1. Field of the Invention
This invention relates generally to a corona discharge ignition system including an igniter for emitting a non-thermal plasma, and more specifically to a firing tip of the igniter.
2. Related Art
An example of a corona discharge ignition system is disclosed in U.S. Pat. No. 6,883,507 to Freen. The corona discharge ignition system includes an igniter with an electrode charged to a high radio frequency voltage potential, creating a strong radio frequency electric field in the 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 a 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. Preferably, the electric field is also controlled so that the fuel-air mixture does not lose of all dielectric properties, which would create a thermal plasma and an electric arc between the electrode and grounded cylinder walls, piston, or other portion of the igniter, referred to as power-arcing.
The igniter of the corona discharge ignition system typically includes an electrode having an electrode body portion extending longitudinally from an electrode terminal end receiving the high radio frequency voltage, along an electrode center axis, to an electrode firing end. The electrode may include a firing tip adjacent the electrode firing end for emitting the radio frequency electric field. The firing tip is symmetric relative to the electrode center axis. The igniter of the corona discharge ignition system does not include any grounded electrode element in close proximity to the firing tip. Rather, the ground is provided by the cylinder walls or the piston of the internal combustion engine. An example of a corona igniter with a symmetric firing tip is disclosed in U.S. Patent Application Publication No. US 2010/0083942 to Lykowski and Hampton.
In internal combustion engine systems, especially non-homogeneous combustion systems, like gasoline direct ignition systems, placement of the ignition source relative to the fuel-air mixture is critical to a robust combustion. In certain engine applications, the fuel is provided to the combustion chamber as a spray, but the spray is typically too rich in fuel to ignite directly and may be flammable only at the outside edges of the spray, where the fuel mixes with the air of the combustion chamber. Accordingly, the igniter must be spaced from the fuel injector so that the firing tip is disposed in a predetermined location relative to the outside edge of the fuel spray. The igniter is also preferably spaced from the fuel spray to prevent erosion and corrosion caused by the fuel spray. However, if the igniter is too close to the cylinder walls or piston, power arcing may occur between the firing tip and the cylinder walls or piston, which would eliminate any corona discharge and could be detrimental to combustion. Further, the fuel injector oftentimes cannot be moved from a central location in the combustion chamber, which further complicates the system design.
One aspect of the invention provides an igniter for receiving a high radio frequency voltage and emitting a radio frequency electric field to ionize a portion of a fuel-air mixture and provide a corona discharge. The igniter comprises an electrode including an electrode body portion extending longitudinally along an electrode center axis from an electrode terminal end, which receives the high radio frequency voltage, to an electrode firing end. The electrode also includes a firing tip adjacent the electrode firing end for emitting the radio frequency electric field. The firing tip is asymmetric relative to the electrode center axis.
Another aspect of the invention provides a method of forming the igniter. The method comprises the steps of providing the electrode body portion extending longitudinally from the electrode terminal end along the electrode center axis to the electrode firing end. Next, the method includes disposing the firing tip on the electrode body portion adjacent the electrode firing end and asymmetrically relative to the electrode center axis.
Yet another aspect of the invention includes a corona ignition system providing a radio frequency electric field to ionize a portion of the fuel-air mixture and provide a corona discharge igniting the fuel-air mixture in a combustion chamber of an internal combustion engine. The corona ignition system includes a cylinder block extending circumferentially around a space, and a cylinder head extending across the cylinder block. A piston is disposed in the cylinder block and spaced from the cylinder head to provide a combustion chamber therebetween. A fuel injector extends into the combustion chamber for spraying fuel into the combustion chamber. The igniter with the asymmetric firing tip extends into the combustion chamber and is disposed between the fuel injector and the cylinder block. The igniter receives the high radio frequency voltage and emits the radio frequency electric field to ionize the fuel-air mixture and form the corona discharge.
Another aspect of the invention provides a method of forming the corona ignition system. The method includes providing the cylinder block extending around the space and extending the cylinder head across the cylinder block. Next, the method includes disposing the piston in the cylinder block and spacing the piston from the cylinder head to provide the combustion chamber therebetween. The method includes disposing the fuel injector in the combustion chamber for spraying fuel into the combustion chamber. The method further includes providing the igniter and disposing the igniter in the combustion chamber for receiving the high radio frequency voltage and emitting the radio frequency electric field to ionize the mixture of fuel and air and form the corona discharge. The step of providing the igniter includes forming the electrode by providing the electrode body portion extending longitudinally from the electrode terminal end to the electrode firing end. The step of providing the igniter also includes disposing the firing tip on the electrode body portion adjacent the electrode firing end and asymmetrically relative to the electrode center axis. The step of disposing the igniter in the combustion chamber includes positioning the igniter between the fuel injector and the cylinder block.
