Claims
- 1. A method of providing information about a target having at least a first edge and a second edge, the method comprising:
detecting at least the first and second edges of the target, generating a pulse in response to each of the detected first and second edges of the target, with each of the pulses having a first or second pulse width with the first pulse width corresponding to a first logic value and the second pulse width corresponding to a second different logic value and wherein a first one of the first and second pulse widths is a multiple of a second one of the first and second pulse widths, and forming a data word using at least two pulses wherein the data word conveys a characteristic of at least one of (a) the target, and (b) an environment in which the target is disposed
- 2. The method of claim 1 wherein the first pulse width is approximately twice as long as the second pulse width
- 3. The method of claim 1 wherein the first logic value corresponds to a logic zero value and the second logic value corresponds to a logic one value.
- 4. The method of claim 1 wherein the first pulse width is in the range of about 35 microseconds to about 55 microseconds in length.
- 5. The method of claim 1 wherein the first pulse width is in the range of about 65 microseconds to about 110 microseconds in length
- 6. The method of claim 1 wherein the first pulse width is in the range of about 35 microseconds to about 55 microseconds in length and the second pulse width is in the range of about 60 microseconds to about 110 microseconds in length
- 7. The method of claim 1 wherein the second pulse width is in the range of about 35 microseconds to about 55 microseconds in length
- 8. The method of claim 1 wherein the first pulse width is in the range of about 65 microseconds to about 110 microseconds in length
- 9. The method of claim 1 wherein the first pulse width is in the range of about 65 microseconds to about 110 microseconds in length and the second pulse width is in the range of about 35 microseconds to about 55 microseconds in length
- 10. A method comprising
providing a start data sequence; and providing a first data word having at least two pulses with each of the at least two pulses having one of two pulse widths with a first one of the pulse widths being a multiple of a second one of the pulse widths
- 11. The method of claim 10 wherein providing a first data word comprises providing a first data word having at least two bits each of the at least two bits having one of two values with a first one of the values corresponding to one of a logic zero value and a logic one value and wherein a first one of the logic zero and logic one values is represented by a single pulse having a first pulse width and a second one of the logic zero and logic one values is represented by a single pulse having a second pulse width and wherein a first one of the first and second pulse widths is a multiple of a second one of the first and second pulse widths
- 12. The method of claim 10 further comprising providing, a first data word separator prior to providing the first data word
- 13. The method of claim 10 further comprising providing a second data word
- 14. The method of claim 12 further comprising providing a second data word separator prior to providing the second data word
- 15. The method of claim 10 wherein the start data sequence corresponds to a sequence of pulses, with each of the pulses in the sequence having a predetermined value
- 16. The method of claim 10 wherein the start data sequence is provided having three pulses, each of the pulses having the same value
- 17. A method of providing information from a sensors the method comprising
detecting a target; and in response to detecting the target, generating a pulse sting having one pulse for each edge of the detected target generating a data string from the pulse string with the data string provided from a plurality of logic data bits wherein a first logic data bit is represented by a single pulse having a first width and a second logic data bit is represented by a single pulse having a second width with the second width being approximately twice as long as the first width
- 18. The method of claim 17 wherein the data string includes a start data sequence (SDS) and at least one data word containing diagnostic information
- 19. The method of claim 17 wherein generating a data string further comprises providing a logic zero data bit having a minimum pulse width defined by an RC time constant coupled to an output of said sensor.
- 20. The method of claim 18 wherein generating a data string comprises generating a plurality of data words after each SDS
- 21. The method of claim 20 wherein generating a data string comprises generating two data bits for each data word.
- 22. The method of claim 17 wherein at least one of said data words represents a diagnostic condition selected from air gap out of range, air gap approaching out of range, air gap less than nominal, air gap greater than a nominal value, temperature less than a predetermined low value, temperature greater than a predetermined high value, and temperature between the predetermined low and high values
- 23. The method of claim 20 further comprising generating a delimiter after each data word.
- 24. The method of claim 23 wherein generating a delimiter comprises generating a logic zero pulse as a delimiter
- 25. The method of claim 17 further comprising transmitting only a plurality of logic zero data pulses when a frequency of the detection of the target is above a diagnostic data drop out frequency
- 26. The method of claim 17 wherein said generating is performed in response to a target moving proximate to said sensor in a first direction.
