Printing cartridges for multilayer manufacturing

The sealable cartridge system with integrated components addresses safety and efficiency issues in additive manufacturing by providing controlled environments and automated operations, enhancing throughput and quality.

JP7836631B2Active Publication Date: 2026-03-27SEURAT TECHNOLOGIES INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-05-26
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Conventional additive manufacturing systems face challenges in maintaining a controlled environment, ensuring operator safety, and optimizing throughput due to cumbersome operations, exposure to powder, and the need for manual cleaning and temperature control outside the printing chamber.

Method used

The implementation of a sealable cartridge system with integrated components for powder distribution, gas management, and laser transmission, along with automated transport and diagnostic capabilities, allows for sealed and controlled printing environments, reducing human interaction and enhancing system efficiency.

Benefits of technology

This solution ensures safe and efficient operation by maintaining a controlled atmosphere, minimizing manual intervention, and reducing downtime, thereby improving the throughput and quality of additive manufacturing processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

A cartridge for a manufacturing system includes a sealable chamber having a floor and a laser transparent window. A powder hopper is positionable within the sealable chamber. A powder spreader is positioned within the sealable chamber for dispensing powder from the powder hopper to the floor.
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Description

Technical Field

[0001] Related Applications This disclosure is part of a non-provisional patent application claiming priority to U.S. Patent Application No. 63 / 030,757, filed May 27, 2020, which is hereby incorporated by reference in its entirety.

[0002] This disclosure generally relates to systems and methods for high-throughput additive manufacturing. In one embodiment, powder bed fusion manufacturing is supported by the use of separate print cartridges.

Background Art

[0003] Conventional component machining often relies on the removal of material by drilling, cutting, or grinding to form parts. In contrast, additive manufacturing, also known as 3D printing, typically adds material continuously layer by layer to build a part. Starting from a 3D computer model, complex parts can be fabricated from a variety of materials using an additive manufacturing system.

[0004] One additive manufacturing technique known as powder bed fusion (PBF) uses one or more focused energy sources such as lasers or electron beams to draw a pattern on a thin layer of powder by melting the powder and bonding it to the underlying layer, gradually forming a 3D printed part. The powder can be plastic, metal, glass, ceramic, crystal, other soluble materials, or a combination of soluble and insoluble materials (i.e., plastic and wood, or metal and ceramic). This technique is very accurate and can typically achieve small feature sizes on the order of 150 - 300 μm. However, industrial additive manufacturing systems are cumbersome to operate, and while performing normal day-to-day operations such as removing 3D printed parts, cleaning the print chamber, or servicing consumables, operators often need to wear protective gear (e.g., protective masks, safety glasses, special uniforms, etc.).

[0005] Some additive manufacturing systems have attempted to improve ease of maintenance and safety by sealing the 3D print in a box. The box can be removed from the machine after the additive manufacturing system has finished printing. Unfortunately, it can be difficult to form a complete seal between the printer and the sealed box, and therefore some powder is always present outside the printing chamber. This can expose the operator to the risk of inhalation.

[0006] Additive manufacturing systems may require considerable time for 3D printing removal, cleaning, and printer maintenance before the next print can begin. Even if the 3D print is sealed in a box, it may still be necessary to manually clean the print chamber and manually replace and readjust consumables (e.g., sprayer blades). Because printing is an inherently dirty process (dirt in this context meaning soot, unused powder, welding slag, etc.), everything inside the print chamber, including the sprayer blades, gas flow duct, glass window, and sprayer drive mechanism, can be covered in dirt. As ensuring the purity of the printing powder used is crucial, it is essential to thoroughly clean the print chamber and gas duct work before switching materials. This usually requires a thorough cleaning, which involves disassembling many components to allow for the removal of dirt. This work cannot be done through the port of gloves and may require the use of specially trained workers wearing protective equipment such as protective masks.

[0007] Another problem arises from 3D printing, which requires an inert gas environment. Whenever the printing chamber is exposed to the atmosphere, it needs to be evacuated and purged. This process takes considerable time and results in the loss of expensive inert gas. These tasks can be quite time-consuming, and new 3D prints often cannot be started until cleaning and maintenance are complete, thus reducing the throughput of additive manufacturing.

[0008] Additive manufacturing systems may also require that 3D prints be removed from a controlled printing environment when they are taken out of the printing chamber. This can negatively impact 3D printing that requires a heat treatment oven for post-processing cooling and / or subsequent stress relief, annealing, or heat treatment. While additive manufacturing systems can preheat the printing plate during printing in the printing chamber and / or maintain the print at a set temperature, temperature control is often not available outside the printing chamber. Unfortunately, when 3D prints are taken out of the printing chamber, they are usually not temperature-controlled and, in many systems, are also exposed to uncontrolled air. These factors can affect the material properties of the 3D print. Furthermore, 3D prints are often too hot to be immediately removed from the printing chamber, requiring them to be left inside the chamber for hours after printing is complete. This can tie up the printing chamber and prevent the system from starting new print jobs. [Overview of the project]

[0009] The cartridge for the manufacturing system includes a sealable chamber with a floor and a laser-transmitting window. A powder hopper can be placed inside the sealable chamber. A powder dispenser is also placed inside the sealable chamber to distribute powder from the powder hopper to the floor.

[0010] In some embodiments, a laser-transmitting window is positioned to allow an external camera to focus on the floor inside a sealable chamber.

[0011] In some embodiments, a sealable chamber supports a camera to focus on the floor within the sealable chamber.

[0012] In some embodiments, a wiping blade can be mounted in a sealable chamber to clean the laser transmission window.

[0013] In some embodiments, a bellows is attached to a sealable chamber to hold the laser transmission window.

[0014] In another embodiment, the cartridge for the manufacturing system includes a sealable chamber having a floor and a laser-transmitting window. A powder hopper is located within the sealable chamber. A powder dispenser may be located within the sealable chamber to distribute powder from the powder hopper to the floor, and an electronic memory attached to the cartridge holds electronic information for identifying the cartridge and controlling the operation of the printing station.

[0015] In another embodiment, the cartridge for the manufacturing system includes a sealable chamber having a floor and a laser-transmitting window. A powder hopper is located inside the sealable chamber. A powder dispenser is located to distribute the powder from the powder hopper to the floor. A bellows can be attached to the sealable chamber to hold the laser-transmitting window.

[0016] In another embodiment, the cartridge for the manufacturing system includes a sealable chamber having a floor and a laser-transmitting window. A powder hopper is located within the sealable chamber. A powder dispenser is located within the sealable chamber to distribute powder from the powder hopper to the floor, and a wiper mechanism is configured to periodically clean the inside of the laser-transmitting window.

[0017] In another embodiment, the additive manufacturing system includes a printing station comprising a laser system and a cartridge mounting mechanism. The cartridge is mountable to the printing station and has a sealable chamber with a floor and a laser-transmitting window for allowing laser energy from the laser system of the printing station to pass through. The cartridge further includes a powder hopper located within the sealable chamber.

[0018] In another embodiment, the additive manufacturing system includes a printing station comprising a laser system and a cartridge mounting mechanism. The cartridge is mountable to the printing station and has a sealed chamber with a floor and a laser-transmitting window for allowing laser energy from the laser system of the printing station to pass through. The cartridge further includes gas inlet and outlet ports that allow control of the cartridge gas environment.

[0019] In another embodiment, the additive manufacturing system includes a printing station comprising a laser system and a cartridge mounting mechanism. The cartridge is mountable to the printing station and has a sealed chamber with a floor and a laser-transmitting window for allowing laser energy from the laser system of the printing station to pass through. Electronic memory is mounted on the cartridge to hold electronic information to identify the cartridge and control the operation of the printing station.

[0020] In another embodiment, the additive manufacturing system includes a printing station comprising a laser system and a cartridge mounting mechanism. The cartridge is mountable to the printing station and has a sealed chamber with a floor and a laser-transmitting window for allowing laser energy from the laser system of the printing station to pass through. The cartridge further includes a bellows mounted to the sealed chamber to hold the laser-transmitting window.

[0021] In another embodiment, the additive manufacturing system includes a primary cartridge and a secondary cartridge, each having a sealable chamber with a laser-transmitting window for laser energy to pass through the floor and the laser energy system of the printing station. A printing station including a cartridge mounting mechanism for holding the primary and secondary cartridges is available, and the laser system can be configured to direct the first portion of the light to the primary cartridge through the laser-transmitting window, and further direct the portion of the light not used by the primary cartridge to the secondary cartridge through the laser-transmitting window.

[0022] In another embodiment, the additive manufacturing system includes a printing station that can provide a two-dimensional laser image and includes a laser system having a cartridge attachment mechanism. The cartridge is attachable to the printing station, and the cartridge has a sealable chamber with a laser transmission window for passing two-dimensional laser energy from the floor and the laser system of the printing station.

[0023] In another embodiment, the additive manufacturing system includes a plurality of printers and a plurality of cartridges that can be attached to the printers. At least one cartridge further includes a sealable chamber having a floor and a laser transmission window. Another system for storing and moving the plurality of cartridges is available.

