1. Technical Field
The present invention relates to electrical receptacles, and, more particularly, to a tamper-resistant electrical wiring device system.
2. Background of the Invention
Electrical power transmitted from a source to a point of use through an electrical distribution system within a home or a commercial building for equipment and operations is a beneficial service. Conventional electrical receptacles within such a distribution system include a pair of slots or apertures aligned with contacts, wherein blades of an electric plug may be inserted in the pair of apertures to directly engage contacts within the receptacle in an effort to facilitate a desired electrical connection. Since a large percentage of these receptacles are used in residential buildings and are located near the floor, it may be beneficial to provide added protection when a young child or infant may come into contact with a receptacle. For example, a small object inserted into either one of the apertures potentially may result in electrical shock.
Children may insert into receptacles a wide variety of objects made of conductive material including but not limited to metal articles. Most objects may be everyday household and easily accessible items such as, paper clips, pens wire tools, hairpins, safety pins, keys, forks, knives, screws, nails, tweezers and coins.
Both scenarios present circumstances to be avoided, where possible. As such, the issue of human safety and avoiding hazards has always been considered by the owner of the instant application in developing new products. Further, in an effort to eliminate the foregoing, the National Electrical Code (NEC) now requires tamper-proof electrical receptacles in pediatric environments. A National Electrical Manufacturer's Association (NEMA) task force has concluded that every residential building should be required to have tamper-resistant electrical receptacles and ground fault circuit interrupters (GFCI) designed within the electrical distribution system throughout the home.
The embodiments of the present disclosure advance the state of the art of tamper-resistant electrical receptacles by providing a platform and slider assembly for use in a tamper-resistant electrical receptacle which does not require that blades of a plug pass through apertures formed in the slider to establish electrical contact but rather that the slider moves to a position in which the slider does not block the set of apertures formed in the cover but moves laterally with respect to the set of apertures formed in the platform.
Thus, the embodiments of the present disclosure provide a simple, effective, efficient, low-cost electrical receptacle that is tamper-proof. This device must prevent electric shock when one inserts a conductive instrumentality other than the plug of an appliance, while still permitting full surface contact between the plug blades and contacts and frequent insertion and removal of blades.
In one embodiment of the present disclosure, a platform and slider assembly for use in a tamper resistant receptacle is provided. The tamper resistant receptacle includes a cover having first and second non-grounding apertures formed therein. The platform and slider assembly comprises a platform having a base surface, at least part of said base surface including an angled surface, the platform including first and second apertures adapted and configured for enabling passage of a set of blades in a plug to enable the set of blades to establish contact with corresponding contacts in the tamper resistant receptacle; a slider reciprocally disposed adjacent the platform, the slider defining at least one angled surface, wherein the at least one angled surface of the slider cooperates with the angled surface of the platform, the slider being movable between a first position in which the slider blocks the first and second apertures formed in the cover and a second position in which the slider does not block the first and second apertures formed in the cover; and a biasing member operatively associated with the slider for biasing the slider to the first position.
In use, when a set of blades of a plug is inserted simultaneously through the first and second apertures formed in the cover, the blades make contact with the at least one angled surface on the slider urging the at least one angled surface of the slider to move with respect to the angled surface of the platform such that the slider is urged from the first position to the second position.
Also, during movement to the second position, the slider moves in a direction wherein at least portions of the first and second defined by the platform are simultaneously cleared from obstruction by the slider to enable the set of blades to move through the first and second apertures formed in the cover and through the first and second apertures formed in the platform to establish contact with the corresponding contacts in the tamper resistant receptacle.
The first and second apertures formed in the platform define an axis extending from the first aperture to the second aperture; and the slider moves relative to the platform in a direction orthogonal to the axis extending from the first aperture to the second aperture.
