EP3354597B1 - Kompressionsmechanismus zur komprimierung von abfallmaterial - Google Patents

Kompressionsmechanismus zur komprimierung von abfallmaterial Download PDF

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Publication number
EP3354597B1
EP3354597B1 EP18153692.1A EP18153692A EP3354597B1 EP 3354597 B1 EP3354597 B1 EP 3354597B1 EP 18153692 A EP18153692 A EP 18153692A EP 3354597 B1 EP3354597 B1 EP 3354597B1
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EP
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Prior art keywords
pressure
residual materials
compression mechanism
exerting element
exerting
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EP18153692.1A
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English (en)
French (fr)
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EP3354597C0 (de
EP3354597A1 (de
Inventor
Boris Gubbels
Arjan TIMMERS
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SIDCON MILIEUTECHNIEK BV
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Sidcon Milieutechniek BV
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Publication of EP3354597A1 publication Critical patent/EP3354597A1/de
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65FGATHERING OR REMOVAL OF DOMESTIC OR LIKE REFUSE
    • B65F1/00Refuse receptacles; Accessories therefor
    • B65F1/14Other constructional features; Accessories
    • B65F1/1405Compressing means incorporated in, or specially adapted for, refuse receptacles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B9/00Presses specially adapted for particular purposes
    • B30B9/30Presses specially adapted for particular purposes for baling; Compression boxes therefor
    • B30B9/3003Details
    • B30B9/3021Press rams
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B9/00Presses specially adapted for particular purposes
    • B30B9/30Presses specially adapted for particular purposes for baling; Compression boxes therefor
    • B30B9/305Drive arrangements for the press ram
    • B30B9/3053Hand- or foot-operated presses
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B9/00Presses specially adapted for particular purposes
    • B30B9/30Presses specially adapted for particular purposes for baling; Compression boxes therefor
    • B30B9/3082Presses specially adapted for particular purposes for baling; Compression boxes therefor with compression means other than rams performing a rectilinear movement

