Method and device for producing 3D molded parts using high-performance radiation sources

DE502020011309D1Active Publication Date: 2025-07-10VOXELJET AG
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
DE502020011309
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-10-11
Filing Date
2020-10-08
Publication Date
2025-07-10
Estimated Expiration
2040-10-08

AI Technical Summary

Technical Problem

Existing 3D printing processes using powdered materials face limitations in achieving high component strength due to the reliance on liquid binders, which are time-consuming and cause shrinkage issues, and high-speed sintering processes face inefficiencies in radiation distribution leading to temperature inhomogeneities and reduced mechanical stability.

Method used

The use of a radiation unit with emitter units mounted at varying angles and cooled by a coolant, allowing for adjustable radiation intensity and temperature distribution across the build area, optimizing the sintering process by compensating for edge effects and enhancing energy efficiency.

Benefits of technology

This approach improves the mechanical stability and quality of 3D printed components by ensuring uniform temperature distribution, reduces material consumption, and enhances productivity through precise energy application.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The invention relates to a method and a device for producing three-dimensional models using high-power radiators.

[0002] European patent EP 0 431 924 B1 describes a method for producing three-dimensional objects from computer data. A thin layer of particulate material is applied to a build platform using a recoater, and the particulate material (generally a fluid) is selectively printed with a binder material using a print head. The particle area printed with the binder bonds and solidifies under the influence of the binder and, if necessary, an additional hardener. The build platform is then lowered by one layer thickness in a build cylinder and covered with a new layer of particulate material, which is also printed as described above. These steps are repeated until a certain, desired object height is reached. The printed and solidified areas thus form a three-dimensional object (molded part).

[0003] This object, made from solidified particulate material, is embedded in loose particulate material after completion, and is then removed from it. This is done, for example, using a vacuum cleaner. What remains are the desired objects, which are then freed from the residual powder, for example, by brushing.

[0004] This object, made from solidified particulate material, is embedded in loose particulate material after completion, and is then removed from it. This is done, for example, using a vacuum cleaner. What remains are the desired objects, which are then freed from the residual powder, for example, by brushing.

[0005] Other powder-based rapid prototyping processes (also known as layer-by-layer model building or layered construction techniques) work in a similar way, such as selective laser sintering or electron beam sintering, in which a loose particulate material is applied layer by layer and selectively solidified with the help of a controlled physical radiation source.

[0006] In the following, all these processes are understood under the term "three-dimensional printing processes" or 3D printing processes.

[0007] 3D printing based on powdered materials and the addition of liquid binders is the fastest process among layered construction techniques.

[0008] This process can be used to process various particulate materials, including polymeric materials. The disadvantage, however, is that the bulk particulate material cannot exceed a certain bulk density, which is usually 60% of the solid density. The strength of the desired components, however, depends significantly on the achieved density. Therefore, to achieve high component strength, it would be necessary to add 40% or more of the particulate material volume in the form of the liquid binder. This is not only a relatively time-consuming process due to the individual droplet introduction, but also causes many process problems, which arise, for example, from the inevitable shrinkage of the liquid volume during solidification.

[0009] In another embodiment, known in the art as "high-speed sintering" (HSS), the particulate material is solidified by introducing infrared radiation. The particulate material is physically bonded through a melting process. This exploits the comparatively poor absorption of thermal radiation in colorless plastics. This can be increased many times over by incorporating an IR acceptor (absorber) into the plastic. The IR radiation can be introduced using various methods, such as a rod-shaped IR lamp that is moved evenly across the build area. Selectivity is achieved by selectively printing the respective layer with an IR acceptor.

[0010] In the printed areas, the IR radiation couples much better into the particle material than in the unprinted areas. This leads to selective heating of the layer beyond the melting point and thus to selective solidification. This process is described, for example, in EP1740367B1 and EP1648686B1.

[0011] CN110142958 discloses a radiator assembly for a 3D printing device, wherein the radiator assembly comprises a plurality of radiator units mounted on a holding means, each radiator unit being mounted on the holding means at a defined angle of rotation alpha, and the radiator units being combined with coolant.