According to another embodiment, a platform and slider assembly for use in a tamper resistant receptacle is provided. The tamper resistant receptacle includes a cover having first and second apertures and a ground opening. The platform and slider assembly includes a platform having a base surface, at least part of said base surface including an angled surface, the platform defining first and second apertures therein to enable passage therethrough of a set of blades in a plug to enable the set of blades to establish contact with corresponding contacts in the tamper resistant receptacle; a slider reciprocally disposed adjacent the platform, the slider defining at least one angled surface, wherein the at least one angled surface of the slider cooperates with the angled surface of the platform, the slider being movable between a first position in which the slider blocks the first and second apertures formed in the cover and a second position in which the slider does not block the first and second apertures formed in the cover; and a biasing member operatively associated with the slider for biasing the slider to the first position.
When a set of blades in a plug is inserted simultaneously through the first and second apertures formed in the cover, the blades make contact with the at least one angled surface on the slider urging the at least one angled surface of the slider to move with respect to the angled surface of the platform such that the slider is urged from the first position to the second position.
In use, in the second position, the slider has moved to a position enabling the set of blades to move directly through the first and second apertures of the cover directly through the first and second apertures defined in the platform to establish contact with the corresponding contacts in the tamper resistant receptacle.
The first and second apertures defined by the platform define an axis extending from the first aperture to the second aperture, and the slider moves relative to the platform in a direction orthogonal to the axis extending from the first aperture to the second aperture, wherein motion of the slider in a direction orthogonal to the axis causes the slider to move in a direction wherein at least portions of the first and second apertures defined by the platform are simultaneously cleared from obstruction by the slider to enable the set of blades to move through the first and second apertures formed in the cover and through the first and second apertures defined in the platform to establish contact with the corresponding contacts in the tamper resistant receptacle.
According to yet another embodiment of the present disclosure, a slider for use in a tamper resistant receptacle is provided. The receptacle includes a cover having first and second apertures, the cover defining a reference plane. The slider comprises a body portion of the slider defining at least a first surface and a second surface, opposite the first surface; and at least one angled surface provided in or on the second surface of the body portion. The at least one angled surface is configured to selectively engage a surface of the receptacle when the slider is moved in a direction orthogonal to the reference plane defined by the cover to urge the slider in a transverse direction relative to the cover from a first position in which the slider blocks the first and second apertures formed in the cover to a second position in which the slider does not block the first and second apertures formed in the cover.
For a more complete understanding of the invention according to the present disclosure and the advantages thereof, reference is now made to the following description taken in conjunction with the accompanying drawings in which like reference numbers indicate like features and wherein:
The embodiments of the present disclosure will now be described with reference to the aforementioned drawings, wherein like numerals refer to like parts. More particularly, the invention according to the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which various embodiments are shown but which may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention of the present disclosure to those skilled in the art.
Specifically, in accordance with one embodiment of the present disclosure, a platform and slider assembly is for use in a tamper resistant receptacle wherein the tamper resistant receptacle includes a cover having at least a set of apertures formed therein. The platform and slider assembly includes a platform defining a cavity having a base surface within the cavity. At least part of the base surface includes an angled surface. The platform defines at least two apertures therein to enable passage therethrough of a set of blades in a plug to enable the set of blades to establish contact with corresponding contacts in the tamper resistant assembly. A slider is reciprocally disposed within the cavity of the platform. The slider defines at least one angled surface. The angled surface of the slider cooperates with the inclined plane of the platform. The slider is movable between a first position in which the slider blocks the set of apertures formed in the cover and a second position in which the slider does not block the set of apertures formed in the cover. It is understood herein that the set of apertures constitute the live apertures and not the opening or aperture for the ground pin (however, in other embodiments, the set of apertures may also include the aperture for the ground pin without departing from the spirit of the invention).
Typically when a plug, such as a two blade plug, is inserted into a receptacle, both blades will be inserted in the receptacle at the same time. In the discussion below, this is referred to as simultaneous, or substantially simultaneous, insertion. This is meant to describe the normal operation of inserting a plug into a receptacle and is not meant to require that the blades must be inserted into the receptacle at the same exact instant in time. For example, one blade may be slightly longer than the other due to manufacturing tolerances or the plug may be inserted at a slight angle. If this occurs, one blade may be inserted into the receptacle slightly before or after the other blade without departing from the spirit of the invention.