Definitions

  • US 2014/0041538 discloses a compression mechanism according to the preamble of claim 1. Further compression mechanisms are known from DE 10 2009 018108 A1 and US 4 286 515 A .
  • the residual materials can be introduced into the compression mechanism which is provided with a first pressure-exerting element and a second pressure-exerting element which are both arranged above the outlet of the compression mechanism, in which each pressure-exerting element is provided with a first pressure-exerting element part and a second pressure-exerting element part which encloses an obtuse angle with the first pressure-exerting element part, in which the residual materials to be introduced into the inlet can be supported and/or the residual materials discharged via the outlet can be retained by the first pressure-exerting element parts and, in addition, the first and second pressure-exerting elements are moveable with respect to each other, in which the residual materials can be moved through the outlet and/or compressed, as the pressure-exerting elements move with respect to each other, by means of the second pressure-exerting element parts which move towards each other.
  • the compression mechanism By means of the compression mechanism, the volume of the residual materials can be reduced, as a result of which a larger amount of residual materials can be stored in a volume.
  • the compression mechanism is simple in terms of construction, as a result of which it is relatively low-maintenance and can be made relatively compact. Due to the obtuse angle which the second pressure-exerting element parts and the first pressure-exerting element parts enclose, two inclined faces are created which move towards each other when at least one of the pressure-exerting elements is moved, in such a way that a relatively large downward force can be exerted on the residual materials in the direction of the outlet.
  • the first pressure-exerting element parts ensure that the residual materials compressed in the collecting volume cannot move back up. Furthermore, it is possible for the first pressure-exerting element parts to form a temporary support for the residual materials introduced into the compression mechanism via the inlet, which support is cancelled by moving the pressure-exerting elements with respect to each other, in which the residual materials are simultaneously pushed down through the outlet by means of the second pressure-exerting element parts moving towards each other in order to compress the residual materials in the collecting volume.
  • the first and the second pressure-exerting element part in a pressure-exerting element are bent with respect to each other, in which the obtuse angle is produced between for example two virtual tangent lines of the bent first pressure-exerting element part and the bent second pressure-exerting element part. If only one of the pressure-exerting elements is bent, the obtuse angle is provided between a virtual tangent line of the bent pressure-exerting element part and the unbent other pressure-exerting element part.
  • a bent or curved shape of one of the pressure-exerting element parts can be produced in different ways. Thus, it is for example possible to produce a partly parabolically bent shape, viewed from a side view.
  • the obtuse angle which the second pressure-exerting element parts and the first pressure-exerting element parts enclose is between 100 and 170 degrees, preferably between 120 and 160 degrees. In this way, it is possible to maximize the force to be applied to the residual materials in the direction of the outlet by means of the compression mechanism and to adapt it to the type of residual materials to be compressed.
  • the residual materials may comprise household refuse, such as packaging, in particular plastic, metal and drinks packaging (PMD, Plastic bottles and flasks, Metal packaging and Drink cartons).
  • the first pressure-exerting element parts may extend substantially parallel to an opening which is defined by the outlet. Due to the obtuse angle, the second pressure-exerting element parts extend from the first pressure-exerting element parts in a direction facing away from the outlet.
  • the compression mechanism may comprise more than two pressure-exerting elements in order to increase the compression force on the residual materials and/or to ensure that the residual materials do not tilt and/or turn or move in an undesirable direction during compression of the residual materials.
  • One of the pressure-exerting elements has to be moveable to a minimal degree, whereas the other(s) can be stationary.
  • the smallest dimension of the compression mechanism may extend vertically (height), as a result of which a relatively compact compression mechanism may be provided.
  • the horizontal dimensions (length and width) of the compression mechanism are preferably determined by a standard residual materials container which can be placed under the outlet of the compression mechanism as a collecting volume for the residual materials.
  • At least one of the first and second pressure-exerting elements is rotatably moveable about an axis in order to move the residual materials through the outlet and/or to compress them.
  • the first pressure-exerting element part may at least partly comprise the shape of at least a part of a circle.
  • These circular or annular first pressure-exerting element parts may form the temporary support for the residual materials introduced via the inlet.
  • the second pressure-exerting element may at least partly extend upwards from the first pressure-exerting element part about the axis of rotation, for example as a helix. In addition to a helix, other shapes are also possible.
