This application claims the benefit under 35 U.S.C. §119 of Singapore Patent Application No. 201308246-6 filed on Nov. 6, 2013 which is hereby incorporated herein by reference in its entirety for all purposes.
The present disclosure relates broadly to a flag structure and a flag assembly for use in relays; and relays comprising the flag structure or flag assembly.
In the electronics industry, devices such as relays are typically used to operate machinery and circuits. Such devices typically rely on energization or switching on/off for operations. A flag structure is typically used in a relay to indicate to a user whether the relay is in an energized or de-energized state (i.e. switched on or off). Through mechanical interactions, the flag structure is typically actuated about one or more pivot points in response to the switching on/off operations to provide an indication of the switching states of the relay to the user.
In known relays, the flag structure is assembled by exerting a compressive or tensile force to at least partially deform a portion of the flag structure before aligning the deformed part to a support structure on the relay. Thereafter, the compressive or tensile force is released to allow the deformed part to recoil and urge against the support structure such that it engages with the support structure. The engagement with the support structure typically provides one or more pivot points for movement of the flag structure to provide an indication of the switching states of the relay to the user.
A significant problem that may arise from such conventional relay is that because a compressive or tensile force needs to be applied to the flag structure during assembly of the relay, the flag structure may sustain permanent deformation. In this case, the flag structure is not able to return to its original state. This can result in insufficient engagement of the flag structure with the support structure which in turn may hamper the movement of the flag structure in response to the switching of states of the relay. Consequently, there may be reduced efficiency or reduced accuracy in indicating the energization or de-energization of the relay. There is also a risk that the flag structure can be broken when excessive force is applied to the flag structure. This in turn can lead to unnecessary costs being incurred to replace the damaged components during assembly of the relay.
Another disadvantage in such known relays is that there is a separate need to apply a deformation force on the flag structure during assembly. This can slow down the entire assembly process and lead to low efficiency during the assembly process of the relay. Such reduced efficiency is even more pronounced on an industrial scale when large numbers of relays have to be assembled. There is also a degree of difficulty in automating the assembly process due to the need to apply a deformation force to the flag structure to properly fit the flag structure to a supporting structure of the relay.
Additionally, in known relays, the part of the flag structure that receives the mechanical force to enable the flag structure to actuate about one or more pivot points in response to the switching on/off operations, is often far from being structurally optimal. This may reduce the effectiveness in transmission of the mechanical force required for actuating the flag structure.
Due to the configuration of flag structures of known relays, certain components of the relays may only be assembled after the flag structure is put in place. The sequence of assembly of such known relays is restrictive. Furthermore, complicated toolings are needed to insert some components of the relay due to the positioning of the flag structure. This may reduce the efficiency of the assembly process. Manufacturing cost of the relay may also be increased due to the need for complicated toolings during the assembly process.
Hence, in view of the above, there exists a need for a relay, a flag structure and a flag assembly that address or at least ameliorate the above drawbacks.
In accordance with an aspect, there is provided a relay comprising: a relay switch configured to operate in a first switch mode and a second switch mode; a flag structure for indicating an operative status of the relay switch, the flag structure capable of being orientated in a first position for indicating the relay switch being in the first switch mode and in a second position for indicating the relay switch being in the second switch mode; a card structure coupled to the flag structure for changing the orientation of the flag structure from the first position to the second position or from the second position to the first position; and a base plate coupled to the flag structure and the card structure, the base plate comprising an open ended slot for allowing part of the flag structure to be received therein.
The first switch mode may correspond to the relay operatively providing electrical communication to an external circuit and the second switch mode may correspond to the relay operatively disrupting electrical communication to the external circuit.
The open ended slot may be configured to allow part of the flag structure to be received therein without substantial deformation of the flag structure
The flag structure may comprise projections for slotting into the open ended slot of the base to provide a pivoting point for changing the orientation of the flag structure.
The card structure may comprise a supporting platform for receiving part of the flag structure and for transmitting a force to the flag structure to change the orientation of the flag structure.
