Method for operating a print head for a 3D printer and a print head for a 3D printer for carrying out this method
The print head design for 3D printers uses granules with active control and thermal management to achieve stable and dynamic printing, addressing the inefficiencies of filament-based systems and enhancing thermal and mechanical durability.
Patent Information
- Application Number
- JP2023555686
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-18
- Filing Date
- 2022-03-10
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2042-03-10
AI Technical Summary
Existing 3D printers using filament materials are expensive, and those using granules face issues with wear and inefficient thermal management, leading to unstable and less dynamic printing processes.
A print head design utilizing granules with active control of a piston and heating elements, combined with a cooling system, allows for dynamic and stable printing by precisely controlling the material's phase transition and ejection, using a separate piston bushing to manage wear and thermal energy efficiently.
Enables highly dynamic and stable printing with precise material ejection, reducing wear and equipment costs, and ensuring consistent track thickness, while allowing for faster movement and improved thermal management.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for operating a print head for a 3D printer, and to a print head for a 3D printer for implementing this method. [Background technology]
[0002] A 3D printer for a viscous material includes a solid phase of the material as a starting material, from which a liquid phase is generated and selectively applied to the locations corresponding to the object to be created. Such a 3D printer includes a print head in which the starting material is prepared for printing. Furthermore, a means is provided for generating relative movement between the print head and a work surface on which the object is to be created. Either the work surface alone or both the print head and the work surface can move.
[0003] The print head has a first operating state in which liquid material is released from it and a second operating state in which liquid material is not released from it, for example, when it is to be moved to another position on the work surface and material is not to be applied along the way thereto. The print head can be switched between these two operating states, for example, by switching the delivery of solid starting material on or off.
[0004] The most widespread method is "fused deposition modeling" (FDM), in which a filament of starting material is melted in an electrically heated extrusion nozzle and applied layer by layer to a platform. This type of filament form makes the starting material very expensive.
[0005] Patent document 1 proposes feeding the starting material in granular form and transporting it by a warm conveyor to a heated zone, from which it emerges in plasticized form. On the one hand, granules are clearly more advantageous, and on the other hand, mixtures of different thermoplastic materials can easily be produced in this way.
[0006] Furthermore, Patent Document 2 discloses a print head in which granules are plasticized via a piston and a heated section. The piston presses on the granules, compressing them and transporting them to a plasticization zone in the lower region of the print head. In doing so, forces are generated that exert a strong load on the piston and the cylinder wall of the print head, which can lead to increased wear on the cylinder wall of the print head housing. Furthermore, a complex melting geometry with a heat-conducting structure is disclosed, which injects the heat power of the heating element into the plasticized material, converting it into a liquid phase. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] US Patent Application Publication No. 2016 / 082627A1 [Patent Document 2] German Patent Application Publication No. 102016222306A1 Summary of the Invention [Problem to be solved by the invention]
[0008] The object of the present invention is to provide a method for operating a print head for a 3D printer and a print head for a 3D printer, which method and print head enable a highly dynamic and stable printing process. [Means for solving the problem]
[0009] Within the scope of the present invention, a method for operating a print head for a 3D printer has been developed, as well as a print head for a 3D printer for implementing the method.
[0010] This method according to the invention comprises the following steps: - a supply device fills the hollow chamber with printable material; - the opening cross section of the piston bush is closed by feeding the piston from the start position toward the nozzle of the print head, -The material is transformed from a solid phase to a plastic phase and then to a liquid phase, -The material is compressed, - the spring constant of the liquid phase is determined; -The liquid phase is ready for printing, - A liquid phase of material is ejected from a nozzle to print a three-dimensional component, -The piston returns to its starting position, Each step is repeated until the end of the method.
[0011] In one development of the invention, at least closing, conversion, compression, determination of the spring constant, preparation for printing and ejection can be carried out by active control of the actuator device by a control and regulation unit, and the results of the evaluation unit from the sensor measurement values are transferred to the control and regulation unit.
[0012] The invention further relates to a print head for a 3D printer for carrying out the method according to the invention, comprising an actuator device for controlling a piston arranged in a housing of the print head, a supply device for printable material, a flange with a cooling device arranged in the housing and in the supply device, a nozzle head with a heating element for converting the material from a solid phase via a plastic phase to a liquid phase, and a nozzle for ejecting the liquid phase of the material from the nozzle head, wherein according to the invention a control and regulation unit is intended for active control of the actuator device for moving the piston and for active control of the heating element according to the movement strategy to be performed for filling and printing.
[0013] In a further development of the print head, the evaluation unit is intended to evaluate the measurement values of the sensors of the print head and to forward the results to the control and regulation unit for active control of the actuator device and for active control of the heating element. The evaluation unit can be constructed separately from the control and regulation unit or can be integrated into it.
[0014] The advantage is that the functionality of the print head can be checked by detecting and evaluating sensor values depending on the respective operating state, thereby indicating defects or errors in the process at an early stage. Furthermore, the sensor values can be detected to adjust a defined setpoint. A correction factor can also be calculated and transmitted to the control and regulation unit. This correction factor can, for example, be added to the setpoint, thereby achieving the desired, consistent melt discharge from the nozzles. Active control of the heating elements has the advantage that it allows dynamic control of the temperature, which affects both heating and cooling: for example, when the thermal energy of the first heating element is reduced by the control and regulation unit, cooling at the flange continues, which removes energy from the plastic phase of the material, causing it to cool rapidly. Furthermore, active control of the actuator device and heating element allows material to be dispensed from the nozzle on an as-needed basis, and different orbital speeds of the print head can be compensated for by actively controlled dispensed volume of material. Active control therefore offers advantages over conventional NC systems that always dispense the same volume regardless of orbital speed, or that control the amount to be dispensed at a constant feed rate without actively controlling the process.
[0015] The actuator device for controlling the piston may be, for example, an electric motor with a mechanical transmission or a hydraulic drive with a hydraulic pressure source. Electric motors as actuator devices have the advantage that they have a lower weight than hydraulic drives and thereby serve for a higher dynamics of the entire printer and printing process, since only a lower mass has to be accelerated. A hydraulic drive has the advantage that high forces can be achieved when the piston is controlled.
[0016] The supply device for the printable material may in particular be intended as a supply for a material or starting material that is present as granules. The starting material may in particular be a thermoplastic material. It has been found that utilizing granules as a starting material provides inherent advantages over printheads that use filaments made from thermoplastic materials, particularly in terms of the cost of the printer's starting materials.
[0017] Compared to print heads in which the granules are transported by a worm conveyor, the print head according to the invention can be constructed more compactly, which in turn results in the print head being easier and more readily movable, which is particularly advantageous when it is desired to move the print head at very high speeds, in particular at speeds of 100 mm / s or more.
[0018] The flange includes a cooling device, which advantageously allows for optimized heat management in the area of the supply device, thereby preventing the material or granules from sticking to the piston. Furthermore, the nozzle head has a heating element for converting the material from a solid phase, particularly granules, into a liquid phase. The heating device in the nozzle head advantageously serves to precisely direct the heat power to the material to be melted. The liquid phase or melt can then be expelled through the nozzle of the nozzle head by the piston movement.
[0019] The piston bushing is manufactured as a separate piston bushing for guiding the piston, allowing the piston to be guided directly in the piston bushing, rather than being guided in the housing or cylinder of the print head. This has the advantage that any wear that may occur is realized inside the piston bushing, rather than directly on the inner wall of the housing or cylinder. The piston bushing as a separate component has the advantage that it can be replaced when necessary. Furthermore, it is possible to apply pistons and piston bushings that are adapted to each other under various different diameters without other design changes, such as to flanges or nozzle heads.
[0020] In a development of the method, the filling of the cavity, in particular the heatable cavity, with printable material by the supply device comprises at least the following steps: - material or granule particles are introduced into the print head through an opening in the supply device, - Air impact is generated to detach the granule particles from each other.
[0021] In one development, the granule particles are introduced manually or automatically, the granule particles sliding under the influence of gravity into the lower region of the feeding device.
[0022] In a preferred development of the filling, air impacts are generated at intervals, and the granule particles are thrown up in the area of the air impact and, when they fall again, impact the granule particles located below them, stimulating them to slide down into the heated hollow chamber of the printing head.
[0023] An efficient refilling process requires blowing back the granules, which creates a levitation effect so that the granules subsequently slide into the print head. Tossing or blowing is essential for automated applications, and has the advantage that the resulting gravity or impact causes the granules to slide down. If necessary, stuck granules can also be loosened by air impact, which has the advantage of avoiding print head downtime.
[0024] In one development of the method, the closing of the opening cross section of the piston bush by the piston comprises the following steps: -The piston is fed from the starting position on the piston bottom toward the nozzle until it reaches a position below the gate of the piston bush. -The bottom of the piston slides past the gate, shearing the granules.
[0025] The piston bushing has an upper partial region that projects into the flange and a lower partial region that projects into the nozzle head, whereby the upper partial region is arranged in the area of application of the cooling zone of the cooling device of the flange and the lower partial region is arranged in the area of application of the heating zone of the nozzle head, which advantageously allows for an efficient energy extraction from the material in the cooling zone or an efficient energy supply to the material in the heating zone. An opening or opening cross section is arranged in an upper partial region of the piston bushing, allowing material to be fed from a feed device to the piston bushing. A gate is arranged in a lower region of the opening, which forms an obtuse angle with the inner surface of the piston bushing. The gate region is hardened or, alternatively, is manufactured as a separately hardened insert. When the opening is closed by the piston, the material or granules are sheared by the piston at the gate, thereby exerting a strong mechanical load on that part of the piston bushing. The separate piston bushing and the hardened region of the gate advantageously allow for a longer service life and faster replacement of defective components.
