Method and apparatus for forming a three-dimensional object

The procedure and device for free form manufacturing address the challenge of producing larger three-dimensional objects by using a rotating support structure, flexible powder container, and multiple energy sources to ensure consistent layer thickness and optimized energy beam focus, resulting in improved object quality.

DE112013006029B4Active Publication Date: 2025-05-08ARCAM AB

Patent Information

Application Number
DE112013006029
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2013-11-19
Publication Date
2025-05-08
Estimated Expiration
2033-11-19

AI Technical Summary

Technical Problem

Existing free form manufacturing technologies face challenges in producing larger three-dimensional objects due to limitations in energy beam deflection, which affects the quality of the energy beam and the ability to melt and sinter powder materials effectively.

Method used

The proposed procedure and device involve a support structure that rotates around an axis to build three-dimensional objects layer by layer in a radial direction, using a flexible powder container to maintain a consistent powder layer thickness and employing multiple energy sources (e.g., electron beam and laser beam) for sintering and melting, respectively, with the ability to refocus the energy beams as the object grows.

Benefits of technology

This approach enables the production of larger three-dimensional objects with improved quality by maintaining consistent powder layer thickness and optimizing energy beam focus and distribution, thereby overcoming the limitations of existing technologies.

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Abstract

Method for forming a three-dimensional object by successively melting applied powder, the method comprising the following steps: a. Providing at least one powder container containing powder to be used for forming the three-dimensional object, b. Providing a predetermined amount of powder on a support structure, c. Directing an energy beam over the support structure, causing at least one section of the powder to sinter and at least one section of the powder to bond with the support structure, d. Directing an energy beam over the support structure, causing the powder to melt in selected areas according to a model to form a first section of the three-dimensional object, characterized in that the method further comprises the following steps: e. Rotating the support structure around an axis of rotation to create the three-dimensional object, which is built layer upon layer in a radial direction with reference to the axis of rotation.
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Description

TECHNICAL FIELD

[0001] The present invention relates to a method for forming a three-dimensional object according to the preamble of claim 1 and to an apparatus for forming a three-dimensional object according to the preamble of claim 26. STATE OF THE ART

[0002] Freeform fabrication or additive manufacturing is a method for forming three-dimensional objects by successively melting selected portions of powder layers provided on a worktable. A method and apparatus according to this technique are disclosed in US 2009 / 0152771.

[0003] Such an apparatus may comprise a worktable on which the three-dimensional object is to be formed, a powder dispenser arranged to deposit a thin layer of powder on the worktable to form a powder bed, a jet gun for delivering energy to the powder, thereby melting the powder, elements for controlling the jet emitted by the jet gun over the powder bed to form a cross-section of the three-dimensional object by melting portions of the powder bed, and a control computer storing information relating to successive cross-sections of the three-dimensional object. A three-dimensional object is formed by successively melting successive formed cross-sections of powder layers deposited step by step by the powder dispenser.

[0004] There is a need for a method and apparatus that enables the production of larger three-dimensional objects. However, with the existing technology described above, larger objects require larger energy beam deflections, and a maximum deflection can be achieved at a given size of the three-dimensional object. Exceeding the maximum energy beam deflections can affect the quality of the energy beam and the ability to heat and / or melt the powder material.

[0005] US 5 876 ​​550 A discloses an apparatus for producing three-dimensional objects by a layer-by-layer construction process.

[0006] US 8 187 521 B2 discloses a device for producing three-dimensional objects by a layer-by-layer construction process.

[0007] FR 2 987 293 A1 discloses a device for producing three-dimensional objects by a layer-by-layer construction process.

[0008] US 5 198 159 A discloses an apparatus for producing three-dimensional objects by a layer-by-layer construction process.

[0009] EP 1 683 593 A2 discloses a method for producing a porous structure by laser processing. PRESENTATION OF THE INVENTION

[0010] An object of the invention is to provide a method and an apparatus that solve the above-mentioned need in the art.

[0011] The above object is achieved by the features in the method according to claim 1 and the device according to claim 26.

[0012] In a first aspect of the invention, a method for forming a three-dimensional object by successively melting an applied powder is provided, the method comprising the steps of: providing at least one powder container comprising powder used to form the three-dimensional object; providing a predetermined amount of powder on a support structure; directing an energy beam across the support structure, causing at least a portion of the powder to sinter and bond to the support structure; and directing an energy beam across the support structure, causing the powder to melt in selected areas according to a model to form a first portion of the three-dimensional object.Rotating the support structure about a rotation axis to create the three-dimensional object, wherein the three-dimensional object is built layer by layer in a radial direction with respect to the rotation axis.

[0013] An advantage of this embodiment is that three-dimensional objects that extend essentially in two dimensions can be easily manufactured.

[0014] A further advantage of this embodiment is that objects having a rotational axis are particularly suitable for manufacturing. However, this embodiment is by no means limited to the manufacture of objects having such an axis of rotation.

[0015] In an exemplary embodiment of the present invention, the method further comprises the following step: providing the powder container which is movable in a radial direction with respect to the rotation axis.

[0016] An advantage of this embodiment is that the amount of powder can be regulated by adjusting the distance of the powder container to the three-dimensional object.

[0017] In another exemplary embodiment of the present invention, a distance between an opening of the powder container and an outer surface of the three-dimensional object is kept constant at a predetermined value to allow a predetermined amount of powder to exit the powder container onto the outer surface of the three-dimensional object.

[0018] Because the opening of the powder container has a predefined size, a predetermined amount of powder can exit the opening. This can ensure that the powder layer thickness is maintained at a constant level.

[0019] In another exemplary embodiment, a distance between an opening of the powder container and an outer surface of the three-dimensional object can be varied to allow an amount of powder to exit from the powder container onto the outer surface of the three-dimensional object. By adjusting the distance between the opening and the surface of the three-dimensional object, the amount of powder leaving the powder container can be varied. Another possibility is to use a closure to increase or decrease the opening area of ​​the opening. A variable amount of powder may be needed as the three-dimensional object grows. If the rotation speed is kept constant, more powder is needed in a second layer compared to a first layer, wherein the second layer is provided above the second layer.

[0020] In another exemplary embodiment of the present invention, the distance between the outer surface of the three-dimensional object and the opening of the powder container is measured and the measured distance is used to move the powder container to a predetermined position.

