Conductor terminals are described in U.S. Pat. Nos. 9,466,895 and 8,794,994, each of which is incorporated herein by reference in its entirety.
U.S. Pat. No. 9,466,895 describes a conductor terminal that comprises a housing, that is embodied from an insulating material, at least one resilient force clamping connector, and at least one actuating element that is received in a pivotable manner in the housing, the actuating element being designed so as to open in each case at least one allocated resilient force clamping connector. The actuating element comprises two lever arm sections that are spaced apart from one another, that protrude at least in part with a pivot bearing region into the housing, that are connected one to the other, and that are spaced apart with respect to the pivot bearing region by a transverse connecting piece to a lever arm. The at least one resilient force clamping connector is covered on the side of the housing on which the at least one actuating element is arranged by an outer boundary wall of the housing and extends from the outer boundary wall on both sides of lateral wall sections that are adjacent to a respective allocation resilient force clamping connector into the inner space of the housing.
U.S. Pat. No. 8,794,994 describes a connection terminal having at least one busbar piece and at least one clamping spring. The connection terminal has at least one spring-force clamping connection formed from a clamping spring and a portion of a busbar piece, an insulating-material housing including at least one conductor insertion opening which leads to a spring-force clamping connection and extends in a conductor insertion direction, and at least one pivotably mounted operating lever designed to interact with at least one clamping spring in order to open at least one spring-force clamping connection. The operating lever can be arranged with its rotation axis in the conductor insertion opening or in the path of the conductor insertion opening in the direction of the clamping point. The connection terminal provides a space-saving and compact construction, which is also improved in respect of the force effect of the operating lever.
In a first aspect of the present disclosure, a conductor connection clamp is disclosed. The clamp includes a bus bar and a clamping spring, the clamping spring including a main portion for clamping an electrical conductor to the bus bar, the main portion and bus bar defining a clamping spring connection, and a spring member adjacent to the main portion and rigidly coupled to the main portion. The clamp further includes a housing defining a conductor insertion opening that leads to the clamping spring connection, and an operating lever configured to apply force to the spring member in order to deflect the main portion to open the clamping spring connection.
In an embodiment of the first aspect, the conductor connection clamp includes a bearing arm configured to support the operating lever, the operating lever comprises a lever arm and a wedge portion, and actuation of the lever arm causes the wedge portion to wedge between the bearing arm and the spring member so as to apply force to the spring member.
In an embodiment of the first aspect, the operating lever is rotatably mounted and includes a pivot portion, the pivot portion adjacent to the wedge portion, wherein the bearing arm supports the pivot element.
In an embodiment of the first aspect, the main portion and spring member are formed from a monolithic body of material.
In an embodiment of the first aspect, the spring member is a first spring member, and the clamping spring further includes a second spring member that is rigidly coupled to the main portion.
In an embodiment of the first aspect, the first and second spring members are disposed on opposed sides of the main portion.
In an embodiment of the first aspect, the clamping spring further includes a base portion, wherein the spring member and main portion both extend along a conductor insertion direction from the base portion.
In an embodiment of the first aspect, the main portion extends further in the conductor insertion direction than does the spring member.
In an embodiment of the first aspect, a center axis of the conductor insertion opening is offset from a location of the clamping spring connection.
In an embodiment of the first aspect, the operating lever comprises an insulative wall configured to guide a conductor from the conductor insertion opening to the clamping spring connection.
In an embodiment of the first aspect, the operating lever is configured to interact with the clamping spring in order to apply force to the spring member at a force application point to actuate the clamping spring connection between an open state and a closed state, wherein the operating lever is rotatably coupled to the housing and is configured to rotate about a rotation axis, the conductor insertion opening leads to the clamping spring connection along a conductor insertion direction, and the force application point is, in the open state, on a first side of a plane that is parallel to the insertion direction and that includes the rotation axis, wherein the force application point is on a second side of the plane in the closed state.
In an embodiment of the first aspect, the operating lever is rotatably coupled to the housing and is configured to rotate about a rotation axis, wherein the operating lever is asymmetric across a midpoint of the rotation axis.