[0012] High-speed sintering processes use emitters that can influence the process and impact the results and quality of the molded parts produced. A key component is the sintering unit, which, in one design, uses a shortwave or near-infrared radiation source to raise the surfaces wetted with IR acceptor above the melting temperature of the particulate material, thus leading to solidification. In one state-of-the-art design, the particulate material surface partially wetted with IR acceptor is scanned by this radiation source, with the emitter, designed as a linear tube, arranged perpendicular to the direction of motion.

[0013] The object of the present invention is to provide constructive means that allow an improved 3D printing process or at least help to improve the disadvantages of the prior art or to avoid the disadvantages of the prior art altogether.

[0014] Another object of the present invention was to provide a method and apparatus using an advantageous radiator that leads to improved work results. Brief summary of the invention

[0015] In one aspect, the invention relates to a radiation unit suitable for producing 3D molded parts orsuitable for a 3D printing device, wherein the emitter unit has a plurality of emitter units which are mounted on a holding means which sweeps over the particulate material surface and wherein each emitter unit is mounted on the holding means at a defined angle of rotation alpha and the emitter units have different or the same defined angle of rotation alpha or one or more emitter units have a defined angle of rotation alpha (group 1) and one or more emitter units have a different defined angle of rotation alpha (group 2) and the emitter units are combined with one or more coolants and wherein the angle of rotation alpha in the edge region of the emitter unit is different from the interior region of the emitter unit and wherein the radiation intensity in the edge region of the emitter unit(s) is set higher than in the interior region of the emitter unit.

[0016] In a further aspect, the disclosure relates to a 3D printing device suitable for building 3D shaped bodies, which has at least one emitter unit as described herein.

[0017] In a further aspect, the invention relates to a method for producing 3D molded parts, wherein a radiation unit as described herein is used. Short description of the characters

[0018] Fig. 1 An example is a sintered radiator unit viewed from the side in the yz plane. Fig. 2 is an exemplary schematic representation of a commercially available L-shaped IR emitter. Fig. 3 is an exemplary sketch of the effects of rotating a radiator at its suspension point in the xy plane. Fig. 4 is an exemplary sintered radiator unit corresponding to Fig. 1 with exemplary rotated radiator tubes, viewed here from below in the xy plane. Fig. 5is an exemplary arrangement of radiator tubes within the sintered radiator unit in exemplary designs. Fig. 6 is a top view of the radiator unit in xy plane with rotated individual radiator tubes and during the crossing over the construction site, here pointing upwards. Fig. 7 is a block diagram of an exemplary implementation of a rudimentary control algorithm for controlling the power supplied to each individual emitter in order to achieve a desired temperature distribution on the construction field. Detailed description of the invention

[0019] According to the invention, an object underlying the application is achieved by a device according to claim 1 and / or by a method according to claim 9. Further preferred aspects are described in the subclaims.

[0020] In the following, some terms of the revelation will be explained in more detail.

[0021] "3D molded part", "molded body" or "component" within the meaning of the disclosure are all three-dimensional objects produced by means of the method according to the invention and / or the device according to the invention which have a dimensional stability.

[0022] "Build space" is the geometric location in which the particulate material bed grows during the build process through repeated coating with particulate material, or through which the bed flows in continuous processes. Generally, the build space is defined by a floor, the build platform, walls, and an open ceiling, the build plane. Continuous processes usually include a conveyor belt and delimiting side walls. The build space can also be configured by a so-called job box, which is a unit that can be moved in and out of the fixture and allows for batch production. A job box is moved out after the process is complete, and a new job box can be immediately moved into the fixture, thus increasing the production volume and thus the fixture performance.

[0023] All materials known for powder-based 3D printing can be used as "particulate materials" or "particulate build materials" or "build materials" or "fluid," especially polymers, ceramics, and metals. The particulate material is preferably a dry, free-flowing powder, but a cohesive, cut-resistant powder or a particle-laden liquid can also be used. In this document, particulate material and powder are used synonymously.

[0024] Particle deposition is the process by which a defined layer of powder is created. This can occur either on the build platform or on an inclined plane relative to a conveyor belt in continuous processes. Particle deposition is also referred to as "coating" or "recoating."

[0025] "Selective liquid application" within the meaning of the disclosure can be performed after each particulate material application or, depending on the requirements of the molded article and to optimize molded article production, can also be performed irregularly, for example, multiple times per particulate material application. A cross-sectional image through the desired article is printed.

