Claims
- 1. A torque sensor comprising:
- first and second optical encoders spaced apart from each other in an axial direction, said first and second optical encoders respectively including first and second rotary members having respective centers of rotation along the axial direction;
- a torsion bar having an axial center located along the axial direction, said torsion bar having a small diameter portion extending between first and second larger diameter portions;
- first and second friction grip members for detachably securing said first and second rotary members of said first and second optical encoders to said first and second large diameter portions of said torsion bar, respectively, and for adjusting an axial position of said first and second large diameter portions of said torsion bar secured to said first and second rotary members of said first and second optical encoders, respectively;
- torsion angle calculating means, operatively coupled to said first and second optical encoders, for calculating a torsion angle of said small diameter portion of said torsion bar in accordance with an output of each of said first and second optical encoders; and
- torque value calculating means, operatively coupled to said torque angle calculating means, for calculating a torque value of said torsion bar in accordance with the torsion angle calculated by said torque angle calculating means.
- 2. A torque sensor as recited in claim 1, wherein said torsion angle calculating means includes first and second pulse counting means for counting rotation interval pulses generated by said first and second optical encoders per each rotation of said first and second rotary members, first and second interpolating means for respectively detecting first and second rotational positions within a respective rotation interval based on a period of said rotation interval pulses and a time elapsed from a previous rotation interval pulse, first and second rotational position calculating means for respectively determining rotational positions of said first and second rotary members based on a count value of said first and second counting means and the first and second rotational positions within the respective rotation interval, and means for determining a difference between the rotational positions of said first and second rotary members.
- 3. A torque sensor as recited in claim 1, wherein each of said first and second friction grip members includes:
- a rotable hollow shaft, said first and second rotary members of said first and second optical encoders fixed to an outer periphery of said rotatable hollow shaft of said first and second friction grip members, respectively; and,
- a fixing mechanisms secured to an inner periphery of said rotatable hollow shaft, said fixing mechanisms including a clamping bolt and an angular sleeve member for contacting either one of said first and second larger diameter portions of said torsion bar, wherein upon a tightening of said clamping bolt said angular sleeve member moves toward the axial center and upon a loosening of said clamping bolt said angular sleeve member moves away from the axial center, thereby detachable securing and adjusting an axial position of said first and second larger diameter portions of said torsion bar.
- 4. A torque sensor as recited in claim 3, further comprising means for inputting a rigidity value of said torsion bar into said torque value calculating means, wherein said torque value calculating means calculates the torque value in accordance with said rigidity value.
- 5. A torque sensor as recited in claim 4, wherein said torsion angle calculating means includes first and second pulse counting means for counting rotation interval pulses generated by said first and second optical encoders per each rotation of said first and second rotary members, first and second interpolating means for respectively detecting first and second rotational positions within a respective rotation interval based on a period of said rotation interval pulses and a time elapsed from a previous rotation interval pulse, first and second rotational position calculating means for respectively determining rotational positions of said first and second rotary members based on a count value of said first and second counting means and the first and second rotational positions within the respective rotation interval, and means for determining a difference between the rotational positions of said first and second rotary members.
- 6. A torque sensor as recited in claim 3, wherein said torsion angle calculating means includes first and second pulse counting means for counting rotation interval pulses generated by said first and second optical encoders per each rotation of said first and second rotary members, first and second interpolating means for respectively detecting first and second rotational positions within a respective rotation interval based on a period of said rotation interval pulses and a time elapsed from a previous rotation interval pulse, first and second rotational position calculating means for respectively determining rotational positions of said first and second rotary members based on a count value of said first and second counting means and the first and second rotational positions within the respective rotation interval, and means for determining a difference between the rotational positions of said first and second rotary members.
Priority Claims (1)
Number |
Date |
Country |
Kind |
1-279345 |
Oct 1989 |
JPX |
|
Parent Case Info
This application is a Rule 62 continuation of now abandoned application, Ser. No. 07/602,094, filed Oct. 25, 1990.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4600357 |
Coules |
Jul 1986 |
|
Foreign Referenced Citations (3)
Number |
Date |
Country |
0284508 |
Sep 1988 |
EPX |
2626369 |
Jul 1989 |
FRX |
2218814 |
Nov 1989 |
GBX |
Non-Patent Literature Citations (1)
Entry |
Carson, Robert W. "Optical Sensor Measures Torque Without Slip Rings", Oct. 1967, pp. 3-4. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
602094 |
Oct 1990 |
|