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EP 1 034 552 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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22.01.2003 Bulletin 2003/04 |
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Date of filing: 30.11.1998 |
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International application number: |
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PCT/GB9803/571 |
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International publication number: |
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WO 9902/8935 (10.06.1999 Gazette 1999/23) |
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IMPROVEMENTS RELATING TO THERMALLY-RESPONSIVE ACTUATORS
VERBESSERUNGEN AN THERMISCH ANSPRECHENDE AUSLÖSER
AMELIORATIONS APPORTEES A DES ACTIONNEURS A SENSIBILITE THERMIQUE
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Designated Contracting States: |
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DE FR |
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Priority: |
28.11.1997 GB 9725401 27.05.1998 GB 9811400
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Date of publication of application: |
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13.09.2000 Bulletin 2000/37 |
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Proprietor: OTTER CONTROLS LIMITED |
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Buxton,
Derbyshire SK17 6LA (GB) |
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Inventors: |
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- O'NEILL, Robert Andrew
Buxton,
Derbyshire SK17 9NQ (GB)
- BOUNDY, Paul
Buxton,
Derbyshire SK17 7PZ (GB)
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Representative: Milhench, Howard Leslie et al |
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R.G.C. Jenkins & Co.
26 Caxton Street London SW1H 0RJ London SW1H 0RJ (GB) |
| (56) |
References cited: :
GB-A- 2 213 646 US-A- 2 685 007 US-A- 4 376 925
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GB-A- 2 221 795 US-A- 2 883 488
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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).
|
Field of the Invention:
[0001] This invention concerns improvements relating to thermally-responsive actuators,
particularly though not exclusively actuators comprising bimetallic elements, and
to control devices, electrical switches for example, incorporating the same. Whilst
the invention will be particularly described in the following by reference to electrical
switches incorporating thermally-responsive actuators and designed to switch off kettles
and other water boiling appliances in response to the generation of steam when water
boils in the appliance, the invention is not limited to such an application.
Background of the Invention:
[0002] A fundamental problem with electrical controls which have to operate in the humid
atmosphere of an automatic electric kettle for example, is that condensation from
the steam which is responsible for operating the control can form on surfaces providing
electrical insulation and cause tracking and catastrophic failure of the control.
The size restraint to which controls for automatic kettles are subject means that
the achievement of large creepages and clearances is difficult, since long cantilever
contact springs would normally be required to ensure that the mechanical properties
of the spring material were not exceeded as a result of the relatively large deflections
required to obtain acceptably large contact separation. If the target contact separation
was 3mm for example, the length of cantilever spring that would be required would
be too long to fit within a reasonably sized control.
[0003] Examples of steam controls as aforementioned which employ cantilevered spring contact
arrangements are described in GB-A-2 213 646 and GB-A-2 221 795. A further example
is the J-type steam control which we manufacture and which is described in GB-A-2
212 664 with reference particularly to Figs 9A, 9B and 10 of the drawings thereof.
In all of these controls, measures are taken to seek to isolate the switch contacts
in a separate compartment from the parts of the control that are exposed to steam,
but even with such measures the possibility nonetheless exists that the switch compartment
might be contaminated with moisture and larger switching clearances would be desirable.
[0004] Electrical switches including a contact spring in an overcentre arrangement wherein
the contact spring is adapted to move with a snap action between two alternative stable
positions on opposite sides of an intermediate unstable position are also known, for
example from US-A-2 883 488.
Objects and Summary of the Invention:
[0005] It is therefore the principal object of the present invention to overcome or at least
substantially reduce the abovementioned problems.
[0006] According to the present invention there is provided an electrical switch including
a contact spring in an overcentre arrangement wherein the contact spring is adapted
to move with a snap action between two alternative. stable positions on opposite sides
of an intermediate unstable position
characterized in that, said contact spring comprises three elements extending from a cross-member, said
three elements each being attached to said cross-member at one end and being free
at its other end and the outer two of said three elements extending generally in the
same direction and the middle one of said three elements extending generally in the
same direction or in the opposite direction, the middle one of said three elements
constituting a spring member of said overcentre arrangement and being sprung between
opposing abutment points, one at the free end of the respective middle element and
the other at the opposite side of said cross-member, and the outer two of the three
elements carrying contacts at their free ends and being movable by rotation about
the abutment point at the opposite side of the cross-member when the overcentre arrangement
moves between its two stable positions.
[0007] As will be described hereinafter the present invention resides in the appreciation
that the requisite increased contact separation can be obtained by use of a contact
spring which moves by rotation about a fulcrum rather than by elastic deformation
as in the case of the prior art cantilevered springs. By rotation of the contact spring,
rather than bending it as in the prior art arrangements, the spring is subjected to
substantially no stress and increased contact separation can readily be achieved without
prejudicing the mechanical properties of the spring material.