[0024] In some embodiments, at least one of the plurality of cartridges has a powder hopper and a powder spreader disposed within the sealable chamber for dispensing powder from the powder hopper onto the floor.

[0025] In some embodiments, the system for storing and moving the plurality of cartridges further includes a cartridge storage rack.

[0026] In some embodiments, at least one of the plurality of cartridges further includes an electronic memory attached to hold electronic information for identifying the cartridge. The system for storing and moving the plurality of cartridges can arrange the cartridges based on the electronic information.

[0027] In some embodiments, the system for storing and moving the plurality of cartridges is automated.

[0028] In some embodiments, at least some of a printer, a cartridge, and a system for storing and moving a plurality of cartridges support wireless communication therebetween.

[0029] In some embodiments, powder is added to or removed from a powder station.

[0030] In some embodiments, at least one cartridge is inverted to remove powder at a powder station.

[0031] Non-limiting and non-exhaustive embodiments of the present disclosure are described with reference to the following figures, and like reference numerals refer to like parts throughout the various figures unless otherwise specified.

Brief Description of the Drawings

[0032] [Figure 1A] A printing cartridge for a layered manufacturing system is shown in partial cross-section. [Figure 1B] A transporter for a printing cartridge is shown. [Figure 1C] The installation of a printing cartridge at a printing station of a layered manufacturing system is shown. [Figure 1D] A printing cartridge interface is shown. [Figure 1E] A printing cartridge storage rack is shown. [Figure 1F] The use of an auxiliary printing engine is shown. [Figure 1G] An 8-system work cell factory layout is shown. [Figure 1H] An alternative embodiment of a printing cartridge that can interact with an XY gantry capable of traversing the entire area of a printing plate within the printing cartridge is shown. [Figure 1I] An alternative embodiment of a printing cartridge having a bellows connection is shown. [Figure 1J] An alternative embodiment of a printing cartridge having a bellows connection and a secondary XY gantry is shown. [Figure 1K] An alternative embodiment of a print cartridge is shown, comprising a bellows connection and a print head connected to move by pressing a window. [Figure 1L] This illustrates the concept of a wiper blade that keeps the laser input window clear. [Figure 1M] An alternative embodiment of a laminated manufacturing system with fixed windows is shown. [Figure 1N] An alternative embodiment of the opening position shown in Figure 1M is presented. [Figure 10] This demonstrates the control of printing facilities at various stations. [Figure 1P] This shows the print facility control for possible stations. [Figure 2] This demonstrates the operation of a cartridge-based multilayer manufacturing system. [Figure 3] This exhibits a cartridge-based additive manufacturing system capable of supplying one-dimensional or two-dimensional light beams to cartridges. [Figure 4] This document describes how to operate a cartridge-based additive manufacturing system that can supply one-dimensional or two-dimensional light beams to cartridges. [Modes for carrying out the invention]

[0033] The following description refers to the accompanying drawings, which form part of the description, and the drawings are shown by illustrating certain exemplary embodiments in which the disclosure may be carried out. These embodiments are described in sufficient detail so that a person skilled in the art may carry out the concepts disclosed herein, and it should be understood that modifications may be made to the various embodiments disclosed and other embodiments may be utilized without departing from the scope of this disclosure. Therefore, the embodiments for carrying out the invention described below should not be construed as restrictive.

[0034] Figure 1A shows a partial cross-section of a 3D printing cartridge 1A for an additive manufacturing system. The 3D printing cartridge (hereinafter referred to as the "cartridge") is designed to isolate all "dirty" printing functions from the rest of the system and the operator environment, and to be easily replaced or removed. "Dirty" means the location where powder is present, processed for printing, or where soot is generated. Whenever cartridge 1A is connected to a counterpart device, such as a station described later (printer, powder removal, or storage), the counterpart device can provide the necessary services to operate the cartridge as needed, based on which station it is paired with (for example, a printer station can have full control over the cartridge, while a storage station can only provide heating, power, gas reuse, and camera and light use). Cartridge 1A is designed to be sealed when disconnected from the counterpart station.

[0035] Cartridge 1A is constructed around the floor or base plate 24A. New powder for a new print is stored in a powder hopper 2A, which has a capacity to store all the powder needed for a full print. New powder is weighed onto the base plate 24A through a powder door 23A. The powder is swept across the plate by a powder spreader 4A using powder spreading blades. A powder spreader drive unit 5A moves the powder spreader back and forth across the printing plate 12A.

[0036] Window 3A seals the top of cartridge 1A against powder or gas leaks and allows a laser beam (not shown) to pass through it to weld the powder. Window 3A provides access to the cartridge for loading printing plates, removing prints, and cleaning and servicing cartridge components (seal, sprayer blades, etc.). The interior of cartridge 1A can be illuminated and imaged by a camera and light 22A. The camera and light can be positioned inside or outside the sealed chamber, or both, and can be positioned to take photographs or focus on scenes inside the cartridge, particularly the printing plate. The camera and light can also be mounted on a motion stage, allowing the user to pan or zoom on the item in question during printing. This camera can be combined with secondary print diagnostics such as a pyrometer, motion detector, photodiode, thermal camera, or other sensor to automatically detect events and pan / zoom the camera to focus on the location of the object. In some embodiments, the camera image can be viewed by the operator through an electronic or virtual window instead of directly through a physical port or window in the cartridge.

[0037] The gas supply duct 6A supplies inert gas to the cartridge, allowing printing to be performed in the optimal atmosphere for each print job. The gas return duct 7A removes the inert gas. The gas then passes through a HEPA filter 8A to remove impurities (soot, suspended nanoparticles, etc.). Next, the gas moves to a gas recycler (not shown) installed in the other equipment. When the cartridge is removed from the other equipment, the gas supply port 9A and gas return port 10A are sealed, preserving the atmosphere inside the cartridge. The gas is then purified by other equipment to remove oxygen, moisture, etc.

[0038] The Z-axis lowers the printing plate after each layer is printed, spreading a new layer of powder and allowing for subsequent printing. In this design, the Z-axis frame 11A holds the Z-axis components. The printing plate (also known as the construction plate) 12A is where the powder is welded during printing. The printing plate heater 13A includes a heating mechanism for the printing plate 12A (if necessary) and can also insulate and / or cool the seal plate 14A. The seal plate 14A carries a seal 15A that traps the powder in the Z-axis frame 11A. The Z-axis bottom plate 16A closes the lower end of the Z-axis frame 11A and has the function of accommodating any powder that might slip through the seal 15A. The plunger 17A has an interface so that it can interface with the Z-axis drive remotely, automatically, and precisely. The plunger seal 18A matches the bottom plate 16A and further seals the cartridge 1A against powder and / or gas leaks.

[0039] The interface plate 19A contains all inputs and outputs of the cartridge (compressed air, power, input and output signals, gas, cooling water, etc.). It is designed to make all of these connections when the cartridge is connected to the mating device. The interface may also include a mechanism for electronically identifying each cartridge when connected to the mating device. The roller 20A allows the cartridge 1A to roll on the mating rail of the mating device. The forklift tube 21A allows the cartridge to be picked up and moved by a forklift or other transporter system.

[0040] In another embodiment, the interface plate can be configured to accommodate various types or models of printers.

[0041] In one embodiment, the drive components (motor, actuator, etc.) can be located at the mating station, and power can be transmitted from the external drive components to the driven components within the cartridge using a linkage. This reduces the cost and complexity of each cartridge. For example, the powder dispensing drive unit 5A can be coupled to a linkage structure and automatically connect when the cartridge is connected to the printing station / engine via a gear system, belt system (shown in 5A), magnetic limiting, electrical, magnetic, inductive, hydraulic, or other similar types of signal or energy transmission. Similarly, for gas and fluid exchange between cartridge-compatible mating stations, an external powder, fluid, and / or gas pump can be provided, which hooks onto the cartridge at either the interface panel 19A or any other convenient location that allows for the transfer of powder (to hopper 2A), fluid, or gas without placing an excessive load on the cartridge with an internal service transfer motor / pump. The internal impeller (used for powder and fluid transfer) can be powered from the external motor via the aforementioned linkage.

[0042] Power coupling via interface panel 19A can be electrical, inductive, or optical, the latter two of which allow both power and communication to be transmitted simultaneously. Furthermore, diagnostic information from various sensors incorporated into the cartridge can be generated electrically or optically.