[0021] An advantage of this exemplary embodiment is that the distance can be constantly monitored and it is thereby possible to make small changes to the position of the powder dispenser to keep the distance within a predetermined range.

[0022] In another exemplary embodiment of the present invention, the position of the outer surface of the three-dimensional object is calculated and the calculated position is used to move the powder container to a predetermined position.

[0023] Since the thickness of a powder layer applied can be known before it is applied, the size and thus the exact position of the three-dimensional object is known before the three-dimensional object is manufactured. The thickness information can be used in the calculation step to determine the position of the outer surface of the three-dimensional object at any predetermined time and position.

[0024] In another exemplary embodiment of the present invention, the axis of rotation of the support structure lies in a horizontal direction.

[0025] An advantage of this embodiment is that it provides at least a portion of the rotation axis and later of the three-dimensional object that will be substantially horizontal. This horizontal portion may be suitable for providing the powder thereon. The opening of the powder container may therefore be located above the substantially horizontal surface. Powder applied to the horizontal surface cannot fall into other positions of the three-dimensional object before they are sintered, which may be the case if the powder were applied to a surface inclined relative to the horizontal plane.

[0026] In another embodiment of the present invention, the powder is sintered using the electron beam and melted using the laser beam.

[0027] In another exemplary embodiment of the present invention, the powder is sintered using the laser beam and melted using the electron beam.

[0028] In a further embodiment of the present invention, the powder is sintered using a first electron beam source and melted using at least a second electron beam source.

[0029] In a further embodiment of the present invention, the powder is sintered using a first laser beam source and melted using at least a second laser beam source.

[0030] The advantage of using a first energy source for sintering and a second energy source for melting is that they can operate independently of each other. Another advantage is that the energy beams can be very different during sintering compared to melting, meaning that the beam properties do not have to be changed from a first operation when sintering to a second operation when melting. Doing this for a single energy beam source can be time-consuming. Another advantage is that one can use a first type of energy beam source for sintering and a second type of energy beam source for melting. Sintering does not require any special beam quality beyond defining the power introduced into the material. It can be achieved using a relatively large light spot.This means that sintering can be performed using resistive heating, infrared heating, or a broad beam spot from a laser or electron beam source. Melting may require a precisely defined energy beam spot, necessitating a completely different energy source configuration if the same source is used for sintering. The advantage of having two different energy beam sources for different purposes—namely, sintering and melting—can save time and can increase the quality of the beam during melting.

[0031] In another exemplary embodiment of the present invention, refocusing of the electron beam and / or the laser beam may be performed while the three-dimensional object expands in a radial direction.

[0032] In another exemplary embodiment of the present invention, moving the electron beam source in a radial direction may be performed while the three-dimensional object expands in the radial direction to keep the distance between the electron beam source with respect to a top surface of the three-dimensional object at a constant value.

[0033] In another exemplary embodiment of the present invention, moving at least one focusing lens element in a radial direction may be performed while the three-dimensional object expands in the radial direction to maintain the focus of the beam source on the top surface of the three-dimensional object.

[0034] The benefit of refocusing or changing the position of the energy beam source during the three-dimensional object's creation can be critical to the final quality of the three-dimensional object. If it is not possible to move and / or refocus the energy beam source or the beam spot, the quality can be good within a small range of component diameters of the three-dimensional object, or it can be considered less than good for every component diameter of the three-dimensional object. Refocusing compensates for beam spot quality differences that may occur as the three-dimensional object grows in size.

[0035] In another exemplary embodiment of the present invention, at least one heat source is provided for maintaining the heat of the manufactured three-dimensional object.

[0036] The heat source can be arranged to heat the vertical surface of the three-dimensional object on the front, back, or both front and back. This can support the melting and sintering process and maintain a predetermined temperature of the structure during production. Since almost the entire vertical surface of the three-dimensional object is visible, the heat source can heat all parts of the three-dimensional article, ensuring that all parts of the three-dimensional object can have the same temperature. This can minimize internal stresses. It can also help maintain the same microstructure throughout the entire structure.

[0037] In another exemplary embodiment of the invention, at least one first energy beam source may be provided at a first position having a variable focus distance within a first interval from a center of the rotation axis, and at least one second energy beam source may be provided at a second position having a variable focus distance within a second interval from a center of the rotation axis. Switching from the at least first energy beam source to the at least second energy beam source when the three-dimensional object has expanded a predetermined distance from the center of the rotation axis.

[0038] The advantage of this design is that the different energy beam sources are optimized for a specific focal depth. As the structure grows, switching from a first energy beam source to a second can occur automatically, while the position of the outer surface is known in advance or can be measured by a camera.

[0039] In another exemplary embodiment of the invention, the melting of a predetermined amount of powder occurs less than one rotation after the sintering of the same predetermined amount of powder has taken place. This means that the heat added during sintering of the powder can be used in the subsequent melting process. The shorter the time between sintering and melting, the less energy remains unused.

[0040] In a further exemplary embodiment of the present invention, a first and second powder compactor are provided between which the powder is provided on the support structure, wherein the first and second powder compactor are spaced apart by a distance T which defines the thickness of the three-dimensional object.

[0041] In an exemplary embodiment, at least the first or second powder compactor may be arranged on the powder container.

[0042] In an alternative embodiment, the first or second powder compactor may be fixedly arranged in the vacuum chamber.

[0043] In a further exemplary embodiment, the first or second powder compactor may be movably mounted on a movable support structure within the vacuum chamber.

[0044] The advantage of having the first and second powder compactors is that they ensure that powder does not fall off the three-dimensional object. Furthermore, they can help ensure that the vertical walls become vertical and do not tilt relative to a vertical direction as the structure grows.

[0045] In another exemplary embodiment, the distance between the first and second powder compactors can be changed during construction, thereby allowing a thickness of the three-dimensional object to be changed. This can allow a first thickness at a first radial distance and a second thickness at a second radial distance from the center of the support structure. The distance between the first and second powder compactors can define the thickness T of the three-dimensional object. At least one of the powder compactors can be spring-loaded so that it presses at least a portion of its surface against a vertical wall of the three-dimensional object.

