Revolving outer body rotary vane compressor or expander
10309222 ยท 2019-06-04
Assignee
Inventors
Cpc classification
F04C18/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/336
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/321
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C11/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/332
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/322
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C3/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/336
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01C11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/336
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/332
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/332
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C3/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Some implementations of this invention relate to energy systems and more particularly to rotating componentry enabling shaft work, propulsion drive, electric power generation, jet propulsion and/or thermodynamic systems related to aerothermodynamic thrust and shaft power, waste heat recovered shaft power, ventilation, cooling, heat, pressure and/or vacuum generating devices. Some implementations pertain to the art of vane assemblies for eccentrically placed rotating partial admission compressors and expanders that may either be used together or in conjunction with other mechanical, electrical, hydraulic and/or pneumatic machineries. Some implementations further relate to fluid energy recovery mechanical devices, targeting the field of gas turbine engines, internal combustion engines, furnaces, rotary kilns, coolers and refrigeration rotary components and/or expansion nodes. Other implementations are described.
Claims
1. A rotary expander, comprising: a cylindrical rotatable housing with a cylindrical inner chamber that is defined by an inner cylindrical surface of the cylindrical rotatable housing; a cylindrical rotor that is placed within the cylindrical inner chamber and mounted eccentrically with respect to a center axis of the cylindrical rotatable housing, wherein the cylindrical rotor includes an outer cylindrical surface; a crescent shaped working volume that is formed between the inner cylindrical surface of the cylindrical rotatable housing and the outer cylindrical surface of the cylindrical rotor; and a vane assembly, comprising one of the following: (i) a rocking arm connected to a circularly-arced portion, wherein the rocking arm is pivotally mounted via a first hinge to the cylindrical rotor and wherein the circularly-arced portion is pivotally mounted via a second hinge to the cylindrical rotatable housing, wherein the circularly-arced portion is configured to extend sealingly from a slot in the cylindrical rotor to periodically divide the crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical rotor is mounted within the cylindrical rotatable housing such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical rotatable housing at a common tangency point, or (ii) a rocking arm connected to a circularly-arced portion, wherein the rocking arm is pivotally mounted via a first hinge to the cylindrical rotatable housing and wherein the circularly-arced portion is pivotally mounted via a second hinge to the cylindrical rotor, wherein the circularly-arced portion is configured to extend sealingly from a slot in the cylindrical rotatable housing to periodically divide the crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical rotor is mounted within the cylindrical rotatable housing such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical rotatable housing at a common tangency point; wherein the first working chamber is delimited by the outer cylindrical surface of the cylindrical rotor, the inner cylindrical surface of the cylindrical rotatable housing, and a first side surface of the circularly-arced portion and the second working chamber is delimited by the outer cylindrical surface of the cylindrical rotor, the inner cylindrical surface of the cylindrical rotatable housing, and a second side surface of the circularly-arced portion.
2. The rotary expander of claim 1, wherein at most two working chambers, consisting of the first working chamber and the second working chamber, are periodically formed depending on a position of the circularly-arced portion with respect to the crescent shaped working volume.
3. The rotary expander of claim 1, further comprising an inlet port and an exhaust port for regulating an admission time and duration of working fluid in the rotary expander to thereby prevent the working fluid from bypassing the crescent shape working volume and shortcutting the inlet and exhaust ports.
4. The rotary expander of claim 3, wherein the inlet port is formed in the cylindrical rotatable housing for admitting working fluid into the first working chamber.
5. The rotary expander of claim 3, wherein a first working cycle is defined over a first 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing, the first working cycle beginning when the circularly-arced portion crosses the common tangency point, and a second working cycle is defined by a second 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing, wherein the second 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing is consecutive to the first 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing; wherein, during the first working cycle, the rotary expander is configured to admit working fluid from the inlet port and expand the working fluid in the first working chamber to impart energy to the cylindrical rotatable housing, the cylindrical rotor, and the vane assembly from each of a forcing torque provided by the working fluid and a pressure of the working fluid, wherein the first working chamber is progressively enlarged as the working fluid expands, and wherein, during the second working cycle, the rotary expander is configured to discharge the expanded working fluid through an exhaust port.
