DEVICE FOR PROCESSING A PARTICLE FOAM MATERIAL TO PRODUCE A PARTICLE FOAM MOULDED PART
20230382025 · 2023-11-30
Inventors
Cpc classification
B29C44/3426
PERFORMING OPERATIONS; TRANSPORTING
B29C44/60
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Device (1) for processing a particle foam material for producing a particle foam molded part, comprising: at least one functional unit (2), through at least portions of which at least one working medium that is or can be used in the operation of the device (1) flows or can flow during operation of the device (1), at least one supply unit (7) for supplying the or at least one working medium that is or can be used in the operation of the device (1) to the at least one functional unit (2), at least one discharge unit (10) for discharging the or at least one working medium that is or can be used in the operation of the device (1) from the at least one functional unit (2), at least one preparation unit (13) which is or can be connected to the at least one supply unit (7) and/or to the at least one discharge unit (10) and is designed for preparing the or at least one working medium that is or can be used in the operation of the device (1).
Claims
1. A device for processing a particle foam material for producing a particle foam molded part, comprising: at least one functional unit, through at least portions of which at least one working medium that is or can be used in the operation of the device flows or can flow during operation of the device, at least one supply unit for supplying the or at least one working medium that is or can be used in the operation of the device to the at least one functional unit, at least one discharge unit for discharging the or at least one working medium that is or can be used in the operation of the device from the at least one functional unit, wherein: at least one preparation unit which is or can be connected to the at least one supply unit and/or to the at least one discharge unit and is designed for preparing the or at least one working medium that is or can be used in the operation of the device.
2. The device according to claim 1, wherein the preparation unit is connected to the device by control technology.
3. The device according to claim 1, wherein at least the at least one preparation unit is arranged or formed on or in a housing structure.
4. The device according to claim 1 wherein the at least one preparation unit is arranged so as to be connected between the at least one supply unit and the at least one discharge unit.
5. The device according to claim 4, wherein the at least one preparation unit is arranged so as to be connected between the at least one supply unit and the at least one discharge unit, to form a flow circuit unit that forms a flow circuit for the at least one working medium that is or can be used in the operation of the device.
6. The device according to claim 1, wherein the at least one preparation unit is designed for modifying at least one chemical and/or physical parameter of the at least one working medium that is or can be used in the operation of the device.
7. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the pressure of the at least one working medium that is or can be used in the operation of the device.
8. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the temperature of the at least one working medium that is or can be used in the operation of the device.
9. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the physical state of the at least one working medium that is or can be used in the operation of the device.
10. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the energy content of the at least one working medium that is can be used in the operation of the device.
11. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the flow properties, in particular the flow speed and/or the flow profile, of the at least one working medium that is or can be used in the operation of the device.
12. The device according to claim 1, wherein the at least one preparation unit is designed for modifying the chemical composition of the at least one working medium that is or can be used in the operation of the device.
13. The device according to claim 1, wherein the at least one preparation unit is designed for removing in particular particulate impurities from the working medium or at least one working medium that is or can be used in the operation of the device.
14. The device according to claim 1, wherein at least one storage unit, which is or can be arranged upstream of the at least one preparation unit and is designed for storing working medium to be supplied to the at least one preparation unit, and/or at least one storage unit, which is or can be arranged downstream of the at least one preparation unit and is designed for storing working medium to be discharged from the at least one preparation unit.
15. The device according to claim 1, wherein the at least one supply unit is designed for supplying a working-medium mixture, containing at least two working media that differ in at least one chemical and/or physical parameter, to a die unit of the device that delimits a molding cavity.
16. The device according to claim 1, wherein a mixing unit, which is or can be assigned to a die unit that delimits a molding cavity and is designed for mixing at least two working media that differ in at least one chemical and/or physical parameter to form a working-medium mixture.
17. The device according to claim 1, wherein the supply unit is designed for at least one of: supplying the at least one working medium that is or can be used in the operation of the device to a die unit for carrying out an expansion process of a particle foam material that is introduced into the molding cavity and is to be processed by means of the device, supplying the at least one working medium that is or can be used in the operation of the device for carrying out at least one conditioning process of at least one particle foam molded part that is produced in the molding cavity by an expansion process of a particle foam material that is introduced into the molding cavity and is to be processed by means of the device, supplying the at least one working medium that is or can be used in the operation of the device to the die unit for carrying out at least one conditioning process of the die unit, and/or supplying the at least one working medium that is or can be used in the operation of the device to a molding cavity delimited by the die unit, in particular in a state in which it is not filled with a particle foam material to be processed, for carrying out at least one conditioning process of the molding cavity delimited by the die unit.