The flag structure may further comprise: a first arm and a second arm; a lip coupled to the first arm and the second arm for indicating the operative status of the relay switch; and a shaft coupled to the first arm and the second arm, the shaft configured to engage the supporting platform of the card structure, wherein the projections for being received in the open ended slot of the base plate comprises a projection extending from the first arm and a projection extending from the second arm.
The shaft may extend from the first arm to the second arm.
The projections may be disposed at the ends of the first and second arms.
The projection of the first arm and the projection of the second arm may extend outwards away from each other.
The relay may further comprise a housing for coupling with the base plate and for substantially preventing the projections of the flag structure from dislodging from the open ended slot of the base plate through the opened end.
The housing may comprise a window for allowing visual access to the lip of the flag structure when it is in the first position or the second position or both.
The window may be substantially transparent.
The flag structure may be substantially non-deformable.
In accordance with another aspect, there is provided a flag structure for use in a relay as disclosed herein, the flag structure comprising: a first arm and a second arm; a lip coupled to the first arm and the second arm for indicating the operative status of the relay switch; a shaft coupled to the first arm and the second arm, the shaft configured to engage the supporting platform of the card structure of the relay; a projection extending from the first arm; and a projection extending from the second arm, wherein the projection of the first arm and the projection of the second arm are arranged to be received by the open ended slot of the base of the relay.
The shaft may extend from the first arm to the second arm.
The projections may be disposed at the ends of the first and second arms.
The projection of the first arm and the projection of the second arm may extend outwards away from each other.
The flag structure may be substantially non-deformable.
In accordance with yet another aspect, there is provided a flag assembly for use in a relay as disclosed herein, the flag assembly comprising: a flag structure for indicating an operative status of a relay switch of the relay, the flag structure comprising: a first arm and a second arm; a lip coupled to the first arm and the second arm for indicating the operative status of the relay switch; and a shaft coupled to the first arm to the second arm for receiving a force to thereby change the orientation of the flag structure; and a card structure coupled to the flag structure, the card structure comprising a supporting platform for receiving the shaft of the flag structure and for transmitting the force to the flag structure to change the orientation of the flag structure.
The flag structure may further comprise: a projection extending from the first arm; and a projection extending from the second arm, wherein the projection of the first arm and the projection of the second arm are arranged to be received by the open ended slot of the base of the relay.
The projections may be disposed at the ends of the first and second arms.
The projection of the first arm and the projection of the second arm may extend outwards away from each other.
The flag structure may be substantially non-deformable.
In accordance with yet another aspect, there is provided a method of assembling a relay as disclosed herein, the method comprising: providing a base plate comprising an open ended slot; providing a flag structure for indicating an operative status of the relay switch, wherein the flag structure is capable of being orientated in a first position for indicating the relay switch being in the first switch mode and in a second position for indicating the relay switch being in the second switch mode; coupling a card structure to the base plate, wherein the card structure is capable of changing the orientation of the flag structure from the first position to the second position or from the second position to the first position; and receiving part of the flag structure with the open ended slot of the base plate.
The step of receiving part of the flag structure with the open ended slot of the base plate may comprise receiving the part of the flag structure with the open ended slot without substantially deforming the flag structure.
The method may further comprise engaging the supporting platform of the card structure with the shaft of the flag structure when the card structure comprises a supporting platform and the flag structure comprises a shaft.
Example embodiments described herein provide a flag structure and a flag assembly for use in relays. Example embodiments disclosed herein also provide relays comprising the flag structure or flag assembly. The relays may be used for providing or disrupting electrical communication to an external circuit. The relays may be electromagnetic relays. Accordingly, in some embodiments, apart from the flag structure or flag assembly disclosed herein, the relays also comprise a coil block, an armature and a contact switching mechanism for electromagnetically switching on/off an electrical connection of the relay to an external circuitry.
