APPARATUS FOR THE EXTRUSION-BASED MANUFACTURE OF AT LEAST ONE THREE-DIMENSIONAL OBJECT
20230294361 · 2023-09-21
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C2948/92066
PERFORMING OPERATIONS; TRANSPORTING
B29C64/386
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C48/02
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/00
PERFORMING OPERATIONS; TRANSPORTING
B29C2948/92961
PERFORMING OPERATIONS; TRANSPORTING
B29C2948/92076
PERFORMING OPERATIONS; TRANSPORTING
B29C35/007
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C48/92
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B29C48/266
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Apparatus for the extrusion-based manufacture of at least one three-dimensional object, comprising at least one extrusion unit which is configured for melting an extrusion material and/or for applying a molten extrusion material to a substrate, comprising a device which is configured to detect parameter information relating to a process parameter of an extrusion-based manufacturing process which can be carried out or is carried out by means of the apparatus and/or to an object parameter of a three-dimensional object which is to be produced or is produced by means of the apparatus, and to generate position information and/or time information describing a detection position and/or a detection time of corresponding parameter information.
Claims
1. Apparatus for the extrusion-based manufacture of at least one three-dimensional object, comprising at least one extrusion unit which is configured for melting an extrusion material and/or for applying a molten extrusion material to a substrate, characterized by a device which is configured to acquire parameter information relating to a process parameter of an extrusion-based manufacturing process which can be carried out or is carried out by means of the apparatus and/or an object parameter of a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus, and to generate position information and/or time information describing a detection position and/or a detection time of corresponding parameter information.
2. Apparatus according to claim 1, characterized in that the device comprises a detection device which comprises at least one detection element which is configured to detect parameter information.
3. Apparatus according to claim 2, characterized in that the detection device is an acoustic or optical or thermal detection device which comprises at least one detection element for acoustic or optical or thermal detection of parameter information.
4. Apparatus according to claim 1, characterized in that the device, in particular the detection device, is mounted movably in at least one degree of freedom of movement, in particular relative to the or a substrate.
5. Apparatus according to claim 1, characterized in that the device is arranged or formed on or in the extrusion unit.
6. Apparatus according to claim 5, characterized in that the device, in particular at least one detection element, is arranged or formed a region of an outlet region of the extrusion unit.
7. Apparatus according to claim 6, characterized in that the device, in particular the detection element, is arranged or configured to be movable in at least one degree of freedom of movement relative to the outlet region in the region of the outlet region.
8. Apparatus according to claim 1, characterized in that the device comprises a plurality of detection elements which are arranged to form a detection element array, in particular forming a planar array.
9. Apparatus according to claim 1, characterized in that the process parameter at least describes a chemical and/or at least physical parameter of a process space in which the extrusion-based manufacturing process that can be carried out or is carried out by means of the apparatus takes place, and/or describes at least one chemical and/or geometric and/or physical parameter of at least one extrusion material that can be used or is used in the context of an extrusion-based manufacturing process that can be carried out or is carried out by means of the apparatus, and/or describes the parameter, in particular a movement parameter, possibly local and/or temporal, of a movement path of the extrusion unit and/or of an extrusion material web applied to a substrate via the extrusion unit, and/or describes the parameter, in particular a surface condition parameter, of substrate, such as a construction platform.
10. Apparatus according to claim 1, characterized in that the object parameter describes at least one chemical and/or geometric and/or at least physical parameter of the three-dimensional object or object section to be produced or produced within the scope of anth extrusion-based manufacture process which can be carried out or is carried out by means of the apparatus.
11. Apparatus according to claim 1, characterized in that the device is configured to generate image information describing a one- or multi-dimensional image of corresponding parameter information.
12. Apparatus according to claim 11, characterized by an output device which is configured to output corresponding image information to or via an output element.
13. Apparatus according to claim 1, characterized in that the device is configured to compare corresponding parameter information with at least one, in particular corresponding, reference parameter information and to generate comparison information describing a respective comparison result.
14. Apparatus according to claim 1, characterized by a control device which is configured to control the operation of the apparatus, in particular the operation of the extrusion unit of the apparatus, wherein the control device is configured to control the operation of the apparatus, in particular the operation of the extrusion unit of the apparatus, on the basis of corresponding parameter information and/or on the basis of corresponding comparison information.
15. Apparatus according to claim 1, characterized by a temperature control device which is assigned to the device and is configured for temperature control, in particular for cooling of the device.