18. The device according to claim 1, wherein a die unit delimiting a molding cavity comprises at least one working-medium receiving space for receiving steam.
19. The device according to claim 1, comprising a die unit comprising a first die element delimiting a first portion of the molding cavity and at least one additional die element delimiting an additional portion of the molding cavity, wherein the first die element comprises at least one working-medium receiving space for receiving steam, wherein the first die element comprises one or more flow ducts, through which a working medium can be supplied to the at least one working-medium receiving space and/or discharged from the at least working-medium receiving space, and/or the at least one additional die element comprises at least one, working-medium receiving space for receiving steam, wherein the at least one additional die element comprises one or more flow ducts, through which a working medium can be supplied to the at least one working-medium receiving space and/or discharged from the at least working-medium receiving space.
20. The device according to claim 1, wherein the at least one functional unit is designed as or comprises a die unit delimiting a molding cavity.
21. The device according to claim 1, wherein the at least one functional unit is designed as or comprises a steam-generating unit for generating steam.
22. The device according to claim 1, wherein the at least one functional unit is designed as or comprises an steam storage unit for storing steam supplied to a die unit delimiting a molding cavity.
23. The device according to claim 1, wherein the at least one functional unit is designed as or comprises a pressure-generating unit for generating pressure-modified working medium.
24. The device according to claim 1, wherein the at least one functional unit is designed as or comprises an pressure storage unit for storing pressure-modified working medium, supplied to a die unit delimiting a molding cavity.
25. The device according to claim 1, wherein the at least one functional unit is designed as or comprises a temperature-control unit, which is designed for temperature-controlling at least one additional functional unit of the device.
26. A preparation unit for preparing a working medium for a device for processing a particle foam material for producing a particle foam molded part according to claim 1.
27. A method for operating a device for processing a particle foam material for producing a particle foam molded part according to claim 1, wherein a working medium that is or can be used in the operation of the device is prepared by means of a preparation unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0077] The aspects of the present specification are explained again on the basis of embodiments in the drawings, in which:
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DETAILED DESCRIPTION
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[0088] The device 1 is therefore designed for carrying out at least one working process for processing a particle foam material for producing a particle foam molded part. As is clear from the following, an expansion or connection process of a particle foam material for producing a particle foam molded part can be considered to be an example of a corresponding working process.
[0089] A particle foam material that can be or is to be processed by means of the device 1 is typically an expandable or expanded plastics particle material. The particle foam material may e.g. be formed by expandable or expanded plastics particles or may comprise expandable or expanded plastics particles. In this context, purely by way of example, reference is made to expanded and/or expandable polypropylene (PP or EPP), expanded and/or expandable polystyrene (PS or EPS) and expanded and/or expandable thermoplastic elastomer (TPE). Mixtures of expandable or expanded particle materials or particles that differ in at least one chemical and/or physical parameter are conceivable; the term “particle foam material” can therefore also cover mixtures of expandable or expanded particle materials or particles that differ in at least one chemical and/or physical parameter.
[0090] In the operation of the device 1, a working medium is used. A working medium is generally an, in particular liquid, vaporous or gaseous, energy-carrier medium, such as a liquid, i.e. in particular water, steam, i.e. in particular superheated steam, or a gas, which, in the operation of the device 1, absorbs or outputs energy, i.e. in particular thermal energy, kinematic energy, etc., or is designed to do this.
[0091] The device 1 comprises one or more functional units 2, 2.1-2.n, through at least portions of which the working medium flows or can flow during operation of the device 1. Even though the embodiment according to
[0092] A corresponding functional unit 2 typically comprises a flow-duct structure 4 comprising at least one flow duct 3 through which the working medium that is or can be used in the operation of the device 1 flows or can flow. A relevant flow duct 3 typically comprises at least one flow-duct inlet 3.1, at least one flow-duct outlet 3.2 and at least one flow-duct path 3.3 extending between the at least one flow-duct inlet 3.1 and the at least one flow-duct outlet 3.2.
