This invention relates generally to ignition coil wires for igniter assembles, including conventional and corona igniter assemblies, methods of manufacturing the ignition coil wires, and igniter assemblies including the ignition coil wires.
Corona igniter assemblies for use in corona discharge ignition systems typically include an ignition coil assembly attached to a firing end assembly as a single component. The firing end assembly includes a center electrode charged to a high radio frequency voltage potential, creating a strong radio frequency electric field in a combustion chamber. The electric field causes a portion of a mixture of fuel and air in the combustion chamber to ionize and begin dielectric breakdown, facilitating combustion of the fuel-air mixture. The electric field is preferably controlled so that the fuel-air mixture maintains dielectric properties and corona discharge occurs, also referred to as non-thermal plasma. The ionized portion of the fuel-air mixture forms a flame front which then becomes self-sustaining and combusts the remaining portion of the fuel-air mixture. The electric field is also preferably controlled so that the fuel-air mixture does not lose all dielectric properties, which would create thermal plasma and an electric arc between the electrode and grounded cylinder walls, piston, or other portion of the igniter.
Conventional igniter assemblies also include an ignition coil assembly. In a conventional ignition system, the ignition coil assembly can include copper wires to provide the frequency and high-voltage electrical field needed to ignite the fuel in the combustion chamber of the engine. However, the electrical AC resistance of the wires (skin and proximity effects) can adversely affect the electrical efficiency of the system. Insufficient heat dissipation can be an issue as well.
One aspect of the invention provides a wire for an ignition coil assembly capable of providing reduced electrical AC resistance, improved heat dissipation, reliability, and sufficient mechanical support. The wire includes a wire core and a coating applied to the wire core. The wire core includes a copper-based material, and the coating includes at least one of a carbon-based material, magnetic nanoparticles, iron, nickel, and cobalt.
Another aspect of the invention provides a method of manufacturing a wire for an ignition coil assembly. The method includes the step of applying a coating to a wire core. The wire core includes a copper-based material, and the coating includes at least one of a carbon-based material, magnetic nanoparticles, iron, nickel, and cobalt.
Yet another aspect of the invention provides a corona igniter assembly comprising an ignition coil assembly. The ignition coil assembly includes at least one wire. The wire includes a coating applied to a wire core. The wire core includes a copper-based material, and the coating includes at least one of a carbon-based material, magnetic nanoparticles, iron, nickel, and cobalt.
Yet another aspect of the invention provides a method of manufacturing a corona igniter assembly including an ignition coil assembly. The method comprises connecting the ignition coil assembly to a firing end assembly. The ignition coil assembly includes at least one wire, and the wire includes a coating applied to a wire core. The wire core includes a copper-based material, and the coating includes at least one of a carbon-based material, magnetic nanoparticles, iron, nickel, and cobalt.
Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
A corona igniter assembly 20 for receiving a high radio frequency voltage and distributing a radio frequency electric field in a combustion chamber containing a mixture of fuel and gas to provide a corona discharge is generally shown in
The ignition coil assembly 22 can include only one wire 28, as shown in the Figures, which is typically wound and referred to as a winding. Alternatively, the ignition coil assembly 22 can include a plurality of the wires 28, also referred to as strands. For example, the wires 28 can form a “Litz” wire of any type, which is typically made of a bundle of twisted and insulated solid wires, also referred to as strands.
In the example embodiment of
The improved ignition coil wire 28 can have several different designs which are each able to provide the reduced electrical AC resistance and improved heat dissipation.
The wire 28 of the ignition coil assembly 22 also includes a coating 38 applied to the wire core 36. The coating 38 typically includes or consists of at least one of a carbon-based material and magnetic nanoparticles or a magnetic nanoparticles-based material. The carbon-based material can include or consist of graphene and/or carbon nanotubes. Either single-wall nanotubes or multi-wall nanotubes can be used. According to one example embodiment, the magnetic nanoparticles-based material includes graphene and iron oxide (Fe3O4), or graphene oxide. The magnetic nanoparticles can be superparamagnetic nanoparticles. The magnetic nanoparticles or magnetic nanoparticles-based material can increase the inductance of the ignition coil assembly 22 when the wire 28 is wound to form a winding.
According to another embodiment, the coating 38 includes or consists of iron, nickel, and/or cobalt. These conducting magnetic materials can be plated onto the wire core 36, and they can be used alone or with the carbon-based material and/or magnetic nanoparticles or magnetic nanoparticles-based material. The coating 38 also typically includes an insulating material, such as enamel.
