Plate-based additive manufacturing apparatus and method

Information

  • Patent Grant
  • 11590691
  • Patent Number
    11,590,691
  • Date Filed
    Thursday, November 2, 2017
    7 years ago
  • Date Issued
    Tuesday, February 28, 2023
    a year ago
Abstract
An additive manufacturing apparatus for manufacturing a three-dimensional component includes: a build plate, at least a portion of which is transparent, the build plate defining a build surface; a material depositor operable to deposit a radiant-energy-curable resin on the build surface; a stage positioned facing the build surface of the build plate and configured to hold a stacked arrangement of one or more cured layers of the resin; one or more actuators operable to change the relative positions of the build plate and the stage; a radiant energy apparatus positioned adjacent to the build plate opposite to the stage, and operable to generate and project radiant energy on the resin through the build plate in a predetermined pattern; and a cleaning apparatus operable to remove debris from the build surface. A method is provided for use of the apparatus.
Description
BACKGROUND OF THE INVENTION

This invention relates generally to additive manufacturing, and more particularly to methods for curable material handling in additive manufacturing.


Additive manufacturing is a process in which material is built up piece-by-piece, line-by-line, or layer-by-layer to form a component. Stereolithography is a type of additive manufacturing process which employs a vat of liquid radiant-energy curable photopolymer “resin” and a curing energy source such as a laser. Similarly, DLP 3D printing employs a two-dimensional image projector to build components one layer at a time. For each layer, the projector flashes a radiation image of the cross-section of the component on the surface of the liquid or through a transparent object which defines a constrained surface of the resin. Exposure to the radiation cures and solidifies the pattern in the resin and joins it to a previously-cured layer or to another build surface.


In curing the photopolymer resin, it is preferable to have a fresh supply of material for each layer. Old resin may contain cured products such as supports that have broken off of the part or other external contamination. In a vat-based process, this contamination or the contaminated material can cure into the component, resulting in undesirable geometry, or otherwise disrupt the build process and damage the final part.


Another prior art method is a so-called “tape casting” process. In this process, a resin is deposited onto a flexible radiotransparent tape that is fed out from a supply reel. An upper plate lowers on to the resin, compressing it between the tape and the upper plate and defining a layer thickness. Radiant energy is used to cure the resin through the radiotransparent tape. Once the curing of the first layer is complete, the upper plate is retracted upwards, taking the cured material with it. The tape is then advanced to expose a fresh clean section, ready for additional curing. One problem with tape casting is that it is wasteful because the tape is often not reusable.


BRIEF DESCRIPTION OF THE INVENTION

At least one of these problems is addressed by an additive manufacturing method in which material is deposited and cured on a plate which can be cleaned between layer cycles.


According to one aspect of the technology described herein, an additive manufacturing apparatus for manufacturing a three-dimensional component includes: a build plate, at least a portion of which is transparent, the build plate defining a build surface; a material depositor operable to deposit a radiant-energy-curable resin on the build surface; a stage positioned facing the build surface of the build plate and configured to hold a stacked arrangement of one or more cured layers of the resin; one or more actuators operable to change the relative positions of the build plate and the stage; a radiant energy apparatus positioned adjacent to the build plate opposite to the stage, and operable to generate and project radiant energy on the resin through the build plate in a predetermined pattern; and a cleaning apparatus operable to remove debris from the build surface.


According to another aspect of the technology described herein, a method for producing a component layer-by-layer includes the steps of: depositing a radiant-energy-curable resin on a build surface of a build plate which includes at least a portion which is transparent; defining a layer increment in the resin; selectively curing the resin while the build plate is positioned in a build zone defined between the stage and a radiant energy apparatus, using an application of radiant energy, from the radiant energy apparatus, in a specific pattern so as to define the geometry of a cross-sectional layer of the component; moving the build plate and the stage relatively apart so as to separate the component from the build surface; using a cleaning apparatus to remove material that remains on the build surface; and repeating the steps of depositing, defining, curing, moving, and cleaning for a plurality of layers until the component is complete.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention may be best understood by reference to the following description taken in conjunction with the accompanying drawing figures in which:



FIG. 1 is a schematic side elevation view of an exemplary additive manufacturing apparatus;



FIG. 2 is a schematic side elevation view of an alternative additive manufacturing apparatus;



FIG. 3 is a side view of the apparatus of FIG. 1, showing an optional release agent spray head;



FIG. 4 is a side view of the apparatus of FIG. 1, showing an optional release film applicator;



FIG. 5 is a view of the apparatus of FIG. 1, showing resin being deposited onto a build plate thereof;



FIG. 6 is a schematic top plan view of a layer of resin having multiple sections being applied in the apparatus of FIG. 1;



FIG. 7 is a view of the apparatus of FIG. 1, showing a stage lowered into place and resin being cured using a radiant energy apparatus;



FIG. 8 is a view of the apparatus of FIG. 1, showing a stage retracted;



FIG. 9 is a view of the apparatus of FIG. 1, showing a cleaning apparatus removing excess uncured resin from the build plate;



FIG. 10 is a schematic perspective view of a build plate having a layer of resin applied thereto;



FIG. 11 is a schematic side elevation view of a stage and a vat containing cleaning fluid; and



FIG. 12 is a schematic side elevation view of a stage in an empty vat equipped with air nozzles.





DETAILED DESCRIPTION OF THE INVENTION

Referring to the drawings wherein identical reference numerals denote the same elements throughout the various views, FIG. 1 illustrates schematically an example of one type of suitable apparatus 10 for carrying out an additive manufacturing method as described herein. As will be explained in more detail below, it will be understood that other configurations of equipment may be used to carry out the method described herein. Basic components of the exemplary apparatus 10 include a build plate 12, a stage 14, a material depositor 16, a radiant energy apparatus 18, and a cleaning apparatus 20. Each of these components will be described in more detail below.


