The present disclosure, in some embodiments thereof, relates to a variable valve timing mechanism for an internal combustion engine. More specifically, it comprises at least one set of phase control assembly adapted to operate with dual camshafts. The phase control assemblies can independently and continuously modify both intake and exhaust valve timing and valve lift, optimized for various running conditions of the engine.
There are two common mechanisms to manipulate valves of an internal combustion engine. One is Variable Valve Timing (VVT), which modifies timing of opening and closing of intake valves. The other is Variable Valve Lift (VVL), which modifies the lift and duration of exhaust valves. Automakers employs VVT and/or VVL in various models of automobiles to optimize engine performance best suited for their performance requirements.
One of the challenges automakers faces is cost effectiveness of manufacturing such a control mechanism suitable for a wide range of engine speed. For an engine operating at 3000 revolutions per minute, a camshaft will rotate 25 cycles per second. A VVT thus requires very high precision in order to offer any performance benefits.
The present disclosure provides a mechanism for an engine to fine tune its intake timing, intake lift, exhaust timing, and exhaust lift independently based on its need at various speed level. The aim is to minimize fuel consumption and maximize engine output suitable for its performance level. A brief comparison of the present disclosure with prior art is presented in
A pair of camshafts is employed for intake valves. A first differential gear sets is installed at a first end of the first intake camshaft connecting to the crankshaft. A second differential gear set is installed at a second end of the first intake camshaft connecting to the second intake camshaft. Each differential gear set can adjust phase angle accordingly to modify intake valve timing and intake valve lift. This set up is duplicated for the exhaust valves to modulate exhaust valve timing and exhaust valve lift.
In a variant, a dual camshaft phase control assembly comprising a first phase controller connecting a crankshaft and a first end of a first camshaft, wherein the first phase controller comprises a first gear system to modulate phase relations between the crankshaft and the first camshaft. A second phase controller connects a second end of the first camshaft and a second end of a second camshaft, wherein the second phase controller comprises a second gear system to modulate phase relations between the first and second camshafts. Means to combine rotational output of the first and the second camshafts employs a series of levers.
In another variant, the first gear system of the dual camshaft phase control assembly further comprises a first set of differential bevel gears with a pair of input and output gears to receive and to transmit torque from the crankshaft which in turn drive the first camshaft. A pair of control and spider gears is in meshed relations with the input and output gears. An actuator, driven by a first control module in communication with a vehicle's central computing system, can rotate the control gear to modulate phase relations between the crankshaft and the first camshaft.
In yet another variant, the input and output gears, the actuator, and the first control module of the first gear system are arranged in a serial fashion sharing a common rotational axis with the first camshaft.
In a further variant, the first control module drives the output gear of the first gear system via a spur gear.
In a variant, the second gear system of the dual camshaft phase control assembly further comprises a second set of differential bevel gears with a pair of input and output gears to receive and to transmit torque from the first camshaft which in turn drive the second camshaft. A pair of control and spider gears is in meshed relations with the input and output gears. An actuator, driven by a second control module in communication with the vehicle's central computing system, can rotate the control gear to modulate phase relations between the first and second camshafts.
In another variant, the input and output gears, the actuator, and the second control module of the second gear system are arranged in a serial fashion sharing a common rotational axis with the second camshaft.
In yet another variant the second control module drives the output gear of the second gear system via a spur gear.
In a variant, the first gear system of the dual camshaft phase control assembly further comprises a first set of epicyclical gears with a sun gear, in gear mesh with a plurality of planet gears, to receive and to transmit torque from the crankshaft, which in turn drives the first camshaft. A ring gear encapsulates the planet gears via gear mesh. A spur gear drives the ring gear to modulate phase relations between the crankshaft and the first camshaft as instructed by a first control module, which is in communication with a vehicle's central computing system.
In anther variant, the sun gear of the first gear system shares a common rotational axis with the first camshaft.
In yet another variant, the second gear system of the dual camshaft phase control assembly further comprises a second set of epicyclical gears with a sun gear, surrounded by a plurality of planet gears via gear mesh, to receive and to transmit torque from the first camshaft which in turn drive the second camshaft. A ring gear encapsulates the planet gears via gear mesh. A spur gear drives the ring gear to modulate phase relations between the first and the second camshafts as instructed by a second control module, which is in communication with a vehicle's central computing system.
In a further variant, the sun gear of the second gear system shares a common rotational axis with the second camshaft.