The corona igniter of the present invention, including the asymmetric firing tip, provides numerous advantages over corona igniters with other designs, such as those including a symmetric firing tip. The igniter can be disposed in a predetermined position relative to the fuel injector and cylinder block so that the corona discharge is formed in an optimal location for ignition and nowhere else. For example, a portion of the asymmetric firing tip having a greater surface area and producing a high electric field strength can be disposed closer to the fuel spray, while a portion of the firing tip having less surface area and producing a lower electric field strength is disposed closer to the cylinder block. Accordingly, the radio frequency electrical field is emitted only from the surface area adjacent the fuel spray so that the corona discharge is formed optimally at the outside edge of the fuel spray. The asymmetric firing tip also prevents power arcing between the firing tip and the cylinder block. Accordingly, the corona igniter of the present invention provides improved performance, compared to corona igniters including symmetric firing tips or other designs.
The igniter of the present invention is especially beneficial in non-homogeneous ignition systems, such as gasoline direct injection systems. The asymmetric firing tip is especially advantageous when the fuel injector must remain centrally located in the combustion chamber. The igniter can be moved away from the fuel spray to reduce corrosion and erosion, and closer to the cylinder block, without incurring the detrimental power arcing between the firing tip and cylinder block. Further, the asymmetric firing tip can be arranged to provide corona discharge projecting parallel to or away from the cylinder head, so that igniter can be moved closer to the cylinder head and away from the fuel spray. Another advantage of the present invention is improved energy efficiency, as the corona discharge is only produced where it can usefully provide ignition.
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:
One aspect of the invention provides a corona ignition system including an igniter 20 disposed in a combustion chamber 22 of an internal combustion engine, as shown in
The corona ignition system is typically incorporated into an internal combustion engine of an automotive vehicle. As shown in
A piston 40 is disposed in the cylindrical space and along the side wall 34 of the cylinder block 32 for sliding along the side wall 34 during operation of the internal combustion engine. The piston 40 is spaced from the cylinder head 38, so that the cylinder block 32 and the cylinder head 38 and the piston 40 together provide the combustion chamber 22 therebetween.
A fuel injector 42 is disposed in an injector slot 44 of the cylinder head 38 and extends transversely into the combustion chamber 22. The fuel injector 42 provides fuel to the combustion chamber 22, typically in the form of a finely atomized spray. In one embodiment, the fuel spray provided by the fuel injector 42 presents the outside edge 30 forming a conical shape, as shown in
The cylinder head 38 also includes an igniter slot 46 between the fuel injector 42 and the cylinder block 32 for receiving the corona igniter 20. The igniter 20 can extend parallel to or at an angle relative to the cylinder center axis ac and into the combustion chamber 22. The igniter 20 receives the high radio frequency voltage and emits the radio frequency electric field to ionize a portion of the fuel-air mixture and form the corona discharge 24.
The precise location of the igniter 20 varies depending on the combustion system. The location of the igniter 20 may be determined by an alignment method disclosed in U.S. Patent Application Publication No. 2010/0083942, or another method. The igniter 20 is disposed in a predetermined position relative to the cylinder block 32 and the fuel injector 42 and the cylinder head 38 and the piston 40, which allows the corona discharge 24 to be formed in an optimal location for combustion. For example, the igniter 20 can be disposed a predetermined distance from the fuel injector 42 and the cylinder block 32 and the piston 40, and disposed at a predetermined angle relative to the fuel injector 42 and the cylinder head 38 and the cylinder block 32. The igniter 20 is also disposed in a predetermined location relative to the outside edge 30 of the fuel spray. For example, the igniter 20 can be disposed approximately at a 30 degree angle relative to the fuel injector 42, as shown in
As shown in
The electrode 26 of the corona ignition system includes the firing tip 28 surrounding and adjacent the electrode firing end 50 for emitting the radio frequency electric field to ionize a portion of the fuel-air mixture in the combustion chamber 22 and provide the corona discharge 24. The firing tip 28 is formed of a second electrically conductive material, preferably including at least one element selected from Groups 4-12 of the Periodic Table of the Elements. The firing tip 28 typically has a tip diameter Dt that is greater than the electrode diameter De of the electrode body portion 52.
