Method of manufacturing of cutting knives using direct metal deposition
10160127 ยท 2018-12-25
Assignee
Inventors
- Bhaskar Dutta (Troy, MI, US)
- Harshad Natu (Mumbai, IN)
- W. Swenson (Bloomfield Hills, MI, US)
- Jyoti Mazumder (Ann Arbor, MI, US)
Cpc classification
C23C24/106
CHEMISTRY; METALLURGY
International classification
B26D1/00
PERFORMING OPERATIONS; TRANSPORTING
C23C24/10
CHEMISTRY; METALLURGY
Abstract
Direct metal deposition (DMD) is used to fabricate knife edges with extended service life. A metal alloy powder is deposited along a blank and melted with a laser beam so that the powder solidifies into a strip of material having a hardness and/or wear resistance greater than that of the starting material. The piece is then finished to produce a sharp edge in the solidified material. The powder may be melted while it is being deposited, or it may be melted after being deposited. A slot or groove may be formed in the blank with the metal alloy powder being deposited into the slot or groove. A hardened steel alloy powder is deposited onto a mild steel blank. For example, a tool steel or vanadium steel powder may be deposited onto a 1018 steel blank. An invention line-beam nozzle may be used for deposition and/or powder melting.
Claims
1. A method of fabricating an improved cutting knife, comprising the steps of: providing a metal blank of a first hardness, the blank having a top surface and a distal end; forming a groove in the top surface of the blank, the groove defining a width and extending in a lengthwise direction; providing a nozzle and a cylindrical lens to shape a laser beam into a line-shaped focus, the nozzle including a central slot for the laser beam and first and second elongated slots on opposing lateral sides of the central slot for discharging metal alloy powder; orienting the line shaped focus of the laser beam widthwise to the groove and moving the line shaped focus in the lengthwise direction of the groove along an axis of deposition of the metal alloy powder for generating a melt pool inside the groove, wherein the melt pool is formed by depositing the metal alloy powder on opposing lateral sides of the line-shaped focus of the laser beam into the groove; providing a shaping gas circumscribing the line shaped focus of the laser beam directed at the melt pool; melting the powder with the line-shaped focus of the laser beam so that the powder solidifies into a strip of material having a second hardness greater than the first hardness; and finishing at least the solidified material to produce a sharp edge.
2. The method of claim 1, including the step of forming the groove widthwise in the blank and spaced away from the distal end.
3. The method of claim 1, including a step of removing the top surface of the blank to create a new top surface causing the blank and the solidified material to become flush with one another.
4. The method of claim 1., including a step of removing material from the distal end of the blank and a portion of the solidified material.
5. The method of claim 1, including the step of removing the solidified material at an acute angle relative to top surface of the blank.
6. The method of claim 1, wherein the step of depositing a metal alloy powder in the groove is further defined by melting the powder while it is being deposited.
7. The method of claim 1, wherein the step of depositing a metal alloy powder in the groove is further defined by melting the powder after being deposited.
8. The method of claim 1, including the steps of: providing a mild steel blank; and depositing and melting a hardened steel alloy powder.
9. The method of claim 1, including the steps of: providing a 1018 steel blank; and depositing and melting a tool steel or vanadium steel powder.
10. The method of claim 1, wherein said step of finishing at least the solidified material to produce a sharp edge is further defined by producing a serrated edge.
11. The method of claim 1, wherein said step of finishing at least the solidified material to produce a sharp edge is further defined by producing a curved edge.
12. A method of fabricating an improved cutting knife, comprising the steps of: providing a metal blank with a first hardness, the blank having a top surface and a distal end; forming a groove in the top surface of the blank and spaced away from the distal end, the groove defining a width and extending in a lengthwise direction; providing a nozzle and a cylindrical lens to shape a laser beam into a line-shaped focus, the nozzle including a central slot for the laser beam and first and second elongated slots on opposing lateral sides of the central slot for discharging a metal alloy powder; depositing the metal alloy powder in the groove while simultaneously generating the line-shaped focus of the laser beam and orienting the line-shaped focus of the laser beam widthwise to the groove while moving the line shaped focus of the laser beam in the lengthwise direction along an axis of deposition of the metal alloy powder along the groove with the metal alloy powder being directed toward opposite sides of the line shaped focus of the laser beam; melting the powder with the laser beam so that the powder solidifies into a strip of material having a second hardness greater than the first hardness; removing a portion of the top surface of the blank to create a new top surface wherein the blank and solidified material are flush with one another; and removing material from the distal end of the blank and a portion of the solidified material to produce a sharp edge in solidified material.
13. The method of claim 12, wherein the step of removing material from the distal end of the blank includes removing the solidified material at an acute angle relative to the new top surface.
14. The method of claim 12, wherein the step of depositing a metal alloy powder in the groove is further defined by melting the powder while it is being deposited.
15. The method of claim 12, wherein the step of depositing a metal alloy powder in the groove is further defined by melting the powder after being deposited.
