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EP 0 335 617 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.12.1993 Bulletin 1993/48 |
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Date of filing: 23.03.1989 |
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Current source limitation for thick film heating elements
Strombegrenzung bei Dickschichtfilmheizelementen
Limitateur de courant pour éléments chauffants à couche épaisse
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Designated Contracting States: |
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AT BE CH DE ES FR GB GR IT LI LU NL SE |
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Priority: |
25.03.1988 GB 8807139
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Date of publication of application: |
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04.10.1989 Bulletin 1989/40 |
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Proprietor: THORN EMI plc |
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London W1A 2AY (GB) |
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Inventor: |
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- Balderson, Simon Neville
Nr. Reading,
Berkshire, (GB)
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Representative: Marsh, Robin Geoffrey et al |
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THORN EMI Patents Limited
Central Research Laboratories
Dawley Road Hayes, Middlesex UB3 1HH Hayes, Middlesex UB3 1HH (GB) |
| (56) |
References cited: :
EP-A- 0 208 823 US-A- 2 777 930
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EP-A- 0 227 405 US-A- 3 396 055
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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).
|
[0001] This invention relates to a heating element comprising a thick film electrically
resistive track, the thick film being formed of a base metal and a glass.
[0002] It has been proposed that such a heating element be formed by depositing one or more
thick film tracks on a glass ceramic surface of a composite support member, the track
or tracks then being overglazed with a glass ceramic material for protection and to
allow high temperature stable operation. One or a number of such heating elements
may provide one or a number of hot-plate elements in a hob-top or alternatively a
heating element may be mounted closely adjacent the underside of a glass ceramic cooktop
to provide a heated area on the cooktop. More than one such heating element or a unitary
support member bearing more than one heating element can be used to provide more than
one heated area on the glass ceramic cooktop.
[0003] A particularly suitable thick film for such applications includes nickel as base
metal and will operate at the necessary power densities. An advantage of a heating
element made of such a thick film, as disclosed in our copending EP 0286215A, is its
high temperature coefficient of resistance (TCR), i.e. in excess of 0.006 per degree
C in the temperature range of from 0°C to 550°C, which provides for rapid heat-up
and effective self-regulation. However, the associated problem of the high TCR is
that when the heating element is activated, there is a high current surge which may
be up to five times the operating current of the heating element and may be sufficient
to blow the fuse in many high power appliances. Similarly, a cooker hob consisting
of e.g. four such heating elements would have to be designed so that the elements
could not be switched on within a few seconds of each other. Such control is expensive
and could offset the low cost advantages of the heating element itself.
[0004] A range of thick films have been developed which utilise a base metal and have a
low TCR. Such low TCR thick films may be used for heating elements and will meet the
requirements for most applications. However their power handling characteristics are
significantly worse than those for a thick film heating element in which the base
metal is nickel.
[0005] EP-A-0,227,405 discloses a heating element comprising a plurality of thick film resistive
which include separate conducting tracks for electrical connection to a power supply
and which are also connected to the resistive tracks via components having a negative
temperature coefficient of resistance. However, as the tracks in which the current
flows are resistive, then the current flowing will increase with temperature.
[0006] It is an object of the present invention to at least alleviate some of the problems
discussed hereinbefore.
[0007] According to the present invention there is provided a heating element comprising
a plurality of thick film electrically resistive tracks, the plurality of tracks including
a first track for electrical connection to a power supply and a second track, at least
one of said first and said second tracks being made of a thick film characterised
by having in the temperature range of from 0°C to 550°C a temperature coefficient
of resistance in excess of 0.006 per degree C, wherein a means for electrically connecting
said first and said second tracks in parallel comprises a component which depends
on temperature such that, in use, the current flowing in said second track increases
with the temperature of said first track.
[0008] When such a heating element is activated, current flows in the first track. As the
temperature of the first track increases, the first and second tracks become electrically
connected in parallel, allowing current to flow in the second track. The first track
has a resistance which is higher than that of the first and second tracks electrically
connected in parallel. Accordingly, the current initially drawn, and any current surge,
which is characteristic of the resistance of the first track because of the temperature
dependence of the means for electrically connecting, is less than would be the case
if the first and second tracks were electrically connected in parallel when the heating
element was initially connected to the power supply.
[0009] The first track which is electrically connected to the power supply when the heating
element is activated may have a high TCR. In this case, the heat up of the heating
element would be more rapid when first activated.
[0010] Preferably the temperature-dependent component is provided by a material having a
negative temperature coefficient of resistance (NTC) and so is self-regulating with
temperature.
[0011] Embodiments of the invention will now be described, by way of example only, and with
reference to the accompanying drawings in which:
Figure 1 shows a plan view of a heating element provided in accordance with the present
invention;
Figure 2 is a graph showing schematically the principle of the present invention;
and Figure 3 shows, in section, a temperature-dependent connection for a heating element
provided in accordance with the present invention.