The build plate 12 defines a planar build surface 22. For purposes of convenient description, the build surface 22 may be considered to be oriented parallel to an X-Y plane of the apparatus 10, and a direction perpendicular to the X-Y plane is denoted as a Z-direction (X, Y, and Z being three mutually perpendicular directions).


The build plate 12 is sufficiently stiff such that, under the expected loads applied during an additive manufacturing process, it does not bend or deflect enough to interfere with the additive manufacturing process, or cause an unacceptable amount of distortion or inaccuracy in the component being produced. The desired stiffness may be provided through a combination of material properties (i.e. a sufficiently high modulus) and/or component design (i.e. thickness, stiffening features, etc.).


The build plate 12, or selected portions of it, are transparent. As used herein, “transparent” refers to a material which allows radiant energy of a selected wavelength to pass through. For example, as described below, the radiant energy used for curing could be ultraviolet light or laser light in the visible spectrum. Nonlimiting examples of transparent materials include polymers, glass, and crystalline minerals such as sapphire or quartz. The build plate 12 could be made up of two or more subcomponents, some of which are transparent.


The build surface 22 may be configured to be “non-stick”, that is, resistant to adhesion of cured resin. The non-stick properties may be embodied by a combination of variables such as the chemistry of the build plate 12, its surface finish, and/or applied coatings. In one example, a permanent or semi-permanent non-stick coating may be applied. One nonlimiting example of a suitable coating is polytetrafluoroethylene (“PTFE”). In one example, all or a portion of the build surface 22 may incorporate a controlled roughness or surface texture (e.g. protrusions, dimples, grooves, ridges, etc.) with nonstick properties. In one example, the build table 12 may be made from an oxygen-permeable material.


Optionally, the build plate 12 may be surrounded by a structure which serves as a catchment or retainer for used material. In the illustrated example, a peripheral wall 24 extends around the build plate 12 and defines a catch trough 26 in cooperation with lateral surfaces 28 of the build plate 12.


The stage 14 is a structure defining a planar upper surface 30 which is capable of being oriented parallel to the build surface 22 during the layer orientation and curing steps described below. Collectively, the build plate 12 and the radiant energy apparatus 18 define a “build zone” 31.


Some means are provided for or moving the build plate 12 relative to the stage 14 parallel to the Z-direction. In FIG. 1, these means are depicted schematically as a simple actuator 32 connected between the stage 14 and a stationary support structure 34, with the understanding devices such as pneumatic cylinders, hydraulic cylinders, ballscrew electric actuators, linear electric actuators, or delta drives may be used for this purpose. In addition to or as an alternative to making the stage 14 movable, the build plate 12 could be movable parallel to the Z-direction.


The material depositor 16 may be any device or combination of devices which is operable to apply a layer of resin R over the build plate 12. The material depositor 16 may optionally include a device or combination of devices to define a height in the resin and/or to level the resin R. Nonlimiting examples of suitable material deposition devices include chutes, hoppers, pumps, spray nozzles, spray bars, or printheads (e.g. inkjets).


In the example shown in FIG. 1, the material depositor 16 comprises a supply container 36 with a nozzle 38 and a valve 40. Means may be provided for mixing the resin R to ensure the material is homogenous (including for example, any or all of: new resin R, used resin R, new filler, used filler). Appropriate means are provided for moving the material depositor 16 over the build surface 22, such as the actuator 41 seen in FIG. 6, to deposit resin R. Generally, the resin would also include a filler as described below. Optionally the resin R could be used without a filler, provided the resin has a high enough viscosity so that it will not run off the build surface 22. Means may be provided for leveling the applied resin R. In the illustrated example, In the example shown in FIG. 1, the material depositor 16 includes a recoater 42 which is laterally-elongated structure. This may be rigidly fixed to the supply container 36 or may be connected to a separate actuator (not shown).


Other types of material depositors may be used; for example, one or more rollers (not shown) may be provided to move and level the resin R. Optionally, the resin R may be leveled by vibrating the build plate 12. Another option for depositing resin R would be to use a material depositor incorporated with the build plate 12. For example, FIG. 1 illustrates a supply container 43 which communicates with a pump 45 and a discharge pipe 47 which extends through an opening in the build plate 12. This or similar apparatus could be used to pump resin R to the build surface 22. The resin R could then be leveled using the recoater 42 or another similar mechanism. Another option for depositing resin R would be to use a material depositor incorporated with the stage 14. For example, FIG. 1 illustrates a supply container 49 which communicates with a valve 51 and a discharge pipe 53 which extends through an opening in the stage 14. This or similar apparatus could be used to discharge resin R between the build plate 12 and the stage 14.



FIG. 10 illustrates an example of yet another suitable type of material depositor 116 comprising a supply container 136 with a nozzle 138 and a flow control mechanism 140. Appropriate means are provided for controlled 3D movement of the material depositor 116 over the build surface 22 (e.g. in X, Y, Z axes). FIG. 10 shows an actuator assembly 141 as an example. As explained in more detail below, this type of material depositor 116 is capable of depositing resin R in layers having arbitrary shapes and variable thickness.


The cleaning apparatus 20 may be any device or combination of devices which is effective to remove uncured resin R and other debris from the build surface 22. Nonlimiting examples of suitable cleaning devices include scrapers, brushes, suction or blowing mechanisms, absorbent or sponge-like devices, solvent rinsing equipment, or combinations thereof.


In the example shown in FIG. 1, the cleaning apparatus 20 includes a scraper 44 which is a laterally-elongated structure. It is connected to an actuator 46 (shown schematically in FIG. 6) operable to selectively move the scraper 44 laterally over the build surface 22.