[0046] In a further exemplary embodiment of the present invention, the laser beam and / or the electron beam can be scanned / rasterized in a direction parallel to the rotation axis.

[0047] Scanning the beam in a direction parallel to the rotation axis can effectively cover the entire sintering and / or melting area with little or no focus deviation.

[0048] In a further embodiment of the present invention, the power of the laser beam source or electron beam source can be switched on and off.

[0049] Turning the energy beam on and off can be used to precisely adjust the energy supply to the three-dimensional object.

[0050] A further advantage is that it is possible to produce complex structures that require jumping of the beam spot from a first position to a second position without melting in between.

[0051] In another exemplary embodiment of the present invention, the body support is rotated continuously or stepwise.

[0052] A stepwise movement may require some form of prevention that prevents the powder from escaping from the powder container while the build support is stationary. This can be accomplished by attaching the opening of the powder container to the three-dimensional object or by any closure means provided in the powder container.

[0053] The advantage of a continuous movement of the build support is that the powder supply does not have to be stopped and the build time is minimized.

[0054] The method according to any one of the preceding claims further comprises the step of providing at least one powder container and the support structure within a vacuum chamber.

[0055] In another aspect of the invention, an apparatus for forming a three-dimensional object by successively melting portions of applied powder is provided. This apparatus comprises: at least one powder container containing powder to be used to form the three-dimensional object, means for providing a predetermined amount of powder on a support structure, means for directing an energy beam across the support structure, causing at least a portion of the powder to sinter and bond to the support structure, means for directing an energy beam across the support structure, causing the powder to melt in selected areas according to a model to form a first portion of the three-dimensional object,the apparatus further comprising: a motor for rotating the support structure about a rotation axis to adjust the three-dimensional object, wherein the three-dimensional object is built layer upon layer in a radial direction with respect to the rotation axis.

[0056] Further exemplary embodiments of the device emerge from the description, the figures, and the dependent claims. The advantage of the different embodiments of the device is similar to the advantage of the corresponding method and therefore need not be repeated in this context. BRIEF DESCRIPTION OF THE DIFFERENT VIEWS OF THE DRAWINGS

[0057] The invention will be further described below in a non-limiting manner with reference to the accompanying drawings. The same reference numerals are used to designate corresponding, similar parts throughout the various figures of the drawings. Fig. 1a is a schematic front view of a first exemplary embodiment of the present invention; Fig. Figure 1b shows a schematic front view of the first exemplary embodiment with a partially completed three-dimensional object; Fig. 1c shows a schematic side view of the first exemplary embodiment in Fig. 1a; Fig. 1d shows a schematic front view of a second exemplary embodiment of the present invention; Fig. 1e shows a schematic side view of a third exemplary embodiment of the present invention; Fig. 2a shows a schematic front view of a fourth exemplary embodiment of the present invention; Fig. Figure 2b shows a schematic side view of the second exemplary embodiment of the present invention; Fig. 3a shows a schematic front view of a fifth exemplary embodiment of the present invention; Fig. 3b shows a schematic side view of the fifth exemplary embodiment of the present invention; Fig. 4a and Fig. 4b show schematic front views of the sixth exemplary embodiment of the present invention; Fig. 5 shows a schematic front view of a seventh exemplary embodiment of the present invention; Fig. 6a shows an enlarged front view of a first exemplary embodiment of the powder container and the three-dimensional article according to the present invention; Fig. Figure 6b shows an enlarged side view of the first exemplary embodiment of the powder container and the three-dimensional object as shown in Fig. 6a shown; Fig. 7a shows an enlarged front view of a second exemplary embodiment of the powder container and the three-dimensional article according to the present invention; and Fig. Figure 7b shows an enlarged side view of the second exemplary embodiment of the powder container and the three-dimensional object as shown in Fig. 7a shown. Fig. Figure 8 shows a flowchart for a method for forming a three-dimensional object by successively melting deposited powder. DETAILED DESCRIPTION OF THE DIFFERENT EMBODIMENTS

[0058] To facilitate understanding of this invention, certain terms are defined below. The terms defined herein have meanings as generally understood by one of ordinary skill in the art relevant to this invention. Terms such as "a," "an," and "the" are not intended to refer solely to one object, but rather include the general class from which a specific example may be used for illustration. The terminology is used to describe specific embodiments of the invention, but its use does not limit the invention, except as claimed.

[0059] The term "three-dimensional structures" and the like, as used herein, generally refers to intentional or manufactured three-dimensional configurations (e.g., of structural material or materials) intended to be used for a specific purpose. Such structures may be designed, for example, with the aid of a three-dimensional CAD system.

[0060] The term "electron beam," as used herein in various embodiments, refers to a beam of any charged particles. The source of a charged particle beam may include an electron gun, a linear accelerator, etc.

[0061] Fig. 1a and Fig. 1b shows a front view of a portion of an additive manufacturing apparatus 100 for forming a three-dimensional object by successively melting portions of deposited powder according to the present invention. Fig. 1c shows a side view of a part of the additive manufacturing device 100 in Fig. 1a.

[0062] The apparatus 100 may include at least one powder container 118 containing powder 125 to be used to form the three-dimensional object.

[0063] The device 100 may further comprise means for providing a predetermined amount of powder on a support structure 114. The means for providing powder may be in the form of a powder container 118 provided with an opening 127. The opening may be designed to allow a predetermined amount of powder to exit the powder container per unit of time. In an alternative embodiment, the opening 127 may be provided with a closure (not shown) for opening and closing the opening and thereby starting and stopping the covering of the powder onto the support structure 114. In a further alternative embodiment, a rake 129 may be attached to the opening 127. The rake 129 may evenly distribute the powder from the powder container 118 onto the support structure 114.

[0064] The apparatus 100 may further comprise means for directing an energy beam 120 across the support structure, which causes at least a portion of the powder to sinter and causes at least a portion of the powder to bond to the support structure 114. The energy beam may be a laser beam or an electron beam. In a case where the energy beam is a laser beam, the means for directing the energy beam may be in the form of pivoting mirrors. In a case where the energy beam is an electron beam, the means for directing the energy beam may be in the form of one or more deflection coils. A source 112 for generating the energy beam may be an electron beam source or a laser beam source. When the powder is sintered, powder particles are slightly bonded to one another but not fused. Sintered powder particles may be separated into powder, i.e.That is, a sintered body with loosely bonded powder particles can be destroyed by a suitable means, such as a high pressure shock in the powder. The sintered body can also be attached to the support structure 114. Fixing the sintered body to the support structure means that the sintered body will move when the support structure moves.