16. Apparatus according to claim 15, characterized in that the temperature control device is configured as or comprises a heat exchanger device.
17. Apparatus according to claim 16, characterized in that the heat exchanger device comprises at least two flow channel structures, wherein a first flow channel structure through which a first temperature control fluid can flow extends through a first spatial volume in which the device, in particular at least one detection element of the detection device of the device, is arranged or formed, and a second flow channel structure through which a second temperature control fluid can flow extends through a second spatial volume separated from the first spatial volume by a heat transfer structure, in particular a wall structure.
18. Apparatus according to claim 1, characterized in that the detection region of one or more detection elements of the detection device of the device is alignable or aligned with a region below the outlet region of the extrusion unit.
19. Method for the extrusion-based manufacture of at least one three-dimensional object, in particular by means of an comprising the steps: detection of parameter information relating to a process parameter of an extrusion-based manufacturing process which can be carried out or is carried out by means of the apparatus and/or relating to an object parameter of a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus, as well as generation of position information and/or time information describing a detection position and/or a detection time of corresponding parameter information object information.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0064] The invention is explained again by means of exemplary embodiments in the drawings.
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DETAILED DESCRIPTION
[0075] The apparatus 1 is therefore configured for the extrusion-based manufacture of at least one three-dimensional object, i.e. in particular for the extrusion-based manufacture of at least one three-dimensional object by means of an at least sectional, if necessary complete, layer-by-layer extrusion-based construction of a corresponding three-dimensional object. The extrusion-based manufacture of a corresponding three-dimensional object can thus be carried out by means of the apparatus 1 at least in sections, optionally completely, in layers. The apparatus 1 is accordingly configured for extrusion-based processing of at least one extrusion material, i.e. for extrusion of at least one extrusion material onto a substrate. An extrusion material is typically understood to be an extrudable plastic material.
[0076] The apparatus 1 comprises an extrusion unit 2, which is configured for melting or plasticizing a corresponding extrusion material and for applying, in particular in web or strand form, a molten extrusion material to a substrate, such as, for example, a building platform 3 or an object, or to a layer or stratum of the extrusion material or of an extrusion material that has already been applied to a substrate, which may also be understood to mean only a single web or strand of material. The extrusion unit 2 is in particular configured to apply a melted extrusion material continuously or quasi-continuously, i.e., for example, in a continuous or quasi-continuous material or melt strand or in a continuous or quasi-continuous material or melt strand, to a substrate.
[0077] The extrusion unit 2 is mounted so as to be movable relative to a substrate in at least one translatory and/or rotatory degree of freedom of movement. Exemplary translational degrees of freedom of movement of the extrusion unit 2 are translational movements along one or more axes of the coordinate system shown in
[0078] As indicated in
[0079] As indicated in
[0080] The extruder chamber 2.1 can have differently functionalized regions or regions, such as, for example, a filling region, in which the extruder chamber 2.2 is filled with extrusion material to be melted, a melting region, in which the melting of the extrusion material to be melted filled into the extruder chamber 2.1 takes place, as well as the aforementioned outlet region 2.3, via which extrusion material melted by means of the extrusion unit 2 can be discharged onto a substrate.
[0081] The aforementioned components of the extrusion unit 2 can be coupled together to form an extrusion assembly, or coupled together during operation of the extrusion unit.
[0082] The apparatus 1 further comprises a hardware- and/or software-implemented device 6, which is configured to acquire parameter information relating to a process parameter of an extrusion-based manufacturing process that can be carried out or is carried out by means of the apparatus 1 and/or to an object parameter of a three-dimensional object that is to be manufactured or is manufactured by means of the apparatus 1, and to generate position information and/or time information describing a detection position and/or a detection time of corresponding parameter information.
[0083] By means of the device 6, parameter information can thus be acquired which describes process parameters of an extrusion-based manufacturing process that can be carried out or is carried out by means of the apparatus 1, i.e. generally parameters which directly or indirectly describe an extrusion-based manufacturing process which can be carried out or is carried out by means of the apparatus 1, and/or which relate to object parameters of a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus 1, i.e. generally parameters which directly or indirectly describe a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus 1. By means of corresponding parameter information—which may, for example, be data that can be processed by means of data processing—both manufacturing processes that can be carried out or are carried out by means of the apparatus 1 and three-dimensional objects that can be manufactured or are manufactured by means of a manufacturing process that can be carried out or is carried out by means of the apparatus 1 can therefore be described at least partially, if necessary completely.
