DRIVER APPARATUS
20230231418 · 2023-07-20
Assignee
Inventors
Cpc classification
H01F27/306
ELECTRICITY
International classification
Abstract
An inductively powered device driver comprising a secondary winding to be coupled to a primary winding and a ferrite core formed of two separable parts, and further comprising a permanent magnet attached to each part of the ferrite core. The permanent magnet(s) are preferably separated from the ferrite core by an insulator. One part of the ferrite core preferably comprises a metal plate positioned between the two parts of the ferrite core.
Claims
1-24. (canceled)
25. A high frequency alternating current (HFAC) system, the system comprising: a power circuit for connection to a low frequency alternating current input, and for providing an HFAC output; a power bus coupled to the power circuit for carrying the HFAC to a plurality of inductively powered devices; and a plurality of inductively powered device drivers, each device driver comprising: a secondary winding to be coupled to a primary winding formed by the power bus; and a ferrite core formed of two separable parts, and further comprising a permanent magnet attached to each part of the ferrite core; wherein a metal plate is disposed between the two parts of the ferrite core, and wherein the metal plate comprises a ferromagnetic material.
26. The HFAC system of claim 25, further comprising the plurality of inductively powered devices.
27. An inductively powered device driver for a high frequency alternating current (HFAC) system, the system comprising a power bus carrying HFAC for powering a plurality of inductively powered devices placed along the power bus, the device driver comprising: a secondary winding to be coupled to a primary winding formed by the power bus and a ferrite core formed of two separable parts, and further comprising a permanent magnet attached to each part of the ferrite core, wherein a metal plate is disposed between the two parts of the ferrite core, and wherein the metal plate comprises a ferromagnetic material.
28. The inductively powered device driver of claim 27, wherein the metal plate comprises steel.
29. The inductively powered device driver of claim 27 wherein the two parts of the ferrite core have a closed position and the metal plate is arranged at a location between the parts of the ferrite core when the parts of the ferrite core are in the closed position.
30. The inductively powered device driver of claim 27 comprising a guide for holding a wire of the power bus, the guide comprising a first guide part for holding a first portion of the wire of the power bus, and a second guide part for holding a second portion of the wire of the power bus.
31. The inductively powered device driver of claim 30 wherein the guide is configured to position the first portion of the wire and the second portion of the wire for inductive coupling with the secondary winding.
32. The inductively powered device driver of claim 30 wherein the guide is provided by surface features, such as grooves, carried by the separable parts.
33. The inductively powered device driver of claim 32 wherein the guide is configured to hold the two portions of the wire so that they are spaced apart and aligned with each other, for example parallel with each other.
34. An inductively powered device driver according to claim 27 wherein the permanent magnets are not in direct contact with the ferrite core.
35. An inductively powered device driver according to claim 34 further comprising a piece of insulating material arranged between each part of the ferrite core and each permanent magnet such that the permanent magnet is not in direct contact with the ferrite core.
36. An inductively powered device driver according to claim 27 wherein the permanent magnets comprise a rare earth magnet.
37. An inductively powered device driver according to claim 36 wherein the rare earth magnet is Neodymium or Samarium-Cobalt.
38. An inductively powered device driver according to claim 27 wherein there are two permanent magnets attached to each part of the ferrite core.
39. An inductively powered device driver according to claim 27 wherein the one more permanent magnets attached to each part of the ferrite core have a compressive strength of between 500 and 5,000 N/mm2.
40. An inductively powered device driver according to claim 27 wherein the permanent magnet is arranged on the outer periphery of the ferrite core.
41. An inductively powered device driver according to claim 27 wherein the permanent magnets attached to each part of the ferrite core have opposite polarity.
42. An inductively powered device driver according to claim 27 wherein each of the permanent magnets has a substantially equal magnetic strength.
43. An inductively powered device driver according to claim 27 wherein the force across the faces between the separable parts of the ferrite core caused by the permanent magnets is between 20 N/mm2 and 1,000 N/mm2.
44. An inductively powered device driver according to claim 27 further comprising a second pair of ferrite cores, each ferrite core of the second pair of cores comprising a permanent magnet attached to the ferrite core.
45. An inductively powered device driver according to claim 27 further comprising a microcontroller.
46. A device comprising an inductively powered device driver according to claim 27 further comprising an electrical device electrically connected to the inductively powered device driver.
47. A device according to claim 46 wherein the electrical device comprises one or more of inter alia an LED, a light, a sensor, a charger, a timer, a camera, an audio device a smoke alarm, a carbon monoxide detector, a gas detectors, a motor, gas discharger for fire suppression and a sprinkler.
48. A device according to claim 46 wherein the electrical device comprises a secondary electrical power bus.
49. A device according to claim 27 wherein the permanent magnet comprises Cerium.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
DETAILED DESCRIPTION
[0036]
[0037] Each of the device drivers comprises a ferrite core and a secondary winding. The high frequency alternating current from the power bus induces an alternating current in the secondary winding which powers the device. The device driver comprises two parts of a ferrite core which are arranged around the power bus.
