HIGH-PRECISION MANUFACTURING MACHINE
20190047099 ยท 2019-02-14
Inventors
Cpc classification
B29C64/188
PERFORMING OPERATIONS; TRANSPORTING
B23Q2003/155418
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23Q1/01
PERFORMING OPERATIONS; TRANSPORTING
B23Q3/155
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A high-precision manufacturing machine used in precision manufacturing processes, such as a 3-D printer, is described. The machine has a frame, a movable platform supported by and movable relative to the frame, on which are mounted one or more platform tool holders for holding one or more tools such as an extruder, a base station that may include one or more bays, each of the bays having a number of base station tool holders, for storing tools that are not in use, and a supporting base, which may be movable relative to the frame, for holding one or more work items to be processed by the tool or tools selected and held by the movable platform.
Claims
1. A high-precision manufacturing machine, comprising: a frame and a transportation mechanism supported by the frame a movable platform supported on and moved by the frame, the movable platform having one or more platform tool holders, each of the one or more platform tool holders having a platform engagement half that cooperates with a complementary tool engagement half of a tool for releasably securing the tool to the movable platform, the platform engagement half having a set of claws defining a first removal direction, moving the tool along which to remove the tool from the set of claws of the platform engagement half; and a base station, the base station having one or more tool bays mounted on the frame, each of the tool bays having a plurality of base tool holders, each of the base tool holders having a bay engagement half cooperating with the tool engagement half of the tool for releasably storing the tool, the bay engagement half having a second set of claws defining a second removal direction, moving the tool along which to remove the tool from the set of claws of the bay engagement half, the first removal direction being different from the second removal direction, wherein movement of the movable platform by the transportation mechanism along the first removal direction transfers a tool that is installed in one of the one or more platform tool holders and received in both the set of claws of the one platform tool holder and a set of claws of one of the one or more of the base tool holders from the one platform tool holder to the one base tool holder, and wherein movement of the movable platform by the transportation mechanism along the second removal direction transfers a tool that is stored in one of the one or more base tool holders and received in both the set of claws of the one base tool holder and a set of claws of one of the one or more of the platform tool holders from the one base tool holder to the one platform tool holder.
2. The manufacturing machine of claim 1, wherein the tool engagement half has a magnet and the platform engagement half has a matching magnet, and wherein the matching magnet of the platform engagement half secures the tool to the platform tool holder when the platform engagement half engages the tool engagement half.
3. The manufacturing machine of claim 1, wherein the tool engagement half has a magnet and the bay engagement half has a matching magnet, and wherein the matching magnet of the base engagement half secures the tool to the base tool holder when the base engagement half engages the tool engagement half.
4. The manufacturing machine of claim 2, wherein the first set of claws are two platform facing walls spaced apart at a distance sized to securely receive the tool therebetween.
5. (canceled)
6. (canceled)
7. The manufacturing machine of claim 3, wherein the second set of claws are two base facing walls spaced apart at a distance sized to securely receive the tool therebetween.
8. (canceled)
9. The manufacturing machine of claim 1, wherein the first removal direction and the second removal direction are generally perpendicular to each other.
10. The manufacturing machine of claim 1, wherein the tool is an extruder and the machine is a 3-D printer.
11. The manufacturing machine of claim 1, further comprising: a base supported by the frame for holding a work item.
12. The manufacturing machine of claim 11, wherein the base is movable relative to the frame.
13. The manufacturing machine of claim 11, wherein the tool is an extruder and the machine is a 3-D printer.
14.-16. (canceled)
17. The manufacturing machine of claim 1, wherein the tool is one of an extruder, a laser cutting tool, and a high speed cutting tool.
18. The manufacturing machine of claim 1, wherein the tool has a set of tool electric contacts, and the platform tool holder has a set of platform holder contacts, wherein the set of tool electric contacts and the set of platform holder contacts form a set of platform electric connections when the tool is held by the platform tool holder.
19. The manufacturing machine of claim 1, wherein the tool has a set of tool electric contacts, and the base tool holder has a set of base electric contacts, wherein the set of tool electric contacts and the set of base holder contacts form a set of base electric connections when the tool is held by the base tool holder.