In a second aspect of the present disclosure, a conductor connection clamp is disclosed. The clamp includes a bus bar, a clamping spring, the clamping spring and bus bar defining a clamping spring connection, the clamping spring connection having a closed state and an open state, the clamping spring connection configured to retain a conductor at a clamping location in the closed state, and a housing defining a conductor insertion opening that leads to the clamping spring connection, the insertion opening defining a center axis extending along a conductor insertion direction. The center axis of the insertion opening is offset from the clamping spring location.
In an embodiment of the second aspect, the conductor insertion opening includes an asymmetric lead-in portion.
In an embodiment of the second aspect, the clamp further includes a rotatably-mounted operating lever configured to apply force to the clamping spring to actuate the clamping spring connection between the closed state and the open state, wherein the operating lever rotates about a rotation axis, wherein the lead-in portion includes at least one surface that is parallel to the rotation axis and an opposed surface that is asymmetric to the at least one parallel surface.
In an embodiment of the second aspect, the housing includes a front face plane, wherein the lead-in portion is at a non-perpendicular angle to the front face plane.
In an embodiment of the second aspect, an entry portion of the conductor insertion opening is at a non-perpendicular angle to the front face plane, wherein the entry portion and lead-in portion are at the same angle with respect to the front face plane.
In a third aspect of the present disclosure, a conductor connection clamp is provided. The clamp includes a bus bar, a clamping spring for clamping an electrical conductor to the bus bar, the clamping spring and bus bar defining a clamping spring connection having an open state and a closed state, a housing defining a conductor insertion opening that leads to the clamping spring connection, and an operating lever configured to interact with the clamping spring in order to actuate the clamping spring connection between the open state and the closed state, the operating lever including an insulative wall configured to guide a conductor from the conductor insertion opening to the clamping spring connection.
In an embodiment of the third aspect, the clamp further includes a bearing arm configured to support the operating lever, wherein the insulative wall is disposed between the bearing arm and a conductor clamping location where the clamping spring connection is configured to retain a conductor in the closed state.
In an embodiment of the third aspect, the insulative wall projects perpendicular to a conductor insertion direction in the closed state and parallel to the conductor insertion direction in the open state.
In an embodiment of the third aspect, the insulative wall rotates about a rotation axis that is perpendicular to the conductor insertion direction between the open state and the closed state.
In an embodiment of the third aspect, the operating lever comprises a pivot supported by the housing and configured to rotate about a rotation axis, wherein the insulative wall is disposed between the pivot and a conductor clamping location where the clamping spring connection is configured to retain a conductor in the closed state.
In an embodiment of the third aspect, the operating lever includes two insulative walls disposed on opposed sides of a conductor clamping location where the clamping spring connection is configured to retain a conductor in the closed state.
In a fourth aspect of the present disclosure, a conductor connection clamp is provided. The clamp includes a bus bar, a clamping spring for clamping an electrical conductor to the bus bar, the clamping spring and bus bar defining a clamping spring connection having an open state and a closed state, a housing defining a conductor insertion opening that leads to the clamping spring connection along a conductor insertion direction, and an operating lever configured to interact with the clamping spring in order to apply force to the clamping spring at a force application point to actuate the clamping spring connection between the open state and the closed state, wherein the operating lever is rotatably coupled to the housing and is configured to rotate about a rotation axis. The force application point is, in the open state, on a first side of a plane that is parallel to the insertion direction and that includes the rotation axis, wherein the force application point is on a second side of the plane in the closed state.
In an embodiment of the fourth aspect, the operating lever comprises a user-manipulable lever arm, the lever arm disposed on the first side of the plane.
In a fifth aspect of the present disclosure, a conductor connection clamp is provided. The clamp includes a bus bar, a clamping spring for clamping an electrical conductor to the bus bar, the clamping spring and bus bar defining a clamping spring connection having an open state and a closed state, a housing defining a conductor insertion opening that leads to the clamping spring connection along a conductor insertion direction, and an operating lever rotatably coupled to the housing and configured to rotate about a rotation axis, the lever configured to interact with the clamping spring in order to apply force to the clamping spring at a force application point to actuate the clamping spring connection between the open state and the closed state. The operating lever is asymmetric across a midpoint of the rotation axis.