[0008] In accordance with a steam sensor embodiment of the present invention which will
be described in detail hereinafter, a generally E-shaped spring is employed in which
the central element of the E is formed as a C-spring The C-spring element of the spring
is assembled with the free end of a pivotally mounted lever between spaced apart abutments
to form an overcentre arrangement, known per se from the J-type steam control aforementioned
for example, and the outer (top and bottom) elements of the E extend on opposite sides
of this overcentre arrangement. In operation of this embodiment, as the overcentre
arrangement moves with a snap action between its two opposite of centre stable positions,
so the outer limbs of the E-shaped spring move in pivotal fashion as the whole E pivots
on its upright (the E-shaped spring consisting of an upright from which its three
horizontal elements extend) and the free ends of the top and bottom elements of the
E make substantial displacements. By providing electrical contacts on the free ends
of the top and bottom elements of the E-spring and employing such contacts as moving
contacts of a switch arrangement, substantial contact separation can readily be achieved.
[0009] The overcentre arrangement abovementioned can readily be associated with a thermally-responsive
actuator such as a bimetal or shape memory effect (SME) device for example so as to
constitute a thermally-responsive switch. Furthermore, the E-shaped spring could itself
be formed of bimetallic material, and/or a second thermally-responsive actuator might
be provided, for the purpose of ensuring operability of the device in the event, however
unlikely, of failure to operate of the primary thermally-responsive actuator, and
such secondary operation might be arranged to be operable only after a time delay
such as to accommodate normal operation without operation of the secondary protection
[0010] The above and other features of the present invention are set forth in the appended
claims and, together with advantages thereof, will become clear from consideration
of the following detailed description given with reference to the accompanying drawings
Description of the Drawings:
[0011]
Figure 1 is a perspective view of an exemplary E-spring according to one aspect of
the present invention;
Figures 2A and 2B are enlarged part-perspective and side elevation views of the spring
of Figure 1 useful for explaining its operation;
Figure 3 is a perspective view showing how the E-spring of Figure 1 might be used
in a switch environment;
Figure 4 is a part-sectional side elevation of an exemplary steam sensor incorporating
an E-spring as shown in Figure 1;
Figures 5A, 5B and 5C are exploded perspective views of the steam sensor of Figure
4, Figure 5A showing internal components of the sensor in exploded view, Figure 5B
showing the internal components of Figure 5A assembled together for insertion into
an outer cover, and Figure 5C being an exploded view similar to Figure 5B but showing
the opposite side thereof;
Figures 6A, 6B, 6C and 6D show top plan, side elevation bottom plan and end elevation
views respectively of the sensor of Figures 5A, 5B and 5C, Figures 6E and 6F are perspective
views from opposite sides and Figures 6G and 6H are part sectional views showing the
different conditions of the sensor; and
Figures 7A and 7B are enlarged views similar to Figures 6G and 6H.
Detailed Description of the Embodiments:
[0012] Referring to Figure 1, shown therein is a generally E-shaped spring 1 formed of beryllium
copper for example and comprising an upright or rear cross-member portion 2 from which
extend upper and lower elements 3 and 4 and a central element 5 which, as shown, is
formed as a C-spring. The free (front) ends of the spring elements 3 and 4 are enlarged
as shown and electrical contacts 6 and 7 formed of silver or a silver alloy for example
are welded or otherwise affixed thereto.
[0013] Figure 4 shows an exemplary steam sensor device in which the E-spring 1 is assembled
with a pivotally-mounted trip lever 8 between spaced apart abutments 9 and 10 so as
to define an overcentre arrangement which is movable with a snap action between stable
positions on opposite sides of an unstable central position. The abutments 9 and 10
are formed in a body part 11 of the device and the action of the overcentre arrangement
is made temperature responsive by mounting a bimetal 12 on the body part 11 and providing
a push rod 13 which couples the bimetal movement to the overcentre arrangement. The
steam sensor of Figure 4 is described more fully in the following.
[0014] As shown in Figures 2A and 2B, the E-spring 1 has a region 14 which rotates in the
fulcrum defined by the abutment 9 as the trip lever 8 moves between its stable positions,
the movement of this region 14 following the movement of the central C-spring element
5 of the E-spring 1. The two outer (upper and lower) elements 3 and 4 of the E-spring
1 therefore also rotate and the movement at their free ends depends only on the angle
of rotation and the lengths of the elements 3 and 4. For rotation angles of such size
as are readily achieved with overcentre arrangements such as the one shown in Figure
4 and with the lengths of the elements 3 and 4 being such as will comfortably fit
within a small size control, it is a simple matter to achieve an amount of movement
at the free ends of the E-spring elements 3 and 4 considerably in excess of 3mm. It
is noteworthy that in counterclockwise rotation of the E-spring 1, corresponding to
clockwise rotation of the trip lever 8 about its abutment 10 and operation of the
switch in the steam sensor of Figure 4 from its ON to its OFF condition, the elements
3 and 4 of the E-spring 1 do not suffer any deformation (so long as the arrangement
of the steam sensor provides sufficient clearance for their movement) and are not
subjected to any stress. The only stress in the system is in the C-spring part 5 of
the E-spring 1 and conventional spring design practices may be employed to avoid overstressing
of this part.