20. The manufacturing machine of claim 18, wherein the tool engagement half has a magnet, the platform engagement half has a matching magnet, the set of claws of the platform engagement half being two facing walls spaced apart at a distance sized to securely receive the tool therebetween, and the respective matching magnet and the magnet of the tool engagement half cooperate to secure the tool between the corresponding facing walls.
21. The manufacturing machine of claim 19, wherein the tool engagement half has a magnet, the base engagement half has a matching magnet, the set of claws of the base engagement half being two facing walls spaced apart at a distance sized to securely receive the tool therebetween, and the respective matching magnet and the magnet of the tool engagement half cooperate to secure the tool between the corresponding facing walls.
22. The manufacturing machine of claim 21, wherein the magnet of the tool engagement half cooperates with the matching magnet of the base engagement half to maintain the set of base electric connections when the tool is received between the base facing walls.
23. The manufacturing machine of claim 20, wherein the magnet of the tool engagement half cooperates with the matching magnet of the platform to maintain the set of platform electric connections when the tool is received between the platform facing walls.
24. (canceled)
25. The manufacturing machine of claim 19, wherein the set of base electric connections enables the extruder to be pre-heated when the extruder is held by the base tool holder.
26. The manufacturing machine of claim 18, wherein the plurality of base tool holders include at least a second plurality of base tool holders, each of the second plurality of base tool holders being configured for an extruder supplied with a different extruding material.
27. (canceled)
28. The manufacturing machine of claim 18, wherein the plurality of base tool holders include at least a second plurality of base tool holders, each of the second plurality of base tool holders being configured for a tool selected from the group of an extruder, a laser cutting tool, and a high speed cutting tool.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0011] For the purposes of description, but not of limitation, the foregoing and other aspects of the invention are explained in greater detail with reference to the accompanying drawings, in which:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF EMBODIMENTS
[0020] The description which follows and the embodiments described therein are provided by way of illustration of an example, or examples, of particular embodiments of the principles of the present invention. These examples are provided for the purposes of explanation, and not limitation, of those principles and of the invention. In the description which follows, like parts are marked throughout the specification and the drawings with the same respective reference numerals.
[0021] The present invention relates generally to a high-precision manufacturing machine used in precision manufacturing processes. As illustrated in
[0022] The machine 100 can be used in any suitable precision manufacturing process provided the appropriate tool 124 is selected. For example, the tool 124 may be a liquid dispensing device (i.e., extruder) for a three-dimensional printer (3-D printer) and the machine 100 may be adapted to be employed as a 3-D printer. Or, the tool 124 may be a laser engraving tool, and the machine 100 may be adapted to be employed as a laser engraving workstation. As yet another alternative, the tool 124 may be a machining tool such as a high speed drill and the machine 100 may be adapted to be employed as a computerized numerical control (CNC) machine tool. The tool also may have its attachments (not shown), such as connections for extrusion liquid materials, electric cables for high speed drill, among others. In the description, when reference is made to a particular type of machine, it is only for convenience. It will be understood that the description is not to be limited to that particular type unless the context so requires. It will also be appreciated that tools 124 stored at the base station 130 may not necessarily be the same type. For example, a base station may store both a 3-D printer extruder and a laser engraving tool, and thus the machine may be adapted as a multi-function machine, both for 3-D printing and for laser engraving.
[0023] Frame 110 provides support for various components attached or mounted thereto. It may take any suitable or desirable shape or configuration, for providing the support function. Movable platform 120 is supported by and movable relative to the frame 110. One or more platform tool holders 122 are mounted on or forming integral part of the movable platform. Each of the platform tool holders 122 is for selecting and holding a tool 124, such as an extruder or a laser cutting tool. When the movable platform 120 is moved relative to the frame 110, the tool 124 held by the platform tool holder 122 is carried by the movable platform and relocated to a different position relative to the frame. Thus, movable platform enables the tool 124 to be relocated to another position relative to the frame. This is useful, for example, to re-position the tool relative to a work item held on supporting base 140, for processing or manufacturing a different portion of the work item, or to move the tool to a base station tool holder 134 for returning the tool and selecting a different tool.