[0065] The apparatus may further include means for directing an energy beam over the support structure 114 to cause melting of the powder in selected areas according to a model to form a first portion of the three-dimensional object. The melting of a specific volume of the three-dimensional object may occur after the specific volume has been sintered. The model for the three-dimensional object may be stored in a control computer. In an exemplary embodiment, the model may have been designed using CAD software. The model may be cut into appropriate slices according to the manufacturing process of the three-dimensional object.

[0066] The apparatus may further comprise a motor 130 for rotating the support structure 114 about a rotation axis to produce the three-dimensional object 116, wherein a three-dimensional object is produced layer by layer in a radial direction with respect to the rotation axis. The motor 130 and the support structure 114 may be attached to each other by means of a shaft 135. The shaft 135 may be made of a material having a low coefficient of expansion. The three-dimensional object 116 expands in a radial direction when viewed from the center of the support structure 114. Powder cannot fall from the support structure because the powder particles are sintered together before they reach a position where the particles can fall, i.e., a position where a surface of the support structure faces downward.Three-dimensional objects 116 can be manufactured layer by layer, with a first layer having a first diameter covered by a second layer having a second diameter. The difference in diameter between the first and second layers is determined by the thickness of the powder layer applied to the support structure 114.

[0067] In an exemplary embodiment, the powder supply is continuous during the construction of the three-dimensional object. That is, the powder supply is not stopped before the three-dimensional object is completed. The newly applied powder is continuously sintered to adhere the powder to the support structure or the previously fabricated layer of the three-dimensional object 116. The distance between the energy beam and the powder supply is selected such that sintering is completed before a portion of the powder layer applied to the support structure is in danger of falling off the support structure.

[0068] In an exemplary embodiment, the powder container 118 and the support structure 114 may be enclosed in a closable chamber 110. This closable chamber 110 may be a vacuum chamber.

[0069] Fig. Figure 1d shows another exemplary embodiment of the present invention. In this embodiment, a separate powder rake and powder compactor 155 are disposed between the powder container 118 and the beam of the energy beam source 112. The powder rake and compactor are movable in a radial direction from the central axis of the three-dimensional object 114. The rake and compactor, as the name suggests, compact the powder coming from the powder container and applied to the outer surface of the three-dimensional object. The rake and compactor may be spring-loaded, meaning that a spring tension may be applied to this device to maintain a predetermined pressure on the powder layer.The device 155 may further be provided with a vibration device that allows the device to vibrate and thereby further compact the powder.

[0070] In Fig. 2a and Fig. 2b shows another exemplary embodiment of the present invention. Fig. 2a is identical to Fig. 1b except that Fig. 2a comprises a door 150 for closing the closable chamber 110. The door is attached to the closable chamber 110 by a hinge 140. The side view in Fig. Figure 2b illustrates that the shaft 135, which attaches the motor 130 to the support structure 114, passes through the sealable chamber 110. In an exemplary embodiment, a suitable seal is provided between the shaft 135 and the sealable chamber so that vacuum conditions can be achieved within the sealed chamber 110.

[0071] In another exemplary embodiment, the apparatus further comprises means for movably providing the powder container 118 to be movable in a radial direction in order to maintain a distance between the powder container 118 and an outer surface of the three-dimensional object 116 at a constant predetermined value. The means for movably providing the powder container can be in the form of a motor connected to the powder container by means of gear(s) and / or chain(s) and / or belt(s). The means for moving the powder container can also be pneumatic or hydraulic. The distance between the powder container and the outer surface of the three-dimensional object 116 can be maintained by measuring the distance between the powder container and the outer surface.If the distance falls below a predetermined limit, the powder container is raised a predetermined distance to fall within an acceptable range of distance from the outer surface of the three-dimensional object 116. In an alternative embodiment, no measurement takes place to keep the distance between the powder container and the outer surface of the three-dimensional object within a predetermined range. It is assumed from the outset that the rotation speed, in combination with the size and shape of the opening 127 of the powder container 118 and the type of powder being distributed on the support structure 114, produces a predetermined powder thickness. For each revolution of the support structure, the powder container is raised a distance corresponding to the thickness of the powder. By varying the speed of the support structure, the thickness can be varied.A slower rotation speed of the support structure can result in a thicker powder layer, while a faster rotation speed of the support structure can result in a thinner powder layer. The fact that the rotation speed of the support structure affects the thickness of the powder layer on the support structure can be used to keep the thickness within a predetermined range.

[0072] In an exemplary embodiment of the present invention, the thickness of the powder layer can be changed by changing the distance of the opening 127 and the optional rake 129 of the powder container 118 to the outer surface of the three-dimensional object 116. A greater distance between the opening and the outer surface causes a greater amount of powder to exit the opening, and the greater the powder layer. In an alternative embodiment, the opening points in a direction toward the outer surface of the three-dimensional object 116. This means that the opening can be closed by the outer surface of the three-dimensional object if the distance between the outer surface and the opening is zero. At this zero distance, no powder exits the powder container. Increasing the distance from the powder container to the outer surface allows powder to exit the powder container.Adjusting the distance between the opening of the powder container and the outer surface of the three-dimensional object can allow fine-tuning of the thickness of the applied powder layer.

[0073] As the three-dimensional object grows in size, i.e., the more layers are attached to the support structure, the larger the outer diameter will be. If the rotation speed is kept at a constant speed, the thickness of the powder layer at a larger diameter will be thinner than the powder layer at a smaller diameter. By adjusting the rotation speed with the size of the three-dimensional object, a constant thickness of the applied powder can be achieved when using a powder container that provides a predetermined amount of powder per unit time. In an exemplary embodiment of the present invention, a constant angular velocity of the outer surface of the three-dimensional object will maintain a predetermined thickness of the applied powder layer, regardless of the diameter of the three-dimensional object.

[0074] In another exemplary embodiment, the angular velocity of the outer surface of the three-dimensional object can be varied to change the thickness of the applied powder layer. A fast angular velocity will provide a thinner applied powder layer for a given amount of powder exiting the opening 127 of the powder container 118 compared to a slower angular velocity.

