Claims
- 1. An oven for heating a product, the oven comprising:
a conveyor apparatus to convey the product through the oven; one or more first electrodes; one or more second electrodes, the one or more second electrodes disposed relative to the one or more first electrodes to form a heating path between the one or more first electrodes and the one or more second electrodes through which the product is conveyed on the conveyor apparatus; one or more variable impedance devices, each of the one or more variable impedance devices having an adjustable impedance, and an input and an output, the output of an each one of the one or more variable impedance devices exclusively connected to at least one of the one or more first electrodes; and one or more power sources, each of the one or more power sources having an RF power output, the RF power output of each one of the one or more power sources exclusively connected between the input of at least one of the one or more variable impedance devices and at least one of the one or more second electrodes, the RF power output of each of the one or more power sources supplying RF power with a potential difference between the one or more first electrodes and the one or more second electrodes to radiate a RF energy between the one or more first electrodes and the one or more second electrodes, the RF energy to heat the product as the product is conveyed through the heating path; whereby heating of the product is controlled by varying the adjustable impedance of each of the one or more adjustable impedance devices in an each circuit formed by one of the one or more power sources, one of the one or more variable impedance devices, one or more first electrodes and one or more second electrodes, as the product is conveyed through the heating path.
- 2. The oven of claim 1 wherein the adjustable impedance of each of the one or more adjustable impedance devices is varied as the product is conveyed through the heating path to maintain a substantially constant impedance of the each circuit formed by one of the one or more power sources, one of one or more variable impedance devices, one or more first electrodes and one or more second electrodes.
- 3. The oven of claim 1 wherein a distance between the one or more first electrodes and the one or more second electrodes forming the heating path is varied as the product is conveyed through the heating path.
- 4. The oven of claim 1 wherein the adjustable impedance of each of the one or more adjustable impedance devices and the distance between the one or more first and second electrodes are varied as the product is through the heating path to maintain a substantially constant impedance of the each circuit.
- 5. The oven of claim 3 wherein the distance between each of the one or more first and second electrodes forming is varied by varying the length of an adjustable length electrode feeder apparatus inserted between the output of the each one of the one or more variable impedance devices exclusively connected to at least one of the one or more first electrodes.
- 6. The oven of claim 1 wherein an adjustable length electrode feeder apparatus inserted between the output of the each one of the one or more variable impedance devices exclusively connected to at least one of the one or more first electrodes varies the impedance of a second each circuit formed by one of the one or more power sources, one of the one or more variable impedance devices, the adjustable length feeder apparatus, one or more first electrodes and one or more second electrodes, as the product is conveyed through the heating path.
- 7. The oven of claim 5 further comprising a controller, the controller varying the adjustable impedance of each of the one or more adjustable impedance devices and varying the length of the adjustable length electrode feeder apparatus, responsive to one or more operating parameters of the oven.
- 8. The oven of claim 1 further comprising an air moisture content sensor exposed to an Rt voltage for sensing moisture of the air entering or leaving the heating path, the sensor comprising:
a tuned circuit comprising an air-spaced coaxial capacitor connected in parallel with a shunt inductance; a frequency source operating at the natural resonant frequency of the tuned circuit to resonant the tuned circuit; and a rectifier means connected across the tuned circuit to produce a rectified dc output voltage proportional to the RF voltage and calibrated to the moisture content of the air; whereby as moisture of the air varies the dielectric constant of the air-spaced capacitor changes to produce a change in the rectified dc output voltage.