In example embodiments, the relay for providing or disrupting electrical communication to a circuit comprise a relay switch configured to operate in a first switch mode and a second switch mode; a flag structure for indicating an operative status of the relay switch, the flag structure capable of being orientated in a first position for indicating the relay switch being in the first switch mode and in a second position for indicating the relay switch being in the second switch mode; a card structure coupled to the flag structure for changing the orientation of the flag structure from the first position to the second position or from the second position to the first position; and a base plate coupled to the flag structure and the card structure, the base plate comprising an open ended slot for allowing part of the flag structure to be received therein. The first switch mode and second switch mode may be independently selected to correspond to one of a mode for operatively providing electrical communication to an external circuit and a mode for operatively disrupting electrical communication to the external circuit. The open ended slot may be configured to allow part of the flag structure to be received or slotted therein without substantial deformation of the flag structure. The card structure and the base plate may be removably coupled to the flag structure.
In example embodiments, that open ended slot of the base plate is disposed on an extended structure of the base plate. The open ended slot may comprise at least one of a valley, trough, depression, or channel.
The flag structure may comprise projections for slotting into the open ended slot of the base to provide a pivoting point for changing the orientation of the flag structure. The flag structure may further comprise a first arm and a second arm; a lip coupled to the first arm and the second arm for indicating the operative status of the relay switch; and a shaft coupled to the first arm and the second arm, the shaft configured to engage the supporting platform of the card structure, wherein the projections for slotting into the open ended slot of the base plate comprises a projection extending from the first arm and a projection extending from the second arm. The first arm and second arm may be part of a frame structure that is bridged at the ends of the first and second arms by an elongate portion running across the two arms. The elongate portion may be disposed at an angle that is substantially perpendicular to the first, the second arms or both. The lip may also be coupled to the first and second arms via the elongate portion such that the lip may be an extension of part of the elongate portion. In some embodiments, the lip or part of the lip is an extension of the middle part of the elongate portion. In some embodiments, the lip or part of the lip is also made with a material or colour that is sufficiently conspicuous to the user so that the user is able to have a better visual indication on the switching status of the relay when in use. The lip may also be angled such that a small arc movement of the legs of the flag may result in a large arc movement of the lip. Advantageously, this can improve the mechanical sensitivity of the flag in that a small movement may be needed to show the change in switching status of the relay. In some embodiments, the lip is also interchangeably termed as an indicator.
In some embodiments, the projections for slotting into the open ended slot of the base plate are disposed at the ends of the first and second arms. The projection of the first arm and the projection of the second arm may extend outwards away from each other or inwards towards each other. The projections of the first and second arms may be of a shape that is complementary to the shape of the open ended slot of the base plate so that the projections may engage with the open ended slot to provide one or more pivot points to actuate the flag structure. In some embodiments, the cross-section of the projections is circular in shape. In various embodiments, due to the structure of the open ended slot and the projections, the flag may be dropped or slotted into the open ended slot of the base plate such that the projections are in contact with the open ended slot. Advantageously, in various embodiments, the flag structure can be fitted into the open ended slot of the base plate without a need for substantial deformation of the flag structure. This provides ease in assembly of the flag structure in the relay. Accordingly, in some embodiments, the flag structure can be made of substantially non-deformable material. Advantageously, this may provide rigidity and structural integrity to the flag structure.