[0015] Figure 3 shows an exemplary arrangement wherein the contacts 6 and 7 that are provided
on the undersides of the free ends of the elements 3 and 4 of the E-spring 1 co-operate
with fixed contacts 15 and 16 that are provided on supply terminals 17 and 18 of the
Figure 4 control. The interaction between these two sets of contacts is advantageously
such that the fixed contacts 15 and 16 limit to clockwise movement of the ends of
the outer elements 3 and 4 of the E-spring so that they generate a contact force such
as to ensure good current carrying capability. This is accompanied by deformation
of the elements 3 and 4 by much less than the total movements of the elements 3 and
4 as the E-spring 1 rotates. Since the outer elements 3 and 4 perform no other function
than providing this contact force, their design can be optimised for this task.
[0016] It can be seen from Figure 3 that the E-spring 1 operates as a movable contact bridge
between the fixed contacts 15 and 16 that are provided on the supply terminals 17
and 18. In the OFF condition, with the outer elements 3 and 4 of E-spring 1 pivoted
anti-clockwise, there is a large contact gap between the contacts 6 and 15 and between
the contacts 7 and 16. If each of these gaps is 3mm or more, the combined gap of both
sets of contacts is 6mm or more which is well in excess of design requirements for
electrical safety.
[0017] A further effect of the described E-spring 1 as incorporated into the arrangement
of Figure 4 is that as the trip lever 8 is moved from its stable ON position towards
the unstable central position of the overcentre arrangement, so the C-spring central
element 5 of the E-spring is subjected to compressive end loading which, as shown
in Figures 2A and 2B where the arrows F represent the compressive force, causes the
portion 14 to rotate in a clockwise direction which increases the contact forces between
moving contacts 6 and 7 and fixed contacts 15 and 16. This ensures that good contact
force is maintained until the trip lever 8 passes through its unstable position whereupon
the contacts snap open. To achieve this effect, the C-spring element 5 of the E-spring
1 must be formed in the direction shown in the drawings, namely with its concavity
towards the side of the E-spring 1 on which the contacts 6 and 7 are provided, and
the contacts must be arranged such that they remain closed until the trip lever 8
has passed through its central unstable position. In Figure 2A, the region 14 of the
E-spring 1 is shown as extending from the rear cross-member 2 of the spring for a
short distance before the C-spring part 5 begins, and it is the effect of the forces
within the C-spring 5 on this region 14 which generates the torque leading to the
increased contact force as the trip lever begins to switch OFF.
[0018] The contact force generated between the movable contacts 6 and 7 and the fixed contacts
15 and 16 has an additional effect in that it acts in a direction such as to assist
the bimetal 12 in moving the trip lever 8 from its ON to its OFF position. This reduces
the demands on the bimetal actuator so that, for example, a smaller and/or cheaper
bimetal design can be used. Alternatively it allows the use of a stiffer C-spring
which would give rise to higher forces in the OFF condition and a more positive action
which is less subject to being affected by external influences such as physical shock
or the weight of heavy appliance on/off rocker mechanisms attached to the trip lever
8.
[0019] Further details of the steam sensor device that is shown in Figure 4 will be described
in the following with reference first to the exploded views of Figures 5A, 5B and
5C. As shown in Figure 5A, the E-spring 1, the trip lever 8 and the terminals 17 and
18 are adapted to be assembled with the moulding 11 to form an inner moulding sub-assembly
19 as shown in Figure 5B. The moulding 11 has spaced apart abutments 9 and 10, the
former of which serves to receive the rectangular notch 20 that is provided in the
rear edge of E-spring 1 and the latter of which serves to receive pivotal V-bearings
21 provided on the trip lever 8. The forward edge 22 of the C-spring portion 5 of
E-spring 1 is received in a V-notch 23 formed in the front edge of the trip lever
8. The abutments 9 and 10 of the moulding 11 are spaced apart by a distance less than
the sum of the length of the E-spring between its edges 20 and 22 in its relaxed condition
and the length between the V-notch 23 and the V-bearings 21 of the trip lever so that
the combination of E-spring 1 and trip lever 8 have to be sprung into the abutments
9 and 10 and thereby form an overcentre arrangement as hereinbefore described. Accommodating
formations 24 are provided in the moulding 11 for receiving the terminals 17 and 18.
