The present invention relates generally to electromagnetic stators and, more particularly, to a hermetically sealed electromagnetic stator.
Electromagnetic stators can be used with fuel injectors to introduce fuel into the cylinders of an internal combustion engine. When a fuel source is electrically conductive (e.g., ethanol or ED95), fluid in both vapor and liquid form may be present in the interior of a potted or molded stator assembly and can provide an electrically conductive path from the stator coil wires to outside metal parts of the stator. Although the wires are coated with a film that acts as an electrical insulator, cracks in the film can lead to direct electrical connections resulting in electrical shorting. Also, even if the insulating film is intact, hipot failure via dielectric breakdown can occur causing fault circuitry to be triggered in an electric control module, which could shut down the injector bank on which the hipot or direct short circuit failure occurs. Electrical shorting of the stator/fuel injector may also reduce the life of the stator/fuel injector. As such, one aspect of fuel supply systems that has been the focus of designers is the need to produce alternative stator designs that mitigate or prevent the occurrence of electrical shorting while maintaining proper functionality.
The various aspects of the present disclosure may be achieved by providing a thin seal plate to hermetically seal an electromagnetic stator. In one embodiment of the disclosure, a stator assembly comprises: a stator having an inner diameter; a plurality of coils wrapped around the stator; and a seal plate positioned on the lower surface of the stator and spanning the inner diameter of the stator, the seal plate having at least one welded edge to form a hermetic seal along the stator.
According to one embodiment, a stator assembly is provided. The stator assembly comprising: a stator having an inner diameter; a plurality of coil windings wrapped around the stator; and a seal plate positioned on the lower surface of the stator and at least partially surrounding the inner diameter of the stator, the seal plate having at least one welded edge to form a hermetic seal along the stator. In another embodiment, the seal plate has a thickness of at least 50 μm. In a further embodiment, the seal plate has a thickness of 100 μm. In yet another embodiment, the edge is welded onto the stator by a laser. In another embodiment, the stator assembly further comprising an armature positioned below the lower surface of the stator, wherein the armature moves upward when electrical current is sent through the coil windings. In another embodiment, the stator assembly further comprising a solenoid encompassing the plurality of coil windings, the solenoid having the characteristics of an electromagnet when current is sent through the coil windings to attract the armature. In yet another embodiment, the seal plate is made of a magnetic alloy. In another embodiment, the seal plate is made of low carbon steel. In another embodiment, the hermetic seal provided by the at least one welded edge is thin enough to limit flux leakage between magnetic poles.
According to another embodiment, a stator assembly is provided. The stator assembly comprising: a stator; a plurality of coil windings wrapped around the stator; a solenoid encompassing the plurality of coil windings; and a seal plate positioned on the lower surface of the stator and at least partially surrounding the inner diameter of the stator, the seal plate having at least one welded edge to form a hermetic seal along the stator; wherein the hermetic seal seals the plurality of coil windings within the solenoid; and wherein the hermetic seal is between a first ferritic alloy and a second ferritic alloy. In another embodiment, the seal plate is made of low carbon steel. In a further embodiment, the seal plate is made of a magnetic alloy. In another embodiment, the hermetic seal provided by the at least one welded edge is thin enough to limit flux leakage between magnetic poles. In yet another embodiment, the seal plate has a thickness of at least 50 μm. In a further embodiment, the seal plate has a thickness of 100 μm. In yet another embodiment, the edge is welded onto the stator by a laser.
According to another embodiment, a method of assembling a stator assembly is provided. The method of assembling a stator assembly including: providing a stator, wherein the stator includes: a plurality of coil windings wrapped around the stator; and a seal plate positioned on the lower surface of the stator and at least partially surrounding an inner diameter of the stator, and welding at least one edge of the seal plate onto the stator assembly to form a hermetic seal along the stator, wherein the seal plate has a thickness of at least 50 μm and the hermetic seal provided by the at least one welded edge is thin enough to limit flux leakage between magnetic poles. In one embodiment, the seal plate has a thickness of 100 μm. In a further embodiment, the edge is welded onto the stator by a laser. In another embodiment, the seal plate is made of a magnetic alloy.
Additional features and advantages of the present invention will become apparent to those skilled in the art upon consideration of the following detailed description of the illustrative embodiment exemplifying the best mode of carrying out the invention as presently perceived.
The foregoing aspects and many of the intended advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description when taken in conjunction with the accompanying drawings.
Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of various features and components according to the present disclosure, the drawings are not necessarily to scale and certain features may be exaggerated in order to better illustrate and explain the present disclosure. The exemplifications set out herein illustrate embodiments of the invention, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
For the purposes of promoting an understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings, which are described below. The embodiments disclosed below are not intended to be exhaustive or limit the invention to the precise form disclosed in the following detailed description. Rather, the embodiments are chosen and described so that others skilled in the art may utilize their teachings. It will be understood that no limitation of the scope of the invention is thereby intended. The invention includes any alterations and further modifications in the illustrative devices and described methods and further applications of the principles of the invention which would normally occur to one skilled in the art to which the invention relates.