In another variant, the crankshaft and the first camshaft are connected via a belt.
In a variant, means to combine rotational output of the first and the second camshafts further comprises a plurality of levers each with a first section configured to be in contact with a first camshaft lobe, a second section in connection with the first section and configured to be in contact with a second camshaft lobe, and a cam prominent which drives an engine valve.
In another variant, the means to combine rotational output of the first and the second camshafts further employs a plurality of levers, arranged at a pre-determined interval apart from one another, operating in conjunction with the first and the second camshafts lobes to drive a plurality of engine valves via corresponding cam prominents.
In yet another variant, the first and the second camshafts of the dual camshaft phase control assembly are substantially parallel lengthwise.
Other features and aspects of the invention will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, which illustrate, by way of example, the features in accordance with embodiments of the invention. The summary is not intended to limit the scope of the invention, which is defined solely by the claims attached hereto.
Unless otherwise defined, all technical and/or scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the invention pertains. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of embodiment of the invention, exemplary methods and/or materials are described below. In case of conflict, the patent specification, including definitions, will control. In addition, the materials, methods, and examples are illustrative only and are not intended to be necessarily limiting.
The present disclosure, in accordance with one or more various embodiments, is described in detail with reference to the following figures. The drawings are provided for purposes of illustration only and to merely depict typical or exemplary embodiments of the invention. These drawings are provided to facilitate the reader's understanding of the invention and shall not be considered limiting of the breadth, scope, or applicability of the invention. It should be noted that for clarity and ease of illustration these drawings are not necessarily made to scale.
Some of the figures included herein illustrate various embodiments of the invention from different viewing angles. Although the accompanying descriptive text may refer to such views as “top,” “bottom” or “side” views, such references are merely descriptive and do not imply or require that the invention be implemented or used in a particular spatial orientation unless explicitly stated otherwise.
The figures are not intended to be exhaustive or to limit the invention to the precise form disclosed. It should be understood that the invention can be practiced with modification and alteration, and that the invention be limited only by the claims and the equivalents thereof.
From time-to-time, the present disclosure is described herein in terms of example environments. Description in terms of these environments is provided to allow the various features and of the invention to be portrayed in the context of an exemplary application. After reading this description, it will become apparent to one of ordinary skill in the art how the invention can be implemented in different and alternative environments.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as is commonly understood by one of ordinary skill in the art to which this invention belongs. All patents, applications, published applications and other publications referred to herein are incorporated by reference in their entirety. If a definition set forth in this section is contrary to or otherwise inconsistent with a definition set forth in applications, published applications and other publications that are herein incorporated by reference, the definition set forth in this document prevails over the definition that is incorporated herein by reference.
The present disclosure, in some embodiments thereof, relates to a variable valve timing mechanism for an internal combustion engine. More specifically, it comprises at least one set of phase control assembly adapted to operate with dual camshafts. The phase control assemblies can independently and continuously modify both intake and exhaust valve timing and valve lift, optimized for various running conditions of the engine.
Referring to
Camshafts 41 and 43 can be driven directly by crankshaft 51 via a chain or a belt in meshed relations with gears connecting gear sets 21 and 23. Camshafts 42 and 44 can be driven indirectly by crankshaft 51 via ring gears, in meshed relations with camshafts 41 and 43, and also connecting gear sets 22 and 24.
Camshafts Sensor 01 measures crankshaft angle. Sensors 02 and 03 measure intake camshafts' angle (41 and 42) respectively. Sensors 04 and 05 measure exhaust camshaft's angle respectively (43 and 44). All sensor measurements are taken in real time, and their output signals are constantly transmitted to an automobile's main computer.
Each differential gear set comprises a control shaft installed coaxially at the end of a camshaft, and can be independently adjusted via an actuator to change its phase (or angular) relations with the camshaft. Actuator 31 rotates control shaft 11 of differential gear set 21 to advance or to retard phase relations between crankshaft and first intake camshaft 41. Actuator 32 rotates control shaft 12 of differential gear set 22 to advance or to retard phase relations between first intake camshaft 41 and second intake camshaft 42. Actuator 33 rotates control shaft 13 of differential gear set 23 to advance or to retard phase relations between crankshaft and first exhaust camshaft 43. Actuator 34 rotates control shaft 14 of differential gear set 24 to advance or to retard phase relations between first exhaust camshaft 43 and second exhaust camshaft 44.
