Claims
- 1. A power generator, comprising:
a combustion engine having at least one combustion chamber, and at least one work transfer apparatus, and a work output apparatus; said combustion region receiving; a supply of noble gas; a supply of oxygen; and a supply of fuel.
- 2. The power generator of claim 1, wherein said fuel is a hydrocarbon fuel.
- 3. The power generator of claim 1, wherein said engine is an internal combustion engine, further including:
an intake manifold; and at least one injector communicable with said combustion chamber; wherein said fuel and noble gas are introduced to said combustion chamber via said manifold.
- 4. The power generator of claim 3, further including an exhaust extending from said combustion chamber and configured to pass products of combustion therethrough; and
a secondary recovery system located in fluid communication with said exhaust including an expansion mechanism therein.
- 5. The power generator of claim 4; wherein said secondary recovery system includes:
a first stage configured and arranged to receive exhaust from said exhaust and expand said exhaust therein and pass said exhaust through a secondary exhaust port.
- 6. The power generator of claim 5, further including a second stage configured to receive said exhaust from said first stage, and further expand said exhaust and emit said exhaust therefrom.
- 7. The power generator of claim 6, further including a separator fluidly connected to the exhaust of at least one of said first and second stages.
- 8. The power generator of claim 3, further including sealable passages to transfer fuel, oxygen and noble gasses to the combustion chamber with minimal intrusion of ambient air therein.
- 9. The power generator of claim 8, further including an air chiller having an inlet for receiving air, wherein said chiller includes at least one flow medium extending therefrom for flowing at least one of argon or oxygen therefrom.
- 10. The power generator of claim 9 wherein said medium flows oxygen to a fuel injector in selected fluid communication with said combustion chamber.
- 11. The power generator of claim 5, wherein the exhaust is passed through a biomass.
- 12. The power generator of claim 11, wherein said biomass includes:
a biomass field of a plant material; an inlet for receiving CO2 from the exhaust said engine; an outlet for transporting the gasses emitted by said biomass for further processing.
- 13. The power generator of claim 12, wherein said biomass is an algae field.
- 14. The power generator of claim 12, wherein said gasses emitted by said biomass are oxygen.
- 15. The power generator of claim 14, further including a biomass recovery system, said biomass recovery system converting said biomass into a hydrocarbon.
- 16. The power generator of claim 15, further including a regeneration transport system to provide said hydrocarbons generated from said biomass to said combustion chamber of said engine.
- 17. The power generator of claim 3, further including:
a fuel line extendable between said injector and a supply of fuel and selectively communicable with said injector; and said manifold selectively communicable with a supply of ambient air; and a switcher, selectively communicating said engine with:
a supply of fuel and noble gas to said manifold and a supply of combustion gas to said injector; or a supply of air to said manifold and a supply of fuel to said injector.
- 18. The power generator of claim 17, further including a drive train connected to the power output thereof, said drive train providing propulsion for a vehicle.
- 19. A method of generating power, comprising the steps of:
providing a combustion location; and providing to said combustion volume a noble gas, a combustion gas and a fuel.
- 20. The method of claim 19, further including the step of selectively excluding air from the combustion volume.
- 21. The method of claim 20, further including the steps of:
combusting said combustion gas and fuel in the combustion volume; exhausting, from said combustion volume, an exhaust stream of the noble gas and the products of combustion of said combustion gas and said fuel; passing exhaust stream through an additionally energy recovery device; and recovering energy from the exhaust stream.
- 22. The method of claim 20, further including the steps of:
directing the exhaust stream from the additional energy recovery device; and separating, from the exhaust stream, the individual components thereof.
- 23. The method of claim 22, wherein the exhaust stream includes CO2, H2O and the noble gas.
- 24. The method of claim 23, further including the steps of:
providing a biomass; flowing the CO2 to the biomass: exposing the biomass to the CO2 and light to cause the emission of O2 and the growth of the biomass; recovering the O2 and directing it to the combustion volume; and converting the biomass to a hydrocarbon fuel.
- 25. The method of claim 24, further including the step of providing the biomass generated biomass fuel to the engine.
- 26. The method of claim 19, further including the steps of:
providing the noble gas and fuel to the combustion volume in a first mixture; separately providing the combustion gas to the combustion volume.
- 27. The method of claim 26, further including the step of providing oxygen as the combustion gas by removing the non oxygen species from ambient air.
- 28. The method of claim 26, further including the step of supplying a source of purified oxygen as the combustion gas.