[0026] In one development of the method, the transformation of the material from a solid phase, via a plastic phase, into a liquid phase comprises the following steps: The material is heated by the heating element of the nozzle head over each state zone of the print head, and these state zones adjust the state of cohesion of the material to its temperature T S The material's cohesion state is expressed depending on the temperature, and the cohesion state of the material is changed from a solid phase to a plastic phase to a liquid phase through each state zone by the injection of thermal energy from the heating element; -The materials are mixed during compression.
[0027] The print head has different condition zones, starting from the upper part of the piston bushing, through the kidney-shaped part and up to the nozzle, which determine the state of aggregation of the material at its temperature T S The cohesion state of the material is variable across each state zone, from solid to plastic to liquid. The condition zones of the print head preferably include a low temperature zone where the material is in the solid phase, a plasticization zone where the material is in the plastic phase, a melt zone and a process zone where the material is in the liquid phase, respectively, and a mixing zone where the material is in the plastic and liquid phases. Furthermore, the cooling devices in the flange and the piston cooling elements integrated in the piston ensure that the temperature T S In that case, the glass transition temperature T g The glass transition temperature is intended to be below which the material becomes plasticized and transitions to a liquid phase.
[0028] This has the advantage that the bottom surface of the piston is in contact only with the solid phase of the material, and not with the fully plasticized phase. A fully plasticized phase has a viscous, sticky consistency with a strong tendency for surface adhesion. If the piston comes into contact with such a phase, it may adhere to it, which would prevent the additional flow of new granules, for example, when the piston is pulled back. This effect is advantageously avoided.
[0029] To carry out the method, the nozzle head includes two heating zones. The first heating zone includes a partial region of the plasticization zone, a mixing zone, and a partial region of the melt zone, and a first heating element is arranged in the upper nozzle head so that heat energy can be injected from the first heating element into the material through a partial region below the piston bushing, the kidney-shaped part, and a partial area of the upper nozzle head. The second heating zone has a partial region of the melt zone and a process zone arranged therein, and a second heating element is arranged in the lower nozzle head so that thermal energy can be injected from the second heating element through the lower nozzle head into the liquid phase of the material.
[0030] The placement of both heating zones on the nozzle head contributes to more efficient thermal management of the print head, since the thermal energy of the first heating zone serves to favorably pre-plasticize the material without causing it to transition to a liquid phase. This has the advantage that the piston does not stick when compressed, ensuring flawless print head functionality. This effect is optimized in conjunction with the flange cooling device. Furthermore, because the material in the plastic phase is pre-plasticized, the actuator device requires less force when the piston is advanced, which allows for the use of smaller actuators for piston advancement. This reduces equipment costs and leads to improved print head dynamics, since the print head's weight is reduced. This allows for better acceleration and deceleration of the print head during so-called trajectory control to create a component. In the second heating zone, the melt is generated, and the injected thermal energy acts to maintain a relatively constant melt temperature throughout the melt chamber. The melt temperature can be controlled in the second heating zone so that the material is not overheated. This has the advantage that excessive heat loads can be prevented, which would lead to the formation of fission products, such as gases, which, due to the pressure generated in the system, can accelerate further decomposition of the material, with a direct negative impact on its quality.
[0031] The compression and conversion processes are largely simultaneous because during both processes, thermal energy is injected into the printhead through both heating zones.
[0032] In a preferred development of the invention, the compaction of the material during the compaction process comprises the following steps: -The material is pre-compressed by the piston feed, - the nozzle is closed, -The piston feed compresses the material, -The piston is held in the holding position.
[0033] In a further development of the compression process, the pre-compression of the material is carried out in a pressure- and / or force-controlled manner by means of a piston feed, up to a position that is reached when a material-dependent gradient and / or a material-dependent gradient angle of the force and / or pressure curve is achieved and / or exceeded.
[0034] In the next method step, compression of the material by feeding the piston under the closed nozzle is carried out in a pressure-controlled manner, with movement to the holding position being carried out until a peak pressure is reached.
[0035] In one development, during compression the nozzle is closed and the piston needle is lowered into the melt chamber of the nozzle head, so that part of the liquid phase is forced out of the upper region of the melt chamber through the opening in the kidney-shaped part and back from the melt zone to the mixing zone, where it is mixed with the plastic phase from the plasticization zone.
[0036] In one development, the piston is held in a holding position, the pressure and temperature of the liquid phase are measured during the holding process, and the measured values are checked by an evaluation unit for functional control of the compression process.
[0037] In a further development, while the piston is held in the holding position, the nozzle is closed and the piston needle is lowered into the melt chamber, thereby forcing part of the liquid phase from the upper region of the melt chamber through the opening in the kidney-shaped part and back from the melt zone to the mixing zone, whereby part of the liquid phase is mixed with the plastic phase from the plasticization zone in the mixing zone.
[0038] Pre-compression is performed by force- or pressure-controlled control of the piston with an actuator, and the target position of the piston's bottom is in the first third of the plasticization zone, starting from the low-temperature zone. The granules are compressed by the piston's movement in the plasticization zone, while the melt is present in the melt zone between the cavity and the nozzle. This forces the plasticized granules into the melt in the mixing zone. The downward movement of the piston, and the accompanying downward movement of the piston needle toward the nozzle, advantageously expels the melt from the nozzle, thereby displacing any air or bubbles that may still be present from the nozzle head. This clears the nozzle.
[0039] After the pre-compression target position is reached, the nozzles of the printhead are closed.
[0040] To compress the material, the piston is pressure-controlled by the actuator device until a defined peak pressure and thus a peak pressure position is reached. In one development of the method for operating the print head, the nozzle is closed during compression and the piston needle sinks into the melt chamber, thereby displacing part of the liquid phase from the upper region of the melt chamber through the opening in the kidney-shaped part and back from the melt zone to the mixing zone, where it is mixed with the plastic phase from the plasticization zone.
[0041] The peak pressure position is then held, so to speak, for a material-dependent predefined time period, and therefore the peak pressure position is also the holding position of the print head. In one development of the method, while the piston is held in the holding position, the nozzle is closed and the piston needle is lowered into the melt chamber, thereby forcing part of the liquid phase from the upper region of the melt chamber through the opening in the kidney-shaped part and back from the melt zone to the mixing zone, whereby part of the liquid phase is mixed with the plastic phase from the plasticization zone.
[0042] The holding process displaces any remaining air and homogenizes the melt in the mixing zone C. This has the advantage of improving the energy flow and producing a more homogeneous material. The returning melt becomes plastic, and the granules pressed into the kidney-shaped part become molten liquid. This results in a mixing of the material. The holding process described here also has the advantage of serving as a print head analysis and system check, since the following effects can occur when measuring the pressure: A pressure increase in the melt means that the melt will gasify, for example because the melt temperature is too high. A melt temperature that is too high is undesirable, as it can generate air plasma, which leads to chemical breakdown. A significant drop in melt pressure can mean, for example, that the printhead system is not sealed or that there is too much air still in the system. This effect can occur, for example, if the printhead temperature management is not optimally adjusted, resulting in too much cold material being present in the cavity.
[0043] In one development, determining the spring constant of the liquid phase comprises the following steps: - after the end of the hold, there is a pressure-controlled return movement from the hold position to a target position which is reached when the melt pressure reaches the target pressure, - a pressure difference between the peak pressure and the target pressure is determined; - the interval between the holding position and the target position is determined; -The spring constant of the liquid phase is calculated.
[0044] The spring constant is determined from the compressibility of the melt, leading to a correction factor or form factor required for accurate control of the piston by the actuator device. Due to the compressibility of the melt, for example, 1.2 volume units of geometric piston stroke traveled by the piston corresponds to 1.0 volume unit of melt displaced. If compressibility were not present, the ratio would be 1:1.
[0045] Advantageously, the spring constant of the melt is determined, which allows the actuator device to controllably manipulate the piston, which spring constant in particular allows the actual ejection of the melt to achieve a calculated, precise volumetric flow rate of the melt depending on the trajectory speed of the print head moving during printing, i.e., at each printing position under each trajectory speed of the print head, the required amount of melt is ejected towards the component in each case.
[0046] In one development, the preparation of the liquid phase for printing comprises the following steps: -Depending on the spring constant, the liquid phase is actively decompressed by the retraction of the piston, -The nozzle is opened, -The liquid phase is compressed at the start of printing.
[0047] During active decompression, the piston is pulled back by approximately 1 to 2 millimeters depending on the determined spring constant, which advantageously ensures that the melt does not escape from the nozzle or nozzle opening when it subsequently opens. This occurs due to the influence of gravity due to the existing open system, while the position is still maintained. At the same time, the melt is unloaded in a spring-like manner.
[0048] The compression then initiates a new printing preparation. The entire printhead system is compressible, since the melt may have a compression of, for example, about 20%. Therefore, the volume displaced by the piston feed does not correspond to the volume of material being ejected, which can result in inaccurate and irregular ejection. However, by implementing the method according to the present invention, this can be advantageously avoided.
