The present invention relates to the field of harvesting electrical energy. More particularly, the present invention relates to methods and apparatus for harvesting electrical energy from elongate conductors, such as power transmission lines, through which alternating electrical current is traveling, without physically contacting the elongate conductor.
Energy harvesting apparatus for harvesting electrical energy from elongate electrical conductors carrying alternating current are today well known and commonly used. They are, for example, used to harvest electrical energy from power transmission lines and to power electronic circuits used for various purposes, including powering sensors and electronics which determine the status of the power transmission line and transmit such status via electromagnetic radiation.
Some of the known electrical energy harvesting apparatus utilize wire coils or a counterpoise adjacent the elongate conductor. The coils and counterpoise magnetically couple with the elongate conductor for thereby harvesting the energy. Examples of such prior electrical energy harvesting apparatus are shown and described in Schweitzer, Jr., U.S. Pat. No. 3,708,724 and U.S. Pat. No. 4,424,512, and McCollough, Jr., U.S. Pat. No. 7,295,133. Although these electrical energy harvesting apparatus function sufficiently for their intended purpose, their power output relative to their size is limited.
Other electrical energy harvesting apparatus utilize a toroidal core which completely surrounds the elongate conductor. A coil is wound on the toroid core for thereby harvesting the energy from the elongate conductor. Examples of such prior electrical energy harvesting apparatus are shown and described in Fernandes, U.S. Pat. No. 4,801,937 and Joseph et al. US 2017/0045571. Although these electrical energy harvesting apparatus also function sufficiently for their intended purpose, the toroid structure makes it cumbersome and difficult to install on and remove from existing elongate conductors. Consequently, the toroid is typically split and the sections thereof must be separated for installing on or removing from the conductor, thereby necessitating additional mechanical components for this purpose.
Accordingly, a need exists for a method and apparatus for harvesting electrical energy from current carrying elongate conductors wherein the energy harvesting apparatus can easily be installed on and removed from an existing elongate conductor, and which is capable of harvesting a greater amount of power relative to its size and the prior known harvesters.
The present invention overcomes disadvantageous of prior electrical energy harvesting apparatus; is capable of harvesting more energy than prior known energy harvesters; and, can be more easily installed on and removed from an existing elongate conductor.
In one form thereof the present invention is directed to a method of harvesting electrical energy from an elongate conductor through which alternating electrical current is traveling. The method includes the steps of: providing a U-shaped core comprising a central section and first and second legs extending from the central section, and defining an opening leading to a gap between the first and second legs, wherein the opening and gap are larger than a cross section of the elongate conductor and wherein the central section and the first and second legs comprise magnetically permeable material; providing an electromagnetic coil comprising magnet wire wound around the central section and having terminal ends; inserting the elongate conductor though the opening and into the gap between the first and second legs; preventing the elongate conductor from physically contacting the first and second legs and the electromagnetic coil; electromagnetically coupling the alternating electric current traveling through the elongate conductor with the U-shaped core and inducing electric current in the electromagnetic coil and providing electric current at the magnet wire terminal ends; and, during the step of electromechanically coupling, maintaining the opening open for selectively removing the elongate conductor therethrough.
Preferably, during the step of providing a U-shaped core, further including the step of constructing the U-shaped core by stacking a plurality of U-shaped sheets, wherein each U-shaped sheet comprises a central section and first and second legs extending from the central section. Also, during the step of providing a U-shaped core, the method can include the step of constructing the U-shaped core of ferromagnetic metal. Further, during the step of providing an electromagnetic coil, the method can include the step of winding the magnet wire around the central section more than 5,000 times.
The method can also include the steps of: coupling the magnet wire terminal ends to and powering an electronic circuit for sensing and transmitting via electromagnetic radiation the operational status of the elongate conductor, encapsulating the U-shaped core, the electromagnetic coil and the electronic circuit within an insulative housing; securing the insulative housing to an insulator supported on an elongate pole and which supports the elongate conductor; and, during the step of providing a U-shaped core, further comprising the step of constructing the U-shaped core by stacking a plurality of U-shaped sheets, wherein each U-shaped sheet comprises a central section and first and second legs extending from the central section.
