Techniques for removing powder and / or particles from a powder bed
By using rotating drum equipment with multiple compartments, the alternating supply of negative and positive pressures is used to solve the uncertainty and waste of powder and particle removal in the powder bed, efficient and accurate powder removal is achieved, and the quality of the workpiece is improved.
Patent Information
- Application Number
- JP2023564626
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-21
- Filing Date
- 2022-04-20
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2042-04-20
AI Technical Summary
The prior art has powder waste and uncertainty when effectively removing powder and/or particles from the powder bed, and it is difficult to accurately control the amount of powder removal, affecting the quality of the workpiece.
A rotating drum device with multiple compartments has a breathable outer wall and a built-in air pressure supply port to achieve precise powder and pellet removal of the powder bed through alternating supply of negative and positive pressures.
Reliable and well-defined powder and granule removal of the powder bed is achieved, reducing powder waste, improving workpiece quality, and avoiding impurities in the powder bed.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to an apparatus and method for removing powder and / or particles from a powder bed. The techniques of the present disclosure may be utilized in particular in conjunction with selective electron beam melting, selective laser melting, or selective laser sintering to remove a defined amount of powder from a powder bed. [Background technology]
[0002] In productive processes for producing three-dimensional workpieces, in particular in productive layer-build-up processes, it is known to apply a molding compound consisting of initially amorphous or geometrically neutral raw materials (e.g. raw material powders) layer by layer to a carrier and solidify (e.g. by melting or sintering) by site-selective irradiation to finally obtain a workpiece of the desired shape. The irradiation can be carried out by electromagnetic radiation, for example in the form of electron or laser radiation. In the initial state, the molding compound is initially in the form of a granular, powdered or liquid molding compound and can be selectively, or in other words site-selectively solidified as a result of the irradiation. The molding compound can comprise, for example, ceramic, metal or plastic materials and also mixtures of these materials. One variant of the productive layer-build-up process concerns so-called laser beam melting in a powder bed. In the case of laser beam melting, in particular metal and / or ceramic raw material powder materials are solidified while being irradiated with a laser beam to give a three-dimensional workpiece.
[0003] To produce the individual workpiece layers, it is also known to apply raw material powder material in the form of a raw material powder layer to a carrier and irradiate it selectively and according to the surface shape of the workpiece layer to be produced. The laser radiation penetrates into the raw material powder material and solidifies it, for example as a result of heating, which causes melting or sintering. Once the workpiece layer has solidified, a new layer of raw raw material powder material is applied to the already produced workpiece layer. Known application apparatuses or powder application devices can be used for this purpose. The now uppermost, not yet processed raw material powder layer is then irradiated again. As a result, the workpiece is built up successively layer by layer, each layer characterizing the cross-sectional area and / or the contour of the workpiece. In this connection, it is also known to produce the workpiece substantially automatically with the aid of CAD or equivalent workpiece data.
[0004] It is understood that within the scope of the present invention, all of the above described aspects may be provided.
[0005] It is further known that at least two materials can be combined in a building operation to produce a workpiece made of these at least two materials. This is done in particular by applying alternating powder layers of different materials. If an individual material is applied over the entire layer, the unsolidified parts of the previous powder layer of the other material must be removed before a new coating is applied. In order to avoid contamination of the subsequently applied powder, it is desirable to remove the powder of the previous layer as completely as possible.
[0006] Currently, it is known to suck off the previous layer with a funnel. However, this step is usually carried out in an undefined manner and is accompanied by powder losses. This can mean that powder has to be added, for example, in 100 times the amount. If a powder mixture is drawn off to a depth of 3 mm for every 30 μm layer, this results in a waste powder equal to 100 L for a component with a cylinder volume of 1 L, or a mixed powder that can no longer be used or that subsequently has to be reprocessed with great effort (for example, cleaned and separated into the original at least two powder materials).
[0007] Such a technique that allows for a defined and reliable removal of powder is desirable.
[0008] Furthermore, conventional beam melting (i.e., using a single material) can also result in the deposition of particles on the powder bed surface, such as weld spatters produced during solidification of the material, which can be disruptive during the subsequent deposition of a new powder layer and during the solidification of this new powder layer, and it is therefore desirable to remove these particles from the powder bed.
[0009] Thus, it is desirable to have a technique that allows for reliable removal of particles from a powder bed, specifically without removing large amounts of additional material. Summary of the Invention [Problem to be solved by the invention]
[0010] It is therefore an object of the present invention to provide a technique for removing powder and / or particles from a powder bed that solves at least one of the above problems and related problems. [Means for solving the problem]
[0011] This problem is solved by an apparatus for removing powder and / or particles from a powder bed having the features of claim 1 and by a method having the features of claim 15.
[0012] Thus, according to a first aspect, the present invention relates to an apparatus for removing powder and / or particles from a powder bed. The apparatus comprises a rotatably supported roller having a porous outer wall and a plurality of chambers formed within the roller. The apparatus further comprises a negative pressure supply port configured to supply negative pressure to at least one of said chambers at a given time. At least one of the chambers has an opening configured to supply negative pressure to the chamber. Effect of the Invention
[0013] The powder bed may be one or more layers of raw material powder deposited on a carrier, in particular for selective laser melting or selective laser sintering. The powder may comprise, for example, metal powder, ceramic powder, and / or plastic powder. In particular, the device may be configured to remove different types of powder, and in particular powders formed from different materials. The removal may be performed layer by layer.
[0014] The roller may be rotatably supported so that it can rotate relative to the roller support. The device may include a drive, which is configured to rotate the roller. In particular, for this purpose, an electrically driven actuator, for example a servomotor or a stepper motor, may be provided. Instead of an electrical drive, the roller may also be brought into rotational motion by negative and / or positive pressure, using ports for negative or positive pressure as described below. In yet another embodiment, the roller may be mechanically rolled on the powder bed, the rotational motion being brought about by friction between the powder bed and / or the build chamber floor running alongside the powder bed on the one hand, and the roller on the other hand.
[0015] In case an electric drive is provided, a control unit may be provided for controlling the electric drive. The control unit may be configured to drive the roller at an adjustable rotational speed. Furthermore, the apparatus may include a horizontal motion device configured to move the roller horizontally across the powder bed (translational motion). Thus, the roller can perform rotational and translational motions. The horizontal motion device may include, for example, an electric actuator (e.g. a motor). The horizontal motion device may be controlled by the control unit.
