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Patent · US12603266B2 · B2 · US

Device and method for high power-density thermionic energy conversion

(11) Publication number
US12603266B2
(21) Application number
17/839,211
(22) Filing date
2022-06-13
(30) Priority date
2017-12-14
(43) Publication date
2026-04-14
(45) Date of grant
2026-04-14
(51) IPC
H01J 45/00; H03K 3/08; H03K 3/78
(52) CPC
  • H01J Electric discharge tubes or discharge lamps: 45/00
  • H03K Pulse technique: 3/08, 3/78
(73) Assignee
Space Charge LLC
(72) Inventors
John B. Read; Daniel C. Sweeney
(54) Title
Device and method for high power-density thermionic energy conversion
(57) Abstract

Thermionic generators are described herein that include a variety of features that allow the devices to efficiently and effectively convert large amounts of thermal energy directly to electrical energy, such as in the form of currents and/or voltages. For example, the thermionic generators can be used to generate an electron beam from a thermionic emission device, and focus or shape the electron beam in such a way that allows the energy of electrons in the electron beam to be captured and converted to electrical energy.

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Claims (20)

  1. A thermionic generator comprising: an evacuated envelope providing a vacuum drift space; an absorbing element for capturing radiant energy; an emitter coupled to the absorbing element for generating emitted electrons using energy from the absorbing element, the emitter arranged to direct the emitted electrons through the vacuum drift space; an electron shaping element arranged to focus the emitted electrons into an electron beam in the vacuum drift space; an anode element positioned to electromagnetically interact with the electron beam in the vacuum drift space; a transducer arranged to extract energy from the electron beam; and a collector arranged to receive the electron beam.
  2. The thermionic generator of claim 1, wherein the electron beam is a non-dissipative electron beam.
  3. The thermionic generator of claim 1, wherein the absorbing element comprises a plasmonic resonator element or plasmonic absorber for capturing radiant energy.
  4. The thermionic generator of claim 3, wherein the absorbing element comprises a plurality of plasmonic resonator elements or plasmonic absorbers each tuned to capture radiant energy of different wavelengths.
  5. The thermionic generator of claim 3, wherein the plasmonic resonator element or plasmonic absorber exhibits a radiant thermal energy capture coefficient higher than a black body radiant thermal energy capture coefficient.
  6. The thermionic generator of claim 1, wherein the emitter generates emitted electrons using the radiant energy captured by the absorbing element, wherein the emitter receives thermal energy from the absorbing element and generates thermally emitted electrons, or wherein the emitter generates emitted electrons using focused electric fields generated by capture of the radiant energy by the absorbing element.
  7. The thermionic generator of claim 1, wherein the electron shaping element comprises a Wehnelt cylinder.
  8. The thermionic generator of claim 1, wherein the electron shaping element comprises an axicon electron lens.
  9. The thermionic generator of claim 1, wherein the electron shaping element comprises one or more electrodes arranged about the emitter and having a geometry generating an electric field that constricts a directionality of the emitted electrons and accelerates the emitted electrons to form the electron beam, wherein the electron shaping element comprises an inductive element arranged to constrict a directionality of the emitted electrons and accelerate the emitted electrons to form the electron beam, or wherein the electron shaping element is configured to impart deflections on the emitted electrons to generate the electron beam.
  10. The thermionic generator of claim 1, wherein the anode element comprises an electron lens including an aperture through which the electron beam passes.
  11. The thermionic generator of claim 1, wherein a potential of the anode element is modulatable to provide a variable acceleration or variable focusing effect on the electron beam.
  12. The thermionic generator of claim 1, wherein the transducer is configured to extract kinetic energy from the electron beam by electromagnetic or electrostatic interaction with the electron beam, wherein the transducer comprises an inductor arranged to generate an electric current by electromagnetic or electrostatic interaction with the electron beam, or wherein the transducer comprises a spoof surface plasmon antenna tuned to absorb at microwave frequencies for absorbing energy from the electron beam.
  13. The thermionic generator of claim 1, wherein the collector comprises a negatively charged sequence of a plurality of pierced parabolic electrodes at successively more negative potentials, wherein the collector is configured to extract kinetic energy from the electron beam by electrostatic interaction with the electron beam, wherein the collector comprises one or more parabolic electrodes, or wherein the collector comprises a parabolic depressed collector.
  14. The thermionic generator of claim 1, further comprising: an external circuit coupled to one or more of the transducer or the collector and configured to receive and/or store energy extracted from the electron beam.
  15. The thermionic generator of claim 1, further comprising: a modulated power supply in communication with the emitter, the collector, the anode element, or other components of the thermionic generator for modulating voltages applied thereto.
  16. The thermionic generator of claim 15, wherein the modulated power supply is configured to apply voltage pulses of various magnitudes and durations to the emitter, the collector, the anode element, or other components of the thermionic generator.
  17. The thermionic generator of claim 15, wherein the modulated power supply is configured to apply a sinusoidal voltage to the anode element to modulate an intensity of the electron beam.
  18. The thermionic generator of claim 15, wherein the modulated power supply comprises a flyback converter and one or more capacitors.
  19. A method of converting thermal energy to electrical energy, the method comprising: providing a converter comprising the thermionic generator of claim 1; exposing the absorbing element to radiant energy; and controlling potentials on one or more of the emitter, the electron shaping element, the anode element, the transducer, or the collector to create the electron beam and capture energy from the electron beam as an electrical current or voltage.
  20. The method of claim 19, wherein controlling the potentials includes modulating a potential applied to the anode element to control an intensity or speed of the electron beam.