[0084] Corresponding process parameters that can be detected by means of the device 6 can, for example, concern the following process parameters:
[0085] A process parameter can describe at least one chemical and/or at least physical parameter of a process space in which an extrusion-based manufacturing process that can be performed or is performed by means of the apparatus 1 takes place. A corresponding chemical parameter of a process space may in particular be a chemical composition of an atmosphere prevailing within the process space, in particular a gas atmosphere. A corresponding chemical parameter may also be a gradient of an atmosphere prevailing within the process space, in particular a gas atmosphere. A corresponding physical parameter of a process space may in particular be a pressure prevailing within the process space or a temperature prevailing within the process space. A corresponding physical parameter can also be a gradient of a pressure prevailing within the process space or a temperature prevailing within the process space.
[0086] Alternatively or additionally, a corresponding process parameter may describe at least one chemical and/or geometric and/or physical parameter of at least one extrusion material that can be used or is used in the context of an extrusion-based manufacturing process that can be carried out or is carried out by means of the apparatus 1. A corresponding chemical parameter of an extrusion material can in particular be a chemical composition of an extrusion material. A corresponding chemical parameter may also be a gradient of a chemical composition of an extrusion material. A corresponding geometric parameter of an extrusion material, in particular of an extrusion material web applied to a substrate, can in particular be a dimension, in particular a height, length, width, and/or a shape, in particular a cross-sectional shape, of an extrusion material, in particular of a material or melt strand applied to a substrate or of a material or melt strand applied to a substrate. A corresponding geometric parameter can also be a gradient of a dimension, in particular a height, length, width, and/or a shape, in particular a cross-sectional shape, of an extrusion material, in particular of a material or melt strand applied to a substrate or of a material or melt strand applied to a substrate. A corresponding physical parameter of an extrusion material may be, in particular, a density, a strength, a temperature, a surface texture or a viscosity of an extrusion material. A corresponding physical parameter may also be a gradient of a density, a strength, a temperature, a surface condition, or a viscosity of an extrusion material.
[0087] Alternatively or additionally, a corresponding process parameter may describe a parameter, in particular a movement parameter, possibly local and/or temporal, of a movement path of the extrusion unit 2 and/or of a material or melt strand applied to a substrate via the extrusion unit 2 or of a material or melt strand applied to a substrate.
[0088] Alternatively or additionally, a corresponding process parameter may describe a parameter of a substrate, such as the building platform 3. A corresponding parameter of a subsurface can be in particular a temperature, a surface condition, of a subsurface. A corresponding parameter can also be a gradient of a temperature or a surface condition of a substrate.
[0089] Corresponding object parameters that can be detected by means of the device 6 can, for example, concern the following object parameters:
[0090] A corresponding object parameter may describe at least one chemical and/or geometric and/or at least physical parameter of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding chemical parameter may in particular be a chemical composition of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding chemical parameter may also be a gradient of a chemical composition of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding geometric parameter may in particular be a dimension, in particular a height, length, width, and/or shape, in particular a cross-sectional shape, of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding geometric parameter can also be a gradient of a dimension, in particular a height, length, width, and/or a shape, in particular a cross-sectional shape, of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding physical parameter can in particular be a density, a mass, a surface quality, a strength, of a three-dimensional object or object section to be produced or produced by means of the apparatus 1. A corresponding physical parameter may also be a gradient of a density, a mass, a surface quality, or a strength of a three-dimensional object or object section to be produced or produced by means of the apparatus 1.
[0091] The device 6 is, as mentioned, in addition to the detection of corresponding parameter information also configured for the generation of position information and/or time information, such as position coordinates and/or time coordinates, which describe a detection position and/or a detection time of a corresponding parameter information. In particular, the device 6 is also configured for assigning position information and/or time information describing a detection position and/or a detection time of a corresponding parameter information to respective parameter information. By means of the device 6, corresponding descriptive position information and/or time information can therefore be generated for the respective detected parameter information and assigned to it. Each piece of parameter information can therefore be provided with a “position and/or time stamp” by means of data processing, by means of which it can be identified at which position and/or at which time the respective piece of parameter information was detected. The position can be described by parameters, such as coordinates, which define a unique position of the position in a spatial volume, i.e. in particular in a construction volume of the apparatus 1.
[0092] The device 6 can therefore comprise, on the one hand, a hardware- and/or software-implemented detection device 7, which is configured to acquire parameter information, and, on the other hand, a hardware- and/or software-implemented assignment device 8, which is configured to assign to a corresponding parameter information position information and/or time information, which describes a respective detection position and/or a detection time of corresponding parameter information.