[0043] In one embodiment, cartridge 1A may include electronic identification such as an electronically readable memory 25A, or other electronically readable indicators such as attached text, a QR code (registered trademark), or a barcode. Memory 25A may provide electronic information relating to the cartridge or cartridge components, which can be used to identify its manufacturer, model, type, powder type, or unit, its subcomponents, or any other defining details relating to their intended use. This information can be used to inform the printing engine about the material to be printed, the required atmosphere (pressure and temperature), or other printing-related aspects, so that the printing engine can adapt to the printing cartridge or subassembly as needed. Induced changes may include actions such as automatic replacement of the internal lens assembly, adjustment of the z height / final optical throw of the lens assembly, adjustment of laser parameters such as output per unit area, pulse shape, pulse duration, pulse repetition rate, wavelength, spatial pulse shape, tile size, spatial energy distribution within the tile, changes to data diagnostics, data feedback algorithms, printing process feedback algorithms, or algorithmic changes to how tiles are positioned during the printing process. Electronic information from the electronic memory 25A associated with the print cartridge can be read by the printer, powder removal station, or storage rack, collecting data on how much printing has occurred and other important indicators such as the number of spreader cycles, Z-axis adjustments, temperature cycles, pressure cycles, or other attributes the cartridge experienced along the way. This information can also be stored in a central database by the print station, one of the subsystems, the factory automated system, the powder removal station, the cartridge storage station, the cartridge itself, or other interfacing devices.

[0044] Figure 1B shows one embodiment of the additive manufacturing system 1B, including an embodiment of cartridge 2B. As shown, cartridge 2B is transported to a printing station 11B on a custom transport fixture 4B, which is carried by a transporter (represented here by a forklift 3B). The transporter can interface with the cartridge so that all or part of its service and function is activated, or the cartridge may be partially or completely disconnected from service and non-functional while being transported by the transporter. As will be described in more detail later, the printing engine 11B is a system module that includes the printing station and the laser engine station. Once cartridge 2B is prepared at another counterpart equipment, such as a preparation service station (not shown), it is ready for printing (i.e., filled with new powder, a new printing plate is installed, all cartridge components are inspected, refreshed and aligned, filled with appropriate gas, the printing plate is preheated, etc.).

[0045] The transporter 3B aligns the transport fixture 4B with the mating rail 5B. Once alignment is complete, the capture mechanism 6B pulls the print cartridge 2B into the print station 11B. The print cartridge 2B is positioned and locked in place within the print station 11B. As the cartridge 2B is pulled into place, its interface plate (similar to that described in Figure 1A) aligns with the print station interface plate 9B. Once the cartridge 2B is locked in place, the interface plates are perfectly matched, and services (compressed air, power, input / output signals, gas, cooling water, etc.) are supplied to the print cartridge 2B. Alternatively or in addition to these, permanent magnets or electromagnets, pins, clamps, hooks, cables, ramps, air bearings, linear slides, linkages, or robot end effectors can also be used to lock in place. Furthermore, hardware keying can be used as an additional safety measure against improper action, for example, if reactive metals are loaded into the cartridge and it is necessary to ensure that the atmosphere within the print station is appropriate not to cause an explosion. Additional or alternative keying methods, such as electronic, optical, and software, can be used as overlaid security measures to prevent the misuse of FRUs independent of authorized stations.

[0046] When they align, the Z-axis piston 7B rises and aligns with the Z-axis plunger (similar to what was described with respect to Figure 1A). Once they make contact, the auto clamp 8B connects the two. The cartridge's Z-axis is now fully controlled by the printing station 11B. The built-in optical diagnostics (camera / sensor) and illumination within the cartridge are now powered by the printing station 11B, and diagnostic images / data can be displayed on the virtual window 10B and / or anywhere else the printing station is instructed to send images / data.

[0047] Once printing is complete, the transporter 3B aligns the transport holder 4B with the print cartridge 2B. The capture mechanism 6B pushes the print cartridge 2B so that it rolls out and reaches the transport holder 4B. The print cartridge 2B aligns with the transport holder 4B and is secured in place. The transporter 3B can then deliver the cartridge 2B to another station or device. The print station 11B is ready for immediate use, allowing another print cartridge to be loaded into place and the next print run to begin with minimal downtime between prints. Note that this second print cartridge may contain entirely different printable materials.

[0048] In this example, the transporter (3B) is a human-driven cartridge transporter, but in other embodiments, the transporter can be partially or fully automated. In other embodiments, the partially or fully automated transporter may be guided by a telepresence camera (remote operator), guided by a built-in transponder, guided by simple or complex algorithms such as artificial intelligence, neural networks, deep learning networks, neuromorphic processing, or other automated decision methods, and assisted by any number of optical or non-optical sensors.

[0049] In other embodiments, the module interface (6B) to the cartridge is at the same height, and the transporter 3B is designed to interface and lock onto the cartridge 2B without height adjustment, eliminating the need for "forklift-like" movement on the transporter 3B.

[0050] Figure 1C shows one embodiment of an additive manufacturing system 1C having a front view of a printing station 11C that holds a printing cartridge 2C during printing. The cartridge 2C is aligned and supported by a mating rail 3C. A Z-axis piston 4C rises and connects to a cartridge plunger (similar to that described with respect to Figure 1A). A laser beam 5C exits the printing station 11C, passes through the cartridge upper window 6C, and fuses the powder to the printing portion in the cartridge 2C. A safety shield 7C prevents the laser beam from leaking from the printing station and prevents the operator from inadvertently coming into contact with the printing chamber 2C during printing. The operator can inspect the printed material by viewing camera images displayed in a virtual window 8C. Furthermore, any diagnostic data, such as images in the visible or invisible wavelength range, optical high-temperature measurements, or information obtained from a laser ultrasonic imaging system (LUIS) or similar high-speed imaging system, can be displayed in the virtual window 8C.

[0051] Figure 1D shows an example front view of a standard cartridge interface. These interface features 6D can be incorporated into all mating devices so that cartridges can be matched to each of them in the same way. The cartridge mating rail 6D guides and supports the cartridge. The capture mechanism 2D pulls the cartridge into the mating device and pushes it back onto the transport fixture (similar to that described with respect to Figure 1B). The size, material, function, and position of these features can be standardized. The standard interface provides maximum flexibility for customers when handling cartridges. Communication with any one module can be done via the interface panel 3D. In some embodiments, communication can be achieved using low-frequency or high-frequency modalities or by hardware interfaces. Other methods may include RF, Wi-Fi, inductive, Ethernet, USB, or Bluetooth®. High-frequency methods may include fiber, LiFi, or free-space optical links. Hardware interfaces may include SIM, floppy disks, DVDs, laser DVDs, holographic disks, or volumetric optical memory structures. Hardware modalities may have a transport mechanism that allows the operator to install or a cartridge to physically transfer one of the command storage modes from itself to a similar receptacle interface on the module.

[0052] In other embodiments where the cartridge is large (size of a cargo container), it becomes very heavy. In these embodiments, the cartridge is fixed, and a station is transported to the cartridge, and the same interface as in Figure 1D can be used to match the station with the fixed cartridge.

[0053] Figure 1E shows an example of a laminated manufacturing system 1E including a storage station or rack 11E, showing that three cartridges 2E are already installed. A transporter 4E is shown as transporting a fourth cartridge 3E to the rack 11E for storage. The rack 11E has four instances of a standard print cartridge interface, including supports, mating rails 5E, interface plates 6E, and capture mechanisms 7E. The rack 11E has a facility station 8E that houses means for supplying services (compressed air, power, input / output signals, gas, cooling water, etc.) to each cartridge as needed. The facility station 8E is configurable to allow flexibility in how the customer uses the rack. The status of each cartridge 2E is available on one or more monitors, which also function as virtual windows 9E, so that an operator can view the inside of each cartridge.

[0054] Rack 11E provides a place to store cartridges. Unused or new cartridges may be stored here filled with new powder and a new printing plate, ready to be installed in the printing engine and start a new print. Rack 11E can preheat the printing plate and keep the cartridge gas-filled as needed for the print job assigned to the cartridge. Furthermore, cartridges containing newly completed prints can be stored in rack 11E while awaiting post-processing. Prints can be maintained at any temperature, or their temperature can be increased or decreased according to a temperature profile. This allows the print to be annealed or heat-treated to relieve stress or achieve desired mechanical properties. This allows the powder to be removed only after the print has cooled sufficiently. To achieve desired mechanical properties, the gas atmosphere can also be changed, for example, by introducing a new gas or a mixture of gases. In other system embodiments, empty cartridges can be stored in storage rack 11E simply to keep them out of the way. Cartridges can be stored in rack 11E in any state, including new and powder-filled, used and powder-free, or partially used.

[0055] Diagnostic functions integrated into the cartridge can continuously monitor the condition of the printed material. These integrated diagnostic functions may include component, powder, and ambient temperature imaging, multi-wavelength imaging, vibration and ultrasonic imaging, and other modalities such as LUIS volumetric mapping of printed components. Any diagnostic information (images or data) can be displayed on the virtual window 9E of any cartridge in the rack. Furthermore, current and historical cartridge information can be transmitted by the control system to any other virtual window or any user interface.

