The present disclosure relates to a retainer to maintain connection of one or several power cords with one or more electronic devices.
Power cords are used for a number of different electronic devices to connect the electronic devices to an electrical power source (e.g., a wall outlet, a power strip or some other suitable power source). Typically, a power cord is removably connected to the housing of an electronic device (e.g., at a rear surface of the device), where the power cord includes a male or female frictional engagement fitting connection at one end that mechanically and electrically couples or connects the power cord to the electronic device and another male connector (e.g., a three prong connector) that mechanically and electrically connects the power cord to the power supply outlet.
Such removable power cords are useful in that they can be easily separated from an electronic device for a number of reasons when the device is not being used (e.g., to provide easier transport of the electronic device, to facilitate interchangeable or universal use of the power cord with two or more electronic devices, etc.). However, this removable feature can also result in an undesirable or unintentional disengagement of the power cord from the electronic device during use (e.g., caused by an individual accidentally snagging the power cord with an arm or foot or by some other moving object). This can result in a temporary loss of electrical power for the electronic device.
A device is provided that comprises an elongated strap, a latch structure connected to the strap and configured to receive and secure a portion of the strap within the latch structure when an end of the strap is inserted through an opening of the latch, and a clamping structure secured to the strap. The clamping structure comprises a flexible ring member including two free ends that are separable from each other to define a gap between the two free ends and are further configured to be drawn toward each other such that one free end overlaps the other free end, and a locking mechanism that is operable by a user to selectively compress the ring member so as to secure a portion of at least one power cord within the ring member.
In addition, a method is provided that involves extending an end of a strap of a cord retainer device through a loop structure disposed on a housing wall of an electronic device. After extending the first end of the strap through the loop structure, the first end is looped back and the first end is extended through an opening in a latch structure secured to the strap. A portion of the strap that extends through the latch structure is secured by the latch structure, a mating connector of a power cord is connected with a corresponding mating connector disposed on the housing of the electronic device, and a portion of the power cord is secured within a clamping structure of the cord retainer, where the clamping structure is secured to the strap, such that the mating connector of the power cord is maintained within and resistant to removal from the mating connector of the electronic device.
Referring to
The latch 10 of the strap 4 includes a base 12 and a latching member 14 that is separated from the base 12 so as to facilitate insertion of a portion of the strap 4, including its free end 6, through an opening defined between latching member 14 and base 12 during assembly of the retainer 2 with an electronic device. In addition, the latching member 14 is pivotally secured to the base 12 to facilitate a frictional securing or locking engagement with the strap 4 at the location at which a strap portion extends through the latch opening when the latching member 14 is pressed toward the base 12, thus preventing movement of the secured strap portion from this locking engagement until the latching member 14 is moved away from the base 12.
The retaining clip 16 includes a base 17 and one or more bridge members 18 that are separated from the base to define an opening between each bridge member 18 and the base 17. During use, the free end 6 of the strap 4 is inserted through these openings of the retaining clip 16 so as to maintain the free end 6 against the strap 4 after assembly and engagement with a power cord.
The cord clamp 20 includes an outer annular or ring member 22 having a configuration where the ring is open and has two closely spaced ends facing toward each other and separated by a slight gap. The ring member 22 has a sufficient flexibility to facilitate compression of the ring member 22, by moving one free end of the ring member 22 into an overlapping relationship with the other free end of the ring member 22, which reduces the initial diameter/size dimension of the ring member 22 in an uncompressed or relaxed state (where the two ring member facing ends do not overlap or only slightly overlap) to a smaller diameter dimension (where there is a portion of overlap between the two ring member facing ends that is greater than any overlap of the facing ends in the uncompressed or relaxed state). The ring member 22 is preferably constructed of a flexible material that allows compression of the ring member 22 by overlapping of its free ends and also flexure back to its original, relaxed state when no compression forces are applied to the ring member 22. In addition, the free ends of the ring member 22 can be flexed apart to separate the free ends a selected distance (e.g., to facilitate installation of the ring member 22 around a power cord.
First and second locking members 24, 26 are connected at outer surface portions of the ring member 22, where each locking member 24, 26 extends at a slight distance from the outer surface of the ring member 22 and is curved so as to extend around a portion of the circumference of the ring member 22. The locking members 24, 26 extend toward each other such that a free end of the first locking member 24 overlaps a free end of the second locking member 26 at a location generally corresponding with the overlap of the ring member facing ends.