The radiant energy apparatus 18 may comprise any device or combination of devices operable to generate and project radiant energy on the resin R in a suitable pattern and with a suitable energy level and other operating characteristics to cure the resin R during the build process, described in more detail below.


In one exemplary embodiment as shown in FIG. 1, the radiant energy apparatus 18 may comprise a “projector” 48, used herein generally to refer to any device operable to generate a radiant energy patterned image of suitable energy level and other operating characteristics to cure the resin R. As used herein, the term “patterned image” refers to a projection of radiant energy comprising an array of individual pixels. Nonlimiting examples of patterned imaged devices include a DLP projector or another digital micromirror device, a 2D array of LEDs, a 2D array of lasers, or optically addressed light valves. In the illustrated example, the projector 48 comprises a radiant energy source 50 such as a UV lamp, an image forming apparatus 52 operable to receive a source beam 54 from the radiant energy source 50 and generate a patterned image 56 to be projected onto the surface of the resin R, and optionally focusing optics 58, such as one or more lenses.


The radiant energy source 50 may comprise any device operable to generate a beam of suitable energy level and frequency characteristics to cure the resin R. In the illustrated example, the radiant energy source 50 comprises a UV flash lamp.


The image forming apparatus 52 may include one or more mirrors, prisms, and/or lenses and is provided with suitable actuators, and arranged so that the source beam 54 from the radiant energy source 50 can be transformed into a pixelated image in an X-Y plane coincident with the surface of the resin R. In the illustrated example, the image forming apparatus 10 may be a digital micromirror device. For example, the projector 48 may be a commercially-available Digital Light Processing (“DLP”) projector.


As an option, the projector 48 may incorporate additional means such as actuators, mirrors, etc. configured to selectively move the image forming apparatus 52 or other parts of the projector 48, with the effect of rastering or shifting the location of the patterned image 64 on the build surface 22. Stated another way, the patterned image may be moved away from a nominal or starting location. This permits a single image forming apparatus 52 to cover a larger build area, for example. Means for rastering or shifting the patterned image from the image forming apparatus 52 are commercially available. This type of image projection may be referred to herein as a “tiled image”.


In another exemplary embodiment as shown in FIG. 2, the radiant energy apparatus 18 may comprise a “scanned beam apparatus” 60 used herein to refer generally to refer to any device operable to generate a radiant energy beam of suitable energy level and other operating characteristics to cure the resin R and to scan the beam over the surface of the resin R in a desired pattern. In the illustrated example, the scanned beam apparatus 60 comprises a radiant energy source 62 and a beam steering apparatus 64.


The radiant energy source 62 may comprise any device operable to generate a beam of suitable power and other operating characteristics to cure the resin R. Nonlimiting examples of suitable radiant energy sources include lasers or electron beam guns.


The beam steering apparatus 10 may include one or more mirrors, prisms, and/or lenses and may be provided with suitable actuators, and arranged so that a beam 66 from the radiant energy source 62 can be focused to a desired spot size and steered to a desired position in plane coincident with the surface of the resin R. The beam 66 may be referred to herein as a “build beam”. Other types of scanned beam apparatus may be used. For example, scanned beam sources using multiple build beams are known, as are scanned beam sources in which the radiant energy source itself is movable by way of one or more actuators.


The apparatus 10 may include a controller 68. The controller 68 in FIG. 1 is a generalized representation of the hardware and software required to control the operation of the apparatus 10, including some or all of the material depositor 16, the stage 14, the radiant energy apparatus 18, the cleaning apparatus 20, and the various actuators described above. The controller 68 may be embodied, for example, by software running on one or more processors embodied in one or more devices such as a programmable logic controller (“PLC”) or a microcomputer. Such processors may be coupled to sensors and operating components, for example, through wired or wireless connections. The same processor or processors may be used to retrieve and analyze sensor data, for statistical analysis, and for feedback control.


Optionally, the components of the apparatus 10 may be surrounded by a housing 70, which may be used to provide a shielding or inert gas atmosphere using gas ports 72. Optionally, pressure within the enclosure could be maintained at a desired level greater than or less than atmospheric. Optionally, the enclosure 70 could be temperature and/or humidity controlled. Optionally, ventilation of the enclosure 70 could be controlled based on factors such as a time interval, temperature, humidity, and/or chemical species concentration.


The resin R comprises a material which is radiant-energy curable and which is capable of adhering or binding together the filler (if used) in the cured state. As used herein, the term “radiant-energy curable” refers to any material which solidifies in response to the application of radiant energy of a particular frequency and energy level. For example, the resin R may comprise a known type of photopolymer resin containing photo-initiator compounds functioning to trigger a polymerization reaction, causing the resin to change from a liquid state to a solid state. Alternatively, the resin R may comprise a material which contains a solvent that may be evaporated out by the application of radiant energy. The uncured resin R may be provided in solid (e.g. granular) or liquid form including a paste or slurry.


Generally, the resin R should be flowable so that it can be leveled between the build plate 12 and the build surface 22. A suitable resin R will be a material that is relatively thick, i.e. its viscosity should be sufficient that it will not run off of the build plate 12 during the curing process. The composition of the resin R may be selected as desired to suit a particular application. Mixtures of different compositions may be used.


The resin R may be selected to have the ability to out-gas or burn off during further processing, such as the sintering process described above.


The filler may be pre-mixed with resin R, then loaded into the material depositor 16. The filler comprises particles, which are conventionally defined as “a very small bit of matter”. The filler may comprise any material which is chemically and physically compatible with the selected resin R. The particles may be regular or irregular in shape, may be uniform or non-uniform in size, and may have variable aspect ratios. For example, the particles may take the form of powder, of small spheres or granules, or may be shaped like small rods or fibers.


