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EP 0 884 536 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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03.12.2003 Bulletin 2003/49 |
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Date of filing: 09.06.1998 |
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International Patent Classification (IPC)7: F23N 5/24 |
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Control system for a fuel burning appliance
Regelsystem für einen Brenner
Système de commande pour un brûleur
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Designated Contracting States: |
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FR GB IT |
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Priority: |
13.06.1997 GB 9712450
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Date of publication of application: |
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16.12.1998 Bulletin 1998/51 |
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Proprietor: Kigass Electronics Ltd |
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Redditch,
Worcestershire B98 7SN (GB) |
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Inventor: |
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- Chuter, Barry Ian
Hythe,
southampton, SO4 5LX (GB)
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Representative: Pratt, Richard Wilson et al |
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D. Young & Co,
21 New Fetter Lane London EC4A 1DA London EC4A 1DA (GB) |
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References cited: :
EP-A- 0 320 082 US-A- 5 470 223
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EP-A- 0 638 770 US-A- 5 590 517
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- PATENT ABSTRACTS OF JAPAN vol. 011, no. 196 (M-601), 24 June 1987 (1987-06-24) & JP
62 019615 A (MATSUSHITA ELECTRIC IND CO LTD), 28 January 1987 (1987-01-28)
- PATENT ABSTRACTS OF JAPAN vol. 006, no. 207 (M-165), 19 October 1982 (1982-10-19)
& JP 57 112612 A (YAMATAKE HONEYWELL KK), 13 July 1982 (1982-07-13)
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] This invention relates to a control system for a fuel burning appliance, for example
a gas appliance, see for example US-A-5 470 223.
[0002] Modern fuel burning appliances such as cookers, heaters and boilers are typically
provided with various components which can be manipulated by a user in order to control
the appliance. In a gas cooker, for example, the components may include a system clock
which can be set by the user to turn on or turn off the cooker at a predetermined
time set by the user.
[0003] These modern fuel burning appliances typically include some arrangement for automatically
igniting the fuel used by the appliance. The fuel is usually ignited by an electrically
powered ignition circuit which is operable to store charge in a capacitor and then,
upon actuation of switch means, discharge the capacitor through a primary winding
of a transformer to develop a potential of several thousand volts over a pair of spark
electrodes connected to the secondary winding of the transformer, the potential generating
a spark that is used to ignite the fuel.
[0004] This arrangement, whilst providing an elegantly simple mechanism for electronically
igniting a fuel such as gas suffers from a serious disadvantage in that the electromagnetic
interference caused by the generation of the spark can often interfere with or even
damage other components of the appliance control system. The interference or damage
can also be caused by leakage, to other system components, of current from the large
current pulse discharged by the capacitor.
[0005] This electronic interference can visually detract from the overall appearance of
the appliance and, in the some cases, can give the impression that the appliance is
malfunctioning. The user/owner of the appliance may then call out an engineer for
an expensive consultation, only to be told that the appliance is not malfunctioning
and that the interference is normal. This leads to bad feeling and dissatisfaction
which is highly undesirable with regard to any brand reputation that the appliance
manufacturer might be trying to instill in a purchaser in the hope that the purchaser
will repeat buy from a range of alternative appliances manufactured by that manufacturer.
[0006] In accordance with an aspect of the present invention, there is provided a control
system for a fuel burning appliance, the control system comprising:
ignition means for igniting the fuel with an electrically generated spark;
a controller for controlling the ignition means;
at least one other system component;
a pair of power lines connecting the controller to the at least one other system component;
and
power isolating means for isolating the at least one other system component from
the pair of power lines for a period when an ignition signal is supplied to the ignition
means.
[0007] In this way, the present invention alleviates the above-mentioned problems by providing
a mechanism whereby components of an appliance control system are isolated from the
ignition circuit so that they are less affected by stray electromagnetic interference
caused by spark generation in the ignition circuit.
[0008] Preferably, the isolating means includes means for isolating data communications
between the controller and the at least one other system component.
[0009] Preferably, the means for isolating data communications comprises an optoisolator.
[0010] Preferably, the optoisolator comprises a light emitting diode and an associated photodetector.
[0011] Preferably, the isolating means includes means for isolating power transmission between
the controller and the at least one other system component.