In some embodiments, the shaft of the flag structure may be at least one of a bar, a rod, or a straight elongated member. In other embodiments, the shaft of the flag structure may be non-straight. It will be appreciated that in various embodiments, the shaft of the flag structure can assume any shape so long as the shaft can engage with the corresponding supporting platform of the card structure. The shaft of the flag structure may extend from the first arm to the second arm. In various embodiments, the shaft of the flag structure is to be distinguished from the elongate portion bridging the ends of the first and second arms. The shaft of the flag structure may be positioned between the elongate portion and the projections at the ends of the first and second arms. Advantageously, the shaft may provide a means for receiving a mechanical force for the flag structure to move it. Even more advantageously, the shaft also provides additional support for the arms of the flag structure so that overall rigidity and structural integrity to the flag structure is further enhanced. As will be appreciated, the card structure of the relay may comprise a supporting platform for receiving part of the flag structure and for transmitting a force to the flag structure to change the orientation of the flag structure. Thus, the shaft may be of a shape that is complementary to the shape of the supporting platform of the card structure so that the shaft may sufficiently engage with the supporting platform of the card structure to receive the mechanical force required to actuate the flag structure. Advantageously, when the supporting platform of the card structure is sufficiently engaged with the shaft, the incidence of imbalance of the flag structure, particularly during movement is substantially reduced. The supporting platform of the card structure may be a valley or a groove. Thus, in some embodiments, the shaft is tubular in shape to sufficiently engage with the supporting platform.
When describing embodiments of the flag structure herein, references to different features have been made. It will be appreciated that one or more of these features may be formed as part of the entire flag structure or may be individual components that are later fitted or added to other individual components to collectively form the flag structure. For example, the shaft coupling the first arm and the second arm may be a separate component that is attached (removably or otherwise) to the first arm and second arm or the shaft may be a part of the entire flag structure that is formed, for instance, through extrusion molding. Likewise, the lip, the elongate portion bridging the ends of the first and second arms and the projections at the ends of the first and second arms may be separate components that are attached (removably or otherwise) to the other components or part of the entire flag structure that is formed.
In some embodiments, the relay comprises a housing for coupling with the base plate to contain the relay switch, the flag structure and the card structure. The housing may also substantially prevent the projections of the flag structure from dislodging from the open ended slot of the base plate, for example, through the opened end of the open ended slot. In various embodiments, the housing comprises a window for allowing visual access to the lip of the flag structure when it is in the first position or the second position or both. The window may be substantially transparent.
In example embodiments, there is also provided a flag structure for use in a relay disclosed herein, the flag structure comprises a first arm and a second arm; a lip coupled to the first arm and the second arm for indicating the operative status of the relay switch; a projection extending from the first arm; and a projection extending from the second arm, wherein the projection of the first arm and the projection of the second arm are arranged to slot into the open ended slot of the base of the relay. The flag structure may also comprise additional features or configurations that are similar to those discussed above.
In example embodiments, there is also provided a flag assembly for use in a relay disclosed herein, the flag assembly comprises a flag structure for indicating an operative status of a relay switch of the relay and a card structure coupled to the flag structure, the card structure comprising a supporting platform for receiving the shaft of the flag structure and for transmitting the force to the flag structure to change the orientation of the flag structure. Additionally, the flag structure and card structure may also comprise additional features or configurations that are similar to those discussed above.
In example embodiments, there is also provided a method of assembling a relay disclosed herein, the method comprising providing a base plate comprising an open ended slot, providing a flag structure for indicating an operative status of the relay switch, wherein the flag structure is capable of being orientated in a first position for indicating the relay switch being in the first switch mode and in a second position for indicating the relay switch being in the first switch mode, coupling a card structure to the base plate, wherein the card structure is capable of changing the orientation of the flag structure from the first position to the second position or from the second position to the first position, and slotting part of the flag structure into the open ended slot of the base plate. The step of slotting part of the flag structure into the open ended slot of the base plate may comprise slotting the part of the flag structure into the open ended slot without substantially deforming the flag structure. The card structure may comprise a supporting platform and the flag structure may comprise a shaft. The method of assembling a relay may comprise engaging the supporting platform of the card structure with the shaft of the flag structure.
The terms “coupled” or “connected” as used in this description are intended to cover both directly connected or connected through one or more intermediate means, unless otherwise stated.
The description also discloses relevant device/apparatus for performing the steps of the described methods. Such apparatus may be specifically constructed for the purposes of the methods, or may comprise a general purpose computer/processor or other device selectively activated or reconfigured by a computer program stored in a storage member. The algorithms and displays described herein are not inherently related to any particular computer or other apparatus. It is understood that general purpose devices/machines may be used in accordance with the teachings herein. Alternatively, the construction of a specialized device/apparatus to perform the method steps may be desired.