[0093] By means of the device 6, therefore, a meaningful process monitoring and evaluation can be realized, which can take into account both corresponding process parameters and corresponding object parameters, so that a spatially and/or temporally resolved data image of a manufacturing process that can be carried out or is carried out by means of the apparatus 1 can be obtained, as well as a spatially and/or temporally resolved data image of a three-dimensional object to be produced or produced by means of a manufacturing process that can be carried out or is carried out by means of the apparatus 1. In particular, the possibility of generating or assigning corresponding position information and/or time information to respective parameter information provides a meaningful image of a manufacturing process or the (successive) construction of a three-dimensional object, since the manufacturing process or the (successive) construction of a three-dimensional object can be reconstructed, if necessary, in real time, with spatial and/or temporal resolution.
[0094] The detection device 7 may comprise one or more detection elements 7.1 configured to detect parameter information. The detection device 7 can in particular be configured as a sensor device, so that the detection elements 7.1 can each be configured as sensor elements.
[0095] In particular, the detection device 7 may be configured, for example, as an acoustic and/or optical and/or thermal detection device, which comprises at least one detection or sensor element for acoustic and/or optical and/or thermal detection of parameter information. The detection device 7 may therefore be configured in particular as an acoustic and/or optical and/or thermal sensor device which comprises an acoustic and/or optical and/or thermal sensor element. An acoustic detection or sensor element can be, for example, a sound element, in particular an ultrasonic sensor element, an optical detection or sensor element can be, for example, an image detection element, such as a CCD sensor element, a pixel sensor element, etc., a thermal detection or sensor element can be, for example, a temperature detection element, such as an infrared sensor element. In principle, all detection or sensor elements can be used which enable the detection of corresponding parameter information.
[0096] Of course, the device 6 or the detection device 7 or an evaluation device 9 optionally assigned to the detection device 7 in terms of hardware and/or software can be configured to generate corresponding parameter information on the basis of the signals supplied by respective detection or sensor elements. A corresponding evaluation device 9 can, if present, form a hardware and/or software component of the device 6.
[0097] The device 6 or a hardware- and/or software-implemented plausibility apparatus 16 optionally assignable to or associated with the device 6 can further be configured to check, for example, parameter information supplied by different detection elements 7.1 of the detection device 7 with regard to at least one plausibility criterion. For example, parameter information, such as temperature information, supplied by a first detection element 7.1 can be compared with parameter information, such as temperature information, supplied by a further detection element 7.1, and the result of the comparison can be checked for plausibility with regard to at least one plausibility criterion, such as a specific absolute or relative deviation, a reference value, etc. A corresponding plausibility apparatus 16, if present, can form a hardware and/or software component of the device 6.
[0098] The device 6 can be configured to generate one or more image information items describing a one- or multi-dimensional image of corresponding parameter information. The device 6 can therefore be configured to process corresponding parameter information and/or corresponding position information and/or time information by means of data processing to form a one-dimensional or multi-dimensional image of a manufacturing process which can be carried out or is carried out by means of the apparatus 1 and/or of a three-dimensional object which can be manufactured or is manufactured by means of the apparatus. A corresponding image may include the aforementioned spatially and/or temporally resolved illustration of a manufacturing process or of the structure of a three-dimensional object, which can enable the likewise aforementioned spatially and/or temporally resolved reconstruction of the manufacturing process or of the structure of the three-dimensional object.
[0099] The apparatus 1 may further comprise at least one output device 10, which is configured to output corresponding image information at or via an output element. The term “output” in this context means both a display of corresponding image information on an output element comprising a display surface, such as a display, and the wired or wireless data transmission of corresponding image information via an output element comprising a data transmission interface. Corresponding image information—the same also applies to corresponding parameter information together with position information and/or time information assigned thereto—can be transmitted, as indicated by the arrow P1, for example for the purpose of further evaluation or processing or mere storage, for example in order to realize archiving or documentation of a manufacturing process carried out by means of the apparatus 1, by wire or wirelessly to an external communication partner 11, such as, for example, an external data processing device and/or an external data storage. For data transmission of corresponding information, the apparatus 1 may comprise a data transmission device not shown.