[0093] The or at least one functional unit 2 may e.g. be designed as or comprise a die unit 6 delimiting a molding cavity 5 (cf. e.g. the embodiment according to
[0094] Furthermore, the or at least one functional unit 2 may e.g. be designed as or comprise a steam-generating unit for generating steam. A corresponding functional unit 2 may therefore be in the form of a steam-generating unit for generating steam, i.e. in particular superheated steam or saturated steam. A corresponding functional unit may in particular be designed for generating steam by converting water into steam, i.e. in particular superheated steam or saturated steam. A corresponding steam-generating unit may comprise one or more steam-generating elements, i.e. heating elements, for example.
[0095] Furthermore, the or at least one functional unit 2 may e.g. be designed as or comprise an, in particular chamber-like or chamber-shaped, steam storage unit for storing steam, in particular superheated steam or saturated steam, supplied to a die unit 6 delimiting a molding cavity. A corresponding functional unit 2 may therefore be in the form of a steam storage unit for storing steam, i.e. in particular superheated steam or saturated steam. A corresponding steam storage unit may comprise one or more steam storage elements, i.e. steam chamber elements, for example.
[0096] Furthermore, the or at least one functional unit 2 may e.g. be designed as or comprise a pressure-generating unit for generating pressure-modified working medium; “pressure-modified” is in particular understood to mean a working medium having a pressure level that is increased or reduced compared with a starting or reference pressure level. A corresponding functional unit 2 may therefore be in the form of a pressure-generating unit for generating pressure-modified working medium, i.e. in particular compressed air. A corresponding pressure-generating unit may for example be designed for generating compressed air by compressing air or for generating pressure-reduced air by depressurizing compressed air. A corresponding pressure-generating unit may comprise one or more pressure-generating elements, i.e. compressor or depressurizing elements, for example.
[0097] Furthermore, the or at least one functional unit 2 may e.g. be designed as or comprise an, in particular chamber-like or chamber-shaped, pressure storage unit for storing pressure-modified, in particular pressure-increased, working medium, for example compressed air, to be supplied to a die unit 6 delimiting a molding cavity 5. A corresponding functional unit 2 may therefore be in the form of a pressure storage unit for storing pressure-modified working medium, i.e. compressed air, for example. A corresponding pressure storage unit may comprise one or more pressure storage elements, i.e. pressure chamber elements, for example.
[0098] Furthermore, the or at least one functional unit 2 may be designed as or comprise a temperature-control unit, which is designed for temperature-controlling at least one additional functional unit, in particular for temperature-controlling a die unit 6 delimiting a molding cavity 5, of the device 1. A corresponding functional unit 2 may therefore be in the form of a temperature-control unit for temperature-controlling at least one additional functional unit, such as a die unit 6, a steam-generating unit, a steam storage unit, etc. A corresponding temperature-control unit may comprise one or more temperature-control elements, i.e. temperature-control duct elements through which a temperature-controllable or temperature-controlled medium flows or can flow, for example.
[0099] The device 1 further comprises at least one supply unit 7 for supplying the working medium to at least one corresponding functional unit 2. The supply unit 7 is therefore designed for supplying the working medium to at least one corresponding functional unit 2.
[0100] The supply unit 7 typically comprises a flow-duct structure 9 comprising at least one flow duct 8 through which the working medium flows or can flow. The flow-duct structure 9 may be formed by one or more line elements. A relevant flow duct 8 typically comprises at least one flow-duct inlet 8.1, at least one flow-duct outlet 8.2 and at least one flow-duct path 8.3 extending between the at least one flow-duct inlet 8.1 and the at least one flow-duct outlet 8.2. The supply unit 7 may further comprise a flow-generating unit (not shown), which is designed for generating a flow of the working medium to be supplied to a corresponding functional unit 2 or for controlling the flow of the working medium to be supplied to a corresponding functional unit 2. A corresponding flow-generating unit may e.g. be designed as or comprise a pump unit.
[0101] The device 1 further comprises at least one discharge unit 10 for discharging the working medium from at least one corresponding functional unit 2. The discharge unit 10 is therefore designed for discharging the working medium from at least one corresponding functional unit 2.
[0102] The discharge unit 10 typically comprises a flow-duct structure 12 comprising at least one flow duct 11 through which the working medium flows or can flow. The flow-duct structure 12 may be formed by one or more line elements. A relevant flow duct 11 typically comprises at least one flow-duct inlet 11.1, at least one flow-duct outlet 11.1 and at least one flow-duct path 11.3 extending between the at least one flow-duct inlet 11.1 and the at least one flow-duct outlet 11.2. The discharge unit 10 may further comprise a flow-generating unit (not shown), which is designed for generating a flow of the working medium to be discharged from a corresponding functional unit 2 or for controlling the flow of the working medium to be discharged from a corresponding functional unit 2. A corresponding flow-generating unit may e.g. be designed as or comprise a pump unit.