[0012] Preferably, the power isolating means comprises a pair of relay switches, each switch
being connected to a respective one of a pair of DC power lines and to a respective
power input of the at least one other component.
[0013] A relay coil powered by the power lines may be provided, which when powered holds
the relay switches in a conductive state to allow conduction of power between the
controller and the at least one other system component.
[0014] A hold-up capacitor connected between and chargeable by the power lines may be provided,
the capacitor discharging when the relay switches are in a non-conductive state to
power the at least one system component connected thereto.
[0015] Preferably, the at least one system component includes a clock. The clock may comprise
control means provided within the controller and a display external to the controller
and connected to the control means by a cable, the cable comprising a pair of cables
for powering the display and a pair of cables for data communication between the control
means and the controller. In this case, the isolation means may be provided between
the control means and the controller.
[0016] Preferably, the controller includes a portion of the ignition circuit, the portion
including a capacitor, a transformer, means for discharging the capacitor through
a primary winding of the transformer, a ferrite core and a secondary winding of the
transformer, the secondary winding being connected by a high tension cable to a pair
of spark electrodes external to the controller.
[0017] A temperature sensor and user actuation means connected to the controller may be
provided, the user actuation means enabling a user to control the system.
[0018] Embodiments of the invention will now be described by way of example only with reference
to the following drawings, in which:
Figure 1 is a schematic representation of a control system;
Figure 2 is a schematic representation of a connecting cable suitable for connecting
the components of Figure 1;
Figure 3 is a schematic representation of an interface which may be controlled to
electrically isolate control system components connected thereto; and
Figure 4 is a schematic representation of the flow of data and other signals in the
control system of Figure 1.
[0019] The present invention will now be described with specific reference to a control
system for a gas cooker. However, it should be noted that the description of the present
invention with relation to a gas cooker is given purely by way of example and that
the present invention may be employed in an variety of different appliances, and differently
fuelled appliances.
[0020] With reference to Figure 1, an exemplary control system 1 comprises a user interface
3, a spark ignition circuit 5, a temperature sensor 7, an electronic clock 9 and a
controller or microprocessor 11. The interface 3, temperature sensor 7 and electronic
clock 9 are connected to the controller 11 by way of cables 13 such as those shown
in Figure 2. The ignition circuit 5 is connected to the controller 11 by way of a
high tension cable 15 which is capable of conveying a large voltage of several thousand
volts across ignition electrodes (not shown) in order to generate a spark for the
ignition of a fuel. The exact composition and operation of the ignition circuit is
well known and will not be further described herein.
[0021] Other components may be provided as required or desired. Accordingly, it should be
noted that the scope of the invention is not limited to the provision of a particular
number of components, or to components of a particular type.
[0022] It should also be noted that the controller may comprise a dedicated controller with
external system components or, alternatively, the controller may include elements
of the system components therein. For example, the controller may include parts of
the ignition circuit and the clock, for example, with only the display of the clock
and the spark electrodes of the ignition circuit being external to the controller.
[0023] Figure 2 illustrates a schematic representation of the connecter 13 shown in Figure
1 as connecting the interface 3, clock 9 and temperature probe 7 to the controller
11.
[0024] With reference to Figure 2, the connector 13 comprises an outer sheath 20 housing
a plurality of insulated cables 22. In this embodiment, a pair 24 of the cables 22
are capable of carrying data between the components of the control system, and a further
pair 26 of the cables are capable of carrying a DC voltage to the system components,
as required, to power them.
[0025] Figure 3 is a schematic representation of an interface which may be controlled to
electrically isolate control system components connected thereto.
[0026] The interface may be connected between the controller 11 and other system components
or, alternatively, the interface may be provided within the controller to isolate
portions of the controller related to the ignition circuit from other portions related
to other system components. For the purposes of this description, it will be assumed
that the interface is provided within the controller and that the controller includes
at least portions of other system components.
[0027] The interface 30 comprises a pair of isolating relays 32 which are respectively connected
to DC power lines 34, such as those shown in Figure 2. A relay coil 36, for operating
the relays 32 between a closed (conductive) position and an open (non-conductive)
position, is connected between and powered by the DC power lines 34.
[0028] It will be apparent that the two individual relay switches may be replaced by a single
dual pole relay or dual contact relay which would afford equivalent functionality
to two individual relay switches, but in a single component.