[0038] As will be appreciated, loads such as lights can be installed without the need for specialised installers or qualified electricians. Indeed, it is an object of the invention to facilitate optimal installations by non-professionals such as householders.
[0039] Advantageously an HFAC power supply may be used in conjunction with extra-low voltage (SELV) requirements. This innovative mode of operation and the low voltages produced may facilitate compliance with extra low voltage standards such as SELV, further facilitating safe and user-friendly installations, without the need for specialised installers or qualified electricians.
[0040] With the use of SELV then even in jurisdictions with legal restrictions on domestic power supplies a householder will be able to manage a DIY electrical installation. When coupled with inductively connected loads this provides a system that is spark and arc free even in fault conditions.
[0041] The preferred embodiment is designed to be implemented for powering HFAC powered wireless power transmitters, facilitating the wireless charging of wearable and other low power devices, ear pods, earphones, watches, game controllers, fitness bands, health monitors etc up to 20 feet away from the power supply and installed loads. It is envisaged within the preferred invention, HFAC distribution also enables the use of HFAC powered Li-Fi enabled devices, particularly advantageous as the HFAC output cables can now extend greater than 400 m cable length with no standing wave issues.
Device Driver
[0042] The present invention relates to a driver for a device on the power bus. As described above, loads are inductively coupled and to improve the inductive coupling a core is often used.
[0043]
[0044] Each guide part may be configured to hold the corresponding portion of power bus wire aligned with the other portion of power bus wire, for example the two portions of wire may be held parallel with each other. The two guide parts may be spaced apart from each other to provide a corresponding spacing between the two portions of the power bus wire. The guide parts may be straight.
[0045] The guide parts illustrated in
[0046] According to an embodiment of the invention each part of the ferrite core has attached thereto two permanent magnets. The first part of the ferrite core has permanent magnets 111 and 112 attached at opposite sides and the second part of the ferrite core has permanent magnets 121 and 122 attached thereto.
[0047] The permanent magnets are formed out of a rare earth metal for example Neodymium or Samarium Cobalt. As an alternative to these, materials which exhibit similar characteristics may be used such as cobalt, CeCo3 and CeCo5. The advantage of Cerium is that it is abundant and easy to obtain.
[0048] The permanent magnets are plated in order to protect them from breaking or chipping, which would reduce the pull force between the parts of the ferrite core. As an alternative they may be coated.
[0049] Between each permanent magnet and the ferrite core is a portion of plastic or other insulating material 140, 141. This is important because of the existence of a high strength magnetic field around a ferrite magnetic core would be expected to cause problems with the electromagnetic power transfer across the cores, but experiments performed by the inventors have demonstrated that insulating the magnets from the cores eliminates any ill effects from a high strength magnetic field around a ferrite core.
[0050] Although the present example uses a portion of plastic any insulating material may be used such as a ceramic. Furthermore, the insulating material, or plastic need not be configured as depicted and could instead surround the entire ferrite core.
[0051]
[0052]
[0053] The embodiment depicts each part of the ferrite core having two permanent magnets. However, there could be more, for example four permanent magnets or indeed one permanent magnet forming an annulus 115, 125 around the entire core as depicted in
[0054]
[0055]
[0056] The magnetic locating and locking mechanism may be arranged to secure the two-part core around the cable wires with sufficient strength to keep the core in place during normal use. Thus, the strength of the magnets may be such that they will easily hold the weight of the core and/or the weight of a length of cable wire secured to the core. The magnetic core may use any suitably strong magnets. These magnets can provide sufficient strength to hold the accessory to the cable wires without any necessity for additional mechanical fixings, although in some examples a screw cap mechanism may augment the magnetic force. This screw cap mechanism may include a screw and/or a bayonet fitting. The body and/or the cap may include a clamping element allowing for resilient movement of the upper and lower bodies. One or both parts of the core may be held for rotation relative to the housing by the magnetic force such that they maintain alignment with one another during the cap fit operation.
[0057] Installation of device drivers according to the invention is considerably easier and faster than prior art examples with improved reliability and strong magnetic fields over the life of the product due to the mechanical design. Additionally, there is no requirement for industry qualified electricians as the use of junction boxes is eliminated. Furthermore the subsequent risk of fire caused by arcing connections is removed, whilst ensuring the electrocution risk is also negated. The HFAC system described herein may comprise a distributed bus HFAC system.
[0058] Various further aspects and embodiments of the present invention will be apparent to those skilled in the art in view of the present disclosure.
[0059] “and/or” where used herein is to be taken as specific disclosure of each of the two specified features or components with or without the other. For example “A and/or B” is to be taken as specific disclosure of each of (i) A, (ii) B and (iii) A and B, just as if each is set out individually herein.
[0060] Unless context dictates otherwise, the descriptions and definitions of the features set out above are not limited to any particular aspect or embodiment of the invention and apply equally to all aspects and embodiments which are described.
[0061] It will further be appreciated by those skilled in the art that although the invention has been described by way of example with reference to several embodiments, it is not limited to the disclosed embodiments and that alternative embodiments could be constructed without departing from the scope of the invention as defined in the appended claims.