[0100] The device 6 or a hardware and/or software comparison apparatus 12 that can be assigned or is assigned to the device 6 can furthermore be configured to compare corresponding parameter information with at least one, in particular corresponding, reference parameter information and to generate comparison information describing a respective comparison result. By means of respective comparison information, in turn, meaningful statements can be made, in particular spatially and/or temporally resolved, about the quality of a manufacturing process which can be carried out or is carried out by means of the apparatus 1 and/or of a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus 1, so that very relevant and meaningful information can be obtained with regard to the aforementioned process monitoring and evaluation.
[0101] The apparatus 1 may comprise a control apparatus 13 implemented in terms of hardware and/or software, which is configured for controlling the operation of the apparatus 1, in particular the operation of the extrusion unit 2 or of the support device 5 supporting the extrusion unit 2. In particular, the control apparatus 13 may be configured to control the operation of the apparatus 1, in particular the operation of the extrusion unit 2 or the support device 5 supporting the extrusion unit 2, on the basis of corresponding parameter information and/or on the basis of corresponding comparison information. Consequently, corresponding parameter information and/or comparison information may be used as a basis for controlling the operation of the apparatus 1, in particular the extrusion unit 2 or the support device supporting the extrusion unit 2. This can also include that on the basis of corresponding parameter information and/or comparison information, for example, certain operating parameters of the apparatus 1 can be adjusted, in particular in real time, at least temporarily, for example in order to compensate and/or offset detected deviations of a certain process parameter and/or object parameter. Similarly, process parameters and/or object parameters can be adapted or changed, for example in order to compensate and/or offset detected deviations of a particular process parameter and/or object parameter. Specifically, a corresponding adaptation may include, for example, an at least temporary adaptation or modification of a movement path of the extrusion unit 2 or of the support device 5 supporting the extrusion unit 2, or an at least temporary adaptation or modification of the application or discharge quantity of extrusion material onto a substrate, or an at least temporary adaptation or modification of a movement profile, in particular a movement path, a movement speed, etc., of the support device 5 supporting the extrusion unit 2.
[0102] With regard to the arrangement of the device 6, i.e. in particular the detection device 7, there are basically two different possibilities, which are explained in more detail below also with reference to the exemplary embodiments shown in
[0103] In the stationary variant shown in
[0104] In the non-stationary variant shown in
[0105] Likewise, in the non-stationary variant, the device 6 or the detection device 7 may be arranged or formed directly or indirectly on or in a stationary component of the apparatus 1, such as the housing structure 14, the building platform 3, etc., wherein it is arranged or formed to be movable relative to the stationary component of the apparatus 1 in at least one degree of freedom of movement. Movements of the device 6 or the detection device 7 typically result here from the (active) movements of the device 6 or the detection device 7 relative to the stationary component of the apparatus
[0106] Likewise, as
[0107] Basically, for the non-stationary variant, movements of the detection device 7 can be performed on the basis of control data, i.e. in particular movement data, of the extrusion unit 2. Movements of the detection device 7 can thus directly or indirectly follow movements of the extrusion unit 2, which are described by corresponding control or movement data.
[0108] Alternatively or supplementarily, however, it is possible that movements of the detection device 6 are carried out on the basis of other data, i.e., for example, on the basis of detection data of certain chemical and/or physical parameters, such as, for example, a possibly varying temperature of, for example, a substrate, a chemical atmosphere varying, for example, due to an outgassing of an extrusion material, and so on. Accordingly, the detection device 7 can be moved, for example, following a certain sensed temperature profile. Corresponding detection data can be detected by the detection device 7 or its associated detection elements 7.1 or by a detection device (not shown) separate from the detection device 7.
[0109] The exemplary embodiment shown in
[0110] For all corresponding embodiments, corresponding degrees of freedom of movement of respective non-stationary components of the apparatus 1 and the detection device 7 or the detection element 7.1, as indicated in
[0111] For the sake of completeness, it should be noted that
[0112] Based on the exemplary embodiment shown in
[0113] Based on the exemplary embodiment shown in
[0114] On the basis of the embodiments shown in
[0115] Via a correspondingly configured detection device 7, parameter information can thus be detected, e.g., in advance and/or in retrospect of a material or melt strand to be applied to a substrate by means of the extrusion unit 2 or of a material or melt strand 15 to be applied to a substrate. A lateral detection of parameter information with respect to a longitudinal extension of a corresponding material or melt strand or a corresponding material or melt strand 15 is also conceivable.