  • the temporary support formed by the first pressure-exerting element parts disappears. Furthermore, by rotating at least one of the pressure-exerting elements, the inclined faces formed by the second pressure-exerting elements are moved against the residual materials, in which case continued rotation results in a force being exerted on the residual materials in the direction of the outlet by the inclined faces. By temporarily removing the temporary support which blocks the outlet, the residual materials can be pushed through the outlet by means of the second pressure-exerting element parts moving towards each other.
  • the support disappears as a result of the first pressure-exerting element parts moving away from each other in order thus to provide an opening for the residual materials, so that these may be pushed through the outlet, wherein after the first pressure-exerting element parts have been moved apart to their greatest extent, the first pressure-exerting element parts are moved towards each other again in order to provide the support for residual materials which are newly to be introduced into the compression mechanism via the inlet.
  • the second pressure-exerting element parts move the opposite way, that is to say the pressure-exerting element parts initially move towards each other and subsequently move away from each other.
  • the second pressure-exerting element comprises a larger radius than the first pressure-exerting element, so that the pressure-exerting elements are able to rotate over 360 degrees next to each other in opposite directions.
  • At least one of the first and second pressure-exerting elements may be moveable in a straight line between a first position and a second position and vice versa in order to move the residual materials through the outlet and/or to compress them by means of the inclined faces provided by the second pressure-exerting element parts. If both pressure-exerting elements are designed to be moveable, then they are moved towards each other and away from each other in opposite directions in order to perform the compression function of the compression mechanism.
  • the system comprises the above-described compression mechanism, in which a residual materials container can be placed under the outlet of the compression mechanism.
  • the residual materials container may be a standard residual materials container which is produced in accordance with a specific standard, such as for example follows from a European Standard, EN 840.
  • EN 840 This standard concerns two-wheeled mini-containers, which standard has been adopted in the Netherlands as NEN-EN 840, in Belgium as NBN-EN 840.
  • mini-containers comprise a volume between 120 and 240 litres and are made from high-density polyethylene (HDPE).
  • HDPE high-density polyethylene
  • the residual materials container may be provided with an inner container which is made from a material which is better able to withstand the forces exerted by the compression mechanism in operation than the material (HDPE) from which the walls of the standard residual materials container are made.
  • the inner container may be made of, for example, a metal or a fibre-reinforced plastic.
  • the conical shape of the inner container may correspond with the conical shape of the standard residual materials container in order to maximize the volume of the inner container. It is also possible to design the conical shape of the inner container differently from the conical shape of the standard residual materials container in order to make the inner container stronger in terms of design than the standard residual materials container.
  • the distance between the inner wall and bottom of the standard residual materials container and the inner container is very small, for example less than 10 cm. This distance may be smaller near the opening of the standard residual materials container than near the bottom of the standard residual materials container.
  • the inner container may furthermore be designed in such a manner that it is installable in the residual materials container so as to be manually removable. It is possible to design the inner container in such a way that it is installable in the standard residual materials container by means of a clamping force.
  • the system may be provided with a housing in order to provide a closable space for the residual materials container, in which the system is furthermore provided with an airtight disposal lock to the inlet of the compression mechanism.
  • the disposal lock also makes it possible for more than one household to make use of the residual materials container, in particular if the disposal lock is lockable, for example via RFID, in order to gain access to the system. Using RFID access enables the system to record who throws away residual materials and, optionally, to determine the amount of residual materials this individual or household throws away by means of a weighing unit.
  • the cooling system may be accommodated in the housing of the system, while an outlet of the ozone generator may be situated in the disposal lock in order to pass ozone into the disposal lock.
  • an ozone generator may be provided in the coupling unit and/or in the compression mechanism in order to inject ozone into the residual materials container.
  • Fig. 1 shows a diagrammatic view of a system 1 for processing residual materials.
  • the residual materials may be packaging, for example plastic, metal and/or drinks packaging (PMD).