The composition of the filler, including its chemistry and microstructure, may be selected as desired to suit a particular application. For example, the filler may be metallic, ceramic, polymeric, and/or organic. Other examples of potential fillers include diamond, silicon, and graphite. Mixtures of different compositions may be used.


The filler may be “fusible”, meaning it is capable of consolidation into a mass upon via application of sufficient energy. For example, fusibility is a characteristic of many available polymeric, ceramic, glass, and metallic powders.


The proportion of filler to resin R may be selected to suit a particular application. Generally, any amount of filler may be used so long as the combined material is capable of flowing and being leveled, and there is sufficient resin R to hold together the particles of the filler in the cured state.


Examples of the operation of the apparatus 10 will now be described in detail with reference to FIGS. 3-7. It will be understood that, as a precursor to producing a component and using the apparatus 10, the component 74 is software modeled as a stack of planar layers arrayed along the Z-axis. Depending on the type of curing method used, each layer may be divided into a grid of pixels. The actual component 74 may be modeled and/or manufactured as a stack of dozens or hundreds of layers. Suitable software modeling processes are known in the art.


Optionally, the build process may begin by applying a nonstick material to the build surface 22 prior to resin application. For example, a release agent such as polyvinyl alcohol (“PVA”) may be applied to the build surface 22 prior to each layer being built. FIG. 3 shows a release agent “A” being applied to the build surface 22 by a moving spray nozzle 75. In another example, a sacrificial layer having non-stick properties may be applied. FIG. 4 shows a nonstick film “F” (e.g. polymer sheet or film) being laid down on the build surface 22 by moving roller 77. The film F may be removed after a layer is cured as described below. Optionally, to prevent sticking, some means could be provided to supply oxygen through the thickness of the build plate 12, in order to inhibit curing of the resin R immediately adjacent the build surface 22 (oxygen can inhibit the curing of UV-curable resins).


The material depositor 16 is used to apply resin R to the build surface 22. In the example shown in FIG. 5, the valve 40 is open and resin flows over the build plate 12 as the material depositor 16 translates laterally above the build plate 12, and the recoater 42 levels the resin R.


Optionally, different layers may comprise two or more different material combinations of resin R and/or filler. As used herein, the term “material combination” refers to any difference in either of the constituents. So, for example, a particular resin composition mixed with either of two different filler compositions would represent two different material combinations. For example, one layer may comprise a first combination of resin R and filler, and a second layer may comprise a different combination of resin R and filler. Stated another way, any desired resin and any desired filler can be used for any given layer. The different materials may be provided, for example, by providing one or more additional supply containers 78, as seen in FIG. 1.


Optionally, any of the individual layers may comprise two or more material combinations. FIG. 6 illustrates an exemplary layer 80 showing a cross-section of the component 74 superimposed thereupon. The layer 80 is divided into a first section 82 including a first combination of resin R and filler, and a second section 84 including a second combination of resin R and filler. A dashed line 86 indicates the division between the two sections 82, 84. The shape, size, and number of sections, and number of different material combinations within a given layer may be arbitrarily selected. If multiple material combinations are used in one layer, then the deposition steps described above would be carried out for each section of the layer.


Optionally, the layer may have a variable thickness. For example, FIG. 10 illustrates an exemplary layer 180 having some areas (exemplified by section 182) a relatively smaller thickness and other areas (exemplified by section 184) having relatively larger thickness. The layer 180 may also include areas devoid of material (exemplified by open area 186). The shape of the various sections of layer may be arbitrary, as exemplified by the raised section 184. This type of variable-thickness layer may be applied, for example using the material depositor 116 described above.


After the material is deposited, or as an integral part of the deposition staff, the apparatus 10 is positioned to define a selected layer increment. The layer increment is defined by some combination of the thickness that the resin R is applied by the material depositor 16 or 116 (including optionally the operation of the recoater 42), or the operation of the stage 14, or some combination thereof. For example, the stage 14 could be positioned such that the upper surface 30 is just touching the applied resin R, or the stage 14 could be used to compress and displace the resin R to positively define the layer increment. See FIG. 7. The layer increment affects the speed of the additive manufacturing process and the resolution of the component 74. The layer increment can be variable, with a larger layer increment being used to speed the process in portions of a component 74 not requiring high accuracy, and a smaller layer increment being used where higher accuracy is required, at the expense of process speed.


Once the resin R with filler has been applied and the layer increment defined, the radiant energy apparatus 18 is used to cure a cross-section or layer of the component 74 being built.


Where a projector 48 is used, the projector 48 projects a patterned image 56 representative of a cross-section of the component 74 through the build plate 12 to the resin R. Exposure to the radiant energy cures and solidifies the pattern in the resin R. This type of curing is referred to herein as “selective” curing. It will be understood that photopolymers undergo degrees of curing. In many cases, the radiant energy apparatus 18 would not fully cure the resin R. Rather, it would partially cure the resin R enough to “gel” and then a post-cure process (described below) would cure the resin R to whatever completeness it can reach. It will also be understood that, when a multi-layer component is made using this type of resin R, the energy output of the radiant energy apparatus 18 may be carefully selected to partially cure or “under-cure” a previous layer, with the expectation that when the subsequent layer is applied, the energy from that next layer will further the curing of the previous layer. In the process described herein, the term “curing” or “cured” may be used to refer to partially-cured or completely-cured resin R. During the curing process, radiant energy may be supplied to a given layer in multiple steps (e.g. multiple flashes) and also may be supplied in multiple different patterns for a given layer. This allows different amounts of energy to be applied to different parts of a layer.


Once curing of the first layer is complete, the stage 14 is separated from the build plate 12, for example by raising the stage 14 using the actuator 32 (FIG. 8). It is noted that stage 14 and the build plate 12 do not necessarily have to remain parallel during the separation procedure. For example, the build plate 12 could rotate (e.g. using of a pinned joint or a flexure) or through small-scale deformations of the build plate 12. This flexing or rotation could be helpful in separating cured resin from the build plate 12.