When a set of blades in a plug is inserted substantially simultaneously through the set of apertures formed in the cover, the blades make contact with a surface on the slider urging the angled surface of the slider to cam against the angled surface of the platform such that the slider is urged from the first position to the second position. During movement to the second position, the slider moves in a direction wherein at least portions of the at least two apertures defined by the platform are simultaneously cleared from obstruction by the slider to enable the set of blades to move through the set of apertures of the cover and through the at least two apertures defined in the platform to establish contact with the corresponding contacts in the tamper resistant receptacle. Thereby, the electrical receptacle in conjunction with the platform and slider assembly effectively reduces the possibility of electric shock while reducing the probability of blockage of the receptacle for a proper insertion of a pair of blades into the apertures formed in the cover.
This application relates to U.S. Pat. No. 7,355,117 B2 by Castaldo et al., “TAMPER-RESISTANT ELECTRICAL WIRING DEVICE SYSTEM”, issued Apr. 8, 2008 and to U.S. Pat. No. 7,820,909 B2 by Castaldo et al., “TAMPER-RESISTANT ELECTRICAL WIRING DEVICE SYSTEM”, issued Oct. 26, 2010, the entire contents of both of which are incorporated herein by reference.
The receptacle 40 includes a base or base assembly 56 that is configured to receive the cover 20. The base or base assembly 56 includes a first set of contacts 48a that include contacts 45a and 46a that correspond to apertures 41a and 42a, respectively, and contacts 47a that correspond to ground aperture 43a in the cover 20. The base 56 also includes a second set of contacts 48b that include contacts 45b and 46b that correspond to apertures 41b and 42b, respectively, and contacts 47b that correspond to ground aperture 43b in the cover 20.
A connecting bolt or screw 50 is positioned to fasten or couple the cover 20 to the base or base assembly 56 to be received by an aperture 52 in the base 56. A corresponding aperture in the cover 20 for passage of the connecting bolt or screw 50 is not shown.
The first platform and slider assembly 100a is configured and disposed within the receptacle 40 such that the slider 110a is movable between a first position in which the slider 110a blocks corresponding set of apertures 44a formed in the cover 20 and a second position in which the slider 110a does not block the corresponding set of apertures 44a formed in the cover 20.
Similarly, the second platform and slider assembly 100b is configured and disposed within the receptacle 40 such that the slider 110b is movable between a first position in which the slider 110b blocks corresponding set of apertures 44b formed in the cover 20 and a second position in which the slider 110b does not block the corresponding set of apertures 44b formed in the cover 20.
Those skilled in the art will recognize that a power plug (not shown) typically includes a plurality of prongs or blades, of which generally at least two of which are live (phase/neutral) and, optionally, a third of which is a ground. The blades are inserted through the power apertures 41a and 42a or 41b and 42b to conduct electrical power from or to the receptacle 40 while the ground or neutral prong is inserted through ground or neutral apertures 43a or 43b to establish a ground connection for the device (not shown) which is being supplied electrical power from the receptacle 40.
The movement of the sliders 110a and 110b with respect to the respective platforms 130a and 130b is explained in more detail below.
In a like manner as illustrated in
Similarly,
Similarly,
Likewise,
As best seen in
The upper ramp 118a is inclined downwardly in the direction of the partially enclosed central aperture 116a to form a partial boundary 119a of the partially enclosed central aperture 116a. The upper ramp 118a is configured and disposed to divide the upper surface 112a into a first blade interface or contact surface 121a and a second blade interface or contact surface 122a, the first blade interface surface 121a and the second blade interface surface 122a each being adjacent to the upper ramp 118a and on opposite sides thereof.
The first blade interface surface 121a and the second blade interface surface 122a each define an incline or gradient that increases from the rear surface 124a″ of the peripheral edge 124a to frontal projection surfaces 1241a and 1242a of the peripheral edge 124a that form frontal boundaries for the first and second blade interface surfaces 121a and 122a, respectively.
Rear planar surface 129a extends outwardly from rear surface 124a″ of the peripheral edge 124a and is bounded by the apex 117a of upper inclined surface or ramp 118a. The apex 117a that originates at a position that also extends outwardly from rear surface 124a″ of the peripheral edge 124a forms a first line of intersection with the rear planar surface 129a. Slider 110a includes a lower central inclined surface or ramp 128a extending from a lower surface 114a that originates at a second line of intersection 127a with the rear planar surface 129a. Generally, the two lines of intersection 117a and 127a are parallel to one another.