[0075] In another exemplary embodiment, the angular velocity of the outer surface of the three-dimensional object can be changed in combination with a changed distance of the opening of the powder container to the outer surface of the three-dimensional object. In this embodiment, two independent parameters can be changed to change the thickness of the powder layer: the distance of the opening of the powder container to the outer surface of the three-dimensional object and the angular velocity of the outer surface of the three-dimensional object.

[0076] In another exemplary embodiment of an additive manufacturing device 100, which in Fig. As shown in Figure 4, at least one electron beam source 192, which generates an electron beam 122, is used to sinter the powder, and at least one laser beam source 193, which generates a laser beam 121, is used to melt the powder. The electron beam source 192 is arranged closer to the powder container than the laser beam source 193 because the electron beam is used for sintering, which takes place before the melting of the same powder material. Fig. 4, only one electron beam source and one laser beam source are disclosed. Of course, multiple electron beam sources can be used, as can multiple laser beam sources. Fig. 4 is further a first optional camera 170 and a second optional camera 172. The first and second cameras can be used to detect defects, temperature and / or surface characteristics of the top surface of the three-dimensional object 116.

[0077] In another exemplary embodiment for an additive manufacturing apparatus 100, at least one laser beam source generating at least one laser beam is used to sinter the powder and at least one electron beam source generating at least one electron beam is used to melt the powder.

[0078] In another exemplary embodiment of an additive manufacturing apparatus 100, at least one first electron beam source generating at least one first electron beam is used to sinter the powder and at least one second electron beam source generating at least one second electron beam is used to melt the powder.

[0079] In a further exemplary embodiment of an additive manufacturing device 100, at least one first laser beam source generating at least one first laser beam is used to sinter the powder and at least one second laser beam source generating at least one second laser beam is used to melt the powder.

[0080] In an alternative embodiment, at least one heat source is provided for maintaining the heat of the manufactured three-dimensional object. Fig. Figure 3a shows an exemplary embodiment of such a heat source for maintaining the heat of the three-dimensional object. Fig. 3a, a number of heating elements 160 are provided, which may be a resistance or an IR heat source. The heating elements may be arranged as shown in Fig. 4a, i.e., small circumferential heat sources are provided for heating an origin of the three-dimensional object. Heat sources for larger diameters are arranged so that later manufactured parts of the three-dimensional object are heated. In one exemplary embodiment, a control unit can switch one or more heat sources as the three-dimensional structure grows. In another exemplary embodiment, the power for each of the heat sources 160 can be changed during the manufacturing time of the three-dimensional object so that a desired heat distribution in the three-dimensional object is achieved. In another exemplary embodiment, at least one heat source can be switched on and off in a predetermined manner to produce a desired powder distribution in the three-dimensional object. Fig. 3b shows a side view of the arrangement as in Fig. 3a. In Fig. 3, it is shown that an optional set of heat sources 162 can be applied on the opposite sides as the heat sources 160, thereby heating the three-dimensional object from both sides.

[0081] In another exemplary embodiment, a first energy beam source may be provided at a first position having a variable focus distance in a first range from a center of the rotation axis, and at least one second energy beam source may be provided at a second position having a variable focus distance in a second range from a center of the rotation axis. A switch for switching from the first energy beam source to the at least second energy beam source when the three-dimensional object has expanded a predetermined distance from the center of the rotation axis. A first energy beam source may be used to build the inner part of a three-dimensional object, and a second energy beam source may be used to build the outer part of the three-dimensional object.The first and second energy beam sources are adapted to focus the energy beam in a first and second focus distance range.

[0082] In a further exemplary embodiment, the electron beam source may be arranged to be movable, i.e., the distance from the electron beam source to the outer surface of the three-dimensional object may be kept constant by moving the electron beam source outward (radial direction) while the three-dimensional object grows in size.

[0083] In Fig. 5 shows an exemplary three-dimensional object 116 that may be suitable for being constructed with the inventive device. The three-dimensional object shown in Fig. 5 may, for example, be a compressor wheel or a turbine wheel for an exhaust gas turbo, a rotating disc in a turbine engine, an air compressor wheel, etc. It may also be possible to build a number of discrete parts using the inventive method and device, for example, a number of discrete rotor blades for turbine engines.

[0084] The support structure 114 may be a forged shaft for an exhaust turbo turbine wheel. The support structure 144 may be prefabricated and have desired material properties for a desired application. Turbine wheel blades are fabricated onto the support structure (turbine shaft), which may be made of a different material than the support structure. In an exemplary embodiment, the turbine shaft may be made of a desired steel compound, and the turbine blade may be made of Ti or Ti6Al4V.

[0085] In an alternative embodiment, the support structure can be a used compression wheel that is partially defective, i.e., parts of one or more of the compressor blades may be defective. The compressor wheel can be inserted into the machine. Before inserting already manufactured structures, i.e., not just a homogeneous shaft, the height of all blades must be set to an equal distance from the central axis, i.e., in the case of the compressor blade, the compressor shaft. This can be achieved before inserting the partially defective compressor wheel into the additive manufacturing machine by removing sections of the blades using a suitable grinding process, or the blades are partially shortened in a lathe.

[0086] Powder can be preheated in a separate facility to sinter, not melt, the powder particles together with the three-dimensional object to be repaired. In an exemplary embodiment, the object to be repaired can be introduced in a prefabricated mold along with powder, and the mold with the powder and the three-dimensional object can be introduced into a facility for sintering the powder with the three-dimensional object to be repaired. From this facility, a three-dimensional object can emerge that is suitable for adding a predetermined amount of material in the inventive device and method as disclosed above and below.

[0087] Fig. 6a and Fig. 6b show an enlarged front view and a side view of the powder container together with the three-dimensional object, respectively. When powder 125 from the powder container 118 is applied to the three-dimensional object, there is a certain distance from the powder container to the energy beam in which the powder is not sintered. In the area where the powder is not sintered, there is a risk that powder will fall off the three-dimensional object 116 near its front side 116a and back side 116b, resulting in a three-dimensional object that becomes thinner as it radially expands between its front side 116a and back side 116b, as in Fig. 6b, grows.