The build surface 22 is then cleaned to remove any excess cured or uncured resin R, filler, release agent, nonstick film F, or other debris. For example, this may be done by moving the scraper 44 described above across the build surface 22, as shown in FIG. 9. Optionally, the build plate 12 may be articulated in some way to aid the cleaning process by encouraging debris to slide off. For example, the build plate may be mounted to a pivot 79 and coupled to a tilt actuator 81. The build plate 12 need not remain in the build position in during the cleaning process. For example, in a variation, the build plate 12 may be moved out of the build zone 31 for resin application, moved into the build zone for curing, and then moved out of the build zone 31 for cleaning and resin re-application in subsequent steps. A conventional device such as a manipulator arm or conveyor belt (not shown) could be used to move the build plate for this purpose. It will be understood that in this variation the material depositor 16 and the cleaning apparatus 20 would be positioned outside of the build zone 31. Conventional alignment means (pins, guides, etc.—not shown) may be provided to ensure repeatable positioning of the build plate 12 within the build zone and/or in a loading or cleaning area outside of the build zone.


Optionally, the component 74 and/or the stage 14 may be cleaned to remove uncured resin R, debris, or contaminants between curing cycles. The cleaning process may be used for the purpose of removing resin R that did not cure or resin R that did not cure enough to gel during the selective curing step described above. For example, it might be desired to clean the component 74 and/or the stage 14 to ensure that no additional material or material contamination is present in the final component 74. For example, cleaning could be done by contacting the component 74 and/or the stage 14 with a cleaning fluid such as a liquid detergent or solvent. FIG. 11 shows one example of how this could be accomplished by providing a cleaning vat 391 containing the cleaning fluid. The cleaning vat 391 comprises a floor surrounded by a peripheral wall. In use, the cleaning fluid 97 would be placed in the cleaning vat 391. A suitable mechanism (not shown) would be used to move the cleaning vat 391 into position under the stage 14. The stage 14 would then be lowered to bring the component 74 into contact with the cleaning fluid 97. Upon completion of the cleaning cycle, the stage 14 would then be raised to move the component 74 clear of the cleaning vat 391. FIG. 11 illustrates several different possible means for producing this relative motion. As one example, a mechanical mixing blade 392 may be used to agitate the cleaning fluid 97. As another example, an ultrasonic transducer 394 coupled to the cleaning vat 391 may be used to produce ultrasonic waves in the cleaning fluid 97. As another example, one or more nozzles 396 may be used to introduce jets of flowing cleaning fluid 97. As yet another example, appropriate actuators (not shown) may be used to produce relative motion of the stage 14 and the cleaning vat 391. Optionally, the cleaning process may include a “drying” step in which the freshly cleaned component 74 is positioned within an empty cleaning vat 491 (FIG. 12) with air nozzles 492 which would be used to direct jets of air at the component 74 for the purpose of blowing off or evaporating the cleaning fluid. Depending on the particular circumstances, the “drying” step may be sufficient to clean the component 74 in and of itself. Subsequent to the cleaning step, the cleaning vat would be moved away from the stage 14.


Once the build surface 22 is clean, resin R with filler is again applied, and another layer increment is defined. The projector 48 again projects a patterned image 56. Exposure to the radiant energy selectively cures resin R as described above, and joins the new layer to the previously-cured layer above. This cycle of applying resin R, incrementing a layer, and then selectively curing is repeated until the entire component 74 is complete.


Where a scanned beam apparatus is used instead of a projector, the radiant energy source 68 emits a beam 66 and the beam steering apparatus 70 is used to cure the resin R by steering a focal spot of the build beam 66 over the exposed resin R in an appropriate pattern. The cycle of cleaning, applying resin R, and defining a layer increment is repeated. The radiant energy source 68 again emits a build beam 66 and the beam steering apparatus 70 is used to steer the focal spot of the build beam 66 over the exposed resin R in an appropriate pattern. The exposed layer of the resin R is exposed to the radiant energy which selectively cures resin R as described above, and joins it to the previously-cured layer above. This cycle of incrementing a layer, applying resin R, and then selectively curing is repeated until the entire workpiece 74 is complete.


Optionally, a scanned beam apparatus may be used in combination with a projector. For example, a scanned beam apparatus may be used to apply radiant energy (in addition to that applied by the projector) by scanning one or multiple beams over the surface of the exposed particulate material P. This may be concurrent or sequential with the use of the projector.


The accuracy of either process, defined as the smallest component feature size which can be produced, is limited mainly by the particle size of the filler and the resolution of the projector 48 or scanned beam apparatus 60.


Any of the curing methods described above results in a component 74 in which the filler (if used) is held in a solid shape by the cured resin R. This component may be usable as an end product for some conditions. Subsequent to the curing step, the component 74 may be removed from the stage 14.


If the end product is intended to be composed of the filler (e.g. to be purely ceramic, glass, metallic, diamond, silicon, graphite, etc., the component 74 may be treated to a conventional sintering process to burn out the resin R and to consolidate the remaining particles. Optionally, a known infiltration process may be carried out during or after the sintering process, in order to fill voids in the component with a material having a lower melting temperature than the filler. The infiltration process improves component physical properties.


The method described herein has several advantages over the prior art. In particular, it eliminates a major pathway for build failures in vat-based photopolymerization. It also potentially has lower cost, less material waste, and higher process speed compared to prior art tape casting methods.


The foregoing has described a method and apparatus for additive manufacturing. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive.


Each feature disclosed in this specification (including any accompanying claims, abstract and drawings) may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.


The invention is not restricted to the details of the foregoing embodiment(s). The invention extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.