[0020] Figure 5B shows the inner moulding sub-assembly 19 formed by assembly of the components
shown in Figure 5A and further shows a cover moulding 25 into which the sub-assembly
19 is adapted to be fitted. Figure 5C shows the sub-assembly 19 and the cover moulding
25 from the opposite side and it can be seen that the cover moulding 25 has provision
for mounting a bimetallic blade 26 thereon, the blade 26 being adapted to be push
fitted into an accommodating recess 27 on the back of the cover 25. The bimetal blade
26 is shown as a circular disc-shaped blade having a central cut-out 28 which defines
a tongue 29. The blade 26 is dished so as to be movable between oppositely curved
configurations with a snap action and the cut-out 28 and tongue 29 provide for greater
movement at the free end of the tongue than would be obtained from a plain disc, as
is well known.
[0021] A push rod 30 passes through an opening 31 in the cover 25 and through a registering
opening 32 in the moulding 11. One end of the push rod 30 underlies the free end of
the tongue 29 of bimetal 26 and the other end underlies the trip lever 8. A small
notch 33 is formed in the periphery of bimetal 26 and registered with a wedge-shaped
(in side elevation view) projection 34 formed on cover 25 so as properly to locate
the bimetal. The wedge shape of the projection 34 permits the bimetal to be inserted
into its accommodating recess and prohibits its return. A better showing of the wedge
shaped projection 34 is to be seen in Figures 7A and 7B.
[0022] Figures 6A through 6H are various elevation, perspective and sectional views of the
aforedescribed steam sensor device which are included herein for the sake of completeness
but will not be further described. Figures 7A and 7B are enlarged views similar to
Figures 6G and 6H and these enlarged views clearly show the ON and OFF conditions
of the device, Figure 7A showing the contacts-closed ON condition of the device and
Figure 7B showing the OFF condition of the device wherein the contacts are widely
open.
[0023] It is a further advantage of the use of an E-shaped spring that the two poles of
the switch, namely the two contact sets 6, 15 and 7, 16, are well separated from each
other. This separation is enchanced in the described steam sensor device by virtue
of the fact that the provision of ribs on the inner moulding 1 is such as in effect
partially to compartmentalize each of the upper and lower elements 3 and 4 of the
E-spring I in its own chamber so that electrical creepage distances are much increased
and the likelihood of the electrical safety of the control being compromised by condensation
is much reduced.
[0024] Although both limbs 3 and 4 of the E-spring 1 contribute to the large contact gap,
it is only necessary for one of the limbs to carry out the current make and break.
This allows smaller cheaper contacts (or simply silver plating) on the other limb,
reducing contact cost. The limb which makes and breaks the current may be arranged
to make last and break first, by adjusting the relative heights of the fixed contacts
and/or by adjusting the shape of the spring.
[0025] Yet another advantage of the E-shaped spring of the described embodiment results
from the fact that breaking of the circuit in response to steam generation is accomplished
by the opening of two sets of switches, namely the contact sets 6,15 and 7,16. In
the event of one of these contact sets failing to operate on account of their contacts
welding together, there will be no ill effect upon the function of the other contact
set so long as the characteristics of the spring material of the E-spring are suitably
selected, which would normally be the case given the relative dimensions of the limbs
3 and 4 in comparison to the C-spring portion 5, to ensure that the limbs 3 and 4
are not stiff enough to prevent the portion 5 from rotating. Thus, regardless of the
state of one of the limbs 3 and 4, the portion 5 will rotate as the device operates
and the other limb will rotate with it as if nothing were amiss.
[0026] Other features of the control which are designed to limit the effects of condensation
are shown in the drawings. In Figure 1 and the two sectioned views of Figures 7A and
7B (not on any of the other views), the push rod 30 is shown with an enlarged head,
the underside of which is conical. This engages with a similar conical surface in
the hole 32 of the inner moulding 11 through which it passes, and forms a seal when
the bimetal 26 is in its operated state, which is when most steam is present. The
narrow clearance of the hole ensures that the lower volumes of steam, present at other
times, have only restricted access to the control interior. The internal ribs of the
control baffle the steam further, and are arranged to encourage the steam to leave
the control via the gap under the trip lever 8. The lower side of the trip lever,
best seen in the two sectional views, is arranged to enclose the push rod hole 32
when the switch is in the "ON" position, thus complementing the tapered head of the
push rod which functions when the switch is in the "OFF" position. The top surface
of the control, where the top of the trip lever 8 projects, is arranged to ensure
that water spilt over the control is safely directed away from any electrical components,
and rib features are included on the outside of the cover to engage mating appliance
features to enhance this effect.