In addition, the first locking member includes a plurality of teeth 28 disposed along a surface at its free end that faces the second locking member 26, while the second locking member 26 also includes a plurality of teeth 29 disposed along a surface at its free end that faces the first locking member 24. The teeth 28, 29 of both locking members 24, 26 are configured to engage with each other to provide a ratchet type locking engagement between the two locking members as the free end of the first locking member 24 is moved from an initial overlapped position in relation to the free end of the second locking member 26 to further overlapped positions in which a greater dimension of the first locking member 24 overlaps the second locking member 26. The movement of the first locking member 24 into different overlapped positions in relation to the second locking member 26 facilitates overlapping of the ring member free ends and thus a corresponding change in the diameter of the ring member 22, where the different overlapped positions of the locking member free ends are maintained due to the locking engagement of the corresponding teeth 28 for the first and second locking members 24, 26.
Optionally, the second locking member 26 also includes a plurality of teeth 30 disposed along a surface of its free end that faces the ring member 22, while a corresponding portion of the ring member 22 that underlies the first locking member 24 includes a plurality of teeth 31 disposed on a surface of the ring member 22 that faces outward toward each of the first and second locking members 24, 26. The plurality of teeth 31 extend to one of the free ends of the ring member 22 that overlaps the other free end when the ring member 22 is compressed, and the teeth 31 are configured to engage with the teeth 30 of the second locking member 26 when the ring member 22 is compressed to overlap the facing open ends of the ring member 22 so as to provide an additional ratchet type locking arrangement between the compressed ring member 22 and the second locking member 26.
While the locking members 24, 26 are shown in the example embodiments of the figures, it is noted that any suitable locking mechanism can be utilized to compress the ring member 22 to achieve clamping of one or more power cords extending through the cord clamp structure.
The cord clamp 20 further includes an inner ring member 34 that provides for selective reduction in the clamping space as defined by the inner diameter of the outer ring member 22. The inner ring member 34 can optionally be removably secured to the outer ring member 22, as shown in
The inner ring member 34 is similar in configuration to the outer ring member 22 in that the inner ring member 34 is open and has two closely spaced ends facing toward each other and separated by a slight gap, where the inner ring member 34 has a sufficient flexibility to facilitate compression of the inner ring member 34, by moving one free end of the inner ring member 34 into an overlapping relationship with the other free end of the inner ring member 34, so as to reduce the diameter/size dimension of the inner ring member 34. The inner ring member 34 is suitably dimensioned so as to fit concentrically within the outer ring member 22 when the outer ring member 22 is in its initial or uncompressed state. The inner ring member 34 is also preferably constructed of a flexible material that allows compression of the ring member 34 by overlapping of its free ends and also flexure back to its original, relaxed state (e.g., with a slight gap between the free ends) when no compression forces are applied to the ring member 34.
The inner ring member 34 also includes a plurality of flanges 36 located at circumferentially spaced locations along and extending outward from edge portions of the inner ring member 34. The flanges 36 are configured to flex slightly, as necessary, to permit the inner ring member 34 to be inserted within the outer ring member 22 such that the inner ring member 34 is concentrically located with the outer ring member 22. Alternatively, the inner ring member 34 may be sufficiently smaller than the outer ring member 22 to facilitate easy installation of the inner ring member 34 concentrically within the outer ring member 22 (as shown in
Operation of the power cord retainer is now described with reference to
The mating connectors of the power cord 40 and the electronic device 50 can be of any suitable types. In an example embodiment, the mating connector 52 of the electronic device 50 is a male connector disposed on a rear surface 54 of the housing of the device 50, where the male connector 50 includes three prongs slightly recessed from the rear surface 54. In this example, the mating connector 42 of the power cord 40 includes three female mating slots configured to receive the prongs of the electronic device mating connector 52 when the power cord mating connector 42 is inserted into the recess of the rear surface 54. Another mating connector (not shown) is also disposed at the opposing end of the power cord 40, where this mating connector connects with an electrical power source in any suitable manner (e.g., a three prong male mating connector for the power cord 40 that connects with a corresponding female three hole wall outlet, such as a standard 120 volt grounded outlet).