Referring to
Stator assembly 10 is positioned above an armature 20 (
As shown in
Laser welding edges 26-29 onto stator assembly 10 creates hermetic seal over a face of stator assembly 10 using a minimal number of parts required to achieve a desired sealing effect. Alternate sealing methods (e.g., an O-ring and a pressure joint) could be used to create the seal; however, such alternate sealing methods require additional parts or components and more space (i.e., these methods are more expensive and less efficient with their use of space). Moreover, by creating a hermetic seal over a face of stator assembly 10 rather than within a joint, the overall size of stator assembly 10 of stator assembly 10 can be increased.
The hermetic seal formed by seal plate 22 and the corresponding laser welded edges 26-29 prevent fuel from entering the interior of stator assembly 10. In the illustrated embodiment, seal plate 22 is made of a low carbon steel. However, it is contemplated that in alternate embodiments seal plate 22 is made of a ferritic alloy. As mentioned earlier, the hermetic seal functions to seal coil windings 16 within solenoid 46 while preserving the electromagnetic function of stator assembly 10. In one embodiment, the hermetic seal between stator assembly 10 and seal plate 22 involves a seal between two ferritic alloys. In one embodiment, the ferritic alloys are the same alloy. In an alternate embodiment, the ferritic alloys are different alloys. However, it is contemplated that in alternate embodiments, other suitable materials may be used such as non-austenitic stainless steel or other suitable magnetic materials. The magnetic nature of the seal plate material reduces reluctance between stator poles 19 and armature 20 as compared to a non-magnetic seal plate, increasing the force achievable by stator assembly 10.
As discussed below, the thickness of seal plate 22 affects flux leakage between stator poles 19 of stator assembly 10. In some embodiments, the thickness of seal plate 22 may be as little as 50 μm or as great as 500 μm or more. In an exemplary embodiment, the thickness of seal plate 22 is 100 μm.
During operation of stator assembly 10, coil windings 16 are energized. When coil windings 16 are energized, solenoid 46 acts as an electromagnet which causes armature 20 to move upward under magnetic attraction to solenoid 46. As armature 20 moves upward, a contacting portion 21 of armature 20 contacts lower surface 33 of stator assembly 10 at contact region 12, opening the injector pilot valve. Conversely, when coil windings 16 are de-energized, solenoid 46 and armature 20 are no longer magnetically attracted to each other and armature 20 moves downwardly from stator assembly 10 disengaging from stator assembly 10.
The presence of seal plate 22 and the corresponding laser welded edges 26, 27, 28, and 29 offer some advantageous properties. One feature is that the hermetic seal created by the seal plate prevents electrically conductive fuel (e.g., ethanol or ED95) from entering electromagnetic stator assembly 10. Electrically conductive fuel entering electromagnetic stator assembly 10 can provide an electrical path from coil windings 16 to other steel parts of stator assembly 10 thereby, shorting windings 16 or terminals 18 to ground. Additionally, fuel or vapor entering stator assembly 10 may be absorbed by potting material 36 such that potting material 36 swells, fills air gap 44 and contacts armature 20, resulting in limited vertical movement of armature 20 during operation. In other words, by hermetically sealing stator assembly 10 from fuel or fuel vapors, air gap 44 remains intact and armature 20 is able to move vertically and operate accordingly.
Magnetic flux leakage is maximally limited if a non-magnetic plate is used; however, the magnetic force on armature 20 in such case would be reduced significantly resulting in effectively increasing the air gap between armature 20 and stator assembly 10 by the thickness of seal plate 22.
For the force applied by armature 20, curves 100′, 200′, 300′, 400′, 500′, and 600′ correspond to a baseline where no seal plate is used, a 10 μm thick seal plate 22 is used, a 25 μm thick seal plate 22 is used, a 50 μm thick seal plate 22 is used, a 100 μm thick seal plate 22 is used, and a 200 μm thick seal plate 22 is used, respectively. As shown by the data in
The time delay for armature displacement and maximum force application by armature 20 in addition to the time delay for reduced maximum force of armature 20 occur because there is increased flux leakage between poles 19 of stator assembly 10 as the thickness of seal plate 22 increases. Additionally, thicker seal plates 22 more readily conduct eddy currents, which have the effect of opposing changes in flux and force.
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. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practices in the art to which this invention pertains.
This application claims the benefit under Title 35, U.S.C. § 119(e) of U.S. Provisional Patent Application Ser. No. 62/437,932, entitled HERMETICALLY SEALED ELECTROMAGNETIC STATOR and filed on Dec. 22, 2016, the entire disclosure of which is hereby expressly incorporated by reference herein
Number | Date | Country | |
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62437932 | Dec 2016 | US |