[0027] Having thus described the present invention by reference to several embodiments,
it is to be appreciated that the embodiments are exemplary only and the modifications
and variations thereto will occur to those possessed of the appropriate skills without
departure from the scope of the invention as set forth in the appended claims. For
example, if a changeover switch configuration were required, the outer elements 3
and 4 of the E-spring 1 could additionally extend on the opposite side of the cross-member
2 so as to form a generally H-shaped spring having the C-spring 5 extending from the
cross piece of the H-shape. Yet another possibility, if space was not a constraint,
would be to have the C-spring 5 extending on the opposite side of cross-member 2 to
the arrangement shown in Figure 1.
[0028] Other modifications, described hereinafter, might be incorporated in order to overcome
or at least substantially reduce the possibility that the steam control fails to operate,
for example if the lid of a vessel into which the device was fitted were left open
or if the switch rocker was prevented from moving. It might take about 15 minutes
for a kettle to boil dry under these conditions, giving rise to excessive condensation
and the possibility of damage to the appliance. To resolve or reduce this problem,
an additional thermal action might advantageously be incorporated which either opens
the contacts independently of the trip lever or the steam-responsive thermal actuator
and/or causes the trip lever to operate after a time delay. Two means of achieving
this will be described hereinafter.
[0029] One possible means comprises the formation of the E-spring 1 from bimetallic material.
An abutment might be provided close to one of the limbs 3,4 or to both of them such
that as the limb deflects as its temperature rises, so it contacts the abutment and
causes the E-spring to move over-centre. Alternatively, no abutment may be provided
and the limbs 3,4 may simply bend as their temperature rises until the contact sets
6,15 and 7,16 are opened so as to break the circuit, albeit with some arcing. The
E-spring may be arranged to be heated by the passage of electric current through the
spring and/or by the general rise in the temperature of the steam sensor device overall
as it is heated by steam. Preferably such a mechanism for opening the switch contacts
would be arranged to be operative only after a delay of about 5 minutes, to avoid
the possibility of nuisance operation before the vessel contents have had time to
be boiled under normal conditions. The heating of the E-spring can be adjusted to
achieve this, if necessary, by the inclusion of suitable heat conductors (or insulators)
from the hot areas of the steam sensor control, most notably the area of the bimetal
26.
[0030] A less preferred option is to provide a separate thermal actuator, such as a bimetal
or SME (shape memory effect) actuator, and arrange for this actuator to act on the
trip lever. By suitably shielding this second actuator from the heat of steam generated
when water boils in the appliance the desired delay in operation can be achieved.
It would further be possible to heat the second thermal actuator electrically, but
the necessary electrical connections would have undesirable cost implications.
[0031] Those skilled in the art will appreciate that the above described modifications provide
secondary protection for steam controls, thereby offering the user an enhanced level
of safety.
1. An electrical switch including a contact spring (1) in an overcentre arrangement wherein
the contact spring (1) is adapted to move with a snap action between two alternative
stable positions on opposite sides of an intermediate unstable position characterized in that, said contact spring (1) comprises three elements (3,4,5) extending from a cross-member
(2), said three elements (3,4,5) each being attached to said cross-member (2) at one
end and being free at its other end and the outer two (3,4) of said three elements
(3,4,5) extending generally in the same direction and the middle one (5) of said three
(3,4,5) elements extending generally in the same direction or in the opposite direction,
the middle one (5) of said three elements (3,4,5) constituting a spring member of
said overcentre arrangement and being sprung between opposing abutment points (9,23),
one (23) at the free end of the respective middle element (5) and the other (9) at
the opposite side of said cross-member (2), and the outer two (3,4) of the three elements
(3,4,5) carrying contacts (15,16) at their free ends and being movable by rotation
about the abutment point (9) at the opposite side of the cross-member (2) when the
overcentre arrangement moves between its two stable positions.
2. An electrical switch as claimed in claim 1 wherein said contact spring (1) is generally
E-shaped.
3. An electrical switch as claimed in claim 1 or 2 wherein said cross-member (2) and
said outer two (3,4) of said three elements (3,4,5) are generally co-planar.
4. An electrical switch as claimed in claim 1 or 2 or 3 wherein said middle one (5) of
said three elements (3,4,5) has a first portion extending from said cross-member (2)
generally in the same direction as the outer two elements (3,4) and a second portion
extending from said first portion and constituting the spring member (5) of said overcentre
arrangement.
5. An electrical switch as claimed in any of the preceding claims wherein the spring
member (5) of the overcentre arrangement comprises a C-spring and the concavity of
the C-spring is on the same side of the contact spring (1) as are the contacts (15,16)
at the free ends of the outer two spring elements.