[0103] It is clear from
[0104] The device 1 further comprises a preparation unit 13 that is or can be connected to the supply unit 7 and/or the discharge unit 10. The preparation unit 13 is designed for preparing the working medium. In particular, the preparation unit 13 is designed for preparing the or a working medium to be supplied to the functional unit 2 by means of the supply unit 7 and/or is designed for preparing the or a working medium to be discharged from the functional unit 2 by means of the discharge unit 10.
[0105] The preparation unit 13 may be designed for carrying out a plurality of preparation processes, i.e. in particular a plurality of different preparation processes, either at the same time or in a phased manner. A plurality of working media can therefore be prepared by means of the preparation unit 13 either at the same time or in a phased manner. In this process, different preparation processes can interact with one another in a targeted manner, in particular by exchanging the energy consumed or released as part of the respective preparation processes. For example, exothermic preparation processes for preparing a first working medium may influence, i.e. in particular induce or assist, endothermic preparation processes for preparing an additional working medium. For example, the thermal energy that is removed or is to be removed from a cooling working medium, i.e. a condensate, for example, in a first preparation process can be supplied to a working medium, i.e. a gas, to be heated, for example, in a second preparation process, or vice versa. The same applies to other types of preparation process. Where necessary, the preparation unit 13 may be equipped with energy exchangers, i.e. in particular heat exchangers, for this purpose.
[0106] The preparation unit 13 is in particular designed for preparing the or a working medium in respect of at least one particular target parameter. A target parameter may be a particular chemical and/or physical property of the working medium that is prepared or is to be prepared which is required or expedient for the use of the prepared working medium in a working process of the device 1. Therefore, it is possible to prepare a working medium originating from a first working process of the device 1 in respect of a reuse in the same working process of the device 1 or in respect of a use in another working process of the device 1.
[0107] In any case, the preparation unit 13 therefore makes it possible to prepare the or a working medium that is or can be used in the operation of the device and therefore provides the option of reusing the or a working medium, in particular multiple times, and the option of implementing direct media recycling within the device.
[0108] It is clear from
[0109] The device 1 therefore comprises a control unit 16, which is designed for generating control information controlling the operation of the preparation unit 13. The control unit 16 may in particular be designed for generating corresponding control information on the basis of current and/or future operational and/or process parameters of the device 1 or a functional unit 2 of the device 1. As mentioned, the control unit 16 is in a data connection to the preparation unit 13, i.e. in particular to a controller that controls the operation of the preparation unit 13, via an, in particular multidirectional, data and communication connection, via which control information controlling at least the operation of the preparation unit 13 can be transferred to the preparation unit 13.
[0110] The control unit 16 may be a central control unit of the device 1, which is designed for controlling the operation of at least one functional unit 2 of the device 1 and the operation of the preparation unit 13, i.e. for generating corresponding control information for controlling the operation of at least one functional unit 2 of the device 1 and the preparation unit 13.
[0111] It is also clear from
[0112] The device 1 may therefore comprise an, in particular frame-like or rack-like, housing structure 1.1. The housing structure 1.1 of the device 1 is purely schematically shown in
[0113] It is clear from
[0114] It is clear from
[0115] The flow ducts forming the flow-duct structure of the flow circuit unit therefore extend at least in portions, optionally completely, through the functional unit 2, the preparation unit 13, the supply unit 7 and the discharge unit 10.
[0116] In the embodiment shown in
[0117] The preparation unit 13 may be designed for modifying at least one chemical and/or physical parameter of the or a working medium. The working medium may therefore be prepared by modifying at least one chemical and/or physical parameter of the working medium. What modification to what chemical and/or physical parameter of the working medium specifically needs to be carried out for its preparation typically results from the current chemical and/or physical parameters of the working medium and the chemical and/or physical requirements of a particular working process in which the working medium that is prepared or is to be prepared is intended to be used.
[0118] The preparation unit 13 may e.g. be designed for modifying, i.e. in particular for increasing or reducing, the pressure of the or a working medium. The working medium may therefore be prepared by modifying the pressure of the working medium. To do this, the preparation unit 13 may be designed as or comprise a pressure-modifying unit. A corresponding pressure-modifying unit may e.g. be designed as or comprise a compressor unit.