- 29. The method of claim 26, further including the step of selectively supplying a mixture of air and fuel to the combustion chamber, rather than a mixture of fuel, noble gas and combustion gas.
- 30. The method of claim 29, further including the steps of providing a manifold in communication with the combustion volume and an injector in communication with the combustion volume.
- 31. The method of claim 19, further including the steps of:
separating, from the exhaust of the combustion volume, at least the noble gas; and reusing the noble gas for introduction to the combustion volume.
- 32. The method of claim 31, further including the steps of:
recovering H2O from the exhaust of the combusted materials of the combustion volume; reusing the H2O to provide cooling to the combustion chamber.
- 33. The method of claim 32, further including the steps of:
providing a vehicle having a rotational propulsion input: providing an output shaft from the power generator coupling an output shaft of the power generator to the propulsion input.
- 34. The method of claim 33, where the vehicle is a ship, a train or a motor vehicle.
- 35. A power generator, comprising:
a supply of gas for the combustion of fuel therewith, said supply having substantially only a single species of gas therewith; a supply of fuel; a combustion chamber operatively coupled in fluid communication with said supply of gas and said supply of fuel and operatively coupled to an exhaust; a turbine in fluid communication with said exhaust and in fluid communication with a secondary exhaust therefrom, and further having an output shaft; a steam turbine in fluid communication with said secondary exhaust, said steam turbine further including a second output shaft.
- 36. The power generator of claim 35, further including a generator coupled to at least one of said output shaft and said second output shaft.
- 37. The power generator of claim 36, further including:
a fuel supply separator; and a gas for combustion separator.
- 38. The power generator of claim 37, wherein:
said gas for combustion separator includes:
an ambient air intake: a chiller section capable of separating, from a stream of air brought into said separator, at least the nitrogen therein and leave behind, for combustion, at least the oxygen components of the air.
- 39. The power generator of claim 37, wherein:
said fuel supply separator includes:
a fuel intake: a chiller section capable of separating, from a stream of fuel brought into said separator, at least the nitrogen therein.
- 40. The power generator of claim 35, wherein said gas for combustion is high purity oxygen.
- 41. The power generator of claim 40, further including a biomass;
a exhaust gas separator; a separator for separating oxygen from the environment of said biomass; a converter for converting the biomass to fuel to said engine combustion chamber; wherein, said power generator generates electricity using at least 75% of its operating fuel as fuel converted from said biomass.
- 42. The power generator of claim 40 further including additional, non-biomass based, solar generation.
- 43. The apparatus of claim 42, wherein said solar generation includes:
a plurality of solar heaters a tank; and a steam turbine connected to the solar heaters and tank for the passage of superheated water therethrough.
- 44. The apparatus of claim 43, wherein:
said solar generation alone provides a full rated capacity of a plant operated during the peak need and peak solar hours; and said steam turbine may be selectively energized by the passage of solar generation superheated water or from the exhaust stream of a gas turbine.
- 45. The apparatus of claim 44, wherein the solar generation may include:
hot thermal fluid heated by solar collectors or hot thermal fluid that had been heated by solar collectors and is stored for this purpose; biomass fuel grown on the site of the power generator; and biomass fuel produced at off-site location and brought to the site.
- 46. A method of generating power; comprising the steps of:
providing a combustion volume; providing, to the combustion volume a quantity of gas for combustion and a quantity of fuel; combusting the fuel gas mixture; passing the combusted mixture to a gas turbine, the combusted mixture passing therethrough and exerting work to provide energy at an output shaft thereof; passing the mixture, to a steam turbine, the mixture causing work to be generated and energy to be available on a steam turbine output shaft; connecting at least one of the output shaft and steam turbine shaft to an electrical generator; passing the exhaust from the steam turbine to a secondary steam turbine; recovering useful work from the secondary steam turbine output shaft as the exhaust passes therethrough; passing the exhaust, from a secondary turbine exhaust to a gas separation system; and recovering components of the exhaust.
- 47. The method of claim 46, further including the steps of:
providing an air separator; passing air through the separator and separating at least nitrogen therefrom; and passing from the separator, to the combustion chamber, substantially pure oxygen forming the gas for combustion.
- 48. The method of claim 46, further including the steps of:
supplying a fuel separator; passing fuel, through said separator and removing at least the nitrogen therefrom; passing the fuel on to the combustion chamber for combustion with the oxygen.