The firing tip 28 of the igniter 20 is disposed in a predetermined position relative to the cylinder block 32 and the fuel injector 42 and the cylinder head 38 and the piston 40, which allows the corona discharge 24 to be formed in the optimal location for combustion. For example, the firing tip 28 can be disposed a predetermined distance from the fuel injector 42 and the cylinder block 32 and the cylinder head 38 and the piston 40, and at a predetermined angle relative to the fuel injector 42 and the cylinder block 32 and the cylinder head 38 and the piston 40. The firing tip 28 is also disposed in a predetermined location relative to the outside edge 30 of the fuel spray. In one preferred embodiment, the firing tip 28 is disposed adjacent the fuel spray so that the corona discharge 24 is formed at the outside edge 30 of the fuel spray, as shown in
The firing tip 28 is asymmetric relative to the electrode body portion 52, so that the corona discharge 24 can be formed in an optimal location for ignition. As shown in
In one preferred embodiment, the radio frequency electric field emitted from the first surface area A1 facing the fuel injector 42 of the corona ignition system is stronger than the radio frequency electric field emitted from the second surface area A2 facing the cylinder block 32 so that the corona discharge 24 can be formed in an optimal area of the combustion chamber 22. For example, in one preferred embodiment, the electrical field is emitted from the first surface area A1 so that corona discharge 24 is formed optimally in the fuel spray or in a flammable region along the outside edge 30 of the fuel spray, with no electrical field emissions from the second surface area A2. Accordingly, the corona ignition system provides a strong combustion of the fuel-air mixture, with no power arcing between the second surface area A2 of the firing tip 28 and the cylinder block 32, which would hinder combustion.
The strength of the electrical field emitted from the surface areas A1, A2 of the firing tip 28 depends, in part, on distance from the center axis ac. As shown in
The design of the firing tip 28 can vary, and examples of the firing tip 28 are disclosed in
The projections 60 of the first surface area A1 preferably include sharp edges to promote the radio frequency electrical field emissions and the optimally located corona discharge 24. Unlike the first surface area A1, the second surface area A2 preferably includes fewer or no sharp edges thus preventing radio frequency electrical field emissions and power arcing between the second surface area A2 and the cylinder block 32, cylinder head 38, or piston 40, which could be detrimental to combustion. Any unavoidable edges of the second surface area A2 are preferably as round as practically possible. As shown in
The sharpness at particular points of the firing tip 28 can be defined by a spherical radius r. As shown in
As best shown in
In yet another embodiment, as shown in
Another aspect of the invention provides a method of forming the igniter 20. The method comprises the steps of providing the electrode body portion 52 extending longitudinally from the electrode terminal end 48 along the electrode center axis ae to the electrode firing end 50. The electrode body portion 52 provided is symmetric relative to the electrode center axis ae. Next, the method includes disposing the firing tip 28 on the electrode body portion 52 adjacent the electrode firing end 50 such that the firing tip 28 is asymmetric relative to the electrode center axis ae.
The igniter 20 of the corona ignition system includes other elements typically found in a corona igniter 20, such as an insulator 66, a terminal 68, a conductive seal layer 70, and a shell 72. The insulator 66 is disposed in the cylinder head 38 annularly around and longitudinally along the electrode body portion 52. As shown in
In one embodiment, the insulator 66 includes an insulator body region 78 disposed in the cylinder head 38 and extending from the insulator upper end 74 toward the insulator lower end 76. The insulator body region 78 presents an insulator body diameter Di generally perpendicular to the longitudinal electrode body portion 52. The insulator 66 also includes an insulator nose region 80 extending from the insulator body region 78 to the insulator lower end 76. The insulator nose region 80 presents an insulator nose diameter Dn generally perpendicular to the longitudinal electrode body portion 52 and tapering to the insulator lower end 76. As shown in
The insulator body region 78 is typically encased by the shell 72, which secures the igniter 20 to the cylinder head 38, and the insulator nose region 80 extends outwardly of the shell 72 into the combustion chamber 22. The insulator 66 and shell 72 typically include a center axis longitudinally aligned with the electrode center axis ae and one another, as shown in
The insulator 66 is disposed in a predetermined location relative to the fuel injector 42, the fuel spray, the cylinder head 38, and the cylinder block 32 so that the corona discharge 24 can be formed in an optimal location. Since the firing tip 28 is asymmetric, the igniter 20 can be disposed closer to the side walls 34 of the cylinder block 32, compared to igniters of the prior art corona ignition systems, without incurring power arcing between the firing tip 28 and the cylinder block 32. Accordingly, the insulator 66 of the igniter 20 can be spaced further from the fuel injector 42 and thus is less susceptible to erosion and corrosion caused by the harsh environment surrounding the fuel injector 42.