[0119] Alternatively or additionally, the preparation unit 13 may e.g. be designed for modifying, i.e. in particular for increasing or reducing, the temperature of the or a working medium. Alternatively or additionally, the working medium may therefore be prepared by modifying the temperature of the working medium. To do this, the preparation unit 13 may be designed as or comprise a temperature-modifying unit. A corresponding temperature-modifying unit may e.g. be designed as or comprise a heating and/or cooling unit.
[0120] Alternatively or additionally, the preparation unit 13 may e.g. be designed for modifying, i.e. in particular for increasing or reducing, the physical state of the or a working medium. Alternatively or additionally, the working medium may therefore be prepared by modifying the physical state of the working medium. To do this, the preparation unit 13 may be designed as or comprise a physical-state-modifying unit. A corresponding physical-state-modifying unit may e.g. be formed by a corresponding pressure-modifying unit and a corresponding temperature-modifying unit.
[0121] Alternatively or additionally, the preparation unit 13 may e.g. be designed for modifying, i.e. in particular for increasing or reducing, the energy content of the or a working medium. Alternatively or additionally, the working medium may therefore be prepared by modifying the energy content, i.e. the enthalpy, for example, of the working medium. To do this, the preparation unit 13 may be designed as or comprise an energy-content-modifying unit. A corresponding energy-content-modifying unit may likewise e.g. be formed by a corresponding pressure-modifying unit and a corresponding temperature-modifying unit.
[0122] Alternatively or additionally, the preparation unit 13 may e.g. be designed for modifying, i.e. in particular for increasing or reducing, the flow properties, in particular the flow speed and/or the flow profile, of the or a working medium. Alternatively or additionally, the working medium may therefore be prepared by modifying the flow properties of the working medium. To do this, the preparation unit 13 may be designed as or comprise a flow-property-modifying unit. A corresponding flow-property-modifying unit may e.g. be formed by a pump unit, a nozzle unit or a diffuser unit.
[0123] Alternatively or additionally, the preparation unit 13 may be designed for modifying the chemical composition of the or a working medium. Alternatively or additionally, the working medium 13 may therefore be prepared by modifying the chemical composition of the working medium. To do this, the preparation unit 13 may be designed as or comprise a substance-concentration-modifying unit, which is designed for modifying the concentration of at least one substance forming a constituent of the working medium; a substance can be understood to be a pure substance or a substance compound, for example. A corresponding substance-concentration-modifying unit is in particular designed for modifying, i.e. in particular reducing or increasing, the concentration of at least one substance forming a constituent of the working medium from a first concentration, which may also be 0% or 100% in an extreme case, to a second concentration, which may also be 100% or 0% in an extreme case. One or more substances can therefore also be supplied to or removed from the working medium via a corresponding substance-concentration-modifying unit; the chemical composition of the working medium can be modified in this way.
[0124] Alternatively or additionally, the preparation unit 13 may be designed for removing in particular particulate impurities from the or a working medium. Alternatively or additionally, the working medium may therefore be prepared by removing impurities from the working medium and therefore by purifying the working medium. To do this, the preparation unit 13 may be designed as or comprise a purifying unit. A corresponding purifying unit may e.g. be designed as or comprise a filter unit.
[0125] Further configurations of the device 1 are clear from the embodiments shown in
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[0128] Of course, combinations of the embodiments shown in
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[0131] In connection with the embodiment shown in
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[0133] It is applicable to all the embodiments that, if a plurality of storage units 14, 15 are provided, these can be designed to be replaceable as needed and/or selectively. Individual storage units 14, 15, multiple storage units or all the storage units can therefore be replaced as needed and/or selectively; this can provide an option for supplying or discharging a working medium from the device 1 or from the flow system of the device 1.
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[0135] It shows that the die unit 6 comprises two die elements 6.1, 6.2 each delimiting a part of the molding cavity 5 delimited by the die unit 6. In this case, at least one die element 6.1, 6.2 is movably mounted relative to another die element 6.1, 6.2 in order to produce an open position and closed position of the die unit 6 in at least one degree of freedom.
[0136] In connection with the embodiment shown in
[0137] Alternatively or additionally, the supply unit 7 may be designed for supplying the or a working medium for carrying out at least one conditioning process of at least one particle foam molded part that is produced in the molding cavity 5 by an expansion process of a particle foam material that is introduced into the molding cavity 5 and is to be processed by means of the device 1. A conditioning process may be an inerting, purifying, temperature-controlling or drying process, for example. The working medium that is or can be supplied by the supply unit 7 may therefore require at least one conditioning process, i.e. in particular an inerting, purifying, temperature-controlling or drying process, of a corresponding particle foam molded part. In this case, the working medium is typically an energy carrier, the properties of which allow for a corresponding conditioning process. The conditioning process may be carried out during or after the production of the particle foam molded part.