16. The method of claim 12, including the steps of: providing a mild steel blank; and depositing and melting a hardened steel alloy powder.
17. The method of claim 12, including the steps of: providing a 1018 steel blank; and depositing and melting a tool steel or vanadium steel powder.
18. The method of claim 12, wherein the blade has a width sufficient to provide multiple sharpening.
19. The method of claim 12, including the step of providing a combination of alloy powders at the same time or in layers.
20. The method of claim 12, wherein said step of finishing at least the solidified material to produce a sharp edge is further defined by producing a straight edge.
21. The method of claim 12, wherein said step of finishing at least the solidified material to produce a sharp edge is further defined by producing a serrated edge.
22. The method of claim 12, wherein said step of finishing at least the solidified material to produce a sharp edge is further defined by producing a curved edge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(21) As an introduction, commonly assigned U.S. Pat. No. 6,122,564 describes a laser-aided, computer-controlled direct metal deposition (DMD) system wherein successive layers of material are applied to a substrate so as to fabricate an object or provide a cladding layer. The deposition tool path may be generated by a computer-aided manufacturing system, and feedback monitoring may be used to control the dimensions and overall geometry of the fabricated section in accordance with a computer-aided design description.
(22) DMD systems are capable of depositing sections on metallic substrates of a differing material than used in the deposition, on the condition that suitable choices of material are made and suitable surface treatment is performed to achieve a good metallurgical bond between the deposited material and the underlying substrate.
(23) This invention extends and improves upon the teachings set forth in the 564 Patent, the entire content of which is incorporated herein by reference. A method according to the invention is depicted in
(24) A blank 100 of metal such as mild steel is provided in
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(26) The forward portion 126 of the composite structure is also removed and a blade is formed through milling, grinding, cutting and/or polishing, thereby creating an edge 128 of hardened material 116 at an appropriate angle with surface such as 130. Since the angle is formed through known method the invention is not limited in this regard. For example, for paper cutting angles on the order of 15-35 degrees may be appropriate, though other surfaces are possible as depicted by the broken lines shown in
(27) Having described the general method, one detailed exemplary manufacturing process will now be detailed with reference to
(28) 1) A long bar of mild steel (e.g., 1018 steel) is cut or formed into blanks having desired lengths or other dimensional parameters.
(29) 2) A slot of required size (e.g., 0.5 wide0.08 deep) is machined into each blank. An appropriate radius may be used at the bottom of the groove. A groove location is identified from one long edge of the blank.
(30) 3) The machined blanks are placed in multi-blank (e.g., 4 blank) fixtures in a DMD machine, and hardened material is deposited into the milled slots.
(31) 4) Deposited blanks are inspected for visual defects, such as severe sink or pitting. Hardness is checked on random samples (RC 65-67).
(32) 5) A triple tempering of deposited blanks is performed at 1025 F. for 2 hours with air cooling between cycles. Again, hardness is checked on random samples (RC 65-67).
(33) 6) Blanks are machined to the following specifications: a. Blanchard grind DMD side (knife face) to a Ra 20 micron finish b. Blanchard grind side opposite to DMD (bevel face) to the required thickness and a Ra 20 micron finish c. Blanchard grind from supposed knife edge to remove diluted material. d. Blanchard grind opposite end of blank to the required height e. Finish machine overall length to the required length f. Drill and tap mounting holes g. Machine 2 edge chamfers 0.030 h. Machine 20 degree angle down to DMD material
(34) 7) Perform the following inspection operations: Measure thickness with micrometers and check overall length, width, angle of bevel, tapped hole size and location, and thickness of DMD material.
(35) 8) Carry out finish grindingGrind face taper, Grind bevel face, Grind bevel angle. Inspect each knife during grinding operation.
(36) 9) Inspect random samples for dilution area by polishing and etching knife edge.
(37) 10) Perform final honing of knife edge.
(38) 11) Visually inspect honed edge of each knife, perform paper draw test on 1 of every three knives.
(39) 12) Chemically etch 1 knife per batch and record in logbook.
DEPOSITION TECHNIQUES
(40) Two techniques may be used in accordance with the invention for depositing hard steels in the milled slots: the powder injection and powder pre-placement.
(41) Powder injection technique
(42) In this embodiment, the inventive, POM-designed line beam nozzle described below is used to inject tool steel powder in the melt pool created by a line laser beam in the milled slot.
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(44) Powder pre-placement technique
(45) In this case, tool steel powder is placed uniformly in the groove to fill the machined slot. A scan with a high-power laser (e.g., CO.sub.2, Diode, Nd-Yag) is performed using appropriate settings. (e.g., P=3.5 kw; S=150 mm/min; Gases=25 lpm Nozzle Ar). The process parameters will depend on the geometry of the knife substrate and desired production volume and quality.
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LINE-BEAM NOZZLE
(48) As mentioned, a line-beam nozzle was designed and preferably used for deposition with powder injection.
(49) During use of the nozzle, the line of the laser is oriented substantially perpendicular to the axis of deposition (i.e., line 112 if