[0016] The control unit may be configured to adjust the rotational movement of the roller and the translational movement of the roller, such that the translational movement corresponds to the rotational movement on the outer wall of the roller. In this way, the roller can remove the same thickness of the powder layer that is deposited on the roller as a result of the suction. Furthermore, the control unit can also control the rotation of the roller to be faster or slower, allowing different rotational speeds relative to the translational speed. In this way, the amount of powder removed by the roller from the powder bed can be adjusted.
[0017] Furthermore, the apparatus may include a vertical movement device for adjusting the vertical position of the roller. The vertical position here corresponds to a height above the powder bed. The vertical movement device may also preferably be controlled by a control unit. The control unit may be configured to adjust the vertical position of the roller such that the height below the roller corresponds to the height of the powder bed. The height of the roller thus corresponds to such a height below which the roller rolls or will roll on the powder bed. In other words, the roller rests on the powder bed. However, the vertical position of the roller may also be adjusted such that there is a constant and predetermined distance between the roller and the powder bed during the operation of the roller. In this case, the suction force of the roller can suck the powder over such a distance. Through the control of the negative pressure generation, further adjustment of the suction force is possible.
[0018] The above and below explanations also apply to the suction of particles (specifically melt splash) from the upper side of the powder bed. The roller can be configured to not only remove powder from the powder bed surface, but also larger particles. Furthermore, it is conceivable that the height and / or suction force of the roller is adjusted such that the roller removes mainly or exclusively larger particles (i.e. particles larger than the powder used) from the powder bed surface.
[0019] The porous outer wall of the roller is porous in the sense that it allows some gas to pass through, but is impermeable to powders and / or particles (above a certain diameter). For example, the minimum diameter of the powder may be 5-30 μm. The outer wall of the roller may be configured to have a pore size of less than 10 μm or less than 5 μm. Roughly speaking, the pore size of the roller may be such that the roller is impermeable to the powders used. The roller may have as its porous outer wall some kind of surface filter, in particular a membrane or a coated fabric. The roller may further have several layers, for example a support grid arranged under the outermost layer, and / or a coarse-pored structure, for example a sponge structure, for a uniform pressure distribution on the outer wall.
[0020] In a preferred embodiment, the chambers formed inside the roller are fixed to the roller. In this case, the chambers are fixedly connected to the roller in that the rotational movement (i.e., the rotational motion) of the roller causes the rotational movement of the chambers in the roller. In other words, the chambers formed in the roller may be rotatably and fixedly connected to the roller. Thus, the chambers rotate with the roller. A fixed connection thus does not mean that the inner wall of the chamber must be mechanically connected (e.g., by welding, gluing, etc.) to the outer wall of the roller. Rather, a fixed connection simply means that there is a rigid mechanical connection between the roller and the chambers. This can be achieved, for example, by fastening the outer wall of the roller and the inner partition of the chamber to the same rotatably supported shaft, or even if the roller itself consists of a flexible medium stretched over a framework formed by the chambers.
[0021] As an alternative to a fixedly rotatably coupled chamber, the rollers may be movable independently of the chamber, and in particular the chamber in this case may be configured not to rotate. In this case, the rollers are rotated above the chamber. Additionally, the rollers may be formed from a flexible media web, which is driven above the chamber. For this purpose, a support grid structure may be provided over which the web moves.
[0022] For the purposes of this application, any bearing of a roller that returns the outer wall to its initial position along a closed path of movement is understood to be rotatably supported. It can be easily recognized that a roller in the sense of this application does not necessarily have to have a cylindrical shape, but can have, for example, a polygonal cross section, or, in the case of a material web, does not have to have a fixed shape per se, but acquires this shape due to the type of stretching.
[0023] The openings of one or more chambers may be provided, for example, in the form of circular holes. The openings of the chambers may be located in a wall of each of the chambers that is not formed by the porous outer wall of the roller. For example, the openings of the chambers may be located in a wall of each of the chambers that bounds the elongated chamber at one end. Alternatively or additionally, the openings may be provided in an inwardly directed wall, for example in a centrally located hollow shaft. Each of the chambers may have one or more (for example, two) openings.
[0024] The apparatus further includes a negative pressure supply port configured to supply negative pressure to at least one of the chambers at a given time, where the negative pressure is supplied through an opening in the respective chamber.
[0025] The ports may include tubes or hoses. The ports may be configured to contact the openings of the respective chambers at a given time. The term "given time" as used herein is intended to mean any time during the rotational movement of the roller. In this context, "given time" defines a snapshot, and there are previous and subsequent time points at which, for example, different chambers of the plurality of chambers may be in contact. The negative pressure may be suitable to draw powder from the powder bed to the porous outer wall of the roller.
[0026] The chambers may extend along the axis of rotation of the roller, and each of the chambers may be bounded by a section of the porous outer wall.
[0027] The chambers are preferably defined by a volume and by walls (chamber walls) which border the volume. As mentioned above, the porous outer wall of the roller forms part of these chamber walls. In other words, each of the chambers may have a wall which is a section of the porous outer wall. In addition, one or more partition walls may be provided to separate the chambers from one another. The chambers may thus be elongated along the axis of rotation of the roller. Each of the chambers may have a porous outer wall extending along the axis of rotation.
[0028] It is also conceivable that at least one chamber is provided which has only a very small volume or no volume at all within the meaning of the present application, thus forming an aperture chamber. The aperture chamber is in this case bounded by a porous outer wall on the one hand and by a solid wall on the other hand. The solid wall may be in direct contact with the porous outer wall. Preferably, the fixed wall may be stationary, and the porous roller may move alongside the fixed wall. In this embodiment, the aperture chamber may have an extension along the circumference of the roller of more than 0.5 cm, in particular more than 1 cm, in particular more than 3 cm. This allows for a lower negative pressure to be formed in the center of the aperture chamber than in the adjacent chambers.
[0029] The apparatus may further include a suction device for sucking up powder picked up by the roller, the suction device being positioned opposite one of the chambers of the roller that is not supplied with negative pressure at a given time.