[0026] Any known 3D printing device that includes the required components can be used as a "device" for performing a method according to the disclosure. Typical components include a coater, a build area, means for moving the build area or other components in continuous processes, dosing devices, and heating and irradiation means, as well as other components known to those skilled in the art, which are therefore not described in detail here.

[0027] The build material according to the disclosure is always applied in a "defined layer" or "layer thickness," which is individually adjusted depending on the build material and process conditions. It is, for example, 0.05 to 5 mm, preferably 0.07 to 2 mm.

[0028] A "coater" within the meaning of the disclosure is a device component that can receive fluid, e.g., particulate material such as mineral or metallic materials or plastics, wood in the form of particles, or mixtures thereof, and dispense or apply it in layers in a controlled manner onto a build platform of a 3D device. The coater can be elongated, and the particulate material is located in a reservoir above an outlet opening.

[0029] A "storage container" within the meaning of the disclosure is to be understood as the component of a coater into which the particulate material is filled and is dispensed and applied to the build platform of the 3D device via an outlet opening in a controlled manner.

[0030] A "coater blade" as defined in the disclosure is a substantially flat component made of metal or another suitable material, located at the coater's outlet opening, through which the fluid is dispensed onto the build platform and smoothed. A coater may have one or two or more coater blades. A coater blade may be an oscillating blade that performs oscillations in the sense of a rotary motion when excited. Furthermore, this oscillation can be switched on and off by a means for generating oscillations.

[0031] Depending on the arrangement of the outlet opening, the coating blade is arranged "essentially horizontally" or "essentially vertically" within the meaning of the disclosure.

[0032] "Lamp assembly" within the meaning of the disclosure is an arrangement of lamp units arranged in a defined manner with respect to their angle of rotation alpha, wherein each lamp unit or a group of lamp units may have the same angle alpha.

[0033] "Emitting unit" within the meaning of the disclosure is a unit that can be arranged to rotate and emits light of a specific spectrum.

[0034] "Angle of rotation alpha" as defined in the disclosure is the angle at which a radiator unit is arranged in the radiator assembly, with the reference plane oriented perpendicular to the direction of movement of the radiator assembly over the particulate material surface. In this case, each radiator unit in a radiator assembly can be arranged at a different or the same angle, and different groups of radiator units can also be formed according to the angles alpha, e.g., Group 1, Group 2, etc.

[0035] "Group 1" or "Group 2" up to "Group n" within the meaning of the disclosure are groups of radiator units that form the same angle.

[0036] "Coolant" as used in the disclosure is a means capable of cooling a radiator unit, such as water or other liquid or a fan stream.

[0037] "Peripheral area" within the meaning of the disclosure is the area of ​​a radiator assembly that is located at the edge of the radiator assembly and can be demarcated from the interior area. The peripheral area and interior area form the total area of ​​the radiator assembly with respect to its surface on which the radiator units are mounted.

[0038] "Interior area" within the meaning of the disclosure is the area of ​​a radiator unit that is located inside the radiator unit and can be demarcated from the peripheral area.

[0039] A "spectrum converter" as defined in the disclosure is a substance that shifts the spectrum of emitted light. It can be, for example, water.

[0040] "Radiation intensity" within the meaning of the disclosure is the power of electromagnetic radiation emitted per area considered by an emitter of electromagnetic radiation, such as a radiator unit, a group of radiator units or a radiator aggregate.

[0041] "Shortwave spectrum" as defined in the disclosure is electromagnetic radiation of essentially Planckian spectrum with a wavelength maximum of 1.2 µm or less.

[0042] "Near-infrared" as used in this disclosure refers to electromagnetic radiation having a wavelength of 1 µm or less.

[0043] According to the disclosure, "uniform spectrum" of a group of radiator units is essentially a congruent wavelength distribution of a Planckian radiation spectrum or an identical wavelength maximum.

[0044] "Emitted radiation spectrum" within the meaning of the disclosure is an ensemble of wavelengths of emitted electromagnetic radiation, in particular in the form of a Planckian radiation distribution.

[0045] "Continuous radiation intensity" in the sense of the disclosure refers to a seamless linking of the emitted power of a radiator unit to form a coherent ensemble on a surface.

