The present invention relates to surface-mountable enclosures, and to parts and accessories for use with such enclosures.
It is becoming increasingly common for telecommunications networks to include a fibre optic component. Large scale fibre optic networks employing Fibre to the Node (FTTN) or Fibre to the Home (FTTH) architectures, for example, are either already deployed or in the planning stage in a number of countries.
If an office building or apartment block, for example, is to be connected to a fibre optic network, it is usual for there to be a fibre distribution hub to which individual offices or apartments are connected. This requires fibre optic cable to be run from the hub to an access point, such as a surface-mounted enclosure, within an office or apartment, to enable subscribers to connect.
A problem faced by cabling installers is that they do not necessarily know in advance the length of fibre which will be needed to interconnect a subscriber with the hub. A further problem is that the most suitable placement of an access point may be difficult to decide in advance.
There is a need, therefore, for a surface-mountable enclosure which provides more flexibility for the cabling installer.
In accordance with one aspect of the invention, there is provided a surface-mountable enclosure for use with a fibre optic cable, the cable being terminated at one end by a subscriber end connector and at the other end by a carrier end connector, the surface-mountable enclosure including:
a base;
a spool member which is mountable to the base for rotation relative thereto; and
a lid which is fastenable to the base to enclose the spool member;
wherein the spool member includes a drum portion with an annular sidewall for spooling the cable.
Provision of a spool member within the enclosure allows pre-terminated cables of fixed length, wound on the spool, to be provided to the installer, so that cable can simply be unspooled to the needed extent once the installer is on-site. This simplifies preparation for installing a large number of access points, since the installer need simply obtain the appropriate number of pre-terminated and pre-spooled cables and enclosures before commencing work.
Preferably, the base includes a plurality of cable outlets, the carrier end connector being extractable to unspool a desired length of cable from the drum portion via one of the cable outlets.
Greater flexibility is afforded the installer by the provision of a plurality of cable outlets. In a particularly preferred embodiment, the plurality of cable outlets faces in at least two different directions for unspooling the desired length of cable in one of the at least two different directions. In this embodiment, fibre can be run in at least two different directions, for example in two different directions along a wall, or in one direction along a wall and a second direction into a wall cavity behind the enclosure. This provides greater freedom to choose the placement of the enclosure on a wall.
In one embodiment, the plurality of cable outlets includes a plurality of wall-side cable outlets facing in at least two different directions to allow the cable to be directed in one of the at least two different directions. Preferably, the wall-side cable outlets face in four different directions.
The plurality of cable outlets may also include a plurality of wall cavity cable outlets to allow the cable to be directed behind the enclosure and into a wall cavity. The wall cavity cable outlets are preferably in close proximity to the wall-side cable outlets.
In one embodiment, the enclosure further includes an arcuate bearing surface associated with each cable outlet to prevent the cable exceeding a maximum bend radius. Integrating bearing surfaces with the enclosure in this way reduces the risk of damaging the fibre during the installation process as fibre is unspooled.
The sidewall of the drum portion may be configured to engage with detent means on an internal surface of the lid, such that when the lid is fastened to the base, the spool member is restrained against rotation. Once cable has been unspooled to the desired extent, the installer then needs only to attach the lid to the base to simultaneously complete assembly of the enclosure and prevent further unspooling, rather than having to separately retain the spool member in position.
The sidewall may have a plurality of grooves formed in its upper surface, and the detent means may include projections shaped to engage with one or more of the grooves. Preferably, the grooves extend substantially completely around the circumference of the upper surface, so that the detent means will engage with one or more grooves regardless of the precise angular position of the spool when the lid is attached.
In one embodiment, the drum portion includes a cable management channel around an internal surface of the sidewall.
The drum portion may have an internal space for accommodating the subscriber end connector and the carrier end connector. The internal space may include a pair of clips for retaining the two connectors. This may be particularly advantageous from a packaging point of view since the cable, including the connectors, may then be completely enclosed between the base and the lid.
In a further embodiment, the spool member may include means for mounting an extension spool to form a combined spool, such that an increased length of cable is accommodated by the combined spool. In situations where the hub is particularly distant from the subscriber and an increased length of cable is required, the cable can first be completely paid out from the extension spool, and then, following release of the extension spool from the spool member, further cable can be paid out from the spool member.