Description

This invention is in the field of thermal to electrical energy conversion devices. This invention relates generally to a thermionic energy conversion device with a structure and components to achieve high power-density conversion.

Described herein are thermionic energy convertors (TEC), also referred to as thermionic generators or thermionic wave generators (TWG), such as in the form of vacuum electronics, with various systems and subsystems occupying a single, chambered tube, formed with advanced vacuum electronics fabrication techniques to withstand high temperature. The vacuum electronics may also be accompanied by various support circuitry, which may optionally comprise solid state components, and such support circuitry may be optionally populated outside the vacuum region.

Inclusion of an inductive pickup integrated with a collector, a high efficiency resonant power supply, meta-surfaces for passive thermal management, and servo systems for error correction ensure a convertor providing high power density, high efficiency, and high-quality output.

Thermionic generation exploits the Edison effect to convert thermal energy input directly into electrical output. Low conversion efficiency imposed by electrostatic space charge, materials work functions, and fabrication techniques limited earlier attempts to low power output per unit of mass, rendering it uncompetitive as a mode of high-power density electrical generation.

Additional to the above limitations, earlier attempts had several significant limitations, which included the dynamic models used for design.

Citations (45)

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  • US3265910A
  • US3328611A
  • US3519854A
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Record as JSON
{
  "publication_number": "US12603266B2",
  "country": "US",
  "kind": "B2",
  "title": "Device and method for high power-density thermionic energy conversion",
  "abstract": "Thermionic generators are described herein that include a variety of features that allow the devices to efficiently and effectively convert large amounts of thermal energy directly to electrical energy, such as in the form of currents and/or voltages. For example, the thermionic generators can be used to generate an electron beam from a thermionic emission device, and focus or shape the electron beam in such a way that allows the energy of electrons in the electron beam to be captured and converted to electrical energy.",
  "claims": [
    "1. A thermionic generator comprising: an evacuated envelope providing a vacuum drift space; an absorbing element for capturing radiant energy; an emitter coupled to the absorbing element for generating emitted electrons using energy from the absorbing element, the emitter arranged to direct the emitted electrons through the vacuum drift space; an electron shaping element arranged to focus the emitted electrons into an electron beam in the vacuum drift space; an anode element positioned to electromagnetically interact with the electron beam in the vacuum drift space; a transducer arranged to extract energy from the electron beam; and a collector arranged to receive the electron beam.",
    "2. The thermionic generator of claim 1, wherein the electron beam is a non-dissipative electron beam.",
    "3. The thermionic generator of claim 1, wherein the absorbing element comprises a plasmonic resonator element or plasmonic absorber for capturing radiant energy.",
    "4. The thermionic generator of claim 3, wherein the absorbing element comprises a plurality of plasmonic resonator elements or plasmonic absorbers each tuned to capture radiant energy of different wavelengths.",
    "5. The thermionic generator of claim 3, wherein the plasmonic resonator element or plasmonic absorber exhibits a radiant thermal energy capture coefficient higher than a black body radiant thermal energy capture coefficient.",
    "6. The thermionic generator of claim 1, wherein the emitter generates emitted electrons using the radiant energy captured by the absorbing element, wherein the emitter receives thermal energy from the absorbing element and generates thermally emitted electrons, or wherein the emitter generates emitted electrons using focused electric fields generated by capture of the radiant energy by the absorbing element.",
    "7. The thermionic generator of claim 1, wherein the electron shaping element comprises a Wehnelt cylinder.",
    "8. The thermionic generator of claim 1, wherein the electron shaping element comprises an axicon electron lens.",
    "9. The thermionic generator of claim 1, wherein the electron shaping element comprises one or more electrodes arranged about the emitter and having a geometry generating an electric field that constricts a directionality of the emitted electrons and accelerates the emitted electrons to form the electron beam, wherein the electron shaping element comprises an inductive element arranged to constrict a directionality of the emitted electrons and accelerate the emitted electrons to form the electron beam, or wherein the electron shaping element is configured to impart deflections on the emitted electrons to generate the electron beam.",
    "10. The thermionic generator of claim 1, wherein the anode element comprises an electron lens including an aperture through which the electron beam passes.",
    "11. The thermionic generator of claim 1, wherein a potential of the anode element is modulatable to provide a variable acceleration or variable focusing effect on the electron beam.",
