This invention relates to a cable connector such as is used to mount a cable onto a female connector associated with a device.
Cable connectors are joined to the end of cables so that the cable can engage with a connector on an electrical device. Normally a male connector is secured to the cable, with a female connector on the device. To mount the cable to the device, the male connector is screwed or pushed onto the female connector. With screw connectors, it is very important that the male connector is screwed with the correct torque to the female connector as otherwise the connection is not sufficiently secure to prevent electromagnetic signals leaking from the device or external signals entering the device and introducing noise into the electrical system. Even if the male connector is screwed into position correctly with no electromagnetic leakage occurring, over time a connector will slowly loosen due to the different thermal conductivity of materials used, vibrations, cold flow and the like. Thus over time the connector is likely to leak or receive electromagnetic radiation.
Cable connectors according to the present disclosure include a body formed with a central channel and joined to a connector ring for securing to a female connector, a seal positioned between adjoining faces of the body and the connector ring substantially perpendicular to a longitudinal axis of the body. The seal has a greater central diameter than the central channel. The connector ring is formed with an inner recess in which at least one electrically conductive resilient member is seated. A further electrically conductive resilient member surrounds an internal metal collar positioned within the central channel of the body.
In accordance with the first aspect of the present invention, there is provided a cable connector comprising a body formed with a central channel and joined to a connector ring for securing to a female connector, wherein a sealing means is positioned between adjoining faces of the body and connector, the faces of the body and the connector being substantially perpendicular to a longitudinal axis of the body. The use of the sealing means or gasket reduces electromagnetic leakage from and into the connector.
Preferably the connector ring has an internal thread, such that the connector is of a screw type.
The sealing means may be deformable to fill any space between the body and connector ring.
Preferably the sealing means acts to urge the connector ring away from the body whilst remaining in permanent contact with both the body and the connector ring.
Typically the body and connector ring are substantially cylindrical and thus the sealing means is preferably annular so as to completely surround a region where the body and connector ring adjoin. The sealing means may be a rubber o-ring or a metal gasket.
Desirably the annular sealing means has a greater internal diameter than the central channel of the body, such that the sealing means is external to the internal channel.
The connector may further comprise a resilient member surrounding an internal metal collar positioned within the central channel of the body. The resilient member may comprise an electrically conductive ring spring.
In accordance with a second aspect of the invention, there is provided a cable connector comprising a body joined to a connector ring for securing to a female connector, wherein the connector ring comprises at least one resilient member. As a female connector is screwed into the connector ring, the at least one resilient member urges against the female connector and when the female connector is fully inserted, the resilient member firmly grips the female connector such that leakage of electromagnetic signals is prevented. The resilient member also has the advantage of absorbing vibrations and so ensures the connector stays firmly connected for longer.
In accordance with a third aspect of the present invention, there is provided a cable connector comprising a body joined to a connector ring for securing to a female connector, wherein a sealing means is placed between the body and connector ring and the connector ring is formed with an inner recess means in which at least one resilient member is seated.
For all aspects, the resilient member is preferably an electrically conductive resilient material which is substantially annular in shape, such as a ring spring, gasket or equivalent such as resilient plastics material loaded with conductive particles, resilient metal materials or similar resilient materials that can be formed into an annulus or toroid.
For the second and third aspects, the recess means may be in the form of a circumferential groove with the resilient member having a co-operating annular shape so as to locate securely in the recess means.
Adjoining faces of body 12 and nut 14 are substantially perpendicular to the longitudinal central axis of body 12 and positioned between these faces is a seal or gasket 26 made of a resilient electrically insulating material such as rubber. The gasket is toroidal, for example a ring, and has a similar annular diameter, to the cross section or wall thickness of hollow body 12, such that the gasket does not extend into the internal channel 21. The cross section of material forming the o-ring 26 is typically around 0.5 mm. Due to its resilience, seal 26 urges the nut 14 against post plate 13′. The o-ring 26 applies an equal pressure to the nut 14 where the two adjoin and so the nut 14 is always pushed equally to the post plate 13′. Thus the nut 14 sits square to the post plate 13′ and the adjoining surfaces of the nut 14 and post plate 13′ are pushed together with no air gap between the adjoining surfaces. This has the effect of preventing or substantially reducing electromagnetic leakage at the back end of the male connector 10 and gives 90 dB screening up to 1 GHz.
In a third embodiment of the present invention as shown in
A fourth embodiment of the dimension is shown in
The connectors of the present invention are all able to meet Class A screening requirements even when the female connector has been substantially loosened with respect to the nut 14.
The improvements with regard to signal leakage can be demonstrated by comparing with a known prior art connector, see
As will be seen from
In contrast, the signal leakage of a connector in accordance with the second and third embodiment of the present invention, and as seen in
Number | Date | Country | Kind |
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1006063.0 | Apr 2010 | GB | national |
1012159.8 | Jul 2010 | GB | national |
1020788.4 | Dec 2010 | GB | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB2011/050681 | 4/6/2011 | WO | 00 | 10/25/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/128665 | 10/20/2011 | WO | A |
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Number | Date | Country | |
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20130040490 A1 | Feb 2013 | US |