- 9. The oven of claim 1 further comprising a temperature sensor for conveyor belt whereby the product positioned at a first end of the heating path will be conveyed through the heating path by contact with at least one of the first or second conveyor belts;
a one or more first electrodes for an each one of the plurality of heating zones, the one or more first electrodes disposed below the surface of the first conveyor belt opposing a surface of the first conveyor belt forming a first boundary of the heating path; a one or more second electrodes for the each one of the plurality of heating zones, the one or more second electrodes disposed above the surface of the second conveyor belt opposing a surface of the second conveyor belt forming a second boundary of the heating path; a one or more variable impedance devices for the each one of the plurality of heating zones, each one of the one or more variable impedance devices having an adjustable impedance, and an input and an output; an adjustable length electrode feeder apparatus connecting the output of an each one of the one or more variable impedance devices to either at least one of the one or more first or second electrodes, whereby the distance between the one or more first and second electrodes can be adjusted as the impedance of the adjustable length feeder is changed; and an at least one power source for the each one of the plurality of heating zones, the at least one power source having an RF power output, the RF power output connected between the input of the one or more variable impedance devices for the each one of the plurality of heating zones associated with the at least one power source, and either at least one of the one or more first or second electrodes not connected to the adjustable length feeder apparatus, the RF power output of each of the one or more power sources supplying RF power with a potential difference between the one or more first electrodes and the one or more second electrodes to radiate a RF energy between the one or more first electrodes and the one or more second electrodes, the RF energy to heat the product as the product is conveyed between the one or more first and second electrodes in the each one of the plurality of heating zones; whereby the heating of the product in the each one of the plurality of heating zones is controlled by varying the adjustable impedance of each of the one or more variable impedance devices and varying the length of the adjustable length feeder apparatus in an each circuit formed by the at least one power source, the one or more variable impedance devices, the adjustable length electrode feeder apparatus, the one or more first electrodes and the one or more second electrodes associated with the each one of the plurality of heating zones, as the product is conveyed between the one or more first and second electrodes in the each one of the plurality of heating zones.
- 13. The oven of claim 12 wherein the adjustable impedance of each of the one or more variable impedance devices for the each one of the plurality of heating zones and the length of the adjustable length electrode feeder is varied as the product is conveyed between the one or more first and second electrodes in the each one of the plurality of heating zones to maintain a substantially constant impedance of the each circuit.
- 14. The oven of claim 12 further comprising a controller, the controller varying the adjustable impedance of each of the one or more adjustable impedance devices and varying the length of the adjustable length electrode feeder apparatus, responsive to one or more operating parameters of the oven.
- 15. The oven of claim 12 further comprising an air moisture content sensor exposed to an RF voltage for sensing moisture of the air entering or leaving the heating path, the sensor comprising:
a tuned circuit comprising an air-spaced coaxial capacitor connected in parallel with a shunt inductance; a frequency source operating at the natural resonant frequency of the tuned circuit to resonant the tuned circuit; and a rectifier means connected across the tuned circuit to produce a rectified dc output voltage proportional to the RF voltage and calibrated to the moisture content of the air; whereby as moisture of the air varies the dielectric constant of the air-spaced capacitor changes to produce a change in the rectified dc output voltage.
- 16. The oven of claim 12 wherein the one or more first electrodes are offset from the one or more second electrodes whereby the radiated RF energy produces a skewed energy distribution relative to the direction of travel of the product in the heating path.
- 17. A method of heating a product in an oven comprising the steps of:
conveying the product through a heating path in one or more heating zones of the oven; subjecting the product to an RF energy as the product is conveyed through the heating path, the RF energy produced by an RF power source and radiated between one or more first electrodes and one or more second electrodes disposed on opposing sides of the product as the product is conveyed through the heating path; and adjusting the impedance of a circuit formed by the RF power source and the one or more first and second electrodes by a variable impedance means inserted in the circuit as the product is conveyed through the heating path.
- 18. The method of claim 17 further comprising the step of adjusting the impedance of the circuit by varying the length of an adjustable length electrode feeder apparatus connected to either the one or more first electrodes and or one or more second electrodes.
- 19. The method of claim 17 further comprising the steps:
measuring the ambient air temperature in the heating path; measuring the exhaust air temperature from the heating path; measuring the moisture content of input air into the heating path; measuring the moisture content of exhaust air into the heating path; measuring the voltage across the one or more first electrodes and the one or more second electrodes; measuring the magnitude and phase of forward applied RF power from the RF power source; measuring the magnitude and phase of reflected RF power to the RF power source; measuring the capacitive distribution of the product between the one or more first and second electrodes; measuring the impedance set in the variable impedance means; measuring air flow velocity in the tunnel of the oven; and processing the ambient air temperature measurement, the exhaust air temperature measurement, the moisture content of input air measurement, the moisture content of exhaust air measurement, the voltage across the one or more first electrodes and the one or more second electrodes measurement, the magnitude and phase of forward applied RF power measurement, the magnitude and phase of reflected RF power measurement, the capacitive distribution of the product measurement, the impedance set in the variable impedance means measurement, and the air flow velocity measurement to adjust the RF energy and the impedance of the circuit.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/251,259 filed Dec. 5, 2000.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/46644 |
12/5/2001 |
WO |
|