[0030] The suction device may, for example, include an opening for sucking the powder from the roller. Furthermore, the suction device may be connected to a device for generating a negative pressure. This may, for example, be the same device that provides the negative pressure to at least one chamber of the roller. The apparatus may further include a collection container for collecting the powder sucked up by the suction device. Furthermore, the apparatus may include a separation device for separating the sucked up powder from the gas flow. The separated powder may be led into the collection container. The collection container may further be formed by an overflow container provided in the production device (plant) containing the suction device to receive the excess powder deposited during the layer production. In addition to the suction device, the apparatus may have a brush or may include a brush or a scraper. The brush or scraper again detaches the powder sucked up on the roller so that it can be sucked up by the suction device.
[0031] The negative pressure supply port can be fixedly coupled to the support of the roller. The chambers can be rotatably connected to the roller, and each chamber can have an opening configured to supply positive or negative pressure to the chamber. The supplies and chambers can be configured such that the chambers are supplied with negative pressure during rotation of the roller.
[0032] The apparatus may further include a positive pressure supply port configured to supply positive pressure at a given time to at least one of the chambers that is not supplied with negative pressure at a given time through an opening in the chamber.
[0033] The positive pressure supply port may be fixedly coupled to a support for the roller. The supply and chamber may be configured such that the chamber is alternately supplied with negative and positive pressures during rotation of the roller.
[0034] The chamber which is supplied with positive pressure at a given time can be arranged opposite the suction device, in which case the powder is, as it were, blown from the roller into the suction device, onto which the powder has been removed, new powder can now be sucked in by negative pressure and incorporated.
[0035] As mentioned above, the positive and negative pressure supply ports can be fixedly coupled to the support of the roller and configured such that the chamber is alternately supplied with negative and positive pressures as the roller rotates.
[0036] In other words, the rotational movement of the roller is relative to the negative pressure supply port and, if present, the positive pressure supply port. The alternating supply of positive and negative pressure means that any selected chamber will be supplied with negative pressure at a given time, with positive pressure at a later time, and then with negative pressure again.
[0037] The apparatus is configured such that, during rotation of the roller, each chamber is supplied with negative pressure by contacting the opening of the chamber once with the negative pressure supply port, and each chamber is supplied with positive pressure by contacting the opening once with the positive pressure supply port.
[0038] The apparatus can also be constructed so that the chamber has several different negative and positive pressure supply ports.
[0039] The roller may be formed in a cylindrical shape and may have a single or multiple openings provided in the bottom surface of the cylinder.
[0040] Thus, an opening may be provided in the bottom surface of the first end of the roller, in addition, a further opening may be provided in a further (opposite) bottom surface of the cylinder for each of the chambers.
[0041] Instead of providing the openings in the bottom surface of the cylinder formed by the roller, the openings can also be provided in the porous outer wall of the cylinder. These openings are then oriented radially outwards. In this case, these ports can be integrated into the support of the roller and can be oriented radially inwards. In a further embodiment, the openings of the chambers can also be oriented radially inwards (towards the axis of rotation of the roller). In this case, an internal shaft can be provided through which the cavity for the negative pressure extends, rigidly connected to the support. The port for the negative pressure can then be oriented radially outwards. Furthermore, the cavity for the positive pressure can extend in this shaft. The cavity for the positive pressure can then be oriented radially outwards. The openings for the negative and positive pressure can also be provided in some of the projecting walls. The openings for the negative pressure can be provided in a different wall or in the same wall as the openings for the positive pressure, which are different from these openings. Openings for negative pressure may be provided in the bottom surface of the roller cylinder at a first radius, and openings for positive pressure, different from these openings, may be provided in the bottom surface of the roller cylinder at a second radius.
[0042] At least three chambers may be formed inside the roller, at least one chamber being constantly supplied with negative pressure and two chambers being at least temporarily supplied with negative pressure.
[0043] At least three chambers may be formed within the roller, with any positive pressure supply port configured to simultaneously supply positive pressure to some of the chambers and / or any negative pressure supply port configured to simultaneously supply negative pressure to some of the chambers. Specifically, at least four chambers may be formed within the roller.
[0044] For example, eight chambers may be provided inside the roller. At any one time, some (i.e., at least two) of the chambers may be simultaneously supplied with negative pressure. Furthermore, at least one of the chambers may be supplied with positive pressure at any one time. One or more chambers may be left without negative or positive pressure and thus with atmospheric pressure or maintaining a previous pressure state. Atmospheric pressure may be the pressure inside a build chamber of a system for manufacturing three-dimensional workpieces.
[0045] Any positive pressure supply port may have an elongated hole exposing the openings of several chambers simultaneously. Any negative pressure supply port may have an elongated hole exposing the openings of several chambers simultaneously.
[0046] The openings of the chamber may be circular. Exposed means the opposite of covered. In other words, each exposed opening may be contacted by a respective port, and thus may be supplied with negative or positive pressure. The slot may be curved, specifically along a circular arc.
[0047] The apparatus may further include a shaft extending within the roller, the plurality of chambers being defined by a plurality of grooves formed in the shaft.
[0048] Preferably, the chambers may have equal sizes. Preferably, the walls located between the chambers are as thin as possible, in particular less than 5 mm, 3 mm, or 1 mm thick, at least in the transition region to the porous outer wall.
[0049] In devices with non-rotating chambers and rollers that move above the chambers, the chambers may have different sizes, and only one chamber may be permanently supplied with negative pressure, and only one chamber may be supplied with positive pressure, or none of the chambers may be supplied with positive pressure.
[0050] The apparatus may include a negative pressure generating device connected to the negative pressure supply port, the negative pressure generating device configured to generate negative pressure at least during operation of the apparatus.
[0051] The negative pressure generating device may be, for example, a vacuum pump, which may be further connected to other components of the system for manufacturing the three-dimensional workpiece that require negative pressure.
[0052] The apparatus may further include a positive pressure generating device connected to the positive pressure supply port, the positive pressure generating device configured to generate positive pressure at least during operation of the apparatus.
[0053] The positive pressure generating device may be, for example, a pump or a blower, and may be further connected to further components of the system for manufacturing the three-dimensional workpiece that require positive pressure.
