Claims
- 1. In an AC relay operable by an AC source and having a ferromagnetic structure with a stator core with primary and shaded poles providing primary and secondary pole faces respectively and a pivotal clapper having a pole face at the outer end thereof in opposed face to face relationship with the primary and secondary pole faces, an elongated leaf spring fixed to the clapper and providing a clapper overtravel spring extending radially outwardly from the outer end of the clapped and a clapper return spring at the other end of the clapper biasing the clapper from fully attracted to fully withdrawn pivotal positions thereof, a fixed relay contact, a movable relay contact on the outer end of the overtravel spring in engagement with the fixed contact as the clapper moves between its fully withdrawn position and a contact break position intermediate its fully withdrawn and fully attracted positions, an operating coil mounted on the stator core for producing an electromagnetic field through the ferromagnetic structure and across a working air gap between the opposed pole faces to magnetically attract the clapper in one direction thereof from its fully withdrawn to its fully attracted position against the net bias of the return and overtravel springs, the return and overtravel springs providing an equal and opposite preload bias on the clapper at its fully withdrawn position; the improvement wherein the overtravel spring has a width and weight so that both the overtravel spring assembly, comprising the overtravel spring and movable contact, and the clapper assembly, comprising the clapper and the part of the leaf spring, including the overtravel spring assembly, which moves with the clapper, have a natural frequency significantly greater than twice the operating frequency of the AC source and so that the clapper is magnetically attracted from its intermediate contact break position to its fully attracted position in significantly less than one-half the operating cycle of the AC source.
- 2. An AC relay according to claim 1 wherein the overtravel spring assembly and clapper assembly each have a natural frequency greater than the operating frequency of the AC source by a factor of at least 5.
- 3. An AC relay according to claim 1 wherein the clapper is magnetically attracted from its intermediate contact break position to its fully attracted position in at least approximately one-tenth of an operating cycle of the AC source.
- 4. An AC relay according to claim 1 wherein the overtravel spring has a width significantly less than the width of the return spring.
- 5. An AC relay according to claim 1 wherein the movable contact is provided by a hemispherical cup formed on the outer end of the overtravel spring.
- 6. In an AC relay operable by an AC source and having a ferromagnetic structure with a stator core with primary and shaded poles providing primary and secondary pole faces respectively and a pivotal clapper having a pole face at the outer end thereof in opposed face to face relationship with the primary and secondary pole faces, an elongated leaf spring fixed to the clapper providing a clapper overtravel spring extending outwardly from the outer end of the clapper and a clapper return spring at the other end of the clapper biasing the clapper from fully attracted to fully withdrawn pivotal positions thereof, a fixed relay contact, a movable relay contact on the outer end of the overtravel spring in engagement with the fixed contact as the clapper moves between its fully withdrawn position and a contact break position intermediate its fully withdrawn and fully attracted positions, the overtravel spring having a spring rate significantly greater than the spring rate of the return spring, an operating coil mounted on the stator core for producing an electromagnetic field through the ferromagnetic structure and across a working air gap between the opposed pole faces to magnetically attract the clapper in one pivotal direction thereof from its withdrawn to its attracted position against the net bias of the return and overtravel springs; the improvement wherein both the overtravel spring assembly, comprising the overtravel spring and movable contact, and the clapper assembly, comprising the clapper and the part of the leaf spring, including the overtravel spring assembly, which moves with the clapper, have a natural frequency significantly greater than twice the operating frequency of the AC source and wherein the clapper is magnetically attracted from its intermediate contact break position to its fully attracted position in significantly less than one-half the operating cycle of the AC source.
- 7. An AC relay according to claim 6 wherein the-working air gap at the fully withdrawn position of the clapper is greater than the working air gap differential between the fully withdrawn and intermediate contact break positions of the clapper by a factor between 3 and 4.
- 8. An AC relay according to claim 6 wherein the overtravel spring has a spring rate which is greater than the spring rate of the return spring by a factor of at least approximately 10.