6. An electrical switch as claimed in any of the preceding claims wherein the contact
spring (1) is formed of bimetallic material.
7. An electrical switch as claimed in any of the preceding claims wherein the middle
spring member (5) is arranged in an overcentre arrangement with a trip lever (8) of
the switch.
8. An electrical switch as claimed in claim 7 comprising a body portion (11) defining
spaced-apart abutments (9,10) between which said middle spring member (5) and said
trip lever (8) are arranged, each of said middle spring member (5) and said trip lever
(8) being pivotal in a respective one of the abutments at a respective first end and
being pivotally coupled to each other at respective second ends.
9. An electrical switch as claimed in claim 7 or 8 including a thermally-responsive actuator
(12) coupled to said overcentre arrangement for determining the condition thereof.
10. An electrical switch as claimed in claim 9 wherein said thermally-responsive actuator
(12) comprises a bimetallic member coupled by means of a push rod (13) to said overcentre
arrangement.
11. An electrical switch as claimed in claim 9 or 10 wherein said thermally-responsive
actuator (12) is substantially isolated from electrical components (17,18) of the
switch by virtue of said components being enclosed within a switch housing (25) and
said thermally-responsive actuator (12) being provided outside of said housing.
12. An electrical switch as claimed in claim 9 or 10 or 11 further including a second
thermally-responsive actuator coupled to said overcentre arrangement for determining
the condition thereof independently of the first-mentioned thermally-responsive actuator.
13. An electrical switch as claimed in claim 12 wherein said second thermally-responsive
actuator is arranged so as to be operable only after a time delay such as in normal
operation to enable operation of the switch by the first-mentioned thermally-responsive
actuator.
14. An electrical switch as claimed in any of the preceding claims wherein the arrangement
is such that in switching operations of said contact spring (1) one of said outer
two elements (3,4) breaks contact before and makes contact after the other.
15. An electrical switch as claimed in any of the preceding claims configured as a steam
sensor for an electrically heated water boiling vessel, said steam sensor being adapted
to switch off the supply of electricity to the heating element of the vessel in response
to the generation of steam when water boils in the vessel.
16. An electrically heated water boiling vessel incorporating a steam sensor as claimed
in claim 15.
1. Elektrischer Schalter mit einer Kontaktfeder (1) in einer Sprungwerkanordnung, wobei
die Kontaktfeder (1) so ausgebildet ist, dass sie zwischen zwei alternativen stabilen
Positionen auf zwei gegenüberliegenden Seiten einer dazwischenliegenden unstabilen
Position einrastbar beweglich ist,
dadurch gekennzeichnet, dass
die Kontaktfeder (1) drei sich von einer Querstrebe (2) erstreckende Elemente (3,
4, 5) umfasst, die jeweils an einem Ende an der Querstrebe (2) angebracht sind, wobei
das andere Ende frei ist, und die äußeren beiden (3, 4) der drei Elemente (3, 4, 5)
im allgemeinen in die gleiche Richtung verlaufen und das mittlere (5) der drei Elemente
(3, 4, 5) im allgemeinen in die gleiche oder in die entgegengesetzte Richtung verläuft,
wobei das mittlere (5) der drei Elemente (3, 4, 5) als ein Federelement der Sprungwerkanordnung
ausgebildet ist und zwischen entgegengesetzt liegenden Widerlagern (9, 23) federt,
wobei das eine (23) Widerlager an dem freien Ende des entsprechenden Mittelelements
(5) und das andere (9) auf der entgegengesetzten Seite der Querstrebe (2) angeordnet
ist, und wobei die äußeren beiden (3, 4) der drei Elemente (3, 4, 5) Kontakte (15,
16) an ihren freien Enden tragen und drehbar beweglich um das Widerlager (9) auf der
entgegengesetzten Seite der Querstrebe (2) sind, wenn die Sprungwerkanordnung sich
zwischen den beiden stabilen Positionen bewegt.
2. Elektrischer Schalter nach Anspruch 1, wobei die Kontaktfeder (1) im allgemeinen E-förmig
ist.
3. Elektrischer Schalter nach Anspruch 1 oder 2, wobei die Querstrebe (2) und die äußeren
beiden (3, 4) der drei Elemente (3, 4, 5) im allgemeinen koplanar ausgebildet sind.
4. Elektrischer Schalter nach Anspruch 1, 2 oder 3, wobei das mittlere (5) der drei Elemente
(3, 4, 5) einen ersten Teil aufweist, der von der Querstrebe (2) im allgemeinen in
die gleiche Richtung wie die äußeren beiden Elemente (3, 4) verläuft, und einen zweiten
Teil, der sich von dem ersten Teil erstreckt und das Federelement (5) der Sprungwerkanordnung
ausbildet.
