Claims
- 1. An apparatus for calibrating a tire testing machine using a mechanical couple, the machine providing load vectors in three perpendicular intersecting axes, the first axis comprising a longitudinal axis, the second axis comprising a lateral axis and the third axis comprising a steer axis, wherein the apparatus comprises:
(a) a spindle extension aligned along the lateral axis, the spindle extension having:
a first location corresponding to the spindle axis/steer axis intersection point; and a second location, the second location being positioned a predetermined distance from the first location; (b) first and second load members, each of the first and second load members having a proximal end adapted for connection to the spindle and a distal end adapted for receiving a predetermined weight, the first load member being connected to the spindle extension at the first location, and the second load member being connected to the spindle extension at the second location; and (c) wherein the first load member and the second load member together comprise a mechanical couple, such that a first force exerted upon the first load member by a first weight and a second force exerted upon the second load member by a second weight are substantially equal, whereby the first force and the second force act in opposite directions.
- 2. The apparatus of claim 1 wherein the first load member is flexible along its length, and extends substantially the entire distance from the spindle extension to the first weight.
- 3. The apparatus of claim 1 wherein the second load member is flexible along its length, and extends substantially the entire distance from the spindle to the second weight.
- 4. The apparatus of claim 1 further comprising a first outrigger which is adapted for supporting the first load member.
- 5. The apparatus of claim 4 further comprising a second outrigger adapted for supporting the second load member.
- 6. The apparatus of claim 4 in which the first outrigger comprises a first pulley adapted to support the first load member.
- 7. The apparatus of claim 5 in which the second outrigger further comprises a second pulley adapted for supporting the second load member.
- 8. An apparatus for calibrating a tire testing machine, wherein the machine is capable of isolating load forces in three perpendicular intersecting axes, the first axis comprising a longitudinal axis, the second axis comprising a lateral axis, and the third axis comprising a steer axis, the apparatus comprising:
(a) a spindle extension aligned along the lateral axis and operably connected to the transducer; (b) an air bearing; (c) a load cell strut, the strut being connected to the air bearing and adapted for transmitting forces along the steer axis between the spindle extension and the air bearing; and (d) a friction reduction means adapted for reducing frictional contact between the load cell strut and the spindle extension, thereby facilitating improved calibration of the tire testing machine.
- 9. The apparatus of claim 8 wherein the friction reduction means comprises a low-friction yoke operably connecting the load cell strut to the spindle, the low-friction yoke being adapted for reducing undesirable frictional forces along the steer axis between the spindle extension and the air bearing.
- 10. The apparatus of claim 9 in which the low-friction yoke further comprises at least one anti-torque bearing adapted to reduce friction.
- 11. The apparatus of claim 10 in which the anti-torque bearing comprises, in part, a rotatable shaft adapted to interconnect with the spindle extension.
- 12. The apparatus of claim 10 in which the low-friction yoke comprises two arms, further wherein the rotatable shaft comprises a first end and a second end, said first and second ends of the shaft being adapted for articulation with a roller bearing positioned upon at least one arm of the low-friction yoke.
- 13. The apparatus of claim 11 in which the anti-torque bearing is positioned upon the upper portion of the strut at a location that is proximate the connection between the low-friction yoke and the strut, whereby the low-friction yoke is capable of spinning upon the bearing with reduced frictional forces being generated in the lateral and longitudinal axes.
- 14. An improved tire testing machine adapted for calibration using a friction reduction means that is capable of reducing frictional forces applied along at least two axes, comprising:
a spindle; a frame for supporting said spindle; a road simulation belt, the frame supporting said spindle in a position above said road simulation belt; a transducer operably connected to said spindle; a spindle extension connected to the spindle and aligned along the lateral axis, the spindle extension being operably connected to the transducer, the transducer being capable of detecting forces directed along said three perpendicular intersecting axes; an air bearing operably connected to the spindle extension; a load cell strut, the strut being adapted for transmitting forces along the steer axis between the spindle extension and the air bearing; and a friction reduction means adapted for reducing the frictional contact between the load cell strut and the spindle extension.
- 15. The machine of claim 14 wherein the friction reduction means comprises a low-friction yoke operably connecting the load cell strut to the spindle extension, the low-friction yoke being adapted for reducing undesirable frictional forces between the load cell strut and the spindle extension.
- 16. The machine of claim 15 in which the low-friction yoke further comprises an anti-torque bearing adapted to reduce friction.
- 17. The machine of claim 15 in which the anti-torque bearing comprises, in part, a rotatable shaft that passes through the spindle extension.
- 18. The machine of claim 17 in which the low-friction yoke comprises two arms, further wherein the rotatable shaft comprises a first end and a second end, said first and second ends of the shaft being adapted for articulation with a roller bearing on each arm of the low-friction yoke.
- 19. The machine of claim 16 in which the anti-torque bearing is positioned upon the upper surface of the strut at a location that is proximate the connection between the low-friction yoke and the strut, whereby the low-friction yoke is capable of spinning upon the bearing with reduced frictional forces being generated in the lateral and longitudinal axes.
- 20. A method of calibrating a flat belt tire testing machine while employing a mechanical couple, comprising the steps of:
(a) providing a frame operably connected to a spindle, said spindle being operably connected to a transducer, the transducer being capable of measuring load forces in at least three perpendicular intersecting axes, the first axis comprising a longitudinal axis, the second axis comprising a lateral axis, and the third axis comprising a steer axis; (b) mounting a spindle extension upon said spindle and aligning said spindle extension along the lateral axis and in operable connection to the transducer, the spindle extension having a first location along the spindle extension corresponding to the spindle axis/steer axis intersection point and a second location upon the spindle axis, the second location being located a predetermined distance from the first location; (c) connecting a first load member to the first location on the spindle extension; (d) connecting a second load member to the second location on the spindle extension; (e) applying a first weight to the first load member in a first direction; (f) applying a second weight, of equal value to the first weight, to the second load member in a second direction that is opposite to the first direction; (g) forming a mechanical couple along the lateral axis; and (h) measuring forces generated in the steer axis and longitudinal axis.
- 21. The method of claim 20 further comprising the step of constructing a matrix of corrective calibration values in both the steer axis and longitudinal axis force directions.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This patent application claims priority to an earlier filed U.S. provisional patent application Serial No. 60/253,582 filed on Nov. 28, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60253582 |
Nov 2000 |
US |