[0138] Alternatively or additionally, the supply unit 7 may be designed for supplying the or a working medium to the die unit 6 for carrying out at least one conditioning process of the die unit 6. A conditioning process may be an inerting, purifying, temperature-controlling or drying process, for example. The working medium that is or can be supplied by the supply unit 7 may therefore require at least one conditioning process, i.e. in particular an inerting, purifying, temperature-controlling or drying process, of the die unit 6. In this case, the working medium is typically an energy carrier, the properties of which allow for a corresponding conditioning process. The conditioning process may be carried out before, during or after an expansion process of a particle foam material that is introduced into the molding cavity 5 delimited by the die unit 6.
[0139] Alternatively or additionally, the supply unit 7 may be designed for supplying the or a working medium to the die unit 6, in particular in a state of the molding cavity 5 delimited by the die unit 6 in which it is not filled with a particle foam material to be processed, for carrying out at least one conditioning process of the die unit 6, i.e. in particular the molding cavity 5. A conditioning process may be an inerting, purifying, temperature-controlling or drying process, for example. The working medium that is or can be supplied by the supply unit 7 may therefore require at least one conditioning process, i.e. in particular an inerting, purifying, temperature-controlling or drying process, of the die unit 6, i.e. in particular the molding cavity 5. In this case, the working medium is typically an energy carrier, the properties of which allow for a corresponding conditioning process.
[0140] In all cases, an inert gas, such as argon, may be used for carrying out an inerting process. A purifying liquid, such as water, or a purifying gas, such as air, in particular purified air, may be used for carrying out a purifying process. A gas, such as air, in particular pressurized or compressed air, may be used for carrying out a drying process. A temperature-controlled liquid, such as temperature-controlled water, or a temperature-controlled gas, such as temperature-controlled air, in particular pressurized or compressed air, may be used for carrying out a temperature-controlling process.
[0141] In all cases, combinations of different conditioning processes, i.e. inerting processes and/or purifying processes and/or drying processes and/or temperature-controlling processes, for example, are conceivable. Corresponding conditioning processes may be carried out either at the same time or in a phased manner.
[0142] Corresponding conditioning processes, i.e. also the sequence thereof if there are a plurality of different conditioning processes, or corresponding conditioning requirements to be specifically applied in the context of corresponding conditioning processes may, in all cases, be controlled by a control unit 16 of the device 1 implemented with hardware and/or software. The control unit 16 is therefore designed for generating control information controlling the operation of the supply unit 7 and/or the discharge unit 10 for carrying out corresponding conditioning processes. The control unit 16 may in particular be designed for processing system-specific, user-specific or process-specific specifications for one or more conditioning processes, i.e. in particular to generate corresponding control information for controlling the operation of the supply unit 7 and/or the discharge unit 10 on the basis of corresponding specifications.
[0143]
[0144] The embodiment shows, purely by way of example, that the die unit 6 comprises two die elements 6.1, 6.2 or halves each delimiting a part of the molding cavity 5 delimited by the die unit 6.
[0145] It is clear from
[0146] A particular working medium can be supplied to the molding cavity 5 delimited by the die unit 6 by each of the supply lines 7.1-7.n. A control valve unit 18.1-18.n, which is purely schematically shown, is assigned to each supply line 7.1-7.n. Each control valve unit 18.1-18.n is movable, for example by opening a control valve element (not shown) that is movably mounted between an open position and a closed position, into a first state (open state) in which it is possible to supply a relevant working medium via the relevant supply line 7.1-7.n to the molding cavity 5, and is movable, for example by closing the or a control valve element that is movably mounted between an open position and a closed position, into a second state (closed state) in which it is not possible to supply a relevant working medium via the relevant supply line 7.1-7.n to the molding cavity 5.
