MOLD FOR PROCESSING EXPANDABLE OR EXPANDED PLASTIC PARTICLES
20230241814 · 2023-08-03
Assignee
Inventors
- André RAUSCHER (Lichtenfels, DE)
- Jonas BECK (Lichtenfels, DE)
- René HUBERT (Lichtenfels, DE)
- Philipp PLATSCH (Lichtenfels, DE)
Cpc classification
B29C44/0461
PERFORMING OPERATIONS; TRANSPORTING
B29C44/0492
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B29C44/585
PERFORMING OPERATIONS; TRANSPORTING
B29C44/3426
PERFORMING OPERATIONS; TRANSPORTING
B29C44/086
PERFORMING OPERATIONS; TRANSPORTING
B29C44/445
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C44/04
PERFORMING OPERATIONS; TRANSPORTING
B29C44/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Mold for processing expandable or expanded plastic particles for producing a multi-component particle foam component, that includes a mold cavity delimited by mold walls, having at least one mold element, which in particular is slide-like or slide-shaped, wherein the at least one mold element is mounted so as to be movable between a first orientation and/or position and at least one further orientation and/or position in which it projects at least in portions into the mold cavity, and wherein the at least one mold element is designed with, or has, a flow channel structure having at least one flow channel which extends inside the mold element and through which a process fluid can flow.
Claims
1. A mold for processing expandable or expanded plastic particles for producing a multi-component particle foam component, comprising a mold cavity delimited by mold walls, comprising at least one mold element, which in particular is slide-like or slide-shaped, wherein the at least one mold element is mounted so as to be movable between a first orientation and/or position and at least one further orientation and/or position in which it projects at least in portions into the mold cavity, and wherein the at least one mold element is designed with, or comprises, a flow channel structure having at least one flow channel which extends inside the mold element and through which a process fluid can flow.
2. The mold according to claim 1, wherein the at least one mold element, in particular the at least one flow channel structure, is formed at least in portions, optionally completely, in an additive manufacturing method.
3. The mold according to claim 1, wherein the flow channel structure comprises an encompassing grid structure formed by a plurality of structural elements arranged or formed in a grid-like or grid-shaped manner.
4. The mold according to claim 1, wherein the at least one mold element is formed having or comprises at least one, in particular nozzle-like or nozzle-shaped, outflow opening, via which a process fluid flowing through the flow channel structure can flow out of the at least one mold element and into the mold cavity.
5. The mold according to claim 1, wherein the flow channel structure can be or is connected to its own process fluid supply device, which can in particular be operated independently of a process fluid supply device of the mold cavity.
6. The mold according to claim 1, further comprising a controller for controlling movements of the at least one mold element from the first orientation and/or position into the at least one further orientation and/or position, and vice versa, wherein the controller is designed to move the at least one mold element, prior to the mold cavity being filled with plastic particles from a first plastic particle material, into the second orientation and/or position, in particular such that a first partial volume of the mold cavity which can be filled with plastic particles from a first plastic particle material is delimited or defined by the mold walls and the at least one mold element moved into the further orientation and/or position.
7. The mold according to claim 6, further comprising a controller for controlling the filling processes of the mold cavity with plastic particles, wherein the controller is designed to perform a filling process for filling the first partial volume of the mold cavity with plastic particles of a first plastic particle material via a filling device, in particular via a first filling device, when the at least one mold element is moved into the further orientation and/or position.
8. The mold according to claim 6, further comprising a controller for controlling measures for connecting plastic particles with which the mold cavity is filled, wherein the controller is designed for carrying out at least one measure for connecting the plastic particles from the first plastic particle material, with which the first partial volume of the mold cavity is filled, forming a first molded part formed of the first plastic particle material, when the first partial volume of the mold cavity is filled with plastic particles from the first plastic particle material.
9. The mold according to claim 8, wherein the measure for connecting the plastic particles from the first plastic particle material, with which the mold cavity is filled, includes an introduction of a temperature-controlled process fluid, in particular steam, into the first partial volume of the mold cavity, in particular via openings on the mold (body) wall side and/or via outflow openings on the mold element side.