[0088] In order to maintain the thickness T between the front side 116a and the back side 116b of the three-dimensional article 116, a powder compactor 195, as shown in Fig. 7a and Fig. 7b, attached to the powder container 118.

[0089] The powder compactor 195 may include first and second powder compacting elements arranged on the powder container substantially parallel to a radial direction of the rotation axis, where the powder is provided between the first and second powder compacting elements 195a, 195b, respectively. The first and second powder compacting elements 195a and 195b each make it possible to hold powder material on the support structure or the upper surface of the three-dimensional object without falling off the upper surface, thereby producing a three-dimensional object that is not defective. In an exemplary embodiment, the first and second powder compacting elements 195a and 195b may be arranged with a spring force on the already produced three-dimensional object 116.The spring force can ensure that a tight seal exists between the three-dimensional object and the first and second compactor elements, thus ensuring that no powder falls off and also ensuring that the thickness between the front 116a and the back 116b of the three-dimensional object is kept constant. The compactor elements 195a and 195b can be made of steel, titanium, Inconel, or other superalloys. They can also be made of ceramic. In an alternative embodiment, at least one first powder compactor 195a, 195b can be fixedly arranged within the vacuum chamber. In another exemplary embodiment, at least one powder compactor 195a, 195b can be movably arranged on a separate structure.

[0090] In a further exemplary embodiment, the apparatus according to the present invention may further comprise means for refocusing the electron beam and / or the laser beam as the three-dimensional object expands.

[0091] The means for moving the electron beam source or the laser beam source in a radial direction while securely expanding the three-dimensional object, for maintaining the distance between the electron beam source or laser source with respect to a top surface of the three-dimensional object at a constant value may be mechanical, for example by belts, gear wheel(s), chain(s) connected to an electric motor.

[0092] A vacuum bellows may be disposed between the electron gun and / or laser gun and the vacuum chamber to allow the vacuum to be maintained as the electron beam source and / or laser beam source moves outward in a radial direction from the center axis of the three-dimensional object.

[0093] The apparatus according to any one of the preceding claims further comprises means for moving at least one focusing lens element in a radial direction as the three-dimensional object expands to maintain a focal point of the laser beam source on an upper surface of the three-dimensional object.

[0094] Fig. Figure 8 shows a flowchart for a method for forming a three-dimensional object by successively melting deposited powder.

[0095] In a first step 810 of the method, at least one powder container is provided, wherein the powder container comprises powder to be used to form the three-dimensional object.

[0096] In a second step 820, a predetermined amount of powder is provided on a support structure. The predetermined amount of powder can be provided through an opening of the powder container. The powder container can be arranged above the support structure. Alternatively, a mechanical arrangement exists for transporting a sufficient amount of powder exiting the powder container to the support structure.

[0097] In a third step 830, an energy beam is directed across the support structure, causing at least a portion of the powder to sinter and causing at least a portion of the powder to bond to the support structure. By sintering the powder particles together, a body of sintered particles is formed on the support structure. Sintering means that the powder particles are lightly bonded to one another, which makes it possible to destroy the bond between the particles after sintering by suitable means, such as compressed air, and thereby destroy the body back to powder. In the sintering step, the powder particles can not only be bonded to one another, thus forming the body, but can also be bonded to the support structure.

[0098] In a fourth step 840, an energy beam is directed over the support structure, causing the powder to melt in selected areas according to a model to form a first portion of the three-dimensional object. The model can be designed using a suitable CAD tool. The CAD model can be cut into a predetermined number of cross-sections corresponding to the cross-sections of the three-dimensional object to be manufactured. The thickness of the cross-sections corresponds to the powder thickness of a predetermined powder layer on the support structure. The energy beam is directed by at least one suitable deflection coil in the case of an electron beam and by a pivoting mirror in the case of a laser beam as an energy beam.

[0099] In a fifth step 850, the support structure is rotated about a rotation axis to produce the three-dimensional object, wherein the three-dimensional object is built up layer upon layer in a radial direction relative to the rotation axis. Powder can continuously exit the powder container while the support structure is rotated. The rotation speed of the support structure is adapted to the outer diameter of the three-dimensional object in order to produce the same thickness for each layer applied to the support structure. This means, for example, that the rotation speed can be reduced for an increased thickness with the same amount of powder per unit time exiting from the opening of the powder container onto the support structure.An alternative way to ensure the same layer thickness is applied is to increase the amount of powder while increasing the outer diameter of the three-dimensional object. This can be achieved by increasing the distance between the powder container and the outer surface of the three-dimensional object and / or reducing the rotation speed of the three-dimensional object to maintain the angular velocity of the outer surface of the three-dimensional object.

[0100] The powder in the powder container can be any type of metal material, either pure, as an alloy, or as a mixture of different metals in powder form. Other types of materials can also be used, however, if an electron beam is used as the energy beam, the powder material must be electrically conductive. If a laser beam is used as the energy beam, any type of material, including electrically non-conductive materials, can be used.

[0101] In an exemplary embodiment of the invention, the powder container is provided movable in a radial direction relative to the rotation axis to maintain a distance between the powder container and an outer surface of the three-dimensional object at a constant predetermined value. It may be important to maintain the distance between the powder container and the support structure at a constant distance throughout the build sequence of the three-dimensional object in order to provide powder layers with the same thickness and the same surface quality. Varying the distance between the powder container and the outer surface of the three-dimensional object can influence these two parameters and thereby affect the quality of the three-dimensional object.

[0102] In an exemplary embodiment of the present invention, the distance between the powder container and the outer surface of the three-dimensional object can be kept constant by moving the container with feedback information from measurements of the distance between the container and the surface. The measurement can be performed by a camera that captures images of the distance. In an alternative embodiment, an interferometer can be used to measure the distance from the outer surface of the three-dimensional object to a fixed position. Instead of measuring a distance, the movement of the powder container can be known before starting manufacturing. Since the thickness of the powder layer can be known before starting manufacturing, one can know how far the three-dimensional object increases in dimension per revolution. The movement of the powder container can be obtained from this information.

[0103] The same measurement and / or predetermined adjustment of the powder container can be used to adjust the position of the laser beam source and / or electron beam source.