5. Elektrischer Schalter nach einem der vorhergehenden Ansprüche, wobei das Federelement
(5) der Sprungwerkanordnung als C-Feder ausgebildet ist, und die Konkavität der C-Feder
auf der gleichen Seite der Kontaktfeder (1) wie die Kontakte (15, 16) an den freien
Enden der äußeren zwei Federelemente angeordnet ist.
6. Elektrischer Schalter nach einem der vorhergehenden Ansprüche, wobei die Kontaktfeder
(1) aus einem Bimetallmaterial ausgebildet ist.
7. Elektrischer Schalter nach einem der vorhergehenden Ansprüche, wobei das mittlere
Federelement (5) in einer Sprungwerkanordnung mit einem Schalthebel (8) des Schalters
angeordnet ist.
8. Elektrischer Schalter nach Anspruch 7 mit einem Gehäuseteil (11), das räumlich getrennte
Widerlager (9, 10) definiert, zwischen denen das mittlere Federelement (5) und der
Schalthebel (8) angeordnet sind, wobei sowohl für das mittlere Federelement (5) als
auch für den Schalthebel (8) die Drehpunkte in den entsprechenden Widerlagern an den
entsprechenden ersten Enden sind und sie drehbar miteinander an den entsprechenden
zweiten Enden verbunden sind.
9. Elektrischer Schalter nach Anspruch 7 oder 8 mit einem wärmeansprechenden Stellglied
(12), das mit der Sprungwerkanordnung verbunden ist, um deren Zustand festzulegen.
10. Elektrischer Schalter nach Anspruch 9, wobei das wärmeansprechende Stellglied (12)
ein Bimetallelement aufweist, das mittels eines Stößelstangenelements (13) an die
Sprungwerkanordnung angebunden ist.
11. Elektrischer Schalter nach Anspruch 9 oder 10, wobei das wärmeansprechende Stellglied
(12) im wesentlichen von den elektrischen Komponenten (17, 18) aufgrund der Eigenschaften
der im Schaltgehäuse (25) inliegenden Komponenten isoliert ist, und das wärmeansprechende
Stellglied (12) außerhalb des Gehäuses angeordnet ist.
12. Elektrischer Schalter nach Anspruch 9 oder 10 oder 11 mit weiterhin einem zweiten
wärmeansprechenden Stellglied, das mit der Sprungwerkvorrichtung verbunden ist, um
deren Zustand unabhängig von dem ersten wärmeansprechenden Stellglied festzulegen.
13. Elektrischer Schalter nach Anspruch 12, wobei das zweite wärmeansprechende Stellglied
so angeordnet ist, dass es nur nach einer Zeitverzögerung bedienbar ist, so dass im
Normalbetrieb die Bedienung des Schalters durch das erste wärmeansprechende Stellglied
ermöglicht wird.
14. Elektrischer Schalter nach einem der vorhergehenden Ansprüche, wobei die Anordnung
so ausgebildet ist, dass während einer Schaltoperation der Kontaktfeder (1) eines
der äußeren Elemente (3, 4) den Kontakt vor dem anderen abbricht und nach dem anderen
wiederherstellt.
15. Elektrischer Schalter nach einem der vorhergehenden Ansprüche, der als Dampfsensor
für ein elektrisch beheiztes Wasserkochgefäß ausgebildet ist, wobei der Dampfsensor
so ausgebildet ist, dass er die Zufuhr von Elektrizität zu dem Heizelement des Gefäßes
als Reaktion auf die Erzeugung von Dampf, wenn das Wasser in dem Gefäß kocht, abschaltet.
16. Elektrisch beheizter Wasserkochgefäß mit einem Dampfsensor nach Anspruch 15.
1. Commutateur électrique comprenant une lame porte-contact (1) dans un agencement en
arc-boutement dans lequel la lame porte-contact (1) est adaptée pour un mouvement
à action rapide entre deux positions stables alternatives sur les côtés opposés d'une
position instable intermédiaire, caractérisé en ce que ladite lame porte-contact (1) comprend trois éléments (3, 4, 5) s'étendant depuis
une traverse (2), lesdits trois éléments (3, 4, 5) étant chacun fixé à ladite traverse
(2) au niveau d'une extrémité et libre au niveau de son autre extrémité et les deux
éléments extérieurs (3, 4) desdits trois éléments (3, 4, 5) s'étendant généralement
dans la même direction ou dans la direction opposée, l'élément intermédiaire (5) desdits
trois éléments (3, 4, 5) constituant un élément formant ressort dudit agencement en
arc-boutement et étant élastique entre les points de butée opposés (9, 23), un (23)
au niveau de l'extrémité de l'élément intermédiaire respectif (5), et l'autre (9)
au niveau du côté opposé de ladite traverse (2) et les deux éléments extérieurs (3,
4) des trois éléments (3, 4, 5) portant les contacts (15, 16) au niveau de leurs extrémités
libres et étant mobiles par rotation autour du point de butée (9) au niveau du côté
opposé de la traverse (2) lorsque l'agencement en arc-boutement se déplace entre ses
deux positions stables.
