Method for producing expanded plastic particles
The radiation-based expansion method for pre-expanded plastic particles addresses the complexity and inefficiency of existing processes, enabling controlled production of particles with adjustable properties and improved characteristics.
Patent Information
- Application Number
- JP2023566840
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-30
- Filing Date
- 2022-04-25
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2042-04-25
AI Technical Summary
Existing methods for producing expanded plastic particles are complex, require high energy input, and cannot effectively produce particles with adjustable properties or utilize pre-expanded materials without damaging their structure, leading to limitations in cell size, morphology, and distribution.
A method involving radiation-based expansion of pre-expanded plastic particles using a controlled process to fill them with a blowing agent under pressure, followed by thermal expansion to create expanded plastic particles with adjustable properties, allowing for continuous production without steam and minimizing structural damage.
The method enables the production of expanded plastic particles with controlled cell size, morphology, and distribution, achieving lower densities and improved mechanical, electrical, and thermal properties, while simplifying equipment and process requirements.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for producing expanded plastic particles. [Background technology]
[0002] Methods for producing foamed plastic particles which are further processed, in particular for producing foamed molded articles made from the particles, are basically known from the prior art.
[0003] Known methods for producing expanded plastic particles are based on a two-stage process: in a first stage, the thermoplastic material is melted in an extruder, the thermoplastic material melt thus produced in the extruder is charged with a blowing agent, and in a second stage, the thermoplastic material, which emerges from the extruder in the form of strands and expands under the action of the blowing agent, is granulated or milled.
[0004] In the first stage of the process, the pressure and temperature conditions in the extruder cause the blowing agent to dissolve in the thermoplastic melt. After the agent-filled thermoplastic material leaves the extruder, the pressure drop causes the plastic material to expand and the blowing agent to convert into a gas phase.
[0005] In a second step of the corresponding process, the plastic material is granulated or crushed, for example using a cutting device, as it emerges from the extruder in strand form and, as mentioned above, is expanded immediately after leaving the extruder by the blowing agent, resulting in foamed plastic particles that can be further processed in a separate process to form foamed particulate moldings.
[0006] The known methods are relatively complex both in terms of equipment and process technology. Furthermore, the foamed plastic particles that can be produced by the known methods need improvement in terms of properties such as cell size, morphology, distribution, etc., and the possibilities for influencing the corresponding properties of the foamed plastic particles in terms of equipment and process technology are clearly limited in the known methods.
[0007] Furthermore, it is not possible with the known methods to produce expanded plastic particles starting from pre-expanded plastic materials, which is particularly true since the described extrusion-based processes damage or destroy the structure of the pre-expanded plastic material particles, in particular due to the input of mechanical and thermal energy.
[0008] This applies in particular to the basically known autoclave process, in which pre-expanded plastic material particles are expanded batchwise and therefore discontinuously into foam beads in an autoclave apparatus (so-called postformer / former) using superheated steam. Improvements to this process have several drawbacks, including low energy efficiency, infrastructure requirements for steam generation and supply, the risk of morphological deterioration of the foam beads produced throughout the entire volume, high variability due to different thermal conditions in various areas of the autoclave system, and the subsequent drying process required to remove water from the superheated steam. Summary of the Invention
[0009] Based on this, the present invention is based on the object of providing an improved method for producing expanded plastic particles, which also makes it possible to produce, starting from pre-expanded plastic material particles, expanded plastic particles which have particularly adjustable properties for their subsequent processing into expanded particle moldings and their application or use properties.
[0010] This object is achieved by a method according to claim 1. The claims dependent thereon relate to possible embodiments of the method.
[0011] The first aspect of the present invention relates to a method for producing expanded plastic particles, and therefore the method described herein is generally used for the production of expanded plastic particles. Thus, the plastic particles that can be produced or generated according to this method are at least partially, typically completely, plastic particles with a cellular structure. The plastic particles can also have a specific (further) expansion capability, particularly with a specific content of blowing agent, whether it be a residue from the described method or a blowing agent subsequently introduced in another method step. Thus, the expanded plastic particles that can be produced or that have been produced according to this method can be expandable and / or (mechanically) compressible or compressible due to their cellular structure. In all cases, the expanded plastic particles that can be produced or that can be produced according to this method can be called or considered "expanded particles" or "expanded beads." It will be further understood that this method can also be called or considered a method for radiation-based modification, i.e., particularly for post-expanding or further expanding pre-expanded plastic particles. The radiation-based modification serves in particular to have a targeted radiation-based influence on the foaming properties and thus the cell structure of the corresponding pre-expanded plastic particles, which, as mentioned, means in particular post-expanding or further expansion.
[0012] The expanded plastic particles, also referred to below as "plastic particles", can be further processed into particle foam molded articles in one or more separate downstream processes. The further processing of the expanded plastic particles into particle foam molded articles can be carried out with steam or superheated steam (steam-based) or without steam or superheated steam (non-steam-based or dry).
[0013] The steps of the method for producing expanded plastic particles are described in detail below.
[0014] In the first step of the method, the plastic material is provided in the form of pre-expanded plastic material particles. The pre-expanded plastic material particles provided according to the method are also referred to as "pre-expanded plastic particles" if necessary. The plastic material considered as the starting material, i.e., the particle foam material, and therefore the already foamed plastic material, is provided in the form of pre-expanded plastic material particles in the first step of the method. The provided pre-expanded plastic material is therefore in a particulate, i.e., particularly bulk, form or shape. Therefore, in the first step, at least one means is generally carried out to provide the particulate, i.e., particularly bulk, pre-expanded plastic material in the form of corresponding pre-expanded plastic material particles. The density of the pre-expanded plastic material particles provided in the first step of the method is usually above 1 g / cm, depending on the composition of the material or modifications due to the cell structure. 3 Less than 0.05 to 2.2 g / cm 3 from which the pre-expanded properties of the pre-expanded plastic material particles are derived, the matrix of the pre-expanded plastic material particles thus provided having a porous or cellular structure.
[0015] Regardless of its cellular structure, the matrix of the pre-expanded plastic material particles can optionally contain at least one additive or additional material, such as an elongated, spherical, or platelet-shaped filler. In particular, in the case of pre-expanded plastic material particles containing additives or additional materials, the density can be, depending on the concentration, in some cases up to 1 g / cm. 3 The corresponding additives or materials can be present as such or act in cellular form.
[0016] The first step of the method can be carried out, optionally at least partially or partially automated, using a supply device configured to continuously or discontinuously supply the corresponding plastic material in the form of pre-expanded plastic material particles. The corresponding supply device can be, for example, a conveyor device that can transport the pre-expanded plastic material particles to be processed into the corresponding expanded plastic particles to a filling device that performs the second step of the method. The corresponding conveyor device can be configured as or include a belt conveyor device or a flow conveyor device. Thus, transporting the pre-expanded plastic material particles to or into the filling device that performs the second step of the method can include picking up the pre-expanded plastic material particles in the conveying flow, and thus the pre-expanded plastic material particles can be transported by the conveying flow to or into the filling device that performs the second step of the method.
[0017] In the second step of the method, the pre-expanded plastic material particles are filled with a blowing agent at least under pressure. Therefore, in the second step, the pre-expanded plastic material particles are filled with a blowing agent at least under pressure. Depending on the material, a specific pressure and, if necessary, a specific (elevated) temperature may also be applied. Therefore, in the second step, at least one means for filling the pre-expanded plastic material particles with a blowing agent is typically carried out at least under pressure, i.e., at least under pressure. Phenomenologically, the concentration of the blowing agent in each pre-expanded plastic material particle typically occurs in the second step of the method. The concentration of the blowing agent in each pre-expanded plastic material particle may result, for example, from a process of absorption and / or dissolution of the blowing agent in each pre-expanded plastic material particle, depending, in particular, on the chemical composition of the pre-expanded plastic material particle, the blowing agent, and any additives or materials that may be contained therein, as well as on the pressure or temperature conditions, which, as described above, are typically selected depending on the material. Due to the cellular structure of the pre-expanded plastic material particles, accumulation of the blowing agent may also occur within the cell spaces provided by the cellular structure, and therefore the internal volume of each pre-expanded plastic material defined by the cell spaces can be used as a receiving space for the absorption of the blowing agent, which takes place in the second step of the method.
[0018] The pressure level in the second step of the method is usually selected, particularly depending on the material, so as not to damage the cell structure of the pre-expanded plastic material particles, and in particular so as not to damage the cell structure of the pre-expanded plastic material particles in an undesirable way, i.e., so as not to cause, for example, plastic deformation or even complete collapse. In this connection, the effective difference between the external filling pressure and the internal foam pressure is of particular importance.