[0104] The powder can be sintered using the electron beam and melted using at least the laser beam. Sintering and melting can be performed simultaneously, but for different regions of the three-dimensional object. Alternatively, sintering takes place for a first region, followed by melting for the same first region if sintering is not performed on a second region when melting takes place.

[0105] The powder can also be sintered using an electron beam and melted using at least a laser beam. Here, too, melting and sintering can take place simultaneously for different regions or sequentially for the same region, with no overlap when performing melting for a first region and sintering for a second region.

[0106] The powder can also be sintered using a first electron beam source and melted using a second electron beam source. Here, too, melting and sintering can take place simultaneously for different regions or sequentially for the same region, with no overlap between melting for a first region and sintering for a second region.

[0107] The powder can also be sintered using a first laser beam source and melted using at least one second laser beam source. Here, too, melting and sintering can take place simultaneously for different regions or sequentially for the same region, with no overlap between melting for a first region and sintering for a second region.

[0108] The electron beam and / or the laser beam can be refocused while the three-dimensional object expands.

[0109] The electron beam source can be refocused by moving the source in a radial direction while the three-dimensional object expands to maintain the distance between the electron beam source with respect to a top surface of the three-dimensional object at a constant value.

[0110] The laser beam source can be refocused by moving at least one focus lens element in a radial direction as the three-dimensional object expands to maintain the focus of the laser beam source on the top surface of the three-dimensional object.

[0111] At least one heat source can be provided to maintain the heat of the manufactured three-dimensional object. The heat source can be in the form of a resistance heater and / or an infrared heater. The heat sources can be provided at a rear side of the three-dimensional object and / or at the front side of the three-dimensional object. The distance of the heater from the front and / or rear side of the three-dimensional object can be varied for each heating element to vary the performance on the structure.

[0112] At least one first energy beam source can be provided at a first position having a variable focus distance within a first range from a center of the rotation axis. At least one second energy beam source can be provided at a second position having a variable focus distance within a second range from a center of the rotation axis.

[0113] The at least first energy beam source can be switched to the at least second energy beam source when the three-dimensional object has expanded a predetermined distance from the center. By using different energy beam sources to build different parts of the three-dimensional object, the final result of the finished object can be improved. This is because different energy beam sources, which are fixedly positioned relative to the central axis of the support structure, can have an optimal focus distance range that partially overlaps, i.e., a first energy beam source can have a first focus distance range that partially overlaps with a second energy beam source focus distance range.If these two energy beam sources are fixed in a position relative to the central axis of the support structure, it may be very convenient to switch the sintering and / or melting from one source to another when a first focus distance is out of range but within range of the other.

[0114] In another exemplary embodiment of the present invention, the distance between the outer surface of the three-dimensional object and the powder container and / or the energy beam source is maintained at a fixed distance by moving the central axis of the three-dimensional object. An exemplary embodiment of how this may look is shown in Fig. 1e. For a small diameter of the three-dimensional object, as indicated by 116 in Fig. As shown in Figure 1e, the central axis of the three-dimensional object is at a first position. When the three-dimensional object is completed, with 176 in Fig. 1e, the central axis of the three-dimensional object has moved to a second position. In Fig. 1e, the three-dimensional object was moved a distance D between the first and second positions, which is equal to a radial growth of the three-dimensional object between the first and second positions.

[0115] Melting a predetermined amount of powder can occur less than one rotational revolution after sintering the same predetermined amount of powder. To accelerate the process, melting can be performed at any angular interval within one complete rotation of sintering the same area. In an alternative embodiment, melting takes place with the same energy beam source as the sintering source, and this can be performed using the radiation source alternating between sintering and melting.

[0116] A first and a second powder compactor may be arranged on the powder container so that powder is provided between the first and second powder compactors. The use of the first and second powder compactors prevents powder from falling off the three-dimensional object before it is sintered onto the preceding molten and / or sintered powder layer.

[0117] The laser beam and / or electron beam can be scanned in a direction parallel or perpendicular to the rotation axis. This can effectively cover any position of the applied powder layer with the energy beam, allowing melting and / or sintering to occur at a desired position within a given angular segment of the three-dimensional object.

[0118] The power of the laser beam source and / or electron beam source can be switched on or off. This allows for a controllable, variable power transfer from the electron and / or laser beam to the three-dimensional object.

[0119] The support structure can be rotated continuously or incrementally. With a continuously rotating support structure, the powder delivery can also be constant, creating a uniform and controlled thickness of the powder layer on the support structure. With incremental movement of the support structure, powder delivery can be interrupted while the support structure is not rotating.

[0120] The at least one powder container and the support structure can be provided within a vacuum chamber. This allows for the production of three-dimensional objects without contamination from the ambient air. It also allows for a controllable environment, such as a non-reactive gas that can be supplied into the chamber, such as nitrogen, helium, and / or argon. If an electron beam source is used as the means for the energy beam, at least a portion of the electron beam source can be arranged within the vacuum chamber.

[0121] The invention is not limited to the embodiments described above, and many modifications are possible within the scope of the following claims. Such modifications may, for example, involve a different beam gun than the exemplary electron beam, such as a laser beam. Materials other than metallic powder, such as polymer powder and ceramic powder, may be used.