[0046] "Layer data" refers to the cutting data required for the layer-by-layer construction of a molded body, which is calculated in advance from the virtual digitally available molded body data.

[0047] "Filament temperature" or "coil temperature" refers to the temperature generated by a wire element, usually designed as a coil, located in a glass bulb and heated by applying an electrical voltage. Further aspects of the invention are further described below.

[0048] In particular, the object underlying the application is achieved by a radiator unit suitable for a 3D printing device, wherein the radiator unit has a plurality of radiator units which are mounted on a holding means and wherein each radiator unit is mounted on the holding means at a defined angle of rotation alpha and the radiator units have different or the same defined angle of rotation alpha or one or more radiator units have a defined angle of rotation alpha (group 1) and one or more radiator units have a different defined angle of rotation alpha (group 2) and the radiator units are combined with one or more coolants and wherein the angle of rotation alpha in the edge region of the radiator unit is different from the interior region of the radiator unit and wherein the radiation intensity in the edge region of the radiator unit(s) is set higher than in the interior region of the radiator unit.

[0049] The angle of rotation alpha can be adjusted differently depending on the requirements in the peripheral area and inside the radiator unit. By modifying the angle of rotation, the power input can be varied and thus optimized in different areas. It can be advantageous if the angle of rotation alpha is larger in the peripheral area of ​​the radiator unit than in the interior of the radiator unit.

[0050] For example, it may also be desirable to set different radiation intensity levels in different areas. For example, it may be advantageous to set the radiation intensity higher in the peripheral area of ​​the radiator unit(s) than in the interior of the radiator unit.

[0051] Other parameters can also be selected in a specific way, e.g. it can be advantageous if the edge area in the radiator unit corresponds to the distance of the radiator unit to its construction surface.

[0052] The radiator unit can be combined with other means, e.g. the radiator units can be combined with a spectrum converter.

[0053] It may also be advantageous if the radiator units are cooled, e.g. the radiator units can be flushed with a coolant, preferably in their entirety, preferably the radiator units can be flushed directly.

[0054] The coolant can be, for example, water and / or a spectrum converter.

[0055] The emitted spectrum is selected according to requirements, whereby it may be advantageous if the radiator unit emits essentially a short-wave spectrum.

[0056] In a radiator unit according to the disclosure, the spectrum is selected depending on the construction requirements, wherein it may be advantageous if the radiator unit generates a substantially uniform spectrum on the construction site.

[0057] Radiator units can be selected according to requirements, whereby it may be advantageous if the radiator units have an essentially L-shape.

[0058] In a further aspect, the disclosure relates to a 3D printing device suitable for constructing 3D shaped bodies, which has at least one emitter unit as described above.

[0059] In a further aspect, the disclosure relates to a method for constructing 3D molded bodies using at least one emitter unit as described above.

[0060] In a further aspect, individual radiator units, preferably a group of radiators, are connected with different electrical power.

[0061] It may also be advantageous to use a contactless temperature sensor to measure the energy input of a group of radiator units and to use the measured value to regulate the group's radiation intensity. The temperature is measured before and after the radiator unit passes over a defined area, each time using a separate measuring device.

[0062] An advantageous arrangement of the radiator units comprises a seamless sequence, resulting in an uninterrupted field of continuous radiation intensity.

[0063] By rotating the radiator units by an angle alpha, it is possible to nest several ensembles of a group of radiator units, thus increasing the emitted radiation intensity.

[0064] It can be advantageous to use emitter units of different sizes, for example, to achieve a higher radiation intensity by using shorter emitter units on the sides of the emitter assembly and thus compensate for edge effects that are caused by a reduction in radiation intensity at the sides of the emitter units. This is due to the fact that the emitter units are located at a certain defined distance from the illuminated surface and are limited in their extent. Both of these lead to blurring at the edges of the generated radiation field. Since the temperature of the irradiated surface correlates directly with the radiation intensity, this leads to undesirable temperature inhomogeneities, which have a direct negative impact on the sintering process. See Fig. 5-1.

[0065] Incorporating the calculated layer data into the molding process in additive manufacturing allows for the targeted deactivation of a group of irradiation units at locations where no molded body is to be produced. This counteracts unnecessary degradation caused by temperature increases in the irradiated particle material. Furthermore, it can advantageously save energy.