[0054] According to a second aspect, there is provided a system for manufacturing a three-dimensional workpiece comprising an apparatus for removing powder and / or particles from a powder bed according to the first aspect. More specifically, the system comprises a carrier for receiving powder in multiple layers to form a powder bed, at least one powder deposition device for depositing the powder onto the carrier, at least one irradiation unit for irradiating a top powder layer of the powder bed at a predetermined position, and an apparatus for removing powder and / or particles from the powder bed according to the first aspect.
[0055] The system for manufacturing three-dimensional workpieces may be a selective laser melting system or a selective laser sintering system with the usual elements and functions of such systems. The system for manufacturing three-dimensional workpieces includes a carrier for depositing powder in multiple layers, for example to form a powder bed. Furthermore, one or more powder deposition devices can be provided for depositing powder, and if necessary, for depositing powder of different materials. For each material, a separate powder deposition device can be provided. The carrier can be moved vertically downwards by a vertical movement device, so that the top powder layer always remains at the same height with respect to the build chamber of the system. Furthermore, the system may include one or more irradiation units. Each irradiation unit includes a beam source (specifically a laser beam source) and an optical system with one or more optical elements for shaping and deflecting the beam (e.g. beam expander, focusing unit, scanner, fθ lens).
[0056] Furthermore, the system may include a control unit configured to control the components of the system. In particular, the control unit may be configured to control the device for removing powder (e.g., to control the rotational and / or translational movement of the rollers).
[0057] The apparatus for removing powder can be disposed within the build chamber of the system. In particular, the apparatus can be coupled to the powder deposition device. The coupling can be configured such that the apparatus for removing powder can be moved (horizontally and / or vertically) together with the powder deposition device.
[0058] In other words, the apparatus can be coupled to a powder deposition device and the system can include a motion device configured to move the apparatus and the powder deposition device together.
[0059] In particular, the system may include a cleaning station for cleaning the powder removing device. The cleaning station may be positioned to move the powder removing device to the cleaning station and clean it there. For this purpose, the cleaning station may include, for example, one or more nozzles by which powder can be blown off the rollers of the powder removing device and removed from the rollers. Alternatively or additionally, the cleaning device may have a suction device for sucking off the rollers, as well as scrapers, brushes, or similar mechanical cleaning devices.
[0060] The chamber supplied with negative pressure may be located on the side of the roller facing the powder bed.
[0061] In particular, the chamber supplied with negative pressure may be in contact with the powder bed during operation of the device, or at least directly facing the powder bed, thus drawing in powder so that it adheres to the porous outer wall of the roller. The apparatus may be configured such that more than one chamber is supplied with negative pressure at a given time.
[0062] According to a third aspect, the present invention relates to a method of removing powder and / or particles from a powder bed. The method comprises rotating a rotatably supported roller having a porous outer wall. The roller has a plurality of chambers formed therein. At least one of the chambers has an opening configured to provide a negative pressure to the chamber. The method further comprises providing a negative pressure to the at least one chamber via the opening in the chamber. Specifically, each of the chambers may have an opening.
[0063] All aspects discussed in relation to the apparatus or system above may be applied to the method of the third aspect. In other words, the apparatus of the first aspect and / or the system of the second aspect may be configured to perform the method of the third aspect.
[0064] With regard to removing the powder, the method may further comprise one or more of the following aspects: The powder is sucked from the powder bed by the negative pressure of the chambers supplied with negative pressure. The sucked powder remains attached to the porous outer wall of the roller at least as long as the negative pressure is maintained. While the negative pressure is maintained, the powder is sucked into the section of the porous outer wall of the roller that forms the wall of the chamber. Due to the selected pore size, the sucked powder does not penetrate into the interior of the roller. During the rotational movement of the roller, the powder continues to be sucked in until the time when the respective chamber is no longer supplied with negative pressure (i.e. to the position of the roller). The powder that is now no longer sucked in is taken out by the suction device and, if necessary, additionally removed by brushing or scraping from the roller. In addition, a positive pressure can be applied to the opening of each chamber previously supplied with negative pressure. This facilitates the removal by the suction device. The collected powder is thus blown into the suction device. Each section of the roller is now again cleared of powder and ready to receive new powder from the powder bed. Depending on how fast the roller rotation is controlled relative to its translation, the amount of powder picked up can be adjusted. In addition to or instead of powder, particles (e.g., weld spatter) can be removed from the powder bed.
[0065] The chambers may extend along the axis of rotation of the roller, and each of the chambers may be bounded by a portion of the porous outer wall.
[0066] Supplying negative pressure to at least one of the chambers through its opening at a given time may be accomplished through a negative pressure supply port.
[0067] The chamber supplied with negative pressure may be located on the side of the roller facing the powder bed.
[0068] The method includes sucking the powder picked up by the roller with a suction device, the suction device being positioned opposite one of the chambers of the roller that is not supplied with negative pressure at a given time.
[0069] The method may further include supplying a positive pressure, at a given time, to at least one of the chambers that is not supplied with a negative pressure at the given time, via an opening in the chamber.
[0070] The positive pressure supply port and the negative pressure supply port may be fixedly coupled to a support for the roller, and the method may further include alternately supplying negative and positive pressure to the chamber while the roller is rotating.
[0071] The method may further include rotating the roller such that, during rotation of the roller, the opening of the chamber is contacted once by the negative pressure supply port, thereby supplying each chamber with negative pressure, and contacted once by the positive pressure supply port, thereby supplying each chamber with positive pressure.
[0072] The roller may be formed in a cylindrical shape and an opening may be provided in a bottom surface of the cylinder.
[0073] At least three chambers may be formed within the roller, and the method may include simultaneously applying positive pressure to some of the chambers via a positive pressure application port, and the method may include simultaneously applying negative pressure to some of the chambers via a negative pressure application port.
[0074] The positive pressure supply port may have an elongated hole exposing the openings of several chambers at the same time. The connection for the negative pressure supply may have an elongated hole exposing the openings of several chambers at the same time.