[0019] The same applies in particular to the pressure rise rate, i.e., the rate at which the external pressure is increased from the initial level to the target level in the second step. Typically, the pressure rise rate is in the range of 0.001 bar / min to 1000 bar / min, in particular 0.01 bar / min to 1000 bar / min, more in particular 0.1 bar / min to 1000 bar / min, even more in particular 1 bar to 1000 bar / min, even more in particular 2, 3, 4, 5, 6, 7, 8, 9 or 10 bar / min to 1000 bar / min, even more in particular 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95 or 100 bar / min to 1000 bar / min, more particularly 125, 150, 175, 200, 225, 250, 275, 300, 325, 350, 375, 400, 425, 450, 475, 500, 525, 550, 575, 600, 625, 650, 675, 700, 735, 750, 775, 800, 825, 850, 875, 900, 925, 950 or 975 bar / min to 1000 bar / min. All intermediate values not explicitly listed here are also contemplated.
[0020] Gases such as carbon dioxide, or mixtures containing carbon dioxide and / or nitrogen, such as air, can be used as blowing agents. Generally, any flammable or non-flammable organic gas, specifically butane or pentane, or a noble gas, specifically an inert gas such as helium, neon, or argon, or nitrogen, or a mixture thereof, can be used. Therefore, the term "blowing agent" can also include a mixture of chemically and / or physically different blowing agents. The selection of a blowing agent is typically based on its absorption capacity in the pre-expanded plastic material particles, and therefore takes into account the chemical and / or physical makeup or composition of the pre-expanded plastic material particles. If the pre-expanded plastic material particles contain an additive or additive material, the properties of the additive or additive material, such as its chemical and / or physical makeup, can also be taken into account when selecting a blowing agent.
[0021] The second step of the method can be carried out, optionally at least partially or partially automated, using a filling device configured to fill the pre-expanded plastic material particles with a blowing agent under at least pressure to perform the corresponding filling process. The corresponding filling device can be configured as, for example, an autoclave device, i.e., generally, a pressure vessel device with a temperature-controllable pressure or process chamber. The corresponding filling device can further include a temperature control device configured to control the temperature of the corresponding pressure or process chamber. In all cases, the corresponding filling device can include a control unit and / or adjustment unit, implemented in terms of hardware and / or software, configured to control and / or adjust, i.e., generally set, certain dynamic and / or static pressure and / or temperature parameters in the corresponding pressure or process chamber.
[0022] In the third step of the process, the pre-expanded plastic material particles filled with the blowing agent are expanded under the influence of temperature, particularly high temperature, to produce expanded plastic particles. Thus, in the third step of the process, the pre-expanded plastic material particles filled with the blowing agent are typically exposed to high temperature, i.e., typically thermal energy, resulting in outgassing and / or expansion of the blowing agent contained in the pre-expanded plastic material particles. This is typically done in a dry state, i.e., in the absence of external influences from fluids such as steam or water. In particular, outgassing of the blowing agent within the cellular and matrix regions of the heat-softened or softened pre-expanded plastic material particles results in further or further expansion of the plastic material particles, resulting in the formation of plastic particles with a permanent cellular structure after cooling or "freezing," which may be altered, for example, in terms of the number and / or shape and / or size of the cells, and thus the formation of expanded plastic particles. Thus, in the third step of the process, the production of expanded plastic particles typically involves at least one measure to degas or expand the blowing agent contained in the cell and matrix regions of the pre-expanded plastic material particles, thereby softening the pre-expanded plastic material particles at least thermally, at least under the influence of temperature. Phenomenologically, in the third step of the process, the outgassing or desorption of the blowing agent from the cell and matrix regions of the softened pre-expanded plastic material particles leads to further bubble growth and, if necessary, the formation of new bubbles within the pre-expanded plastic material particles and subsequent bubble growth, resulting in expanded plastic particles with a significantly lower density than the pre-expanded plastic particles, if desired. Bubble formation, if any, is typically due to the desorption of the aforementioned blowing agent at the nucleation points of the softened plastic material particles under the influence of temperature, while bubble growth is typically due to the expansion of the blowing agent within already formed or existing bubbles due to overpressure.Also, as mentioned above, the cellular structure formed in this manner, or the further expanded state achieved thereby, can be permanently "frozen" or fixed by reducing the temperature of the foamed plastic particles produced in this manner, i.e., by cooling in the environment.
[0023] Essentially, after pressurization in the second step of the method, i.e., in particular after the pressure is lowered to normal or standard conditions, a gas release or desorption process occurs within each pre-expanded plastic material particle filled with a blowing agent, which typically softens due to thermal conditions. The gas release or desorption process of the blowing agent represents an essential prerequisite for the bubble growth process and, if necessary, the bubble formation process within each plastic material particle required for the production of the expanded plastic particles. The expanded plastic particles produced according to the method are formed in the third step of the method from the pre-expanded plastic material particles filled with a blowing agent present after the second step of the method, which typically softened due to thermal reasons, in particular as a result of the corresponding gas release or desorption process.
[0024] As mentioned above, the expanded plastic particles produced according to the present method, or the expanded plastic particles produced according to the present method, have a lower density than pre-expanded plastic particles, and therefore the present method, as also mentioned, serves to produce lower density expanded plastic particles and can therefore be presented or considered as a method for radiation-based modification, i.e., radiation-based post-expansion or further expansion, in particular of pre-expanded plastic particles.
[0025] As will be further explained, by controlling the bubble formation and growth processes associated with the corresponding gas release or desorption, as required, it is possible to achieve a cell structure with locally different cell properties and thus graded foamed plastic particles.
[0026] Typically, foamed plastic particles can be produced with cell sizes ranging from 0.5 to 250 μm. Therefore, the actual cell size, which of course generally refers to average values here, can be adjusted over a very wide range depending on the process conditions selected and tailored to the method. The same applies to the cell size distribution within each foamed plastic particle.
[0027] In particular, the (average) cell size is less than 250 μm, in particular less than 240 μm, more particularly less than 230 μm, more particularly less than 220 μm, more particularly less than 210 μm, more particularly less than 200 μm, more particularly less than 190 μm, more particularly less than 180 μm, more particularly less than 170 μm, more particularly less than 160 μm, more particularly less than 150 μm, more particularly less than 140 μm, more particularly less than 130 μm, more particularly less than 120 μm, more particularly less than 110 μm, more particularly less than 100 μm, more particularly less than 90 μm, more particularly less than 80 μm, more particularly less than 70 μm, more particularly less than 60 μm, more particularly less than 50 μm This applies to foamed plastic materials of less than 45 μm, more particularly less than 40 μm, more particularly less than 35 μm, more particularly less than 30 μm, more particularly less than 25 μm, more particularly less than 24 μm, more particularly less than 23 μm, more particularly less than 22 μm, more particularly less than 21 μm, more particularly less than 20 μm, more particularly less than 19 μm, more particularly less than 18 μm, more particularly less than 17 μm, more particularly less than 16 μm, more particularly less than 15 μm, more particularly less than 14 μm, more particularly less than 13 μm, more particularly less than 12 μm, more particularly less than 11 μm, more particularly less than 10 μm or smaller. All intermediate values not explicitly listed here are also contemplated.
[0028] The third step of the method can optionally be performed at least partially automated using an expansion device configured to radiatively expand a blowing agent to produce expanded plastic particles under the influence of at least a temperature to perform a corresponding radiation-based expansion process. The corresponding expansion device is typically configured as or includes a radiation-based heating device, i.e., a temperature control device generally including a temperature-controlled chamber or process chamber capable of temperature control or at least radiation-based temperature control. The corresponding tempering device can further include a conveyor device configured to transport the expanding plastic material particles along a transport path through the corresponding tempering chamber or process chamber. In all cases, the corresponding expansion device can include a control unit and / or adjustment unit, implemented in terms of hardware and / or software, configured to control and / or adjust, i.e., generally set, specific dynamic and / or static transport and / or temperature and / or radiation parameters within the corresponding temperature-controlled chamber or process chamber.
[0029] In particular, the third step of the method can be carried out continuously if desired, which is an advantage over the batch autoclave-based process mentioned earlier.
[0030] The density of the expanded plastic particles produced in the third step of the method is typically significantly lower than the initial density of the pre-expanded plastic material particles provided in the first step, resulting in the cellular characteristics of the plastic material particles that can be or are produced by the method. Correspondingly, the bulk density of the cellular plastic particles produced in the third step of the method is significantly lower than the bulk density of the pre-expanded plastic material particles provided in the first step of the method.
[0031] The foamed plastic particles produced in the third step of the method are typically further expandable or re-expandable, as further described above, which may represent an essential property for the described further processing, particularly steam-based or non-steam-based, of the foamed plastic particles for the production of foamed particulate molded articles.
