Claims
- 1. A resonant electrical generation system, comprising:
a) a resonator configured to provide resonating movement in a resonating element; b) an energy source, operatively coupled to the resonator, to support resonating movement of the resonating element; and c) an electrical generator, operatively coupled to and driven by the resonator, configured to generate electrical power from the resonating movement.
- 2. A system in accordance with claim 1, wherein the resonator includes:
a) a base; b) a spring element, coupled at one end to the base; and c) a mass, coupled to another end of the spring element, configured for resonating movement with respect to the base.
- 3. A system in accordance with claim 1, wherein the energy source includes:
a) an elongated combustion tube having a mixing chamber and an exhaust port; b) a fuel source, coupled to the mixing chamber of the combustion tube, configured to provide fuel to the combustion tube; and c) an igniter, in the combustion tube, configured to ignite the fuel.
- 4. A system in accordance with claim 3, further comprising:
a) a cylinder, coupled to the exhaust port of the combustion tube; b) a piston, reciprocally disposed in the cylinder; and c) a push rod, coupled to and between the piston and the resonator, configured to transmit movement of the piston to the resonator.
- 5. A system in accordance with claim 3, wherein the combustion tube is configured to produce pulsatile combustion gasses out of the exhaust port corresponding to a resonant frequency of the resonator.
- 6. A system in accordance with claim 3, wherein the combustion tube has a diameter less than approximately 1100 microns.
- 7. A system in accordance with claim 1, wherein the electrical generator includes:
a magnet and a coil, one of which is attached to the resonator and configured for resonating movement along a movement path, and the other one of which is disposed in a fixed position adjacent the movement path, the magnet and coil being movably disposed with respect to one another so that a magnetic field of the magnet is capable of inducing a current in the coil.
- 8. A system in accordance with claim 1, wherein the resonator includes:
a) a base; b) a spring element, coupled at one end to the base; and c) a mass, coupled to another end of the spring element, configured for resonating movement with respect to the base; and wherein the energy source includes: d) an elongated combustion tube having a mixing chamber and an exhaust port; e) a fuel source, coupled to the mixing chamber of the combustion tube, configured to provide fuel to the combustion tube; and f) an igniter, disposed in the combustion tube, configured to ignite the fuel.
- 9. A system in accordance with claim 1, wherein the resonator resonates at a frequency between approximately 50 Hz to 2 KHz.
- 10. A resonant electrical generation system, comprising:
a) a resonating system configured to provide resonating movement in a resonating element; b) a combustion tube, operatively coupled to the resonating system, configured to produce pulsatile combustion gases to support resonating movement of the resonating system; and c) a magnet and a coil, one of which is attached to the resonating system and configured for resonant movement along a movement path, and the other one of which is disposed in a fixed position adjacent the movement path, the magnet and coil being movably disposed with respect to one another so that a magnetic field of the magnet is capable of inducing a current in the coil.
- 11. An apparatus in accordance with claim 10, wherein the resonating system includes:
a) a base; b) a spring element, coupled at one end to the base; and c) a mass, coupled to another end of the spring element, configured for resonating movement with respect to the base.
- 12. An apparatus in accordance with claim 10, further comprising:
a) a cylinder, coupled to the exhaust port of the combustion tube; b) a piston, reciprocally disposed in the cylinder; and c) a push rod, coupled to and between the piston and the resonating system, configured to transmit movement of the piston to the resonating system.
- 13. An apparatus in accordance with claim 10, wherein the combustion tube is configured to produce pulsatile combustion gasses out of the exhaust port corresponding to a resonant frequency of the resonating system.
- 14. An apparatus in accordance with claim 10, wherein the resonator resonates at a frequency between approximately 50 Hz to 2 KHz.
- 15. An apparatus in accordance with claim 10, wherein the combustion tube has a diameter less than approximately 1100 microns.
- 16. An electrical generation system, comprising:
a) a resonating structure configured for resonating movement, including:
1) a base; 2) a spring element, coupled at one end to the base; and 3) a mass, coupled to another end of the spring element, configured for resonating movement with respect to the base; b) an energy source, operatively coupled to the resonating structure, to support resonating movement, including:
1) an elongated combustion tube having a mixing chamber and an exhaust port; 2) a fuel source, coupled to the mixing chamber of the combustion tube, configured to provide fuel to the combustion tube; and 3) an igniter, disposed in the combustion tube, configured to ignite the fuel; and c) an electrical generator, operatively coupled to and driven by the resonating structure, configured to generate electricity due to the resonating movement.
- 17. A system in accordance with claim 16, wherein the electrical generator includes:
a magnet and a coil, one of which is attached to the resonating structure and configured for resonant movement along a movement path, and the other one of which is disposed in a fixed position adjacent the movement path, the magnet and wire being movably disposed with respect to one another so that a magnetic field of the magnet is capable of inducing a current in the coil.
- 18. A system in accordance with claim 16, wherein the resonator resonates at a frequency between approximately 50 Hz to 2 KHz.
- 19. A system in accordance with claim 16, wherein the combustion tube has a diameter less than approximately 1100 microns.
Parent Case Info
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/439,473, filed Nov. 12, 1999; and 09/627,852, filed Jul. 28, 2000.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09439473 |
Nov 1999 |
US |
Child |
10086640 |
Feb 2002 |
US |
Parent |
09627852 |
Jul 2000 |
US |
Child |
10086640 |
Feb 2002 |
US |