In another form thereof the present invention is directed to an apparatus for harvesting electrical energy from an elongate conductor through which alternating electrical current is traveling. The apparatus includes a U-shaped core having a central section and first and second legs extending from the central section, and defining an opening leading to a gap between the first and second legs. The central section and the first and second legs are made of magnetically permeable material. An electromagnetic coil is provided and is made of magnet wire wound around the central section and having terminal ends. The elongate conductor is received though the opening and is located in the gap between the first and second legs, and does not physically contact the first and second legs and the electromagnetic coil. The alternating electric current traveling through the elongate conductor thereby electromagnetically couples with the U-shaped core and induces electric current in the electromagnetic coil for providing electric current at the magnet wire terminal ends.
Preferably, the magnetically permeable material forming the U-shaped core is paramagnetic and is a made of a ferromagnetic metal. The U-shaped core central section and first and second legs can be integrally formed. Alternatively, the first and second legs can be secured to the central section with fasteners. Preferably, the U-shaped core is made of a plurality of stacked U-shaped sheets, wherein each U-shaped sheet has a central section and first and second legs extending from the central section. Preferably, the magnet wire is wound around the central section more than 5,000 times. More preferably, the magnet wire is 33 AWG and is wound around the central section more than 9,000 times.
The first and second legs are preferably encapsulated within an insulative material and an electrically insulative material layer is provided between the elongate conductor and the U-shaped core and electromagnetic coil.
The magnet wire terminal ends can be coupled to and power an electronic circuit for sensing and transmitting, via electromagnetic radiation, the operational status of the elongate conductor. The U-shaped core, the electromagnetic coil and the electronic circuit can be encapsulated within an insulative housing. The insulative housing can then be secured to an insulator affixed to a cross arm of an elongate vertical pole and which supports the elongate conductor.
The above mentioned and other features and objects of this invention, and the manner of attaining them, will become more apparent and the invention itself will be better understood by reference to the following description of the embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout several views. Although the exemplification set out herein illustrates embodiments of the invention, in several forms, the embodiments disclosed below are not intended to be exhaustive or to be construed as limiting the scope of the invention to the precise forms disclosed.
An energy harvesting apparatus constructed in accordance with the principles of the present invention is shown in the drawings and generally designated by the numeral 10. Energy harvesting apparatus 10 is adapted to harvest electrical energy from an elongate conductor through which alternating electrical current is traveling, without physically contacting the elongate conductor.
For example, referring to
Further referring to the embodiment of
Referring now more particularly to
The central section 28 and the first and second legs 30, 32 forming the U-shaped section are made of magnetically permeable material which is preferably paramagnetic and which can be a ferromagnetic metal such as cast iron and electrical steel. In the embodiment shown in
The electromagnetic coil 42 is made by winding magnet/enameled copper wire 58 around the central section 28 between the central section terminal ends 44, 46. The magnet wire 58 terminates at terminal ends 60 whereat harvested electric current is provided. Magnet wire terminal ends 60 are coupled to and provide power to the electronic circuit 14. Preferably, a relatively small diameter magnet wire 58 is wrapped around the central section 28 a relatively large number of turns for maximizing the harvested energy. Also preferably, the magnet wire 58 is wrapped around the central section 20 more than 5,000 time. More preferably, the magnet wire 58 is 33 AWG enameled copper wire wrapped around the central section more than 9,000 times.
In operation, as best seen in
Referring now again to
As should now also be appreciated, the electronic circuit 14 and the apparatus 10 are completely encapsulated and sealed with insulative material 64, 70 and are “floating”, that is, are not connected to physical ground. Further, as best seen in
As described herein above, Applicant discovered that, although a high reluctance/large opening 34 is provided wherethrough the conductor 12 can advantageously be inserted and removed from the gap 40 between the first and second legs 30, 32, the alternating magnetic flux 62 of the conductor 12 couples with the first and second legs 30, 32 of the U-shaped core causing a significant amount of energy to be harvested by the apparatus 10. Applicant also discovered that the energy harvested by the apparatus 10 is significantly greater than, for example, a coil and core energy harvester 76 (
For both the tests, as depicted in
During both tests 9A and 9B, the voltage across resistor R was measured, as depicted in
As evidenced by Table 1 and Table 2 and shown in the graphs thereof in
While this invention has been described as having an exemplary design, the present invention may be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles.
This application claims priority under 35 U.S.C. 119(e) of U.S. provisional patent application Ser. No. 62/450,429 filed on Jan. 25, 2017 entitled ENERGY HARVESTING APPARATUS AND METHOD, the disclosure of which is hereby incorporated herein by reference.
Number | Date | Country | |
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62450429 | Jan 2017 | US |