[0032] Compared to known methods, the present method features special dynamic process control. While it requires softening for expansion, unlike extrusion processes, it does not require complete melting of the foam-filled pre-foamed plastic material and therefore does not require high pressure and temperature loads to fuse the plastic material with the foaming agent. Dynamic process control, i.e., the rapid (volumetric) heating it enables, as opposed to the convective and conductive energy transport in steam-based pre-foaming, is particularly important for its excellent energy efficiency and the very fine cell morphology described further below (because there is no time for cell merging). Therefore, the present method requires relatively (significantly) simplified equipment and process engineering efforts for its implementation, since it can fill pre-foamed plastic material particles with a foaming agent and convert the corresponding foam-filled plastic material particles into foamed plastic particles, at least under the influence of temperature, particularly temperature and pressure.
[0033] Furthermore, the properties of the foamed plastic particles that can be produced or produced according to the present method are improved, in particular with regard to the number, size, shape and distribution of the cells, which results from the easily adjustable and very well controllable process conditions during the filling process carried out in the second step of the present method and during the expansion process carried out in the third step of the present method.
[0034] In contrast to the autoclave-based expansion process described at the beginning, the present method allows for a continuous expansion process of the corresponding pre-expanded plastic particles filled with blowing agent, and does not require subsequent drying due to the absence of hot steam.
[0035] The method therefore allows for a significantly expanded process window that can be precisely set or controlled for each plastic material, making it possible in principle to produce expanded plastic particles with desired properties from particles of any (thermoplastic) pre-expanded plastic material.
[0036] As shown, the filling of the pre-expanded plastic material particles with the blowing agent can be carried out under the influence of pressure and temperature. Thus, the parameters that can be varied to fill the pre-expanded plastic material particles with the blowing agent and, in the further process, to specifically set the specific properties of the foamed plastic particles to be produced or produced, particularly depending on the material, are therefore initially the pressure and temperature conditions prevailing in the second step of the method. Of course, the time in the second step of the method, i.e., the course and duration of the pressure and temperature conditions, in particular, are also parameters that influence the filling of the pre-expanded plastic material particles with the blowing agent, i.e., in particular, the absorption of the blowing agent in the pre-expanded plastic material particles.
[0037] Specific parameters for carrying out the second step of the method are given below as an example.
[0038] The filling of the pre-expanded plastic material particles with the blowing agent or blowing agents can be carried out, for example, depending on the chemical composition of the pre-expanded plastic material particles and / or the blowing agent, particularly at a pressure in the range of 1 to 200 bar, in particular in the range of 1 to 190 bar, more particularly in the range of 1 to 180 bar, more particularly in the range of 1 to 170 bar, more particularly in the range of 1 to 160 bar, more particularly in the range of 1 to 150 bar, more particularly in the range of 1 to 140 bar, more particularly in the range of 1 to 130 bar. The pressure may be in the range of 1 to 120 bar, more particularly 1 to 110 bar, more particularly 1 to 100 bar, more particularly 1 to 90 bar, more particularly 1 to 80 bar, more particularly 1 to 70 bar, more particularly 1 to 60 bar, more particularly 1 to 50 bar, more particularly 1 to 40 bar, more particularly 1 to 30 bar, more particularly 1 to 20 bar, and more particularly 1 to 10 bar. Instead of 1 bar, 2, 3, 4, 5, 6, 7, 8, 9, or 10 bar may also be used as lower limits. The above pressures given by way of example refer in particular to the pressure in the pressure chamber or process chamber of the corresponding filling device during the second step of the method. All intermediate values not explicitly listed here are also contemplated.
[0039] As mentioned above, the pressure level, and in particular the rate of pressure increase, in the second step of the method is particularly material-dependent and is typically selected so that the cell structure of the pre-expanded plastic material particles is not collapsed, and in particular the pressure level, and in particular the rate of pressure increase, in the second step of the method is selected so that the cell structure of the pre-expanded plastic material particles is not plastically deformed or even collapsed by the pressure (effective difference between the external filling pressure and the internal cell pressure).
[0040] The filling of the pre-expanded plastic material particles with the or a blowing agent may be carried out, for example, at temperatures in the range of 0 to 250°C, more particularly in the range of 0 to 240°C, more particularly in the range of 0 to 230°C, more particularly in the range of 0 to 220°C, more particularly in the range of 0 to 210°C, more particularly in the range of 0 to 200°C, more particularly in the range of 0 to 190°C, more particularly in the range of 0 to 180°C, more particularly in the range of 0 to 170°C, more particularly in the range of 0 to 160°C, depending in particular on the chemical composition of the pre-expanded plastic material particles and / or the blowing agent. The temperature may be in the range of 0 to 150°C, more particularly 0 to 140°C, more particularly 0 to 130°C, more particularly 0 to 120°C, more particularly 0 to 110°C, more particularly 0 to 100°C, more particularly 0 to 90°C, more particularly 0 to 80°C, more particularly 0 to 70°C, more particularly 0 to 60°C, more particularly 0 to 50°C, more particularly 0 to 40°C, more particularly 0 to 30°C, and more particularly 0 to 20°C. The above temperatures given as examples refer in particular to the temperature in the pressure chamber or process chamber of the corresponding filling apparatus during the second step of the method. All intermediate values not explicitly listed here are also contemplated.
[0041] The loading of the or a blowing agent into the pre-expanded plastic material particles may be, for example, for a period in the range of 0.1 to 1000 hours, in particular in the range of 0.1 to 950 hours, more particularly in the range of 0.1 to 900 hours, more particularly in the range of 0.1 to 850 hours, more particularly in the range of 0.1 to 800 hours, more particularly in the range of 0.1 to 750 hours, more particularly in the range of 0.1 to 700 hours, more particularly in the range of 0.1 to 650 hours, more particularly in the range of 0.1 to 600 hours, more particularly in the range of 0.1 to 550 hours, more particularly in the range of 0.1 to 50 ... The process can be carried out for a period of time ranging from 0.1 to 450 hours, more particularly from 0.1 to 400 hours, more particularly from 0.1 to 350 hours, more particularly from 0.1 to 300 hours, more particularly from 0.1 to 250 hours, more particularly from 0.1 to 200 hours, more particularly from 0.1 to 150 hours, more particularly from 0.1 to 100 hours, more particularly from 0.1 to 90 hours, more particularly from 0.1 to 80 hours, more particularly from 0.1 to 70 hours, more particularly from 0.1 to 60 hours, more particularly from 0.1 to 50 hours, more particularly from 0.1 to 40 hours, more particularly from 0.1 to 30 hours, more particularly from 0.1 to 20 hours, and more particularly from 0.1 to 10 hours. As noted above, exemplary durations refer specifically to the pressure or temperature applied to the plastic material particles in the pressure chamber or process chamber of the corresponding filling apparatus during the second step of the process. All intermediate values not explicitly listed herein are also contemplated.
[0042] Specific parameters for carrying out the third step of the method are shown below as an example.
[0043] The expansion of the blowing agent-filled plastic material particles to form foamed plastic particles under the influence of temperature, particularly depending on the chemical composition of the blowing agent-filled plastic particle material and / or the blowing agent, can be carried out, for example, at normal pressure, i.e., ambient pressure of about 1 bar. Therefore, special pressure levels, such as positive or negative pressure levels, are possible for the expansion of the blowing agent-filled pre-expanded plastic material particles to form cellular plastic particles, but are not absolutely necessary and would fundamentally simplify the foaming process.
[0044] The expansion of the blowing agent-filled plastic material particles under the influence of temperature to produce foamed plastic particles can be carried out in a range of, for example, 20 to 300°C, in particular in the range of 20 to 290°C, more particularly in the range of 20 to 280°C, more particularly in the range of 20 to 270°C, more particularly in the range of 20 to 260°C, more particularly in the range of 20 to 250°C, more particularly in the range of 20 to 240°C, more particularly in the range of 20 to 230°C, more particularly in the range of 20 to 220°C, more particularly in the range of 20 to 210°C, more particularly in the range of 20 to 20 ... The temperature may be in the range of 20 to 190° C., more particularly in the range of 20 to 180° C., more particularly in the range of 20 to 170° C., more particularly in the range of 20 to 160° C., more particularly in the range of 20 to 150° C., more particularly in the range of 20 to 140° C., more particularly in the range of 20 to 130° C., more particularly in the range of 20 to 120° C., more particularly in the range of 20 to 110° C., more particularly in the range of 20 to 100° C., more particularly in the range of 20 to 90° C., more particularly in the range of 20 to 80° C., more particularly in the range of 20 to 70° C., more particularly in the range of 20 to 60° C., more particularly in the range of 20 to 50° C., more particularly in the range of 20 to 40° C., and more particularly in the range of 20 to 30° C. All intermediate values not explicitly listed herein are also contemplated.