In contrast to upper ramp 118a, which is inclined downwardly in the direction of the partially enclosed central aperture 116a, lower ramp 128a is inclined upwardly in the direction of the partially enclosed central aperture 116a to further define or extend the surface of the partial boundary 119a of the partially enclosed central aperture 116a.
In a similar manner as described with respect to upper ramp 118a, lower ramp 128a is configured and disposed to divide the lower surface 114a into a first slider and platform interface surface 131a and a second slider and platform interface surface 132a, the first slider and platform interface surface 131a and the second slider and platform interface surface 132a each being adjacent to the lower central inclined surface 128a and on opposite sides thereof.
Thus, in view of the inclination or gradient of first and second blade interface surfaces 121a and 122a compared to the first and second slider and platform interface surfaces 131a and 132a, such that the first and second slider and platform interface surfaces 131a and 132a are orthogonal to the rear surface 124a″ of the peripheral edge 124a while the first and second blade interface surfaces 121a and 122a form an obtuse angle “Θ” (see
As illustrated in
Prior to describing the details of the platform 130a,
The engagement of the first and second capture elements 141a and 142a of the slider 110a by the first and second capture element engaging members 41a′ and 42a′ of the cover 20, respectively, is described in more detail below with respect to
Returning to
The platform 130a has an upper surface 152a and a lower surface (not shown) that define a central inclined surface or ramp 158a that is also configured and disposed to divide the platform 130a into a first aperture portion 161a and a second aperture portion 162a, the first aperture portion 161a and the second aperture portion 162a each being adjacent to the central ramp 158a and on opposite sides thereof.
The first and second aperture portions 161a and 162a define first and second platform apertures 171a and 172a therein. The platform apertures 171a and 172a are each T-shaped apertures such that first and second apertures 171a and 172a include top aperture portions 171a′ and 172a′ and leg aperture portions 171a″ and 172a″, respectively, wherein the top aperture portions 171a′ and 172a′ are parallel to each other and parallel to the central ramp 158a that resides between the first and second aperture portions 161a and 162a. The first and second leg portions 171a″ and 172a″ are co-linear and orthogonal to the direction of the central ramp 158a.
The platform apertures 171a and 172a being T-shaped and disposed as described allow for the insertion of therethrough of a set of blades of a plug that is designed for insertion into respective NEMA 5-15, NEMA 5-20, NEMA 6-15 or NEMA 6-20 receptacles, such as those described above with respect to and illustrated in
Additionally, the apertures 171a and 172a enable passage therethrough of a set of blades in a plug to enable the set of blades to establish contact with corresponding contacts in the tamper resistant receptacle, e.g., contacts 45a and 46a and contacts 45b and 46b in
The central ramp 158a is inclined downwardly from a first end 158a′ that is positioned above the upper surface 152a of the platform 130a to a second end 158a″ that is positioned below the lower surface (not shown) of the platform 130a, the second end 158a″ intersecting and bisecting the front surface 154a′ of the peripheral edge 154a into two portions 1541a′ and 1542a′ on either side thereof.
Thus, a cavity 170a is defined by the platform 130a. Ramp 158a is defined within the cavity 170a with at least part of the base surface 158a including an angled surface.
That is, the platform 130a has an upper surface 152a that includes angled surface 158a at least partially defining cavity 170a in the upper surface 152a of platform 130a.
As seen in
Platform 130a also includes first and second slider stop members 173a and 174a that are configured and disposed on, and project above, the upper surface 152a.
Returning to
Turning again to
Similarly, in
In
Again, in
Turning now to
As seen in
The first ground aperture 43a and the second ground aperture 43b may define an axis Y-Y therebetween.