[0066] By using a spectrum converter and dissipating the filtered energy, it is possible to adjust the emitted spectrum of the radiator assembly, a group of radiators, or a single radiator unit independently of the radiant power. This enables advantageous, wider-area control of the radiation intensity.

[0067] In another aspect, it may be advantageous to cascade several spectrum converters in order to achieve a stronger conversion effect or to filter several specific disadvantageous wavelength ranges.

[0068] Instead of a spectrum converter, it may be advantageous in some processes to use a highly transparent material. A spectrum converter and a transparent material for touch and dust protection may also be preferable.

[0069] It can be advantageous to use efficient cooling to generate much higher filament temperatures in the emitter units by increasing the voltage than is commercially available. According to Wien's displacement law, this shifts the emitted radiation spectrum to shorter wavelengths that are advantageous for the high-speed sintering process. Furthermore, this can increase the emitted radiation intensity per emitter unit.

[0070] Efficient cooling of the radiator units is also preferable in order to increase the service life of the radiator units. Examples

[0071] Exemplarily shown in Fig.1is a sintered radiator assembly 101 viewed from the side in the yz plane. Commercially available L-shaped radiator tubes 102 are seamlessly placed next to one another or optionally rotated by an angle in the plane, resulting in a seamless connection when viewed from the side. The radiators are led out of the top of the radiator assembly on their short side, where the electrical supply lines are also located. The tubes are also immersed in a cooling medium 103, which is continuously exchanged via supply and discharge lines 104 / 105. The waste heat generated by the radiator tubes 102 is thus dissipated and the secondary radiation caused by heating of the radiator glass body is prevented. The cooling not only significantly increases the service life of the radiators, since the molybdenum feedthrough at the glass pinch remains below the critical temperature of approx.350°C can be maintained, while at the same time the coil temperature inside the radiator can be increased, allowing the spectrum of the emitted electromagnetic radiation to be shifted towards desired shorter wavelengths. The emitted radiation spectrum is directly related to the coil temperature, so-called Wien's displacement law. Instead of a coil color temperature of 2400 K, temperatures of over 2900 K are thus possible, which corresponds, for example, to the radiation spectrum in the near-infrared range desired in the high-speed sintering process. The underside of the coolant container is sealed by a material 107 that is permeable to a specific spectrum of radiation; borosilicate glass, for example, can be used. The underside of the sintering unit is formed by another radiation-permeable material 108, which, in addition to a possible filtering property, also fulfills the function of dust and contact protection.There is a void 106 between the two materials. The electromagnetic radiation can escape at the bottom of the device 109.

[0072] In Fig. 2 is a schematic representation of a commercially available L-shaped IR radiator 201. Here, the coil 203, which follows the glass bulb 202, is guided around the edge 204, placing the electrical feedthrough 205 on the top of the radiator. This allows for a nearly seamless connection of the radiators.

[0073] In Fig. 3is a sketch of the effects of rotating a radiator 301 at its suspension point in the xy plane. If the radiator is moved in the x-direction over a surface, the larger the angle, the emitted radiation concentrates on a smaller area. Thus, larger rotation angles 302 result in a higher temperature T2, 304 on the construction site. Smaller angles beta, 303 lead to a lower resulting temperature T1. The intensity of the radiation is related to I = [1 / cos alpha], the ratio of both temperatures is roughly in the order of dT = [1 / cos alpha] ^1 / 4

[0074] In Fig. 4 is a sintered radiator unit corresponding to Fig. 1 with exemplary rotated radiator tubes, viewed here from below in the xy plane. The outer radiators 402 are rotated more sharply than the inner ones 403, so that a higher radiation concentration is achieved at the edges.