[0045] In particular, the above temperatures may refer to the inlet temperature at which the foamed plastic particles filled with the blowing agent enter the corresponding expansion device and / or the outlet temperature at which the foamed plastic particles exit the corresponding expansion device. The corresponding inlet and outlet temperatures may be the same, similar, or different. If the corresponding expansion device includes a conveyor device arranged to transport the foamed plastic particles along the corresponding tempering device, the above temperatures may refer to the temperature at which the foamed plastic particles filled with the blowing agent enter the corresponding expansion device or tempering device (inlet temperature), i.e., the temperature at which they enter the initial region of the corresponding conveyor device, and / or the temperature at which the plastic particles exit the corresponding expansion device or temperature control device (outlet temperature), i.e., the temperature at which they exit the final region of the corresponding conveyor device. Typically, the inlet temperature will be lower than the outlet temperature.
[0046] The expansion of the foam-filled pre-expanded plastic material particles under the influence of temperature is achieved by irradiating the foam-filled pre-expanded plastic material particles with high-energy thermal radiation, specifically infrared radiation. In particular, infrared radiation with wavelengths in the range of 1 to 15 μm, particularly in the range of 1.4 to 8 μm, and even more particularly in the range of 1.4 to 3 μm, is considered. The wavelength of the infrared radiation is typically selected depending on the material. Temperature control, specifically heating, of the foam-filled pre-expanded plastic material particles can be performed in a highly targeted manner by selecting and / or adjusting the characteristics of the high-energy radiation used, specifically its wavelength, depending on the material. In particular, the wavelength of the energy-rich radiation used can be adjusted in a highly targeted manner without risking undesired or complete melting, i.e., insufficient stability of the softened plastic material particles, if they soften upon heating. Investigations have shown that infrared radiation is particularly suitable for this purpose, since in combination with a conveyor device it allows for targeted and easily controllable volumetric heating of the foaming agent-filled pre-expanded plastic material particles, a controllable softening process and therefore a controllable expansion process, which is essential for tailoring the properties of the foamed plastic particles produced.
[0047] In particular, the expansion of the foaming agent-filled plastic material particles can be achieved by irradiating the foaming agent-filled pre-expanded plastic material particles with high-energy thermal radiation, in particular infrared radiation, under the influence of temperature. The foaming agent-filled plastic material particles are transported, in particular continuously, along at least one transport path defined by a conveyor device along at least one radiation-emitting device that generates corresponding high-energy radiation, in particular infrared radiation. The corresponding radiation-emitting device can be configured as or include an infrared oven, in particular a continuous infrared oven. The corresponding infrared oven can include one or more infrared emitters arranged or formed along the corresponding transport path. The corresponding infrared emitters can have a radiation power that is variable, for example, in the range of 1 to 500 kW, more particularly in the range of 1 to 450 kW, more particularly in the range of 1 to 400 kW, more particularly in the range of 1 to 350 kW, more particularly in the range of 1 to 250 kW, more particularly in the range of 1 to 200 kW, more particularly in the range of 1 to 150 kW, more particularly in the range of 1 to 100 kW, and more particularly in the range of 1 to 50 kW. Instead of 1 kW, 2, 3, 4, 5, 6, 7, 8, 9 or 10 kW may also be used as lower limits. All intermediate values not explicitly listed here are also possible.
[0048] The aforementioned power output refers specifically to the area power output per square meter. According to the survey, it is especially 5 to 100 kW / m 2 Good results are obtained with an area output of .Variable radiators or variable radiator (area) outputs can be used to create different temperature zones, which also provide parameters that influence the expansion process.
[0049] According to the present method, as described above, after expanding the plastic material particles filled with a blowing agent to produce expanded plastic particles, the produced expanded plastic particles can be cooled under the influence of temperature (especially at a temperature lower than the temperature of the previous expansion process). The cooling is preferably carried out quickly, allowing the cell structure of the expanded plastic particles to be "frozen" after the expansion process. In this way, it is possible to particularly prevent global or local expansion of the plastic particles, which may be undesirable after the expansion process, and this may allow the cell structure of the plastic particles to be maintained, which may be desirable after the expansion process. In particular, room temperature can be used as the reference temperature, and cooling can be carried out from a process temperature above the reference temperature to a cooling temperature below the method temperature or the reference temperature, in particular room temperature. Therefore, a separate tempering device for cooling the plastic particles is not absolutely necessary; it is sufficient to cool the plastic particles to room temperature or to age them at room temperature after the expansion process.
[0050] According to this method, as also indicated above, a pre-expanded plastic particle material can be provided or used that contains at least one particularly functional additive or additional material, such as a fibrous substance or material, a dye substance or material, a nucleating substance or material, and / or an additive for adjusting the melt viscosity, such as a chain extender, or a substance or material for increasing the absorption coefficient, such as graphite or carbon black, to specifically influence or control the softening behavior of the plastic material particles containing the foaming agent-filled pre-expanded plastic particle material. Thus, compounded pre-expanded plastic material particles can also be filled with a foaming agent and expanded, resulting in foamed plastic particles with special properties. In particular, through the targeted selection and concentration of appropriate additives or materials, customized plastic particles can be produced for specific uses or fields of application. The additives or materials may be introduced into the pre-expanded plastic material particles during production.
[0051] The use of fibrous substances or materials, primarily organic or inorganic, such as aramid, glass, carbon, or natural fibers, in particular fibrous substances or materials, can realize special material properties of the foamed plastic particles that can be produced or produced according to the present method, or of the molded particle foam parts produced from the foamed plastic particles that can be produced or produced according to the present method, during further processing. The corresponding foamed plastic particles or the molded particle foam parts produced therefrom can be characterized, on the one hand, by their special density due to their cell structure, and, on the other hand, by special mechanical properties due to the mechanical bonding of adjacent cells within and / or between adjacent foamed plastic particles, particularly as a result of processing. During subsequent processing into a molded particle foam part, these special mechanical properties can be utilized or even modified locally or integrally. The same applies to non-fibrous additives or additive materials, primarily regardless of their chemical composition, such as organic and / or inorganic additives or additive materials in spherical or platelet-like or platelet-like shapes.
[0052] In addition to specifically influencing the mechanical properties of plastic particles, it is also possible, for example, to specifically influence the electrical and / or thermal properties of plastic particles by means of suitable additives or materials. Thus, plastic particles with special electrical and / or thermal conductive properties can be produced, for example, by using electrically conductive and / or thermally conductive additives or materials, such as metal and / or carbon black particles.
[0053] The concentration of the corresponding additive or additive material can in principle be freely selected, but typically varies depending on the material. Thus, by way of example, it is merely indicated that pre-expanded plastic material particles containing one or more additives or additive materials can be provided or used in concentrations between 0.01% by weight (respectively), which applies particularly to chemically active additives, and 60% by weight, which applies particularly to fibrous additives. As indicated, the concentrations typically depend on the specific chemical and / or physical properties of the additive or additive material, or combinations thereof.
[0054] In principle, any thermoplastic material can be used as the starting material. By way of example, it is understood that pre-expanded plastic material particles from the group consisting of acrylonitrile-butadiene-styrene, acrylonitrile-butadiene-styrene blends, polyamides, polyamide blends, polycarbonates, polycarbonate blends, polyethylene, polyethylene blends, polypropylene, polypropylene blends, polyphenylene ethers, polyphenylene ether blends, thermoplastic elastomers, polyethylene terephthalate, polyethylene terephthalate blends, polybutylene terephthalate, polybutylene terephthalate blends, polystyrene, polyvinyl chloride, polystyrene blends, and thermoplastic elastomer blends can be used. Blends, copolymers, or mixtures of different thermoplastic materials can also be used; modified PPE (mPPE) is mentioned in this context merely as an example.
[0055] When blends are used that include at least two components that differ in at least one chemical and / or physical parameter and / or molecular structure parameter, these can, in principle, be present in any desired proportional composition, with their respective percentages adding up to 100% by weight. Thus, the first component can have any weight percentage between 1 and 99% by weight, and the second component can have any weight percentage between 99 and 1% by weight, with their respective percentages adding up to 100% by weight. Of course, percentages less than 1% by weight and greater than 99% by weight are also conceivable.
[0056] All plastic materials used may contain one or more additives, such as fibers, as previously mentioned. All plastic materials used may be recycled or contain some recycled content.
[0057] It has been mentioned that the properties of the low density expanded plastic particles that can be produced according to the present method can be influenced by the process conditions, in particular during the filling and expansion processes.
[0058] The method can produce foamed plastic particles with a uniformly or non-uniformly distributed cell structure, depending on the selected process conditions. The properties within each cellular plastic particle, i.e., in particular the cell structure distribution, can therefore be influenced by material-specific parameters as well as pressure, temperature, time during filling or expansion, and transport or residence times or conditions between the individual method steps.
[0059] When expanded plastic particles with a non-uniformly distributed cell structure are produced according to this method, each expanded plastic particle may have a different number, shape, and / or size of cells in the peripheral region than in the core region. Thus, graded expanded plastic particles with a specific range of properties can be produced by varying the distribution of cell number, cell shape, and / or cell size. Thus, graded expanded plastic particles, such as core-shell particles, can have different cell properties in the (external) peripheral region than in the (internal) core region.