[0147] In an analogous manner, the discharge unit 10 may not comprise a plurality of discharge lines 10.1-10.n, via each of which a particular working medium can be discharged from the molding cavity 5. A control valve unit 18.1-18.n is or can be assigned to each discharge line 10.1-10.n. Each control valve unit 18.1-18.n is movable, for example by opening a control valve element (not shown) that is movably mounted between an open position and a closed position, into a first state (open state) in which it is possible to discharge a relevant working medium via the relevant discharge line 10.1-10.n from the molding cavity 5, and is movable, for example by closing the or a control valve element that is movably mounted between an open position and a closed position, into a second state (closed state) in which it is not possible to discharge a relevant working medium via the relevant discharge line 10.1-10.n from the molding cavity 5.
[0148] Respective supply-apparatus-side control valve units 18.1-18.n and/or respective discharge-apparatus-side control valve units 18.1-18.n may be operated so as be dependent on or independent of one another, i.e. in particular may be moved into respective first and second states so as be dependent on or independent of one another.
[0149] Therefore, it is e.g. possible to supply a first working medium, which can be supplied to the molding cavity 5 or the die unit 6 via a first supply line 7.1, to the molding cavity 5 or the die unit 6 by moving a control valve unit 18.1 assigned to the first supply line 7.1 into a first state and to prevent an additional working medium, which can be supplied via an additional supply line 7.2, 7.n, from being supplied to the molding cavity 5 or the die unit 6 by moving the control valve unit 18.2, 18.n assigned to the additional supply line 7.2, 7.n into the second position. In particular, it is possible to move the control valve units 18.1-18.n assigned to the respective supply lines 7.1-7.n into a relevant first state separately, i.e. in particular in a phased manner or separately, such that, in particular when phased, it is possible to supply different working media to the molding cavity 5 or the die unit 6 in a separate or isolated manner via respective supply lines 7.1-7.n. Specifically, by moving a control valve unit 18.1 assigned to a first supply line 7.1 into the first state, while all the other control valve units 18.2, 18.n are or have been moved into the second state, a first working medium can be supplied to the molding cavity 5 or the die unit 6 and, at a later point in time, by moving a control valve unit 18.2, 18.n assigned to an additional supply line 7.2, 7.n into the first state, while the first control valve unit 18.1 is or has been moved into the second state, an additional working medium can be supplied to the molding cavity 5 or the die unit 6.
[0150] In an analogous manner, it is e.g. possible to discharge a first working medium, which can be discharged from the molding cavity 5 or the die unit 6 via a first discharge line 10.1, from the molding cavity 5 or the die unit 6 by moving a control valve unit 18.1 assigned to the first discharge line 10.1 into a first state and to prevent a second working medium, which can be discharged via an additional discharge line 10.2, 10.n, from being discharged from the molding cavity 5 or the die unit 6 by moving the control valve unit 18.2, 18.n assigned to the additional discharge line 10.2, 10.n into the second position. In particular, it is possible to move the control valve units 18.1-18.n assigned to the respective discharge lines 10.1-10.n into a relevant first state separately, i.e. in particular in a phased manner or separately, such that, in particular when phased, it is possible to supply different working media to the molding cavity 5 or the die unit 6 in a separate or isolated manner via respective discharge lines 10.1-10.n. Specifically, by moving a control valve unit 18.1 assigned to a first discharge line 10.1 into the first state, while all the other control valve units 18.2, 18.n are or have been moved into the second state, a first working medium can be discharged from the molding cavity 5 or the die unit 6 and, at a later point in time, by moving a control valve unit 18.2, 18.n assigned to an additional discharge line 10.1, 10.n into the first state, while the first control valve unit 18.1 is or has been moved into the second state, an additional working medium can be discharged from the molding cavity 5 or the die unit 6.
[0151] The operation of respective supply-apparatus-side and/or discharge-apparatus-side control valve units 18.1-18.n, i.e. in particular the movement thereof into the first or second state, may be controlled by a control unit 16 implemented with hardware and/or software. The control unit 16 is therefore designed for generating control information controlling the operation of respective supply-apparatus-side and/or discharge-apparatus-side control valve units 18.1-18.n. The control unit 16 may in particular be designed for processing system-specific, user-specific or process-specific specifications for operating one or more control valve units 18.1-18.n, i.e. in particular for generating corresponding control information for controlling the operation of respective supply-apparatus-side and/or discharge-apparatus-side control valve units 18.1-18.n on the basis of corresponding specifications.
[0152]
[0153] In this embodiment, the supply unit 7 is designed for supplying a working-medium mixture, containing at least two working media that differ in at least one chemical and/or physical parameter, to a die unit, i.e. in particular to the molding cavity 5 delimited by the die unit 6.