6. A rotary compressor, comprising: a cylindrical rotatable housing with a cylindrical inner chamber that is defined by an inner cylindrical surface of the cylindrical rotatable housing; a cylindrical rotor that is placed within the cylindrical inner chamber and mounted eccentrically with respect to a center axis of the cylindrical rotatable housing, wherein the cylindrical rotor includes an outer cylindrical surface; a crescent shaped working volume that is formed between the inner cylindrical surface of the cylindrical rotatable housing and the outer cylindrical surface of the cylindrical rotor; a vane assembly, comprising one of the following: (i) a rocking arm connected to a circularly-arced portion, wherein the rocking arm is pivotally mounted via a first hinge to the cylindrical rotor and wherein the circularly-arced portion is pivotally mounted via a second hinge to the cylindrical rotatable housing, wherein the circularly-arced portion is configured to extend sealingly from a slot in the cylindrical rotor to periodically divide the crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical rotor is mounted within the cylindrical rotatable housing such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical rotatable housing at a common tangency point, or (ii) a rocking arm connected to a circularly-arced portion, wherein the rocking arm is pivotally mounted via a first hinge to the cylindrical rotatable housing and wherein the circularly-arced portion is pivotally mounted via a second hinge to the cylindrical rotor, wherein the circularly-arced portion is configured to extend sealingly from a slot in the cylindrical rotatable housing to periodically divide the crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical rotor is mounted within the cylindrical rotatable housing such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical rotatable housing at a common tangency point; an inlet port formed in the cylindrical rotatable housing for admitting a working fluid at an ambient pressure into the first working chamber; wherein the inlet port is positioned to prevent the working fluid from bypassing either the first working chamber or the second working chamber; and an outlet port equipped with a valve to regulate an exhaust time during which the working fluid is exhausted from the crescent shaped working volume to prevent the working fluid from bypassing either the first working chamber or the second working chamber, to prevent the working fluid from shortcutting the inlet and outlet ports, and to prevent the working fluid from entering back into the crescent shaped working volume from the outlet port.
7. The rotary compressor of claim 6, wherein a first working cycle is defined over an initial 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing, the first working cycle beginning when the circularly-arced portion crosses the common tangency point, and wherein a second working cycle is defined by a subsequent 360 clockwise or counterclockwise rotation of the cylindrical rotatable housing and the cylindrical rotor, wherein, during the first working cycle, the rotary compressor is configured to admit a working fluid at an ambient pressure from the inlet port to the first working chamber over the entire duration of the first working cycle, and wherein, during the second working cycle, the rotary compressor is configured to compress the working fluid to a higher pressure in the second working chamber by continuously diminishing the size of the second working chamber and to discharge the compressed working fluid through the outlet port; wherein rotation of the cylindrical rotatable housing causes a periodic sequence of discharges of compressed working fluid from the outlet port and the sequence is defined by a driving torque applied to, and a circumferential speed of, the cylindrical rotatable housing.
8. The rotary compressor of claim 6, wherein the valve comprises one of a check-valve or a rotating valve that is operationally synchronized with the cylindrical rotatable housing speed either mechanically or electrically.
9. A nested multistage rotary comprising: an outer rotary expander and an inner rotary expander radially nested within the outer rotary expander such that an output of the inner rotary expander is an input of the outer rotary expander; wherein the outer rotary expander comprises: a cylindrical rotatable housing with a cylindrical inner chamber that is defined by an inner cylindrical surface of the cylindrical rotatable housing; a cylindrical middle ring that is placed within the cylindrical inner chamber and mounted eccentrically with respect to a center axis of the cylindrical rotatable housing, wherein the cylindrical middle ring includes an inner cylindrical surface and an outer cylindrical surface; an outer crescent shaped working volume that is formed between the inner cylindrical surface of the cylindrical rotatable housing and the outer cylindrical surface of the cylindrical middle ring; and an outer vane assembly comprising a first circularly-arced portion that is pivotally mounted via respective hinges to each of the cylindrical rotatable housing and the cylindrical middle ring and configured to extend sealingly from a slot in the cylindrical rotatable housing to periodically divide the outer crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical middle ring is mounted within the cylindrical rotatable housing such that the inner cylindrical surface of the cylindrical rotatable housing is always sealingly engaged with the outer cylindrical surface of the cylindrical middle ring at a first common tangency point without any sliding frictional contact; an outer inlet port for the outer crescent shaped working volume that is located on the cylindrical middle ring, wherein the outer inlet port is configured to admit working fluid received from the inner rotary expander to the outer crescent shaped working volume; wherein the inner rotary expander comprises: a cylindrical rotor that is placed within the cylindrical middle ring and mounted eccentrically with respect to a center axis of the cylindrical middle ring, wherein the cylindrical rotor includes an outer cylindrical surface; an inner crescent shaped working volume that is formed between the inner cylindrical surface of the cylindrical middle ring and the outer cylindrical surface of the cylindrical rotor; an inner vane assembly, comprising a second circularly-arced portion that is pivotally mounted via respective hinges to each of the cylindrical rotor and the cylindrical middle ring and configured to extend sealingly from a slot in the cylindrical rotor to periodically divide the inner crescent shaped working volume into a third working chamber and a fourth working chamber, wherein the cylindrical rotor is mounted within the cylindrical middle ring such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical middle ring at a second common tangency point without any sliding frictional contact; and an inner inlet port connecting the inner crescent shaped working volume to an inlet tube running through a center axis of the cylindrical rotor, wherein the inner inlet port is configured to admit a working fluid into the inner crescent shaped working volume; wherein the inner crescent shaped working volume is in fluid communication with the outer inlet port of the outer rotary expander to provide working fluid from the inner crescent shaped working volume to the outer inlet port; and wherein the nested multistage rotary expander further comprises: an outlet port for working fluid to exit the nested multistage rotary expander; wherein both the outer inlet port and the inner inlet port are configured to admit working fluid into the respective periodically defined first, second, third, and fourth working chambers, and wherein the working fluid is expanded and expulsed from the outlet port in alternating full rotations of the cylindrical rotatable housing, the cylindrical middle ring, and the outer vane assembly in response to expansion of the working fluid in the first and second working chambers.