[0075] The invention will now be described with reference to the accompanying drawings. [Brief description of the drawings]
[0076] [Figure 1] FIG. 1 is a perspective side view of a system for manufacturing a three-dimensional object together with an apparatus for removing powder and / or particles from a powder bed of the system according to an embodiment of the present disclosure. [Diagram 2] FIG. 2 is a schematic side view showing an apparatus for removing powder and / or particles from a powder bed illustrating the principles of the disclosed technology. [Figure 3a] FIG. 3(a) is a cross-sectional view of an apparatus according to an embodiment of the present disclosure. [Figure 3b] FIG. 3(b) is a perspective cross-sectional view showing the device of FIG. 3(a). [Figure 3c] FIG. 3(c) is a perspective view of the device of FIG. 3(a) with a control disk containing slots for connecting negative and positive pressure respectively. [Figure 3d] FIG. 3(d) is a perspective view of the device of FIG. 3(a) along with tubing connectors for connecting negative and positive pressure. [Figure 4a] FIG. 4(a) is a perspective cross-sectional view of the device of FIG. 3(a) with a shaft with a groove, a perforated disk with an opening, and a control disk with an elongated hole. [Figure 4b] FIG. 4(b) is a perspective cross-sectional view of the device of FIG. 3(a) similar to FIG. 4(a), with the grooved shaft removed. [Figure 4c] FIG. 4(c) is a perspective cross-sectional view of the apparatus of FIG. 3(a) similar to FIG. 4(b), but with the perforated disk with the apertures removed. [Diagram 5] FIG. 5 is a cross-sectional view of the device of FIG. 3(a) taken along the rotation axis of the roller. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0077] In Fig. 1, a system for manufacturing a three-dimensional object 2 is shown. The system 1 includes an apparatus 51 for removing powder and / or particles from a powder bed 3 of the system 1. Apart from the apparatus 51, the system 1 is a conventional system for selective laser melting having known components. The selective laser melting technique used by the system 1 is well known to those skilled in the art and will only be briefly described here based on selective laser melting in the powder bed 3.
[0078] First, a first raw material powder layer is applied to the carrier 5 of the system 1 and is site-selectively irradiated by one or more laser beams 7a, 7b so that the desired powder regions are solidified. This example shows a system 1 with two irradiation units, each including a laser 9a, 9b and an optical system 11a, 11b. Thus, the irradiation unit including the laser 9a and the optical system 11a is configured to emit the laser beam 7a and direct it to a desired location of the top powder layer of the powder bed 3. Furthermore, the irradiation unit including the laser 9b and the optical system 11b is configured to emit the laser beam 7b and direct it to a desired location of the top powder layer of the powder bed 3. Each of the optical systems 11a, 11b includes components for beam shaping and beam deflection, such as lenses, deflection mirrors, scanner mirrors, etc.
[0079] All components of the system 1, in particular the lasers 9a, 9b, the scanner mirrors of the optical systems 11a, 11b, the movement of the carrier 5 and also the functioning of the powder application devices 15a, 15b and the apparatus 51, which will be described further below, are controlled by a control unit 13.
[0080] After the first powder layer is solidified as desired, another powder layer is applied to the previous powder layer, and this top layer is irradiated and solidified again.
[0081] In order to always keep the distance between the top layer and the optical unit constant, it is possible to lower the carrier 5 and / or raise the optical unit during the ongoing build process (along the vertical direction, defined here as the z-direction). In this way, the three-dimensional workpiece 2 to be produced is built up layer by layer. The unsolidified powder can then be removed and reused if necessary.
[0082] A feature of the system 1 shown in Figure 1 is that the workpiece 2 is constructed from two components 2a, 2b for which two different powder materials are used, which may differ for example by the powder material used, but also by the particle size of the respective powders used.
[0083] To build up a workpiece consisting of two components 2a and 2b per workpiece layer, first a layer consisting of a first powder material is applied, for which a first powder application device 15a is used. Subsequently, the areas of the respective layer of the workpiece 2 formed from the first powder are solidified with the laser beam 7a, 7b. In a next step, the first powder material is again removed from the powder bed 3. For this purpose, the apparatus 51 is used. Subsequently, a second powder is applied using the second powder application device 15b, and the areas of the layer of the workpiece 2 formed from the second powder material, previously irradiated with the first powder, are solidified. In a subsequent step, the carrier 5 is lowered and a new layer consisting of the first powder is applied by the first powder application device 15a.
[0084] As indicated by the double arrow in FIG. 1, the two powder application devices 15a and 15b can be moved horizontally over the powder bed 3 in order to apply the respective powder. In the illustrated example, the apparatus 51 is fixedly connected to the first powder application device 15a and is moved together with the first powder application device. On the one hand, the advantage of this is that the apparatus 51 does not need additional movement devices, since it can be moved together with the movement devices (horizontal movement devices and, optionally, vertical movement devices) of the first powder application device 15a. A further advantage is that a height calibration (i.e. a calibration along the z-axis) between the powder application device 15a and the apparatus 51 can be omitted. Furthermore, if required in the process, powder can be removed by the apparatus 51 and simultaneously applied by the powder application device 15a (when the devices 15a and 51 are simultaneously moved and operated to the right along the positive x-direction shown in FIG. 1).
[0085] A gas supply 17 supplies inert gas to the build chamber 19 of the system 1 such that an inert atmosphere exists inside the build chamber 19. Additionally, a gas extraction system (not shown) can be provided to draw back inert gas from the build chamber 19, thus creating a gas flow through the build chamber 19 (specifically over the powder bed 3).
[0086] In addition to or instead of the above function of removing a powder layer during a build using two powder materials, device 51 can also be used to remove particles from the surface of powder bed 3. In particular, such removal may be weld spatter generated during solidification of the powder by laser beams 7a, 7b.
[0087] The device 51 for removing powder and / or particles from the powder bed 3 is described in more detail below.
[0088] 2 is a schematic side view showing an apparatus 51 for removing powder and / or particles from a powder bed 3. With reference to FIG. 2, the principle of the technology of the present disclosure can be explained.
[0089] The basic principle of the device 51 (hereinafter also called "suction roller") is that a porous (in particular microporous) tube (for example made of a fabric such as sintered material or felt, or made of a tube with microscopic holes) sucks in and expels the powder in a defined manner with the aid of an internal pressure difference. The porous tube constitutes the porous outer wall 53 of the roller 54.
[0090] During operation, the roller 54 rolls over a very short distance on the powder bed 3, performing a combination of rotational and translational movements, resulting in a "cutting" speed as in machining (e.g. milling). In other words, the rotational and translational speeds of the roller 54 can be adjusted as desired by the control unit 13. For example, these speeds can be set such that the translational speed corresponds to the rotational speed at which the outer roller wall 53 of the roller 54 rolls over the powder bed. In this way, exactly one layer of powder can be removed. However, the roller 54 can also rotate faster or slower with respect to the translational movement. This makes it possible, for example, to control the amount of powder removed.
