Claims
- 1. A system comprising:
a transducer which operates based on periodic phase inversion; a programmable processor, which operates according to a stored program, said stored program causing said processor to produce a first waveform based on stored instructions which drive said transducer.
- 2. A system as in claim 1, wherein said first waveform is a square wave produced by a first instruction to produce a rising edge of the square wave, and a second instruction to produce a falling edge of the square wave.
- 3. A system as in claim 1, wherein said processor is also programmable to produce an inversion waveform that selectively inverts an output of the transducer, at a timing having a specified phase relationship with said first waveform.
- 4. A system as in claim 3, wherein further comprising an analog switch, coupled to receive an output of said transducer, and wherein said inversion waveform controls said analog switch.
- 5. A system as in claim 3, further comprising signals defining a first noninverting output of said differential amplifier, and a second inverted output of said differential amplifier, and an analog switch, having two inputs respectively receiving said inverting output and said non-inverted output, and wherein said inversion waveform controls said analog switch.
- 6. A system as in claim 1, wherein said processor also receives an output of said transducer, and includes a program which causes said processor to selectively invert said output of said transducer at a specified timing.
- 7. A system as in claim 6, wherein said specified timing is at a specified phase shifted relative to said first waveform.
- 8. A system as in claim 1, further comprising an A/D converter, coupled to receive an output of said transducer, and to produce a digital output indicative of an output of said transducer.
- 9. A system as in claim 8, wherein said processor receives said digital output indicative of said output of said transducer, and said stored program is also operative to selectively invert a sense of bits within said digital output, at a specified timing relative to said first waveform.
- 10. A system as in claim 1, wherein said first waveform is a square wave, and further comprising a low pass filter which filters all but a fundamental frequency of said square wave to produce said first waveform.
- 11. A system as in claim 10, wherein said transducer is a linear variable differential transformer.
- 12. A system as in claim 11, further comprising a cantilever element, coupled to said linear variable differential transformer, such that said linear variable differential transformer is moved by movements of said cantilever.
- 13. A system as in claim 10, wherein said transducer is a transducer which exploits change of inductances between a primary and two secondaries.
- 14. A system as in claim 13, wherein said transducer is a transducer capable of analyzing movements which are less than 1 nm.
- 15. A transducer system, comprising:
a transducer input part, which operates based on changes of inductances between primary and secondary to produce a differential signal; and a single structure, which produces both a first phase inversion signal for driving the transducer input, and which produces an inversion operation which selectively inverts an output of the transducer at a specified timing having a specified phase relationship with said first phase inversion signal.
- 16. A system as in claim 15, wherein said single structure is formed from a processor.
- 17. A system as in claim 15, wherein said single structure is formed from a programmed processor which operates according to stored instructions.
- 18. A system as in claim 16, wherein said processor produces a square wave output as said phase inversion signal, and further comprising a filter which filters said square wave output to produce a substantially single frequency signal.
- 19. A system as in claim 18, further comprising a current buffer, between said substantially single frequency signal, and an input to said transducer.
- 20. A system as in claim 16, further comprising an inverting structure, coupled to an output of said transducer, and wherein said inversion operation comprises controlling an output to be coupled to either the output of said transducer or the output of said inverting structure.
- 21. A system as in claim 20, further comprising an analog switch, and wherein said inversion operation comprises a waveform which controls said analog switch.
- 22. A system as in claim 21, wherein said waveform which controls said analog switch is a square wave having a specified phase relationship with said first phase inversion signal.
- 23. A system as in claim 22, wherein said specified phase relationship is substantially 90° out of phase.
- 24. A system as in claim 16, wherein said inversion operation comprises a digital inversion of specified parts of the output of the transducer.
- 25. A system as in claim 16, further comprising an A/D converter, creating a digital bitstream indicative of the output of said transducer, and providing said digital bitstream to said processor, and wherein said processor's selectively inverts a sense of said bitstream at said specified phase relationship.
- 26. A system as in claim 25, wherein said specified phase relationship is substantially 90° out of phase.
- 27. A system as in claim 15, further comprising a linear variable differential transformer including said transducer input part.
- 28. A method, comprising:
producing a phase inversion signal for a differential transducer using a digitally controllable processor; and also using said digitally controllable processor to produce a selected sense inversion of an output of the differential transducer.
- 29. A method as in claim 28, wherein said producing said phase inversion signal comprises producing a square wave using said processor.
- 30. A method as in claim 29, further comprising filtering said square wave to produce a substantially pure sine wave, and using said substantially pure sine wave to drive said differential transducer input.
- 31. A method as in claim 28, wherein said using said digitally controllable processor to create said selected sense inversion comprises producing an output signal having a specified phase relationship with said phase inversion signal.
- 32. A method as in claim 31, wherein said specified phase relationship is substantially 90°.
- 33. A method as in claim 28, wherein said using said digitally controllable processor to create said selected sense inversion comprises digitally inverting specified portions of the output of the differential transducer.
- 34. A method as in claim 33, further comprising analog to digital converting the output of the differential transducer, and applying the digital version of the output of the digital transducer to the digitally controllable processor.
- 35. A method as in claim 34, further comprising using the digitally controllable processor is operable to selectively inverts a sense of the digital signals.
- 36. A method as in claim 35, wherein said using the digitally controllable processor to selectively inverts a sense comprises operating at a specified phase relationship having a specifies phase relationship with said phase inversion signal.
- 37. A method as in claim 28, further comprising using said differential transducer to convert motion into voltage.
- 38. A method as in claim 37 wherein said motion can be resolved to a resolution of at least 1 nm.
- 39. A method as in claim 37, wherein said motion is motion of a cantilever which measures characteristics of a surface.
- 40. A method as in claim 37, wherein said motion is part of an atomic force microscope.
- 41. A method, comprising:
using a single processor to generate an input phase inversion signal both for a differential transducer and to generate an output phase inversion operation for the same differential transducer.
- 42. A method as in claim 41, wherein said output phase inversion comprises creating a signal to drive the phase inversion.
- 43. A method as in claim 41, wherein the output phase inversion comprises selectively inverting a sense of an output signal from the differential transducer.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Application Ser. No. 60/383,384, filed on May 24, 2002.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60383384 |
May 2002 |
US |