10. The nested multistage rotary expander of claim 9, wherein an initial working cycle is defined over a 360 clockwise rotation of the cylindrical middle ring, wherein a subsequent working cycle is initiated every time the second circularly-arced portion of the inner vane assembly crosses the second common tangency point; wherein, during the initial working cycle, the nested multistage expander is configured to admit working fluid into the third working chamber from the inner inlet port to fill the third working chamber and expand the admitted working fluid, wherein the working fluid admitted to the third working chamber imparts energy to, during expansion of the admitted working fluid, the cylindrical middle ring, the cylindrical rotor, and the inner vane assembly, whereby the third working chamber is progressively enlarged to the size of the inner crescent shaped working volume.
11. The nested multistage rotary expander of claim 9, wherein an initial working cycle is defined over a 360 clockwise rotation of the cylindrical rotatable housing and a subsequent working cycle is initiated every time the first circularly-arced portion of the outer vane assembly crosses the first common tangency point; wherein, during the initial working cycle, the nested multistage expander is configured to admit working fluid into the first working chamber from the fourth working chamber to impart energy to, during expansion of the working fluid admitted to the first working chamber, the cylindrical rotatable housing, the cylindrical middle ring, and the outer vane assembly whereby the first working chamber is progressively enlarged to the size of the outer crescent shaped working volume.
12. The nested multistage rotary expander of claim 11, wherein a second working cycle is defined over a consecutive 360 clockwise rotation following the initial working cycle, wherein, during the second working cycle, the nested multistage rotary expander is configured to direct expanded working fluid to the second working chamber and to discharge the expanded working fluid through the outlet port.
13. The nested multistage rotary expander of claim 9, further comprising a plurality of side plates configured and arranged to hermetically seal the inner crescent shaped working volume and the outer crescent shaped working volume to prevent working fluid from leaking from the inner crescent shaped working volume and the outer crescent shaped working volume.
14. The nested multistage rotary expander of claim 9, wherein the cylindrical rotatable housing, the cylindrical middle ring, and the cylindrical rotor have different tangential velocities.
15. The nested multistage rotary expander of claim 9, wherein the inner vane assembly partitions the working fluid into sequential batches of working fluid.