The power cord retainer 2 is initially aligned with the power cord 40 such that a portion of the power cord 40 extends through the ring member 22 of the cord clamp 20. For example, the two facing ends of the ring member 22 and also the first and second locking members 24, 26 can be separated from each other to form a gap that permits insertion of the portion of the power cord 40 through the gap so as to be disposed within the opening or clamping space as shown in
A rigid loop structure 56 is disposed on the rear surface 54 at a location proximate the mating connector 52 so as to define a gap between the loop structure 56 and the rear surface 54. The loop structure 56 can be constructed, e.g., from metal or plastic or any other suitable material. The loop structure 56 can be an integral part of the rear surface 54 of the electronic device (e.g., formed as part of the rear surface 54). Alternatively, the loop structure 56 can be affixed to the rear surface 54 in any suitable manner (e.g., via an adhesive, via welding or any other sort of securing structure). The free end 6 of the power cord retainer strap 4 is inserted through the gap of the loop structure 56, as shown in
The latching member 14 of the latch 10 can be engaged with the strap 4 at any time (by pressing the latching member 14 toward the base 12) after the free end 6 of the strap 4 has been extended through the latch 10 (e.g., in the configuration as shown in
A second anchor point for the power cord is provided by clamping a portion of the power cord with the cord clamp 20 of the retainer 2. Referring to
The installer 60 presses the first and second locking members 24, 26 together (i.e., in the directions shown by the arrows in
The further pressing by the installer 60 increases the overlap of the second locking member 26 by the first locking member 24, and corresponding overlapping of the free ends of each of the inner ring member 34 and the outer ring member 22, to eventually achieve a suitable reduction in size/diameter of each ring member 22, 34 and a resultant frictional engagement between the inner ring member 34 and a portion of the power cord 40 that extends through the cord clamp 20. The ratcheting/locking action of the engaging teeth 28, 29 between the first and second locking members 24, 26 and also the engaging teeth 30, 31 between the second locking member 26 and the outer ring member 22 facilitates a locking of each ring member 22, 34 into a gradual progression of compressed configurations in which the size/diameter of each ring member 22, 34 becomes progressively reduced. This allows for the cord clamp 20 to achieve locked configurations at a number of different compressed diameter/size dimensions in order to effectively engage with one or more power cords having different cross-sectional or diameter dimensions.
After achieving a tight frictional engagement between the inner and outer ring members 22, 34 and also a corresponding tight frictional engagement between the inner ring member 34 and the power cord 40 (as shown in
The locking engagement of the power cord retainer 2 with the power cord 40 can be released by separating the first and second locking members 24, 26 (e.g., by first lifting the free end of the first locking member 24 slightly away from the second locking member 26 to disengage the teeth 28, 29) and also separating the second locking member 26 from the outer ring member 22 (e.g., by first lifting the free end of the second locking member 26 slightly away from the outer ring member 22 to disengage teeth 30, 31). This allows the ring members 22, 34 to flex back to larger size/diameter dimensions (e.g., flexing to their original, relaxed and non-compressed states), since the compressing forces applied to these ring members are released by separation of the locking members 24, 26. The portion of the strap 4 including its free end 6 can also be released by the latch 10, and the free end 6 can be pulled through the loop structure 56 to free the strap 4 from the first anchor point so as to allow separation of the power cord retainer 2 from engagement of the power cord 40 and the electronic device 50.
As previously noted, the power cord retainer 2 can also secure a plurality of power cords at one time. Referring to the embodiment of
Thus, the power cord retainer provides a releasable locking arrangement to secure a portion of a power cord, including its mating connector, with respect to an electronic device so as to prevent or substantially limit inadvertent removal of the mating connector from its mechanical and electrical mating connection with a corresponding mating connector of the electronic device. The releasable locking engagement between corresponding teeth of the locking members (and also between the corresponding teeth of one of the locking members and the outer ring member), as well as the selective use of the inner ring member, provide a clamping arrangement for different sized power cords and also for two or more power cords to be effectively clamped so as to prevent or substantially limit inadvertent dislodging of one or more power cords from connection with their respective electronic devices (e.g., due to someone accidentally tripping over or snagging a power cord while moving past an electronic device).
The above description is intended by way of example only.
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Entry |
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Hellerman Tyton Catalog, Snapper Hose Clamps, 2010, (1 page). |