ADDITIVELY MANUFACTURED GEOMETRY OPTIMIZED DRILLING JIGS AND METHODS OF MAKING AND USING THE SAME
20240335890 ยท 2024-10-10
Inventors
- Adriano PASSINI (Sao Jose dos Campos โ SP, BR)
- Leandro Oliveira REN? (Sao Jose dos Campos โ SP, BR)
- Marcio Fernando CRUZ (Sao Jose dos Campos โ SP, BR)
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B22F12/41
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Drilling jigs are provided which include a one-piece jig body (preferably additively manufactured from laser-sintered metallic (e.g., aluminum alloy) powders) having at least one set of cylindrical sockets that are spatially separated from one another, and a web member joining the at least one set of sockets. Cylindrical bushings may thus be positioned within each of the cylindrical sockets so as to define respective cylindrical guideways for a drill bit. According to certain embodiments, the web member may be planar and oriented parallel to a substantially longitudinal bisecting plane of the cylindrical sockets.
Claims
1. A drilling jig comprising: a one-piece jig body which includes: (i) at least one set of cylindrical sockets that are spatially separated from one another; and (ii) a web member joining the at least one set of sockets; and cylindrical bushings, wherein each of the cylindrical bushings is received within a respective one of the cylindrical sockets and define a cylindrical guideway for a drill bit.
2. The drilling jig according to claim 1, wherein the jig body further includes a plurality of stand-off members that have sufficient axial length so as to establish a clearance gap between a bottom edge of the jig body and a surface of a part to be drilled.
3. The drilling jig according to claim 2, wherein the stand-off members are either are solid or hollow.
4. The drilling jig according to claim 1, wherein the jig body is a one-piece additively manufactured structural unit.
5. The drilling jig according to claim 4, wherein the jig body is formed of an additively laser sintered metallic powder.
6. The drilling jig according to claim 5, wherein the metallic powder comprises an aluminum alloy powder.
7. The drilling jig according to claim 1, wherein the web member is planar, and wherein the planar web member is oriented parallel to a substantially longitudinal bisecting plane of the cylindrical sockets.
8. The drilling jig according to claim 7, wherein the jig body is a one-piece additively manufactured structural unit.
9. The drilling jig according to claim 8, wherein the jig body is formed of an additively laser sintered metallic powder.
10. The drilling jig according to claim 9, wherein the metallic powder comprises an aluminum alloy powder.
11. The drilling jig according to claim 1, wherein each of the bushings include a flange.
12. The drilling jig according to claim 1, wherein each of the cylindrical bushings is adhesively joined to the respective one of the cylindrical sockets.
13. A method of fabricating a drilling jig comprising the steps of: (a) additively sintering layers of a metallic powder to form a one-piece jig body which includes at least one set of cylindrical sockets that are spatially separated from one another, and a web member joining the at least one set of sockets; and thereafter (b) inserting cylindrical bushings defining respective cylindrical guideways into respective ones of the cylindrical sockets.
14. The method according to claim 13, wherein the metallic powder comprises an aluminum alloy.
15. The method according to claim 13, wherein step (b) comprises adhesively joining the cylindrical bushings to the respective ones of the cylindrical sockets.
16. The method according to claim 13, wherein step (a) is conducted by 3D laser-sintering of the metallic powder.
17. A method of drilling apertures in a workpiece comprising: (a) positioning the drilling jig according to claim 1 relative to a surface of the workpiece so as to align the cylindrical guideways of the bushings with respective locations on the surface of the workpiece where apertures are to be drilled, and thereafter (b) operating a drill bit within the cylindrical guideways to drill the apertures through the workpiece.
18. The method according to claim 17, wherein step (a) comprises providing the drilling jig with a plurality of stand-off members that have sufficient axial length so as to establish a clearance gap between a bottom edge of the jig body and the surface of the workpiece, and wherein step (b) comprises allowing shavings of removed material from the workpiece to be removed from the respective locations through the clearance gap.
Description
BRIEF DESCRIPTION OF ACCOMPANYING DRAWINGS
[0011] The disclosed embodiments of the present invention will be better and more completely understood by referring to the following detailed description of exemplary non-limiting illustrative embodiments in conjunction with the drawings of which:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF EMBODIMENTS
[0019] As shown in
[0020] The drilling jig 10 includes a jig body 12 having a series of cylindrical sockets 12a that are connected one to one another in a predetermined pattern by planar web members 12b oriented parallel to a substantially longitudinal bisecting plane of the sockets 12a. Pairs of tubular stand-off members 14a are unitarily joined to the endmost ones of the sockets 12a. The stand-off members 14a are of sufficient axial length so as to establish a clearance gap C1.sub.g between the bottom edge of the jig body 12 and the surface of the workpiece being drilled (which in the case of the embodiment shown in
[0021] Each of the cylindrical sockets 12a is sized and configured to receive therein a flanged cylindrical bushing 16. Each bushing 16 in turn defines a cylindrical guideway for a drill bit (not shown). Preferably, each bushing 16 is formed of a steel material that can withstand the rigors of the drilling process and protects the sockets 12a of the jig 10. The bushings 16 are preferably fixed within the respective socket 12a, e.g., by using a suitable metal bonding adhesive such as LOCTITE 638? retaining compound.
[0022] The jig body 12, including the cylindrical sockets 12a, the web members 12b, the stand-off members 14a, and if present 14b, are preferably a one-piece additively manufactured structural unit. In this regard, the one-piece (unitary) jig body 12 may preferably be formed by an additive layer manufacturing (ALM) process, e.g., 3D printing, whereby powders of a suitable metal, e.g., aluminum alloy, may be printed using laser sintering according to a computer-aided design of the structural component being fabricated, e.g., as described more completely in U.S. Pat. Nos. 9,388,078 and 10,065,240 (the entire contents of each such prior issued patent being expressly incorporated hereinto by reference). As is known, a complete structural component can be designed with a 3D computer model which then aids the ALM process in a layer-by-layer additive manner. That is, a thin layer of metal alloy powder may be spread onto a supporting tray so as to then be laser-sintered based on a first slice of the computer-aided 3D model. Subsequent layers corresponding to successive slices of the 3D model will then be laser-sintered in a similar manner until the complete structural component is manufactured. Such an additively manufactured jig body 12 may thus take virtually any suitable geometric configuration so as to be optimally sized and configured for specific locations where aircraft structural components need to be drilled and then subsequently joined.
[0023] Another embodiment of a drilling jig 20 is depicted in
[0024] Each of the cylindrical sockets 22a is sized and configured to receive therein a flanged cylindrical bushing 26. Each bushing 26 in turn defines a cylindrical guideway for a drill bit (not shown). Preferably, each bushing 26 is formed of a steel material that can withstand the rigors of the drilling process and protects the sockets 22a of the jig 10. The bushings 26 are preferably fixed within the respective socket 12a, e.g., by using a suitable metal bonding adhesive.
[0025] As should now be appreciated, the drilling jig embodiments described herein provide for the jig geometry to be optimized and/or customized to allow for the jig to be spatially adapted for use in virtually any situation in which component parts need to be accurately drilled and thereafter joined together.
[0026] Therefore, while reference is made to a particular embodiment of the invention, various modifications within the skill of those in the art may be envisioned. Therefore, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope thereof.