[0056] Figure 1F shows an example of a printing engine 11F with an auxiliary printing station 2F attached. The printing engine 11F can receive printing cartridge 3F. The auxiliary printing station 2F can also receive printing cartridge 4F. The auxiliary printing station 2F prints parts using the laser energy generated by the printing engine 11F. The printing engine can direct the laser energy to either cartridge 3F or 4F if cartridges 3F or 4F are installed in their respective printing modules 11F and 2F. Processing priority can be set to prioritize cartridge 3F so that most laser shots are directed to cartridge 3F. If laser energy cannot be sent to cartridge 3F (e.g., during powder dispersal or when a printing cartridge is not / loaded), the energy can be directed to cartridge 4F, thus making maximum use of the laser of the printing engine 11F.

[0057] Figure 1G shows another embodiment of the additive manufacturing system 1G. Multiple print engines 11G are densely arranged in the manufacturing area. A service passage 2G allows a transporter 3G to transport print cartridges 4G between the print engines and powder stations 5G, racks 6G, and other counterpart equipment. The facility station 7G can be located in a mezzanine 8G to save floor space. This printer is particularly well-suited to this type of multi-unit factory layout due to its short cycle time and high print speed. This layout is cost-effective because counterpart equipment can be shared among many print stations / engines. In some embodiments, various types of communication are possible between cartridges, print engines, powder stations, and racks. In other embodiments, cartridge identification information can be used to instruct the cartridge to be automatically, semi-automatically, or manually placed in the appropriate print engine, powder station, or storage module. Available communication types include low-frequency and high-frequency methods, including RF, Wi-Fi, inductive, Ethernet, USB, Bluetooth® (low-frequency type), fiber, LiFi, and FSO (high-frequency type). Furthermore, this information can be transferred from the cartridge to the receiving station using physical media hardware such as SIM cards, floppy disks, DVDs, laser DVDs, holographic discs, or volumetric optical media.

[0058] Figure 1H shows an alternative embodiment of the additive manufacturing system 1H. The printing chamber 11H has a fixed window 6H located at the top of the chamber. The print head 5H can be mounted on the XY gantry so as to be able to traverse the entire area of ​​the printing plate 2H. This movement is represented by arrow 8H. A laser beam 7H is projected from the print head, passes through the window 6H, and fuses the powder to the metal parts on the printing plate 2H. The window needs to be large enough to be approximately the same size as the printing plate so that the laser can be directed over the entire area of ​​the printing plate. The powder hopper 4H and Z-axis wall 3H are shown for reference.

[0059] Figure 1I shows an alternative embodiment of the additive manufacturing system 1I. In this embodiment, the printing chamber 11I includes a window 61 mounted on a bellows 71 so that the window can move freely in the XY plane (indicated by 101). After the cartridge is installed in the printing engine, the window 61 is mounted on the print head 51 at position 91 using a clamp, magnet, kinematic mount, or other suitable mounting mechanism (this can be done manually or automatically). The print head 51 is mounted on the XY gantry so that it can traverse the entire area of ​​the printing plate 21. This movement is represented by arrow 101. As they are mounted, the window 61 moves with the print head 51. A laser beam 81 is projected from the print head, passes through the window 61, and fuses the powder to the metal parts on the printing plate 21. In this embodiment, the window 61 can be significantly smaller than the printing plate 21 because it is carried around the entire area of ​​the printing plate. A powder hopper 41 and a Z-axis wall 31 are shown for reference.

[0060] Figure 1J shows another embodiment of the additive manufacturing system 1J. The printing chamber 11J has a window 6J mounted on a bellows 7J so that the window can move freely in the XY plane. After the cartridge is installed in the printing station, the window 6J is mounted at position 9J on a secondary XY gantry 10J attached to the printing station using a clamp, magnet, kinematic mount, or other suitable mounting mechanism (alternatively, the secondary XY gantry may be part of the printing cartridge). The secondary XY gantry can be much cheaper and lighter than the printhead XY gantry because it has a relatively small weight to support and does not need to move as fast or precisely as the printhead XY gantry. The printhead 5J is mounted on the XY gantry so that it can traverse the entire area of ​​the printing plate 2J. This movement is represented by arrow 13J. The printing station system controller can instruct the secondary gantry 10J to move in conjunction with the printhead 5J. A laser beam 8J is projected from the print head, passes through window 6J, and welds the powder to the metal parts on the printing plate 2J. In this embodiment, window 6J can be considerably smaller than the printing plate because it follows the movement of the print head across the entire area of ​​the printing plate. The powder hopper 4J and Z-axis wall 3J are shown for reference only.

[0061] Figure 1K shows another embodiment of the additive manufacturing system 1K. This embodiment is similar to the embodiment shown with respect to Figure 1I, except that the attachment 9K is more flexible and the print head pushes and moves the window 6K. In this embodiment, a mechanism supports the window 6K against gravity to prevent the window from sagging.

[0062] Figure 1L shows an alternative embodiment of the additive manufacturing system 1L. This embodiment is similar to the embodiment shown with respect to Figure 1H, except that the window 6L is periodically cleaned by a wiper 10L mounted on a carriage 9L. The carriage rides on rails 8L and is driven to pass through the window 6L. Each time the wiper passes, dirt accumulated on the surface of the window is cleaned, allowing the laser energy 7L to pass through the window unimpeded. In some embodiments, the wiper can be a cloth-like material that is dry or immersed in a solvent and then quickly wipes against the inner window of the cartridge. In other embodiments, the wiper can be made from a bristle brush configuration with soft bristles that are stiff enough to wipe away powder without damaging or scratching the window. In some embodiments, the wiper can be a gas jet (e.g., an air knife) for non-contact cleaning. In some embodiments, the wiper can be a gas or liquid sprayer, or a combination of such sprayer and a physical wiper. After cleaning the window, the wiper is cleaned with a gas jet, and the powder is removed by wiping the wiper with a special or rough surface, or by cleaning it with a solvent or bath in a separate cleaning area. In some embodiments, the wiper can be replaced when it becomes dirty. In some embodiments, the dirty part of the wiper can be moved to expose a new part of the wiper. In some embodiments, the wiper is made from cotton, polyester, wool, carbon fiber strands, Kevlar, glass fiber, aluminum-treated cloth, ceramic cloth, silica cloth, or other suitable material.

[0063] Figure 1M shows an alternative embodiment of the additive manufacturing system 1M. The print head 5M can be mounted on the XY gantry so as to be able to traverse the entire area of ​​the printing plate 2M. This movement is represented by arrow 8M. The printing chamber 11M has an opening 16M located at the top of the chamber. The opening can be closed by a sliding door 12M and sealed from the surrounding environment by a seal 13M. The door can be opened and closed by an actuator 14M. The printing station 15M has a fixed window 6M that seals the printing station from the surrounding environment.

[0064] Figure 1N shows the “opening” position of an alternative embodiment of the additive manufacturing system 1M. The printing station 15N extends a seal 17N over the top of the printing chamber to seal the chamber from the surrounding environment. The door 12N can then be opened by actuator 14N while the opening 16N remains open. A laser beam 7N is projected from the print head, passes through window 6N, and fuses the powder to the metal parts on the printing plate 2N. The window needs to be large enough to be approximately the same size as the printing plate so that the laser is directed over the entire area of ​​the printing plate. In this embodiment, window 6N is fixed to the printing station 15N, making the printing chamber 11N less expensive. The powder hopper 4N and Z-axis wall 3N are shown for reference.

[0065] Figure 10 shows a laminated manufacturing system 10 including a printing facility control system and a database connection 20 that connects to various stations of the printing facility. The control system and database 20 communicate with cartridges 30, printing stations 40, racks 50, powder removal stations 60, transporters (cartridge transfer systems) 70, and facility stations 80. Each component provides status updates and can be reconfigured in real time to optimize facility operations.

[0066] Figure 1P shows an additive manufacturing system 1P including various other potential stations that may be part of the additive manufacturing system 1P. In some embodiments, cartridges are loaded into stations. An example of a station is a printing station with cartridges, which is supplied with energy (laser or electron beam) from a laser engine (station) to enable the printing of parts. Typically, the laser engine is used only in combination with a printing station to transform the combination into a printing engine. Stations can be arranged and interconnected to form a manufacturing system. A manufacturing system may include stations with many cartridges and support stations captured in a frame arrangement, which are coordinated by a control system and receive print instructions from the user to fulfill print orders / jobs. These other functional stations may include a dirt process to reduce human exposure when manufacturing 3D parts. As mentioned earlier, 3D printing is messy in itself, and the pre- and post-processing of cartridges, post-processing of powders, and post-processing of printed parts are equally messy. Furthermore, there is a cartridge system interface for interacting with various diagnostic systems. The control system and database 2P communicate when connected to the cartridge separately, or when connected to one of the listed stations 40P, or when operated by the transporter 5P. The listed stations are not exhaustive but include the printing engine 41P (consisting of the printing station 42P and the laser engine 43P), the storage (rack) station 44P, the facility station 56P, and the powder preparation / powder removal station 45P. The powder preparation station may be a single station for preparing cartridges, including removing powder from already printed cartridges. These two functions (cartridge preparation and powder removal) can be performed at one or two separate stations. In this case, the preparation station may be called "preparation" and the other "powder removal".Other stations may include a surface coating station 46P, a heat treatment station 47P, a CNC / machining station 48P, a surface finishing station 49P, a preparation service station, a deburring station, a powder resieving station 52P, a powder surface treatment / coating station 53P, a LUIS diagnostic station 54P, other volumetric measurement and surface diagnostic stations 55P, and other processing stations 56P. The laser engine 43P can be coupled with and interact with the printing station 42P (to form the printing engine 41P), the surface coating station 46P, and the LUIS diagnostic station 54P, and can also interact with the heat treatment station 47P and the surface finishing station 49P.

