks in the cleared state when overflowed (the output of all of Q
0 - Q 7 reached the H level). Thus, the output of the OR circuit remains at the H
level for the above T seconds, and consequently the counter circuit fulfills the function
of the timer.
[0042] The start pulse is generated by the terminal unit CPU 50 upon receipt of the reset
command from the fire control panel and sent to the timer through I/F.
[0043] By providing each of the control circuits in the terminal unit with a control timer
which is triggered by the command from the fire control panel and generated an output
to the control circuit for a predetermined length for time, the present invention
has such effects that the workload of the fire control panel when controlling the
terminal units in a fire protection system using the polling method is reduced, and
the work required for changes of devices to be controlled is readily performed.
1. Fire protection system comprising a control panel (10, 50) to which first terminal
units (61) comprising an abnormality sensor such as a fire detector (DE) or a gas
sensor and second terminal units (62, 63, 64) comprising disaster protection devices
such as a fire or emergency door (C, F), a smoke control or venting device (DM), or
a fire extinguishing system are connected, in which system the state of the terminal
units (61, 62, 63, 64) is subsequently determinated and analyzed from the control
panel (10, 50) by a polling method and control command signals are delivered to the
second terminal unit (62, 63, 64) from the control panel according to the state information
received in the control panel from said first and second terminal units (61, 62, 63,
64), characterized in that the second terminal units (62, 63, 64) comprise control
circuits equipped with timer means (TM1, TM2...TM5) wherein the timer means are triggered
by said control command signals and are generating an output signal for a predetermined
individual time (T) for operating the control circuit of the respective second terminal
unit (62, 63, 64) during said predetermined time (T).
2. Fire protection system according to claim 1, characterized in that the individual
output times (T) of said timer means (TM1, TM2...TM5) are adjustable.
3. Fire protection system according to claim 1 or 2, characterized in that the terminal
units are connected to the control panel in slave units (C1, C2...Cn) each of which
comprises at least one first terminal unit (61) and at least one second terminal unit
(62, 63, 64).
1. Feuerschutzsystem, welches eine Steuereinheit (10, 50) umfasst, an das erste Anschlusseinheiten
(61) mit einem Abnormalitätssensor, wie einem Feuerdetektor (DE) oder einem Gassensor,
und zweite Anschlusseinheiten (62, 63, 64) mit Katastrophenschutzeinrichtungen wie
eine Feuer- oder Notausgangstür (C, F) oder eine Rauchüberwachungs- oder Entlüftungseinrichtung
(DM), oder ein Feuerlöschsystem angeschlossen sind, bei welchem System der Zustand
der Anschlusseinheiten (61, 62, 63,64) mit einem Abfrageverfahren nacheinander bestimmt
und von der Steuereinheit (10, 50) analysiert wird, und Steuersignale von der Steuereinheit
an die zweiten Anschlusseinheiten (62, 63, 64) entsprechend der in der Steuereinheit
von den besagten ersten und zweiten Anschlusseinheiten (61, 62, 63, 64) erhaltenen
Zustandsinformationen geliefert werden, dadurch gekennzeichnet, dass die zweiten Anschlusseinheiten
(62, 63, 64) Steuerschaltkreise aufweisen, die mit Zeitgiiedern(TM1,TM2...TM5) versehen
sind, wobei die Zeitglieder durch die besagten Steuersignalen ausgelöst werden und
ein Ausgangssignal während einer vorgegebenen Zeit (T) zur Betätigung des Steuerschaltkreises
der entsprechenen zweiten Anschlusseinheit während dieser vorgegebenen Zeit (T) erzeugen.
2. Feuerschutzsystem nach Anspruch 1, dadurch gekennzeichnet, dass die individuellen
Ausgangszeiten (T) der besagten Zeitglieder (TM1, TM2 ...T5) einstellbar sind.
3. Feuerschutzsystem nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass die Anschlusseinheiten
mit der Steuereinheit in Untereinheiten (C1, C2 ...Cn) verbunden sind, von denen jede
wenigstens eine erste Anschlusseinheit (61) und wenigstens eine zweite Anschlusseinheit
(62, 63, 64) umfasst.
1. Système de protection contre l'incendie comprenant un tableau de commande (10,50)
auquel sont reliées des premières unités terminales (61) comprenant un capteur d'anomalie
tel qu'un détecteur d'incendie (DE) ou un capteur de gaz, et des deuxièmes unités
terminales (62, 63, 64) comprenant des dispositifs de protection contre les sinistres
, tels qu'une porte pare-feu ou de sortie de secours (C, F), un dispositif pour maîtriser
ou évacuer la fumée (DM), ou un système extincteur d'incendie, l'état des unités terminales
(61, 62, 63, 64) étant ensuite déterminé dans ce système et anylisé à partir du tableau
de commande (10, 50) par une méthode d'interrogation automatique, des signaux de commande
étant envoyés aux deuxièmes unités terminales (62, 63, 64) à partir du tableau de
commande en fonction de l'information d'état reçu dans le tableau de commande à partir
desdites premières et deuxièmes unités terminales (61, 62, 63, 64), caracterisé en
ce que les deuxièmes unités terminales (62, 63, 64) comprennent des circuits de temposisation
(TM1, TM2 ... TM5), dans lesquels les moyens de temporisation sont déclenchés par
lesdites signaux de commande et génèrent un signal de sortie pendant un temps individuel
prédéterminé (T) pour faire fonctionner le circuit de commande de la deuxième unité
terminale respective (62, 63, 64) pendant ledit temps prédéterminé (T).
2. Système de protection contre l'incendie selon la revendication 1, caractérisé en
ce que les temps individuels (T) en sortie desdits moyen de temporis- tion (TM1, TM2...TM5)
sont réglables.
3. Système de protection contre l'incendie selon la revendication 1 ou 2, caractérisé
en ce que les unités terminales sont reliées au tableau de commande dans des unités
asservies (C1, C2 ...Cn), dont chacune comprend au moins une première unité terminale
(61) et au moins une deuxième unité terminale (62, 63, 64).