Claims

[1] A method for forming a three-dimensional object by successively melting applied powder, the method comprising the following steps: a. Providing at least one powder container containing powder to be used to form the three-dimensional object, b. Providing a predetermined amount of powder on a support structure, c. Directing an energy beam over the support structure, causing at least a portion of the powder to sinter and at least a portion of the powder to bond to the support structure, d. Directing an energy beam over the support structure, causing the powder to melt in selected areas according to a model to form a first portion of the three-dimensional object, characterized by that the method further comprises the following steps: e. Rotating the support structure about a rotation axis to create the three-dimensional object built up layer upon layer in a radial direction with respect to the rotation axis. [2] The method of claim 1, further comprising the step of: f. Movable provision of the powder container in a radial direction with respect to the axis of rotation. [3] The method of claim 2, further comprising the step of maintaining a distance between an opening of the powder container and an outer surface of the three-dimensional object at a constant predetermined value to allow a predetermined amount of powder to exit from the powder container onto the outer surface of the three-dimensional object. [4] The method of claim 2 further comprising the step of varying the distance between an opening of the powder container and an outer surface of the three-dimensional object to allow a varying amount of powder to eject from the powder container onto the outer surface of the three-dimensional object. [5] A method according to claim 3 or 4, further comprising the steps of measuring the distance between the outer surface of the three-dimensional object and the opening of the powder container and using the measured distance to move the powder container to a predetermined position. [6] A method according to any one of claims 3 or 4, further comprising the steps of calculating the position of the outer surface of the three-dimensional object and using the calculated position to move the powder container to a predetermined position. [7] A method according to any one of claims 1 to 6, further comprising the step of providing the axis of rotation of the support structure in a horizontal direction. [8] Method according to one of claims 1 to 7, wherein the energy beam is an electron beam and / or a laser beam. [9] A method according to any one of claims 1 to 8, wherein the powder is sintered using at least one electron beam and melted using the at least one laser beam. [10] A method according to any one of claims 1 to 8, wherein the powder is sintered using at least one laser beam and melted using at least one electron beam. [11] A method according to any one of claims 1 to 8, wherein the powder is sintered using a first electron beam source and melted using at least a second electron beam source. [12] A method according to any one of claims 1 to 8, wherein the powder is sintered using a first laser beam source and melted using at least one second laser beam source. [13] A method according to any one of claims 1 to 12, further comprising the step of: refocusing the electron beam and / or laser beam while the three-dimensional object expands in a radial direction. [14] The method according to any one of claims 1 to 13, further comprising the step of: moving the electron beam source in a radial direction while the three-dimensional object expands in the radial direction to maintain the distance between the electron beam source with respect to a top surface of the three-dimensional object at a constant value. [15] The method of any one of claims 1 to 14, further comprising the step of: moving at least one focusing lens element in a radial direction while the three-dimensional object expands in the radial direction to maintain the focal point of the beam source on a top surface of the three-dimensional object. [16] A method according to any one of claims 1 to 15, further comprising the step of providing at least one heat source for maintaining the heat of the manufactured three-dimensional article. [17] Method according to one of claims 1 to 16, further comprising the following steps: providing at least one energy beam source at a first position having a variable focus distance in a first range from a center of the rotation axis, providing at least a second energy beam source at a second position having a variable focus distance in a second range from a center of the rotation axis, switching from the first energy beam source to the at least second energy beam source when the three-dimensional object has extended a predetermined distance from the center of the rotation axis. [18] A method according to any one of the preceding claims, wherein the melting of a predetermined amount of powder takes place less than one revolution of rotation after the sintering of the same predetermined amount of powder has taken place. [19] A method according to any one of the preceding claims, further comprising the step of: providing first and second powder compactors between which the powder is provided on the support structure, the first and second powder compactors being separated by a distance T defining the thickness of the three-dimensional article. [20] The method of claim 19, further comprising the step of attaching at least one of the first or second powder compactor to the powder container. [21] A method according to any one of the preceding claims, further comprising the step of scanning the laser beam and / or the electron beam in a direction parallel to the axis of rotation. [22] The method of claim 16, further comprising the step of switching the power of the laser beam source or electron beam source on or off. [23] A method according to any one of the preceding claims, further comprising the step of continuously or stepwise rotating the support structure. [24] A method according to any one of the preceding claims, further comprising the step of providing the at least one powder container and the support structure in a vacuum chamber. [25] A method according to any one of the preceding claims, further comprising the step of movably arranging the support structure in a vertical direction. [26] Apparatus for forming a three-dimensional object by successively melting portions of applied powder, the apparatus comprising: a. at least one powder container containing powder to be used to form the three-dimensional object, b. means for providing a predetermined amount of powder on a support structure, c. means for directing an energy beam across the support structure, causing at least a portion of the powder to sinter and bond to the support structure, d. means for directing an energy beam across the support structure, causing the powder to melt in selected areas according to a model to form a first portion of the three-dimensional object, the apparatus further comprising: e. a motor for rotating the support structure about a rotation axis to create the three-dimensional object built layer upon layer in a radial direction with respect to the rotation axis. [27] The apparatus of claim 26, wherein the apparatus further comprises means for providing a powder container movable in a radial direction for maintaining a distance between the powder container and an outer surface of the three-dimensional object at a constant, predetermined value. [28] Device according to one of the preceding claims, wherein the axis of rotation is arranged in a horizontal plane. [29] Apparatus according to any one of the preceding claims, wherein at least one electron beam is used to sinter the powder and at least one laser beam is used to melt the powder. [30] Apparatus according to any one of the preceding claims, wherein at least one laser beam is used to sinter the powder and at least one electron beam is used to melt the powder. [31] Apparatus according to any one of the preceding claims, wherein at least one first electron beam source is used for sintering the powder and at least one second electron beam source is used for melting the powder. [32] Apparatus according to any one of the preceding claims, wherein at least one first laser beam source is used for sintering the powder and at least one second laser beam source is used for melting the powder. [33] Apparatus according to any one of the preceding claims, wherein at least one heat source is provided for maintaining the heat of the manufactured three-dimensional object. [34] The device of claim 33, wherein the heat source is an infrared heater. [35] Device according to one of the preceding claims, wherein a first energy beam source is provided at a first position having a variable focus distance in a first range from a center of the rotation axis, at least one second energy beam source is provided at a second position having a variable focus distance with at least a second interval from a center of the rotation axis, a switch for switching from the first energy beam source to the at least second energy beam source when the three-dimensional object has extended a predetermined distance from the center of the rotation axis. [36] Apparatus according to any one of the preceding claims, wherein a first and a second powder compactor are arranged on the powder container substantially with a radial direction parallel to the radial direction of the axis of rotation, the powder being provided between the first and second powder compactors. [37] Apparatus according to any one of the preceding claims, further comprising means for refocusing the electron beam and / or the laser beam as the three-dimensional object expands. [38] Apparatus according to any one of the preceding claims, wherein the electron beam source is movable in a radial direction for maintaining a distance between the electron beam source with respect to a top surface of the three-dimensional object at a constant value. [39] Apparatus according to any preceding claim, wherein at least one focusing lens element is arranged to be movable in a radial direction to maintain a focal point of the laser beam source on an upper surface of the three-dimensional object. [40] Device according to one of the preceding claims, wherein the support structure is arranged to be movable in a vertical direction.

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