The present application relates generally to an actuator for use in internal combustion engines.
Internal combustion engines require various control methods and associated hardware for performance, fuel economy and/or emission control. Some of these involve the control of fluids in multiple flow paths. Some of the multiple flow paths may be substantially parallel, such as the opposite banks of a multiple cylinder V-engine.
Actuators for regulating the fluids in a flow path have been vacuum or electronically driven, but with low resolution, low accuracy of adjustment, and with excess “play” in the linkages. In regulating two flow paths multiple actuators have been used, but synchronization of their operation is difficult. The actuator disclosed herein is a simplified actuator that improves reliability, ease of assembly and reduced cost, and has improved accuracy and repeatability in regulating fluid flow in multiple flow paths.
In one aspect, disclosed herein is an actuator for regulating the flow of fluids in first and second flow paths of an internal combustion engine. The actuator includes a motor having a rotatable drive shaft, a gear assembly driven by the drive shaft of the motor, a first output shaft rotated by the gear assembly to regulate the flow of fluids in a first flow path, and a second output shaft rotated by the gear assembly to regulate the flow of fluids in a second flow path. The first output shaft and the second output shaft rotate in opposite directions.
In another aspect, disclosed herein is an intake manifold assembly with an actuator for regulating the flow of fluids in an internal combustion engine. The intake manifold assembly includes an intake manifold having a first flow path and a second flow path, and an actuator attached thereto. The actuator comprises a motor having a rotatable drive shaft, a gear assembly driven by the drive shaft of the motor, a first output shaft rotated by the gear assembly to regulate the flow of fluids in the first flow path, and a second output shaft rotated by the gear assembly to regulate the flow of fluids in the second flow path. The first output shaft and the second output shaft rotate in opposite directions.
The following detailed description is intended to be representative only and not limiting as to the design and placement of components with an actuator. Many variations can be devised by one skilled in the art, that is, to those who have knowledge or experience in this area of technology. Such variations are included within the scope of the present invention. The following discussion of embodiments of the actuator will illustrate the general principles of the invention, examples of which are additionally illustrated in the accompanying drawings.
The term “fluid” as used herein means any phase of matter capable of flowing, i.e., liquids, gases, suspensions, colloids, etc.
The dual output actuators disclosed herein incorporate two rotary shaft outputs. Having two rotary shaft outputs is advantageous in that the shafts may be spaced on a custom basis to exactly match the configuration of the flow systems and paths of interest. Additionally, as disclosed herein, the rotary outputs are mainly contained within a sealed unit as well as their connection to the gears and a motor that drives the gears, which provides the advantage of protecting the rotary outputs, gears, etc. from external damage, debris, contaminants, snow, water, ice, and the like. Various configurations of the gears, as disclosed herein, make it possible to advantageously control the linkages connecting the rotary shaft outputs to the flow system control means, such as a valve, for example, of an intake manifold, to precisely open and close the flow system for fluid communication with other engine parts, such as a lower intake manifold or the cylinders of an internal combustion engine.
Referring to
The first and second valves may be part of the internal combustion engine. In one embodiment the first valve may regulate a primary intake air flow and the second valve may regulate a secondary flow, such as idle bypass air, positive crankshaft ventilation scavenged mixture, purge vapor, or exhaust gas recirculation gases. In another embodiment, the first and second valves may be part of an intake manifold. In particular, the first and second valves may be in opposite banks of the intake manifold, and may be in substantially parallel flow paths.
The actuator 10 may include a control circuit 11 that operates the motor 12, a base 30, a retaining clip 32, a plug 33, a bearing 34, and a magnet 36. The retaining clip 32 allows the drive shaft 14 and bearing 34 interface to correctly align with the motor, and gear assembly for reduced radial runout, which reduces the potential for excess friction and wear. The bearing 34 may be a thrust bearing. The thrust bearing may be a bidirectional bearing, and further may be a low-friction bearing. The drive shaft 14 may have a collar near the end farthest from the motor 12. The collar may engage the bearing 34 for low-friction rotations of the drive shaft 14.