Claims
  • 1. A method for producing a component layer-by-layer, comprising the steps of: depositing a radiant-energy-curable resin on a build surface oriented parallel to a plane extending in an x-direction and a y-direction of a build plate with the build surface being positioned vertically above one or more lateral surfaces that bound the build surface, the build surface further including at least a portion that is transparent through a material depositor that translates laterally above the build plate from an initial position on a first lateral side of the build plate along a first axis parallel to the build plate in the x-direction at a first distance above the build plate in a z-direction;leveling the resin;selectively curing the resin while the build plate is positioned in a build zone defined between a stage and a radiant energy apparatus, using an application of radiant energy, from the radiant energy apparatus, in a specific pattern to define a geometry of a cross-sectional layer of the component;moving the stage relatively apart from the build plate in the z-direction to separate the component from the build surface;translating a scraper laterally along a second axis parallel to the build plate in the x-direction and at a second distance above the build plate in the z-direction to remove resin that remains on the build surface from an initial position on a second lateral side of the build plate while the build plate remains generally stationary within the build zone, the second lateral side on an opposing side of the build plate from the first lateral side, wherein the second distance is less than the first distance during each of the depositing, defining, curing, moving, and cleaning steps; andrepeating the steps of depositing, defining, curing, moving, and cleaning for a plurality of layers until the component is complete.
  • 2. The method of claim 1, wherein the resin is deposited such that the resin in at least one of the layers has a different composition than the resin in another one of the layers.
  • 3. The method of claim 1, wherein at least one of the layers is divided into two or more sections, and the resin is applied such that the resin in at least one of the sections has a different composition than the resin in another one of the sections.
  • 4. The method of claim 1, wherein the application of radiant energy is applied by projecting a patterned image comprising a plurality of pixels.
  • 5. The method of claim 4, wherein the patterned image is shifted during the application of radiant energy.
  • 6. The method of claim 4, wherein additional radiant energy is applied by scanning at least one build beam over the surface of the resin.
  • 7. The method of claim 1, wherein the radiant energy is applied by scanning at least one build beam over the surface of the resin.
  • 8. The method of claim 1, wherein a non-stick coating is applied to the build surface prior to the step of depositing the resin on the build surface.
  • 9. The method of claim 1, wherein a non-stick film is applied to the build surface before the step of curing and is removed after the curing step is completed.
  • 10. The method of claim 1, further comprising sintering the component to burn out the cured resin and consolidate the filler.
  • 11. A method for producing a component layer-by-layer, comprising the steps of: depositing a radiant-energy-curable resin on a build plate oriented parallel to a plane extending in an x-direction and a y-direction from a material depositor by translating the material depositor over the build plate through actuation of a first actuator positioned on a first side of the build plate in the y-direction, wherein the build plate includes at least a portion which is transparent, and wherein the build plate is positioned vertically above one or more lateral surfaces that bound the build surface;leveling the resin;selectively curing the resin while the build plate is positioned in a build zone defined between a stage above the build plate and a radiant energy apparatus below the build plate, using an application of radiant energy, from the radiant energy apparatus, in a specific pattern to define a geometry of a cross-sectional layer of the component;moving the stage relatively apart from the build plate in a z-direction to separate the component from the build plate;translating a cleaning apparatus over the build plate through actuation of a second actuator positioned on a second side of the build plate in the y-direction to remove the resin that remains on the build plate, wherein the second side of the build plate is opposite the first side in the y-direction, and wherein each of the first and second actuators extends beyond each of first and second opposing peripheral walls of the build plate in the x-direction; andrepeating the steps of depositing, defining, curing, moving, and cleaning for a plurality of layers until the component is complete.
  • 12. The method of claim 11, further comprising: applying a nonstick film to the build plate prior to depositing the radiant-energy-curable resin on the build plate.