[0060] Correspondingly structured foamed plastic particles can be achieved in particular by (very) short-time filling of the compressed starting material with blowing agent, so that the blowing agent accumulates only near the periphery and expansion occurs specifically at the periphery. Conversely, (too) long maturation periods between filling of the blowing agent and expansion can result in foamed plastic particles with a predominantly expanded "core".
[0061] Typically, foamed plastic particles can be produced with cell sizes ranging from 0.5 to 250 μm. The actual cell size, which of course generally refers to average values, can therefore be adjusted over a very wide range depending on the process conditions selected and therefore the method. The same applies to the cell size distribution within each foamed plastic particle.
[0062] It is also true that, in general, foamed plastic particles having a bulk density in the range of 5 to 1500 g / l can be produced by this method, depending in particular on the degree of expansion and, if necessary, the filler content. The actual bulk density, which, of course, again usually refers to an average, can be adjusted over a very wide range depending on the selected process conditions and can therefore be tailored.
[0063] Below is a purely exemplary list of pre-expanded plastic material particles that can be, or have been, particularly treated as part of the present method, and associated parameters for carrying out the second and third steps of the method.
[0064] In a first example, pre-expanded polycarbonate plastic material, i.e., polycarbonate plastic material particles with a bulk density of approximately 140 g / l, was prepared in the first step of the method. In the second step of the method, the pre-expanded plastic material particles were filled with air as a blowing agent in a pressure vessel at a pressure of approximately 40 bar for 10 hours without any separate tempering. The pressure increase rate was approximately 10 bar per hour. In the third step of the method, the blowing-agent-filled pre-expanded plastic material particles were expanded by conveying them, in particular continuously or discontinuously, through an infrared continuous oven equipped with multiple infrared emitters, i.e., by conveying the plastic material particles along a conveying or tempering section approximately 5 m long formed by multiple tempering elements in the form of infrared emitters with a total emitter power of approximately 10 kW. The temperature of the conveyor belt at the entrance of the conveyor section was about 80°C, the temperature of the conveyor belt at the exit of the conveyor section or temperature-controlled section was about 160°C, and the conveying speed was about 700 mm / s. The bulk density of the foamed plastic particles produced by this method was about 115 g / l.
[0065] In a second example, in the first step of the method, pre-expanded expandable polyamide plastic material, i.e., expandable polyamide plastic material particles having a bulk density of approximately 420 g / l, was prepared. In the second step of the method, the pre-expanded plastic material particles were filled with air as a blowing agent in a pressure vessel at a pressure of approximately 8 bar for 40 hours without any separate tempering. The pressure increase rate was approximately 1 bar per hour. In the third step of the method, the pre-expanded plastic material particles were expanded by conveying them, in particular continuously or discontinuously, through an infrared continuous oven equipped with multiple infrared emitters, i.e., by conveying the plastic material particles along a conveying or tempering section approximately 5 m long formed by multiple tempering elements in the form of infrared emitters with a total emitter power of approximately 10 kW. The temperature of the conveyor belt at the entrance of the conveyor section was approximately 90°C, and the temperature of the conveyor belt at the exit of the conveyor / tempering section was approximately 220°C. The conveying speed was about 450 mm / s. The bulk density of the foamed plastic particles produced in this way was about 225 g / l.
[0066] In a third example, in the first step of the method, pre-expanded expandable polypropylene plastic material, i.e., polypropylene plastic material particles having a bulk density of approximately 75 g / l, was prepared. In the second step of the method, the pre-expanded plastic material particles were filled with air as a blowing agent in a pressure vessel at a pressure of approximately 8 bar for 100 hours without any additional tempering. The pressure increase rate was approximately 0.2 bar per hour. In the third step of the method, the pre-expanded plastic material particles were expanded by continuously or discontinuously conveying the pre-expanded plastic material particles through an infrared continuous oven equipped with several infrared emitters, i.e., by conveying the plastic material particles along a conveying or tempering section approximately 5 m long formed by multiple tempering elements in the form of infrared emitters with a total emitter power of approximately 20 kW. The temperature of the conveyor belt at the entrance of the conveyor section was about 85°C, and the temperature of the conveyor belt at the exit of the conveyor section or temperature-controlled section was about 160°C. The conveying speed was about 450 mm / s. The bulk density of the foamed plastic particles produced by this method was about 35 g / l.
[0067] A second aspect of the present invention relates to a particulate foam material formed by or comprising expanded plastic particles produced according to the method of the first aspect.
[0068] A third aspect of the present invention relates to a method for processing plastic granular material according to the second aspect to produce a granular foamed moulded body.
[0069] A fourth aspect relates to an apparatus for producing expanded plastic particles, in particular according to the method according to the first aspect, a first device adapted to fill the pre-expanded thermoplastic with a blowing agent under the influence of pressure, the device in particular comprising a filling device, for example in the form of a pressure vessel device; a second device adapted to expand the blowing agent under the influence of temperature to produce expanded plastic particles, the second device in particular comprising an expansion device in the form of a radiation generator for generating high-energy radiation, in particular infrared radiation; and Equipped with.
[0070] Thus, the second device may in particular be configured as or comprise a radiation-based heating device.
[0071] The second device may comprise a conveyor device, in particular a device combining a conveyor device and a temperature control device. The corresponding combined conveyor and temperature control device may be configured, for example, as a continuous oven, in particular as an infrared continuous oven including one or more infrared emitters, or may comprise at least one such oven.
[0072] The second apparatus may also be assigned a stress relaxation device, such as a stress relaxation chamber, in which the produced foamed plastic particles are stored (stress-relaxed) under defined chemical and / or physical conditions, i.e., in particular under defined temperature ratios, for a defined time. A corresponding stress relaxation device may, for example, be configured as or comprise a pressure reducing device.
[0073] It is conceivable that the device further comprises a conveyor device, by means of which the produced expanded plastic particles are transported continuously or discontinuously through the corresponding relaxation spaces.
[0074] The apparatus may further comprise a suitable handling device for handling the pre-expanded plastic material particles for feeding the pre-expanded plastic material particles and / or for removing the generated expanded plastic particles. The corresponding handling device may be configured as or comprise a conveyor device. In particular, conveyor devices suitable for conveying bulk materials, such as pneumatic conveyor devices configured to form a conveying flow, are considered.
[0075] The apparatus can essentially comprise a conveyor device by which the pre-expanded plastic material particles, and also the expanded plastic particles, can be transported continuously or discontinuously through the individual devices of the apparatus.
[0076] All embodiments relating to the method according to the first aspect apply equally to the particulate foam material according to the second aspect, the method according to the third aspect and the apparatus according to the fourth aspect. [Brief explanation of the drawings]
[0077] The invention will be explained again below by way of example of an embodiment with reference to the figures, in which:
[0078] FIG. 1 is a flow chart illustrating a method according to one embodiment.
[0079] FIG. 2 is a principle diagram of an apparatus for carrying out a method according to an embodiment.
[0080] 3 and 4 are schematic diagrams of expanded plastic particles produced according to a method according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0081] FIG. 1 shows a flow chart illustrating a method according to one embodiment.
[0082] This method is a method for producing expanded plastic particles, and therefore this method is used for producing expanded plastic particles. Therefore, plastic particles that can be produced according to this method or that have been produced according to this method and have a lower density than the starting material are plastic particles with at least a partially, and in some cases completely, cellular structure. The plastic particles may also have a certain (further) expansion capacity, especially with a certain amount of blowing agent, whether they are residues from the described method or a blowing agent subsequently introduced in another method step. Therefore, the density of the cellular plastic particles that can be generated or produced according to this method may be expandable and / or (mechanically) compressible or compressible.
[0083] The low-density expanded plastic particles that can be produced or manufactured according to the present method can be further processed in one or more separate downstream processes to form a particle foam molded part. Further processing of the plastic particles into a particle foam molded part can be carried out with steam or superheated steam (steam-based) or without the use of steam or superheated steam (non-steam-based or dry).
[0084] The steps of the method for producing expanded plastic particle density are described in more detail below with reference to FIGS.
[0085] In the first step S1 of the method, a plastic material is provided in the form of pre-expanded plastic material particles. The provided pre-expanded plastic material particles may also be referred to as "pre-expanded plastic material particles". Thus, pre-expanded plastic material particles, which are typically thermoplastic plastic material particles, considered as starting material, are provided in the first step of the method. The prepared starting material is therefore present in particulate form, i.e., in particular in bulk form or shape. Thus, in the first step, at least one measure is generally carried out to provide a particulate, i.e., in particular in bulk form or shape, (thermoplastic) plastic material in the form of corresponding pre-expanded plastic material particles. The density of the pre-expanded plastic material particles provided in the first step of the method is usually less than 1 g / cm, depending on the material composition or cell structure. 3 Less than 0.05 to 2.2 g / cm 3 from which the pre-expanded properties of the pre-expanded plastic material particles are derived, the matrix of the pre-expanded plastic material particles thus provided having a porous or cellular structure.