[0049] In one development, the ejection of the liquid phase, i.e. the printing, is carried out in a pressure-controlled manner: - the pressure in the melt chamber is constantly measured, The piston is actively controlled via a control and regulation unit, and the piston movement is adapted in a pressure-dependent manner by a correction factor, which is determined from the spring constant of the liquid phase of the material.
[0050] The pressure measured corresponds to the pressure caused by the discharge of the liquid phase into the component, and a correction factor is preferred to compensate for the compressibility of the liquid phase.
[0051] Compression of the melt in the melt chamber at the start of printing is generated partly through friction at the nozzle opening of the nozzle as the melt is "squeezed" out, and partly through resistance as it is printed onto the component or substrate support on which the component is placed. Uniform melt dispensing is achieved by intelligent control of the print head, and the asynchronous movement of the piston, adapted by a correction factor, is achieved by using an electronic transmission in the actuator device. The correction factor, determined in particular from the determined spring constant of the melt, essentially influences the system. Therefore, the method according to the present invention is not limited to synchronous movement according to conventional NC systems.
[0052] For such cases, electrically driven actuator devices have proven to be dynamic and very efficient.
[0053] Furthermore, the method has the advantage of allowing for a consistent and constant track thickness from the first drop onwards.
[0054] A further advantage results from the design of the print head: the piston bushing can have a stop between the upper and lower partial regions, which separates the flange and the nozzle head from one another. In this way, the piston bushing and in particular the stop separate the cooled flange from the heated nozzle head, which is advantageously prevented from coming into contact with one another. Furthermore, a kidney-shaped part may be arranged in a lower partial region of the piston bushing, the kidney-shaped part having a centrally extending bore for receiving a piston needle of the piston.
[0055] The piston of the print head includes a first piston portion for connecting to the actuator device and a piston head for connecting to the first piston portion and accommodating the piston needle. The first piston portion is preferably configured as an aluminum hollow piston, which advantageously allows for the introduction of a coolant through the first piston portion, thereby achieving piston cooling. The piston head has a lower surface facing the nozzle, and the piston needle protrudes from the center of this lower surface. The lower surface of the piston head minus the imaginary surface of the piston needle forms the piston surface for generating pressure on the material. The lower surface of the piston head is cooled by piston cooling, thereby locally reducing the viscosity of the melt or plastic material at the bottom of the piston. This advantageously prevents the liquid melt from flowing toward the drive device, thereby preventing the piston from getting stuck in the piston bushing and also preventing the melt from entering the drive device. Furthermore, material is more easily released from the bottom of the piston or the underside of the piston head when pulled back, so that when the starting point or initial point of the piston is reached, the solid phase material or granules can be easily refilled without residual material adhering to the bottom of the piston. A temperature sensor is preferably attached to the underside of the piston head or the bottom of the piston. The positioning of the temperature sensor allows for position-dependent thermal management of the print head, which prevents the melt from coming into contact with the underside of the piston head and allows for faster heating of the material. This has the advantage of speeding up the filling process of the print head. The piston head is preferably manufactured as a cylindrical component and is made of a heat-resistant material. The combination of manufacturing the first piston part from aluminum and the piston head, for example, from steel, has proven to be advantageous, since in this way the piston has an elastic upper area for bearing mechanical stresses and a heat-resistant lower area in the area of the material to be heated. The piston needle, depending on the piston position, either only partially penetrates or completely penetrates the bore of the kidney-shaped part, whereby the piston needle is advantageously guided within the central bore of the kidney-shaped part.
[0056] The kidney-shaped part has concentrically arranged openings which form a fluid connection between a hollow chamber arranged in the piston bushing and a melt chamber arranged in the lower part of the nozzle head.
[0057] The hollow chamber is disposed within the piston bushing and is defined by a volume whose outer surface is defined by the inner surface of the piston bushing, the outer surface of the piston needle, the upper surface of the kidney-shaped part, and the lower surface of the piston. The movement of the piston compresses the material or granules through the underside or face of the piston head within the hollow chamber. During compression, the thermal management of the print head is adjusted so that the material forms a plastic phase rather than a liquid or melt within the hollow chamber. This advantageously prevents the plasticized material from adhering to the underside of the piston. However, during compression, a portion of the liquid or melt is forced out of the melt chamber through an opening in the concentric kidney-shaped element and into the hollow chamber of the piston bushing by the piston needle that penetrates the melt chamber. This causes portions of the melt to mix with portions of the plastic phase. This releases energy into the plastic phase, thereby advantageously producing a more homogeneous material. The kidney-shaped element thus functions as a mixer or static mixer. This is because, apart from the piston movement, no other moving parts are required to mix the plastic and liquid phases. The kidney-shaped part configuration thus advantageously serves a blending effect which leads to improved mixing of the material or melt with the plasticized material. The kidney-shaped part guides the heating energy of the heating element from the nozzle head both to the melt and to the piston needle, which advantageously serves for improved energy management when the melt is heated.
[0058] Furthermore, the kidney-shaped part can be manufactured as a separate component or can be integral with the piston bushing.
[0059] Furthermore, in the melt chamber, the liquid phase pressure p L Pressure sensor and / or temperature T L A temperature sensor is placed at the pressure p L The measurement of the temperature T is the primary parameter for determining the melt discharge or mass flow rate from the outlet opening. L The additional measurement of the temperature T makes it possible to take into account the temperature dependence of the viscosity of the material when determining the mass flow rate Q. The piston feed allows for precise control of the amount to be metered. A particularly constant and precise control of the temperature T is essential for the quality of the components or objects to be manufactured. L Control of the temperature is even more important to avoid thermal degradation of the material. Furthermore, the actuator device and / or the piston may be provided with a stroke measurement system for the position s of the piston and / or a sensor for the force F exerted by the piston on the material or a sensor for the hydraulic pressure p exerted on the piston. H A sensor for the The piston feed is a measure of the amount of material to be expelled. This amount can be controlled, among other things, through a stroke measurement system. Furthermore, the force F is directly correlated to the material pressure. Furthermore, the piston, especially the underside of the piston head, is at the temperature T K Temperature sensors are placed for This arrangement of the temperature sensors allows for piston-position-dependent thermal management of the print head, which prevents the melt from coming into contact with the underside of the piston head and allows for faster heating of the material, which advantageously speeds up or reduces the time required for the filling process of the print head.
[0060] Further ways of improving the present invention will be explained in detail below in conjunction with the description of preferred embodiments of the invention with reference to the drawings. [Brief explanation of the drawings]
[0061] [Figure 1] 1 is a print head according to the present invention. [Figure 2] FIG. 2 is another view of a printhead according to the present invention. [Figure 3] 1 is a portion of a print head according to the present invention. [Figure 4] 1 is a schematic diagram showing a print head according to the present invention; [Figure 5] 4 is a flow chart of a method according to the present invention for operating a print head. [Figure 6] 1 shows a portion of a print head according to the present invention and the pressure profile. [Figure 7] 10A-10C show various positions of the pistons of a printhead according to the present invention; [Figure 8] 1 is a graph showing piston stroke, print head orbital velocity, and pressure progression. [Figure 9] 1 is a flow chart of a method for filling a cavity in a printhead. [Figure 10] 10 is a flowchart of a method for closing an open cross section of a piston bushing of a print head. [Figure 11] 1 is a flow chart of a method for transforming a material from a solid phase to a plastic phase to a liquid phase. [Figure 12] 1 is a flow chart of a method for compressing a material. [Figure 13] 1 is a flow chart of a method for determining the spring constant of the liquid phase of a material. [Figure 14] 1 is a flow chart of a method for preparing the liquid phase of a material for printing. [Figure 15] 1 is a flow chart of a method for dispensing a liquid phase. DETAILED DESCRIPTION OF THE INVENTION
[0062] 1 shows a print head 100 for a 3D printer, including an actuator arrangement 110 arranged in a housing 1 of the print head 100 for controlling a piston 3, a supply device 2 for a printable material 10, a flange 5 having a cooling arrangement 50 arranged in the housing 1 and in the supply device 2, a nozzle head 6 having heating elements 61, 63 for converting the material 10 from a solid phase 10 through a plastic phase 11 to a liquid phase 12, and a nozzle 8 for ejecting the liquid phase 12 of the material 10 from the nozzle head 6. The print head 100 includes a separate piston bushing 4 for guiding the piston 3.
[0063] The flange 5 , which is internally cooled by a cooling device 50 , serves to thermally isolate the heated lower region of the print head 100 from the actuator device 110 and hence from the drive part of the piston 3 .
[0064] The piston 3 comprises a first piston part 31 for connecting the piston 3 to the actuator device 110 and a piston head 34 attached to the first piston part 31 and accommodating a piston needle 32 in the direction of the nozzle 8. The piston 3 or the underside 35 of the piston head 34 is provided with a temperature T K A temperature sensor 36 is arranged on the piston head 34 to measure the temperature. The underside 35 of the piston head 34 forms the piston bottom 35. The first piston part 31 is preferably designed as an aluminum hollow piston, which has a cavity therein configured as a cooling channel. A piston cooler 33, which is cooled via a coolant system, is arranged at the lower end of the first piston part 31. The piston cooler 33 serves to solidify the material 11, 12 on the piston bottom 35, thereby sealing the piston 3 in the direction of the actuator device 110 and thereby preventing the inflow of the liquid melt 12 in the direction of the actuator device 110. A coolant is preferably used, which is delivered via connections or flexible piping through the housing 1 to a cooling connection 37 of the first piston part 31. The cooling device 50 in the flange 5 is also supplied with coolant by this same coolant system.