[0116] Parameter information can thereby be detected, in particular also simultaneously with a movement of the extrusion unit 2 along a movement path of the extrusion unit 2 following a cross-section of a three-dimensional object to be produced, in which a material or melt strand or a material or melt strand 15 is applied to a substrate, in one or more alignments and/or positions around the extrusion unit 2 or the outlet region 2.3 of the extrusion unit 2, so that very relevant and meaningful information can be obtained with regard to the aforementioned process monitoring and evaluation.
[0117] In all exemplary embodiments, the movable mounting of the detection device 7 can be implemented via at least one drive device (not shown) which can be directly or indirectly assigned or associated with the detection device 7, in particular a motor drive device (not shown), which is configured to generate a drive force or a corresponding drive torque which sets the detection device 7 in motion in at least one degree of freedom of movement. In addition, the detection device 7 can be assigned or associated with a guide device (not shown), which comprises one or more guide elements, which in each case define at least one movement path or at least one degree of freedom of movement, along which or in which the detection device 7 can be moved.
[0118] In general, it should be noted for exemplary embodiments of the detection device 7 with several detection elements 7.1 that the detection regions of the respective detection elements 7.1 can overlap at least in sections, if necessary, completely. Consequently, in a corresponding overlapping region, several parameter information items of the same, similar or different information content can be acquired via several, possibly different, detection elements 7.1, so that very relevant and meaningful information can be obtained with regard to the aforementioned process monitoring and evaluation.
[0119] Furthermore, for embodiments of the detection device 7 with multiple detection elements 7.1, it is generally to be noted that the detection elements 7.1 are either permanently operated or, for example to ensure that only relevant parameter information is detected, based on at least one, e.g. static or dynamic, location criterion, i.e. e.g. only when one or more detection elements 7.1 are in a certain orientation and/or position, and/or on the basis of at least one, e.g. static or dynamic, time criterion, i.e. e.g. only at certain points in time, and/or on the basis of a static or dynamic movement criterion of the extrusion unit 2, i.e. e.g. only when the extrusion unit 2 is moving along an extrusion material web. Respective location and/or time criteria can be determined, for example, on the basis of construction data of a respective three-dimensional object to be produced.
[0120]
[0121] Accordingly, on the basis of
[0122] On the basis of
[0123] It is further apparent from
[0124] In the exemplary embodiment shown in
[0125] In the exemplary embodiment, the heat exchanger apparatus 17 comprises two flow channel structures. A first flow channel structure, which can be flowed through or through by the first temperature control fluid TF1 and can be seen in
[0126] One or more flow generation apparatuses 17.7, i.e., e.g., blower and/or pump devices, can be assigned to respective flow channel structures, which enable the respective temperature control fluid TF1, TF2 to be conveyed through the spatial volumes 16.1-16.3 associated with the respective flow channel structures. A corresponding flow generation apparatus 17.7—configured as a blower device as an example—is shown in
[0127] On the basis of
[0128] In the exemplary embodiment, the housing assembly 16 also comprises a chamber-like or chamber-shaped third spatial volume 16.1 communicating with the first spatial volume through which the first temperature control fluid TF1 can flow or is flowing through an opening 16.5 visible in
[0129] In connection with
[0130] In connection with all exemplary embodiments, it should be mentioned once again that one or more detection elements 7.1 can be arranged or formed so as to be movable in at least one translatory and/or rotatory degree of freedom of movement relative to the outlet region of the extrusion unit 2 in the region of the outlet region. Corresponding rotational movements can, as likewise mentioned, also take place about an axis of rotation oriented at right angles and thus transversely to the extruder axis, so that one or more detection elements 7.1 can be pivotably mounted, which makes it possible to align the detection range of the respective detection elements 7.1 directly with the or an region below the outlet region of the extrusion unit 2 in order to detect parameter information in this region.
[0131] Equally, however, it is conceivable that the detection elements 7.1 are arranged or aligned with a respective detection region which is aligned with the or a region below the outlet region of the extrusion unit 2.
[0132] With the embodiments shown in the Figures, a method for extrusion-based manufacturing of at least one three-dimensional object can be implemented. The method comprises the following steps: detection of at least one parameter information relating to a process parameter of an extrusion-based manufacturing process which can be carried out or is carried out by means of the apparatus 1 and/or an object parameter of a three-dimensional object which is to be manufactured or is manufactured by means of the apparatus 1, and generation of a position information and/or time information describing a detection position and/or a detection time of a corresponding parameter information object information.
[0133] Individual, multiple, or all of the features described in connection with a particular embodiment can be combined with individual, multiple, or all of the features described in connection with at least one other embodiment.