Note that gears 66, 67, 64, and 65 do not need to be identical, so long as the differential and phase change functionalities are preserved. Parameters, such as sizes and scale, are not drawn in proportion, and can take different values based on an engine's particular needs. Figures are for exemplary illustration purpose only. Variations are acceptable for different gear mesh angle, ratio, whether to use straight bevel teeth or spiral bevel teeth etc.
When phase shift is needed either in the advance or in the retard direction between first and second intake camshafts 41 and 42, actuator 32 rotates control shaft 12, which rotates control gear 67 around axis 120 several degrees forward or backward. This additional rotation, whether forward (in addition) or backward (in subtraction), propagates through meshed gears 64, 65, 66, housing 63, and ring gear 62, which drives second intake camshaft 42. The actual amount of phase shift and phase shift timing is controlled by the automobile's main computer system, taken into account various parameters such as engine speed, load, camshaft sensors (02 and 03) readings etc.
A top and a side view of the dual camshafts with phase control assembly installed are illustrated in
As both camshafts lobes rotate, it pushes against lever 553, and translate the motion through cam prominent 554 to push onto spring 551, which in turn, lead to the opening and closing of valve 552.
First camshaft and second camshaft are connected via a series of levers 553 (
As the crankshaft drives the first camshaft +20 or −20 degrees in
In
In an example illustrated in
It should be noted that the effects of phase shift, whether introduced via a differential gear set or via an epicyclical gear set is effectively equivalent.
While various embodiments of the present disclosure have been described above, it should be understood that they have been presented by way of example only, and not of limitation. Likewise, the various diagrams may depict an example architectural or other configuration for the invention, which is done to aid in understanding the features and functionality that can be included in the invention. The invention is not restricted to the illustrated example architectures or configurations, but the desired features can be implemented using a variety of alternative architectures and configurations. Indeed, it will be apparent to one of skill in the art how alternative functional, logical or physical partitioning and configurations can be implemented to achieve the desired features of the present disclosure. Also, a multitude of different constituent module names other than those depicted herein can be applied to the various partitions.
Although the invention is described above in terms of various exemplary embodiments and implementations, it should be understood that the various features, aspects and functionality described in one or more of the individual embodiments are not limited in their applicability to the particular embodiments with which they are described, but instead can be applied, alone or in various combinations, to one or more of the other embodiments of the invention, whether or not such embodiments are described and whether or not such features are presented as being a part of a described embodiment. Thus the breadth and scope of the present disclosure should not be limited by any of the above-described exemplary embodiments.
Terms and phrases used in this document, and variations thereof, unless otherwise expressly stated, should be construed as open ended as opposed to limiting. As examples of the foregoing: the term “including” should be read as meaning “including, without limitation” or the like; the term “example” is used to provide exemplary instances of the item in discussion, not an exhaustive or limiting list thereof; the terms “a” or “an” should be read as meaning “at least one,” “one or more” or the like; and adjectives such as “conventional,” “traditional,” “normal,” “standard,” “known” and terms of similar meaning should not be construed as limiting the item described to a given time period or to an item available as of a given time, but instead should be read to encompass conventional, traditional, normal, or standard technologies that may be available or known now or at any time in the future. Likewise, where this document refers to technologies that would be apparent or known to one of ordinary skill in the art, such technologies encompass those apparent or known to the skilled artisan now or at any time in the future.
A group of items linked with the conjunction “and” should not be read as requiring that each and every one of those items be present in the grouping, but rather should be read as “and/or” unless expressly stated otherwise. Similarly, a group of items linked with the conjunction “or” should not be read as requiring mutual exclusivity among that group, but rather should also be read as “and/or” unless expressly stated otherwise. Furthermore, although items, elements or components of the invention may be described or claimed in the singular, the plural is contemplated to be within the scope thereof unless limitation to the singular is explicitly stated.
The presence of broadening words and phrases such as “one or more,” “at least,” “but not limited to” or other like phrases in some instances shall not be read to mean that the narrower case is intended or required in instances where such broadening phrases may be absent.
It is appreciated that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable sub-combination or as suitable in any other described embodiment of the invention. Certain features described in the context of various embodiments are not to be considered essential features of those embodiments, unless the embodiment is inoperative without those elements.
This Application claims priority to an U.S. Provisional Application No. 62/647,166, filed on Mar. 23, 2018, which is hereby incorporated herein by reference in its entirety.
Number | Date | Country | |
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62647166 | Mar 2018 | US |