[0065] Cooling of the material 11, 12 at the piston bottom surface 35 locally reduces the viscosity of the material 11, 12, allowing the material to pull away without stringing when the piston 3 is pulled back, creating space for new material 10.
[0066] FIG. 1 shows the piston 3 in an initial position for filling the print head 100 with printable material 10 that is supplied to the print head 100 via a supply device 2 .
[0067] The feed device 2 is configured in the shape of a funnel, and the material 10, preferably granules, is introduced into the opening of the feed device 2 from above. The material 10 reaches the opening 21 or opening cross-section of the piston bushing 4 by gravity. An air channel 20 is arranged in the lower region of the feed device 2 above the opening cross-section 21. This air channel is pneumatically impacted by a pneumatic valve 22. The pneumatic valve 22 and the air channel 20 form a blowing device that periodically impacts the granules 10 with air and throws them towards the region of the feed device 2 located further up, so that the individual granule particles 10 are separated from one another. When the air flow is switched off, the granules 10 in the lower region of the feed device 2 fall into the piston bushing 4 under the open opening cross-section 21. Thereby, the blowing device of the feeding device 2 prevents the granule particles 10 from getting stuck, thereby preventing blockage of the feeding device 2 and thereby acting to ensure that the piston bushing 4 is filled with granules 10. Furthermore, a smaller diameter can be applied at the inlet of the feeding device 2. The refilling process requires blowing back the granules 10, which creates a levitation effect on the granules, which then slide into the print head 100. Blowing up is essential for automated applications, as the resulting gravity impact or shock causes the granules 10 to slide down.
[0068] The piston bushing 4 has an upper partial region 41 that extends into the flange 5 and a lower partial region 42 that extends into an upper partial region 60 of the nozzle head 6. A stop 43 is arranged between the upper partial region 41 and the lower partial region 42 of the piston bushing 4, separating the flange 5 and the nozzle head 6 from each other. The opening 21 or opening cross-section is arranged in the upper partial region 41 of the piston bushing 4 and has a gate 44 on the inner surface of the piston bushing 4. When the opening cross-section 21 is closed, the gate 44 causes the piston 3 to shear the granules 10 between the gate 44 and the piston bottom surface 35 until the piston bottom surface 35 reaches a position below the gate 44.
[0069] The piston bushing 4 has an obtuse angle at the gate 44, which is sharp-edged and hardened, preferably localized hardening, which in an alternative embodiment may be formed by a separate insert, such as a throw-away tip. The design of the gate 44 has the advantage that it acts to reduce the force required to shear the granules 10, thereby saving energy and reducing the abrasive wear on the material of the piston bushing 4 and piston 3, the edges of which are extremely abrasive.
[0070] A kidney-shaped part 7 is arranged in the lower partial region 42 of the piston bushing 4 and has a centrally extending bore 70 for receiving the piston needle 32 of the piston 3 . Furthermore, the kidney-shaped part 7 has a concentrically arranged opening 71 which forms a fluid connection between a cavity 40 arranged in the piston bushing 4 and a melt chamber 81 arranged in the lower part 62 of the nozzle head 6. The cavity 40 is arranged inside the piston bushing 4 and is formed by the inner surface of the piston bushing 4, the outer surface of the piston needle 32, the upper surface of the kidney-shaped part 7 and the lower surface 35 of the piston 3.
[0071] One preferred role of the kidney-shaped element 7 is to conduct heat or energy from the heating elements 61, 63 of the nozzle head 6 to the liquid or melt phase 12 of the material. This is achieved in particular by increasing the contact area with the cavity 40 and therefore with the plastic phase 11 of the material. Another role is the guidance of the piston needle 32, whose contact inside the bore 70 additionally serves to heat the piston needle 32 to the required process temperature, which is only achieved in the nozzle head 6 leading to the nozzle 8.
[0072] During the filling process of the print head 100, the nozzle 8 is closed as required and, under the control of the piston 3 by the actuator device 110, the materials 10, 11, 12 placed in the hollow chamber 40 and the melt chamber 81 are compressed by the piston feed.
[0073] The nozzle head 6 comprises heating elements 61, 63 of the print head 100, with the first heating element 61 being arranged in the upper nozzle head 60 and the second heating element 63 being arranged in the lower nozzle head 62. The upper nozzle head 60 has a section 64, arranged between the upper and lower nozzle heads 60 and 62, on which the kidney-shaped component 7 is placed. In the region of the nozzle 8, a cooling ring 84 is arranged on the nozzle head 6. This cooling ring cools the component to be printed and thermally shields it from the print head 100.
[0074] The heating elements 61, 63 of the nozzle head 6 are connected to the cavity 40, the kidney-shaped part 7, and the melt chamber. 81 The materials 10, 11, 12 in the melt chamber are heated until the liquid phase 12 of the materials reaches its process temperature and can be discharged through the nozzle 8. 81The melt chamber 81 is configured to taper from the upper nozzle head 60 subsection 64 to the nozzle 8. The tapered end of the melt chamber 81 allows for an increased volumetric flow and prevents material buildup on the inner walls of the nozzle head 6. The smaller amount of material 12 or volume present in the tapered melt chamber 81 compared to the cylindrical melt chamber 81 further optimizes the mixing process. As a result, the piston needle 32 only needs to displace a smaller volume during compression in order to push a portion of the melt 12 from the melt chamber 81 back into the hollow chamber 40 through the opening 71 in the kidney-shaped part 7.
[0075] Additionally, print head 100 includes another sensor that detects the pressure p of the liquid phase 12 of the material in melt chamber 81. L and a pressure sensor 83 for temperature T L Further sensors are arranged in the actuator device 110, and include a stroke measurement system 111 for the position s of the piston 3 and a force F exerted by the piston 3 on the materials 10, 11 or a hydraulic pressure p exerted on the piston 3. H In an alternative embodiment, the sensors 111, 112 may be located on the piston 3 of the print head 100.
[0076] Figure 2 shows another view of a print head 100 according to the invention, in which the solid phase 10 of the material according to the invention comprises granule particles 10 and the supply device 2 has a blowing device 25 for peeling the granule particles 10 from one another. The blowing device 25 comprises an air pressure valve 22 and an air passage 20 which is arranged in a housing part 27 of the supply device 2 and which communicates with a lower region 24 of the supply device 2 above the opening cross section 21 of the flange 5. The air passage 20 can be loaded by means of a pneumatic valve 22 with an air impact 26 which acts on the granule particles 10 in the lower region 24 so as to separate them from one another. The feeding device 2 is configured in the shape of a funnel, and the granule particles 10 are introduced into the opening 23 of the feeding device 2 from above. The material 10 reaches the opening cross-section 21 of the flange 5 or the piston bushing 4 or the opening cross-section 21 of the piston bushing 4 by gravity. An air passage 20 of a blowing device 25 is arranged in a lower region 24 of the feeding device 2 above the opening cross-section 21 of the flange 5. The air passage 20 is actuated by an air impulse 26 via a pneumatic valve 22. The blowing device 25 includes the pneumatic valve 22 and the air passage 20, so that the granules 10 are actuated by an air impulse at intervals and thrown further toward the area of the feeding device 2 located further above, thereby separating the individual granule particles 10 from one another. When the blowing device 25 is turned off, the granules 10 in the lower region 24 of the feeding device 2 fall under the open opening cross-section 21 into the hollow chamber 40 of the piston bushing 4. The blowing device 25 of the feeding device 2 thereby prevents the granule particles 10 from getting stuck, thereby preventing blockage of the feeding device 2 and thereby ensuring that the piston bushing 4 is filled with granules 10. The refilling process requires a backward blowing of the granules 10, which creates a levitating effect on the granules, so that they subsequently slide into the print head 100. Blowing is essential for automated applications, as the resulting gravity impact or shock causes the granules 10 to slide down.
[0077] 3 shows a portion of a print head 100 according to the invention in a view rotated by 90°, showing the state zones A, B, C, D, E of the print head 100 which, starting from the upper partial area 41 of the piston bushing 4, through the kidney part 7 and up to the nozzle 8, are filled with materials 10, 11, 12 during operation. The state zones A, B, C, D, E define the agglomeration state of the material 10 at its temperature T S The cohesion state of the material 10 can change through state zones A, B, C, D, and E from a solid phase 10 to a plastic phase 11 to a liquid phase 12.
[0078] The temperature T of the materials 10, 11, 12 inside the print head 100 SThe temperature progression is shown in the graph shown above the print head 100, with the temperature plotted over the stroke s, or length of the working area 120 of the print head 100.
[0079] The condition zones A, B, C, D, and E of the print head 100 include a low temperature zone A where the material is in a solid phase 10, a plasticization zone B where the material is in a plastic phase 11, and a melt zone D and a process zone E where the material is in a liquid phase 12. The condition zones further include a mixing zone C where the material is in both the plastic phase 11 and the liquid phase 12.
