The present disclosure relates to a rotary engine.
Engine technology provides various tradeoffs between power density and fuel consumption. Gas turbine engine technology provides reasonably high power densities, but at relatively small sizes, fuel consumption is relatively high and efficiencies are relatively low. Small diesel piston engines have reasonable fuel consumption but may be relatively heavy with power densities typically below approximately 0.5 hp/lb while equivalently sized four-stroke engines have power densities typically below approximately 0.8 hp/lb. Two-stroke engines have greater power densities than comparably sized four-stroke engines, but have relatively higher fuel consumption.
Various features will become apparent to those skilled in the art from the following detailed description of the disclosed non-limiting embodiment. The drawings that accompany the detailed description can be briefly described as follows:
Referring to
The first rotor 44 and the second rotor 46 have peripheral surfaces which include three circumferentially spaced apexes 44A, 46A respectively. Each apex 44A, 46A include a apex seal 44B, 46B, which are in a sliding sealing engagement with a peripheral surface 48P, 50P of the respective volumes 48, 50. The surfaces of the volumes 48, 50 in planes normal to the axis of rotation A are substantially those of a two-lobed epitrochoid while the surfaces of the rotors 44, 46 in the same planes are substantially those of the three-lobed inner envelope of the two-lobed epitrochoid.
In operation, air enters the engine 20 through the intake port 26 (
The shaft completes one revolution for every cycle, so there are three (3) crank revolutions for each complete rotor revolution. At the top dead center (TDC) position for the first rotor 44, the first rotor volume outlet port 48O and the first rotor volume inlet port 48I are in momentary communication. A supplemental compounding effect is thereby achieved as exhaust gases which are returned from the second rotor volume 50 through the second transfer duct 32 and first rotor volume inlet port 48I flow into the first rotor volume 48 then back into the first transfer duct 30 through the first rotor volume outlet port 48O for communication back into the second rotor volume 50. As the higher pressure exhaust gases are forced into the fixed volume of the first transfer duct 30, the residual compressed air within the first transfer duct 30 is forced into the second rotor volume 50. The residual compressed air from within the first transfer duct 30 is communicated into the second rotor volume 50 which thereby increases the effective compression ratio of the engine 10 through movement of the additional or supplemental air mass flow into the second rotor volume 50 to thereby increase or the initial pressure prior to the start of the second rotor 46 compression stroke. With the fixed, geometry defined compression ratio of the second rotor 46, the higher initial pressure for the second rotor 46 stroke results in a higher peak pressure from combustion. This higher pressure, combined with the increased air mass capture, results in increased power output for the engine 10.
Referring to
In one non-limiting embodiment, a relatively small amount of exhaust flow from the second rotor 46 is used to further charge the compressed air without actually ingesting exhaust gas into the second rotor volume 50. In other words, a relatively small portion of the exhaust gas flows from the second rotor volume 50 into the air charge of the first transfer duct 30 to provide minimal exhaust recirculation.
In another non-limiting embodiment, a more significant portion of exhaust gas is used to first push the compressed air from within the first transfer duct 30 into the second rotor volume 50 and further heat the second rotor intake charge air such that some portion of the exhaust gas flows into the second rotor volume 50 intake charge air as well. Although there may be a temperature effect, this is secondary to the pressure increase. Generally, the greater the portion of exhaust gas that is pushed in, the greater the supplemental compounding effect. That is, the basic effect is one of more moles of air within a fixed volume prior to the start of the second rotor compression stroke.
Both of the disclosed non-limiting embodiments result in increased efficiency and power which boosts the compression ratio. For each embodiment, there is also a continuum of design options based on the relationship of first rotor volume inlet port 48I and the first rotor volume outlet port 48O that achieve the same basic cycle functionality but to different extents.
In one non-limiting embodiment, the first rotor volume outlet port 48O and the first rotor volume inlet port 48I are located on either side of the first rotor volume 48 top-dead-center (TDC) position (
In another non-limiting embodiment, the first rotor volume outlet port 48O is located proximate the first rotor volume 48 TDC position and the first rotor volume inlet port 48I is located on a rotationally downstream side of the TDC position (
In another non-limiting embodiment, the first rotor volume outlet port 48O and the first rotor volume inlet port 48I are both located on a rotationally downstream side of TDC position (
It should be understood that like reference numerals identify corresponding or similar elements throughout the several drawings. It should also be understood that although a particular component arrangement is disclosed in the illustrated embodiment, other arrangements will benefit herefrom.
Although particular step sequences are shown, described, and claimed, it should be understood that steps may be performed in any order, separated or combined unless otherwise indicated and will still benefit from the present disclosure.