  • the system 1 comprises a compression mechanism 3 which is provided with an inlet 5 and an outlet 7.
  • the compression mechanism 3 may be supported by a frame (not shown) or the like.
  • a residual materials container 10 can be placed under the outlet 7 of the compression mechanism 3.
  • the residual materials container 10 is a standard residual materials container, in particular a mini-container in accordance with NEN-EN 840.
  • the residual materials container 10 comprises a handle bar 11 and two wheels 13 by means of which the residual materials container 10 can be moved in the direction indicated by arrow P1 by tilting it by means of the handle bar 11.
  • the residual materials to be processed by means of the compression mechanism 3 comprise household refuse, such as packaging, preferably plastic, metal and drinks packaging (PMD).
  • packaging preferably plastic, metal and drinks packaging (PMD).
  • PMD plastic, metal and drinks packaging
  • Plastic, metal and drinks packaging is a residual material stream whose volume can be greatly reduced by compression.
  • the residual materials container 10 is provided with an inner container 15 which is designed to make the inner container 15 better able to withstand the forces exerted by the compression mechanism in operation, than the shape of the residual materials container 10 and/or the inner container 15 is made from a material which is better able to withstand the forces exerted by the compression mechanism in operation than the material from which the residual materials container 10 is made.
  • the conically shaped inner container 15 is installable in the residual materials container 10 so as to be manually removable.
  • the distance between the inner wall of the residual materials container 10 and the inner container 15 is shown greatly enlarged in order to illustrate the inner container 15 and this distance may be significantly smaller in practice, for example the greatest distance between the inner container 15 and the residual materials container 10 measured near the bottom of the residual materials container 10 may be less than 10 cm.
  • the outer wall of the inner container 15 may be provided with ribs (not shown) by means of which the inner container 15 rests on the inner wall of the residual materials container 10.
  • the inner container 15 On its upper side, the inner container 15 is provided with an opening which provides access to the inner container 15.
  • the dimensions of the opening of the inner container 15 correspond with or are greater than the dimensions of the opening of the outlet 7 of the compression mechanism 3. In this way, it is ensured that the residual materials which are moved through the opening of the outlet 7 end up in the residual materials container 10 situated underneath.
  • the compression mechanism 3 will be explained in greater detail by means of Figs. 1 and 2a-e .
  • the compression mechanism 3 is used for compressing residual materials which can be introduced into the compression mechanism 3 via an inlet 5 and which is provided with a first pressure-exerting element 25 as well as a second pressure-exerting element 27, which are both arranged above the outlet 7 of the compression mechanism 3.
  • Each pressure-exerting element 25, 27 is a strip, for example a metal strip.
  • each pressure-exerting element 25, 27 is provided with a first pressure-exerting element part 25a, 27a and a second pressure-exerting element part 25b, 27b which encloses an obtuse angle ⁇ with the first pressure-exerting element part 25a, 27a.
  • the obtuse angle ⁇ is between 155 and 160 degrees.
  • the first pressure-exerting element parts 25a, 27a extend parallel to the opening which is defined by the outlet 7, which opening is situated in a horizontal plane during normal use of the compression mechanism 3 and the system 1.
  • the second pressure-exerting element parts 25b, 27b extend from the first pressure-exerting element parts 25a, 27a in a direction facing away from the outlet 7.
  • Each first pressure-exerting element part 25a, 27a is designed to form a single piece with the second pressure-exerting element part 25b, 27b.
  • the illustrated compression mechanism 3 comprises four first pressure-exerting elements 25 and five second pressure-exerting elements 27.
  • the first pressure-exerting element parts 25a, 27a may form a temporary horizontal support surface for the residual materials to be introduced via the inlet 5. However, it is also possible for the residual materials which are introduced via the inlet 5 to not be (temporarily) supported by the first pressure-exerting element parts 25a, 27a and to fall directly through the outlet 7 into the container 10.
  • Figs. 2a-e show the first and second pressure-exerting elements 25, 27 only in a first position in which the residual materials can be placed on the first pressure-exerting element parts 25a, 27a via the inlet 5.
  • the first pressure-exerting element parts 25a, 27a form the support for the residual materials to be introduced via the inlet 5. While the pressure-exerting elements 25, 27 move with respect to each other, the support disappears temporarily due to the first pressure-exerting element parts 25a, 27a moving apart and at the same time the residual materials are moved through the outlet and/or compressed by moving the second pressure-exerting element parts 25b, 27b towards each other.
  • the first pressure-exerting element parts 25a, 27a can be moved from the position illustrated in Figs.
  • first pressure-exerting element parts 25a, 27a are returned to the position shown in Figs. 2a-e when they are rotated through 180 degrees again.