In use, simultaneous insertion of the set of blades 601 and 602 through the set of apertures 41b and 42b, as shown in
In particular, the at least one angled surface of the slider, e.g., lower ramp 128b of slider 110b, cooperates with the angled surface 158b of the platform 130b. As seen in
Thus, the slider 110b is movable between the first position in which the slider 110b blocks the set of apertures 41b and 42b formed in the cover 20 and the second position in which the slider 110b does not block the set of apertures 41b and 42b formed in the cover 20. The slider 110b is biased to the first position by biasing member 150a, which may include a leaf spring. As illustrated in
Stated differently, in conjunction with
As illustrated in
The slider 110a is disposed within the cavity 170a of the platform 130a wherein the slider 110a moves within the cavity 170a of the platform 130a in a direction orthogonal to the axis X1-X1, e.g., in the direction of arrow “B” towards second end 224 when the set of blades 601 and 602 are inserted simultaneously in the apertures 241 and 242 and in the direction of arrow “B′” towards first end 223 when the set of blades 601 and 602 are withdrawn simultaneously.
The motion of the slider 110a in the direction orthogonal to the axis X1-X1, in the direction of arrow “B”, causes the slider 110a to move such that at least portions of the apertures 241 and 242 are simultaneously cleared from obstruction by the slider 110a to enable the set of blades 601 and 602 to move through the set of apertures 241 and 242 of the cover 220 and through the two or more apertures 171a and 172a defined in the platform 130a, to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
As can be appreciated from
In a similar manner, the motion of the slider 110a in the direction orthogonal to the axis X1′-X1′ in the direction of arrow “B” causes the slider 110a to move such that at least portions of the apertures 241 and 242 are simultaneously cleared from obstruction by the slider 110a to enable the set of blades 601 and 602 to move through the set of apertures 241 and 242 of the cover 220 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
It can be seen regardless of whether axis X1-X1 or axis X1′-X1′ is chosen as the reference axis, the slider 110a moves to a second position such that at least portions of the apertures 241 and 242 are simultaneously cleared from obstruction by the slider 110a to enable the set of blades 601 and 602 to move through the set of apertures 241 and 242 of the cover 220 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
Thus, the slider 110a has moved to the second position that enables the set of blades 601 and 602 to move, past a side of slider 110a, through the set of apertures 241 and 242 of the cover 220 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b in
In a similar manner,
Again, the slider 110a is disposed within the cavity 170a of the platform 130a wherein the slider 110a moves within the cavity 170a of the platform 130a in a direction orthogonal to the axis X2-X2, e.g., in the direction of arrow “B” towards second end 224 when the set of blades 601 and 602 are inserted simultaneously in the apertures 241 and 242 and in the direction of arrow “W” towards first end 223 when the set of blades 601 and 602 are withdrawn simultaneously.
The motion of the slider 110a in the direction orthogonal to the axis X2-X2, in the direction of arrow “B”, again causes the slider 110a to move such that at least portions of the apertures 341 and 342 are simultaneously cleared from obstruction by the slider 110a to enable the set of blades 601 and 602 to move through the set of apertures 341 and 342 of the cover 320 and through the two or more apertures 171a and 172a defined in the platform 130a, to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
Similarly, as can be appreciated from
In a similar manner, the motion of the slider 110a in the direction orthogonal to the axis X2′-X2′ in the direction of arrow “B” causes the slider 110a to move such that at least portions of the apertures 341 and 342 are simultaneously cleared from obstruction by the slider 110a to enable the set of blades 601 and 602 to move through the set of apertures 341 and 342 of the cover 320 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
Again, it can be seen regardless of whether axis X2-X2 or axis X2′-X2′ is chosen as the reference axis, the slider 110a moves to a second position such that at least portions of the apertures 341 and 342 are simultaneously cleared from obstruction by the slider 110a to enable a set of blades (not shown) configured to move through the set of apertures 341 and 342 of the cover 320 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b, in
Again, the slider 110a has moved to the second position that enables the set of blades 601 and 602 to move, past a side of slider 110a, through the set of apertures 341 and 232 of the cover 320 and through the two or more apertures 171a and 172a defined in the platform 130a to establish contact with the corresponding contacts, e.g., contacts 45a and 46a and contacts 45b and 46b in
In a similar manner,
Corresponding axis X3′-X3′ may also be drawn laterally between first and second platform apertures 171a and 172a from first side 421 to second side 422 of the cover 420, such that the first and second platform apertures 171a and 172a define axis X3′-X3′ extending from one aperture 171a to the other aperture 172a.