The means for mounting the extension spool may include at least one slot to receive one or more corresponding guides on the extension spool. The means for mounting the extension spool may also, or instead, include further slots or grooves to engage with one or more tabs on the extension spool.
In a second aspect, the invention provides a spool member for a surface-mountable enclosure for use with a fibre optic cable, the cable being terminated at one end by a subscriber end connector and at the other end by a carrier end connector, the surface-mountable enclosure including a base and a lid, the spool member including: a drum portion with an annular sidewall for spooling the cable.
Preferably, the sidewall of the drum portion is configured to engage with detent means on an internal surface of the lid, such that when the lid is fastened to the base to enclose the spool member, the spool member is restrained against rotation.
In a further aspect, the invention provides a kit of parts for a surface-mountable enclosure for use with a fibre optic cable, the cable being terminated at one end by a subscriber end connector and at the other end by a carrier end connector, the kit including:
a base;
a spool member which is mountable to the base for rotation relative thereto; and
a lid which is fastenable to the base to enclose the spool member;
wherein the spool member includes a drum portion with an annular sidewall for spooling the cable.
Preferably, the base includes a plurality of cable outlets, the carrier end connector being extractable to unspool a desired length of cable from the drum portion via one of the cable outlets. The cable outlets may face in at least two different directions for unspooling the desired length of cable in one of the directions.
In a yet further aspect of the present invention, there is provided a base for a surface-mountable enclosure for use with a fibre optic cable, the cable being terminated at one end by a subscriber end connector and at the other end by a carrier end connector, the surface-mountable enclosure including: a spool member including a drum portion with an annular sidewall for spooling the cable, and a lid which is fastenable to the base to enclose the spool member between the lid and the base, the base including:
a mounting point for the spool member to retain the spool member and allow it to rotate relative to the base to unspool cable from the drum portion.
Preferably, the base further includes a plurality of cable outlets, the carrier end connector being extractable to unspool a desired length of cable from the drum portion via one of the cable outlets. The plurality of cable outlets may face in at least two different directions for unspooling the desired length of cable in one of the directions.
Arcuate bearing surfaces may be associated with each of the cable outlets. The arcuate bearing surfaces may be formed integrally with the base.
In yet another aspect, the invention provides an extension spool for a surface-mountable enclosure for use with a fibre optic cable, the cable being terminated at one end by a subscriber end connector and at the other end by a carrier end connector, the surface-mountable enclosure including: a base; a spool member which is mountable to the base for rotation relative thereto; and a lid which is fastenable to the base to enclose the spool member; the spool member including a drum portion with an annular sidewall for spooling the cable; the extension spool including:
The means for mounting the extension spool may include at least one guide to fit with a corresponding slot in the spool member. In one embodiment, the guide forms an interference fit with the slot.
The means for mounting the extension spool may include at least one tab to engage with a slot in the spool member.
The extension spool may include at least one cable management guide on its upper surface.
Embodiments of the present invention are hereafter described, by way of non-limiting example only, with reference to the accompanying drawings in which:
Referring initially to
The enclosure 100 includes a base 110, a spool member 130, and a lid 150. When the enclosure is assembled, as shown in
Referring now to
The spool member 130 includes a collar 137 which has an internal diameter which is sized such that the spool member 130 can be pushed onto flanges 114 of shaft 112 on the base 110, whereby the collar 137 forms a cantilever snap fit with shaft 112. Once the collar 137 is in place, flanges 114 bear against its upper surface 138 to retain the spool member 130 on the base 110 (
Conveniently, as shown best in
As best depicted in
Each of the wall-side cable outlets 118 includes a pair of arms 118a and a grooved lower section 118b, the surface of which is curved such that a fibre-optic cable passing over lower section 118b will not exceed its maximum bend radius.
The process of mounting an enclosure 100 to a wall and installing a fibre-optic connection will now be described, with initial reference to
Once the most suitable mount point has been chosen (which may depend, for example, on proximity to the network device which is to be connected to the fibre-optic enclosure and/or aesthetic considerations), the installer first decides whether the cable is to be run along the wall, or behind the wall. If the cable is to be run behind the wall then a cavity should be created in the wall and the base 110 mounted over the cavity. The base 110 and spool 130 may be fastened to the wall by any suitable means, preferably by screws which pass through apertures 126, 127 in the base.