[0086] Despite their cellular structure, the matrix of the pre-expanded plastic material particles may, if desired, contain at least one additive or additional material, such as an elongated, spherical or platelet-shaped filler. In particular, in the case of pre-expanded plastic material particles containing additives or additional materials, the density may be, depending on the concentration, in some cases up to 1 g / cm. 3 The corresponding additives or materials can be present as such or act in the form of bubbles.
[0087] The first step S1 of the method can be carried out at least partially or partially automatically using a supply device 2, shown purely diagrammatically in FIG. 2, configured to continuously or discontinuously supply the corresponding pre-expanded plastic material particles, as required. The corresponding supply device 2 can be, for example, a conveyor device that can transport the pre-expanded plastic material particles to be processed into the corresponding expanded plastic particles to a filling device 3 that performs the second step of the method. The corresponding conveyor device can be configured as or comprise a belt conveyor device or a flow conveyor device. Thus, transporting the pre-expanded plastic material particles to or into the filling device 3 that performs the second step of the method can include picking up the pre-expanded plastic material particles in the conveying stream, so that the pre-expanded plastic material particles can be transported by the conveying stream to or into the filling device 3 that performs the second step of the method.
[0088] In the second step S2 of the method, the pre-expanded plastic material particles are filled with a blowing agent at least under the influence of pressure. Thus, in the second step, the pre-expanded plastic material particles are filled with a blowing agent at least under the influence of pressure, and if necessary, a specific (high) temperature can also be applied in addition to a specific pressure depending on the material. Thus, in the second step, at least one means for filling the pre-expanded plastic material particles with a blowing agent is typically carried out at least under the influence of pressure. Phenomenologically, the concentration of the blowing agent in each pre-expanded plastic material particle typically occurs in the second step of the method. The concentration of the blowing agent in each pre-expanded plastic material particle can result, for example, from a process of absorption and / or dissolution of the blowing agent in each pre-expanded plastic material particle, depending in particular on the chemical composition of the pre-expanded plastic material particle, the blowing agent, and any additives or materials contained therein, as well as on the pressure or temperature conditions, which are typically selected depending on the material, as described above. Due to the cellular structure of the pre-expanded plastic material particles, accumulation of the blowing agent may also occur within the cell spaces provided by the cellular structure, and therefore the internal volume of each pre-expanded plastic material defined by the cell spaces can be used as a receiving space for the absorption of the blowing agent, which takes place in the second step of the method.
[0089] Therefore, the pressure level and the rate of pressure increase in the second step of the method are usually selected, in particular depending on the material, so that the cell structure of the pre-expanded plastic material particles is not damaged, and in particular the pressure level and the rate of pressure increase in the second step of the method are selected so that the cell structure of the pre-expanded plastic material particles is not plastically deformed or even collapsed due to the pressure (effective difference between the external filling pressure and the internal cell pressure).
[0090] Gases such as carbon dioxide, or mixtures containing carbon dioxide and / or nitrogen, such as air, can be used as blowing agents. Generally, any flammable or non-flammable organic gas, specifically butane or pentane, or a noble gas, specifically an inert gas such as helium, neon, or argon, or nitrogen, or a mixture thereof, can be used. Therefore, the term "blowing agent" can also include a mixture of chemically and / or physically different blowing agents. The selection of a blowing agent is typically based on its absorption capacity in the pre-expanded plastic material particles, and therefore takes into account the chemical and / or physical makeup or composition of the pre-expanded plastic material particles. If the pre-expanded plastic material particles contain an additive or additive material, the properties of the additive or additive material, such as its chemical and / or physical makeup, can also be taken into account when selecting a blowing agent.
[0091] The second step S2 of the method can be carried out, if necessary, at least partially or partially automatically using a filling device 3, shown purely diagrammatically in FIG. 2, configured to fill the pre-expanded plastic material particles with a blowing agent under pressure or to perform a corresponding filling process. The corresponding filling device 3 can be configured, for example, as an autoclave device, i.e., generally, as or comprise a pressure vessel device 3.1 with a pressure or process chamber. The corresponding filling device 3 can further comprise a temperature control device 3.2 configured to control the temperature of the corresponding pressure or process chamber. The corresponding filling device can in any case comprise a control and / or regulation unit 3.3, implemented in hardware and / or software, configured to control and / or regulate, i.e., generally set, certain dynamic and / or static pressure and / or temperature parameters in the pressure or process chamber.
[0092] In the third step of the method, the pre-expanded plastic material particles filled with a blowing agent are expanded under the influence of temperature, i.e., particularly under the influence of high temperature, to produce expanded plastic particles. Thus, in the third step of the method, the pre-expanded plastic material particles filled with a blowing agent are typically exposed to (high) temperatures, i.e., generally thermal energy, resulting in outgassing and / or expansion of the blowing agent contained in the pre-expanded plastic material particles. In particular, the outgassing of the blowing agent in the cellular and matrix regions of the pre-expanded plastic material particles softened or softened under thermal conditions leads to a new or further expansion of the plastic material particles, resulting in the formation of plastic particles with a permanent cellular structure after cooling or "freezing," which may be different from the starting material, for example, in terms of the number of bubbles, the shape of the bubbles, and / or the size of the bubbles, and thus the resulting expanded plastic particles. Thus, in the third step of the method, at least one measure is carried out to degas or expand the blowing agent contained in the pre-expanded plastic material particles, which are typically softened or at least thermally softened under the influence of temperature. Phenomenologically, in the third step of the process, the outgassing or desorption of the blowing agent, particularly from the cellular and matrix regions of the softened or softened pre-expanded plastic material particles, potentially leads to further cell growth and the formation of new cells within the pre-expanded plastic material particles followed by subsequent cell growth, thereby producing expanded plastic particles. Cell formation, if any, is typically based on the desorption of the blowing agent at the nucleation points of the softened or softened plastic material particles under the influence of temperature, while cell growth is typically based on the expansion of the blowing agent within already formed or existing cells due to overpressure. Also, as mentioned above, the cellular structure formed in this manner, or the further expanded state achieved thereby, can be permanently "frozen" or fixed by reducing the temperature of the expanded plastic particles produced in this manner, i.e., by ambient cooling, for example.
[0093] Essentially, after pressurization in the second step of the method, i.e., particularly after the pressure is reduced to normal or standard conditions, a gas release or desorption process occurs within each pre-expanded plastic material particle filled with a blowing agent, typically softened by thermal conditions. The gas release or desorption process of the blowing agent represents an essential prerequisite for the bubble growth process and, if necessary, the bubble formation process within each plastic material particle required for the production of expanded plastic particles. The expanded plastic particles produced according to the method are formed in the third step of the method, particularly by a corresponding gas release or desorption process, from the pre-expanded plastic material particles filled with a blowing agent and typically softened by thermal conditions present after the second step of the method. As will be explained further, if necessary, by controlling the bubble formation and growth process associated with the corresponding gas release or desorption, a cell structure with locally different cell properties, and thus graded cellular plastic particles, can be achieved.
[0094] The targeted adjustment of the nucleation and softening behavior has a decisive influence on the desorption of the blowing agent. In particular, the large number of individual nucleation points leads to the formation of many new small cells, resulting in a fine-cell structure within each foamed plastic particle. The corresponding fine-cell structure is characterized by particularly small cells and their almost uniform distribution within each foamed plastic particle.
[0095] Typically, foamed plastic particles can be produced with cell sizes ranging from 0.5 to 250 μm. Therefore, the actual cell size, which of course generally refers to average values here, can be adjusted over a very wide range depending on the process conditions selected and tailored to the method. The same applies to the cell size distribution within each foamed plastic particle.
[0096] In particular, the method can be used to form expanded plastic particles having an (average) cell size of less than 100 μm, in particular less than 75 μm, more particularly less than 50 μm, more particularly less than 25 μm.
[0097] The third step S3 of the method can optionally be performed at least partially or automatically using an expansion device 4 configured to radiantly expand a blowing agent for producing expanded plastic particles under the influence of at least a temperature to perform a corresponding radiation-based expansion process. Accordingly, the corresponding expansion device 4 is typically configured as a radiation-based heating device, i.e., a temperature control device 4.1 generally comprising a temperature-controlled or temperature-controlled chamber or process chamber, at least based on radiation. The corresponding tempering device 4.1 can further comprise a conveyor device 4.3 configured to convey the expanding plastic material particles along a conveying path through the corresponding tempering or process chamber. In all cases, the corresponding expansion device 4 can comprise a control and / or adjustment unit 4.2, implemented in terms of hardware and / or software, configured to control and / or adjust, i.e., generally set, certain dynamic and / or static conveying and / or temperature parameters within the corresponding tempering or process chamber.