The movement of the slider and platform assembly 110a within the receptacle 440 is substantially identical to the movement of the slider and platform assembly 110a within the receptacles 40, 240 and 340, as described above with respect to
Similarly,
Corresponding axis X4′-X4′ may also be drawn laterally between first and second platform apertures 171a and 172a from first side 521 to second side 522 of the cover 520, such that the first and second platform apertures 171a and 172a define axis X4′-X4′ extending from one aperture 171a to the other aperture 172a.
The movement of the slider and platform assembly 110a within the receptacle 540 is substantially identical to the movement of the slider and platform assembly 110a within the receptacles 40, 240, 340 and 440, as described above with respect to
As illustrated and described above with respect to
For each of the receptacles 240, 340, 440 and 540 described above with respect to
As described above with respect to
Referring to both
Those skilled in the art will recognize that, in a similar manner, the pair of capture elements 141a and 142a the slider 110a also block movement of the slider 110a from the first position to the second position when the probe or object 701 is inserted into one aperture of the set of apertures of the cover, e.g., when the probe or object 701 is inserted into aperture 341a or 342a.
Thus, either one of or both of the first and second capture elements 141a, 142a and 141b, 142b of the sliders 110a and 110b, respectively, are configured and disposed to block movement of the object 701 when the respective slider 110a or 110b is canted with respect to the cover 720, e.g., when the respective slider 110a or 110b tilts around the longitudinal axis Y-Y. The first capture element engaging members 341a′ and 341b′ are complementary to the respective first capture elements 141a and 141b while the second capture element engaging members 342a′ and 342b′ are complementary to the respective second capture elements 142a and 142b
Additionally, since the movable arms 153a or 153b of the respective biasing member 150a or 150b biases the respective slider 110a or 110b to the first position, upon withdrawal of the prove or object 701 from the receptacle in the direction of arrow “A”, the movable arms 153a or 153b retract the respective slider 110a or 110b in the direction of arrow “B′” from the canted position to the uncanted or untilted position.
Referring again to
It can also be appreciated that the body portion 111a of the slider 110a in
The receptacle 1540 includes a base or base assembly 1556 that is configured to receive the cover 1520. The base or base assembly 1556 includes a first set of contacts (not shown) that include contacts (not shown) that correspond to power apertures 541a and 542a, respectively, and contacts (not shown) that correspond to a ground aperture (not shown) in the cover 1520. The base 1556 also includes a second set of contacts (not shown) that include contacts (not shown) that correspond to apertures 541b and 542b, respectively, and contacts (not shown) that correspond to ground aperture 543b in the cover 1520.
A single object 1501 is used to probe a single aperture, e.g., power blade aperture 541a, in the set of apertures 544a in the cover 1520 and comes into contact with slider 110a.
An axis Z-Z is defined as being orthogonal to exterior surface 1521 formed on the cover 1520 of the receptacle 1540.
In a similar manner as described above in
Similarly, second platform and slider assembly 100b′ includes slider 110b, corresponding platform 130b and a corresponding biasing member 150b′ for biasing the slider 110b to transfer to an intermediate position blocking the platform apertures 171b and 172b in platform 130b as analogously described above with respect to
In a similar manner as described above with respect to biasing member 150a illustrated in
Insertion of the single object 1501 into the aperture 541a causes an unsymmetrical load on the slider causing the slider to rotate or yaw around the axis Z-Z such that the slider 110a transfers to an intermediate position blocking the platform apertures 171a and 172a in platform 130a as described above with respect to
All the features disclosed in this specification (including any accompanying claims, abstract and drawings) may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
The terms and expressions which have been employed in the foregoing specification are used therein as terms of description and not of limitation, and there is no intention in the use of such terms and expressions of excluding equivalents of the features shown and described or portions thereof, it being recognized that the scope of the invention of the present disclosure is defined and limited only by the claims which follow.
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