- 27. The method of claim 26 further comprising generating a second pulse string when the target is moving proximate to sensor in a second direction which is different than the first direction
- 28. The method of claim 27 wherein said generating a second pulse string comprises generating a pulse for each edge of a detected target wherein each pulse has a duration approximately four times as long as the logic zero data pulse for a detected target moving in the first direction
- 29. A magnetic article proximity detector for detecting a magnetic article, the magnetic article proximity detector comprising
a magnetic field sensor for providing an output signal proportional to a magnetic field, a detection circuit to detect at least one of (a) a parameter of the environment in which the magnetic article is disposed, (b) a parameter of the environment in which the magnetic article proximity detector is disposed, (c) a parameter related to a relationship between the magnetic article proximity detector and the magnetic article, and (d) a parameter of the magnetic article; and an output control circuit coupled to receive one or more signals from said detection circuit, and in response to the one or more signals for providing a data string in accordance with a predetermined protocol in which a first logic data bit having a first logic value in the data string is provided from a single pulse having a first pulse characteristic and a second logic data bit having a second logic value in the data string is provided from a single pulse having a second pulse characteristic with the second pulse width being a multiple of the first pulse width.
- 30. The detector of claim 29 wherein said detection circuit comprises at least one of
a speed detection circuit coupled said magnetic field sensor and said output control circuit, a direction detection circuit coupled said magnetic field sensor and said output control circuit, a temperature detection circuit having an output coupled said magnetic field sensor and said output control circuit, an air gap detection circuit coupled said magnetic field sensor and said output control circuit; and a voltage detection circuit coupled said magnetic field sensor and said output control circuit.
- 31. The detector of claim 29 wherein said direction detection circuit is coupled to said magnetic field sensing circuit through said speed detection circuit
- 32. The detector of claim 29 wherein said magnetic field sensor comprises
a first Hall effect sensor, a second Hall effect sensor disposed a distance away from said first Hall effect sensor, a magnet having a first pole disposed near said first and second Hall effect sensors and a second pole displaced from said first and second Hall effect sensors, and an amplifier circuit coupled to receive outputs from said first and second Hall effect sensors and for providing an amplified output signal at the output of said magnetic field sensor
- 33. The detector of claim 29 further comprising an automatic gain control (AGC) circuit coupled between said magnetic field sensor and said speed detection circuit
- 34. The detector of claim 29 further comprising an offset adjustment circuit coupled between said magnetic field sensor and said AGC circuit
- 35. The detector of claim 29 wherein
the first logic data bit corresponds to a logic zero, the second logic data bit corresponds to a logic one; and wherein said data string includes a start data sequence (SDS) and at least one data word containing diagnostic information.
- 36. The detector of claim 29 wherein said at least one data word is comprised of two data logic bits
- 37. The detector of claim 29 wherein said at least one data word is comprised of three or more data logic bits
- 38. The detector of claim 29 wherein said at least one data word represents at least one condition related to one of
(a) air gap out of range, (b) air gap close to out of range (c) air gap less than nominal but not close to out of range (d) air gap greater than a nominal value (e) temperature less than a first predetermined low threshold temperature (f) temperature greater than a second predetermined high threshold temperature; and (g) temperature between first predetermined low threshold temperature and second high predetermined threshold temperature
- 39. The detector of claim 29 wherein, in response to a target moving in a first direction, said output control circuit provides a first pulse stream which includes diagnostic information.
- 40. The detector of claim 39 wherein, in response to the target moving in a second different direction, said output control circuit provides a second pulse stream which does not include diagnostic information
- 41. The detector of claim 29 wherein, in response to the target moving in a second different direction, said output control circuit provides a second pulse stream which includes diagnostic information.
- 42. The detector of claim 29 wherein the pulse characteristic corresponds to one of
a a pulse width characteristic, b a pulse current level characteristic, and c a pulse voltage level characteristic
- 43. The detector of claim 42 wherein
a first current level corresponds to a first logic value, a second current level corresponds to a second different logic value, and a third current level corresponds to direction information
- 44. The detector to claim 29 wherein the protocol is provided in voltage format
- 45. The detector of claim 29 wherein said magnetic field sensor comprises at least three Hall elements arranged in a row, each Hall element spaced apart from an adjacent Hall element by a predetermined distance and wherein in a first pair of Hall elements generate a first differential signal and a second pair of Hall elements generate a second differential signal
- 46. The detector of claim 45 wherein the first pair of Hall elements correspond to a left Hall element and a middle Hall element and the first differential signal corresponds to a left channel.
- 47. The detector of claim 46 wherein the second pair of Hall elements correspond to a right Hall element and a middle Hall element and the second differential signal corresponds to a right channel.
- 48. The detector of claim 47 wherein both the left and right channels are adapted to provide speed information, and output signals from both the left and right channels are provided to the direction detection circuit which examines a phase relationship between the output signal of the left channel and the output signal of the right channel to determine a direction in which the magnetic article is moving with respect to the magnetic article proximity detector.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. provisional application Nos. 60/353,836 filed Jan. 31, 2002 and 60/354,907 filed Feb. 5, 2002 which applications are hereby incorporated herein by reference in their entirety
Provisional Applications (2)
|
Number |
Date |
Country |
|
60353836 |
Jan 2002 |
US |
|
60354907 |
Feb 2002 |
US |