[0080] The cooling device 50 of the flange 5 and the piston cooling section 33 integrated in the piston 3 are used to cool the temperature T S In that case, the glass transition temperature T g The glass transition temperature is intended to be kept below 100°C, above which the material 11 will be plasticized and transition to a liquid phase 12. The plasticization zone B, where the material is in the plastic phase 11, in the illustrated embodiment, represents a state of the material or granules where the viscosity of the granules has already changed, thereby optimizing the compaction and mixing processes, but the plastic phase 11 of the granules has not yet transitioned to a liquid phase 12.
[0081] The nozzle head 6 further includes two heating zones 65,66. The first heating zone 65 includes a partial region of the plasticization zone B, a mixing zone C, and a partial region of the melt zone D, and a first heating element 61 is arranged in the upper nozzle head 60 so that heat energy can be injected from the first heating element 61 into the materials 10, 11, 12 via a partial region below the piston bushing 42, the kidney-shaped part 7, and a partial section 64 of the upper nozzle head. The second heating zone 66 includes a partial region of the melt zone D and a process zone E, and a second heating element 63 is arranged in the lower nozzle head 62 so that thermal energy can be injected from the second heating element 63 through the lower nozzle head 62 into the liquid phase 12 of the material.
[0082] As can be seen from this graph, the temperature T S The temperature rises continuously over the stroke s of the working area 120 of the print head 100. In the low temperature zone A, the action of the cooling device 50 of the flange 5 is dominant, so that the granules 10 are only slowly heated over the stroke s. From the plasticization zone B, the influence of the first heating zone 65 with the first heating element 61 increases, and the temperature curve approaches the glass transition temperature T g The temperature rises significantly until it reaches T, which is where the mixing zone C begins. S The temperature T of the melt 12 rises at a low gradient in the mixing zone C until it reaches the melt zone D. There, the zone of influence of the second heating zone 66 begins, which has the second heating element 63, which heats the melt 12 to a temperature T S is significantly increased before the process temperature of the melt 12 is reached in process zone E, resulting in a printable melt 12.
[0083] temperature T S The gate 44 must be adjusted so that the granules 10 can flow into the cavity 40 without jamming during filling, but are preheated so that shearing of the materials 10, 11 at the gate 44 is possible with as little force as possible. The temperature management of the print head 100 is then carried out by the cooling device 50 in the flange 5 injecting a cooling temperature regulation of about 40° C. into the piston bush 4 and thereby into the materials 10, 11, and the first heating element 61 in the first heating zone 65 injecting a cooling temperature regulation of about 40° C. into the piston bush 4 and thereby into the materials 10, 11, and the glass transition temperature T g The heating temperature is adjusted to about 30°C below the melt temperature. This effect is supported by the piston cooling section 33. The cooling of the material 11, 12 at the piston bottom surface 35 makes the material 11, 12 locally less viscous, so that when the piston 3 is pulled back, the material peels off from it without stringing, creating space for new material 10 when the piston 3 releases the opening cross section 21 to the supply device 2.
[0084] The temperature sensor 36 on the piston bottom surface 35 detects the temperature T K , thereby determining the glass transition temperature T g The cooling and heating power of the print head 100 can be calculated so that the temperature T does not exceed the predetermined value. Due to the arrangement of the temperature sensor 36 or temperature detector on the piston bottom surface 35, the piston position-dependent control of the heating elements 61, 63 and thus the temperature T S This allows for faster heating of the materials 11, 12. In this way, the thermal management of the print head 100 also allows for the processing of plastics with low melting temperatures below 60 to 80°C.
[0085] During the compression process for producing the liquid phase 12 of the material in process zone E, the nozzle 8 is closed. The nozzle 8 can be closed, for example, by a shut-off valve (not shown) or by positioning the print head 100 over a plate in the design space of the printer. Additionally, the nozzle 8 can be closed by approximating an already printed area of the component 9. During the compression process, the piston needle 32 sinks into the melt chamber 81 and moves further into it, thereby displacing part of the liquid phase 12 from the melt zone D back into the mixing zone C, where it is mixed with the plastic phase 11 from the plasticization zone B. The liquid phase 12 from the melt zone D is then forced out of the upper region of the melt chamber 81 through the opening 71 in the kidney part 7 and back into the mixing zone C into the hollow chamber 40 of the piston bushing 4 .
[0086] Figure 4 shows a schematic diagram of a print head 100 according to the invention, having a control and regulation unit 113 for actively controlling an actuator device 110 for moving the piston 3, and an evaluation unit 114 configured to evaluate the measured values of the sensors 36, 82, 83, 111, 112 and forward the results to the control and regulation unit 113 for the active control of the actuator device 110 and for the active control of the heating elements 61, 63. The control and regulation unit 113 is intended for active control of the actuator device 110 for moving the piston 3 in accordance with the operating strategy to be performed for filling and printing, and for active control of the temperature of the first heating element 61 and the second heating element 63. The basis for the active control of the actuator device 110 are the sensor signals received by the evaluation unit 114 and the results calculated from the respective values. Pressure p of liquid phase 12 L pressure sensor 83, and temperature T L A temperature sensor 82 for s is arranged in the melt chamber 81. A stroke measurement system 111 for the position s of the piston 3 and for the force F exerted by the piston 3 on the materials 10, 11 or for the hydraulic pressure p exerted on the piston 3 is arranged in the melt chamber 81. H The sensor 112 for is arranged on the actuator device 110 or on the piston 3 . Furthermore, the piston 3 is heated to a temperature T K A temperature sensor 36 is disposed for the
[0087] The signals s, F, and p of sensors 111, 112, 36, 82, and 83 are indicated by dashed arrows. H ,T K ,T L ,p L is transmitted to the evaluation unit 114 and subsequently evaluated there or in the cloud, and the result is transmitted to the control and regulation unit 113 as a control variable i in accordance with the operating strategy, so that the actuator device 110 and the heating elements 61, 63 are controlled accordingly.
[0088] FIG. 5 shows a flow chart of a method 200 according to the present invention for operating a print head 100 according to the present invention, which method 200 includes the following steps: - the hollow chamber 40 is filled 210 with printable material 10 by the supply device 2, - the piston 3 is moved from the starting position 3a towards the nozzle 8 of the print head 100, thereby closing 220 the open cross section 21 of the piston bush 4, The material is transformed 230 from a solid phase 10 through a plastic phase 11 to a liquid phase 12, -Materials 10, 11, and 12 are compressed to 240°C, The spring constant of the liquid phase 12 is determined 250; The liquid phase 12 is prepared for printing 260; a liquid phase 12 of material is ejected 270 from a nozzle 8 to print a three-dimensional component 9; - the piston 3 returns to the starting position 3a 280; Steps 210 through 280 are repeated 290 until the end of the method 200. At least the closing 220, the shifting 230, the compression 240, the determination of the spring constant 250, the print preparation 260 and the ejection 270 of the method 200 are carried out by active control of the actuator device 110 by the control and regulation unit 113, and the results of the evaluation unit 114 from the measured values of the sensors 36, 82, 83, 111, 112 are transferred to the control and regulation unit 113. These method steps are described in more detail below.
[0089] Figure 6 shows a section of a print head 100 according to the invention and two graphs 6a, 6b illustrating pressure or pressure-force profiles during the various process steps of a method 200 for operating the print head 100. Figure 7 shows the different positions of the piston 3 during the various process steps or states shown in Figure 6, starting from the start position 3a of the piston bottom surface 35 to the final position 3z. During each process step, the cooling devices 50, 33 and heating elements 61, 63 of the flange 5 and piston 3 are active, the melt chamber 81 and kidney-shaped element 7 are filled with melt 12, and the granules are still in the plastic phase 11 in the lower partial region of the cavity 40.
[0090] Since the part of the print head 100 shown corresponds to the part of the print head 100 of the invention shown in Figures 1, 3 and 4, the reference numerals of the above figures are used for the explanation of Figures 6 and 7, and new structural elements and relationships, for example the respective positions of the piston 3, are indicated relative to the piston bottom surface 35 in Figures 6 and 7.
[0091] 6 shows in a first graph 6a two curve progressions plotted over the stroke s traveled by the piston 3. The stroke s is measured by a stroke measurement system 111 or stroke sensor 111 on the actuator device 110 or on the piston 3. The upper curve is for the force F exerted by the piston 3 on the material 10, 11 while the piston 3 is being conveyed by the actuator device 110 during closure 220 and compression 240, or the hydraulic pressure p exerted on the piston 3. H 1 shows the force-pressure curve for a given position, where a force sensor or pressure sensor 112 is arranged on the actuator device 110 or on the piston 3. The lower curve of graph 6a represents the melt pressure p L The pressure profile of the liquid phase 12 or melt 12 is plotted against the stroke s of the piston 3 during compression 240. L A pressure sensor 83 for the pressure is disposed in the melt chamber 81 .