[0029] A hold up capacitor 38 is connected to the DC power lines between the relays 32 and
a component to be isolated. The hold up capacitor is charged by the power lines 34
when the relays are closed 32 and, when the relays are open, the hold up capacitor
discharges to temporarily power the isolated component connected thereto.
[0030] Data lines 40, such as those shown in Figure 2, are connected to an optical isolator
42 provided for isolated data communication between the data lines and the component.
The optical isolator 42 comprises a light emitting diode (LED) 44 and an associated
photo detector (not shown), the LED being energised to convert electrical data impulses
into optical impulses that are detected by the photo detector and converted back to
electrical impulses for data transfer to the isolated component. In this way, the
optoisolator electrically isolates the component from the data lines, thus electrically
protects the component from stray current induced in the data lines by for example
the ignition current.
[0031] Figure 4 is a schematic representation of the flow of data and other signals in the
control system of Figure 1. As shown, signals flowing through the control system comprise
data signals 50 between the controller and the components, relay control signals 52
for isolating the components and ignition circuit signals 54 for energising the ignition
circuit to generate a spark. The relay control signals may comprise a voltage drop
across the power lines 34 to cause the relay coil to be de-energised and the relays
to open. The ignition circuit signals typically comprise a high current signal caused
by the discharge of a capacitor in the ignition circuit.
[0032] As shown in Figure 4, the supply of an ignition signal only occurs when other components
of the control system have been isolated from the power supply lines and data transfer
between the controller and the other components has been interrupted. Guard periods
Δ1 and Δ2 are provided immediately before and immediately after the ignition circuit
control signal in order to prevent overlap between the ignition signal and other signals
supplied to and received from the components.
[0033] A brief discussion of the operation of the control system will now be provided.
[0034] When a user manipulates the user interface, for example, data signals 50 are transferred
between the components of the control system and the controller. If one of those data
signals instructs the controller that a request for the generation of a spark has
been made, then the controller emits a relay control signal to de-energise the relay
coil, which de-energisation causes the relays to be open and thus the power line connection
between the controller and the component to be broken. A period of time Δ1 after the
controller has de-energised the components, the controller controls the switch means
in the ignition circuit to discharge the capacitor and to emit the high current signal
which is stepped-up by a transformer to generate a high voltage across the spark terminals
in order to generate the requested spark.
[0035] A predetermined amount of time Δ2 after the spark has been generated, the controller
re-energises the relay coil and the relays between the power lines and the components
are closed for power transfer between the power lines and the components.
[0036] When the components are isolated from the controller, the hold up capacitor which
has been previously charged by the DC signal flowing in the power lines, discharges
to provide power for the isolated component. Once the isolation of the component from
the circuit is reversed, the hold up capacitor is once again connected to the power
lines and the capacitor recharges ready for the next time that the component is isolated
from the control system.
[0037] In this way, the present invention provides a means for isolating components of a
control system from electromagnetic interference generated by an ignition circuit.
[0038] It will be understood, of course, that the present inventions has been described
herein by way of example only and that modifications may be made within the scope
of the invention.
[0039] For example, whilst the system has been described in terms of providing a de-energising
signal to the relay coil, it will be appreciated that the system could be adapted
to energise the relay coil in order to break the relays. In this case, the relay coil
would have to be separately powered from the controller.
1. A control system (1) for a fuel burning appliance, the control system comprising:
ignition means (5) for igniting the fuel with an electrically generated spark;
a controller (11) for controlling the ignition means;
at least one other system component (3, 7, 9);
a pair of power lines (34) connecting the controller to the at least one other system
component; and
power isolating means (32, 36, 38) for isolating the at least one other system component
(3, 7, 9) from the pair of power lines (34, 26) for a period when an ignition signal
is supplied to the ignition means (5).
2. A control system according to claim 1, wherein the pair of power lines are a pair
of DC power lines (34).
3. A control system according to claim 2, wherein the power isolating means comprises
a pair of relay switches (32), each switch being connected to a respective one of
the pair of DC power lines (34, 26) and to a respective power input of the at least
one other component (3, 7, 9).
4. A control system according to claim 3, comprising a relay coil (36) powered via the
pair of DC power lines (34, 26), which when powered holds the relay switches (32)
in a conductive state to allow conduction of power between the controller (11) and
the at least one other system component (3, 7, 9).