The coating 38 can include a single layer, but typically, the coating 38 includes a plurality of layers 40, 42, 44, as shown in
In the example embodiment shown in
In the example embodiment of
In the example embodiment of
As discussed above, the wire 28 of the ignition coil assembly 22 can comprise a single wire, as shown in the example embodiments. Alternatively, the ignition coil assembly 22 can include a plurality of the wires 28, each including the wire core 36 and coating 38 described above. For example, the wire 28 shown in the example embodiments can be used as single strands of any type of Litz wire.
As shown in
Another aspect of the invention provides a method of manufacturing the wire 28 described herein, which includes the step of applying the coating 38 to the wire core 36. Yet another aspect of the invention provides a method of manufacturing the corona igniter assembly 20 described above, which includes the step of connecting the ignition coil assembly 22 containing the at least one wire 28 to the firing end assembly 24.
Many modifications and variations of the present invention are possible in light of the above teachings and may be practiced otherwise than as specifically described while within the scope of the claims. It is also contemplated that all features of all claims and of all embodiments can be combined with each other, so long as such combinations would not contradict one another.
Number | Name | Date | Kind |
---|---|---|---|
4093887 | Corbach et al. | Jun 1978 | A |
4366464 | Miyamoto | Dec 1982 | A |
4546041 | Keane | Oct 1985 | A |
4757297 | Frawley | Jul 1988 | A |
5660397 | Holtkamp | Aug 1997 | A |
8434443 | Lykowski | May 2013 | B2 |
8665049 | Miller | Mar 2014 | B2 |
9193586 | Wei et al. | Nov 2015 | B2 |
9251927 | Kim et al. | Feb 2016 | B2 |
9653885 | Urciuoli | May 2017 | B2 |
20020026929 | Shimada et al. | Mar 2002 | A1 |
20030232144 | Kikuchi et al. | Dec 2003 | A1 |
20040031620 | Lerchenmueller | Feb 2004 | A1 |
20040210289 | Wang et al. | Oct 2004 | A1 |
20060119460 | Farmer | Jun 2006 | A1 |
20070235012 | Lam | Oct 2007 | A1 |
20090004475 | Sadaka | Jan 2009 | A1 |
20100081744 | Cancilleri et al. | Apr 2010 | A1 |
20100101828 | Duarte Pena | Apr 2010 | A1 |
20120012362 | Kim | Jan 2012 | A1 |
20120125656 | Wei | May 2012 | A1 |
20120176724 | Burrows | Jul 2012 | A1 |
20120212313 | Burrows | Aug 2012 | A1 |
20130140058 | Kim et al. | Jun 2013 | A1 |
20130140059 | Koljonen et al. | Jun 2013 | A1 |
20130293330 | Wu | Nov 2013 | A1 |
20130340697 | Burrows | Dec 2013 | A1 |
20130344237 | Guo | Dec 2013 | A1 |
20140232254 | Ma et al. | Aug 2014 | A1 |
20140268480 | Urciuoli | Sep 2014 | A1 |
20150194240 | Ranganathan et al. | Jul 2015 | A1 |
20160012942 | Wei et al. | Jan 2016 | A1 |
20160042837 | Ranganathan et al. | Feb 2016 | A1 |
20160228964 | Perez | Aug 2016 | A1 |
20180122529 | Hwang | May 2018 | A1 |
Number | Date | Country |
---|---|---|
1310144 | Aug 2001 | CN |
204667905 | Sep 2015 | CN |
105855647 | Aug 2016 | CN |
2549931 | May 1977 | DE |
0984463 | Mar 2000 | EP |
1005126 | May 2000 | EP |
1983022 | Oct 2008 | EP |
S5863713 | Apr 1983 | JP |
05021240 | Jan 1993 | JP |
2016519833 | Jul 2016 | JP |
101307982 | Sep 2013 | KR |
101561639 | Oct 2015 | KR |
WO-2017039055 | Mar 2017 | WO |
Entry |
---|
(Journal of Applied Physics [online]. aip.scitation.org [retrieved on Apr. 20, 2010]. Retrieved from the Internet: URL: https://aip.scitation.org/doi/pdf/10.1063/1.3358017?class=pdf) (Year: 2010). |
International Search Report, dated Nov. 23, 2017 (PCT/US2017/022615). |
Number | Date | Country | |
---|---|---|---|
20180269660 A1 | Sep 2018 | US |