[0098] The density of the expanded plastic particles produced in the third step S3 of the method is typically significantly lower than the initial density of the pre-expanded plastic material particles provided in the first step S1, resulting in the cellular properties of the plastic material particles that can be or are produced by the method. Correspondingly, the bulk density of the cellular plastic particles produced in the third step S3 of the method is significantly lower than the bulk density of the pre-expanded plastic material particles provided in the first step S1 of the method.
[0099] The foamed plastic particles produced in the third step S3 of the method are, as mentioned above, (further) expandable, which may represent an essential property for the described further processing, in particular steam-based or non-steam-based, of the foamed plastic particles for the production of particle foam moulded articles.
[0100] As shown, the filling of the pre-expanded plastic material particles with the blowing agent can be carried out under the influence of pressure and temperature. Thus, the parameters that can be varied to fill the pre-expanded plastic material particles with the blowing agent and subsequently specifically set the specific properties of the foamed plastic particles to be produced or produced, particularly depending on the material, are therefore initially the pressure and temperature conditions prevailing in the second step S2 of the method. Of course, the time in the second step of the method, i.e., the course and duration of the pressure and temperature conditions, in particular, are also parameters that influence the filling of the pre-expanded plastic material particles with the blowing agent, i.e., in particular, the absorption or accumulation of the blowing agent in the pre-expanded plastic material particles.
[0101] The filling of the pre-expanded plastic material particles with the or a blowing agent can be carried out, for example, at a pressure in the range of 1 to 200 bar, depending in particular on the chemical composition of the pre-expanded plastic material particles and / or the blowing agent, which pressure in particular refers to the pressure in the pressure chamber or process chamber of the corresponding filling device 3 during the second step S2 of the method.
[0102] The filling of the pre-expanded plastic material particles with the or a blowing agent can be carried out, for example, at a temperature in the range of 0 to 250° C., depending in particular on the chemical composition of the pre-expanded plastic material particles and / or the blowing agent. Temperature refers in particular to the temperature in the pressure chamber or process chamber of the corresponding filling device during the execution of the second step S2 of the method.
[0103] The filling of the pre-expanded plastic material particles with the or each blowing agent can be carried out for a period ranging from 0.1 to 1000 hours, depending in particular on the chemical composition of the pre-expanded plastic material particles and / or the blowing agent. As mentioned above, the exemplary duration refers in particular to the application of pressure or temperature to the plastic material particles in the pressure chamber or process chamber of the corresponding filling device 2 during the second step S2 of the method.
[0104] The expansion of the blowing agent-filled plastic material particles to form foamed plastic particles under the influence of temperature, particularly depending on the chemical composition of the blowing agent-filled plastic particle material and / or the blowing agent, can be carried out, for example, at normal pressure, i.e., ambient pressure of about 1 bar. Therefore, special pressure levels, such as positive or negative pressure levels, are possible for the expansion of the blowing agent-filled pre-expanded plastic material particles to form cellular plastic particles, but are not absolutely necessary and would fundamentally simplify the foaming process.
[0105] The expansion of the blowing agent-filled plastic material particles under the influence of temperature to produce foamed plastic particles can be carried out, for example, at temperatures ranging from 0 to 300°C, depending on the chemical composition of the blowing agent-filled plastic particle material and / or the blowing agent. In particular, the aforementioned temperatures may refer to the inlet temperature at which the blowing agent-filled pre-expanded plastic material particles enter the corresponding expansion device 4 and / or the outlet temperature at which the foamed plastic particles exit the corresponding expansion device 4. The corresponding inlet and outlet temperatures may be the same, similar, or different. If the corresponding expansion device 4 includes a conveyor device 4.3 arranged to transport the blowing agent-filled plastic material particles along the corresponding tempering device 4.1, the aforementioned temperatures may refer to the temperature at which the blowing agent-filled pre-expanded plastic material enters the corresponding expansion device or temperature control device 4.1 (inlet temperature), thus entering the initial region of the corresponding conveyor device 4.3, and / or the temperature at which the plastic particles exit the corresponding expansion device or temperature control device 4.1, thus reaching the end region of the corresponding conveyor device. Typically, the inlet temperature will be lower than the outlet temperature.
[0106] The expansion of the foam-filled pre-foamed plastic material particles under the influence of temperature can be achieved by irradiating the foam-filled pre-foamed plastic material particles with high-energy thermal radiation, particularly infrared radiation. Temperature control, i.e., heating, of the foam-filled pre-foamed plastic material particles can be achieved by selecting and / or adjusting the characteristics of the high-energy radiation, particularly its wavelength, depending on the material. This means that the characteristics of the energy-rich radiation, particularly its wavelength, can be selected and / or adjusted in a very targeted manner without risking undesirable melting or complete melting, i.e., insufficient stability of the softened foam-filled pre-foamed plastic material particles, if they soften upon heating. Research has shown that infrared radiation, in combination with a conveyor device, is particularly suitable for this purpose, as it enables targeted and easily controllable volumetric heating of the foam-filled pre-foamed plastic material particles, a controllable softening process, and therefore a controllable expansion process, which is essential for tailoring the properties of the foamed plastic particles produced.
[0107] In particular, the expansion of the foam-filled plastic material particles can be achieved under the influence of temperature by irradiating the foam-filled pre-expanded plastic material particles with high-energy thermal radiation, in particular infrared radiation, while the foam-filled plastic material particles are transported, in particular continuously, along at least one transport path defined by a conveyor device 4.3, along a radiation-generating device 4.4 that generates at least one corresponding high-energy radiation, in particular infrared radiation. The corresponding radiation-generating device 4.4 can be configured as or include an infrared oven, in particular a continuous infrared oven. The corresponding infrared oven can have one or more infrared emitters arranged or formed along the corresponding transport path. The corresponding infrared emitters can have a radiation power that can be varied, for example, in the range of 1 to 500 kW. The aforementioned power refers in particular to an area power per square meter, in particular 5 to 100 kW / m. 2A variable radiator or variable radiator (area) output can be used to create different temperature zones, which also provides parameters that influence the expansion process.
[0108] According to the present method, as described above, after expanding the plastic material particles filled with a blowing agent to produce expanded plastic particles, the produced expanded plastic particles can be cooled under the influence of temperature (especially at a temperature lower than the temperature of the previous expansion process). The cooling can be carried out quickly, which can "freeze" the cell structure of the expanded plastic particles after the expansion process. In this way, it is possible to particularly prevent global or local expansion of the plastic particles, which may be undesirable after the expansion process, for example, to maintain the desired cell structure of the plastic particles after the expansion process. Room temperature can be used as the reference temperature, and cooling can be carried out from a process temperature above the reference temperature to a cooling temperature below the method temperature or the reference temperature, especially room temperature. Therefore, a separate tempering device for cooling the plastic particles is not absolutely necessary; it is sufficient to cool the plastic particles to room temperature or to age them at room temperature after the expansion process.
[0109] According to this method, as also indicated above, at least one particularly functional additive or additional material can be provided or used, such as a fibrous material or material and / or a dye material or material and / or a nucleating material or material and / or a material or material for specifically influencing or controlling the softening behavior of plastic material particles, including pre-expanded plastic particle materials filled with a blowing agent. Thus, compounded pre-expanded plastic material particles can also be filled with a blowing agent and expanded, resulting in expanded plastic particles with special properties. In particular, through the targeted selection and concentration of appropriate additives or materials, plastic particles tailored for specific uses or fields of application can be produced. The additives or materials can be introduced into the pre-expanded plastic material particles during production.
[0110] The use of fibrous substances or materials, primarily organic or inorganic, such as aramid, glass, carbon, or natural fibers, in particular fibrous substances or materials, can realize special material properties of the foamed plastic particles that can be produced or produced according to the present method, or of the molded particle foam parts produced from the foamed plastic particles that can be produced or produced according to the present method, during further processing. The corresponding foamed plastic particles or the molded particle foam parts produced therefrom can be characterized, on the one hand, by their special density due to their cell structure, and, on the other hand, by special mechanical properties due to the mechanical bonding of adjacent cells within and / or between adjacent foamed plastic particles, particularly as a result of processing. During subsequent processing into a molded particle foam part, these special mechanical properties can be utilized or even modified locally or integrally. The same applies to non-fibrous additives or additive materials, primarily regardless of their chemical composition, such as organic and / or inorganic additives or additive materials in spherical or platelet-like or platelet-like shapes.
[0111] In addition to specifically influencing the mechanical properties of plastic particles, it is also possible, for example, to specifically influence the electrical and / or thermal properties of plastic particles by means of corresponding additives or materials. Thus, plastic particles with special electrical and / or thermal conductive properties can be produced, for example, by using electrically and / or thermally conductive additives or materials, such as metal and / or carbon black particles.