If the connection to the hub is to be performed by running cable along a wall, the installer chooses one of the four directions 119N, 119S, 119W, 119E (
If the connection to the hub is to be performed by running cable behind the wall, the installer chooses one of the three wall cavity cable outlets 117. The carrier-end connector 204 is then unclipped from retaining clip 144 and uncoiled from cable management channel 135. Carrier-end connector 204 may be passed through sidewall aperture 116 then through wall cavity outlet 117 via its associated lower arcuate bearing surface 121, which in similar fashion to upper arcuate bearing surface 120, is configured to prevent the cable 200 exceeding its maximum bend radius. Alternatively, the connector 204 may be passed over the upper arcuate bearing surface 120 associated with the wall cavity outlet 117 and the carrier-end connector 204 then passed through wall cavity outlet 117 and into the wall cavity in the direction depicted by reference numeral 119R. Once this is done, the carrier-end connector 204 can be pulled to unspool further cable 200 behind the wall, with the cable passing over either upper arcuate bearing surface 120 or lower arcuate bearing surface 121 such that the maximum bend radius of the cable is not exceeded while the cable is being unspooled.
As shown in
As an alternative to the base configuration shown in
To provide the subscriber-end connection, an adapter 210 of known type and suited to receive the subscriber-end connector 202 is inserted into adapter housing 124 on the base 110, subscriber-end connector 202 is unclipped from retaining clip 142 and passed through one of the apertures 146 in the drum 131, and then inserted into adapter 210. Cable at the subscriber end is passed along channel 125 adjacent the sidewall 128 of the base prior to securing the subscriber-end connector 202 in the adapter 210.
Once the desired length of cable 200 (i.e., sufficient to reach the hub) has been unspooled, and the carrier-end connector and subscriber-end connector are both in place, installation is completed by affixing the lid 150 to the base 110.
As shown in
The sidewall 132 is configured to engage with the detent means 156 via a plurality of grooves 147 (
The lid 150 includes a subscriber access aperture 154 and a plurality of breakout or tear-out sections 152. When fastening the lid 150 to the base 110, the subscriber access aperture 154 is positioned over the adapter 210 (which holds subscriber-end connector 202). The breakout sections 152 correspond to the positions of wall-side cable outlets 118, so that depending on which outlet 118 has been chosen by the installer, the appropriate breakout section 152 should be removed (prior to affixing the lid) in order to leave space between the lid 150 and the base 110 for cable to exit the enclosure 100. If a wall cavity outlet 117 is used, then of course it will not be necessary to remove a breakout section 152.
Turning now to
The use of an extension spool 170 permits a greater length of cable to be spooled. The extension spool 170 may be made as large as desired in order to accommodate the desired length of cable. When the cable is spooled on the combined spool member 130 and extension spool 170 (between lower and upper wings 222, 221 and between upper wings 221 and the lip of upper portion 175), the carrier end of the cable may be threaded through one of the four slots 181 in the upper portion of the extension spool 170, and then passed around a series of cable slack management guides 182. Once this is done, the carrier-end connector 204 can be retained by a connector clip 184 on the extension spool 170.
When installing cable, the carrier-end connector 204 is removed from connector clip 184, and cable paid out from the extension spool 170 until no further cable remains on the extension spool 170. The extension spool 170 is then unclipped from the spool member 130, and further cable may then be paid out from the spool member 130 as previously described.
For packaging purposes, it may be desirable to provide means for attaching the lid 150 to the extension spool 170, as shown in
Many modifications will be apparent to those skilled in the art without departing from the scope of the present invention.
Throughout this specification, unless the context requires otherwise, the word “comprise”, and variations such as “comprises” and “comprising”, will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps.
The reference to any prior art in this specification is not, and should not be taken as, an acknowledgment or any form of suggestion that the prior art forms part of the common general knowledge in Australia.
Number | Date | Country | Kind |
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2011205016 | Jul 2011 | AU | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/064676 | 7/26/2012 | WO | 00 | 1/27/2014 |