Claims
- 1. A device for driving a transducer at an optimal frequency, said device comprising:
a driver circuit for providing power to the transducer at an operating frequency selected from a predetermined frequency range; a controller for adjustably providing an operating frequency over the predetermined range to control the driver circuit; and a transducer performance detector for detecting a transducer operating current and identifying a peak value in the transducer operating current, wherein the detector provides a signal to the controller to lock the operating frequency when the detector determines that the locked frequency causes a peak value in the transducer operating current.
- 2. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said transducer is an ultrasonic transducer selected from the group consisting of piezo transducers and magnetostrictive transducers.
- 3. A device for driving a transducer at an optimal frequency, as per claim 2, wherein said transducer is a piezo transducer and said locked operating frequency operates independently from a mechanical force applied to the piezo transducer.
- 4. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said range of frequencies are traversed by incrementing either positively or negatively from a starting frequency.
- 5. A device for driving a transducer at an optimal frequency, as per claim 5, wherein said transducer performance detector further comprises a comparator for comparing a first transducer operating current associated with a first operating frequency and a second transducer operating current associated with a second operating frequency incremented from the first operating frequency, wherein said comparator provides the controller signal when the first transducer operating current exceeds the second transducer operating current.
- 6. A device for driving a transducer at an optimal frequency, as per claim 5, wherein said transducer performance detector further comprises a filter for filtering said current signals compared by said peak comparator.
- 7. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said device is used in conjunction with a dental scaler.
- 8. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said driver circuit comprises a push-pull driver.
- 9. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said device further comprises a display for indicating a status of said ultrasonic transducer.
- 10. A device for driving a transducer at an optimal frequency, as per claim 1, wherein said device further comprises a switch for activating said device.
- 11. A method for identifying an optimal frequency associated with a transducer, said method comprising the steps of:
a. identifying a frequency range for scanning; b. selecting a start frequency from said identified frequency range; c. driving said transducer beginning with said start frequency as an operating frequency, and monitoring a change in a current level through said transducer; d. incrementing said operating frequency from said start frequency until said monitored current substantially reaches a peak value; f. locking said operating frequency corresponding to said peak current value, said peak value corresponding to said optimal frequency; and g. driving said transducer at said locked frequency.
- 12. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein said transducer is selected from the group consisting of piezo transducers and magnetostrictive transducers.
- 13. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein said range of frequencies are traversed by incrementing either positively or negatively from said start frequency.
- 14. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein the peak value is a fist transducer current value associated with a first operating frequency, the peak value being determined by comparing the first transducer current with a second transducer current value associated with a second operating frequency incremented from the first operating frequency and finding that the first transducer current exceeds the second transducer current.
- 15. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein said method further comprises the step of filtering said monitored current.
- 16. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein said method further comprises the step of indicating a transducer's status via a display.
- 17. A method for identifying an optimal frequency associated with a transducer, as per claim 11, wherein said transducer drives a dental scaler.
- 18. A method for identifying optimal frequency associated with a piezo-electric scaler transducer, said method comprising the steps of:
a. identifying a frequency range for scanning; b. selecting a start frequency from said identified frequency range; c. driving said piezo electric scaler transducer at said start frequency as an operating frequency, and monitoring a change in a current level through across said piezo-electric scaler transducer; d. incrementing said operating frequency from said start frequency until said monitored current reaches a substantially peak value; e. locking said operating frequency corresponding to said peak current value, said peak value corresponding to said optimal frequency; and f. driving said piezo-electric scaler transducer at said locked frequency for optimal performance.
- 19. A method for identifying optimal frequency associated with a piezo-electric scaler transducer, as per claim 18, wherein said range of frequencies are traversed by incrementing either positively or negatively from said start frequency.
- 20. A method for identifying optimal frequency associated with a piezo-electric scaler transducer, as per claim 18, wherein the peak value is a first transducer current value associated with a first operating frequency, the peak value being determined by comparing the first transducer current with a second transducer current value associated with a second operating frequency incremented from the first operating frequency and finding that the first transducer current exceeds the second transducer current.
- 21. A method for identifying optimal frequency associated with a piezo-electric scaler transducer, as per claim 18, wherein said method further comprises the step of filtering said monitored current before checking said monitored current for said peak value.
- 22. A method for identifying optimal frequency associated with a piezo-electric scaler transducer, as per claim 18, wherein said method further comprises the step of indicating a piezo-electric scaler transducer status via a display.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application is related to Ser. No. ______, entitled “Microcontroller Unit,” filed concurrently with the present invention on Jun. 4, 2002 by inventors common to the present application, and which is hereby incorporated by reference.