10. The mold according to claim 6, wherein the controller designed for controlling movements of the at least one mold element is designed to move the at least one mold element from the further orientation and/or position into the first orientation and/or position, when the measure for connecting the plastic particles from the first plastic particle material is completed, in particular such a second partial volume of the mold cavity which can be filled with plastic particles from a further plastic particle material is delimited or defined by the first molded part and/or the mold walls and/or the at least one mold element moved into the first orientation and/or position.
11. The mold according to claim 6, wherein the controller, designed for controlling the filling processes of the mold cavity, is designed to perform a filling process for filling the second partial volume of the mold cavity with plastic particles of a further plastic particle material which differs from the first plastic particle material in at least one chemical parameter and/or physical parameter, via a filling device, in particular via a second filling device, when the at least one mold element is moved into the first orientation and/or position.
12. The mold according to claim 6, wherein the controller designed for controlling measures for connecting plastic particles with which the mold cavity is filled is designed for carrying out at least one measure for connecting the plastic particles from the further plastic particle material, with which the second partial volume of the mold cavity is filled, forming a second molded part formed of the further plastic particle material, when the second partial volume of the mold cavity is filled with plastic particles from the further plastic particle material.
13. The mold according to claim 12, wherein the measure for connecting the plastic particles from the further plastic particle material, with which the mold cavity is filled, includes an introduction of a temperature-controlled process fluid into the second partial volume of the mold cavity, in particular via openings on the mold (body) wall portion side and/or via outflow openings on the mold element side.
14. The mold according to claim 6, further comprising a controller for controlling measures for evacuating and/or cooling the mold cavity, wherein the controller is designed to carry out a measure for evacuating and/or cooling the mold cavity via a device for evacuating and/or cooling the mold cavity, when the measure for connecting plastic particles from the further plastic particle material, with which the mold cavity is filled, is completed.
15. The mold according to claim 1, further comprising a plurality of mold elements which are correspondingly mounted so as to be movable between a first orientation and/or position and at least one further orientation and/or position.
16. The mold according to claim 15, wherein at least two mold elements extend in parallel with one another or not in parallel with one another, into the mold cavity, in the respective further orientations and/or positions thereof.
17. A mold element for a mold according to claim 1.
18. A device for processing expandable or expanded plastic particles producing a multi-component particle foam component, comprising at least one mold according to claim 1, at least one filling device for filling the mold cavity of the mold at least one drive means for generating a drive force and/or a drive torque, via which the at least one mold element can be moved into the respective orientations and/or positions, and at least one process fluid supply device for supplying the mold cavity with a process fluid.
19. A method for processing expandable or expanded plastic particles for producing a multi-component particle foam component, wherein at least one mold according to claim 1 is used for carrying out the method.
Description
[0068] The invention will be explained in greater detail, with reference to embodiments shown in the drawings, in which:
[0069]
[0070]
[0071]
[0072]
[0073] The mold 1 is designed for processing expandable or expanded plastic particles (“plastic particles”) of an expandable or expanded plastic particle material (“plastic particle material”) for producing a multi-component particle foam component. The mold 1 is accordingly designed for producing plastic particles from particle foam materials which differ in at least one chemical parameter and/or physical parameter, in order to produce a multi-component particle foam component. A corresponding multi-component particle foam component thus comprises a first particle foam component region formed by a first molded part, and at least one further particle foam component region formed by at least one further molded part, wherein the first region differs from the at least one further region in at least one chemical parameter and/or physical parameter.
[0074] The plastic particles processed by means of the mold can be not yet expanded plastic particles, pre-expanded plastic particle material, or completely expanded plastic particles consisting of one or more plastic particle materials. For not yet expanded plastic particles and for a pre-expanded plastic particle, it is typically the case that these are expandable, i.e. can be expanded (further) in an expansion process, for example thermally induced by a temperature-controlled process fluid. The connection of the plastic particles taking place in the context of processing corresponding plastic particles, forming the particle foam component, is typically associated with a corresponding (further) expansion process of the plastic particles. For completely expanded plastic particles, it is typically the case that these can no longer be (further) expanded. The connection of the plastic particles taking place in the context of processing corresponding plastic particles, forming the particle foam component, is typically not associated with a corresponding (further) expansion process of the plastic particles.
[0075] Specifically, corresponding plastic particles can be e.g. plastic particles made of a plastic particle material based on polyolefins, i.e. in particular polypropylene, based on thermoplastic elastomers, i.e. in particular thermoplastic polyurethane, or based on polystyrene.