[0012] Referring to Figure 1, a heating element 1 comprises a plurality of thick film tracks
2, 4, 6 applied to a substrate 7. The tracks 2, 4, 6 are made of a nickel thick film
having a high TCR as described in our copending EP 0286215. Thick films including
cobalt or iron as base metal have similarly high TCRs and may also be used to produce
tracks for heating elements. The track 2 has terminals 8, 10 for connection to an
external power supply via electrical connectors (not shown). The track 2 is connected
to the other tracks 4, 6 and they to each other at each end by components formed as
bridges 12, 14 of a thick film material containing a composition which has an NTC
of resistance.
[0013] Suitable compositions include the following:
a) Vanadium oxide (V₂O₃)
b) Nickel-cobalt ferrites with small amounts of barium oxide (Ba₂O₃) and silicon dioxide
(SiO₂) added. The amounts of (Ba₂O₃ and SiO₂ added affect the NTC of the composition.
c) Nickel oxide/Manganese (III) oxide system (mole ratio of NiO: Mn₂O₃ = 1:2). Addition
of copper (II) oxide (CuO) dopant varies the NTC of the composition.
d) Nickel oxide/lithium carbonate system. In a specific example, a composition which
had a mole ratio between the two compounds of 1:1 had an NTC of 1.05 per degree C.
e) Chromium (III) oxide/titanium (IV) oxide with chromium metal dopant. In a specific
example, a composition with a mole ratio of Cr₂O₃: TiO₂:Cr of 1:4:5 had an NTC of
1.002 per degree C.
[0014] At room temperature, the NTC bridges 12, 14 have a high resistance compared to the
tracks 2, 4, 6 and thus the tracks 2, 4, 6 are effectively insulated from each other.
When power is applied to the heating element there is a small current surge characteristic
of the track 2 connected to the power supply. As the temperature increases, the current
in this track 2 decreases (due to its increasing resistance) but at the same time
the resistance of the NTC bridges 12, 14 decreases, thereby allowing increased current
flow in the other tracks 4, 6. The net result is an overall current flow to the heating
element 1 which shows no large increase or decrease with change in time or temperature.
The principle of this is illustrated schematically in Figure 2 which shows variation
of current with temperature for the following heating elements:
- A:
- a first electrically sensitive track having a positive TCR;
- B:
- the first electrically resistive track and a second electrically sensitive track connected
in parallel, all the tracks having a positive TCR;
- C:
- the first and second electrically tracks having positive TCR and connected in parallel
by a bridge of a material having an NTC of resistance.
[0015] It is envisaged that control of the NTC material characteristics and the track geometry
would allow design of a heating element with a virtually flat current response with
temperature whatever the TCR value of the track material.
[0016] Referring to Figure 3, a suitable configuration for connection of tracks 16, 18 and
an NTC bridge 20 is shown in which the NTC bridge 20 is sandwiched between the tracks
16, 18 on a substrate 22. The tracks and NTC bridges are protected from oxidation
by an overglaze layer (not shown), allowing high temperature stable operation.
[0017] Variations in the configuration of a heating element provided in accordance with
the present invention as defined by the claims may be envisaged. For example, NTC
bridges need only be provided at one end of the thick film tracks, at the other end
the tracks being electrically connected by conventional means. An NTC bridge could
be provided only between the track 2 and its adjacent track 4 to limit current surge.
A plurality of tracks could be provided between the connections to the external power
supply and the first NTC bridge to determine the extent of current surge. Instead
of being connected in series as shown, each NTC bridge could form part of a track
and be connectable in parallel which would allow the selective connection of the tracks
to the power supply to vary the operating temperature of the heating element.
[0018] Other variations will be apparent to those skilled in the art.
1. A heating element (1) comprising a plurality of thick film electrically resistive
tracks (2,4,6), the plurality of tracks (2,4,6) including a first track (2) for electrical
connection to a power supply and a second track (4), at least one of said first and
said second tracks being made of a thick film characterised by having in the temperature
range of from 0°C to 550°C a temperature coefficient of resistance in excess of 0.006
per degree C, wherein a means (12) for electrically connecting said first and said
second tracks in parallel comprises a component which depends on temperature such
that, in use, the current flowing in said second track (4) increases with the temperature
of said first track (2).
2. A heating element according to claim 1 wherein said first track (2) is made of a thick
film having in the temperature range of from 0°C to 550°C a temperature coefficient
of resistance in excess of 0.006 per degree C.
3. A heating element according to claims 1 or 2 wherein said second track (4) comprises
a plurality of other tracks (6) and a means (12,14) for connecting said plurality
of other tracks (6) in parallel comprises a component which depends on temperature
such that, in use, the current flowing in each of said other tracks increases with
the temperature of said first track.
