Swirl air flow generation within the induction tract of the typical Internal combustion (IC) engine has long been recognized as a means to enhance certain desirable performance aspects therein. The goal is to find the perfect balance between the intensity and/or angle of swirl generated and a reduction in the high end flow dimension resulting in reduced top end performance. Further, the optimal preferred lateral direction of the swirl, from either the left or the right, varies with different IC engine configurations. It has also been determined that devices that attempt to generate swirl upstream of the intake valve deliver minimal to negative overall performance results.
Several attempts to create selectively variable intra-port swirl generators have been made such as Sakurai et al, U.S. Pat. No. 4,700,669 to Toyota and Khalighi et al, U.S. Pat. No. 4,827,883 to GM. These devices are designed to allow for on the fly variability and are very complicated and costly to implement and produce. These types of devices require major redesign of existing production engines and would therefore have extremely limited potential as an aftermarket product.
Additionally the ability to direct fuel delivery deeper in the center of an intake port closer to the intake valve and to make use of intra-port air flow dynamics to create specific low pressure low pressure points advantageous to creating a phase change in the fuel to a vapor has been discovered in testing to improve performance and efficiency.
It is to these considerations of ease of selectively variable swirl intensity and/or angle and direction as well as optimal location combined with improved fuel delivery at a low cost and with simplicity, ease of installation into existing IC engines even as an aftermarket add on that the here disclosed invention is specifically designed to address. The here disclosed invention takes advantage of the main obstruction within an intake tract, the intake valve stem, to actually create potential for an increase in top end flow dimension allowing for some additional lateral directional swirl to be introduced and the benefits therefore realized without reducing top end flow dimension allowing for improved top end performance. The here disclosed invention further allows, in certain situations, to actually reduce existing swirl and straighten the flow to affect higher top end flow dimension if so desired and to so with ease.
This application is related to and a continuation of provisional patent application No. 62/176,270 dated Feb. 18, 2015 & No. 62/231,678 dated Jul. 13, 2015 and includes SOME new matter not covered in the previous applications.
The typical modern IC engine port fuel injection system utilizes an electromagnetic solenoid based port fuel injector. Such systems generally allow for ease of removal and installation of the port fuel injectors onto the top of the intake manifold. Such systems generally allow for a significant range of free angled rotation of the fuel injector along its center longitudinal axis in the fully seated and installed position without impacting its performance or causing leaks or any other negative issue. By attaching a flow diverting blade to the intra-port tip end of the fuel injector it is possible to take advantage of the typical fuel injector externally selectively variable rotational angle range of motion to allow for ease of manual selection of the angle of the intra-port blade and create the precise intensity and/or angle and/or direction of air and fuel swirl desired for each individual cylinder therein. Further the opportunity to improve the fuel delivery created with the here disclosed invention.
A dual function fuel injector as disclosed herein can be accomplished either by integrating the flow diverting blade as integral to the final construction of a typical port fuel injector as depicted in
In preferred embodiment No. 1 a retro-fit version of a blade unit includes a small protruding lip is incorporated at the top end of the collar (
To aid in the retro-fit installation of the blade unit the collar ID section includes at least two (2) different internal dimension sections and is stepped as depicted in
To further aid in the final manipulation of the angle of the blade, relative to the fuel injector, visible angle markings upon the outer surface of the blade unit's collar can be applied as depicted in
In preferred embodiment No. 2 a retro-fit version of a blade unit includes a means by which the nozzle end's main O-ring seal arrangement is can be by-passed to allow an expanded open end collar section to extend above the fuel injector mounting boss on the intake manifold and therefore be visible after final installation as depicted in
In preferred embodiment No. 3, whether integral or retro-fit, the said blade unit may be machined or forged or cast or formed of various preferred materials not limited to and including, aluminum, titanium, magnesium, steel, stainless steel, copper, bronze, brass, carbon fiber or plastic.
The blade section itself may be machined or forged or cast or formed in various preferred cross sectional shapes not limited to and including hexagonal (as depicted in
Said embodiment including a means to divert fuel through all or a portion of the length of the blade section by means of a fuel port in various configurations machined therein as depicted in
Said embodiment including a tapered collar to allow for ease of installation in certain applications.
Said embodiment including a notched relief at various points along the leading or trailing edge of the blade section as depicted in
Said embodiment including a blade section with an angled distal tip end as depicted in
Any and/or all embodiments may include a main fuel injector nozzle designed to inject fuel in a pattern designed to enhance the overall performance of the duel function fuel injector.
Filing Document | Filing Date | Country | Kind |
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PCT/US2016/000059 | 7/13/2016 | WO | 00 |