[0092] The second graph 6b shows a segment of the lower curve of the first graph 6a, and again shows the melt pressure p L The pressure profile of the piston 3 is plotted against the stroke s of the piston 3 during compression 240 (p c From p d (Curve progression from
[0093] FIG. 7a shows the starting position 3a of the piston 3 during the filling process 210 of the print head 100, with the piston bottom surface 35 positioned above the opening 21 of the piston bushing 4. The entire process sequence from filling 210 to opening 820 of the nozzle during preparation for printing 260 is also called the refilling process, since it is a repetitive sequence that is optionally repeated during printing of the component 9. The position of the piston 3 shown in FIG. 7a corresponds to the position of the piston 3 shown in FIG. 1. The opening 21 or opening cross-section 21 of the piston bushing 4 is open, allowing granules 10 to enter the hollow chamber 40 of the piston bushing 4 via the supply device 2. The piston 3 is then controlled by the actuator device 110 to position 3b shown in FIG. 7b. In doing so, the piston bottom surface 35 passes by the gate 44 of the piston bushing 4, and the granules 10 protruding from the opening 21 into the hollow chamber 40 are sheared between the piston bottom surface 35 and the gate 44. This position is therefore called the shearing position 3b. After shearing 420, the open cross section 21 is closed 220. Force and pressure transition F,p H rises from the start position 3a to the shear position 3b, the force consumption of the actuator device 110 being maximum at the gate 44 or at the shear position 3b, because the actuator device 110 must apply a force to shear the granules 10. The force consumption can be reduced by appropriate measures, such as optimizing the gate geometry, in conjunction with the properties of the piston bottom surface 35 and preheating of the granules 10. In contrast, the pressure profile p L changes only slightly or even rises very little, since the nozzle 8 is still open and no pressure buildup occurs in the melt chamber 81.
[0094] The compression process 240 is then initiated, and the piston 3 is moved to position 3c in a force-controlled or pressure-controlled manner by the actuator device 110. As the piston 3 moves, the force F exerted on the material or granules 10, 11 or the hydraulic pressure p exerted on the piston 3 is H and the pressure p in the melt 12 L is measured. By sliding the piston 3, the materials 10, 11, 12 are pre-compressed.
[0095] Position 3c is defined by a force rise or pressure rise, i.e. position 3c is adjusted, not by a direct point, but by the gradient of the curve shown in graph 6a. This gradient corresponds to a transition point p from a straight line with little or no rise (region from position 3a to position 3c), respectively, to a rise in the curve (position 3c), where a predefined rise or a predefined angle of rise is achieved and / or exceeded. Lc ,F c ,p Hc Position 3c is in the first third of plasticization zone B. Granules 10, 11 are compressed in plasticization zone B by the feeding of piston 3, while melt 12 is present in melt zone D between cavity 40 and nozzle 8. Plasticized granules 11 are thereby forced into melt 12 in mixing zone C. The downward movement of the piston 3 and thus of the piston needle 32 towards the nozzle 8 already causes the melt 12 to be expelled from the nozzle 8, thereby displacing any air or bubbles that may still be present from the nozzle head 6. This clears the nozzle 8.
[0096] Position 3c has method and material tolerances, so that position 3c of piston 3 can vary slightly during various filling processes of print head 100. Position 3c is therefore not a fixed point. Position 3c being within a given tolerance ensures that filling process 210 was successful, i.e., sufficient granules 10 have been introduced into cavity 40 and melt chamber 81 has already been filled with melt 12. If the gradient begins, for example, significantly before position 3c, there may be too much viscous or hard material 10, 11 in the area from piston bottom 35 to nozzle 8, and the mixing process in mixing zone C may not be successful. If the gradient begins, for example, significantly later than position 3c, too little material 10 may have been refilled.
[0097] After reaching position 3c, pre-compression 610 is complete and nozzles 8 of print head 100 are closed 620.
[0098] For compression 630, the piston 3 is pressure-controlled to a predefined peak pressure p d 7c. d can be between approximately 100 and 300 bar depending on the material 10 and the needs.
[0099] The peak pressure position 3d is then maintained, so to speak, for a predefined, material-dependent time period. The piston bottom 35 then enters the first heating zone 65, and the piston needle 32 enters the melt chamber 81. During this time, part of the melt 12 flows from the melt chamber 81 of the nozzle head 6 through the opening 71 in the kidney-shaped element 7 back into the mixing zone C, among the plastic granules 10 present there. This displaces any remaining air, and the melt 12 is homogenized in the mixing zone C. This improves the energy flow and produces a more homogeneous material 11, 12. The returning melt 12 becomes plastic, and the granule fraction 11 forced into the kidney-shaped element 7 becomes molten. This results in the mixing of the materials 11, 12. The hold process 640 described herein also serves to analyze and system check the print head 100. L This is because the following effects may occur when measuring the pressure p L The pressure rise is, for example, at temperature T L This means that the melt 12 will gasify due to the melt temperature T L is undesirable because air plasma can be generated, which leads to chemical breakdown. Melt pressure p L A significant pressure drop could mean, for example, that the system of the print head 100 was not sealed or that there was still too much air in the system. Such an effect could occur, for example, if the temperature management of the print head 100 was not optimally adjusted, resulting in too much cold material 10, 11 being present in the cavity 40.
[0100] After a predefined time period has elapsed, the piston 3 is pressure-controlled by the actuator device 110 from the peak pressure position 3d to the target pressure p of approximately 0 bar. e The return movement 710 is made until the target pressure p is reached. The system is then unloaded, which allows the melt 12 to be depressurized and degassed, thereby producing a pure melt 12 of high quality and printable quality, especially in the process zone E. e 7d, the target pressure position 3e is reached and the piston bottom surface 35 is positioned outside the first heating zone 65, in the region of the stop 43 of the piston bush 4. The pressure p measured at the peak pressure position 3d d and the pressure p at the target pressure position 3e e The pressure difference between the two points 3d and 3e and the stroke s traveled between both points 3d and 3e defines the spring constant 740 of the liquid phase 12 or melt 12 of the material.
[0101] The spring constant is determined from the compressibility of the melt 12 and leads to a correction factor or form factor required for accurate control of the piston 3 by the actuator device 110 . Due to the compressibility of the melt 12, for example, 1.2 volume units of geometric piston stroke s advanced by the piston 3 corresponds to 1.0 volume unit of the displaced volume of the melt 12. If there was no compressibility, the ratio would be 1:1.
[0102] It is thereby realized that the actuator device 110 can control the piston 3 in a controlled manner, and the spring constant is, in particular, such that the actual discharge of the melt 12 is proportional to the orbital velocity v of the print head 100 moving during printing. B , allowing the calculated precise volumetric flow rate of the melt 12 to be achieved. That is, the orbital velocity v of each of the print heads 100 B At each printing position under the pressure, the respectively required amount of melt 12 is ejected onto the component 9 .
[0103] The process of melt 12 ejection 270 or printing process 270 is then prepared 260 through active decompression 810 by retracting piston 3 . The piston 3 is then pulled back by approximately 1 to 2 millimeters, depending on the determined spring constant, so that the melt 12 does not escape when the nozzle 8 or nozzle opening is subsequently opened 820. This occurs due to the influence of gravity based on the existing open system while the position 3e is still maintained. At the same time, the melt 12 is unloaded in a spring-like manner.
[0104] A new print preparation then begins with compression 830. The entire print head 100 system is a compressible system, as previously explained, since the melt 12 may have a compression of, for example, about 20%. Therefore, the volume displaced by the advance of the piston 3 does not correspond to the volume of material 12 ejected, which may result in inaccurate and irregular ejection. The volume of melt 12 that can occur for the advance of the printing process 270 is defined by the target position 3e and the stroke to the final position 3z shown in FIG. 7e. Due to the effects described above, the melt 12 is compressed during the start of printing. The compression of the melt 12 in the melt chamber 81 at the start of printing is generated partly through friction at the nozzle opening of the nozzle 8 as the melt 12 is "squeezed" out, and partly through resistance as it is printed onto the component 9 or onto the substrate support on which the component 9 is placed. The uniform delivery of the melt 12 is achieved by intelligent control of the print head 100, with the asynchronous movement of the piston 3 adapted by a correction factor through the use of an electronic transmission in the actuator device 110. In particular, the correction factor, which is determined from the determined spring constant 740 of the melt 12, acts as a sort of system influence. The print head 100 according to the invention is therefore not limited to synchronous movement as in conventional NC systems.
[0105] The printing process 270 is performed in a pressure-controlled manner, and the pressure p of the melt 12 is measured through a pressure sensor 83 in the nozzle head 6. L is constantly measured. The measured pressure p L is the pressure generated by the ejection of melt 12 towards the component 9 or substrate support (if no component is already present). Without this effect of printing on the object, there would be no back pressure at the nozzle 8 except for friction pressure, and therefore too much material / melt 12 would be ejected from the nozzle 8. The printing process 270 is initiated by an active intervention in the melt 12 by intelligent control and regulation of the piston 3, in which a "more" stroke is carried out to compensate for the compressibility of the melt 12. In principle, too much melt 12 would then be forced out of the nozzle 8, but in parallel with the intervention in the melt 12, the pressure sensor 83 is read, so that a corresponding pressure-dependent control can be carried out. For such cases, an electrically driven actuator device 110 has proven to be dynamic and very efficient.
[0106] During the printing process, the melt temperature T S is continuously measured and in the heating zone 2 the melt 12 is directed through the heating element 63 of the nozzle head 6 to the desired target value of the process temperature in the region of the process zone E.
[0107] At the start of printing, piston 3 moves at an orbital velocity v B The actuator device 110 controls the melt 12 to be ejected from the nozzle 8 in response to the pressure. During the printing process 270, the control and regulation unit 113 of the print head 100 is activated and, if necessary, the target value s aK or to add the additive amount of material 12, the actuator device 110 is actively controlled. For example, the additive target value s aK is added, so that if more material 12 is dispensed or extruded from the nozzle 8 than is continuously controlled, the resulting pressure p L The target value s by addition also increases. aK is the interfered value or the additional piston stroke that must be made in order to dispense the desired volume of melt 12 according to the correction value determined from the spring constant, so that a settling state is reached, whereby the amount of melt 12 dispensed towards the component 9 remains constant.