[0154] As applicable to all the embodiments, the or a working medium may therefore be a working-medium mixture containing at least two working media that differ in at least one chemical and/or physical parameter, i.e., for example, a mixture of at least one gas and at least one liquid or a mixture of at least two different gases or a mixture of at least two different liquids.
[0155]
[0156] Purely by way of example, the embodiment shown in
[0157] Each mixing unit 17 typically comprises an input 17.1, via which a plurality of working media to be mixed can be supplied to the mixing unit 17, as indicated in
[0158] Each mixing unit 17 is in particular designed for generating working-medium mixtures having a particular composition, i.e. in particular a composition that is or can be predetermined in a system-specific, user-specific or process-specific manner. Each mixing unit 17 is therefore designed for generating particular mixing ratios, i.e. in particular mixing ratios of the working media supplied thereto that are or can be predetermined in a system-specific, user-specific or process-specific manner.
[0159] In order to produce particular compositions or particular mixing ratios, each mixing unit 17 may comprise at least one mixing space (not shown) delimiting at least one mixing volume and at least one control valve unit 18, 18.1, 18.n that is or can be assigned thereto. The control valve unit 18, 18.1, 18.n is designed for controlling a supply of a particular quantity of a first working medium provided via a first supply line 7.1.1 to be mixed with at least one additional working medium to the at least one mixing space and for controlling a supply of a particular quantity of at least one additional working medium provided via an additional supply line 7.1.n to be mixed with the first working medium to the at least one mixing space.
[0160] If, as shown purely by way of example in the embodiment according to
[0161] The operation of the mixing unit 17, i.e. in particular the operation of the control valve units 18.1-18.n, may be controlled by a control unit 16 that is or can be assigned to the mixing units 17 and is implemented with hardware and/or software. The control unit 16 is therefore designed for generating control information controlling the operation of the mixing units 17 or the control valve units 18.1-18.n. The control unit 16 may in particular be designed for processing system-specific, user-specific or process-specific specifications for one or more mixing ratios, i.e. in particular for generating corresponding control information for controlling the operation of the mixing units 17 or the control valve units 18.1-18.n on the basis of corresponding specifications.
[0162]
[0163] The embodiment shows, purely by way of example, that the die unit 6 comprises two die elements 6.1, 6.2 or halves each delimiting a part of the molding cavity 5 delimited by the die unit 6.
[0164] It is clear from
[0165] A relevant die element 6.1, 6.2 comprises a plurality of flow ducts 20.1-20.n, via which a working medium can be supplied to a corresponding working-medium receiving space 19.1, 19.2 and/or can be discharged from a corresponding working-medium receiving space 19.1, 19.2. It is clear from this embodiment, purely by way of example, that a relevant die element 6.1, 6.2 comprises a first flow duct 20.1, 201.3, which is designed for supplying a working medium, which is in particular a working medium that can be converted into steam in this case, to the at least one working-medium receiving space 19.1, 19.2, and comprises at least one additional flow duct 20.2, 20.n, which is designed for discharging a working medium from the at least one working-medium receiving space 19.1, 19.2.
[0166] In an exemplary, minimum configuration, a corresponding die element 6.1, 6.2 may comprise one (single) flow duct 20.1-20.n, which is designed for supplying a working medium to the working-medium receiving space 19.1, 19.2 and for discharging a working medium from the working-medium receiving space 19.1, 19.2. Typically, however, a corresponding die element 6.1, 6.2, as shown in
[0167] The respective die-element-side flow ducts 20.1-20.n may be designed as, in particular bore-like or bore-shaped, openings extending through respective die-element bodies. The path of respective flow ducts 20.1-20.n may be simple or complex; it is conceivable to provide an additively produced construction of the flow ducts 20.1-20.n, i.e. produced by means of an additive manufacturing method, such as a selective laser-melting method or a binder-jetting method.
[0168] The devices 1 according to the embodiments shown in the drawings can be used to implement a method for operating a device 1 for processing a particle foam material for producing a particle foam molded part, which method is characterized in that a working medium that is or can be used in the operation of the device 1 is prepared by means of a preparation unit 13, in particular by means of a preparation unit 13 integrated in the device 1.
[0169] Individual aspects and/or features, multiple aspects and/or features or all the aspects and/or features described in connection with a particular embodiment are transferable to individual aspects and/or features, multiple aspects and/or features or all the aspects and/or features described in connection with at least one other embodiment. The embodiments according to the drawings can therefore be combined with one another.