Switch assembly
11353216 · 2022-06-07
Assignee
Inventors
Cpc classification
F24C3/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/124
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24C3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A switch assembly for controlling the ignition of gas burners of a cooking appliance having one or more gas valves. The switch assembly includes at least one first support member, operably couplable to a first gas valve, a spring biased ignition switch operably mountable to the at least one first support member, and an actuating member, having a longitudinal axis and operably couplable to at least the first gas valve between the at least one first support member and at least a control knob of at least the first gas valve. The actuating member is adapted to move between a first position, actuatingly engaged with the ignition switch, and a second position, actuatingly disengaged from the ignition switch, wherein the actuating member is moved towards the first position by at least the control knob, and back towards the second position by the spring biased ignition switch.
Claims
1. A switch assembly for controlling the ignition of gas burners of a cooking appliance having one or more gas valves, comprising: at least one first support member, operably couplable to a first gas valve; a spring biased ignition switch, operably mountable to the at least one first support member; an actuating member, having a longitudinal axis and operably couplable to at least the first gas valve between the at least one first support member and at least a control knob of at least the first gas valve, adapted to move between a first position, actuatingly engaged with the ignition switch, and a second position, actuatingly disengaged from the ignition switch, wherein the actuating member is moved towards the first position by at least the control knob, and back towards the second position by the spring biased ignition switch; and a cam mechanism adapted to operably engage, at a predetermined minimum angle of rotation and translation of the control knob, with at least one aperture of a plurality of apertures spaced apart along the longitudinal axis.
2. A switch assembly according to claim 1, wherein, when the cooking appliance has a plurality of serially arranged gas valves, the actuating member is operably couplable to all of the plurality of gas valves along the longitudinal axis.
3. A switch assembly according to claim 2, wherein the actuating member comprises the plurality of apertures, each aperture configured to operably engage with a respective one of the plurality of gas valves, during use.
4. A switch assembly according to claim 1, wherein the actuating member is operably couplable to at least the first gas valve via the cam mechanism adapted to convert a rotationally translational movement of the control knob of at least the first gas valve into a linear movement of the actuating member between the first position and the second position along the longitudinal axis.
5. A switch assembly according to claim 1, wherein the at least one first support member comprises a switch bracket configured to mountingly receive the spring biased ignition switch.
6. A switch assembly according to claim 1, wherein, when the cooking appliance has a plurality of serially arranged gas valves, the actuating member is movable towards the first position at least by the control knob of any one of the plurality of serially arranged gas valves.
7. A switch assembly according to claim 1, when the cooking appliance has a plurality of serially arranged gas valves, comprising at least one second support member operably couplable to a second gas valve.
8. A switch assembly according to claim 7, wherein the actuating member is movably coupled to the first and second support member.
9. A switch assembly according to claim 8, wherein each one of the first and second support member is adapted to slidingly retain a respective end portion of the actuating member.
10. A switch assembly according to claim 1, wherein the actuating member is pivotably coupled to at least the first support member and configured to rotatably move between the first position and the second position about a pivot axis that is parallel to the longitudinal axis.
11. A switch assembly according to claim 10, wherein the actuating member is pivotably coupled to the first support member and a second support member.
12. A cooking appliance comprising a switch assembly according to claim 1.
13. A switch assembly for controlling the ignition of gas burners of a cooking appliance having one or more gas valves, comprising: at least one first support member, operably couplable to a first gas valve; a spring biased ignition switch, operably mountable to the at least one first support member; an actuating member, having a longitudinal axis and operably couplable to at least the first gas valve between the at least one first support member and at least a control knob of at least the first gas valve, adapted to move between a first position, actuatingly engaged with the ignition switch, and a second position, actuatingly disengaged from the ignition switch, wherein the actuating member is moved towards the first position by at least the control knob, and back towards the second position by the spring biased ignition switch; wherein the actuating member is operably couplable to at least the first gas valve via a cam mechanism adapted to convert a rotationally translational movement of the control knob of at least the first gas valve into a linear movement of the actuating member between the first position and the second position along the longitudinal axis, and wherein the cam mechanism is adapted to operably engage with at least a first one of a plurality of apertures at a predetermined minimum angle of rotation and translation of the control knob.
14. A switch assembly for controlling the ignition of gas burners of a cooking appliance having one or more gas valves, comprising: at least one first support member, operably couplable to a first gas valve; a spring biased ignition switch, operably mountable to the at least one first support member; an actuating member, having a longitudinal axis and operably couplable to at least the first gas valve between the at least one first support member and at least a control knob of at least the first gas valve, adapted to move between a first position, actuatingly engaged with the ignition switch, and a second position, actuatingly disengaged from the ignition switch, wherein the actuating member is moved towards the first position by at least the control knob, and back towards the second position by the spring biased ignition switch, wherein the cooking appliance has a plurality of serially arranged gas valves, comprising at least one second support member operably couplable to a second gas valve; wherein the actuating member is movably coupled to the first and second support member, and wherein each one of the first and second support member is adapted to slidingly retain a respective end portion of the actuating member.