  • 13. The method of claim 12, wherein the resin that remains on the build plate includes any excess cured or uncured resin R and the nonstick film.
  • 14. The method of claim 11, wherein using the cleaning apparatus to remove the resin that remains on the build plate further comprises articulating the build plate with actuation of a tilt actuator to encourage debris to slide off the build plate.
  • 15. A method for producing a component layer-by-layer, comprising the steps of: activating a pump to pump a radiant-energy-curable resin onto a build plate from a supply container, the build plate including a transparent portion positioned above one or more lateral surfaces of the build plate that bound the transparent portion;leveling the resin;selectively curing the resin while the build plate is positioned in a build zone defined between a stage above the build plate and a radiant energy apparatus below the build plate, using an application of radiant energy, from the radiant energy apparatus, in a specific pattern to define a geometry of a cross-sectional layer of the component;moving the build plate and the stage relatively apart to separate the component from the build plate;collecting excess resin in a trough positioned along at least first and second opposing lateral sides of the build plate by translating a cleaning apparatus within the build zone and over the trough, wherein the trough is defined between a lateral surface of the build plate and a peripheral wall of the build plate; andrepeating the steps of depositing, defining, curing, moving, and cleaning for a plurality of layers until the component is complete.
  • 16. The method of claim 15, wherein the build plate is supported by a pivot and a tilt actuator, and wherein collecting excess resin further comprises articulating the build plate with actuation of the tilt actuator to encourage debris to slide off the build plate.
  • 17. The method of claim 1, wherein the second distance remains constant as the radiant-energy-curable resin is deposited on the build plate.
  • 18. The method of claim 1, wherein the pump is coupled with a discharge pipe to direct the resin from the supply container to the build surface.
  • 19. The method of claim 1, wherein the discharge pipe extends through an opening defined by the build plate.
US Referenced Citations (204)
Number Name Date Kind
4575330 Hull Mar 1986 A
4752498 Fudim Jun 1988 A
5026146 Hug et al. Jun 1991 A
5031120 Pomerantz et al. Jul 1991 A
5096530 Cohen Mar 1992 A
5104592 Hull et al. Apr 1992 A
5126529 Weiss et al. Jun 1992 A
5174931 Almquist et al. Dec 1992 A
5182055 Allison et al. Jan 1993 A
5192559 Hull et al. Mar 1993 A
5203944 Prinz et al. Apr 1993 A
5204055 Sachs et al. Apr 1993 A
5207371 Prinz et al. May 1993 A
5258146 Almquist et al. Nov 1993 A
5340656 Sachs et al. Aug 1994 A
5387380 Cima et al. Feb 1995 A
5432045 Narukawa et al. Jul 1995 A
5454069 Knapp et al. Sep 1995 A
5496682 Quadir et al. Mar 1996 A
5626919 Chapman et al. May 1997 A
5650260 Onishi Jul 1997 A
5660621 Bredt Aug 1997 A
5665401 Serbin et al. Sep 1997 A
5697043 Baskaran et al. Dec 1997 A
5718279 Saoth et al. Feb 1998 A
5807437 Sachs et al. Sep 1998 A
5851465 Bredt Dec 1998 A
5940674 Sachs et al. Aug 1999 A
5985204 Otsuka et al. Nov 1999 A
6051179 Hagenau Apr 2000 A
6146567 Sachs et al. Nov 2000 A
6193923 Leyden et al. Feb 2001 B1
6200646 Neckers et al. Mar 2001 B1
6206672 Grenda Mar 2001 B1
6363606 Johnson et al. Apr 2002 B1
6376148 Liu et al. Apr 2002 B1
6401002 Jang et al. Jun 2002 B1
6403002 van der Geest Jun 2002 B1
6436520 Yamamoto Aug 2002 B1
6471800 Jang et al. Oct 2002 B2
6500378 Smith Dec 2002 B1
6596224 Sachs et al. Jul 2003 B1
6780368 Liu et al. Aug 2004 B2
6838035 Ederer et al. Jan 2005 B1
6850334 Gothait Feb 2005 B1
6896839 Kubo et al. May 2005 B2
6930144 Oriakhi Aug 2005 B2
6966960 Boyd et al. Nov 2005 B2
6986654 Imiolek et al. Jan 2006 B2
7008209 Iskra et al. Mar 2006 B2
7052263 John May 2006 B2
7087109 Bredr et al. Aug 2006 B2
7270528 Sherwood Sep 2007 B2
7300613 Sano et al. Nov 2007 B2
7455804 Patel et al. Nov 2008 B2
7520740 Wahlstrom et al. Apr 2009 B2
7550518 Bredt et al. Jun 2009 B2
7578958 Patel et al. Aug 2009 B2
7614866 Sperry et al. Nov 2009 B2
7636610 Schillen et al. Dec 2009 B2
7767132 Patel et al. Aug 2010 B2
7783371 John et al. Aug 2010 B2
7785093 Holmboe et al. Aug 2010 B2
7790093 Shkolnik et al. Sep 2010 B2
7795349 Bredt et al. Sep 2010 B2
7815826 Serdy et al. Oct 2010 B2
7867302 Nevoret et al. Jan 2011 B2
7892474 Shkolnik et al. Feb 2011 B2
7894921 John et al. Feb 2011 B2
8003040 El-Siblani Aug 2011 B2
8071055 Newcombe Dec 2011 B2
8110135 El-Siblani Feb 2012 B2
8126580 El-Siblani et al. Feb 2012 B2
8157908 Williams Apr 2012 B2
8185229 Davidson May 2012 B2
8096262 Ederer et al. Jun 2012 B2
8211226 Bredt et al. Jul 2012 B2
8444903 Lyons et al. May 2013 B2
8475946 Dion et al. Jul 2013 B1
8506862 Giller et al. Aug 2013 B2
8506870 Hochsmann et al. Aug 2013 B2
8568649 Balistreri et al. Oct 2013 B1
8616872 Matsui et al. Dec 2013 B2
8623264 Rohner et al. Jan 2014 B2
8636494 Gothait et al. Jan 2014 B2
8636496 Das et al. Jan 2014 B2
8666142 Shkolnik et al. Mar 2014 B2
8715832 Ederer et al. May 2014 B2
8741194 Ederer et al. Jun 2014 B1
8741203 Liska et al. Jun 2014 B2