[0076] The plastic particles processed by means of the mold 1 are typically not interconnected prior to being processed; the plastic particles which can be processed by means of the mold 1 are thus typically present as loose particles prior to being processed, i.e. for example as particulate filling material, and are accordingly introduced into the mold 1, as loose particles, via at least one filling device 2, 3, 4 of the mold 1.
[0077] The mold 1 is formed in multiple parts in figures and comprises, by way of example, at least two mold bodies 5, 6, optionally also to be referred to or considered mold halves. The left-hand mold body 5 in the figures has, in any case in a cut-away view, by way of example a U-shaped geometric/constructional shape, the right-hand mold body 6 in the figures has, in any case in a cut-away view, by way of example a plate-shaped geometric/constructional shape. The mold bodies 5, 6 are typically mounted so as to be movable relative to one another, between an open position and the closed position shown in the figures.
[0078] The mold 1 or the mold bodies 5, 6 comprises or comprise mold (body) walls (not denoted in further detail), which define the mold cavity 7 of the mold 1.
[0079] The mold bodies 5, 6 are in each case provided with a plurality of openings 8 which are in particular in the form or shape of drilled holes, or are nozzle-like or nozzle-shaped. For example a process fluid, such as steam or superheated steam, can be introduced into the mold cavity 7 via the openings 8 – specifically these can be designed for example in a slit-like or slit-shaped manner. Alternatively or in addition, a particular pressure level, such as an excess or negative pressure, can be generated or maintained in the mold cavity 7, via corresponding openings 8.
[0080] The mold cavity 7, i.e. in particular certain partial volumes TV1 - TV3 of the mold cavity 7, can be filled successively, via the above-mentioned filling devices 2 - 4, with plastic particles, which are to be processed by means of the mold 1 and which are from plastic particle materials which differ in at least one chemical parameter and/or physical parameter. A plurality of filling devices 2 - 4 is associated with the mold 1, via which the mold cavity 7 can be filled with plastic particles from plastic particle materials which differ in at least one chemical parameter and/or physical parameter. In the embodiment shown in
[0081] The filling devices 2 - 4 can be designed to generate an in particular pressurized conveying flow, by means of which the plastic particles with which the mold cavity 7 is to be filled can be conveyed into the mold cavity 7. For this purpose, the filling devices 2 - 4 can comprise a flow generation means 2.1, 3.1, 4.1 for generating a corresponding conveying flow, and an in particular tube-like or tube-shaped conveying element 2.2, 3.2, 4.2 which defines a conveying stretch that opens into the mold cavity 7. Filling devices 2 - 4 of different designs are conceivable. Merely by way of example reference is made, in this connection, to filling devices 2 - 4, which allow for (largely) unpressurized conveying of plastic particles, and thus a (largely) unpressurized filling of the mold cavity 7.
[0082] The mold 1 comprises a slide-like or slide-shaped mold element 9.
[0083] A first functionality of the mold element 9 consists in occupying, and releasing, as required, at least a partial volume of the mold cavity 7. For this purpose, the mold element 9 can be moved into a first orientation and/or position, shown in dashed lines in
[0084] With respect to the first orientation and/or position of the mold element 9 and the at least one further or second orientation and/or position of the mold element 9, various variants are conceivable, irrespective of the specific type of movement:
[0085] In a first variant, by way of example, shown in
[0086] In a second variant, by way of example, not shown in
[0087] In order to transfer the mold element 9 into respective orientations and/or positions, the mold element 9 is associated with a drive means 10. The drive means 10 is designed for generating a drive force and/or a drive torque, by means of which the mold element 9 can be moved into respective orientations and/or positions. The drive means 10 can be for example a hydraulic or pneumatic drive means. The drive means 10 can thus comprise at least one hydraulic or pneumatic drive means (not shown), which can be or is coupled to the mold element 9. Alternatively or in addition the drive means 10 can be an (electric) motor-operated drive means. A corresponding drive means can comprise at least one (electric) motor-operated drive element, which can be or is coupled to the mold element 9.