[0108] Such a process is shown by way of example in the graph of Figure 8. Figure 8a shows the target stroke s of the piston 3. KS and the target stroke s based on the active control of the piston 3. KS Addition or intervention of the target value s aK and a stroke-time graph including: FIG. 8b shows the orbital velocity v of the print head 100 during printing. B and the melt pressure p during the printing process. L 1 shows a graph displaying the difference in the number of pulses and the number of pulses over time.
[0109] The orbital velocity v of the print head 100 B is nearly constant up to point v1, and then decreases from point v1 to point v2, for example, because the print head 100 passes through a curve. After point v2, the print head 100 accelerates again to point v3, and then maintains a nearly constant velocity v B In parallel with this, FIG. 8a shows the target stroke s of the piston 3. KS The curve is shown here with the slope held constant. This curve would represent an uncontrolled printhead piston stroke, where the piston moves at a constant velocity. However, constant pressure and temperature measurements reveal that the printhead 100 orbital velocity v B When decelerating and accelerating, the melt pressure p L Pressure p L It can be seen that the pressure transition changes (see Figure 8b). From these changes, the target value S aK is determined, the piston 3 is controlled accordingly, and the target value S aK is the target stroke s of piston 3 KS is added to or subtracted from. As the print head 100 decelerates, the piston 3 slows down (see negative slope s1 in FIG. 8a), or even stops or changes direction of motion. This happens because the orbital velocity v B drops, causing the pressure p LThe piston 3 is controlled or forward controlled to prevent too much material 12 from being ejected from the nozzle 8 towards the component 9.
[0110] Orbital velocity v at point v2 B When the melt 12 is accelerated, the above-described compression of the melt 12 begins, which requires the piston 3 to perform a larger stroke than in the case of an incompressible medium. The control and regulation unit 113 then actively intervenes in the system and assumes control, adjusting the additive target value S aK acts to be pulled up, thereby forcing out more material 12, and as a result the pressure p L increases.
[0111] The advance of the piston 3 and the resulting increase in pressure (at point p2) in the melt 12 shortens or stiffens the virtual "spring" of the melt 12. This mechanical effect is followed by the control and regulation unit 113, so that subsequently during the printing process 270, the correct amount of melt 12 is ejected from the nozzle 8, for example to apply a layer of the same thickness or thickness to the component 9.
[0112] orbital velocity v B is again constant, a steady state is reached, the amount of melt 12 being extruded remains constant, and the orbital velocity v of the print head 100 B is kept the same.
[0113] The use of the piston needle 32 has the advantageous effect of enabling direct volume displacement of the melt 12 in the melt chamber 81, thereby achieving a lower spring constant. A lower spring constant in turn enables high dynamics of the print head 100. This effect results from the more direct pressure transmission to the melt 12 by the piston needle 32. That is, when the piston 3 is advanced, not only the piston bottom surface 35 but also the piston needle 32, which is positioned further adjacent to the nozzle 8, transmits a pressure impulse to expel the melt 12 from the nozzle 8.
[0114] The printing process 270 can be performed until the piston bottom 35 reaches position 3z, which is defined so that the piston bottom 35 stops just before reaching the kidney 7, as shown in Figure 7e, rather than reaching a mechanical stop, after which material 12 can no longer be dispensed and the refill process described above begins anew.
[0115] 9 to 15 show individual flow charts of the method steps of a method 200 according to the invention, supplementing the embodiments of the invention described in the preceding figures.
[0116] FIG. 9 shows a flowchart of a method for filling 210 a cavity 40 with printable material 10 by a supply device 2, the method 210 including at least the following steps: - the material 10 is introduced 310 into the print head 100 through the opening 23 of the supply device 2, An air impact 26 is generated 320 to detach the material 10, in particular the granule particles 10, from one another.
[0117] The loading 310 of the granule particles 10 is done manually or automatically, and the granule particles 10 slide into the lower region 24 of the feeding device 2 under the influence of gravity.
[0118] The generation 320 of the air impact 26 is performed at intervals so that the granule particles 10 are thrown up in the area of the air impact 26 and, as they fall, impact the granule particles 10 located below them, stimulating them to slide down into the heated hollow chamber 40 of the print head 100.
[0119] FIG. 10 shows a flow chart of a method for closing 220 the open cross section 21 of the piston bushing 4 by the piston 3, which method 220 comprises the following steps: The piston 3 is fed 410 from a starting position 3a on the piston bottom surface 35 towards the nozzle 8 until it reaches a position 3b below the gate 44 of the piston bush 4, The granules 10 are sheared 420 by the piston bottom surface 35 sliding past the gate 44.
[0120] FIG. 11 shows a flow chart of a method for converting 230 a material from a solid phase 10 through a plastic phase 11 to a liquid phase 12, which method 230 includes the following steps: The materials 10, 11, 12 are heated 510 by the heating elements 61, 63 of the nozzle head 6 across each of the state zones A, B, C, D, E of the print head 100, and these state zones A, B, C, D, E control the cohesive state of the material 10 at its temperature T S The cohesive state of the materials 10, 11, and 12 changes from a solid phase 10 to a plastic phase 11 and then to a liquid phase 12 across each of the state zones A, B, C, D, and E by the injection of thermal energy from the heating elements 61 and 63. During compression 240, the materials 11, 12 are mixed 520.
[0121] Figure 12 shows a flow chart of a method for compressing 240 materials 10, 11, 12. The method 240 includes the following steps: - the materials 10, 11, 12 are pre-compressed 610 by the feeding of the piston 3; - the nozzle 8 is closed 620, - The materials 10, 11, and 12 are compressed 630 by the piston 3; The piston 3 is held 640 in a holding position 3d.
[0122] The pre-compression 610 of the material 10, 11, 12 is carried out in a pressure-controlled and / or force-controlled manner by the feeding of the piston 3, pre-compressing up to a position 3c, which is reached when the material-dependent gradient and / or material-dependent gradient angle of the force and / or pressure curve is achieved and / or exceeded.
[0123] The compression 630 of the materials 10, 11, 12 is carried out in a pressure-controlled manner by the advance of the piston 3 under the closed nozzle 8, whereby the movement to the holding position 3d is performed at a peak pressure p d or until the peak pressure p d This is done until the holding position 3d is defined by
[0124] During compression 630, the nozzle 8 is closed and the piston needle 32 sinks into the melt chamber 81 of the nozzle head 6, thereby forcing part of the liquid phase 12 from the upper region of the melt chamber 81 through the opening 71 in the kidney-shaped part 7 back from the melt zone D to the mixing zone C, where it is mixed with the plastic phase 11 from the plasticization zone B.
[0125] The piston 3 is held at the holding position 3d, and the pressure p L and temperature T L is measured and the measured value is checked by the evaluation unit 114 for the function control of the compression process 240 .
[0126] During the holding 640 of the piston 3 in the holding position 3d, the nozzle 8 is closed and the piston needle 32 sinks into the melt chamber 81, so that part of the liquid phase 12 is pushed out of the upper region of the melt chamber 81 through the opening 71 in the kidney-shaped part 7 from the melt zone D back to the mixing zone C, whereby part of the liquid phase 12 is mixed with the plastic phase 11 from the plasticization zone B in the mixing zone C.
[0127] FIG. 13 shows a flow chart of a method for determining 250 the spring constant of the liquid phase 12, which method 250 includes the following steps: After the end of the hold 640, from the hold position 3d, the melt pressure p L is the target pressure p e When the pressure-controlled return movement 710 is reached, the target position 3e is reached. - peak pressure p d and target pressure p e A pressure difference between The interval between the holding position 3d and the target position 3e is determined 730, The spring constant of the liquid phase 12 is calculated 740 .
[0128] FIG. 14 shows a flow chart of a method for preparing 260 the liquid phase 12 for printing, which method 260 includes the following steps: Depending on the spring constant, the liquid phase 12 is actively decompressed 810 by the retraction of the piston 3, the nozzle 8 is opened 820, At the start of printing, the liquid phase 12 is compressed 830.