4. A heating element according to claim 3 wherein a said component is provided between
adjacent ones of said plurality of other tracks.
5. A heating element (1) according to any one of the preceding claims wherein the temperature-dependent
component is provided by a material having a negative temperature coefficient of resistance.
6. A heating element (1) according to claim 5 dependent on claim 4 wherein each one of
said temperature-dependent components comprises first and second said bridges at respective
first and second ends of the tracks.
1. Heizelement (1) mit einer Vielzahl von elektrischen Dickfilm-Widerstandsbahnen (2,
4, 6), wobei die Vielzahl von Bahnen (2, 4, 6) eine erste Bahn (2) für die elektrische
Verbindung mit einer Stromversorgung und eine zweite Bahn (4) enthält, und von dieser
ersten und zweiten Bahn wenigstens eine aus einem Dickfilm besteht, der dadurch gekennzeichnet
ist, daß er einen Widerstands-Temperaturkoeffizienten von mehr als 0,006 pro °C im
Temperaturbereich von 0°C bis 550°C hat, wobei Mittel (12) zur elektrischen Parallelschaltung
der ersten und zweiten Bahn eine Komponente umfassen, die von der Temperatur so abhängt,
daß im Betrieb der in der zweiten Bahn (4) fließende Strom mit der Temperatur der
ersten Bahn (2) zunimmt.
2. Heizelement nach Anspruch 1, bei dem die erste Bahn (2) aus einem Dickfilm besteht,
der im Temperaturbereich von 0°C bis 550°C einen Widerstands-Temperaturkoeffizienten
von mehr als 0,006 pro °C hat.
3. Heizelement nach Anspruch 1 oder 2, bei dem die zweite Bahn (4) eine Vielzahl von
anderen Bahnen (6) umfaßt und Mittel (12, 14) zur Parallelschaltung der Vielzahl von
anderen Bahnen (6) eine Komponente umfassen, die von der Temperatur derart abhängt,
daß im Betrieb der in den anderen Bahnen fließende Strom mit der Temperatur der ersten
Bahn zunimmt.
4. Heizelement nach Anspruch 3, bei dem die Komponente zwischen benachbarten Bahnen der
Vielzahl von anderen Bahnen vorgesehen ist.
5. Heizelement (1) nach einem der vorhergehenden Ansprüche, bei dem die temperaturabhängige
Komponente durch ein Material vorgesehen ist, das einen negativen Widerstands-Temperaturkoeffizienten
hat.
6. Heizelement (1) nach Anspruch 5 in Abhängigkeit von Anspruch 4, bei dem jede der temperaturabhängigen
Komponenten erste und zweite Brücken an entsprechenden ersten und zweiten Enden der
Bahnen umfaßt.
1. Elément chauffant (1) comportant une pluralité de pistes (2,4,6) en film épais, électriquement
résistantes, la pluralité de pistes (2,4,6) comprenant une première piste (2) pour
connexion électrique à une alimentation de puissance et une seconde piste (4), au
moins l'une de ladite première et de ladite seconde pistes étant faite d'un film épais
caractérisé par le fait que sur la plage de température allant de 0°C à 550°C il a
un coefficient de température de sa résistance supérieur à 0,006 par degré C, élément
dans lequel un moyen (12) de connecter électriquement ladite première et ladite seconde
pistes en parallèle comporte un composant qui dépend de la température de façon telle
que, en service, l'intensité qui passe dans ladite seconde piste (4) croît avec la
température de ladite première piste (2).
2. Elément chauffant selon la revendication 1, dans lequel ladite première piste (2)
est faite d'un film épais qui, sur la plage de température allant de 0°C à 550°C,
a un coefficient de température de sa résistance supérieur à 0,006 par degré C.
3. Elément chauffant selon la revendication 1 ou 2, dans lequel ladite seconde piste
(4) comporte une pluralité d'autres pistes (6) et dans lequel les moyens (12,14) de
connecter ladite pluralité d'autres pistes (6) en parallèle comportent un composant
qui dépend de la température de façon telle que, en srvice, l'intensité qui passe
dans chacune desdites autres pistes croît avec la température de ladite première piste.
4. Elément chauffant selon la revendication 3, dans lequel un dit composant est prévu
entre celles de ladite pluralité d'autres pistes qui sont adjacentes.
5. Elément chauffant (1) selon l'une quelconque des revendications précédentes dans lequel
le composant qui dépend de la température est fourni par un matériau présentant un
coefficient de température de sa résistance négatif.
6. Elément chauffant (1) selon la revendication 5, dépendant de la revendication 4, dans
lequel chacun desdits composants dépendant de la température comporte un premier et
un second dits ponts à la première et à la seconde extrémités respectives des pistes.