[0091] The powder is picked up in the lower area inside the roller 54 by negative pressure ("-p"), where the powder particles are sucked out of the powder bed 3. The particles are trapped in the porous tube 53, thus locally limiting the pick-up capacity of the roller 54 so that only a defined layer depth is picked up. In the upper area, an arbitrary positive pressure area ("+p") is located inside the roller 54, which ensures that the picked-up powder particles are discharged from the roller 54. In addition, above the roller 54, a suction funnel (hereinafter also referred to as suction device 69) with a negative pressure flow ("-p") is provided to remove the discharged powder.
[0092] The negative and positive pressure regions are separated into two chambers of approximately equal size by a fixed wall 52. A roller 54 is formed by a rotating porous outer wall 53.
[0093] As an alternative embodiment to the above principle with a positive pressure area ("+p"), the positive pressure area can also be omitted and replaced by an area where, for example, atmospheric pressure prevails. Atmospheric pressure here means the pressure inside the build chamber 19 of the system 1. Furthermore, additional means can be provided for removing powder in the area of the suction device 69, for example a brush or a scraper.
[0094] 3( a )-( d ) show different views of an apparatus 51 for removing powder and / or particles from a powder bed 3 .
[0095] Figure 3(a) shows a cross section of roller 54 perpendicular to its axis of rotation, Figure 3(b) is a perspective cross section, and Figures 3(c) and 3(d) are perspective views showing further components of apparatus 51.
[0096] The pressure range shown in Fig. 2 is achieved inside the roller 54 by a multi-chamber structure. The core of the roller 54 consists of a longitudinally grooved shaft 55 on which a porous tube is mounted as the porous outer wall 53 of the roller 54. The shaft 55 rotates together with the roller 54 and thus with the porous outer wall 53. In other words, the chambers 59 formed inside the roller 54 hold "these" sections of the porous outer wall 53 of the roller 54. Thus, the position of the chambers 59 relative to the outer wall 53 of the roller 54 remains unchanged.
[0097] The walls between the chambers 59 are as narrow as possible at the transition to the porous outer wall 53. This allows a sufficient negative pressure to be generated also in the area of the wall above the outer wall.
[0098] The lower area of the roller 54 faces the powder bed 3 and negative pressure is supplied to chambers 59 arranged in this lower area. Adjacent to the upper area of the roller 54, a suction device 69 is provided by which the powder sucked onto the outer wall 53 of the roller 54 is sucked back in and fed to a collection container (not shown). The chambers 59 facing the suction device 69 are supplied with positive pressure in this embodiment. Alternatively, atmospheric pressure may be formed in these chambers.
[0099] At the end of the roller 54, a plate (perforated plate) with openings 57 (e.g. holes, see FIG. 3(c)) is provided where the groove of the shaft 55 ends. This plate is connected to the roller 54 and rotates with it. In the housing, which is the support 61 of the roller 54, a so-called control disk 63 adjoins the perforated plate. The control disk 63 forms part of the positive pressure supply port and the negative pressure supply port. On the inside of the control disk 63, two curved slots 65 are provided. The slots 65 are curved along a circular arc, the center of which forms the intersection of the rotation axis of the roller 54 with the control disk 63. Each slot 65 is formed in such a way that at a given time, several of the openings 57 are exposed at the same time. Thus, at a given time, several of the chambers 59 can be supplied with negative pressure. Similarly, several of the chambers 59 can be supplied with positive pressure at the same time.
[0100] The elongated holes 65 are in contact via tube connectors 67a, 67b (see FIG. 3(d)).
[0101] In the drawings, for reasons of clarity, not all of the above-mentioned elements are uniquely labeled, and in some cases only one of the elements is uniquely labeled (e.g., only one of the chambers 59 is uniquely labeled).
[0102] Moreover, according to one embodiment, the positive pressure supply port can be omitted and a port to atmosphere can be provided instead, for example, upper tubing connector 67b can be left open to atmosphere for this purpose.
[0103] In this connection, it is to be noted that the tube connector 67a of the negative pressure supply port is connected, for example by a tube or a hose, to a device (not shown) for generating negative pressure. This device can be understood as part of the device 51. The device for generating negative pressure can be, for example, a vacuum pump. This can be a vacuum pump that also supplies negative pressure to other elements of the system 1. Similarly, the tube connector 76b of the positive pressure supply port is connected, for example by a tube or a hose, to a device (not shown) for generating positive pressure. This device can be understood as part of the device 51. The device for generating positive pressure can be, for example, a pump or a blower. This can be a pump that also supplies positive pressure to other elements of the system 1.
[0104] The entire apparatus 51 with the housing (support 61) and the suction device 69 is mounted to the powder application device 15a and moved together with the powder application device over the powder bed 3.
[0105] Figures 4(a)-(c) further show cross-sections of the device 51 of Figures 3(a)-(d). For better clarity, in Figure 4(b) the shaft 55 has been omitted, and in Figure 4(c) the perforated plate with the openings 57 of the chamber 59 has also been omitted. Between the perforated plate with the openings 57 and the control disc 63 a seal (e.g. in the form of a Teflon ring) may be provided. The seal prevents powder from the powder bed from penetrating into the inside of the rollers and / or the vacuum lines.
[0106] Figure 5 is a cross-sectional view of the apparatus 51 of Figures 3(a) to (d) taken along the axis of rotation of the roller 54. From Figure 5 it can be seen that the suction device 69 has a funnel-shaped cross-section.
[0107] It can also be seen that the negative pressure supply port and the positive pressure supply port are located at one end 71 of the roller 54. The other opposite end 73 of the roller 54 is provided with an actuator (e.g., a servo motor or a stepping motor, not shown) that drives the rotation of the roller 54. The actuator is controlled by the control unit 13.
[0108] As an alternative embodiment to an electrically operated actuator, the roller 54 can be driven by a pressure differential provided by respective ports for negative and positive pressure, and can be made to roll on the powder and rotate by the resulting friction.
[0109] In operation, the device 51 removes a defined amount of powder from the powder bed 3 as follows.
