The invention pertains to the field of centerless grinding. More particularly, the invention pertains to centerless grinding through the application of a helical twist to axial grooves or slots of a cylindrical workpiece to prevent parts from developing flat spots.
Centerless grinding is a machining process that uses abrasive cutting wheels to remove material from the outer diameter of a cylindrical workpiece. Workpieces with slots on the outer diameter which extend along the entire axis cannot be centerless ground, as during the grinding process the workpiece will stop on the slot or flat.
The speed of the first and second grinding wheels 5, 6 relative to each other determines the rate at which material is removed from the workpiece 2. The tangential speed of the first grinding wheel 5 is greater than the second grinding wheel 6.
In order for centerless grinding of a workpiece 2 to occur, the workpiece 2 needs to be in contact with the two grinding wheels 5, 6 at all times along the outer diameter of the workpiece 2 to be ground and along the axis A-A of the workpiece 2. This can be challenging for workpieces that require or have an axial slot 7 on the outer diameter 2a that runs along the axis A-A of the piece 2, as continuous contact between the two grinding wheels 5, 6 is interrupted, for example as shown in
In one embodiment, a workpiece includes a helical feature which allows for centerless grinding of a workpiece with slots on the outer diameter. The helical feature can include a helical twist which can be applied to grooves on the outer diameter or workpiece to ensure that the grinding wheels maintain contact with the outer diameter of the workpiece at all times.
In another embodiment, a method of manufacturing a control sleeve or control valve for a variable cam timing phaser is disclosed. The method comprising the steps of: placing a workpiece on a platform, the workpiece comprising: a body with an outer circumference having a first end and a second end separated by a length; and a continuous helical groove extending from a first end to the second end a depth from the outer circumference, the helical groove having a surface the depth from the outer circumference connected to a first side and a second side; wherein the helical groove has an angular overlap around the outer circumference of the body measured between an imaginary line drawn from a first edge of the first side at the first end to the second end and to a second edge of the first side at the second end, securing the workpiece between two rotary grinding wheels which rotate at the same speed in different directions; grinding the workpiece such that the angular overlap ensures continuous tangential contact with the two rotary grinding wheels as the workpiece is rotated.
In yet another embodiment, a method of manufacturing a control sleeve or control valve for a variable cam timing phaser is disclosed. The method comprising the steps of: placing a workpiece on a platform, the workpiece comprising: a body with an outer circumference having a first end and a second end separated by a length; and a continuous helical slot comprising: a first axial slot at a first end extending a length towards the second end having a depth from the outer circumference, the first axial slot having a flat surface at the depth from the outer circumference, the flat surface connected to a first side and a second side; a helical jog having a surface at the depth having first helical jog side and a second helical jog side connected to the first side and the second side of the first axial slot, the helical jog extending a length towards the second end; and a second axial slot having a flat surface at the depth connected to a first side and a second side connected to the first helical jog side and the second helical jog side; securing the workpiece between two rotary grinding wheels which rotate at the same speed in different directions; grinding the workpiece such that the angular overlap ensures continuous tangential contact with the two rotary grinding wheels as the workpiece is rotated.
By adding a helical slot 107 relative to the outer circumference 102a, helical overlap is present to ensure that contact is consistently maintained between the outer circumference 102a of the workpiece 102 and the grinding wheels 5, 6. The helical overlap is shown in
To measure D1, an imaginary line IL is extended from the first helical slot edge 107a at a first end 102b to the second end 102c, with the distance between the imaginary line IL and the second helical slot edge 107b at the second end 102c being D1 and representative of the helical overlap. The first helical slot edge 107a and the second helical slot edge 107b overlap to allow the grinding wheel to contact continuously around the outer circumference of the workpiece 102.
The helical overlap D1 on the outer circumference 102a of the workpiece 102 is sized such that the workpiece 102 can rotate freely and maintain continuous tangential contact with the grinding wheels 5, 6 and the platform 3, as the grinding wheels 5, 6 consider the outer circumference 102a of the cylindrical workpiece 102 to have no interruptions or to be completely intact as shown in
A control sleeve or control valve can be manufactured using a workpiece 102 described above. The workpiece 102 is placed on a platform 3. The workpiece 102 is secured between two rotary grinding wheels 5, 6 which rotate at the same speed in different directions; grinding the workpiece 102 such that the angular overlap ensures continuous tangential contact with the two rotary grinding wheels as the workpiece 102 is rotated.
It should be noted that in the prior art
One advantage of the helical slot 107 of an embodiment of the present invention is that the actual cut path is shorter than separate axial slots 9, 10 and angular jogs 11 as shown in the conventional workpiece 20 of
The helical jog 208 between the first axial flat slot 207 and the second axial slot 210 has a length L. The helical overlap D2 represents the angular overlap of the first axial flat slot 207 to the second axial flat slot 210. To measure D2, an imaginary line IL is extended from the edge 207a of axial flat slot side 214 at a first end 202b to the second end 202c, with the distance between the imaginary line IL and the edge 210a of the axial flat slot side 218 of the second axial flat slot 210 being the helical overlap.
Due to the helical overlap D2 of the helical jog 208, the grinding wheels 5, 6 and the platform 3 are continuously maintained in contact with the outer circumference 202a of the workpiece 202.
A control sleeve or control valve can be manufactured using a workpiece 202 described above. The workpiece 202 is placed on a platform 3. The workpiece 202 is secured between two rotary grinding wheels 5, 6 which rotate at the same speed in different directions; grinding the workpiece 202 such that the angular overlap ensures continuous tangential contact with the two rotary grinding wheels as the workpiece 202 is rotated.
In an embodiment of the present invention, the workpiece 102 and 202 is a sleeve for a control valve, or a control valve associated with a variable cam timing phaser. In an alternate embodiment, the workpiece 102 and 202 is a lock pin or detent valve for use with a variable cam timing phaser. In yet other embodiments, the workpiece 102 and 202 is a lock pin or detent valve for use within an engine.
Accordingly, it is to be understood that the embodiments of the invention herein described are merely illustrative of the application of the principles of the invention. Reference herein to details of the illustrated embodiments is not intended to limit the scope of the claims, which themselves recite those features regarded as essential to the invention.
This application claims the benefit of U.S. Patent Application No. 62/809,084 filed on Feb. 22, 2019, the disclosure of which is herein incorporated by reference in its entirety.
Number | Date | Country | |
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62809084 | Feb 2019 | US |