Defined interface between the Print Unit and Print Array Host to enable a Production Network
20230328189 · 2023-10-12
Inventors
Cpc classification
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
H04N1/00538
ELECTRICITY
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
H04N1/00
ELECTRICITY
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Method, system, and apparatus for a Production Network used in Additive Manufacturing and, more particularly, a modular Print Array of additive manufacturing Print Units having modular physical, electrical, and logic interfaces to enable a Production Network with no downtime thanks to interchangeable sets of modules and centralized control.
Claims
1. An industrial 3D printing device enabling a scalable Production Network wherein a Print Array Host houses 2×2 or larger sets of modules, each set comprising the following interchangeable elements: one Print Unit module; one Electronics Module; one Feeding and Drying System.
2. The apparatus according to claim 1, wherein said Production Network has a unique interface between the Print Array Host and the interchangeable, removable modules.
3. The apparatus according to claim 1, wherein said interface supports a Production Network of interchangeable, removable Print Units and ancillary modules comprising: Print Units for engineering materials; Print Units for high-performance materials; Electronics Modules; Material Feeding Systems; Material Drying Systems; annealing systems; vacuum systems; ultrasonic resin cleaners; support-material removal systems; dying, sanding and/or painting systems; traditional manufacturing equipment; post-processing automation equipment.
4. The apparatus according to claim 1, wherein modules are designed to slide into a unique physical interface with the Print Array Host.
5. The apparatus according to claim 4, wherein said physical interface comprises the physical layout of the electrical connections as a fast-locking keying element.
6. The apparatus according to claim 4, wherein said physical interface comprises the order and arrangement of electrical conductors in the connection as a fast-locking keying element.
7. The apparatus according to claim 4, wherein said physical interface comprises other physical elements used for keying and identification functions.
8. The apparatus according to claim 4, wherein said physical interface comprises the support and lockdown elements used as fast-locking keying elements.
9. The apparatus according to claim 1, wherein modules have a unique electrical interface with the Print Array Host.
10. The apparatus according to claim 9, wherein said interchangeable, removable Electronics Module receives power from the Print Array Host to power motors and other on-module electronics of the Print Unit it is associated with and physically connected to.
11. The apparatus according to claim 9, wherein said interchangeable, removable Electronics Module provides control and logic signals only to the one Print Unit it is associated with and physically connected to.
12. The apparatus according to claim 9, wherein said interchangeable, removable Electronics Module provides and receives data from sensors in the Print Unit and the Feeding System it is associated with and physically connected to.
13. The apparatus according to claim 9, wherein said interchangeable, removable Electronics Module provides pass-through information to ancillary material handling system it is associated with and physically connected to.
14. The apparatus according to claim 1, wherein said Print Array has an internal CPU supporting all the computing needs including generic APIs for a Production Network.
15. The method wherein the Print Array Host has a unique logic interface with the modules.
16. The method according to claim 15, wherein the internal CPU's cycles are offloaded to each set of modules as a non-real-time system for precise control of the Production Network.
17. The method according to claim 15, wherein each module self-identifies through such logic interface on the Production Network as an individual addressable and controllable print node.
18. The method according to claim 15, wherein each set of modules communicates only with the Print Array Host's CPU but not directly with one another.
19. The method according to claim 15, wherein communication to and from Electronics Modules is established through a handshake protocol: setting global address; setting type for network; reading nozzle size for the Print Unit; reading material type from the material handling system; reading machine performance offsets that are stored with each Print Unit.
20. The method according to claim 15, wherein each Electronics Module supports RFID, Bluetooth, Bluetooth-LE, IoT interface for logic expansion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Further features and advantages of the invention will become apparent from the following detailed description taken in conjunction with the accompanying figures showing illustrative embodiments of the invention, in which:
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DETAILED DESCRIPTION OF THE INVENTION
Definitions
[0033]
TABLE-US-00001 PU or Print Unit Print Unit or the modular 3D printing module. Also, a measure of production capacity (e.g. a Prototyping Unit = one PU; a Production Machine = 4 PUs) SPU or Single Print Unit Prototyping Unit PA or Print Array Production Machine or PM PAH or Print Array Host Empty Production Machine, no PUs or EMs EM Electronics Module PN Production Network or network that these various print capabilities use for communications and control Node A generic print node connected a Prototyping Unit or Production Machine attached to a Production Network DRM Digital Rights Management Control CPU Central non-real-time controller that manages a PA. SPUs do not have a Control CPU.
[0034] The systems of the present invention were designed for different users, spaces and applications for additive manufacturing. The Single Print Unit (
[0035] These users and setups have different needs. While a designer at an office may see material drying, print queuing, on-screen slicing, automatic material backup and others as “nice-to-have” features, for a production engineer running a batch of hundreds or thousands of parts at a factory they significantly lower labor, downtime, and risk of failure.
[0036] For prototyping and first adoption, Single Print Unit (
[0037] The novelty of the present patent is the modular structure of the Print Unit (
[0038] The design of the Print Array control architecture enables remote use and control of a mass installation of Print Unit capacity. The core of the Production Network relies on unique multi-level electronics architecture. The distributed control allows maximum flexibility to manage both additive and traditional manufacturing technologies.
[0039] In the preferred embodiment of the present invention, Fused Filament Fabrication (FFF) is the 3D printing technology deployed. In another embodiment, interchangeable modules can include all types of additive manufacturing equipment, as well as traditional manufacturing, inspection and scanning technologies.