[0067] The printing station 42P, surface coating station 46P, heat treatment station 47P, CNC / machining station 48P, surface finishing station 49P, and deburring station 51P perform post-processing on printed parts. The surface coating station 46P, working in conjunction with the laser engine 43P, operates on printed parts to add a functional layer to a selected surface, such as for drill bits, Aerofoil surfaces, turbine blades, or medical implants. The heat treatment station 47P, together with the laser engine 43P, can perform surface annealing and hardening, or this form of post-processing can be performed using other conventional methods such as a standard heat source or a directed energy non-laser source. The CNC / machining station 48P performs standard removal manufacturing on printed parts for the final shape and form. The surface finishing station 49P interacts with the laser engine 43P and can perform mass-transport / surface tension surface smoothing or laser peening / hardening. The surface finishing station 49P can also perform conventional removal methods (this does not require coupling 49P with 43P). The deburring station 51P improves the surface finish of printed parts using conventional deburring machining methods. The LUIS diagnostic station 54P, coupled with the laser engine 43P (composed of a dedicated FRU for LUIS), performs volumetric scanning of printed parts to verify printing accuracy, density, and defect statistics. Furthermore, LUIS and other volumetric diagnostics (54P and 55P, respectively) can be used in conjunction with the storage station and laser engine to determine the functionality of printed parts under conditional environments such as high or low temperatures, high pressure or partial vacuum, or other extreme environments or operations, and to ensure that printed parts can withstand static operational performance requirements.

[0068] The preparation service station 50P is used to maintain the cartridges and may be used in conjunction with the powder station 45P and the facility station 56P. At the preparation station, consumables (such as the blade 4A, construction plate 12A, and HEPA filter 8A in Figure 1A) are replaced in a manner that minimizes human interaction with the contaminated environment. Gases and fluids are removed for post-treatment via the facility station 56P. Used powder is removed and transferred to the powder resieving station 52P for powder recovery.

[0069] Powder processing / coating stations process powders to enhance their chemical properties or emissivity, which varies depending on the powder / metal used, but can include chemical or oxide treatments to increase emissivity (such as increasing the absorption of copper or steel by surface treatment of the powder) by adding chemical dopants to the powder for specific printing parameters.

[0070] Other volumetric measurement diagnostic stations 55P include X-ray tomography, surface scanning imaging, and high-resolution surface and thermographic imaging, and to name a few, they allow for the manipulation of printed components (similar to X-ray tomography) with minimal handling damage and without exposing humans to hazardous measurement methods.

[0071] Other processing stations can meet customer needs by isolating potentially hazardous processes, testing, or diagnostic processes from workers and / or printed parts.

[0072] Advantageously, the described additive manufacturing system describes a cartridge that houses the entire printing chamber and all its components. The cartridge can be transported between partner machines. Using cameras and virtual windows eliminates the need for physical windows. In one embodiment, a display screen can enable remote inspection of the cartridge. Laser light can pass through the upper window to perform powder welding, preheating, heat treatment, or other thermal operations. By directing the laser light to an auxiliary printing station, laser shots that would otherwise be wasted can be effectively utilized, improving manufacturing throughput.

[0073] Another advantage of the described additive manufacturing system is based on the use of electronically readable memory for cartridges, which allows data to be stored or associated with its intended use. The cartridge design allows for matching cartridges to mating equipment using a standard interface. The cartridge's electronically readable memory can inform the print engine of actions to be performed before, during, or after the printing process. The mating equipment can read and write information to the electronically readable memory. Operators can access the electronically readable memory using a handheld unit. Storage racks can serve the cartridges, assign information to the electronically readable memory, or be used for heat treatment of prints before removing them from the printing plate.

[0074] The described additive manufacturing system involves printer by-products contained within the printing cartridges, and protects workers by isolating them from hazardous printer by-products (metal powder, soot, welding slag, inert gases, etc.). All mechanical components exposed to printer by-products are removed along with the cartridge, and the cartridge can be opened in a dedicated powder handling station. This arrangement limits the opportunity for printer by-products to spill into the factory environment. When the cartridge is located in a powder or preparation station, workers have full access to servicing all cartridge components through a glove port, so workers do not need to wear special protective equipment to service the cartridge. Alternatively, the powder or preparation station can be located in a cleanroom, and workers can service the cartridge wearing protective masks and protective clothing. This scheme isolates all contaminants in the cleanroom, eliminating exposure to the rest of the factory.

[0075] Another advantage of the described additive manufacturing system is increased printer uptime by reducing idle time between prints. Once a print job is complete, the operator can remove the print cartridge and immediately install a new one to start a new print. Idle time between prints is reduced from hours to minutes. Print cartridges can be cleaned, serviced, and loaded with new powder and printing plates offline at a preparation station. Because the work is done in a sealed environment, the print chamber and powder are not exposed to air, high humidity, or factory contaminants. New cartridges can be prepared in advance to match the customer's production schedule. New cartridges are stored in storage racks and can be preheated, cooled, pressurized, or depressurized with any required gas atmosphere. As soon as space becomes available in the printer, a new cartridge can be inserted and printing can begin immediately. This is because there is no waiting time for preheating or purging of atmospheric gas.

[0076] Another advantage of the additive manufacturing system described is that the printer can produce prints from any material (steel, aluminum, Inconel, titanium, wood, glass, or metals such as ceramics), and as soon as that print is complete, it can print from another material with little to no downtime for maintenance between prints. Because no powder accumulates inside the printer, there is no need to clean the printer before printing with a cartridge filled with another material. This not only saves time but also provides maximum flexibility to the customer, because the printer does not have to be dedicated to processing only one material.

[0077] Another advantage of the additive manufacturing system described is that cartridges and / or stations can be slightly or significantly modified to meet customer requirements. For example, cartridges can be designed with printing plates of much smaller surface area or different shapes (i.e., circular instead of square). This allows customers to print small quantities of very expensive materials (such as gold), for instance. These small-capacity cartridges can interface with various printing stations to maximize customer flexibility in printing materials.

[0078] Another advantage of the described additive manufacturing system is that heat treatment (e.g., heat treatment, annealing, controlled cooling) of the printed material can be performed without removing it from the controlled environment in which it was printed (i.e., the printing cartridge is heated, cooled, and the atmosphere is controlled). The cartridges are sent to storage racks and can be kept at any temperature in any gas environment according to customer instructions. Because the printed material is not exposed to the atmosphere or cooled, the customer has excellent control over the properties of the material. This can also mitigate the problem of warping of the printing plate due to thermal stress.

[0079] Another advantage of the described additive manufacturing system is that prints can be produced using any of multiple print cartridges that can be installed simultaneously in one or more auxiliary printing stations. This further reduces overall printing time by utilizing laser energy that would otherwise be wasted. It also allows customers to set printing schedules more flexibly and improves machine utilization.

[0080] Another advantage of the described additive manufacturing system is that the cartridges and functions of the partner equipment can be implemented as standard or optional features of additive manufacturing systems manufactured by other equipment manufacturers. The technology, offered as a subsystem, is incorporated into the additive manufacturing equipment using laser powder bed fusion or other 3D printing methods. Additive manufacturing systems utilizing a cartridge / station system can enjoy the benefits of this system. Cartridges and stations can be modified slightly or significantly to suit the specific needs of the manufacturer or customer.

[0081] Various substitutes or extensions of the various components of the described additive manufacturing system are possible. For example:

[0082] The bellows of the embodiments illustrated with respect to Figures 1H, 1I, and 1J allow the window to move freely along the X and Y axes, but prevent sagging along the Z axis, as a series of sliding plates (such as cables) supporting the window can be replaced or added. If a small amount of powder is required for a particular print, the user can partially fill the powder hopper.

[0083] Blade sprayers can be replaced with roller or electrostatic sprayers.

[0084] The powder spreader drive unit can be installed separately and driven by a suitable interface that transmits power to the mechanism (e.g., a flexible shaft). The powder spreader can be actuated by many types of actuators, including gear drives. In some embodiments, the powder spreader may be a removable and upgradeable subsystem of cartridges.

[0085] HEPA filters can be installed in the printer cartridge of the other device, or in both locations. HEPA filters may also have pre-filters such as vortex separators or screens to handle large amounts of soot.