8761918 Silverbrook Jun 2014 B2
8815143 John et al. Aug 2014 B2
8844133 Fuller Sep 2014 B2
8845316 Schillen et al. Sep 2014 B2
8845953 Balistreri et al. Sep 2014 B1
8876513 Lim et al. Nov 2014 B2
8915728 Mironets et al. Dec 2014 B2
8926304 Chen Jan 2015 B1
8932511 Napadensky Jan 2015 B2
8968625 Tan Mar 2015 B2
8991211 Arlotti et al. Mar 2015 B1
8998601 Busato Apr 2015 B2
9067359 Rohner et al. Jun 2015 B2
9101321 Kiesser Aug 2015 B1
9205601 DeSimone et al. Dec 2015 B2
9211678 DeSimone et al. Dec 2015 B2
9216546 DeSimone et al. Dec 2015 B2
9233504 Douglas et al. Jan 2016 B2
9248600 Goodman et al. Feb 2016 B2
9259880 Chen Feb 2016 B2
9327385 Webb et al. May 2016 B2
9360757 DeSimone et al. Jun 2016 B2
9364848 Silverbrook Jun 2016 B2
9403322 Das et al. Aug 2016 B2
9403324 Ederer et al. Aug 2016 B2
9415544 Kerekes et al. Aug 2016 B2
9429104 Fuller Aug 2016 B2
9434107 Zenere Sep 2016 B2
9453142 Rolland et al. Sep 2016 B2
9463488 Ederer et al. Oct 2016 B2
9469074 Ederer et al. Oct 2016 B2
9487443 Watanabe Nov 2016 B2
9498920 DeSimone et al. Nov 2016 B2
9511546 Chen et al. Dec 2016 B2
9517591 Yoo et al. Dec 2016 B2
9517592 Yoo et al. Dec 2016 B2
9527244 El-Siblani Dec 2016 B2
9529371 Nakamura Dec 2016 B2
9539762 Durand et al. Jan 2017 B2
9545753 Costabeber Jan 2017 B2
9561622 Das et al. Feb 2017 B2
9578695 Jerby et al. Feb 2017 B2
9579852 Okamoto Feb 2017 B2
9592635 Ebert et al. Mar 2017 B2
9604411 Rogren Mar 2017 B2
9632420 Allanic Apr 2017 B2
9632983 Ueda et al. Apr 2017 B2
9636873 Joyce May 2017 B2
9649812 Hartmann et al. May 2017 B2
9649815 Atwood et al. May 2017 B2
9670371 Pervan et al. Jun 2017 B2
9676143 Kashani-Shirazi Jun 2017 B2
9676963 Rolland et al. Jun 2017 B2
9682166 Watanabe Jun 2017 B2
9682425 Xu et al. Jun 2017 B2
20040060683 Sercombe Apr 2004 A1
20070075460 Wahlstrom Apr 2007 A1
20080170112 Hull et al. Jul 2008 A1
20090304952 Kritchman Dec 2009 A1
20100003619 Das et al. Jan 2010 A1
20120195994 El-Siblani Aug 2012 A1
20140103581 Das et al. Apr 2014 A1
20140275317 Moussa Sep 2014 A1
20150102531 El-Siblani et al. Apr 2015 A1
20150140152 Chen May 2015 A1
20150145174 Comb May 2015 A1
20150224710 El-Siblani Aug 2015 A1
20150231831 El-Siblani Aug 2015 A1
20150355553 Allanic Dec 2015 A1
20160031010 O'Neill et al. Feb 2016 A1
20160046075 DeSimone et al. Feb 2016 A1
20160096332 Chen et al. Apr 2016 A1
20160107387 Ooba et al. Apr 2016 A1
20160129631 Chen et al. May 2016 A1
20160193785 Bell et al. Jul 2016 A1
20160221262 Das et al. Aug 2016 A1
20160332386 Kuijpers Nov 2016 A1
20160361872 El-Siblani Dec 2016 A1
20170008234 Cullen et al. Jan 2017 A1
20170008236 Easter et al. Jan 2017 A1
20170057177 Ferguson et al. Mar 2017 A1
20170066196 Beard et al. Mar 2017 A1
20170100895 Chou et al. Apr 2017 A1
20170100897 Chou et al. Apr 2017 A1
20170102679 Greene et al. Apr 2017 A1
20170113409 Patrov Apr 2017 A1
20170120332 DeMuth et al. May 2017 A1
20170120333 DeMuth et al. May 2017 A1
20170120334 DeMuth et al. May 2017 A1
20170120335 DeMuth et al. May 2017 A1
20170120336 DeMuth et al. May 2017 A1
20170120387 DeMuth et al. May 2017 A1
20170120518 DeMuth et al. May 2017 A1
20170120529 DeMuth et al. May 2017 A1
20170120530 DeMuth et al. May 2017 A1
20170120536 Brunermer May 2017 A1
20170120537 DeMuth et al. May 2017 A1
20170120538 DeMuth et al. May 2017 A1
20170123222 DeMuth et al. May 2017 A1
20170123237 DeMuth et al. May 2017 A1
20170136688 Knecht et al. May 2017 A1
20170136708 Das et al. May 2017 A1
20170157848 Teicher Jun 2017 A1
20170173865 Dikovsky et al. Jun 2017 A1
20170182708 Lin Jun 2017 A1
20170190120 Bloome et al. Jul 2017 A1
20170297108 Gibson et al. Oct 2017 A1
20170297109 Gibson et al. Oct 2017 A1
20180200948 Kuijpers Jul 2018 A1
20190016046 Liu Jan 2019 A1
20190143601 Jung May 2019 A1
20190232560 Thompson Aug 2019 A1
20200282645 Vermuelen Sep 2020 A1
20210291446 Coward Sep 2021 A1
Foreign Referenced Citations (5)
Number Date Country
9806560 Feb 1998 WO
2006077665 Jul 2006 WO
2012106256 Aug 2012 WO
2015107066 Jul 2015 WO
2016112084 Jul 2016 WO
Non-Patent Literature Citations (5)
Entry
Tassilo Mortiz, Saeed Maleksaeedi, Additive Manufacturing of Ceramic Components, Additive Manufacturing , 2018, Sceince Direct , Ch-4.2.2.1, pp. 131-132. (Year: 2018).
Nussbaum et al., Evaluation of Processing Variables in Large Area Polymer Sintering of Single Layer Components, Solid Freeform Fabrication 2016: Proceedings of the 27th Annual International Solid Freeform Fabracation Symposium—An Additive Manufacturing Conference Reviewed Paper, University of South Florida, Tampa, Florida, US.
Matthews et al., Diode-Based Additive Manufacturing of Metals Using an Optically-Addressable Light Valve, Optic Express Research Article, May 10, 2017, vol. 25, No. 10, Lawrence Livermore National Laboratory, Livermore, California, US.
Lee et al., Large-Area Compatible Laser Sintering Schemes with a Spatially Extended Focused Beam, www.mdpi.com/journal/micromachines, Article 11 May 2017, Micromachines, Seoul University, Seoul, Korea.
International Search Report and Written Opinion issued in connection with corresponding PCT Application No. PCT/US18/49028 dated Dec. 19, 2018.
Related Publications (1)
Number Date Country
20190126533 A1 May 2019 US