In an embodiment of the fifth aspect, the conductor connection clamp includes a bearing arm configured to support the operating lever, the operating lever comprises a lever arm and a wedge portion, and actuation of the lever arm causes the wedge portion to wedge between the bearing arm and the clamping spring so as to apply force to the spring member.
In an embodiment of the fifth aspect, the operating lever is rotatably coupled to the housing and is configured to rotate about a rotation axis, wherein rotation of the operating lever causes the wedge portion to wedge between the bearing arm and the spring member so as to apply force to the spring member.
In an embodiment of the fifth aspect, the operating lever is rotatably coupled to the housing and is configured to rotate about a rotation axis, wherein the operating lever includes only one pivot by which the operating lever is coupled to housing, the pivot supported by the bearing arm.
For a better understanding of the subject conductor terminals, reference may be had to the following drawings.
Described herein are examples of improved conductor terminals.
In one described example, the conductor terminal comprises one or more asymmetric actuating elements that are designed to open individual spring clamps related to conductor ports. The actuating elements have one lever arm section and an “L” shaped cross-section along the length of the element. The portion of the actuating element opposite of the bearing surface has a surface which covers the entire width of the wire port. By this construction, the conductor terminal has the benefit of providing a narrower device as compared to a conductor terminal having an actuating element that uses two lever arm sections, the benefit of being simpler to assemble, the benefit of providing a relatively wider lever section allowing for an improved user experience owing to the need for the application of less pressure from a user's hand/fingers, etc.
In one described example, the conductor terminal comprises one or more actuating elements designed to open individual spring clamps related to conductor ports. The actuating elements have two lever arm sections designed to provide side walls for conductor wire entry. These sidewalls help to guide the electrical conductor into their fully seated position within the spring clamps. By this construction, the conductor terminal has the benefit of providing a conductor terminal that is relatively easier to use and manufacture, the benefit of reducing the amount of material required to construct the conductor terminal thereby further reducing manufacturing costs, etc.
In one described example, the conductor terminal comprises one or more actuating elements designed to open individual spring clamps related to conductor ports. The center axis of the spring clamp entry/opening is not shared with the center axis of the conductor entry port and these ports are planarly misaligned. By this construction, the conductor terminal has the benefit of creating a tortuous path which, in turn, improves the wire retention capabilities of the conductor terminal, etc.
In one described example, the conductor terminal comprises one or more actuating elements designed to open individual spring clamps related to conductor ports. The center axis of the spring clamp entry/opening is not shared with the center axis of the conductor entry port and these ports are angularly misaligned. By this construction, the conductor terminal has the benefit of creating a tortuous path which, in turn, improves the wire retention capabilities of the conductor terminal, etc.
In one described example, the conductor terminal comprises one or more actuating elements designed to open individual spring clamps related to conductor ports. The position of the bearing surface moves relative to the lever arm and the pivot point as the actuating element rotates to open or close the spring clamp. By this construction, the conductor terminal has the benefit of providing a conductor terminal that is relatively easier to use and manufacture.
In one described example, the conductor terminal comprises one or more actuating elements designed to open individual spring clamps related to conductor ports. The rotation axis of the actuating elements is positioned within the body of the electrical connector but outside of the region created by a transverse extension of the conductor insertion opening. By this construction, the conductor terminal has the benefit of providing a conductor terminal that is relatively easier to use and manufacture.
A better understanding of these and other benefits as well as the overall features, properties and relationships of the subject conductor terminals will be obtained from the following description and accompanying drawings which set forth illustrative examples which are indicative of the various ways in which the principles hereinafter described may be employed.