[0086] It can support multiple gas supply and return ports, and by physically placing the gas supply and return ports in different locations on the cartridge, it is possible to prevent mixing of different powder types.

[0087] In some embodiments, the camera can capture video and still images to provide a virtual window. The camera and light can illuminate and image with multiple wavelengths of light (e.g., IR, visible light, or UV). The camera may be an array of multiple cameras capable of recording still and video images from many different angles with one or more wavelengths of light. The light may be an array of one or more lights illuminating the cartridge from many angles with many different wavelengths. Because the virtual window can be displayed from anywhere, images can be transmitted to a remote viewing location. The virtual window monitor can be positioned on the cartridge itself, on the front of the printing station, or as a display on a monitor mounted on an industrial monitor / keyboard arm. In some embodiments, the cartridge may also have a physical window or port that allows direct observation by the naked eye or an external camera or other sensor.

[0088] Various types of cartridge transport are conceivable. In some embodiments, rollers can be replaced with telescopic tubes, pick-and-place robots, overhead lifting, rails, or conveyors. Forklift tubes can be replaced with automated equipment such as carts, conveyor belts, and rails, or robotic equipment such as bottom-lift stockers, robotic tugboats, or robotic forklifts. The use of overhead gantry / crane mechanisms; carts or buggies that roll along the floor (manual or fully automated); manual or automated rail systems that may have wheels or no wheels (maglev, air bearings); robotic manipulators; and conformal body power suits are alternative embodiments.

[0089] The plunger / Z-axis piston can be aligned with zero-point clamping or other types of automatic clamping.

[0090] The safety shield may be part of the cartridge, attached to the printing engine, or a combination of both. Its material is opaque to laser light. While the system is operating, its outer surface must be cool enough to touch.

[0091] To prevent cross-contamination between powder types, the interface plate can use various configurations and be positioned in various locations (e.g., moving left, right, or up and down) depending on the type of gas or powder used in the cartridge. For example, the gas recycling port for a cartridge containing steel powder may be on the left side, and for a cartridge containing aluminum powder, it may be on the right side. Because the ports for different materials are not aligned, the operator could not accidentally insert the wrong cartridge into the gas recycler. In some embodiments, multiple gas recyclers within each print engine can support printing of different materials. For example, a drive gas recycling impeller using an external motor can be switched between two sets of impellers. This allows two relatively inexpensive impellers to be driven with separate gas ducts for different materials using only one expensive motor. In some embodiments, a gas recycling module (gas cartridge) can be inserted into or removed from the print engine depending on the material to be processed. In some embodiments, gas recycling equipment including a filter can be installed directly into the print engine. In other embodiments, the filter and "material-dependent" equipment are installed in the cartridge unit itself, thus completely avoiding cross-contamination when installing different cartridges containing different materials.

[0092] Storage racks can be made in many different sizes to carry one or more cartridges. Cartridges can be programmed in the storage rack and automatically set up to perform jobs based on predetermined job scheduling. Electronic memory held within each cartridge can interface with robotic operating systems, cranes, rails, and transport equipment, or communicate with transporters and / or their operators, or systems, to tell which printing station / engine to connect to in the production environment. Cartridges can be battery-powered, enabling sensor or informational functions when removed.

[0093] A printing engine may have more than one auxiliary printing station attached to it (i.e., 1 to N), where N may be 1, 10, 100, or 1000, or somewhere in between, or more.

[0094] Printing cartridges can be filled with the same or different materials while printing simultaneously or continuously.

[0095] If each printing station has its own light bulb or patterning device, the laser beam can be split between printing stations before patterning. In other embodiments, the laser beam can be split between chambers after patterning, with a first chamber acquiring a positive (priority) image and subsequent chambers acquiring the remaining (negative) image.

[0096] The energy fluence directed to each cartridge may be the same or vary depending on the type of material.

[0097] In one embodiment, the use of print cartridges and / or print engines can be prioritized, and the use of each print cartridge or engine can be prioritized before or during printing. For example, prioritized cartridges can remain static or change based on input (i.e., from the user, such as changing the job priority, or due to print completion, print errors, or other external requests). Cartridge priorities can be promoted or demoted. For example, if there are two cartridges and the highest-priority cartridge becomes idle (due to user intervention, subsystem processes such as unpacking or image loading, errors, etc.), the priority is changed to the previously lower-priority cartridge so that the overall print throughput is maximized. Variations of this apply to any number of cartridges greater than one. As another example, a customer may prioritize printing high-temperature prints at a primary print station where the primary cartridge is inserted, and assign lower priority to less demanding prints at room temperature in an auxiliary print station. Low-temperature printing can proceed at a much slower pace without sacrificing print quality or unnecessarily overheating the auxiliary chamber.

[0098] Each print cartridge within each print station may be printing the same or different print files. Each print can be started and stopped while printing continues in an auxiliary print cartridge. Print cartridges can be installed in or removed from the print station while printing is in operation in more than one chamber, without interrupting the printing process in chambers that have not been removed.

[0099] Figure 2 shows the process flow 200 for the operation of a cartridge-based additive manufacturing system. In step 202, a new or reused cartridge is placed in the printing engine. In step 204, laser energy is directed into the cartridge to construct the 3D part. In step 204, laser energy is directed into the cartridge to fuse, sinter, melt, or otherwise modify the powder layers. In step 206, additional powder is placed and exposed to laser energy, and the process is repeated additively to construct each layer and generate the 3D printed structure. In step 208, the cartridge can be removed and serviced in a separate powder processing station. The serviced or new cartridge can then be placed in the printing engine for the production of additional or new 3D prints.

[0100] In another embodiment shown with respect to Figure 3, an additive manufacturing system, such as that shown with respect to the process flow in Figures 1A-H and Figure 2, can be represented by various modules forming the additive manufacturing method and system 300. As seen in Figure 3, the laser source and amplifier 312 can be configured as a continuous laser or a pulsed laser. In other embodiments, the laser source includes a pulsed electrical signal source, such as an arbitrary waveform generator or equivalent, acting on a continuous laser source, such as a laser diode. In some embodiments, this can also be achieved via a fiber laser or fiber-emitting laser source modulated by an acousto-optic modulator or electro-optic modulator. In some embodiments, a high repetition rate pulse source using a Pockels cell can be used to generate pulse trains of any length.

[0101] Possible laser types include, but are not limited to, gas lasers, chemical lasers, dye lasers, metal vapor lasers, solid-state lasers (e.g., fiber), semiconductor (e.g., diode) lasers, free-electron lasers, gas dynamic lasers, "nickel-like" samarium lasers, Raman lasers, or nuclear-pumped lasers.

[0102] Gas lasers can include lasers such as helium-neon lasers, argon lasers, krypton lasers, xenon ion lasers, nitrogen lasers, carbon dioxide lasers, carbon monoxide lasers, or excimer lasers.

[0103] Chemical lasers can include lasers such as hydrogen fluoride lasers, deuterium fluoride lasers, COIL (chemical oxygen-iodine lasers), or Agil (all-gas phase iodine lasers).

[0104] Metal vapor lasers may include lasers such as helium-cadmium (HeCd) metal vapor lasers, helium-mercury (HeHg) metal vapor lasers, helium-selenium (HeSe) metal vapor lasers, helium-silver (HeAg) metal vapor lasers, strontium vapor lasers, neon-copper (NeCu) metal vapor lasers, copper vapor lasers, gold vapor lasers, or manganese (Mn / MnCb) vapor lasers. Rubidium or other alkali metal vapor lasers may also be used. Solid-state lasers include ruby ​​lasers, Nd:YAG lasers, NdCrYAG lasers, Er:YAG lasers, neodymium YLF (Nd:YLF) solid-state lasers, neodymium-doped yttrium orthovanadate (Nd:YVO4) lasers, neodymium-doped yttrium calcium oxoborate Nd:YCa40 (B03)3 or simply Nd:YCOB, neodymium gl as s (Nd:glass) lasers, titanium sapphire (Ti:sapphire) lasers, thulium YAG (Tm:YAG) lasers, ytterbium YAG (Yb:YAG) lasers, ytterbium-203 (glass or ceramic) lasers, and ytterbium-doped glass lasers (rod, plate / Lasers may include chip and fiber lasers, holmium YAG (Ho:YAG) lasers, chromium ZnSe (CnZnSe) lasers, cerium-doped lithium strontium (or calcium) aluminum fluoride (Ce:LiSAF, Ce:LiCAF), promethium-147 doped glass (147Pm+3:glass) solid-state lasers, chromium-doped chrysoberyl (alexandrite) lasers, erbium-doped and erbium-ytterbium co-doped glass lasers, trivalent uranium-doped calcium fluoride (U:CaF2) solid-state lasers, divalent samarium-doped calcium fluoride (Sm:CaF2) lasers, or F-center lasers.

[0105] Semiconductor lasers can include laser media types such as GaN, InGaN, AlGaInP, AlGaAs, InGaAsP, GalnP, InGaAs, InGaAsO, GalnAsSb, lead salts, vertical cavity surface-emitting lasers (VCSELs), quantum cascade lasers, and hybrid silicon lasers, or combinations thereof.