Description
BRIEF DESCRIPTION OF SEVERAL VIEWS OF THE DRAWINGS
(1) Embodiments of the invention are now described, by way of example only, hereinafter with reference to the accompanying drawings, in which:
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(22) In the drawings, like reference numerals refer to like parts.
DESCRIPTION OF PREFERRED EMBODIMENTS
(23) The described example embodiment relates to a cooking appliance, and in particular to a switch assembly for the ignition of a gas cooking appliance having one or more gas valves.
(24) Certain terminology is used in the following description for convenience only and is not limiting. The words ‘upper’ and ‘lower’ and designate directions in the drawings to which reference is made and are with respect to the described component when assembled and mounted. The words ‘inner’, ‘inwardly’ and ‘outer’, ‘outwardly’ refer to directions toward and away from, respectively, a designated centerline or a geometric center of an element being described (e.g. central axis), the particular meaning being readily apparent from the context of the description.
(25) Further, as used herein, the terms ‘connected’, ‘attached’, ‘coupled’, ‘mounted’ are intended to include direct connections between two members without any other members interposed therebetween, as well as, indirect connections between members in which one or more other members are interposed therebetween. The terminology includes the words specifically mentioned above, derivatives thereof, and words of similar import.
(26) Further, unless otherwise specified, the use of ordinal adjectives, such as, ‘first’, ‘second’, ‘third’ etc. merely indicate that different instances of like objects are being referred to and are not intended to imply that the objects so described must be in a given sequence, either temporally, spatially, in ranking or in any other manner. Like reference numerals are used to depict like features throughout.
(27) Referring now to
(28) As shown in
(29) In this particular example, the gas valves 114 make up a linear series, arranged along axis 112, which is parallel to the longitudinal axis of the gas supply pipe 117. In this example, the actuating member 170 is configured to span and engage all the gas valves 114 so that the single ignition switch 135 is actuated by operating any one of the serially arranged gas valves 114.
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(31) The first support arm 140 extends away from the rear side of the first support member 120 and is provided with a clip mechanism comprising a pair of first receiving elements 142 and a first locking element 144. Together, the first receiving elements 142 and first locking element 144 are configured to removably engage with the actuating member 170.
(32) The switch bracket 130 extends away from the first mounting portion 121 and the first support arm 140 and is adapted to mountingly receive the electric ignition switch 135. In this position, the electric ignition switch 135 is positioned away from the gas valve 114 therefore minimizing the risk of contamination, e.g. in case substances such as food, liquid or detergent get into the cooking appliance by bypassing the gas valve control knob 119 (see
(33) The electric ignition switch 135 may be a standard ignition switch having a spring biased actuator 137 and fixed electrical contacts 139, which enable the electric ignition switch 135 to be electrically connected to the terminal board 199 (see
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(36) As shown more clearly in
(37) During assembly of the switch assembly 100 and installation to a cooking appliance 190, the first support member 120 and the second support member 150 are attached to a respective one of the plurality of gas valve 114, preferably at opposing ends of the manifold of the serially arranged gas valves 114. Each one of the first and second support member 120, 150 is slid over the stem 115 of the gas valve 114 and positioned so that respective first and second mounting portion 121, 151 face towards the gas supply pipe 117. It is understood by the person skilled in the art that the first and second support member 120, 150 may be attached to any one of the plurality of gas valves 114, so as to provide a base for the actuating member 170 and the ignition switch 135. Further still, in the event of a single gas valve 114, only the first support member 120 may be used for the switch assembly 100.
(38) The electric ignition switch 135 may be provided already installed with the first support member 120. Alternatively, the electric switch 135 is positioned into the switch bracket 130 with the spring biased actuator 137 facing upwards towards the valve control knob 119.
(39) The apertures 174a-f of the actuating member 170 are now moved over respective stems 115 of the plurality of gas valves 114 and the projecting flange 180 is operably coupled to the clip mechanism of respective first and second support arm 140, 160 (i.e. the flange 180 is clipped into engagement with respective first and second receiving elements 142, 162 and first and second locking elements 144, 164). The rounded end 182 of the flange 180 provides the pivot point about which the actuating member 170 moves during engagement. When in position, the front end (opposite the flange 182) of the plate 172 is supported by the spring biased actuator 137. The biasing force provided by the spring biased actuator 137 is greater than the force provided by the weight of the plate 172, so that an additional force is required to move the spring biased actuator 137 from its first position (switch OFF) to its second position (switch ON).
(40) The plate 172 of the actuating member 170 may be provided with a series of recesses 178 along the long front edge (opposite the flange 180) of the plate 172. The recesses 178 may ensure access to each one of the plurality of gas valves 114 after the plate 172 is installed (e.g. for maintenance, or for calibration, for example by using a screw driver to adjust the gas valve).