[0075] In Fig. 5 the following is described: 1. Resulting temperature distribution on the build area along the Y-axis with a conventional sintered lamp unit according to the state of the art. The edge areas receive less radiation intensity, resulting in lower temperatures on the irradiated surface. This is due to the blurred optical image of the lamps on the irradiated surface, which approximates the square root of a Gaussian distribution function, where sigma, normalized, roughly follows the distance of the lamp tube to the said surface. As a rule of thumb, an extension by the distance of the lamp from the build area on both sides has been established. Lower temperatures result in reduced mechanical stability and quality of the produced molded bodies. To compensate for this, the lamp must be built much longer than the width of the build area.This not only increases the size of the entire unit, but also results in parts of the device being heated by the radiator that are outside the area to be irradiated, which is generally undesirable. In addition, space in the device is often limited. This means that larger parts of the build area must remain unused, which has a negative impact on productivity and material consumption. In addition, proportionally more energy is required for this. 2. By rotating and seamlessly arranging smaller radiator tubes, the energy input and thus the resulting temperature on the build area can be adjusted independently of the radiator spectrum. Each rotated radiator tube creates a temperature distribution on the build area that follows a Gaussian distribution, see distribution of the large radiator in (1). If the radiators are arranged seamlessly, the addition of the Gaussian curves results in exactly one straight line.In the example, this makes it possible to achieve a temperature T2 that is higher than T0 in (1). Unlike in (1), not only the resulting temperature but also the total energy and thus the length of the radiator can be scaled as required, which, according to the state of the art, would require customer-specific adaptation of the radiator tube. 3. A combination of a seamless series of radiator tubes with different rotation angles allows temperature adjustment in the Y direction and thus compensation for edge effects, whereby energy can be introduced more precisely and the size of the sintered radiator unit can be reduced. To compensate for edge effects in the form of temperature losses, a higher temperature T2 is set at the sides of the build area than in the center, where a temperature of T1 is sufficient. 4. By rotating the smaller radiator tubes, the energy density can be greatly increased.High energy densities are possible when using the cooling concept from . Fig. 1 This allows a much higher temperature of T3 to be achieved on the construction site. The maximum energy of a long individual radiator is currently limited to approximately 15A at 400V by the molybdenum platelets used to pass through the cable entry on the glass bulb, allowing a maximum temperature of T0 to be reached. While similarly high temperatures could theoretically be achieved by stacking conventional, long, non-rotated radiators offset upwards in the Z direction, this would be difficult to achieve in practice, as this would result in very thin and therefore shock-sensitive wire windings in the radiator units beyond a certain length. Furthermore, radiator assemblies constructed in this way would be uncompetitive in terms of price due to the custom manufacturing required.

[0076] In Fig. 6Describes a top view of the radiator assembly 601 in the xy plane with rotated individual radiator tubes 603 and 606 during travel across the build area, shown here pointing upwards. Temperature sensors 604, 605, 607, and 608 are attached to the assembly 601. Each individual emitter is assigned its swept build area A to E. Using the temperature sensors, for example infrared pyrometers, the temperature resulting from the energy introduced into the build area by each radiator can be determined for each corresponding area A to E, both before and after exposure. The sensor pair 604 and 605 measures the track of the first radiator on area A, etc.

[0077] Fig. 7 is a block diagram of an exemplary implementation of a rudimentary control algorithm for controlling the power supplied to each individual emitter in order to achieve a desired temperature distribution on the construction field.

[0078] The temperature difference before and after exposure is compared with a target value, and based on this, the power of the individual emitters is adjusted to each corresponding area, in this example, A to E. The target values ​​can be fixed or follow a specific algorithm, making it possible to specifically exclude parts of the build area from the exposure process. The aging of the particulate material on the build area caused by the temperature increase during irradiation by the emitters can thus be limited. This leads to an increased recycling rate of the particulate material and thus to cost savings due to material consumption. List of reference symbols