In
In
In another embodiment, illustrated in
Referring to
Referring now to
The driven gear 50 includes teeth 54 arranged for meshed engagement with the teeth of another gear, for example, a worm gear. The driven gear 50 also includes a receiving portion 58 that includes an opening shaped to receive a portion of an output shaft 56 including the first or second output shafts 18, 20 of the previously described embodiments. The portion of the output shaft 56 to be received by the driven gear 50 may be shaped such that the output shaft 56 will turn with the driven gear 50 without slipping rotationally and without slipping axially out of the driven gear 50. In one embodiment, the portion of the output shaft 56 to be received by the driven gear 50 may be knurled. In another embodiment, the portion of the output shaft 56 to be received by the driven gear may have two sets of parallel sides such that the corners of the output shaft 56 fit tightly into the receiving portion 58 of the driven gear 50.
Referring now to
In one embodiment, the gear assembly 16 and linkages 42, 44 are designed so that the first valve and the second valve are actuated at the same time and are moved to the same degree. In another embodiment, the gear assembly 16 and linkages 42, 44 are designed so that the first and second valves are actuated at the same time and are moved proportionally to differing degrees. This embodiment may be appropriate for a multiple staged intake manifold, or a system having a dual or multiple staged intake manifold coupled with a secondary system, such as a charge motion control valve(s). In yet another embodiment, the gear assembly 16 and linkages 42, 44 are designed so that the first and second valves are actuated at different times, i.e., the valves have staggered actuation. Even in the case of staggered actuation, however, the gear assembly 16 and linkages 42, 44 may further be designed so that the first and second valves simultaneously reach their fully open position.
It will be appreciated that an actuator in accordance with the present invention may be provided in various configurations. Any variety of suitable materials of construction, configurations, shapes and sizes for the components and methods of connecting the components may be utilized to meet the particular needs and requirements of an end user. It will be apparent to those skilled in the art that various modifications can be made in the design and construction of such an actuator without departing from the scope or spirit of the present invention, and that the claims are not limited to the preferred embodiments illustrated.
Number | Name | Date | Kind |
---|---|---|---|
2349157 | Ford et al. | May 1944 | A |
2859640 | Geyer | Nov 1958 | A |
3981624 | Brandon | Sep 1976 | A |
4084451 | Ward | Apr 1978 | A |
4182168 | Desch | Jan 1980 | A |
4304202 | Schofield | Dec 1981 | A |
4471733 | Tangorra et al. | Sep 1984 | A |
5099805 | Ingalls | Mar 1992 | A |
5156119 | Suga | Oct 1992 | A |
5168954 | Nakaniwa et al. | Dec 1992 | A |
5385062 | Menke | Jan 1995 | A |
5687691 | Kaiser et al. | Nov 1997 | A |
5950765 | Pearson et al. | Sep 1999 | A |
5983937 | Makihara et al. | Nov 1999 | A |
6032625 | Schwegler | Mar 2000 | A |
6125819 | Strieber et al. | Oct 2000 | A |
6276664 | Keller | Aug 2001 | B1 |
6439104 | Tonogai et al. | Aug 2002 | B1 |
6895926 | Moreau et al. | May 2005 | B1 |
6955149 | Christie et al. | Oct 2005 | B1 |
7011066 | Ward et al. | Mar 2006 | B2 |
7089909 | Moschini et al. | Aug 2006 | B2 |
7111602 | Sturdy et al. | Sep 2006 | B2 |
7140151 | Spaziani et al. | Nov 2006 | B2 |
7213557 | Kondo et al. | May 2007 | B2 |
20010027146 | Spaziani et al. | Oct 2001 | A1 |
20060081208 | Sturdy et al. | Apr 2006 | A1 |
20060191736 | Maeda et al. | Aug 2006 | A1 |
20060272613 | Bellato et al. | Dec 2006 | A1 |
20070199541 | Fukami et al. | Aug 2007 | A1 |
Number | Date | Country | |
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20100059700 A1 | Mar 2010 | US |