[0024] Any suitable means may be used for supporting the movable platform and for moving the movable platform relative to the frame. For example, the movable platform 120 may be attached to a robotic arm mounted on the frame and controlled by an automation control system, to relocate the movable platform to any location as directed by such an automation control system.
[0025] Referring to
[0026] When both the first support bar 152 (x-bar) and the second support bar 154 (y-bar) are straight bars, each of the x-bar and the y-bar defines respectively an x-direction and a y-direction, and together, they define an x-y plane, parallel to which the tool 124 moves (of course, more generally, if neither the first support bar 152 nor the second support bar 154 is straight, then the first support bar 152 and the second support bar 154 together may define a curved surface, parallel to which the tool 124 moves). The y-bar 154, or second support bar 154, may be stationarily mounted on the frame 110, in which case the movable platform 120 (and by extension the tool 124 held thereto) moves in a plane parallel to the plane defined by the first support bar 152 and the second support bar 154. The y-bar 154 may also be movably mounted on the frame 110, for example, movable relative to the frame, along a z-direction that is perpendicular to both the x-direction and the y-direction. This will enable the relocation of the movable platform 120 (and by extension the tool 124 held thereto) to another position in a three-dimensional space. Thus, the movable platform can have three translational degrees of freedom and is movable in a 3-dimensional space (3-D space). Of course, the movable platform 120 or the platform tool holder 122 may also be movable relative to the first support bar 152, to enable the three-dimensional relocation of the tool 124 held thereto. Additionally, the supporting base 140 may be mounted to a base transport mechanism 156, such as illustrated in
[0027] Referring to
[0028] Each extruder tool holder 204 has a set of electric contacts, or platform electric contacts 206. The extruder 124 has a set of electric contacts, or tool electric contacts 208. At least a portion of tool electric contacts 208 correspond to some tool electric contacts, so that when the extruder 124 is held by the extruder tool holder 204, as shown in
[0029] An engagement arrangement 212 is provided on extruder tool holder 204 and housing 214 of extruder 124 so that extruder 124 may be held by extruder tool holder 204 by the engagement arrangement and detached from the extruder tool holder 204 when required. The extruder tool holder 204 has a first half 216 of the engagement arrangement 212 and the tool's housing 214 has the second and complementary half 218 of the engagement arrangement 212. The first and second halves of the engagement arrangement 212 cooperate to releasably hold the extruder 124 to the extruder tool holder 204, as further described below.
[0030] Referring to
[0031] Referring to
[0032] Referring to
[0033] As illustrated more clearly in
[0034] As can be seen in
[0035] As described, unlike the first half of the engagement arrangement 212 provided on the extruder tool holder 204, the pair of claws of the second engagement arrangement 312 are formed from a pair of upright walls 314. Thus, instead of sliding sideways to move the tool's housing 214 out of the claws of the engagement arrangement 212 (see
[0036] This is illustrated more clearly in
[0037] Of course, it will be appreciated that although a simple extruder 124 is used in examples to illustrate the tool change, a tool can be a tool assembly having several tools. For example, the same arrangement may be used to select a 3-D printer extruder, or any suitable multi-head 3-D printer extruder assembly, or a multi-tool assembly, such as an extruder and laser tip combination. Additionally, as will be understood, the platform can selectively pick and/or return any tool located at any station tool holder 306. Thus, when the machine is adapted as a 3-D printer, each extruder or extruder assembly will represent one distinct color (or color combination) or a different material (or material mixture). The printer may have therefore as many choices of colored materials or extruding materials as the number of base station tool holders 306 that the base station can accommodate, not limited by availability of space at the moveable platform. This makes the number of available colors or types of materials, or both, the same as the number of station tool holders, and makes the 3-D printer more expandable.
[0038] Various embodiments of the invention have now been described in detail. Those skilled in the art will appreciate that numerous modifications, adaptations and variations may be made to the embodiments without departing from the scope of the invention, which is defined by the appended claims. The scope of the claims should be given the broadest interpretation consistent with the description as a whole and not to be limited to these embodiments set forth in the examples or detailed description thereof.