(41) After mounting the actuating member 170 to respective first and second support member 120, 150, valve control knobs 119 are attached to end portions of the stem 115 of the gas valves 114. Each one of the valve control knobs 119 is configured to operably engage with the actuating member 170 when opening respective gas valve 114, i.e. the valve control know 119 can be rotated to open and close the gas valve via stem 115 and also move axially (via stem 115) to push the actuating member 170 (pivot about rounded end portion 182) and spring biased actuator 137 from its first position towards and into the second position.
(42) The function of the example embodiment of the switch assembly 100 of the present invention is now described with reference to
(43) In order to switch off any one or all of the gas burners 192, the user simply closes the gas supply via the respective gas control knob 119.
(44) Referring now to
(45) The actuating member 270 comprises a plurality of apertures 223 arranged along the longitudinal center axis 271 of the actuating member 270 and spaced apart so as to be mountable over the stems 115 of the plurality of gas valves 114. Each one of the apertures 223 comprises a cam member 376 projecting radially inwards from the edge surface of the aperture 223. Furthermore, each one of the apertures 223 is of elongate shape along the longitudinal center axis 271, so as to allow axial movement of the actuating member 270 along the longitudinal center axis 271.
(46) The switch bracket 230 is configured to retainingly receive an ignition switch 235 and is coupled to the first mounting portion 221 such that the spring biased actuator 237 is facing in a direction parallel to the longitudinal center axis 271 of the actuating member 270 and towards the actuating member 270, when assembled.
(47) The collar 310 comprises a second cam member 320 projecting in a direction parallel to the center axis 116 of the gas valve stem 115 and which is adapted to operably engage with the first cam member 376 during rotation of the gas valve stem 115 (e.g. via a valve control knob (not shown)). In particular, first and second cam members 376, 320 form a cam mechanism configured to move the actuating member 270 towards and into engagement with the spring biased actuator 237, when rotated counter-clockwise, and to move the collar 310 axially along the center axis 116 of the stem 115 and out of engagement with the actuating member 270, so that the actuating member is moved back along its longitudinal center axis 271 into its starting position by the spring biased actuator 237, before the collar 310 and second cam member 320 are moved back into aperture 223 and into engagement with the first cam member 376.
(48) The function of the alternative example embodiment of the switch assembly 200 of the present invention is now described with reference to
(49) During operation, the user simply rotates the valve control knob (not shown) and stem 115 counter-clockwise which also rotates the attached collar 310 counter-clockwise. Through rotation of the collar 310, the second cam 320 member of the collar 310 engages with the first cam member 376 of the actuating member 270 so as to push the actuating member 270 linearly along its longitudinal central axis 271 towards and into engagement with the spring biased actuator 237. Further rotation of the valve control knob and stem 115 will eventually move the spring biased actuator 235 from its first position (switch is OFF) to its second position (switch is ON) and close the ignition circuit and produce an ignition spark to ignite the gas burner (as described with the switch assembly 100). Further rotation of the stem 115 allows the second cam member 320 to move circumferentially passed the first cam member 376 so that the actuating member 270 is pushed back towards its starting position by the spring biased actuator 237. In this position, the second cam member 320 is now on the other side of the first cam member 376.
(50) The counter-clockwise rotation of the stem 115 simultaneously opens the gas supply and temporarily closes the electric igniter circuit 196 (switch ON) to produce an ignition spark to light the gas burner 192. Further counter-clockwise rotation of the stem 115 (and collar 310) moves the spring biased actuator 237 back towards its first position opening the electric igniter circuit 196 (switch OFF).
(51) In order to switch off the gas burner 192, the user simply rotates the valve control knob clockwise (
(52) Thus, the switch assembly 200 translates a rotational movement of the valve control knob into a linear movement of the actuating member 270 to engage the spring biased actuator 237 of the electric ignition switch 235. It is understood by the person skilled in the art that any suitable cam mechanism may be used to move the actuating member 270 between its first position (spring biased actuator 237 in OFF position) and its second position (spring biased actuator 237 in ON position.
(53) While the aperture(s) 274a-f are described as an oval, the precise shape may vary. Thus, an actuating member 270 may have differently shaped apertures 274a-f in order to provide tolerance for series of gas valves 114 with different lengths and spacings. Further, the support members 120, 150, 220 and actuating members 170, 270 of the invention may be made from any suitable material. Preferred options may include appropriately rigid plastic material. However, other suitable materials may also include metals, alloys, or carbon-based materials or compounds.
(54) Although specific examples of pivotable and linearly actuatable actuating members 170, 270 have been described, other types of movement or location may be provided within the scope of the claimed invention.
(55) It will be appreciated by persons skilled in the art that the above embodiment(s) have been described by way of example only and not in any limitative sense, and that various alterations and modifications are possible without departing from the scope of the invention as defined by the appended claims.