[0110] The chambers 59 arranged in the lower area of the roller 54 facing the powder bed 3 are supplied with negative pressure by the control disc 63 (more precisely, via the slots 65 in the control disc 63). As can be seen from FIG. 3(c), for example three chambers 59 can be simultaneously brought into contact with the negative pressure and supplied with it. The porous outer walls 53 of these chambers 59 (i.e. in the areas of the porous outer walls 53 forming the outer walls of these chambers 59) are sucked out of the powder bed 3. A powder layer of a defined thickness is formed on the roller 54. The sucked-in powder is transported by the rotation of the roller 54 into the interior of the device 51 and in the direction of the suction device 69. On this path, the chambers 59 lose their negative pressure and are then supplied with positive pressure through the slots 65 in the upper side of the control disc 63. The sucked-in powder is blown out of the roller 54. This takes place in the (upper) area of the device 51 where the suction device 69 is arranged. There, the powder is sucked out and fed to a collection container (not shown).
[0111] The roller 54 , now free of powder again, can continue to rotate and pick up new powder from the powder bed 3 .
[0112] As noted above, the slots 65 in the control disk 63 are configured to simultaneously provide negative or positive pressure to several of the chambers 59. In another embodiment, only one chamber 59 is provided with negative pressure and only one chamber 59 is provided with positive pressure at any given time.
[0113] Additionally, any number of methods are possible for contacting the chamber 59 with negative or positive pressure. In the embodiment shown, the roller 54 is contacted through the bottom surface of the cylinder formed by the roller 54.
[0114] Alternatively, contact in the support 61 can be achieved by a port directed inwards (towards the roller 54). In yet another embodiment, the roller 54 can rotate on a shaft fixedly connected to the support 61. The shaft has a cavity for contacting one or more of the chambers 59 with a negative pressure. For this purpose, the cavity has a radially outward opening. Similarly, a cavity may be provided in the shaft for contacting one or more of the chambers 59 with a positive pressure. This cavity also has one or more radially outward openings.
[0115] The above techniques ensure that a defined amount of powder is removed from the powder bed, alternatively or in addition to removing particles such as weld spatter. The following are some aspects of the embodiment of the present invention. [Aspect 1] A device (51) for removing powder and / or particles from a powder bed (3), comprising: - a rotatably supported roller (54) having a porous outer wall (53); and - a plurality of chambers (59) formed within said roller (54); - a negative pressure supply port configured to supply a negative pressure to at least one of said plurality of chambers (59) at a given time; Including, the at least one of the plurality of chambers (59) having an opening (57) configured to provide a negative pressure to the at least one of the chambers (59); A device (51) for removing powder and / or particles from the powder bed (3). [Aspect 2] 2. The apparatus (51) of claim 1, wherein the plurality of chambers (59) extend along the axis of rotation of the roller (54), and each of the plurality of chambers (59) is separated by a section of the porous outer wall (53). [Aspect 3] - a suction device (69) for sucking up the powder picked up by the roller (54), the suction device (69) being arranged opposite one of the chambers (59) of the roller (54) that is not supplied with negative pressure at the given time. 3. The apparatus (51) of any one of the preceding claims, further comprising: [Aspect 4] 4. The apparatus (51) of any one of aspects 1 to 3, wherein the negative pressure supply port is fixedly coupled to a support (61) of the roller (54), the plurality of chambers (59) are rotatably and fixedly connected to the roller, each chamber having an opening (57) configured to supply positive or negative pressure to the chamber (59), and the supply and the plurality of chambers are configured such that the plurality of chambers (59) are supplied with negative pressure during rotation of the roller (54). [Aspect 5] a positive pressure supply port, the positive pressure supply port being configured to supply positive pressure at said given time to at least one of said plurality of chambers (59) that is not supplied with negative pressure at said given time through an opening (57) of said chamber. 5. The apparatus (51) of any of the preceding embodiments, further comprising: [Aspect 6] 6. The apparatus (51) of claim 4 or 5, wherein the positive pressure supply port is fixedly coupled to the support (61) of the roller (54), and the supply and the plurality of chambers are configured such that the plurality of chambers (59) are alternately supplied with negative and positive pressure during rotation of the roller (54). [Aspect 7] The apparatus (51) of claim 6, wherein the apparatus (51) is configured such that, during rotation of the roller (54), the opening (57) of a chamber (59) is brought into contact with the negative pressure supply port once, thereby supplying negative pressure to each of the chambers (59), and is brought into contact with the positive pressure supply port once, thereby supplying positive pressure to each of the chambers (59). [Aspect 8] 8. The apparatus (51) according to any one of the preceding aspects, wherein the roller (54) is formed in a cylindrical shape and the opening (57) is provided in a bottom surface of the cylinder. [Aspect 9] At least three chambers (59) are formed within the roller (54); an optional positive pressure supply port configured to supply positive pressure to several of the chambers (59) simultaneously; and / or the negative pressure supply port is configured to supply negative pressure to several of the chambers (59) simultaneously; 9. An apparatus (51) according to any one of the preceding embodiments. [Aspect 10] the optional positive pressure supply port has an elongated hole (65) exposing the openings (57) of several chambers (59) simultaneously; and / or The negative pressure supply port has an elongated hole (65) that simultaneously exposes the openings (57) of several chambers (59). 10. The apparatus (51) according to embodiment 9. [Aspect 11] a shaft (55) extending within said roller (54), said chambers (59) being defined by a plurality of grooves formed within said shaft (55); 11. The apparatus (51) of any of the preceding aspects, further comprising: [Aspect 12] A system (1) for manufacturing a three-dimensional workpiece, comprising: - a carrier (5) for receiving the powder in a number of layers so as to form a powder bed (3); - at least one powder application device (15a, 15b) for applying said powder to said support (5); - at least one irradiation unit for irradiating the topmost powder layer of said powder bed (3) at a defined position; - a device (51) for removing powder and / or particles from a powder bed (3) according to any one of aspects 1 to 11, A system (1) for manufacturing a three-dimensional workpiece, comprising: [Aspect 13] 13. The system (1) according to embodiment 12, wherein the apparatus (51) is coupled to the powder application device (15a), and the system (1) comprises a movement device configured to move the apparatus (51) and the powder application device (15a) together. [Aspect 14] 14. The system (1) according to any one of claims 12 to 13, wherein the chamber (59) supplied with the negative pressure is arranged on a side of the roller (54) facing the powder bed (3). [Aspect 15] A method for removing powder and / or particles from a powder bed (3), comprising the steps of: - rotating a rotatably supported roller (54) having a porous outer wall (53), said roller (54) having a plurality of chambers (59) formed therein, at least one of said plurality of chambers (59) having an opening (57) configured to provide a negative pressure to at least one of said plurality of chambers (59); - applying a negative pressure to said at least one chamber (59) via an opening (57) thereof; 2. A method for removing powder and / or particles from a powder bed (3), comprising:
Claims
1. A device (51) for removing powder and / or particles from a powder bed (3), comprising: a rotatably supported roller (54) having a porous outer wall (53), and - a number of chambers (59) formed inside said roller (54); a negative pressure supply port configured to supply a negative pressure to at least one of said chambers (59) at a given time; Including, the at least one of the plurality of chambers (59) having an opening (57) configured to provide a negative pressure to the at least one of the chambers (59); the plurality of chambers (59) are rotatably and fixedly connected to the roller (54), each chamber (59) being configured to be supplied with a negative pressure at a given time during rotation; Alternatively, said chambers (59) represent two chambers (59) separated at fixed positions, one in which a vacuum is applied to said powder bed (3) during rotation and another in which no vacuum is applied, and a suction device (69) is provided for sucking up the powder picked up by said roller (54), said suction device (69) being arranged opposite the area of said chambers (59) of said roller (54) to which no vacuum is applied. A device (51) for removing powder and / or particles from said powder bed (3).