[0106] As shown in Figure 3, the additive manufacturing system 300 uses a laser capable of providing one-dimensional or two-dimensional directional energy as part of the energy patterning system 310. In some embodiments, one-dimensional patterning can be directed as linear or curved strips, rasterized lines, helices, or any other suitable form. Two-dimensional patterning can include isolated or overlapping tiles, or images with variations in laser intensity. Two-dimensional image patterns with non-square boundaries can be used, and overlapping or interpenetrating images can be used, and the images can be provided by two or more energy patterning systems. The energy patterning system 310 uses a laser source and amplifier 312 to direct one or more continuous or intermittent energy beams to the beam shaping optical system 314. After shaping, the beam is patterned by an energy patterning unit 316 as needed, and generally, some of the energy is directed to a rejection energy processing unit 318. The patterned energy is relayed by an image relay 320 to an article processing unit 340 as a two-dimensional image 322 focused near the floor 346, in one embodiment. The material processing unit 340 may include a cartridge as described above. The material processing unit 340 has a plate or floor 346 (having walls 348) which together form a sealed cartridge chamber containing material 344 (e.g., metal powder) distributed by a powder hopper or other material dispenser 342. The patterned energy guided by the image relay 320 can chemically or physically modify the dispensed and distributed material 344 by melting, fusing, sintering, amalgamating, altering the crystal structure, influencing the stress pattern, or otherwise, to form a structure with desired properties. The control processor 350 can be connected to various sensors, actuators, heating or cooling systems, monitors, and controllers to coordinate the operation of the laser source and amplifier 312, beam shaping optics 314, laser patterning unit 316, and image relay 320, as well as any other components of the system 300.To be understood, the connection can be wired or wireless, continuous or intermittent, and may include feedback functionality (e.g., the ability to adjust heating based on the sensed temperature).

[0107] In some embodiments, the beam shaping optical system 314 may include a wide variety of imaging optical systems that combine, focus, diverge, reflect, refract, homogenize, adjust intensity, adjust frequency, or shape one or more laser beams received from the laser source and amplifier 312 and direct them toward the laser patterning unit 316. In one embodiment, multiple optical beams having different wavelengths can be combined using wavelength-selective mirrors (e.g., dichroic) or diffractive elements. In other embodiments, multiple beams can be homogenized or combined using polyfaceted mirrors, microlenses, and refractive or diffractive optical elements.

[0108] The laser patterning unit 316 may include static or dynamic energy patterning elements. For example, the laser beam can be blocked by a mask with fixed or movable elements. To increase the flexibility and ease of image patterning, pixel-addressable masking, image generation, or transmission can be used. In some embodiments, the laser patterning unit includes an addressable light bulb, either alone or in combination with other patterning mechanisms, to provide patterning. The light bulb may be transmissive, reflective, or a combination of transmissive and reflective elements can be used. The pattern can be dynamically modified using electrical or optical addressing. In one embodiment, a transmissive optically addressed light bulb acts to rotate the polarization of light passing through the bulb, forming a pattern in which optically addressed pixels are defined by a light source. In another embodiment, a reflective optically addressed light bulb includes a write beam to correct the polarization of the read beam. In certain embodiments, a non-optically addressed light bulb can be used. These may include, but are not limited to, electrically addressable pixel elements, movable mirrors or micromirror systems, piezo or microactuated optical systems, fixed or movable masks or shields, or any other conventional systems capable of providing high-intensity light patterning.

[0109] The rejection energy processing unit 318 is used to disperse, redirect, or utilize energy that is not patterned and does not pass through the image relay 320. In one embodiment, the rejection energy processing unit 318 may include passive or active cooling elements to remove heat from both the laser source and amplifier 312 and the laser patterning unit 316. In other embodiments, the rejection energy processing unit may include a “beam dump” that absorbs beam energy not used in defining the laser pattern and converts it into heat. In yet another embodiment, the rejected laser beam energy can be reused using the beam shaping optics 314. Alternatively or additionally, the rejected beam energy can be directed to the article processing unit 340 for heating or further patterning. In certain embodiments, the rejected beam energy can be directed to an additional energy patterning system or article processing unit.

[0110] In one embodiment, a “switchyard” style optical system can be used. Switchyard systems are suitable for reducing wasted light in additive manufacturing systems caused by the rejection of unwanted light by the pattern being printed. A switchyard involves the redirection of a complex pattern from its generation (in this case, the plane to which the spatial pattern is applied to a structured or unstructured beam) to its delivery through a series of switch points. Each switch point can optionally alter the spatial profile of the incident beam. Switchyard optical systems may be used in laser-based additive manufacturing techniques in which a mask is applied to the light, for example, but not limited to these. Advantageously, in various embodiments of this disclosure, the wasted energy can be reused in a homogenized form or as patterned light used to maintain high power efficiency or high throughput rates. Furthermore, the wasted energy can be reused and reused to increase intensity and print more difficult materials.

[0111] The image relay 320 can receive a patterned image (either one-dimensional or two-dimensional) directly from the laser patterning unit 316 or via a switchyard and guide it toward the item processing unit 340. Similar to the beam shaping optics 314, the image relay 320 may include optics for coupling, focusing, diverging, reflecting, refraction, intensity adjustment, frequency adjustment, or shaping and directing the patterned light. The patterned light can be directed using movable mirrors, prisms, diffractive optical elements, or solid-state optical systems that do not require substantial physical movement. One of several lens assemblies can be configured to provide incident light with magnification, and the lens assembly may have both a first set and a second set of optical lenses, the second set of optical lenses being interchangeable from the lens assembly. Incident light from the precursor mirror can be directed to a desired location using one or more sets of mirrors mounted on a compensating gantry and the rotation of a final mirror mounted on a construction platform gantry. The translational motion of the compensating gantry and the construction platform gantry can also ensure that the distance of incident light from the precursor mirror of the material processing unit 340 is substantially equal to the image distance. In fact, this allows for rapid changes in the delivery size and intensity of the light beam across the construction area of ​​various materials while ensuring high system availability.

[0112] A material dispenser 342 (e.g., a powder hopper) within an article processing unit 340 (e.g., a cartridge) can perform distribution, removal, mixing, providing a gradation or variation of material type or particle size, or adjusting the thickness of the material layer. The material may include metals, ceramics, glass, polymer powders, other soluble materials that can undergo thermally induced phase changes from solid to liquid and back to solid, or combinations thereof. The material may further include a composite of soluble and insoluble materials, where either or both components may be selectively targeted by an imaging relay system to melt the molten components while separating along the insoluble material or undergoing vaporization / destruction / combustion or other destructive processes. In certain embodiments, the material may be used in the form of a slurry, spray, coating, wire, strip, or sheet. Unwanted material can be removed for single use or reuse using a blower, vacuum system, sweeping, vibration, shaking, tilting, or inversion of the floor 346.

[0113] In addition to material processing components, the article processing unit 340 may include components for holding and supporting 3D structures, mechanisms for heating or cooling the chamber, auxiliary or support optics, and sensors and control mechanisms for monitoring or adjusting material or environmental conditions. The article processing unit may, whole or in part, support a vacuum or an inert gas atmosphere to reduce undesirable chemical interactions and mitigate the risk of fire or explosion (especially in the case of reactive metals). In some embodiments, Ar, He, Ne, Kr, Xe, CO2, N2, O2, SF6, CH4, CO, N2O, C2H2, C2H4, C2H6, C3H6, C3H8, i-C4H10, C4H10, 1-C4H8, cic-2, C4H7, 1,3-C4H6, 1,2-C4H6, C5H12, n-C5H12, i-C5H12, Various pure air or other mixtures of air can be used, including those containing n-C6H14, C2H3C1, C7H16, C8H18, C10H22, C11H24, C12H26, C13H28, C14H30, C15H32, C16H34, C6H6, C6H5-CH3, C8H10, C2H50H, CH30H, and iC4H8. In some embodiments, a refrigerant or large inert molecules (including but not limited to sulfur hexafluoride) can be used. An enclosure air composition having at least about 1% He volume (or number density) can be used, along with a selected percentage of inert / unreactive gas.

[0114] In certain embodiments, multiple article processing units, cartridges, or construction chambers can be used in combination with multiple optics-mechanical assemblies, each having a construction platform for holding a powder bed and positioned to receive and direct one or more incident energy beams towards the cartridges. Multiple cartridges allow for the simultaneous printing of one or more print jobs.

[0115] In another embodiment, one or more article processing units, cartridges, or construction chambers may have cartridges that are maintained at a constant height, while the optics are movable vertically. The distance between the final optics of the lens assembly and the top surface of the powder bed can be controlled to be essentially constant by raising the final optics upward by a distance equivalent to the thickness of the powder layer, while keeping the construction platform at a constant height. Advantageously, compared to moving the construction platform vertically, it is not necessary to move the constantly changing mass of the construction platform with micron-level precision, making it easier to manufacture large and heavy objects. Typically, in construction chambers for metal powders with a volume exceeding 0.1–0.2 cubic meters (i.e., exceeding 100–200 liters or 500–1,000 kg), keeping the construction platform at a constant height is most effective.

