Claims
- 1. A cutting mechanism for cutting fibers entrained in a viscous material, the cutting mechanism comprising:
a housing having a bore formed therein, the bore having an inlet and an outlet; a bed knife disposed within the bore in the housing, the bed knife having an inlet channel formed therethrough, the bed knife being arranged within the bore of the housing such that the inlet channel of the bed knife is substantially aligned with the inlet of the housing; and, a rotating cutter, the rotating cutter having formed entirely therethrough a plurality of gullets, the gullets being located on the rotating cutter such that as the cutter rotates with respect to the bed knife, the gullets of the rotating cutter are rotated past the inlet channel of the bed knife in substantial alignment therewith.
- 2. The cutting mechanism of claim 1 wherein the rotating cutter is in substantially full facial contact with the bed knife.
- 3. The cutting mechanism of claim 1 wherein the rotating cutter and the bed knife are no more than three thousandths of an inch out of alignment with each other.
- 4. The cutting mechanism of claim 1 wherein the rotating cutter and the bed knife are between zero and ten thousandths of an inch out of alignment with each other.
- 5. The cutting mechanism of claim 1 further comprising a biasing structure for biasing the rotating cutter into substantially full facial contact with the bed knife, the biasing structure comprising a biasing rod constructed and arranged to resiliently apply pressure to the rotary cutter in a direction that is substantially normal to the surface of the bed knife.
- 6. The cutting mechanism of claim 5 wherein the biasing structure further comprises a mechanical stop that prevents the movement of the biasing rod away from the bed knife in such a manner as to limit the movement of the rotary cutter away from the bed knife to no more than three thousandths of an inch.
- 7. The cutting mechanism of claim 1 wherein the gullets of the rotating cutter comprise bores formed through the rotating cutter, the bores having a leading edge and a trailing edge, the trailing edge being sufficiently sharp to shear a fiber protruding from the inlet passage of the bed knife into the gullet of the rotating cutter.
- 8. The cutting mechanism of claim 1 wherein the gullets of the rotating cutter comprise cutouts that are formed into the edge of the rotating cutter, the cutouts having a leading edge and a trailing edge, the trailing edge being formed so as to shear a fiber protruding from the inlet passage of the bed knife into the gullet of the rotating cutter.
- 9. The cutting mechanism of claim 1 wherein the gullets of the rotating cutter comprise oblong bores that are formed through the rotating cutter, the cutouts having a leading edge and a trailing edge, the trailing edge being formed so as to shear a fiber protruding from the inlet passage of the bed knife into the gullet of the rotating cutter.
- 10. A system for preparing fiber reinforced molding materials comprising:
a viscous entrainment compounding device for compounding a continuous strand of reinforcing fiber with a molding material in a predetermined ratio, the viscous entrainment compounding device being constructed and arranged to convey the compounded continuous strand of reinforcing fiber and molding material to a cutting mechanism, the cutting mechanism being constructed and arranged to cut the continuous strand of reinforcing fibers into predetermined lengths and to further convey the fiber reinforced molding material to an output device.
- 11. The system for preparing fiber reinforced molding materials of claim 10 wherein the output device comprises a molding injection machine.
- 12. The system for preparing fiber reinforced molding materials of claim 10 wherein the cutting mechanism comprises:
a housing having a bore formed therein, the bore having an inlet and an outlet; a bed knife disposed within the bore in the housing, the bed knife having an inlet channel formed therethrough, the bed knife being arranged within the bore of the housing such that the inlet channel of the bed knife is substantially aligned with the inlet of the housing; and, a rotating cutter, the rotating cutter having formed entirely therethrough a plurality of gullets, the gullets being located on the rotating cutter such that as the cutter rotates with respect to the bed knife, the gullets of the rotating cutter are rotated past the inlet channel of the bed knife in substantially alignment therewith.