- 49. The method of claim 48, wherein the separator is a heat exchanger and the fuel is passed through one side of the heat exchanger and coolant, below the vapor phase temperature of nitrogen, is passed through the other side of the heat exchanger.
- 50. The method of claim 49, further including the steps of:
separating, from the exhaust stream, at least carbon dioxide; providing a biomass; providing the separated carbon dioxide to the biomass; growing the biomass in the presence of sunlight and the carbon dioxide to form further biomass and O2; and removing the O2 therefrom; converting the grown biomass into a fuel; providing the fuel and the oxygen to the combustion volume; providing supplemental fuel, other than the biomass derived fuel, to the combustion volume in a ratio of less than 25%.
- 51. The method of claim 50 wherein an additional solar generation paradigm is used to augment the operation of the power generator, and wherein, said power generator generates electricity using at least 75% of its operating fuel as fuel converted from said biomass or from other solar means.
- 52. The method of claim 51 wherein the additional solar paradigm is a thermal solar paradigm.
- 53. The method of claim 51 wherein peak solar insulation and off-peak electrical demands in a specific location overlap or nearly overlap and, 25% of the fuel used for power generation is non-biomass fossil fuel, minus a modest reserve such that the solar generator and solar paradigm together are re producing the maximum output possible during these peak hours.
- 54. The method of claim 53 wherein the thermal solar paradigm alone provides the full rated capacity of the plant operated during the peak need and peak solar hours
- 55. A method of claim 54 where the solar thermal paradigm may include
a fluid heated by solar collectors or fluid that had been heated by solar collectors and is stored for this purpose biomass fuel grown on the site of the power generator biomass fuel produced at off-site location and brought to the site.
- 56. The method of claim 55 further including the step of:
expanding the capacity of the power generator during on peak hours through the use of a combined cycle gas-steam turbine generator and wherein the full capacity of the gas turbine component of the combined cycle power generator a biomass fuel will be used.
- 57. A power generator, comprising:
a combustion engine having at least one combustion chamber, and at least one work transfer apparatus, and a work output apparatus; said combustion region receiving; a supply of noble gas; a supply of oxygen; and a supply of hydrocarbon fuel.
- 58. The power generator of claim 57, wherein said engine is an internal combustion engine, further including:
an intake manifold; at least one injector communicable with said combustion chamber; wherein said fuel and noble gas are introduced to said combustion chamber via said manifold; an exhaust extending from said combustion chamber and configured to pass products of combustion therethrough; and a secondary recovery system located in fluid communication with said exhaust including an expansion mechanism therein.
- 59. The power generator of claim 58, wherein said secondary recovery system includes:
a first stage configured and arranged to receive exhaust from said exhaust and expand said exhaust therein and pass said exhaust through a secondary exhaust port; and a second stage configured to receive said exhaust from said first stage, and further expand said exhaust and emit said exhaust therefrom.
- 60. The power generator of claim 59, wherein said first stage includes a rotary engine having an inlet volume;
a compression volume; a combustion volume; an expansion volume; and a exhaust volume in fluid communication with a fluid outlet therefrom; wherein, at least said expansion volume is greater in volume than said compression volume and said inlet volume.
- 61. The power generator to claim 60, wherein said rotary engine includes a housing having a partition therein generally separating said housing into a first sub-housing and a second sub-housing;
said first sub-housing having a first rotor therein operatively coupled to a first abutment and a second abutments, said abutments actuable inwardly and outwardly of said first sub-housing to maintain close spacing to said rotor as said rotor is rotated about its axis in said first sub-housing; said housing further including a second rotor located in said second sub-housing, operatively coupled to said first rotor through said partition said second rotor operably coupled to a third abutment and a fourth abutment, said third and fourth abutments actuable inwardly and outwardly of said second sub-housing to maintain close spacing to said second rotor as said second rotor is rotated about its axis in said second sub-housing; said rotor, housing and abutment surfaces forming said inlet, compression expansion and exhaust volumes; a passageway extending through said partition, and positioned to communicate only said expansion volume in said first sub-housing with said expansion volume in said second sub-housing.
- 62. The power generator of claim 61, further including said passage positioned to further enable communication between said exhaust volume in said first sub housing and said exhaust volume in said second sub-chamber.
- 63. The power generator of claim 62, further including a compressed gas inlet passageway from only said compression volume in said first compression volume to said combustion volume; and
a combustion outlet passage extending from said combustion volume to said expansion volume.