  • first pressure-exerting element parts 25a, 27a which form a single piece with the second pressure-exerting element parts 25b, 27b and which initially move towards each other from the position shown in Figs. 2a-e and then move away from each other and return to the position shown in Figs. 2a-e .
  • the first and second pressure-exerting elements 25, 27 are rotatably movable about an axis.
  • at least one of the first and second pressure-exerting elements may be moveable in a straight line between a first position and a second position and vice versa, so that residual materials can be moved through the outlet 7 and/or compressed by moving the second pressure-exerting element parts towards each other.
  • the pressure-exerting elements may be plate-like and may extend parallel to each other and may be moved past each other in a straight line (without rotation) in order to reach the position for moving and/or compressing the residual materials through the outlet 7 by means of the inclined faces of the second pressure-exerting element parts which faces have been moved towards each other.
  • each first pressure-exerting element part 25a, 27a has the shape of at least a part of a circle
  • each second pressure-exerting element 25b, 27b extends from the first pressure-exerting element part 25a, 27a upwards about an axis in a curved and/or bent manner, for example in the form of a helix as illustrated in the figures.
  • the second pressure-exerting elements 27 define a larger radius than the first pressure-exerting elements 25 which are situated directly next thereto and are movable past the latter.
  • the first pressure-exerting element parts 25a, 27a may thus have a double function, namely, on the one hand, supporting the residual materials introduced via the inlet 5 of the compression mechanism 3 and, on the other hand, retaining the residual materials pushing up via the outlet 7 in the residual materials container 10.
  • the volume of the residual materials can be reduced, as a result of which a larger amount of residual materials can be stored in the residual materials container 10.
  • two inclined faces 31, 33 are provided which are partly interrupted by the strips and which are moved towards each other by moving at least one of the pressure-exerting elements 25, 27 in such a way that the inclined faces 31, 33 exert a relatively large downward force on the residual materials in the direction of the outlet 7. The relatively large downward force will compress the residual materials via the outlet 7 in the residual materials container 10.
  • the temporary support formed by the first pressure-exerting element parts 25a, 27a is removed by moving the pressure-exerting elements 25, 27 with respect to each other, resulting in the first pressure-exerting element parts 25a, 27a being moved apart and forming an opening towards the outlet 7.
  • the residual materials are pushed down through the outlet 7 by the second pressure-exerting element parts 25b, 27b moving towards each other, in order to compress the residual materials in the residual materials container 10.
  • the length I and width (not shown in Fig. 1 ) dimensions of the compression mechanism are determined by and/or correspond to the length and width dimensions of the standard container 10.
  • the smallest dimension h of the compression mechanism 3 extends vertically. In this way, a very compact compression mechanism 3 can be produced.
  • the system 1 may furthermore be provided with a housing (not shown) in order to provide a closable space for the residual materials container.
  • the system 1 may also comprise an airtight disposal lock (not shown) to the inlet 5 of the compression mechanism 3. This disposal lock may be locked and may be openable by means of a key or RFID.
  • At least one of the pressure-exerting elements is moved by means of a drive mechanism.
  • one or various pressure-exerting elements to be moved by hand, for example by means of a rotating movement to be performed by an operator.
  • the inner container may furthermore be designed in such a way that it is installable in the residual materials container so as to be manually removable. It is possible to design the inner container in such a way that it is installable in the standard residual materials container by means of a clamping force. It is also possible to opt for a form-fitted connection instead of a frictional connection between the residual materials container 10 and the inner container 15, thus reducing the risk of the inner container becoming detached, for example during emptying.
  • the inner container may, for example, be made from a metal or a fibre-reinforced plastic.
  • This residual material-processing system may furthermore have other features/properties of the system as described in this document and in particular defined in the attached claims.
  • Such a hygienic storage device will greatly stimulate the organic residual materials separation behaviour of the users, in particular in high-rise blocks where several users/households use one and the same storage.
  • the disposal lock may be locked by means of, for example, a key or via RFID.
  • the storage device may be provided with a compression mechanism, for example a compression mechanism as described in this document, but it is also possible to construct the storage device without a compression mechanism.
  • the cooling system may be incorporated in the housing of the storage device. It is also possible to provide further ozone generators in the storage device, for example an ozone generator for supplying ozone to the inside of the residual materials container.

