Claims
- 1. A method of grinding and resurfacing flywheels or disks having at least one face with an annular frictional contact area and having a central hub area with at least one opening, and for producing on the frictional contact area a desirable surface pattern of curving lines generally transverse to the circumference of the flywheel or disk, comprising:
- securing the flywheel or disk to a shaft via an opening in the hub area of the flywheel or disk, the shaft extending from a first housing secured to a table;
- providing a motor-driven cup-shaped abrading wheel on a base connected to the table, with a rotational axis generally parallel to the shaft holding the flywheel or disk, and with position adjustment means in association with the base for advancing the abrading wheel substantially axially forward toward the flywheel or disk in position to contact the frictional contact area of the flywheel or disk, the abrading wheel being on a rotational axis which is slightly tilted with respect to the shaft with the flywheel or disk, so that only a portion of the abrading wheel in a single arc contacts the flywheel or disk at one time and being positioned so that only a portion of the wheel's abrasive surface overlaps the face of the flywheel or disk;
- rotating the shaft with the flywheel or disk at a first predetermined speed at least about 400 rpm, and rotating the abrading wheel at a second predetermined speed at least about 3450 rpm;
- advancing the abrading wheel toward and into contact with the frictional contact area of a face of the flywheel or disk, using the position adjustment means such that the single arc of contact of the tilted abrading wheel on the frictional contact area extends substantially only from the periphery of said central hub area to the outer edge of the flywheel or disk, until the frictional contact area is rendered substantially smooth and there is produced a desirable surface pattern comprising curving lines non-concentric with the flywheel or disk and positioned generally radially on the flywheel or disk essentially without crossing over each other, for promoting proper wear.
- 2. The method of claim 1, wherein the flywheel or disk and the abrading wheel are rotated in the same direction.
- 3. The method of claim 1, further including providing means for varying the speed of rotation of the flywheel or disk.
- 4. The method of claim 1, wherein the position adjustment means includes a coarse adjustment means and a fine adjustment means.
- 5. The method of claim 1, further including adjusting and controlling the pressure with which the abrading wheel bears against the disk face by sensing the level of current drawn by a motor of the motor-driven abrading wheel, and advancing the abrading wheel against the disk face in a fine adjustment mode until a desired level of current is drawn by the motor, indicating a desired level of frictional resistance between the abrading wheel and the disk face.
- 6. The method of claim 5, wherein the advancing of the abrading wheel is accomplished with a lead screw motor rotating a lead screw at low rpm so as to advance the abrading wheel slowly in a fine adjustment, and including automatically controlling the fine adjustment by manually setting a desired current level on a sensor/controller which senses current level to the abrading wheel motor, and closing a circuit supplying power to the lead screw motor when sensed current is below said desired current level and opening the circuit when sensed current reaches said desired current level.
- 7. An apparatus for surfacing a face of a flywheel or disk having at least one face with an annular frictional contact area, and a central hub area with a central hole, and for generating a desired surface pattern on the frictional contact area, comprising
- a table;
- means for supporting the flywheel or disk generally from its center, said supporting means being secured to the table;
- means for causing the flywheel or disk to rotate in a first angular direction, including a first driven shaft having an axis about which flywheel or disk rotates, said supporting means comprising a support plate secured to the first driven shaft and means for securing the flywheel or disk against the support plate by engaging the central hole in the flywheel or disk;
- an abrasive surface;
- a cup-shaped abrading wheel having
- abrading adjustment means for adjusting the axial position of the abrading wheel, including a coarse adjustment means and a fine adjustment means, for engaging the abrading wheel against the flywheel or disk face and for controlling the depth to which the disk face is abraded;
- base means for supporting the abrading wheel such that the abrasive surface is slightly tilted with respect to the flywheel or disk face, said base means including a second shaft supporting said abrasive wheel, said second shaft being slightly tilted with respect to and offset from the first shaft such that the abrading wheel makes a single arc of contact with the flywheel or disk face, said single arc of contact extending substantially only from the periphery of said central hub area to the outer edge of the brake disk; and
- motor means for driving the abrading wheel on an axis of the second shaft in the same angular direction as the rotation of the flywheel or disk, and such that only a portion of the wheel's abrasive surface overlaps the face of the disk;
- whereby there is formed on the flywheel or disk face a surface pattern of curving lines not concentric with the disk and generally radially disposed on the disk and essentially not crossing over each other, for promoting proper wear of the flywheel or disk face.
- 8. The apparatus of claim 7, wherein said means for securing the flywheel or disk onto the support plate comprises a tapered centering member engaged through the central hole in the flywheel or disk, and a threaded centering bolt engaged with the support plate for drawing the centering member against the hole in the flywheel or disk to center the flywheel or disk and hold it tightly against the support plate.
- 9. The apparatus of claim 7, wherein the coarse adjustment means and the fine adjustment means comprise a screw-threaded coarse adjustment shaft generally parallel to the axis of the abrading wheel and journaled for rotation in the base means, a retaining bracket secured to the table and preventing axial movement of the coarse adjustment shaft while permitting rotation thereof, a coarse adjustment knob secured to the end of the coarse adjustment shaft for manual rotation thereof, a worm gear member in threaded engagement on the coarse adjustment shaft, spacer sleeves slidable over the coarse adjustment shaft, positioned to engage the base means and to hold the worm gear member against axial movement with respect to the base means and to transfer axial forces from the worm gear member to the base means to shift the position of the base means axially with respect to the coarse adjustment shaft in response to manual rotation of the shaft, a fine adjustment shaft journaled for rotation in the base means and perpendicular to the coarse adjustment shaft, and a worm fixed on the fine adjustment shaft and in engagement with the worm gear, whereby manual rotation of the fine adjustment shaft will effect very slow rotation of the worm gear while the coarse adjustment shaft remains non-rotational, causing the worm gear to advance very slowly along the coarse adjustment shaft and effecting fine adjustment movement of the base means.
- 10. The apparatus of claim 7, further including means for adjusting and controlling the pressure with which the abrading wheel bears against the disk face by sensing the level of current drawn by the motor means of the motor-driven abrading wheel, and including advancing means for advancing the abrading wheel against the disk face in a fine adjustment mode until a desired level of current is drawn by the motor means, indicating a desired level of frictional resistance between the abrading wheel and the disk face.
- 11. The method of claim 10, wherein the advancing means comprises a lead screw motor rotating a lead screw at low rpm so as to advance the abrading wheel slowly in a fine adjustment, and including control means for automatically controlling the fine adjustment level and sensor/controller means for sensing current level to the abrading wheel motor means, and for closing a circuit supplying power to the lead screw motor when sensed current is below said desired current level and opening the circuit when sensed current reaches said desired current level.
BACKGROUND OF THE INVENTION
This is a continuation-in-part of my copending application Ser. No. 943,922, filed Dec. 18, 1986, now U.S. No. 4,766,702.
US Referenced Citations (7)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
943922 |
Dec 1986 |
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