5. A control system according to claim 3 or clam 4, comprising a hold-up capacitor (38)
connected between the chargeable by the pair of DC power lines, the capacitor (38)
discharging when the relay switches (32) are in a non-conductive state to power the
at least one system component (3, 7, 9) connected thereto.
6. A control system according to any preceding claim comprising at least one data cable
(34) connecting the controller to the at least one other system component (3, 7, 9).
7. A control system according to claim 6, wherein the at least one data cable (24) and
the pair of power lines (34, 26) are housed together in a sheath (20) to form a connector
(3).
8. A control system according to claim 6 or 7, comprising data isolation means (44) for
isolating data communications between the controller (11) and the at least one other
system component (3, 7, 9).
9. A control system according to claim 8, wherein the data isolation means (44) comprises
an optoisolator (44).
10. A control system according to any preceding claim wherein the at least one other system
component includes a clock (9).
11. A control system according to claim 10, wherein the clock (9) comprises control means
provided within the controller (11) and a display external to the controller (11)
and connected to the control means by a cable.
12. A control system according to any preceding claim, wherein the at least one system
component include a temperature sensor (7) and user actuation means connected (3)
to the controller (11), the user actuation means enabling a user to control the system.
1. Steuersystem (1) für einen Brenner, wobei das Steuersystem aufweist:
eine Zündeinrichtung (5) für das Zünden des Brennstoffes mit einem elektrisch erzeugten
Funken,
einem Kontroller (11 ) für das Steuern der Zündeinrichtung,
zumindest eine andere Systemkomponente (3, 7, 9),
ein Paar von Stromleitungen (34), die den Kontroller mit der zumindest einen anderen
Systemkomponente verbinden und
eine Stromisolierungseinrichtung (32, 36, 38) für das Isolieren der zumindest einen
anderen Systemkomponente (3, 7, 9) von dem Paar von Stromleitungen (34, 26) während
einer Periode, in der ein Zündsignal zu der Zündeinrichtung (5) geliefert wird.
2. Steuersystem nach Anspruch 1, wobei das Stromleitungspaar ein Gleichstromstromleitungspaar
(34) ist.
3. Steuersystem nach Anspruch 2, wobei die Stromisolierungseinrichtung ein Paar Relaisschalter
(32) aufweist, wobei jeder Schalter mit einer Stromleitung des Gleichstromstromleitungspaares
(34, 26) und mit einem entsprechenden Stromeingang der zumindest einen anderen Komponenten
(3, 7, 9) verbunden ist.
4. Steuersystem nach Anspruch 3, das eine Relaisspule (36), die über ein Gleichstromleitungspaar
(34, 26) mit Leistung versorgt wird, aufweist, das, wenn es mit Leistung versorgt
wird, die Relaisschalter (32) in einem leitfähigen Zustand hält, um die Leitung von
Energie zwischen dem Kontroller (11 ) und der zumindest einen anderen Systemkomponente
(3, 7, 9) zu ermöglichen.
5. Steuersystem nach Anspruch 3 oder 4, das einen Verzögerungskondensator (38) aufweist,
der zwischen der Gleichstromstromleitung angeschlossen ist und von dieser aufladbar
ist, wobei der Kondensator (38) sich entlädt, wenn die Relaisschalter (32) in einem
nicht-leitfähigen Zustand sind, um die hiermit verbundene, zumindest eine Systemkomponente
(3, 7, 9) mit Leistung zu versorgen.
6. Steuersystem nach einem der vorherigen Ansprüche, das zumindest ein Datenkabel (34)
aufweist, das den Kontroller mit der zumindest einen anderen Systemkomponente (3,
7, 9) verbindet.
7. Steuersystem nach Anspruch 6, wobei das zumindest eine Datenkabel (24) und das Stromleitungspaar
(34, 26) zusammen in einem Mantel (20) aufgenommen sind, um einen Verbinder (3) zu
bilden.
8. Steuersystem nach Anspruch 6 oder 7, das eine Datenisolationseinrichtung (44) für
das Isolieren der Datenkommunikation zwischen dem Kontroller (11) und der zumindest
einen anderen Systemkomponente (3, 7, 9) aufweist.