[0129] FIG. 15 shows a flow chart of a method for dispensing 270 the liquid phase 12, the printing method 270 being performed in a pressure-controlled manner: - pressure p of the melt chamber 81 L is constantly measured, and the measured pressure p L is related to the pressure generated by the discharge of the liquid phase 12 towards the component 9, The piston 3 is actively controlled 920 through the control and regulation unit 113, and the feed of the piston 3 is adapted 930 in a pressure-dependent manner by a correction factor, which is determined from the spring constant of the liquid phase 12 of the material. [Explanation of symbols]
[0130] 1. Housing 2. Supply Device 3 pistons 3a Starting position 3c position 3d holding position 4 piston bushings 5 flange 6 nozzle head 7 Kidney-shaped parts 8 nozzles 10 Materials, solid phase 11 Plastic phase 12 Liquid phase 21 Opening cross section 23 Opening 24 Lower area 26 Air Impact 32 Piston needle 35 Bottom of piston 36 sensors 40 Hollow chamber 41 Upper subregion Gate 44 50 Cooling device 61, 63 Heating element 65,66 Heating Zone 71 Opening 81 Melt chamber 82,83 Sensors 100 print heads 110 Actuator device 111,112 sensors 113 Control and regulation unit 114 evaluation units 200 ways 210 Filling of hollow spaces 220 Closure of the opening cross section of the piston bush 230 Material Conversion 240 Compression of Materials 250 Determining spring constant 260 Preparation for printing 270 Discharge of liquid phase 280 Piston return movement 290 step repetitions 310 Material Input 320 Air Shock Generation 410 Piston feed 420 Granule Shear 510 Heating of materials 520 Mixing of materials 610 Pre-compression of material 620 Nozzle Closure 630 Compression of Materials 640 Piston Retention 710 Piston return movement 720 Pressure difference determination 730 Section Determination 740 Calculation of spring constant 810 Decompression 820 Nozzle Open 830 Compression of the liquid phase 910 Pressure Measurement 920 Piston Control 930 Adaptation A, B, C, D, E state zones
Claims
1. A method (200) of operating a print head (100) for a 3D printer, comprising: The method (200) comprises the steps of: The cavity (40) is filled (210) with printable material (10) by a supply device (2); The piston (3) is fed from the start position (3a) toward the nozzle (8) of the print head (100), thereby closing (220) the opening cross section (21) of the piston bush (4); The material is transformed (230) from a solid phase (10) through a plastic phase (11) to a liquid phase (12), The materials (10, 11, 12) are compressed (240), The spring constant of the liquid phase (12) is determined (250); The liquid phase (12) is prepared for printing (260), A liquid phase (12) of said material is ejected (270) from said nozzle (8) to print a three-dimensional component (9); The piston (3) returns (280) to the starting position (3a), 10. A method according to claim 1, wherein the steps from filling the hollow chamber with printable material to moving the piston back to its starting position are repeated until the end of the method.
2. 2. The method (200) according to claim 1, characterized in that at least the closing (220), the shifting (230), the compression (240), the determination of the spring constant (250), the preparation for printing (260), and the ejection (270) are performed by active control of the actuator device (110) by a control and regulation unit (113), and the results of the evaluation unit (114) from the measured values of the sensors (36, 82, 83, 111, 112) are transferred to the control and regulation unit (113).
3. The filling (210) of the cavity (40) with printable material (10) by the supply device (2) comprises at least the following steps: The material (10) is introduced (310) into the print head (100) through an opening (23) of the supply device (2); 3. A method (200) according to claim 1 or 2, characterized in that an air impact (26) is generated (320) for detaching the material (10), in particular granule particles (10), from one another.
4. 4. The method (200) according to claim 3, characterized in that the introduction (310) of the granule particles (10) is carried out manually or automatically, and the granule particles (10) slide into the lower area (24) of the feeding device (2) under the influence of gravity.
5. 5. The method (200) according to claim 4, characterized in that the generation (320) of the air impact (26) is carried out at intervals, and the granule particles (10) are thrown up in the area of the air impact (26), so that, as they fall, the thrown up granule particles (10) impact the granule particles (10) located below them, stimulating them to slide down into the heated hollow chamber (40) of the print head (100).
6. The closing (220) of the open cross section (21) of the piston bush (4) by the piston (3) comprises the following steps: The piston (3) is fed (410) from a starting position (3a) on the piston bottom surface (35) of the piston (3) toward the nozzle (8) until it reaches a position (3b) below the gate (44) of the piston bush (4); 3. The method (200) according to claim 1 or 2, characterized in that the shearing (420) of the granules (10) is achieved by the sliding of the piston bottom (35) past the gate (44).
7. The transformation (230) of said material from a solid phase (10) through a plastic phase (11) to a liquid phase (12) comprises the steps of: The material (10, 11, 12) is heated (510) by the heating elements (61, 63) of the nozzle head (6) across each state zone (A, B, C, D, E) of the print head (100), and the state zones (A, B, C, D, E) control the coagulation state of the material (10) at its temperature (T S ), and the cohesive state of the materials (10, 11, 12) changes from a solid phase (10) through a plastic phase (11) to a liquid phase (12) across the state zones (A, B, C, D, E) upon the injection of thermal energy from the heating elements (61, 63); 3. The method (200) according to claim 1 or 2, characterized in that the materials (11, 12) are mixed (520) during the compacting (240).
8. The compression (240) of the materials (10, 11, 12), in particular the compression process (240), comprises the following steps: The piston (3) advances to pre-compress (610) the materials (10, 11, 12), The nozzle (8) is closed (620), The piston (3) is moved to compress (630) the materials (10, 11, 12), 8. The method (200) according to claim 1, 2 or 7, characterized in that the piston (3) is held (640) in a holding position (3d).
9. the pre-compression (610) of the material (10, 11, 12) is carried out in a pressure- and / or force-controlled manner by the movement of the piston (3), up to a position (3c) that is reached when a material-dependent gradient and / or a material-dependent gradient angle of the force and / or pressure curve reaches and / or exceeds a predefined value, 9. The method (200) according to claim 8, characterized in that the material-dependent gradient and the material-dependent gradient angle are calculated based on a change in pressure in the melt chamber (81) relative to a change in stroke of the piston (3).
10. The compression (630) of the material (10, 11, 12) by the piston (3) feeding under the closed nozzle (8) is carried out in a pressure-controlled manner, whereby the movement to the holding position (3d) is performed at a peak pressure (p d ) is reached, and the peak pressure (p d 9. The method (200) of claim 8, characterized in that: ) is the pressure in the melt chamber (81).
11. 11. The method according to claim 8 or 10, characterized in that during the compression, the nozzle is closed and the piston needle sinks into the melt chamber of the nozzle head, so that part of the liquid phase is forced out of the upper region of the melt chamber through the opening in the kidney-shaped part from the melt zone back to the mixing zone, so that the part of the liquid phase is mixed in the mixing zone with the plastic phase from the plasticization zone.
12. The piston (3) is held in the holding position (3d) and the pressure (p L ) and temperature (T L 11. The method (200) according to claim 8 or 10, characterized in that the value of the pressure is measured and the measured values are checked by an evaluation unit (114) for functional control of the compression process (240).
13. 13. The method according to claim 8 or 12, characterized in that during the holding of the piston in the holding position, the nozzle is closed and the piston needle sinks into the melt chamber, whereby part of the liquid phase is pushed out of the upper region of the melt chamber through the opening in the kidney-shaped part from the melt zone back to the mixing zone, whereby the part of the liquid phase is mixed with the plastic phase from the plasticization zone in the mixing zone.
14. Determining (250) the spring constant of the liquid phase (12) comprises the steps of: After the holding (640) is completed, the melt pressure (p L ) is the target pressure (p e ) there is a pressure-controlled return movement (710) to the target position (3e) which is reached when Peak pressure (p d ) and the target pressure (p e ) is determined (720), The interval between the holding position (3d) and the target position (3e) is determined (730); 3. The method (200) according to claim 1 or 2, characterized in that the spring constant of the liquid phase (12) is calculated (740).
15. The preparation (260) of the liquid phase (12) for printing comprises the following steps: Depending on the spring constant, the liquid phase (12) is actively decompressed (810) by the retraction of the piston (3), The nozzle (8) is opened (820), 3. The method (200) according to claim 1 or 2, characterized in that the liquid phase (12) is compressed (830) at the start of printing.
16. The discharge (270) of the liquid phase (12) is carried out in a pressure-controlled manner, The pressure (p L ) is constantly measured (910), The piston (3) is actively controlled (920) through a control and adjustment unit (113), and the feed of the piston (3) is adapted (930) in dependence on pressure by a correction factor, the correction factor being determined from the spring constant of the liquid phase (12) of the material, 3. The method (200) according to claim 1 or 2, characterized in that the adaptation (930) comprises determining the feed of the piston (3) based on the geometric stroke of the piston (3) and the correction factor so as to deliver the required amount of melt.
17. A print head (100) for a 3D printer for carrying out the method (200) of any one of claims 1 to 16, comprising: a supply device (2) for the printable material (10); a flange (5) having a cooling device (50) arranged on the housing (1) and on the supply device (2); a nozzle head (6) having a heating element (61, 63) for converting the material (10) from a solid phase (10) through a plastic phase (11) to a liquid phase (12); and a nozzle (8) for ejecting the liquid phase (12) of the material (10) from the nozzle head (6), 1. A print head, characterized in that the control and regulation unit (113) is intended for the active control of the actuator device (110) for moving the piston (3) according to the operating strategy to be implemented for filling and printing, and for the active control of the heating elements (61, 63).
18. A print head (100) for a 3D printer for carrying out the method (200) according to claim 2 or 12, comprising: a supply device (2) for the printable material (10); a flange (5) having a cooling device (50) arranged on the housing (1) and on the supply device (2); a nozzle head (6) having a heating element (61, 63) for converting the material (10) from a solid phase (10) through a plastic phase (11) to a liquid phase (12); and a nozzle (8) for ejecting the liquid phase (12) of the material (10) from the nozzle head (6), said control and regulation unit (113) is intended for the active control of said actuator device (110) for moving said piston (3) according to the operating strategy to be implemented for filling and printing, and for the active control of said heating elements (61, 63); 1. A print head (100), characterized in that the evaluation unit (114) is intended to evaluate the measured values of the sensors (36, 82, 83, 111, 112) of the print head (100) and to transfer the results to the control and regulation unit (113) for the active control of the actuator device (110) and for the active control of the heating elements (61, 63).
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