- 9. An AC relay according to claim 6 wherein the overtravel spring assembly and clapper assembly each have a natural frequency greater than the operating frequency of the AC source by a factor of at least 5.
- 10. An AC relay according to claim 6 wherein the overtravel spring has a width substantially less than the width of the return spring.
- 11. A method of operating an AC relay comprising the steps of providing a normally closed AC relay having a ferromagnetic structure with a stator core with a stator pole face and a pivotal clapper having a clapper pole face at the outer end thereof in opposed face to face relationship with the stator pole face, a clapper return spring biasing the clapper from fully attracted to fully withdrawn pivotal positions thereof and a leaf-type clapper overtravel spring mounted on the clapper and extending radially outwardly therefrom, a fixed relay contact, a movable relay contact on the outer end of the overtravel spring in engagement with the fixed contact as the clapper moves between its fully withdrawn position and a contact break position intermediate its fully withdrawn and fully attracted positions, an operating coil mounted on the stator core for producing an electromagnetic field through the ferromagnetic structure and across a working air gap between the opposed pole faces to magnetically attract the clapper in one direction thereof from its fully withdrawn to its fully attracted position against the net bias of the return and overtravel springs; providing an AC source of predetermined frequency and voltage; applying the AC source to the operating coil with the applied voltage gradually increasing through a level required to pivot the clapper to its fully attracted position; and configuring the overtravel spring assembly, comprising the overtravel spring and movable contact, and the clapper assembly, comprising the clapper and overtravel spring assembly, to have a natural frequency significantly greater than twice the operating frequency of the AC source so that the clapper is magnetically attracted from its intermediate contact break position to its fully attracted position in significantly less than one-half the operating cycle of the AC source.
- 12. A method of operating an AC relay according to claim 11 wherein both the overtravel spring assembly and clapper assembly are configured to have a natural frequency greater than the operating frequency of the AC source by a factor of at least 5.
- 13. A method of operating an AC relay according to claim 11 wherein the overtravel spring has a spring rate which is greater than the spring rate of the return spring by a factor of at least approximately 10.
- 14. A method of operating an AC relay according to claim 11 wherein the overtravel spring extends radially outwardly from the outer end of the clapper.
- 15. A method of operating an AC relay according to claim 11 wherein the overtravel spring assembly is configured to have a natural frequency greater than the natural frequency of the clapper assembly.
- 16. In an AC relay operable by an AC source and having a ferromagnetic structure with a stator core with primary and shaded poles providing primary and secondary pole faces respectively and a pivotal clapper having a pole face at the outer end thereof in opposed face to face relationship with the primary and secondary pole faces, an elongated leaf spring fixed to the clapper and providing a clapper overtravel spring extending radially outwardly from the outer end of the clapper and a clapper return spring at the other end of the clapper biasing the clapper from fully attracted to fully withdrawn pivotal positions thereof, a fixed relay contact, a movable relay contact on the outer end of the overtravel spring in engagement with the fixed contact as the clapper moves between its fully withdrawn position and a contact break position intermediate its fully withdrawn and fully attracted positions, an operating coil mounted on the stator core for producing an electromagnetic field through the ferromagnetic structure and across a working air gap between the opposed pole faces to magnetically attract the clapper in one direction thereof from its fully withdrawn to its fully attracted position against the net bias of the return and overtravel springs, the return and overtravel springs providing an equal and opposite preload bias on the clapper in its withdrawn position, the improvement wherein said overtravel spring has a width significantly less than the width of the return spring to reduce the moment of inertia of both the overtravel spring assembly, comprising the overtravel spring and movable contact, and the clapper assembly, comprising the clapper and the part of the leaf spring, including the overtravel spring assembly, which moves with the clapper, and to reduce the radius of gyration of the clapper assembly.
RELATED APPLICATION
The present application is a continuation-in-part of my copending application Ser. No. 787,060, filed Nov. 4, 1991, now U.S. Pat. No. 5,155,458 and entitled "Normally Closed At Relay".
US Referenced Citations (7)
Continuation in Parts (1)
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Number |
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787060 |
Nov 1991 |
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