- 13. The system for preparing fiber reinforced molding materials of claim 10 wherein the viscous entrainment compounding device conveys the continuous strand of reinforcing fiber therethrough by means of viscous shear forces imparted to the reinforcing fiber by molding materials being conveyed through the viscous entrainment compounding device under pressure.
- 14. A cutting mechanism for cutting fibers entrained in a viscous material, the cutting mechanism comprising:
a housing having a cavity formed therein, the cavity having an inlet and an outlet; a bed knife having an inlet substantially aligned with that of the housing, the bed knife having a substantially planar cutting surface arranged to face the interior of the cavity; a rotating cutter supported upon and rotated by a pilot shaft, the rotating cutter having a substantially planar cutting face that is in substantially full facial contact with the cutting surface of the bed knife, the rotating cutter further having a plurality of gullets formed therethrough, the gullets being aligned with the inlets of the housing and the bed knife so as to receive the fibers entrained in the viscous material therethrough, a trailing edge of the gullets constructed and arranged to sever the fiber as the trailing edge of the gullet passes the inlet of the bed knife, the resulting mixture of cut fibers and viscous material passing from the cavity of the cutting mechanism through the outlet of the housing.
- 15. The cutting mechanism of claim 14 further comprising:
a backflow auger received over the pilot shaft and disposed within the cavity of the housing, the backflow auger being spaced away from the rotating cutter, thereby defining therebetween an annular passage whereby the mixture of cut fibers and viscous materials may flow from the cavity of the housing through the outlet of the housing, the back flow auger having grooves formed in its sides, the grooves acting in conjunction with the walls of the cavity to prevent substantially all of the mixture of cut fibers and viscous materials from exiting the annular passage except through the outlet of the cavity formed through the housing.
- 16. The cutting mechanism of claim 14 further comprising:
a sealing collar received over the pilot shaft between the backflow auger and the rotating cutter, the sealing collar being constructed and arranged to form respective seals between the backflow auger and the sealing collar and between the sealing collar and the rotating cutter, thereby preventing substantially all contact between the mixture of mixture of cut fibers and viscous materials and the pilot shaft.
- 17. The cutting mechanism of claim 14 further comprising:
a biasing mechanism for resiliently biasing the rotating cutter into substantially full facial contact with the bed knife.
- 18. The cutting mechanism of claim 17 wherein the biasing mechanism comprises:
a biasing rod passed through a longitudinal bore formed completely through the pilot shaft, a distal end of the biasing rod contacting a rear surface of the rotating cutter; a spring mechanism coupled to a base end of the biasing rod for applying a resilient biasing force to the biasing rod so as to maintain the rotating cutter in substantially full facial contact with the bed knife.
- 19. The cutting mechanism of claim 18 further comprising:
a mechanical limiting mechanism coupled to the biasing rod so as to prevent the rotating cutter from moving more than approximately three-one thousandths of an inch away from the bed knife.
- 20. The cutting mechanism of claim 14 further comprising:
a drive mechanism coupled to the housing of the cutting mechanism, the drive mechanism comprising a motor that is operatively coupled to a drive shaft by a transmission mechanism, the drive shaft being coupled to the pilot shaft of the cutting mechanism for rotating the rotating cutter with respect to the bed knife.
- 21. The cutting mechanism of claim 20 wherein the drive mechanism is thermally isolated from the housing of the cutting mechanism.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a Continuation-in-Part of U.S. application Ser. No. 09/491,925 of Ronald C. Hawley filed Jan. 27, 2000 entitled Direct Compounding of Fibers and Resins for Molding Operations and U.S. application Ser. No. 09/766,355 of Ronald C. Hawley, Craig N. Hansen, and Paul C. Cross, filed on Jan. 19, 2001 and entitled Resin and Fiber Compounding Apparatus for Molding Operations. These applications are hereby incorporated by reference.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09491925 |
Jan 2000 |
US |
Child |
09933281 |
Aug 2001 |
US |
Parent |
09766355 |
Jan 2001 |
US |
Child |
09933281 |
Aug 2001 |
US |