2. 2. The apparatus (51) of claim 1, wherein the plurality of chambers (59) extend along an axis of rotation of the roller (54), and each of the plurality of chambers (59) is bounded by a section of the porous outer wall (53).
3. a suction device (69) for sucking up the powder picked up by the roller (54), said suction device (69) being arranged opposite one of the chambers (59) of the roller (54) which is not supplied with negative pressure at the given time; The apparatus (51) of claim 1 or 2, further comprising:
4. 2. The apparatus (51) of claim 1, wherein the negative pressure supply port is fixedly coupled to a support (61) of the roller (54), the plurality of chambers (59) are rotatably and fixedly connected to the roller, each chamber having an opening (57) configured to supply positive or negative pressure to the chamber (59), and the negative pressure supply port and the plurality of chambers (59) are configured such that the plurality of chambers (59) are supplied with negative pressure during rotation of the roller (54).
5. The device (51) according to claim 1, further comprising a positive pressure supply port, the positive pressure supply port being configured to supply positive pressure at said given time to at least one of said plurality of chambers (59) that is not supplied with negative pressure at said given time through an opening (57) of said chamber.
6. the negative pressure supply port is fixedly coupled to a support (61) of the roller (54), the plurality of chambers (59) are rotatably and fixedly connected to the roller, each of the chambers having an opening (57) configured to supply positive or negative pressure to the chamber (59), the negative pressure supply port and the plurality of chambers are configured such that the plurality of chambers (59) are supplied with negative pressure during rotation of the roller (54); and 6. The apparatus (51) of claim 5, wherein the positive pressure supply port is fixedly coupled to the support (61) of the roller (54), and the negative pressure supply port and the plurality of chambers (59) are configured such that the plurality of chambers (59) are alternately supplied with negative and positive pressures during rotation of the roller (54).
7. 7. The apparatus (51) of claim 6, wherein the apparatus (51) is configured such that, during rotation of the roller (54), each of the chambers (59) is supplied with negative pressure by the opening (57) of the chamber (59) being brought into contact once with the negative pressure supply port, and each of the chambers (59) is supplied with positive pressure by the opening (57) being brought into contact once with the positive pressure supply port.
8. 2. The apparatus (51) of claim 1, wherein the roller (54) is formed in a cylindrical shape and the opening (57) is provided in a bottom surface of the cylinder.
9. At least three of the chambers (59) are formed within the roller (54); an optional positive pressure supply port is configured to supply positive pressure to several of said chambers (59) simultaneously; and / or the negative pressure supply port is configured to supply negative pressure to several of the chambers (59) simultaneously; 2. The apparatus (51) of claim 1.
10. any of the positive pressure supply ports has an elongated hole (65) exposing the openings (57) of several of the chambers (59) simultaneously; and / or the negative pressure supply port has an elongated hole (65) exposing the openings (57) of several of the chambers (59) simultaneously; 10. Apparatus (51) according to claim 9.
11. The apparatus (51) of claim 1, further comprising a shaft (55) extending inside said roller (54), said plurality of chambers (59) being defined by a plurality of grooves formed in said shaft (55).
12. A system (1) for manufacturing a three-dimensional workpiece, comprising: a support (5) for receiving the powder in layers so as to form a powder bed (3), at least one powder application device (15a, 15b) for applying said powder to said support (5); at least one irradiation unit for irradiating the topmost powder layer of said powder bed (3) at a defined location; - a device (51) for removing powder and / or particles from a powder bed (3) according to claim 1.
13. 13. The system (1) of claim 12, wherein the apparatus (51) is connected to the powder application device (15a), and the system (1) comprises a movement device configured to move the apparatus (51) and the powder application device (15a) together.
14. 14. The system (1) according to claim 12 or 13, wherein the chamber (59) supplied with the negative pressure is arranged on the side of the roller (54) facing the powder bed (3).
15. A method for removing powder and / or particles from a powder bed (3), comprising the steps of: - rotating a rotatably supported roller (54) having a porous outer wall (53), said roller (54) having a plurality of chambers (59) formed therein, at least one of said plurality of chambers (59) having an opening (57) configured to provide a negative pressure to at least one of said plurality of chambers (59); - supplying said at least one chamber (59) with a negative pressure via an opening (57) in said chamber, said chambers (59) being rotatably and fixedly connected to said roller (54) and providing a negative pressure to each of said chambers (59) at a given time during rotation; Alternatively, the plurality of chambers (59) represent two chambers (59) separated at fixed positions, one in which a vacuum is applied to the powder bed (3) during rotation, and another in which no vacuum is applied, and a suction device (69) arranged opposite the region of the chambers (59) to which no vacuum is applied of the roller (54) sucks up the powder picked up by the roller (54); A method for removing powder and / or particles from a powder bed (3).
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