Claims
- 1. A method for forming a bit body comprising:
providing a mold including a displacement therein; forming a layer of substantially superabrasive-free first matrix material on said displacement; introducing a mixture of a second matrix material and superabrasive powder within said mold; and sintering to solidify said mixture and said layer.
- 2. The method for forming a bit body as in claim 1, wherein said first and second matrix materials are the same.
- 3. The method for forming a bit body as in claim 1, wherein said sintering produces a solidified bit body formed of said mixture and said layer, said bit body including a cavity lined with said layer of substantially superabrasive-free first matrix material and extending inwardly from a surface of said bit body, said cavity produced by said displacement.
- 4. The method for forming a bit body as in claim 3, further comprising providing a cutting element and brazing said cutting element to said cavity.
- 5. The method for forming a bit body as in claim 1, wherein said providing includes mounting said displacement within said mold, and said layer is formed prior to said mounting.
- 6. The method for forming a bit body as in claim 1, wherein said forming comprises coating said displacement with a mixture of said substantially superabrasive-free first matrix material and an organic binder.
- 7. The method for forming a bit body as in claim 6, wherein said sintering further comprises evaporating said organic binder.
- 8. The method for forming a bit body as in claim 1, wherein said forming includes forming a solution of an organic binder and a powder of said substantially superabrasive-free first matrix material, and contacting said displacement with said solution.
- 9. The method for forming a bit body as in claim 1, wherein said forming comprises applying tape to said displacement, said tape coated with said substantially superabrasive-free first matrix material.
- 10. The method for forming a bit body as in claim 1, wherein said forming comprises applying tape to said displacement, said tape formed of a mixture of said superabrasive-free first matrix material and organic material.
- 11. The method for forming a bit body as in claim 1, wherein said introducing a mixture of a second matrix material and superabrasive powder within said mold includes disposing said mixture adjacent said layer.
- 12. The method for forming a bit body as in claim 1, wherein said forming comprises forming said layer to further include at least one of nickel, tin, phosphorus, and alloys thereof.
- 13. The method for forming a bit body as in claim 1, wherein said forming comprises coating said displacement with a mixture of said substantially superabrasive-free matrix material and a binder including polypropylene carbonate, methyl ethyl ketone and propylene carbonate.
- 14. The method for forming a bit body as in claim 1, wherein said forming a layer of substantially superabrasive-free first matrix material comprises forming said layer to be completely superabrasive-free.
- 15. The method for forming a bit body as in claim 1, wherein said superabrasive powder comprises diamond powder.
- 16. The method for forming a bit body as in claim 1, wherein said superabrasive powder comprises one of polycrystalline cubic boron nitride powder, SiC powder and TiB2 powder.
- 17. A method for improving braze strength between a cutting element and a drill bit, comprising:
forming a bit body having at least one region formed of a matrix material impregnated with superabrasive crystals; and forming a pocket extending into a section of said at least one region, said pocket including a lined inner surface lined with a layer of said matrix material, said layer being substantially superabrasive-free.
- 18. The method as in claim 17, further comprising brazing a cutting element to said lined inner surfaces of said pocket.
- 19. A drill bit body comprising a structural body including a cavity extending inwardly from a surface thereof, said cavity bounded by a cavity surface formed of a layer of substantially superabrasive-free matrix material and a portion of said drill bit body adjacent said layer formed of matrix material impregnated with superabrasive crystals.
- 20. The drill bit body as in claim 19, wherein said layer further includes at least one of nickel, tin, phosphorus, and alloys thereof.
- 21. The drill bit body as in claim 19, wherein said layer has a thickness within a range of about 0.001 inch to 0.2 inch.
- 22. The drill bit body as in claim 19, wherein said drill bit body includes a blade, said cavity formed within said blade, and wherein said blade comprises matrix material impregnated with superabrasive crystals.
- 23. The drill bit body as in claim 19, further comprising a cutting element brazed to said cavity.
- 24. The drill bit body as in claim 19, wherein said layer is completely superabrasive-free.
- 25. The drill bit body as in claim 19, wherein said superabrasive crystals comprise one of diamond crystals, polycrystalline cubic boron nitride crystals, SiC crystals and TiB2 crystals.
- 26. A drill bit body comprising a structural body having a pocket lined with a liner and a portion not including said liner, said liner having a braze strength being greater than a braze strength of said portion.
- 27. The drill bit body as in claim 26, wherein said portion is adjacent said liner.
- 28. The drill bit body as in claim 26, wherein said portion is formed of a mixture of matrix material having a greater concentration of superabrasive crystals than said liner.
- 29. A method for forming a bit body comprising:
providing a displacement within a mold; coating said displacement with a first material; and forming a second material over said first material and within said mold, said first material having a first braze strength being greater than a second braze strength of said second material.
- 30. The method for forming a bit body as in claim 29, wherein said first material comprises a superabrasive free matrix material and said second material comprises a mixture of said matrix material and superabrasive powder.
- 31. The method for forming a bit body as in claim 29, further comprising heating to form a bit body within said mold.
- 32. The method for forming a bit body as in claim 29, wherein said second material has a greater concentration of superabrasive crystals therein than said first material.
- 33. A method for forming a bit body comprising:
providing a mold including a displacement therein; forming a layer of first matrix material on said displacement; introducing a second matrix material within said mold, said second material including a greater concentration of superabrasive powder therein, than said first matrix material; and sintering to solidify said layer and said second matrix material.
- 34. The method for forming a bit body as in claim 33, wherein said first material includes a concentration of superabrasive powder being less than 1% by weight.
- 35. The method for forming a bit body as in claim 33, wherein said superabrasive powder comprises diamond powder.
- 36. A drill bit body comprising a structural body including a cavity extending inwardly from a surface thereof, said cavity bounded by a surface formed of a layer of first matrix material and a portion of said drill bit body adjacent said layer formed of a second matrix material, said first matrix material including a lower concentration of superabrasive crystals therein, than said second matrix material.
- 37. The drill bit body as in claim 30, wherein said first matrix material includes a concentration of superabrasive crystals being less than 1% by weight.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application is related to co-pending U.S. patent applications Ser. No. _/_____ I , entitled “Drill Bit Body with Multiple Binders”, filed ______ and Serial No._/_____, entitled “Bit Body Formed of Multiple Matrix Materials and Method for Making the Same”, filed ______,the contents of each of which are hereby incorporated by reference.