2. Commutateur électrique selon la revendication 1, dans lequel ladite lame porte-contact
(1) est généralement de la forme d'un E.
3. Commutateur électrique 1 ou 2, dans lequel ladite traverse (2) et lesdits deux éléments
extérieurs (3, 4) desdits trois éléments (3, 4, 5) sont généralement coplanaires.
4. Commutateur électrique selon la revendication 1, 2 ou 3, dans lequel ledit élément
intermédiaire (5) desdits trois éléments (3, 4, 5) possède une première partie s'étendant
depuis ladite traverse (2) généralement dans la même direction que les deux éléments
extérieurs (3, 4) et une deuxième partie s'étendant depuis ladite première partie
et constituant l'élément formant ressort (5) dudit agencement en arc-boutement.
5. Commutateur électrique selon l'une quelconque des revendications précédentes, dans
lequel l'élément formant ressort (5) de l'agencement en arc-boutement comprend un
ressort en forme de C et la concavité du ressort en forme de C est sur le même côté
que la lame porte-contact (1) comme le sont les contacts (15, 16) au niveau des extrémités
libres des deux éléments extérieurs formant ressort.
6. Commutateur électrique selon l'une quelconque des revendications précédentes, dans
lequel la lame porte-contact (1) est composée d'un matériau bimétallique.
7. Commutateur électrique selon l'une quelconque des revendications précédentes, dans
lequel l'élément intermédiaire formant ressort (5) est agencé dans un agencement en
arc-boutement avec un levier de déclenchement (8) du commutateur.
8. Commutateur électrique selon la revendication 7 comprenant une partie de corps (11)
définissant des butées espacées (9, 10) entre lesquelles ledit élément formant ressort
intermédiaire (5) et ledit levier de déclenchement (8) sont agencés, chacun desdits
éléments formant ressort intermédiaire (5) et levier de déclenchement (8) pouvant
pivoter dans une des butées respectives au niveau d'une première extrémité respective
et étant couplés de manière pivotante l'un à l'autre au niveau des deuxièmes extrémités.
9. Commutateur électrique selon la revendication 7 ou 8 comprenant un actionneur sensible
thermiquement (12) couplé audit agencement en arc-boutement destiné à déterminer l'état
de celui-ci.
10. Commutateur électrique selon la revendication 9, dans lequel ledit actionneur sensible
thermiquement (12) comprend un élément bimétallique couplé au moyen d'une barre de
liaison (13) audit agencement en arc-boutement.
11. Commutateur électrique selon la revendication 9 ou 10, dans lequel ledit actionneur
sensible thermiquement (12) est sensiblement isolé des composants électriques (17,
18) du commutateur en vertu desdits composants étant enfermés à l'intérieur d'un boîtier
de commutateur (25) et ledit actionneur sensible thermiquement (12) étant proposé
en dehors dudit boîtier.
12. Commutateur électrique selon les revendications 9, 10 ou 11 comprenant en outre un
deuxième actionneur sensible thermiquement couplé audit agencement en arc-boutement
destiné à déterminer l'état de celui-ci indépendamment de l'actionneur sensible thermiquement
mentionné en premier lieu.
13. Commutateur électrique selon la revendication 12, dans lequel ledit deuxième actionneur
sensible thermiquement est agencé de manière à pouvoir fonctionner uniquement après
une temporisation telle qu'en fonctionnement normal afin de permettre le fonctionnement
du commutateur par l'actionneur sensible thermiquement mentionné en premier lieu.
14. Commutateur électrique selon l'une quelconque des revendications précédentes, dans
lequel l'agencement est tel que dans les opérations de commutation de ladite lame
porte-contact (1) l'un desdits deux éléments extérieurs (3, 4) ouvre le contact avant
et ferme le contact après l'autre.
15. Commutateur électrique selon l'une quelconque des revendications précédentes configuré
en tant que capteur de vapeur pour une cuve d'ébullition d'eau chauffée électriquement,
ledit capteur de vapeur étant adapté pour éteindre l'alimentation en électricité vers
l'élément de chauffage de la cuve en réponse à la génération de vapeur lorsque l'eau
bout dans la cuve.
16. Cuve d'ébullition d'eau chauffée électriquement incluant un capteur de vapeur selon
la revendication 15.