[0088] A second functionality of the mold element 9 consists in introducing a process fluid, such as steam or superheated steam, into the mold cavity 7, as required, during operation of the mold 1. For this purpose, the mold element 9 is designed with, or comprises, a flow channel structure 11 having at least one flow channel 11.1 which extends inside the mold element 9 and through which a process fluid can flow. A corresponding flow channel 11.1 thus extends in at least one spatial direction and/or spatial plane, between an inflow opening 11.2, via which a process fluid can flow into the flow channel 11.1 or into the flow channel structure 11, and at least one outflow opening 11.3, via which a process fluid can flow out of the flow channel 11.1 or out of the flow channel structure 11 and into the mold cavity 7, via the mold element 9.
[0089] The mold element 9 is thus designed with, or comprises, at least one or, as shown in
[0090] In particular, it is possible for the mold element 9 to be provided with a plurality of outflow openings 11.3 which are arranged or formed so as to extend over the entire cross section, such that an outflow of a process fluid is possible over the entire cross section of the mold element 9. It is also conceivable for different outflow regions to be defined, via which a process fluid can flow out in a manner dependent on or independent from one another. This can be achieved for example in that a first number of outflow openings 11.3 - these can for example form a first array of outflow openings 11.3 – is associated with a first flow channel 11.1, such that a first process fluid flowing through the first flow channel 11.1 can flow out into the mold cavity 7 via the first number of outflow openings 11.3, and at least one further number of outflow openings 11.3 – these can for example for a further array of outflow openings 11.3 - is associated with at least one further flow channel 11.n, such that a further process fluid flowing through the further flow channel 11.n can flow out into the mold cavity 7 via the further number of outflow openings 11.3. A corresponding first process fluid can differ from a corresponding further process fluid in at least one chemical parameter, such as the chemical composition, and/or physical parameter, such as the pressure, the temperature, etc.
[0091] The flow channel structure 11 can, as indicated schematically in
[0092] The flow channel structure 11 can connectable or connected to its own process fluid supply device 13, which can in particular be operated independently of a process fluid supply device 12 of the mold cavity 7 – this can for example be a vapor chamber. The process fluid - this can for example be steam or superheated steam – which can flow into the mold cavity 7 via the mold element 9 can thus be provided and introduced into the mold cavity 7 as required, independently of the process fluid flowing into the mold cavity 7 via respective openings 8 on the mold (body) wall side.
[0093] The mold element can, as shown in
[0094] Furthermore, a device 16, at a higher level than the mold 1, for producing two-component particle foam components, can be seen in
[0095] The operation of the mold 1 for producing a two-component particle foam component is explained in greater detail in the following, with reference to
[0096] A controller 15 implemented by hardware and/or software is assigned to the mold 1, which controller is designed for controlling the operation of the mold 1 or of the device 16 comprising the mold 1.
[0097] The controller 15 is designed for controlling movements of the mold element 9 from the first orientation and/or position into the at least one further or second orientation and/or position, and vice versa. The controller 15 is in particular designed to generate control information for controlling the operation of the drive means 10 associated with the mold element 9, in order to move the mold element 9 into the further or second orientation and/or position. The drive means 10 can correspondingly be operated on the basis of the control information. The controller 15 can, as shown in
[0098] The controller 15 can further be designed for controlling filling processes of the first partial volume TV1 of the mold cavity 1 with plastic particles from a first plastic particle material.
[0099] The controller 15 is in particular designed for generating control information for controlling the operation of the first filling device 2 for filling the first partial volume TV1 of the mold cavity 7 with plastic particles from a first plastic particle material, in order to fill the first partial volume TV1 of the mold cavity with plastic particles from the first plastic particle material. The first filling device 2 can correspondingly be operated on the basis of the control information. The controller 15 can in particular be designed to carry out a filling process for filling the first partial volume TV1 of the mold cavity 7 with plastic particles from a first plastic particle material, via the first filling device 2, when the mold element 9, as shown in
[0100] The controller 15 can, as shown in
[0101] The measure for connecting the plastic particles from the first plastic particle material, with which first TV1 of the mold cavity 7 is filled, can, as indicated by the curved lines in
[0102] The acquisition of the or a sufficient fill level of the first partial volume TV1 of the mold cavity 7 with plastic particles from the first plastic particle material, optionally for example in view of the desired properties of a multi-component particle foam component to be produced, can be performed by a suitable acquisition means (not shown) for acquiring the fill level of the mold cavity 7, i.e. in particular of the first partial volume TV1 of the mold cavity 7. A corresponding acquisition means can comprise one or more acquisition elements, in this case these may be for example pressure sensors, the acquisition information of which can be transmitted to the controller 15.