- 64. The power generator of claim 63, wherein said combustion outlet passage is connected only to said expansion volume in said first sub-housing.
- 65. The power generator of claim 63, further including a superheated H2O source;
an injector located in fluid communication with said combustion chamber; a superheated H2O passage extending from said source of superheated steam to said injector, said injector having a passage therein for selective injection of superheated H2O into said combustion volume.
- 66. The power generator of claim 65, wherein said rotor in said first sub-housing and said rotor in said second sub-housing have facing, generally flat and parallel to one another faces; and
at least one of said faces includes a wiper selectively extendable therefore and into engagement with the surface of the other of said faces as said rotor faces are positioned such that said passageway is interposed therebetween.
- 67. The power generator of claim 66, further including a vehicle drive train operatively connected thereto.
- 68. A method of generating power from a combustion exhaust stream, comprising the steps of:
providing a housing having a generally circular cross section and opposed, generally parallel to one another, ends providing an intermediate partition therein substantially parallel to said ends and forming a first sub-housing and a second sub-housing in said housing; providing a first rotor in said first chamber, said first rotor rotatable about an axis; providing first and second abutments, said abutments positionable with respect to the surface of the rotor and actauble inwardly and outwardly of the housing to segregate the first sub-housing into variable first inlet volume, first compression volume, first expansion volume and first exhaust volume; an inlet connected to a source of exhaust gas in fluid communication with the inlet volume in the first sub-chamber, a compressed gas passage extending from compressed exhaust outlet passage extending from the combustion volume in the first sub-housing to a combustion volume, a combusted gas passage extending from the combustion volume to the expansion volume in the first sub housing and an exhaust passage extending from the exhaust volume in the first sub-housing to enable exhaust of gasses therefrom; the surfaces of the rotor, abutments and housing forming each of the variable volume inlet, compression expansion and exhaust volumes in the first sub-housing a second rotor located in the second sub housing having substantially the same size and profile as the first rotor; a third abutment and a fourth abutment located in the second sub chamber, said abutments positionable with respect to the surface of the rotor and actauble inwardly and outwardly of the housing to segregate the second sub-housing into variable second inlet volume, second compression volume, second expansion volume and second exhaust volume; said second exhaust volume coupled to a second exhaust passage to enable exhaust of the gasses from the exhaust volume therethrough, and a passageway, extending through the partition to communicate the exhaust and expansion volumes of the first and second sub-housings in fluid communication, but excluding such communication as between the inlet and compression volumes of the first and second sub-housing; isolating the second inlet volume and second compression volume from receipt of appreciable quantities of gas inlet into the housing; providing a superheated fluid, through an injector, into the combustion volume; introducing compressed exhaust from a combustion cycle into the combustion chamber; reacting the exhaust and superheated fluid in the combustion volume to form a reaction product and passing the reaction product to the first sub-housing expansion volume; passing a portion of the reaction product through the passageway and into the expansion volume in the second sub-housing; expanding the reaction product to perform work on the first and second rotors and produce the work to an output shaft while simultaneously cooling the reaction product; exhausting the expanded reaction product.
- 69. The method of claim 68, further including the steps of;
providing an internal combustion engine combusting, in the combustion chamber of the internal combustion engine, a mixture of hydrocarbon fuel, a noble gas and oxygen, the exhaust the mixture having nitrogen removed therefrom to a high degree of purity; combusting the mixture to cause work to be preformed and produced on the output shaft of the engine; passing the exhaust stream to the inlet of the housing.
- 70. The method of claim 69, further including the steps of:
sufficiently cooling the reacted exhaust stream from the housing top separates the components thereof; recycling the noble gas for reintroduction to the combustion chamber of the internal combustion engine; porting any CO2 to a biomass and causing the growth of the biomass in the presence of light and water to produce oxygen; removing the oxygen from the gas produced by the biomass and reintroducing the oxygen to the combustion chamber of the internal combustion engine.
- 71. The method of claim 69, further including the steps of connecting at least one of the output shafts of the housing or engine to a generator for the production of electricity therefrom.
- 72. The method of claim 69, further including the step of coupling at least one of the output shafts of the housing or engine to the drive train of a vehicle.
- 73. The method of claim 72, wherein the vehicle is a train, ship or motor vehicle.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of U.S. provisional patent application serial No. 60/441,088, filed Jan., 21, 2004 which is herein incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60441088 |
Jan 2003 |
US |