Additionally, when describing some embodiments, the disclosure may have disclosed a method and/or process as a particular sequence of steps. However, unless otherwise required, it will be appreciated the method or process should not be limited to the particular sequence of steps disclosed. Other sequences of steps may be possible. The particular order of the steps disclosed herein should not be construed as undue limitations. Unless otherwise required, a method and/or process disclosed herein should not be limited to the steps being carried out in the order written. The sequence of steps may be varied and still remain within the scope of the disclosure.
Further, in the description herein, the word “substantially” whenever used is understood to include, but not restricted to, “entirely” or “completely” and the like. In addition, terms such as “comprising”, “comprise”, and the like whenever used, are intended to be non-restricting descriptive language in that they broadly include elements/components recited after such terms, in addition to other components not explicitly recited. Further, terms such as “about”, “approximately” and the like whenever used, typically means a reasonable variation, for example a variation of +/−5% of the disclosed value, or a variance of 4% of the disclosed value, or a variance of 3% of the disclosed value, a variance of 2% of the disclosed value or a variance of 1% of the disclosed value.
Furthermore, in the description herein, certain values may be disclosed in a range. The values showing the end points of a range are intended to illustrate a preferred range. Whenever a range has been described, it is intended that the range covers and teaches all possible sub-ranges as well as individual numerical values within that range. That is, the end points of a range should not be interpreted as inflexible limitations. For example, a description of a range of 1% to 5% is intended to have specifically disclosed sub-ranges 1% to 2%, 1% to 3%, 1% to 4%, 2% to 3% etc., as well as individually, values within that range such as 1%, 2%, 3%, 4% and 5%. The intention of the above specific disclosure is applicable to any depth/breadth of a range.
Example embodiments of the disclosure will be better understood and readily apparent to one of ordinary skill in the art from the following discussions and if applicable, in conjunction with the Figures. It should be appreciated that other modifications related to structural, electrical and optical changes may be made without deviating from the scope of the invention. Example embodiments are not necessarily mutually exclusive as some may be combined with one or more embodiments to form new exemplary embodiments.
In this example embodiment, the supporting structure 112 further comprises a locking portion 114. The locking portion 114 extends out towards an exterior of the relay 100.
The flag structure 200 is supported on the card structure 300. The flag structure is configured to be dropped into a top open end 116 of the supporting structure 112. The contact switching mechanism 120 comprises a movable contact piece 122, a first non-movable contact piece 124 and a second non-movable contact piece 126. The card structure 300 is in fitting contact with the armature 400 and the card structure 300 is coupled to the movable contact piece 122. The contact switching mechanism 120 is coupled to the supporting structure 112, for example, by fitting the movable contact piece 122, the first non-movable contact piece 124 and the second non-movable contact piece 126 into corresponding receiving guides in the supporting structure 112 of the base 110.
The first arm 210 comprises a first end 212, a second end 214, an inner wall 216 and an outer wall 218. Similarly, the second arm 220 comprises a first end 222, a second end 224, an inner wall 226 and an outer wall 228. The inner wall 216 of the first arm 210 faces the inner wall 226 of the second arm 220. A first projection 240 extends out from the outer wall 218 at the second end 214 of the first arm 210. A second projection 250 extends out from the outer wall 228 at the second end 224 of the second arm 220. The first projection 240 and the second projection 250 have a circular cross-section. Each of the two projections 240 and 250 is configured for dropping into a top open end 116 of the supporting structure 112 of base 110 of the relay 100.
The indicator portion 230 extends from an elongate portion that bridges the first arm 210 and second arm 220. The elongate portion is in the form of a connector bar 234. The indicator portion 230 also comprises an indication point 232 and a connector piece 226. The indication point 232 is connected to the connector bar 234 by the connector piece 226. The connector bar 234 is substantially perpendicular to each of the two arms 210 and 220. The indication point 232 is formed at a substantially centre position of the connector bar 234.