    "12. The thermionic generator of claim 1, wherein the transducer is configured to extract kinetic energy from the electron beam by electromagnetic or electrostatic interaction with the electron beam, wherein the transducer comprises an inductor arranged to generate an electric current by electromagnetic or electrostatic interaction with the electron beam, or wherein the transducer comprises a spoof surface plasmon antenna tuned to absorb at microwave frequencies for absorbing energy from the electron beam.",
    "13. The thermionic generator of claim 1, wherein the collector comprises a negatively charged sequence of a plurality of pierced parabolic electrodes at successively more negative potentials, wherein the collector is configured to extract kinetic energy from the electron beam by electrostatic interaction with the electron beam, wherein the collector comprises one or more parabolic electrodes, or wherein the collector comprises a parabolic depressed collector.",
    "14. The thermionic generator of claim 1, further comprising: an external circuit coupled to one or more of the transducer or the collector and configured to receive and/or store energy extracted from the electron beam.",
    "15. The thermionic generator of claim 1, further comprising: a modulated power supply in communication with the emitter, the collector, the anode element, or other components of the thermionic generator for modulating voltages applied thereto.",
    "16. The thermionic generator of claim 15, wherein the modulated power supply is configured to apply voltage pulses of various magnitudes and durations to the emitter, the collector, the anode element, or other components of the thermionic generator.",
    "17. The thermionic generator of claim 15, wherein the modulated power supply is configured to apply a sinusoidal voltage to the anode element to modulate an intensity of the electron beam.",
    "18. The thermionic generator of claim 15, wherein the modulated power supply comprises a flyback converter and one or more capacitors.",
    "19. A method of converting thermal energy to electrical energy, the method comprising: providing a converter comprising the thermionic generator of claim 1; exposing the absorbing element to radiant energy; and controlling potentials on one or more of the emitter, the electron shaping element, the anode element, the transducer, or the collector to create the electron beam and capture energy from the electron beam as an electrical current or voltage.",
    "20. The method of claim 19, wherein controlling the potentials includes modulating a potential applied to the anode element to control an intensity or speed of the electron beam."
  ],
  "description_excerpt": "This invention is in the field of thermal to electrical energy conversion devices. This invention relates generally to a thermionic energy conversion device with a structure and components to achieve high power-density conversion.\n\nDescribed herein are thermionic energy convertors (TEC), also referred to as thermionic generators or thermionic wave generators (TWG), such as in the form of vacuum electronics, with various systems and subsystems occupying a single, chambered tube, formed with advanced vacuum electronics fabrication techniques to withstand high temperature. The vacuum electronics may also be accompanied by various support circuitry, which may optionally comprise solid state components, and such support circuitry may be optionally populated outside the vacuum region.\n\nInclusion of an inductive pickup integrated with a collector, a high efficiency resonant power supply, meta-surfaces for passive thermal management, and servo systems for error correction ensure a convertor providing high power density, high efficiency, and high-quality output.\n\nThermionic generation exploits the Edison effect to convert thermal energy input directly into electrical output. Low conversion efficiency imposed by electrostatic space charge, materials work functions, and fabrication techniques limited earlier attempts to low power output per unit of mass, rendering it uncompetitive as a mode of high-power density electrical generation.\n\nAdditional to the above limitations, earlier attempts had several significant limitations, which included the dynamic models used for design.",
  "cpc": [
    "H01J 45/00",
    "H03K 3/08",
    "H03K 3/78"
  ],
  "ipc": [
    "H01J 45/00",
    "H03K 3/08",
    "H03K 3/78"
  ],
  "assignees": [
    "Space Charge LLC"
  ],
  "inventors": [
    "John B. Read",
    "Daniel C. Sweeney"
  ],
  "filing_date": "2022-06-13",
  "publication_date": "2026-04-14",
  "grant_date": "2026-04-14",
  "priority_date": "2017-12-14",
  "application_number": "US-202217839211-A",
  "family_id": "85573401",
  "cited_by_count": 0,
  "citations": [
    "GB741058A",
    "US3265910A",
    "US3328611A",
    "US3519854A",
    "US3460524A",
    "US3702408A",
    "US4303845A",
    "US4323808A",
    "US5459367A",
    "US6064137A",
    "US5981071A",
    "US6762543B1",
    "US6103298A",
    "US5810980A",
    "US5994638A",
    "US6229083B1",
    "US5942834A",
    "US5780954A",
    "US6211465B1",
    "WO1999010974A1",
    "US20040189141A1",
    "US6495843B1",
    "US20050275330A1",
    "WO2004077881A1",
    "US20050016575A1",
    "WO2005052983A1",
    "WO2008118234A2",
    "US10109384B2",
    "US7996807B2",
    "US8853531B2",
    "FR2971552A1",
    "US20120227925A1",
    "US20130229133A1",
    "WO2013173922A1",
    "US9865789B2",
    "US20150098259A1",
    "US20160042907A1",
    "CN105288675A",
    "WO2017115265A1",
    "US20170323692A1",
    "US10658144B2",
    "WO2019118746A1",
    "US10388496B2",
    "US10840072B2",
    "US11473569B2"
  ]
}

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