[0103] The controller 15 can, as shown in
[0104] The acquisition of the completion of the measure for connecting the plastic particles from the first plastic particle material can be achieved by a suitable acquisition means (not shown) for acquiring the completion of the measure for connecting the plastic particles from the first plastic particle material. A corresponding acquisition means can comprise one or more acquisition elements, in this case these may be for example pressure sensors, the acquisition information of which can be transmitted to the controller 15.
[0105] The controller 15 can, as shown in
[0106] The acquisition of the movement of the mold element 9 into the first orientation and/or position can be achieved via a suitable acquisition means (not shown) for acquiring movements of the mold element 9 into the first orientation and/or position. A corresponding acquisition means can comprise one or more acquisition elements, in this case these may be for example travel sensors, the acquisition information of which can be transmitted to the controller.
[0107] The controller 15 can, as shown in
[0108] The measure for connecting the plastic particles from the further or second plastic particle material, with which second partial volume TV2 of the mold cavity 7 is filled, can, as indicated by the curved lines in
[0109] The acquisition of the or a sufficient fill level of the second partial volume TV2 of the mold cavity 7 with plastic particles from the further or second plastic particle material, optionally for example in view of the desired properties of a multi-component particle foam component to be produced, can be performed by a suitable acquisition means (not shown) for acquiring the fill level of the mold cavity, i.e. in particular of the second partial volume TV2 of the mold cavity. A corresponding acquisition means can comprise one or more acquisition elements, in this case these may be for example pressure sensors, the acquisition information of which can be transmitted to the controller 15.
[0110] The controller 15 can, as shown in
[0111] The acquisition of the completion of the measure for connecting the plastic particles from the further or second plastic particle material can be achieved by a suitable acquisition means (not shown) for acquiring the completion of the measure for connecting the plastic particles from the further or second plastic particle material. A corresponding acquisition means can comprise one or more acquisition elements, in this case these may be for example pressure sensors, the acquisition information of which can be transmitted to the controller 15.
[0112] Finally, removal of the multi-component particle foam component from the mold cavity 7 can take place.
[0113] The operation of the mold 1 for producing a three-component particle foam component is explained in greater detail in the following, with reference to the embodiment shown in
[0114] It is evident that in this case, compared with the mold 1 shown in
[0115] The states shown in
[0116] The controller 15 is however, as shown in
[0117] The controller 15 is, as shown in
[0118] The controller 15 is, as shown in
[0119] The measure for connecting the plastic particles from the second plastic particle material, with which the mold cavity 7 is filled, can, as indicated by the curved lines in
[0120] The controller 15 can, as shown in
[0121] The controller 15 can, as shown in
[0122] The controller 15 is, as shown in
[0123] The measure for connecting the plastic particles from the third plastic particle material, with which the mold cavity 7 is filled, can, as indicated by the curved lines in
[0124] The controller 15 can, as shown in
[0125] Finally, removal of the multi-component particle foam component from the mold cavity 7 can take place.
[0126]
[0127] With reference to
[0128] It is the case, for all embodiments, that the respective mold elements 9 are typically mounted in a receptacle or bearing (not shown), for this purpose, on the mold (body) side. The mold 1 can thus be equipped with receiving or bearing portions, for example in the form or shape of drilled holes. In this case, these can specifically be for example bearing bores, into which a corresponding mold element 9 can be inserted, in particular typically in an exactly fitting manner.
[0129] It is furthermore the case, for all embodiments, that closure means (not shown) can be provided on the side of the mold element 9 or on the side of the mold 1, i.e. in particular on the side of the mold body 6, which, as shown by way of example in the figures, prevent plastic particles from being able to enter the respective recesses 14 on the mold element side.
[0130] It is clear from
[0131] A method for processing expandable or expanded plastic particles producing a multicomponent particle foam component can be implemented by means of the molds 1 shown in the figures.
[0132] The method in particular includes the movements of the mold element 9 explained in connection with the operation of the mold 1, the filling processes of respective partial volumes TV1 - TV3 of the mold cavity 7 created by corresponding movements of the mold element 9, and the connection processes for connecting respective plastic particles with which respective partial volumes TV1 - TV3 of the mold cavity 7 are filled.