16. A nested multistage rotary compressor comprising: an outer rotary compressor and an inner rotary compressor radially nested within the outer rotary compressor such that an output of the outer rotary compressor is an input of the inner rotary compressor; wherein the outer rotary compressor comprises: a cylindrical rotatable housing with a cylindrical inner chamber that is defined by an inner cylindrical surface of the cylindrical rotatable housing; a cylindrical middle ring that is placed within the cylindrical inner chamber and mounted eccentrically with respect to a center axis of the cylindrical rotatable housing, wherein the cylindrical middle ring includes an inner cylindrical surface and an outer cylindrical surface; an outer crescent shaped working volume that is formed between the inner cylindrical surface of the cylindrical rotatable housing and the outer cylindrical surface of the cylindrical middle ring; an outer vane assembly comprising a first circularly-arced portion that is pivotally mounted via respective hinges to each of the cylindrical rotatable housing and the cylindrical middle ring and configured to extend sealingly from a slot in the cylindrical rotatable housing to periodically divide the outer crescent shaped working volume into a first working chamber and a second working chamber, wherein the cylindrical middle ring is mounted within the cylindrical rotatable housing such that the inner cylindrical surface of the cylindrical rotatable housing is always sealingly engaged with the outer cylindrical surface of the cylindrical middle ring at a first common tangency point without any sliding frictional contact; an inlet port configured to admit a working fluid to the outer crescent shaped working volume; and an outlet port configured to provide compressed working fluid to the inner rotary compressor; wherein the inner rotary compressor comprises: a cylindrical rotor that is placed within the cylindrical middle ring and mounted eccentrically with respect to a center axis of the cylindrical middle ring, wherein the cylindrical rotor includes an outer cylindrical surface; an inner crescent shaped working volume that is formed the inner cylindrical surface of the cylindrical middle ring and the outer cylindrical surface of the cylindrical rotor; an inner vane assembly, comprising a second circularly arced portion that is pivotally mounted via respective hinges to each of the cylindrical rotor and the cylindrical middle ring and configured to extend sealingly from a slot in the cylindrical rotor to periodically divide the inner crescent shaped working volume into a third working chamber and a fourth working chamber, wherein the cylindrical rotor is mounted within the cylindrical middle ring such that the outer cylindrical surface of the cylindrical rotor is always sealingly engaged with the inner cylindrical surface of the cylindrical middle ring at a second common tangency point without any sliding frictional contact; wherein the nested multistage rotary compressor further comprises: an exhaust port connecting the inner crescent shaped working volume to an outlet tube running through the center axis of the cylindrical rotor, wherein the exhaust port is configured to discharge working fluid from the inner rotary compressor with each rotation of the cylindrical middle ring, the cylindrical rotor, and the inner crescent shaped working volume in response to an input driving torque to the inner rotary compressor and a circumferential speed of the cylindrical rotatable housing; wherein an initial working cycle is defined over a 360 counter-clockwise rotation of the cylindrical rotatable housing and a subsequent working cycle is defined over a 360 counter-clockwise rotation of the cylindrical middle ring and the cylindrical rotor, wherein the initial working cycle begins when the first circularly-arced portion crosses the first common tangency point, wherein, during the initial working cycle, the nested multistage rotary compressor is configured to admit working fluid at ambient pressure from the inlet port during the entire initial working cycle, wherein, during the subsequent working cycle, the nested multistage rotary compressor is configured to compress the working fluid to a higher pressure in the second working chamber by continuously diminishing the volume of the second working chamber and to discharge the compressed working fluid through the outlet port from the outer rotary compressor to the inner rotary compressor; and wherein, during the subsequent working cycle, the nested multistage rotary compressor is configured to further compress the working fluid in the third and fourth working chambers and to discharge the further compressed working fluid through the exhaust port.
17. The nested multistage rotary compressor of claim 16, wherein the cylindrical rotatable housing is rotatable 360 around the center axis of the cylindrical rotatable housing.
18. The nested multistage rotary compressor of claim 17, wherein the cylindrical middle ring is rotatable 360 around the center axis of the cylindrical middle ring.
19. The nested multistage rotary compressor of claim 18, wherein the cylindrical rotor is rotatable 360 around a fixed center axis of the cylindrical rotor.
20. The nested multistage rotary compressor of claim 19, wherein the center axis of the cylindrical middle ring is located closer to the center axis of the cylindrical rotatable housing than the fixed center axis of the cylindrical rotor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order that the manner in which the above recited and other features and advantages of the present invention are obtained, a more particular description of the invention will be rendered by reference to specific embodiments thereof, at least one of which is illustrated in the appended drawing. Understanding that the drawing depicts only typical embodiments of the present invention and is not, therefore, to be considered as limiting the scope of the invention, the present invention will be described and explained with additional specificity and detail through the use of the accompanying drawing in which:
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
(13) Some embodiments of the described invention are configured to realize high compression ratios within fully hermetic compressor volumes with minimum pressure and mass flow leakage and to generate high torque in expanders following a long power extraction phase. Some embodiments are further configured to provide a vane linking a rotatable housing and a rotor eccentrically placed within housing. Some embodiments are depicted in
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(19) In accordance with some embodiments, a rotary compressor unit is similar in component to the expander unit but the rotational direction and the inlet and exit port are reversed. Indeed, in some embodiments, expander has a clockwise rotation and non-revolving port (116) is fluid inlet and revolving port (124) is fluid exit. For compressor operation, in some embodiments, rotation is counterclockwise and ports are interchanged: now, revolving port (124) is fluid inlet and port (116) is fluid exit.
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