[0040] Production Machines consist of a sturdy aluminum framing structure (
[0041] The design of the motion module is used both in the Single Print Units (
[0042] Single Print Units (
[0043] These Single Print Units (
[0044] Single Print Units have an integrated electronics architecture (4) which is not removable. Single Print Units (
[0045] Single Print Units (
[0046] Each Print Unit (
[0047] The present invention enables a Production Network for additive manufacturing technologies using a unique interface architecture based on Hardware, Electronics, Control Architecture, and Software. The designs to make these modules interchangeable are a fundamental enabler of the Production Network. Said architecture encompasses a unique physical, electrical, and logical interface.
Physical Interface
[0048] In the preferred embodiment of the present invention, a Print Unit consists of a sturdy aluminum framing structure (
[0049] The Print Unit (
[0050] Each Print Unit (
[0051] The Print Units' sliding mounting systems (
[0052] Each Print Unit in the Print Array has an Electronics Module located in proximate distance (
[0053] Electronics Modules (2) in the Print Array are modular and slide-out interchangeable subassemblies (7). Electronics Modules consist of a metal cabinet (
[0054] Each Electronics Module is sized to be easily removed from the Print Array by a single operator by pulling from a handle (15). The interchangeability of all Electronics Modules is required to enable this Production Network and improve uptime. Additionally, serviceability is improved by the quick-change and interchangeable nature of the Electronics Module in the Print Array.
[0055] Each Electronics Module is equipped with a sliding mounting (7) system. In the preferred embodiment of the present invention, the sliding mounting system consists of two keying elements (13) which fit into T-slotted aluminum profiles (13), allowing modules to slide in and out with ease. Blocking clamps can added including screw clamps, spring clamps, strap clamps, bench clamps, or any other means to secure each module to the Print Array structure (
[0056] The physical layout of the electrical connections is also a keying element together with its order and arrangement of electrical conductors. The Print Unit module connects to an Electronics Module thanks to a keying element at the end of its cabling bundle (5). In the preferred embodiment of the present invention, the keying element is an industrial 108-pin heavy duty connector for plug socket (5, 12, 15). Each Print Unit (6), Electronics Module (7), Feeding and Drying Module (8) are interchangeable and can be easily removed individually.
[0057] This modular architecture allows fast removal with almost no production downtime. Print Units (
Electrical Interface
[0058] The design of the Electronics Module is used both in the Single Print Units (
[0059] The Electronics Module compact metal enclosure (
[0060] In the preferred embodiment of the present invention, said electrical keying element is an industrial 108-pin heavy-duty connector. Cabling from the Print Unit electronics is organized into a bundle ending in a female 108-pin connector (5), while the male 108-pin connector is in the Electronics Module (12, 15). Electronics Modules can be conveniently swapped in three steps by: i. sliding out the cabinet (7), ii. unplugging the Print Unit cabling bundle (5) from the 108-pin connector on the rear panel of the Electronics Module (12, 15), iii. unplugging the EM's power plug (14).
[0061] Each Electronics Module provides power to one Print Unit element components, such as motors, heating system, cooling circuit, air-flow system. It passes through status information and controls switches in the Buffer (31) and material Drying and Feeding System (29). The Electronics Modules (2, 7) sends commands to the Buffer (31) in the Print Array which reports to the Feeding System electronics (30). The Feeding System (
Logical Interface
[0062] The design of the Print Array's control architecture enables remote use and control of a mass installation of Print Unit capacity. It is the core of the Production Network. The Print Array distributes control to allow maximum flexibility to manage additive and traditional technologies. The central CPU (34) supports the computing needs of generic APIs for a Production Network.
[0063] Offloading these CPU cycles to a non-real-time system is required for precise control of a Production Network. In the present invention, said non-real-time systems are sets composed by the following interchangeable modules: one Print Unit module (6), one Electronics Module (7), and one Feeding and Drying Module (8).
[0064] Each set (
[0065] Each module self-identifies on this Production Network as an individual addressable and controllable print node. Thanks to this logical interface handshake protocol, this node-based 3D printing system creates a new control protocol and sets the foundations for a network-based production, based on a true digital workflow.
[0066] The Electronics Module sets global address and type for network, and reads nozzle size for the Print Unit, material type from the material feeding system, and Print Unit's performance offsets. The common logical interface enforced this way also opens up generic APIs to address and control network printers. It also supports RFID, Bluetooth, Bluetooth-LE, IoT interface for logic expansion.
[0067] The flexibility of the modular interface between the Print Array Host and the modular and interchangeable Print Units improves serviceability and uptime, which are crucial for scaling up manufacturing. The distributed control grants maximum flexibility to manage both additive and traditional manufacturing, inspection, and scanning technologies. The modular architecture allows economies of scale, by reducing the cost of both production and prototyping modules. This eliminates the gap to adopt and scale up additive manufacturing in high-volume industrial environments, as factories can simply add Production Arrays (
[0068] The foregoing describes the preferred embodiment of the invention and sets forth the best mode contemplated for carrying out the invention in such terms as to facilitate the practice of the invention by a person of ordinary skill in the art. However, it is to be understood that the invention has many aspects, is not limited to the structure, processes, methods, and embodiment disclosed and/or claimed, and that equivalents to the disclosed structure, processes, methods, embodiment, and claims are within the scope of the invention as defined by the claims appended hereto or added subsequently.
[0069] Although the present invention has been described herein with reference to the foregoing exemplary embodiment, this embodiment does not serve to limit the scope of the present invention. Accordingly, those skilled in the art to which the present invention pertains will appreciate that various modifications and equivalents are possible, without departing from the technical spirit of the present invention.