As shown in
The shell 72 of the igniter 20 is formed of a metal material disposed in the cylinder head 38 and annularly around the insulator 66. The shell 72 extends longitudinally along the insulator 66 from an upper shell end 86 to a lower shell end 88 such that the insulator nose region 80 projects outwardly of the lower shell end 88, as shown in
Another aspect of the invention provides a method of forming the corona ignition system. The method includes providing the cylinder block 32 extending circumferentially around the cylindrical space, and extending the cylinder head 38 across the cylinder block 32. Next, the method includes disposing the piston 40 in the cylinder block 32 and spacing the piston 40 from the cylinder head 38 to provide the combustion chamber 22 therebetween. The method further includes disposing the fuel injector 42 in the combustion chamber 22 for spraying fuel into the combustion chamber 22.
The method next includes providing the igniter 20 and disposing the igniter 20 in the combustion chamber 22 for receiving the high radio frequency voltage and emitting the radio frequency electric field to ionize the fuel-air mixture and form the corona discharge 24. The step of providing the igniter 20 includes forming the electrode 26 by providing the electrode body portion 52 extending longitudinally from the electrode terminal end 48 along the electrode center axis ae to the electrode firing end 50 and being symmetric relative to the electrode center axis ae. The step of providing the igniter 20 also includes disposing the firing tip 28 on the electrode body portion 52 adjacent the electrode firing end 50 and such that the firing tip 28 is asymmetric relative to the electrode center axis ae. The step of disposing the igniter 20 in the combustion chamber 22 includes positioning the igniter 20 between the fuel injector 42 and the cylinder block 32. In one embodiment, the method includes disposing the firing tip 28 in a predetermined location relative to the fuel injector 42 and the cylinder block 32. In another embodiment, the method includes disposing the firing tip 28 at a predetermined angle relative to the fuel injector 42 and the cylinder block 32.
During operation of the corona ignition system, the electrode 26 of the igniter 20 is charged to a high radio frequency voltage potential, creating a radio frequency electric field in the combustion chamber 22. The electric field is controlled so that the fuel-air mixture in the combustion chamber 22 maintains dielectric properties. The electrode 26 emits a non-thermal plasma including multiple streams of ions forming a corona to ionize a portion of the fuel-air mixture in the combustion chamber 22.
The corona ignition system of the present invention with the asymmetric firing tip 28 provides numerous benefits over other corona ignition systems having different designs, such as those without the asymmetric firing tip 28, especially in non-homogeneous combustion systems, like gasoline direct ignition systems. The asymmetric firing tip 28 can provide an optimally located ignition source providing a robust combustion of the fuel-air mixture. The asymmetric firing tip 28 can be arranged to provide corona discharge 24 projecting parallel to or away from the cylinder head 38, so that the igniter 20 can be moved closer to the cylinder head 38 and away from the fuel spray to reduce erosion and corrosion caused by the fuel spray. The igniter 20 can also be moved away from the fuel spray and closer to the cylinder block 32 without creating the detrimental power arcing. The present invention also uses energy more efficiently than systems including igniters with symmetric firing tips or other designs. Preferably, the electrical field emissions and corona discharge 24 are only formed on the side of the firing tip 28 facing the fuel spray, where it can usefully provide ignition, rather than on both sides of the firing tip 28, where a significant amount of the electrical field emissions would not contribute to ignition and therefore would be wasted energy.
Obviously, 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 appended claims. These antecedent recitations should be interpreted to cover any combination in which the inventive novelty exercises its utility. In addition, the reference numerals in the claims are merely for convenience and are not to be read in any way as limiting.
This application claims the benefit of U.S. provisional application Ser. No. 61/422,849, filed Dec. 14, 2010.
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