Referring to the figures, wherein like numerals refer to the same or similar features in the various views, the following describes various conductor terminals 1 each in the form of a lever-actuated socket clamp having a housing 5 that is embodied from an insulating material and one or more actuating elements 3 also embodied from an insulating material. When plural actuating elements 3 are provided, the actuating elements may be arranged adjacent one to the other as illustrated in the figures. One or more conductor insertion openings 4 are arranged at the front end of the housing, also adjacent one to the other as appropriate, for receiving an electrical conductor. Each conductor insertion opening 4 provides a passage to a resilient force clamping spring 2. The one or more actuating elements 3 cooperate with the one or more clamping springs 2 to provide a means for a user to manipulate to clamp an electrical conductor, which has been inserted into the conductor terminal 1 via the insertion opening 4, within the conductor terminal 1, between a clamping spring 2 and a bus bar 6. More particularly, by virtue of pivoting the actuating element 3 from a closed state into an open state (for example as illustrated in
In the examples illustrated in
In the example illustrated in
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The ramping surface 4a may be asymmetric from its opposed surface 4b across the axis A. For example, as illustrated in the
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In the embodiment of
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Each conductor insertion opening may define a center axis C, which may be offset from the clamping spring connection location 14. As a result, when a conductor is inserted and the conductor is clamped between the clamping spring 2 and the bus bar 6, the conductor is bent into a tortuous shape, which aids with retention of the conductor in the clamp 1.
As illustrated in
Referring to
Each operating lever 3 may include two pivot portions 10 and two wedge portions 9, in some embodiments, with each pivot portion 10 supported by a respective bearing arm 8 and each wedge portion 9 arranged to interact with a respective spring member 12. Accordingly, each clamping spring connection may be associated with two spring members 12 and two wedge portions 9 for opening and closing the connection, in some embodiments. Each operating lever 3 may be configured to rotate about a rotation axis R. The rotation axis R may be perpendicular to an insertion direction I of a conductor through the conductor insertion opening 4.
As shown in
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Each spring member 12 may be generally S-shaped and may include a first curved portion 23 that extends the spring member 12 away the base portion 22 of the clamping spring 2 at a different angle than the main portion 19 and a second curved portion 24 that provides a surface with which operating lever interacts. Each spring member 12 may be separated from the main portion 19 along the direction of the rotation axis R by a slot 25. Further, each clamping spring 2 may be separated from each adjacent clamping spring 2 along the direction of the rotation axis R by a slot 26, such that adjacent clamping springs 2 are not rigidly coupled together and are separately deflectable.
The method 100 may further include, at block 104, assembling a clamping spring and a bus bar into a clamping spring connection assembly. The clamping spring connection assembly may have one or more clamping spring connections (e.g., three clamping spring connections as shown in the examples herein).
The method 100 may further include, at block 106, inserting the clamping spring connection assembly into the first housing portion. At block 106, each clamping spring connection may be placed into a respective channel defined in the first housing portion.
The method 100 may further include, at block 108, joining a second, upper housing portion to the first housing portion so as to contain clamping spring connection assembly in a final housing. The housing may define a conductor insertion direction. The second housing portion may include one or more bearing arms, in some embodiments. The second housing portion may include what will become the sidewalls (including front face) of the completed housing and top of the completed housing, in some embodiments. The second housing portion may define one or more apertures in its upper surface through which operating levers may be inserted and through which the operating levers may project in the completed connector. In some embodiments, block 108 may include tack welding the first housing portion to the second housing portion or otherwise rigidly coupling the first and second housing portions to one another.
The method 100 may further include, at block 110, inserting one or more operating levers into the final housing from a direction perpendicular to the conductor insertion direction. The operating levers may be inserted such that they are supported by the bearing arms of the housing. Block 110, and specifically inserting the operating levers after the housing is completed and along a direction perpendicular to the conductor insertion direction, may provide advantages over known connector assembly methods, in which the operating levers are generally installed along the conductor insertion direction before the housing is complete. The method 100 provides for a simpler assembly process than known methods, because a housing piece does not need to be fitted over the operating levers and operating levers do not need to be inserted through other components along a conductor insertion direction. Furthermore, the method 100 permits replacement of a damaged operating lever.
While various concepts have been described in detail, it will be appreciated by those skilled in the art that various modifications and alternatives to those concepts could be developed in light of the overall teachings of the disclosure. It will be additionally appreciated that the particular concepts disclosed are meant to be illustrative only and not limiting as to the scope of the invention which is to be given the full breadth of the appended claims and any equivalents thereof.
This application claims priority to U.S. provisional application No. 63/040,815, filed May 19, 2020, which application is hereby incorporated by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2021/038221 | 6/21/2021 | WO |
Number | Date | Country | |
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63040815 | Jun 2020 | US |