The foregoing description is exemplary rather than defined by the limitations within. Various non-limiting embodiments are disclosed herein, however, one of ordinary skill in the art would recognize that various modifications and variations in light of the above teachings will fall within the scope of the appended claims. It is therefore to be understood that within the scope of the appended claims, the disclosure may be practiced other than as specifically described. For that reason the appended claims should be studied to determine true scope and content.
The present disclosure claims priority to and incorporates herein U.S. Provisional Patent Application No. 61/103,702, filed Oct. 8, 2008.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2009/059957 | 10/8/2009 | WO | 00 | 3/23/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/042692 | 4/15/2010 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3139722 | Yokoi | Jul 1964 | A |
3228183 | Fritz Feller | Jan 1966 | A |
3236213 | Yokoi et al. | Feb 1966 | A |
3371654 | Garside | Mar 1968 | A |
3528084 | Hohenlohe | Sep 1970 | A |
3647327 | Manthey | Mar 1972 | A |
3732689 | Tado et al. | May 1973 | A |
3742917 | Butler, Jr. | Jul 1973 | A |
3782337 | Feller | Jan 1974 | A |
3783615 | Hubers | Jan 1974 | A |
3785352 | Date et al. | Jan 1974 | A |
3835818 | Catherwood | Sep 1974 | A |
3858557 | Myers et al. | Jan 1975 | A |
3908608 | Fox | Sep 1975 | A |
3930469 | Tabaczynski | Jan 1976 | A |
3931807 | Bloom | Jan 1976 | A |
3940925 | Kelley | Mar 1976 | A |
3951109 | Chappellier | Apr 1976 | A |
3970050 | Hoadley | Jul 1976 | A |
3971346 | McReynolds | Jul 1976 | A |
3995601 | Schwartz | Dec 1976 | A |
4002152 | Hoshi | Jan 1977 | A |
4037412 | Jones | Jul 1977 | A |
4086880 | Bates | May 1978 | A |
4106443 | Triulzi | Aug 1978 | A |
4106472 | Rusk | Aug 1978 | A |
4203410 | Ramer | May 1980 | A |
4239469 | Kemp | Dec 1980 | A |
4403581 | Rogachevsky | Sep 1983 | A |
4512302 | Bunce | Apr 1985 | A |
4516921 | Kemp | May 1985 | A |
4558669 | Kemp | Dec 1985 | A |
4791787 | Paul et al. | Dec 1988 | A |
4813388 | Yang | Mar 1989 | A |
4843821 | Paul et al. | Jul 1989 | A |
4912923 | Lin | Apr 1990 | A |
4964275 | Paul et al. | Oct 1990 | A |
5022366 | Abraham et al. | Jun 1991 | A |
5101782 | Yang | Apr 1992 | A |
5125379 | Linville | Jun 1992 | A |
5203307 | Burtis | Apr 1993 | A |
5305721 | Burtis | Apr 1994 | A |
5345758 | Bussing | Sep 1994 | A |
5353588 | Richard | Oct 1994 | A |
5479887 | Chen | Jan 1996 | A |
5497870 | Takashi | Mar 1996 | A |
5513489 | Bussing | May 1996 | A |
5640938 | Craze | Jun 1997 | A |
5755196 | Klassen | May 1998 | A |
5787856 | Dunton | Aug 1998 | A |
6036463 | Klassen | Mar 2000 | A |
6142758 | Taggett | Nov 2000 | A |
6164263 | Saint-Hilaire et al. | Dec 2000 | A |
6352063 | Weslake-Hill | Mar 2002 | B1 |
6434939 | Beveridge | Aug 2002 | B1 |
6520879 | Kawabata et al. | Feb 2003 | B2 |
6575719 | Manner et al. | Jun 2003 | B2 |
6634873 | Klassen | Oct 2003 | B2 |
6659744 | Raymond, Jr. | Dec 2003 | B1 |
6739852 | Klassen | May 2004 | B1 |
6935840 | Romani et al. | Aug 2005 | B2 |
7100566 | Stanishevskaya | Sep 2006 | B2 |
7178502 | Okulov | Feb 2007 | B2 |
7434563 | Kim | Oct 2008 | B2 |
8312859 | Rom et al. | Nov 2012 | B2 |
20100269782 | Minick et al. | Oct 2010 | A1 |
Number | Date | Country |
---|---|---|
2144489 | Mar 1985 | GB |
54057004 | May 1979 | JP |
3182632 | Aug 1991 | JP |
3194125 | Aug 1991 | JP |
WO2006043502 | Apr 2006 | JP |
2008138640 | Jun 2006 | JP |
Entry |
---|
Search Report and Written Opinion mailed May 24, 2010 for PCT/US2009/059957. |
Number | Date | Country | |
---|---|---|---|
20110174262 A1 | Jul 2011 | US |
Number | Date | Country | |
---|---|---|---|
61103702 | Oct 2008 | US |