[0079] Fig. 1 101 Sintered radiator unit in an exemplary design 102 commercially available radiator tube with seamless transition 103 A constant flow of coolant, which also acts as a radiation filter, is used, for example, as a deionized water. Alternatively, gases or compressed air can also be used. 104 Liquid supply 105 Return of the liquid 106 Empty space to minimize heat transfer 107 Material permeable to filtered radiation and / or spectrum converter as container boundary for liquid, for example temperature-resistant borosilicate glass 108 Material permeable to filtered radiation to protect against contamination, for example temperature-resistant borosilicate glass or spectrum converter 109 Filtered electromagnetic radiation, for example very near infrared < 1 µm Fig. 2 201 An example of a commercially available beam tube in section in YZ plane 202 Glass bulb of the beam tube, exemplary in L-shape 203 Heating coil following the shape of the glass bulb 204 Kink in radiant tube without interruption of the heating coil 205 Electrical feedthrough and connection of the heating coil Fig. 3 301 Radiator tube in top view 302 Rotation in the plane by the angle alpha 303 Rotation in the plane by the angle beta, where beta < alpha 304 Larger angle of rotation alpha leads to higher temperature and smaller width of irradiation 305 Smaller angle of rotation beta results in lower temperature Fig. 4 401 Sintered radiator unit in an exemplary design viewed from below, xy-plane 402 beam tube rotated in the plane 403 Beam tube rotated by a different, smaller angle in the xy plane, which connects seamlessly Fig. 5 5-1 Resulting temperature distribution on the build area along the Y-axis for a conventional sintered radiator unit according to the state of the art with achievable maximum temperature T0 5-2 By rotating and seamlessly arranging smaller radiator tubes, the energy input and thus the resulting temperature T2 on the construction site can be adjusted independently of the radiator spectrum. 5-3 The combination of a seamless series of radiator tubes with different rotation angles allows temperature adjustment in the Y direction and thus compensation of edge effects, which allows energy to be applied more precisely and the size of the sintered radiator unit to be reduced. 5-4 By rotating the smaller radiator tubes, the energy density can be greatly increased. Thus, a much higher temperature of T3 can be achieved on the build site compared to T2 in Fig. 5-2. Fig. 6 601 Sintering beam unit, is moved over construction area, which is divided into areas A to E 602 Area A on the construction site covered by spotlight 403 during the crossing 603 Twisted radiator tube 604 Pyrometer directed at area A on the construction site measures the construction site temperature before passing over with the sintering radiator unit 605 Pyrometer directed at area A on the construction field measures the construction field temperature after passing over it with the sintering radiator unit 606 Further rotated radiator tubes, here exemplary at a different angle 607 Example: Pyrometer directed to area C on the construction site measures the construction site temperature before passing over with the sintering radiator unit 608 Example: Pyrometer directed to area C on the construction site measures the construction site temperature after passing over it with the sintering radiator unit Fig. 7 Block diagram of an exemplary implementation of a rudimentary control algorithm for controlling the power supplied to each individual emitter in order to achieve a desired temperature distribution on the construction field.

Claims

1. A radiation-emitting set (101, 401, 601), suitable for a 3D printing apparatus, wherein the radiation-emitting set comprises a plurality of radiation-emitting units (102, 201, 301, 402, 603) which are mounted on a holding means and wherein each radiation-emitting unit is mounted on the holding means at a defined angle of rotation alpha and the radiation-emitting units have different or the same defined angle(s) of rotation (302, 304) alpha or one or more radiation-emitting units have one defined angle of rotation alpha of group 1 and one or more radiation-emitting units have another defined angle of rotation alpha of group 2 and the radiation-emitting units are combined with one or more cooling means, and wherein the angle of rotation alpha in the peripheral area of the radiation-emitting set is different to the interior area of the radiation-emitting set and wherein the radiation intensity in the peripheral area of the radiation-emitting set(s) is set higher than in the interior area of the radiation-emitting set.

2. The radiation-emitting set according to claim 1, wherein the radiation-emitting units are combined with a spectrum converter.

3. The radiation-emitting set according to claim 2, wherein the radiation-emitting units are flushed with a coolant, preferably in their entirety, the radiation-emitting units preferably being flushed directly.

4. The radiation-emitting set according to claim 2, wherein the coolant is, for example, water or / and a spectrum converter.

5. The radiation-emitting set according to claim 3, wherein the radiation-emitting set substantially emits a short-wave spectrum.

6. The radiation-emitting set according to any one of the preceding claims, wherein the radiation-emitting set produces a substantially uniform spectrum on the construction field.

7. The radiation-emitting set according to any one of the preceding claims, wherein the radiation-emitting units are substantially L-shaped.

8. A 3D printing apparatus suitable for building up 3D shaped articles, said apparatus comprising at least one radiation-emitting set according to any one of claims 1 to 6.

9. A method for building up 3D shaped articles, which uses at least one radiation-emitting set (101, 401, 601) according to any one of claims 1 to 6.