Claims (11)

  1. Kompressionsmechanismus (3) zum Komprimieren von Abfallmaterial, das über einen Einlass (5) in den Kompressionsmechanismus eingeleitet werden kann, und der mit einem ersten Druckaufbringungselement (25) und einem zweiten Druckaufbringungselement (27) versehen ist, die beide über einem Auslass des Kompressionsmechanismus angeordnet sind, dadurch gekennzeichnet, dass jedes Druckaufbringungselement (25, 27) mit einem ersten Druckaufbringungselementteil (25a, 27a) und einem zweiten Druckaufbringungselementteil (25b, 27b), der einen stumpfen Winkel (α) zum ersten Druckaufbringungselementteil bildet und sich vom ersten Druckaufbringungselementteil in eine vom Auslass abgewandte Richtung erstreckt, versehen ist, wobei der erste Druckaufbringungselementteil und der zweite Druckaufbringungselementteil als einzelnes Teil gefertigt sind und der erste und zweite Druckaufbringungselementteil in den Druckaufbringungselementen zueinander gekrümmt sind, um den stumpfen Winkel (α) zu erzeugen, wobei das in den Einlass einzuleitende Abfallmaterial getragen werden kann und/oder das über den Auslass abgegebene Abfallmaterial durch die ersten Druckaufbringungselementteile gehalten werden kann, und zusätzlich das erste und zweite Druckaufbringungselement zueinander um eine Achse drehbar sind, wobei bei der Verwendung durch die zweiten Druckaufbringungselemente ausgebildete geneigte Flächen aufeinander zu und entgegen dem Abfallmaterial gedreht werden, wobei eine fortlaufende Drehung dazu führt, dass durch die geneigten Flächen eine Kraft auf das Abfallmaterial in Richtung des Auslasses aufgebracht wird, sodass das Abfallmaterial mittels der zweiten Druckaufbringungselementteile durch den Auslass beweglich ist.
  2. Kompressionsmechanismus (3) nach Anspruch 1, wobei der stumpfe Winkel zwischen 100 und 170 Grad, vorzugsweise zwischen 120 und 160 Grad, beträgt.
  3. Kompressionsmechanismus (3) nach Anspruch 1 oder 2, wobei sich die kleinste Abmessung des Kompressionsmechanismus vertikal erstreckt.
  4. Kompressionsmechanismus (3) nach einem der vorstehenden Ansprüche, wobei sich die ersten Druckaufbringungselementteile im Wesentlichen parallel zu einer durch den Auslass definierten Öffnung erstrecken.
  5. Kompressionsmechanismus (3) nach einem der vorstehenden Ansprüche, wobei jedes Druckaufbringungselement ein Streifen oder zumindest ein Teil eines Rohrs ist.
  6. Kompressionsmechanismus (3) nach einem der vorstehenden Ansprüche, wobei jeder erste Druckaufbringungselementteil zumindest teilweise die Form zumindest eines Teils eines Kreises umfasst und sich jedes zweite Druckaufbringungselement vom ersten Druckaufbringungselementteil um die Drehachse zumindest teilweise aufwärts erstreckt, zum Beispiel als Schraube, wobei das zweite Druckaufbringungselement vorzugsweise einen größeren Radius definiert als das erste Druckaufbringungselement.
  7. Kompressionsmechanismus (3) nach einem der vorstehenden Ansprüche, wobei durch die ersten Druckaufbringungselementteile ein Träger für das in den Einlass einzuleitende Abfallmaterial ausgebildet sein kann, wobei der Träger vorübergehend verschwindet, während sich die Druckaufbringungselemente zueinander bewegen, um das Abfallmaterial mittels zumindest eines der zweiten Druckaufbringungselementteile durch den Auslass zu bewegen und/oder zu komprimieren.
  8. System (1), umfassend einen Kompressionsmechanismus (3) nach einem der vorstehenden Ansprüche, in dem ein Abfallmaterialbehälter (10) unter dem Auslass des Kompressionsmechanismus platziert werden kann.
  9. System (1) nach Anspruch 8, wobei der Abfallmaterialbehälter ein Standardabfallmaterialbehälter ist, der zur Verwendung im System mit einem Innenbehälter (15) versehen ist, der aus einem Material besteht, das besser dazu geeignet ist, während des Betriebs durch den Kompressionsmechanismus aufgebrachten Kräften standzuhalten, als das Material, aus dem die (Seiten-)Wände des Standardabfallmaterialbehälters gefertigt sind, und/oder
    wobei der Abfallmaterialbehälter ein Standardabfallmaterialbehälter ist, der zur Verwendung im System mit einem Innenbehälterversehen ist, wobei der Innenbehälter eine Form aufweist, die besser dazu geeignet ist, während des Betriebs durch den Kompressionsmechanismus aufgebrachten Kräften standzuhalten, als der Standardabfallmaterialbehälter.
  10. System (1) nach Anspruch 9, wobei der Innenbehälter im Abfallmaterialbehälter einsetzbar ist, um manuell herausnehmbar zu sein, und/oder wobei der Innenbehälter nur mit einer Öffnung auf der Oberseite versehen ist, die Zugriff auf den Innenbehälter gibt.
  11. System (1) nach einem der vorstehenden Ansprüche 8-10, wobei das System mit einem Gehäuse versehen ist, um einen verschließbaren Raum für den Abfallmaterialbehälter vorzusehen, wobei das System ferner mit einer luftdichten Entsorgungsverriegelung zum Einlass des Kompressionsmechanismus versehen ist, wobei die Entsorgungsverriegelung vorzugsweise verriegelbar ist, zum Beispiel mittels RFID, und/oder
    wobei der Auslass des Kompressionsmechanismus mittels einer Kupplungseinheit mit dem Abfallmaterialbehälter verbunden ist und/oder
    wobei das System mit einem Kühlsystem und/oder mindestens einem Ozongenerator (35) versehen ist.
EP18153692.1A 2017-01-27 2018-01-26 Kompressionsmechanismus zur komprimierung von abfallmaterial Active EP3354597B1 (de)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
NL2018251A NL2018251B1 (nl) 2017-01-27 2017-01-27 Persmechanisme voor het persen van reststoffen die via een ingang in te voeren zijn tot in het persmechanisme, alsmede een systeem omvattende een persmechanisme

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EP3354597A1 EP3354597A1 (de) 2018-08-01
EP3354597C0 EP3354597C0 (de) 2023-08-23
EP3354597B1 true EP3354597B1 (de) 2023-08-23

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EP (1) EP3354597B1 (de)
ES (1) ES2954076T3 (de)
NL (1) NL2018251B1 (de)

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2850959C2 (de) * 1978-11-24 1986-06-19 Apura Gmbh, 6502 Mainz-Kostheim Behälter zum Aufnehmen und Pressen von Abfall
DE102009018108B4 (de) * 2009-04-15 2011-12-29 Manuel Simone Abfallverdichter
US20140041538A1 (en) * 2012-08-13 2014-02-13 Vijay Parmar E-Compactor

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EP3354597C0 (de) 2023-08-23
ES2954076T3 (es) 2023-11-20
EP3354597A1 (de) 2018-08-01
NL2018251B1 (nl) 2018-08-07

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