The flag structure 200 further comprises a shaft 260. The shaft 260 extends from one arm to another arm. The shaft 260 is substantially perpendicular to each of the arm 210 and 220. In this example embodiment, the shaft 260 is integral with the two arms 210 and 220. In other embodiments, the shaft 260 may be a part that is attached to the two arms 210 and 220. Advantageously, as the shaft 260 is a continuous extension from one arm to the other arm, a large surface is provided for engaging with a card structure. This allows the flag structure to be in better contact and alignment with the card structure during movement of the card structure so that less stress is being exerted on the flag structure during said movement.
It will be appreciated that in some embodiments, the flag structure 200 can be molded as single structure and in other embodiments the flag structure 200 can be assembled together from different parts.
The flag structure 200 is capable of cooperating with a card structure 300 of a relay 100 in the example embodiment.
In an example embodiment, the flag structure 200 is made of a substantially non-deformable material. The substantially non-deformable material can be a plastic, such as polybutylene terephthalate, polyphenylene sulfide, polyamides or polyoxymethylene, but is not limited to such material. In some embodiments, due to certain specific structural design, the structure design does not allow the flag structure 200 or part thereof to be substantially deformed. For example, multiple shafts can be disposed between the first arm 210 and the second arm 220 to make it more difficult for the first arm 210 and the second arm 220 to move towards or away from each other when a compressive or tensile force is exerted on the first arm 210 and the second arm 220. This helps to increase the rigidity of the flag structure 200.
Referring to
Referring to
In this particular embodiment, there is no need to deform the flag structure 200, for example by increasing the distance between the two arms or by decreasing the distance between the two arms, in order to fit each of the projections 240 and 250 into the top open ended slot 116. This also helps to reduce the possibility of a flag structure being broken or damaged in the process of assembling a relay which thus helps to increase efficiency and reduce production costs.
In the particular example embodiment shown in
In another example embodiment, the shaft 260 of the flag structure 200 can be fitted onto a groove 360 on the extended portion 320 of the card structure 300.
Referring to both
In this embodiment, the recess 520 is substantially transparent. The recess 520 is positioned such that it corresponds to a position of an indication point (for example 232 of
Referring to
Referring to
Referring to
Referring to
An example of a non-open ended slot is shown in
As will be appreciated by comparison of
Process of assembling a relay is also easier and more straight forward when an open ended slot is used since the flag structure only needs to be slotted into the open opened slot. No complicated tooling may be needed to be engaged for such assembly process.
Referring to
In step 1020, a flag structure for indicating an operative status of the relay switch is provided. The flag structure is capable of being orientated in a first position for indicating the relay switch being in the first switch mode and in a second position for indicating the relay switch being in the second switch mode.
In step 1030, a card structure is coupled to the base plate. The card structure is capable of changing the orientation of the flag structure from the first position to the second position or from the second position to the first position.
In step 1040, part of the flag structure is slotted into the open ended slot of the base plate. Step 1040 may comprise slotting the part of the flag structure into the open ended slot without substantially deforming the flag structure.
In some embodiments, step 1030 may be carried out after step 1040.
The card structure may comprise a supporting platform and the flag structure may comprise a shaft. The method of assembling a relay may further comprise engaging the supporting platform of the card structure with the shaft of the flag structure.
It will be appreciated by a person skilled in the art that other variations and/or modifications may be made to the specific embodiments without departing from the scope of the invention as broadly described. The present embodiments are, therefore, to be considered in all respects to be illustrative and not restrictive.
Number | Date | Country | Kind |
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201308246-6 | Nov 2013 | SG | national |
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Entry |
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Extended European Search Report from corresponding European Application No. 14306764.3 dated Apr. 20, 2015. |
Office Action issued by the European Patent Office from corresponding European Patent Application No. 14306764.3 dated Jun. 20, 2016. |
Number | Date | Country | |
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20150123750 A1 | May 2015 | US |