[0116] In one embodiment, a portion of the powder bed layer within the cartridge may selectively melt or fuse to form one or more temporary walls from the fused portion of the powder bed layer, which can accommodate another portion of the powder bed layer on the construction platform. In a selected embodiment, fluid passages may be formed in one or more first walls to allow for improved thermal management.

[0117] In some embodiments, the lamination manufacturing system may include an article processing unit or cartridge supporting a powder bed that can be tilted, inverted, and shaken to substantially separate the powder bed from the construction platform in the hopper. The powder material forming the powder bed may be collected in the hopper for reuse in subsequent printing jobs. The powder collection process can be automated, and vacuum or gas jet systems may also be used to assist in the removal and extraction of the powder.

[0118] In some embodiments, the lamination manufacturing system can be configured to easily handle parts longer than the available construction chamber or cartridge. A continuous (long) section can be sequentially advanced longitudinally from a first zone to a second zone. In the first zone, selected granules of the granular material can be amalgamated. In the second zone, unamalgamated granules of the granular material can be removed. The first part of the continuous section can advance from the second zone to the third zone, while the last part of the continuous section is formed within the first zone, and the first part is maintained in the same position as the first part occupies in the lateral and transverse directions within the first and second zones. In fact, lamination manufacturing and cleaning (e.g., separation and / or reuse of unused or unamalgamated granular material) can be performed in parallel (i.e., simultaneously) at different locations or zones on the part conveyor, without the need to stop for the removal of granular material and / or parts.

[0119] In another embodiment, the lamination manufacturing capability can be improved by using an enclosure that restricts the exchange of gaseous material between the inside and outside of the enclosure. An airlock provides an interface between the inside and outside. Inside are multiple lamination manufacturing chambers, including one that supports a powered bed fusion. A gas management system maintains the gaseous oxygen inside below the critical oxygen concentration, increasing the flexibility of the types of powders that can be used in the system and the processing capabilities.

[0120] In another manufacturing embodiment, capacity can be improved by housing an article processing unit, cartridge, or construction chamber within an enclosure, and the construction chamber can produce parts weighing more than 2,000 kilograms. A gas management system can maintain the gaseous oxygen within the enclosure at a concentration below atmospheric level. In some embodiments, a wheeled vehicle can transport parts from inside the enclosure via an airlock, as the airlock acts to buffer between the gas environment inside the enclosure and the gas environment outside the enclosure, and between locations outside both the enclosure and the airlock.

[0121] Other manufacturing embodiments include real-time collection of powder samples from the powder bed. The ingester system is used for in-process collection and characterization of powder samples. Collection can be performed periodically, and the results of characterization lead to adjustments to the powder bed fusion process. The ingester system can optionally be used for one or more actions such as auditing, process adjustment, or verifying the proper use of approved powder materials or changing printer parameters.

[0122] Further improvements to the additive manufacturing process can be provided by the use of manipulator devices such as cranes, lift gantry, robotic arms, or similar devices that enable the manipulation of parts that are difficult or impossible for humans to move. Manipulator devices can grasp various permanent or temporary additive manufacturing operation points on a part to enable the repositioning or manipulation of the part.

[0123] The control processor 350 can be connected to control any component of the additive manufacturing system 300 described herein, including lasers, laser amplifiers, optics, thermal control, construction chambers, and manipulator devices. The control processor 350 can be connected to various sensors, actuators, heating or cooling systems, monitors, and controllers to coordinate their operation. A wide range of sensors, including imagers, light intensity monitors, and thermal, pressure, or gas sensors, can be used to provide information for control or monitoring. The control processor can be a single central controller or may include one or more independent control systems. The controller processor 350 is provided with an interface that allows for the input of manufacturing instructions. The use of a wide range of sensors enables various feedback control mechanisms, improving quality, manufacturing throughput, and energy efficiency.

[0124] One embodiment of the operation of a manufacturing system suitable for additive manufacturing or removal manufacturing is shown in Figure 4. In this embodiment, flowchart 400 illustrates one embodiment of a manufacturing process supported by the optical and mechanical components described. In step 402, the material is placed in a cartridge, floor, chamber, or other suitable support. The material may be a metal sheet for laser cutting using removal manufacturing techniques, or a powder that can be melted, fused, sintered, or induced to change its crystalline structure, thereby affecting the stress pattern, or can be chemically or physically modified by additive manufacturing techniques to form a structure with desired properties.

[0125] In step 404, unpatterned laser energy is emitted by one or more energy emitters, including but not limited to solid-state or semiconductor lasers, and then amplified by one or more laser amplifiers. In step 406, the unpatterned laser energy is shaped and modified (e.g., intensity modulation or focusing). In step 408, this unpatterned laser energy is patterned, and the energy that does not form part of the pattern is processed in step 410 (this may include conversion to waste heat, reuse as patterned or unpatterned energy, or waste heat generated by cooling the laser amplifiers in step 404). In step 412, the patterned energy, now forming a one-dimensional or two-dimensional image, is relayed toward the material. In step 414, the image is applied to the material, either by removing parts of the 3D structure or by constructing it layer by layer. In the case of additive manufacturing, these steps can be repeated until the image (or another subsequent image) is applied to all desired areas of the top layer of the material (loop 418). Once the application of energy to the top layer of material is complete, a new layer can be applied (loop 416) to continue building the 3D structure. These process loops continue until the 3D structure is complete and any remaining excess material can be removed or reused.

[0126] Many modifications and other embodiments of the present invention will come to mind for those skilled in the art who benefit from the teachings presented in the foregoing description and the associated drawings. It is understood that the present invention should not be limited to the specific embodiments disclosed, and that modifications and embodiments are intended to be included within the scope of the appended claims. It is also understood that other embodiments of the present invention may be carried out without elements / steps not specifically disclosed herein.

Claims

1. A cartridge for a multilayer manufacturing system, A sealable chamber having a powder bed on the XY plane, A powder hopper is placed inside the aforementioned sealable chamber, A powder dispenser is provided, located within the sealed chamber, to distribute the powder from the powder hopper to the powder bed. A printing plate supporting the aforementioned powder bed, After printing each layer on the aforementioned powder bed, the printing station includes a plunger that is driven along the Z-axis by a Z-axis piston to lower the printing plate, To connect the plunger of the cartridge to the Z-axis piston of the printing station, the plunger is attachable to the printing station by a clamp of the printing station connecting to the plunger. A cartridge that can be attached to the printing station of the aforementioned additive manufacturing system.

2. A cartridge for a laminated manufacturing system according to claim 1, wherein a laser-transmitting window is further arranged to allow an external camera to focus on the powder bed within the sealable chamber.

3. A cartridge for a laminate manufacturing system according to claim 1, wherein the sealable chamber supports a camera to focus on the powder bed within the sealable chamber.

4. A cartridge for an additive manufacturing system according to claim 2, further comprising a wiping blade mounted in the sealable chamber for cleaning the laser transmission window.

5. A cartridge for a laminate manufacturing system according to claim 1, wherein an electronic memory configured to identify the cartridge and hold electronic information for controlling the operation of the printing station is attached to the cartridge.

6. A cartridge for a laminated manufacturing system according to claim 1, further comprising a bellows attached to the sealable chamber for holding a laser transmission window.

7. The cartridge for a laminate manufacturing system according to claim 6, wherein the laser-transmitting window is arranged to allow an external camera to focus on the powder bed in the sealable chamber.

8. A cartridge for a laminate manufacturing system according to claim 6, wherein the sealable chamber supports a camera to focus on the powder bed within the sealable chamber.

9. A cartridge for a laminate manufacturing system according to claim 6, further comprising a wiping blade mounted in the sealable chamber for cleaning the laser transmission window.

10. A laser-transmitting window and A cartridge for a laminated manufacturing system according to claim 1, further comprising a wiper mechanism configured to clean the inside of the laser-transmitting window.

11. The cartridge for a laminate manufacturing system according to claim 10, wherein the laser-transmitting window is arranged to allow an external camera to focus on the powder bed in the sealable chamber.

12. A cartridge for a lamination manufacturing system according to claim 10, wherein the sealable chamber supports a camera to focus on the powder bed within the sealable chamber.

13. A cartridge for a laminated manufacturing system according to claim 10, further comprising a bellows attached to the sealable chamber for holding the laser transmission window.

Citation Information

Patent Citations

  • Apparatus and methods for production additive manufacturing

    JP2017031505A

  • Apparatus for additively producing three-dimensional objects

    JP2018154919A

  • Removable 3d build module with memory

    JP2018501134A

  • Apparatus for additively manufacturing of three-dimensional objects

    JP2019022976A

  • Modules and methods for additive manufacturing equipment

    JP2019504182A