9. Steuersystem nach Anspruch 8, wobei die Datenisolationseinrichtung (44) einen Optoisolator
(44) beinhaltet.
10. Steuersystem nach einem der vorherigen Ansprüche, wobei die zumindest eine andere
Systemkomponente eine Uhr (9) beinhaltet.
11. Steuersystem nach Anspruch 10, wobei die Uhr (9) eine Steuereinrichtung, die innerhalb
des Kontrollers (11) bereitgestellt wird, und eine Anzeige außerhalb des Kontrollers
(11) aufweist und mit der Steuereinrichtung mittels eines Kabels verbunden ist.
12. Steuersystem nach einem der vorherigen Ansprüche, wobei die zumindest eine Systemkomponente
einen Temperatursensor (7) und eine Benutzerbetätigungseinrichtung, die mit dem Kontroller
(11 ) verbunden ist (3), aufweist, wobei die Benutzerbetätigungseinrichtung es einem
Benutzer ermöglicht, das System zu steuern.
1. Système de commande (1) pour un appareil à foyer à combustible, le système de commande
comprenant :
un moyen d'allumage (5) destiné à allumer le combustible avec une étincelle engendrée
électriquement ;
un contrôleur (11) destiné à commander le moyen d'allumage ;
au moins un autre composant de système (3, 7, 9) ;
une paire de lignes électriques (34) connectant le contrôleur à l'au moins un autre
composant de système ; et
un moyen d'isolation d'alimentation (32, 36, 38) destiné à isoler l'au moins un autre
composant de système (3, 7, 9) de la paire de lignes électriques (34, 26) pendant
une période lorsqu'un signal d'allumage est fourni au moyen d'allumage (5).
2. Système de commande selon la revendication 1, dans lequel la paire de lignes électriques
est une paire de lignes électriques à courant continu (34).
3. Système de commande selon la revendication 2, dans lequel le moyen d'isolation d'alimentation
comporte une paire de commutateurs à relais (32), chaque commutateur étant connecté
à une ligne respective de la paire de lignes électriques à courant continu (34, 26)
et à une entrée d'alimentation respective de l'au moins un autre composant (3, 7,
9).
4. Système de commande selon la revendication 3, comprenant une bobine de relais (36)
alimentée par la paire de lignes électriques en courant continu (34, 26) qui, une
fois alimentée, maintient les commutateurs à relais (32) dans un état conducteur afin
de permettre une conduction d'alimentation entre le contrôleur (11) et l'au moins
un autre composant de système (3, 7, 9).
5. Système de commande selon la revendication 3 ou la revendication 4, comprenant un
condensateur de rétention (38) pouvant être chargé par la paire de lignes électriques
en courant continu connecté entre celles-ci, le condensateur (38) effectuant une décharge
lorsque les commutateurs à relais (32) se trouvent dans un état non-conducteur pour
alimenter l'au moins un composant de système (3, 7, 9) qui y est connecté.
6. Système de commande selon l'une quelconque des revendications précédentes comprenant
au moins un câble de données (34) connectant le contrôleur à l'au moins un autre composant
de système (3, 7, 9).
7. Système de commande selon la revendication 6, dans lequel l'au moins un câble de données
(24) et la paire de lignes électriques (34, 26) sont installés ensemble dans une gaine
(20) pour former un connecteur (3).
8. Système de commande selon la revendication 6 ou 7, comprenant un moyen d'isolation
de données (44) destiné à isoler des communications de données entre le contrôleur
(11) et l'au moins un autre composant de système (3, 7, 9).
9. Système de commande selon la revendication 8, dans lequel le moyen d'isolation de
données comporte un isolateur optique (44).
10. Système de commande selon l'une quelconque des revendications précédentes, dans lequel
l'au moins un autre composant de système comporte une horloge (9).
11. Système de commande selon la revendication 10, dans lequel l'horloge (9) comporte
un moyen de commande fourni au sein du contrôleur (11) et un afficheur externe au
contrôleur (11) et connecté au moyen de commande par un câble.
12. Système de commande selon l'une quelconque des revendications précédentes, dans lequel
l'au moins un composant de système comporte un capteur de température (7) et un moyen
d'actionnement par un utilisateur connecté (3) au contrôleur (11), le moyen d'actionnement
par un utilisateur permettant à un utilisateur de commander le système.