[0112] The concentration of the corresponding additive or additive material can in principle be freely selected, but typically varies depending on the material. Thus, by way of example, it is merely indicated that pre-expanded plastic material particles containing one or more additives or additive materials can be provided or used in concentrations between 0.01% by weight (respectively), which applies particularly to chemically active additives, and 60% by weight, which applies particularly to fibrous additives. As indicated, the concentrations typically depend on the specific chemical and / or physical properties of the additive.
[0113] According to the present method, essentially any thermoplastic material can be provided or used as the starting material. By way of example, pre-expanded plastic material particles from the group consisting of acrylonitrile-butadiene-styrene, acrylonitrile-butadiene-styrene blends, polyamide, polyamide blends, polycarbonate, polycarbonate blends, polyethylene, polyethylene blends, polypropylene, polypropylene blends, polyphenylene ether, polyphenylene ether blends, thermoplastic elastomers, polyethylene terephthalate, polyethylene terephthalate blends, polybutylene terephthalate, polybutylene terephthalate blends, polystyrene, polystyrene blends, polyvinyl chloride, and thermoplastic elastomer blends can be used. Blends, copolymers, or mixtures of different thermoplastic materials can also be used.
[0114] The method can produce foamed plastic particles with a uniformly or non-uniformly distributed cell structure, depending on the selected process conditions. The properties within each foamed plastic particle, i.e., in particular the cell structure distribution, can therefore be influenced by material-specific parameters as well as the pressure, temperature, and time during filling or expansion, as well as the transport times or conditions between the individual method steps S1 to S3.
[0115] When expanded plastic particles with a non-uniformly distributed cell structure are produced according to this method, each expanded plastic particle may have a different number, shape, and / or size of cells in the peripheral region than in the core region. Thus, graded expanded plastic particles with a specific range of properties can be produced by varying the distribution of cell number, cell shape, and / or cell size. Thus, graded expanded plastic particles, such as core-shell particles, can have different cell properties in the (external) peripheral region than in the (internal) core region.
[0116] It is also true that, in general, foamed plastic particles having a bulk density in the range of 5 to 1500 g / l can be produced by this method, depending in particular on the degree of expansion and, if necessary, the filler content. The actual bulk density, which, of course, again usually refers to an average, can be adjusted over a very wide range depending on the selected process conditions and can therefore be tailored.
[0117] An example embodiment of an apparatus 1 for carrying out the method shown in FIG. 2 comprises the aforementioned supply device 2, a filling device 3, which can generally be designed as a first device and is configured to fill the pre-expanded thermoplastic with a blowing agent under the influence of pressure, and an expansion device 4, which can generally be designed as a second device and is configured to expand the blowing agent under the influence of temperature to produce expanded plastic particles.
[0118] The staging device 2 may be equipped with a suitable handling device for handling the pre-expanded plastic material particles for staging. In a similar manner, although not shown, the device 1 may be equipped with a handling device 5 downstream of the expansion device 4 for removing the expanded plastic particles. The corresponding handling device may be configured as or comprise a conveyor device, as described above. In particular, conveyor devices suitable for transporting bulk materials, such as pneumatic conveyor devices configured to form a conveying flow, are considered.
[0119] As mentioned above, the second device may comprise a conveyor device, in particular a device combining a conveyor device and a temperature control device. The corresponding combined conveyor and temperature control device may be configured, for example, as a continuous oven, in particular as an infrared continuous oven including one or more infrared emitters, or may comprise at least one such oven.
[0120] The second apparatus may also be assigned a stress relaxation device (not shown), such as a stress relaxation chamber, in which the produced foamed plastic particles are stored (stress-relaxed) under defined chemical and / or physical conditions, i.e., in particular under defined temperature ratios, for a defined time. The corresponding stress relaxation device may, for example, be configured as or comprise a pressure reducing device.
[0121] In all embodiment examples, it is conceivable that the device 1 comprises a conveyor device, by which the pre-expanded plastic material particles, or even the expanded plastic particles, are transported continuously or discontinuously through the individual devices 2-4.
[0122] 3 shows a cross-sectional view of the principle of the expanded plastic particles produced according to the method of the embodiment. Specifically, this is a part of a microscope image of expanded beads made from pre-expanded polypropylene (EPP), where the initial bulk density of the expanded plastic particles produced by this method is about 75 g / l, and the bulk density is reduced to about 17 g / l.
[0123] FIG. 4 shows a schematic diagram of a foamed plastic particle produced according to a method according to an example embodiment. This diagram illustrates a foamed plastic particle with locally different cell characteristics, i.e., a graded foamed plastic particle. Specifically, the foamed plastic particle has a non-uniformly distributed cell structure, unlike a plastic particle with a different cell count in the peripheral region R, i.e., a higher cell count in the core region K. The inner dashed line indicates that the transition between the peripheral region R and the core region K can be continuous. The peripheral region R can also have locally different strengths, if desired.
Claims
1. - providing a plastic material in the form of pre-expanded plastic material particles; - filling the pre-expanded plastic material particles with a blowing agent under the influence of pressure; - expanding pre-expanded plastic material particles filled with a blowing agent under the influence of temperature to produce expanded plastic particles, the expansion of the blowing agent-filled plastic material particles under the influence of temperature being carried out by irradiating the blowing agent-filled plastic material particles with infrared light; A method for producing expanded plastic particles, characterized by:
2. 2. The method according to claim 1, wherein the filling of the pre-expanded plastic material particles with the blowing agent is further carried out under the influence of temperature.
3. 2. The method according to claim 1, wherein the filling of the pre-expanded plastic material particles with the blowing agent is carried out at a pressure in the range of 1 to 200 bar.
4. 3. The method according to claim 2, wherein the filling of the pre-expanded plastic material particles with the blowing agent is carried out at a temperature in the range of 0 to 250°C.
5. 2. The method according to claim 1, wherein the filling of the pre-expanded plastic material particles with the blowing agent is carried out for a period of time ranging from 0.1 to 1000 hours.
6. 2. The method according to claim 1, wherein the expansion of the plastic material particles filled with the blowing agent is carried out under the influence of temperature at a temperature in the range of 20 to 300°C.
7. 2. The method according to claim 1, wherein the expansion of the plastic material particles filled with the foaming agent occurs under the influence of temperature by irradiating the plastic material particles filled with the foaming agent with infrared radiation, and the plastic material particles filled with the foaming agent are transported on at least one transport path along at least one radiation emitting device that generates corresponding infrared radiation.
8. 2. The method according to claim 1, wherein the expanded plastic particles are cooled from the process temperature to a cooling temperature lower than the process temperature after the expanded plastic particles are expanded under the influence of temperature.
9. 2. The method of claim 1, wherein pre-expanded plastic material particles are provided or used which contain at least one additive or additive material.
10. 10. The method according to claim 9, wherein plastic material particles are provided or used which have at least one additive or additive material in a concentration of 0.01 to 60% by weight relative to the pre-expanded plastic material particles.
11. 2. The method of claim 1, wherein pre-expanded plastic material particles are provided or used that are selected from the group consisting of acrylonitrile butadiene styrene, acrylonitrile butadiene styrene blends, polyamide, polyamide blends, polycarbonate, polycarbonate blends, polyethylene, polyethylene blends, polypropylene, polypropylene blends, polyphenylene ether, polyphenylene ether blends, thermoplastic elastomers, polyethylene terephthalate, polyethylene terephthalate blends, polybutylene terephthalate, polybutylene terephthalate blends, polystyrene, polystyrene blends, polyvinyl chloride, thermoplastic elastomer blends.
12. 2. The method of claim 1, wherein expanded plastic particles are produced having a uniformly or non-uniformly distributed cell structure.
13. 13. The method according to claim 12, wherein foamed plastic particles are produced having a non-uniformly distributed cell structure within each foamed plastic particle, and each foamed plastic particle in the peripheral region has a different number and / or size and / or shape than the core region.
14. 2. The method according to claim 1, wherein a flammable or non-flammable organic gas, or a rare or inert gas, or nitrogen, carbon dioxide, a mixture thereof, or air is used as the blowing agent.
15. 2. The method of claim 1, wherein expanded plastic particles are produced having a cell size in the range of 1 to 250 μm.
16. 2. The method of claim 1, wherein expanded plastic particles are produced having a bulk density in the range of 5 to 225 g / l.
17. a first device configured to fill pre-expanded plastic material particles with a blowing agent under the influence of pressure, the device comprising a pressure vessel device; a second device adapted to expand the blowing agent under the influence of temperature to produce expanded plastic particles, the second device including a radiation generating device for generating infrared radiation; An apparatus (1) for producing expanded plastic particles by the method according to any one of claims 1 to 16, comprising:
Citation Information
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