EP3406436B1 - Sabot de remplissage pour une presse rotative - Google Patents

Sabot de remplissage pour une presse rotative Download PDF

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Publication number
EP3406436B1
EP3406436B1 EP17172619.3A EP17172619A EP3406436B1 EP 3406436 B1 EP3406436 B1 EP 3406436B1 EP 17172619 A EP17172619 A EP 17172619A EP 3406436 B1 EP3406436 B1 EP 3406436B1
Authority
EP
European Patent Office
Prior art keywords
filling
chamber
filling shoe
impeller
shoe
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP17172619.3A
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German (de)
English (en)
Other versions
EP3406436A1 (fr
Inventor
Ingo Klaer
Robert Peucker
Stephan Mies
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Korsch AG
Original Assignee
Korsch AG
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to EP17172619.3A priority Critical patent/EP3406436B1/fr
Application filed by Korsch AG filed Critical Korsch AG
Priority to PL17172619T priority patent/PL3406436T3/pl
Priority to ES17172619T priority patent/ES2752198T3/es
Priority to CN201880034618.6A priority patent/CN110662647B/zh
Priority to US16/615,472 priority patent/US11504934B2/en
Priority to JP2019564139A priority patent/JP7022444B2/ja
Priority to KR1020197037527A priority patent/KR102420747B1/ko
Priority to PCT/EP2018/063653 priority patent/WO2018215594A1/fr
Publication of EP3406436A1 publication Critical patent/EP3406436A1/fr
Application granted granted Critical
Publication of EP3406436B1 publication Critical patent/EP3406436B1/fr
Active legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B15/00Details of, or accessories for, presses; Auxiliary measures in connection with pressing
    • B30B15/30Feeding material to presses
    • B30B15/302Feeding material in particulate or plastic state to moulding presses
    • B30B15/304Feeding material in particulate or plastic state to moulding presses by using feed frames or shoes with relative movement with regard to the mould or moulds
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B11/00Presses specially adapted for forming shaped articles from material in particulate or plastic state, e.g. briquetting presses, tabletting presses
    • B30B11/02Presses specially adapted for forming shaped articles from material in particulate or plastic state, e.g. briquetting presses, tabletting presses using a ram exerting pressure on the material in a moulding space
    • B30B11/08Presses specially adapted for forming shaped articles from material in particulate or plastic state, e.g. briquetting presses, tabletting presses using a ram exerting pressure on the material in a moulding space co-operating with moulds carried by a turntable
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B30PRESSES
    • B30BPRESSES IN GENERAL
    • B30B15/00Details of, or accessories for, presses; Auxiliary measures in connection with pressing
    • B30B15/30Feeding material to presses
    • B30B15/302Feeding material in particulate or plastic state to moulding presses

Definitions

  • the invention relates to the field of rotary presses, which are used in the pharmaceutical, technical or chemical industry or in the food industry to produce from powdered materials tablets or compacts in large quantities.
  • Concentric presses are well known in the art. These are characterized by a rotor, comprising an upper and Unterstempel arrangement for receiving punches and a die plate with dies with holes for receiving the powdery material. After filling the die bores, the combination of upper and lower punches can be used to press the material into a compact or a tablet.
  • impeller filling shoes are also referred to as 2-chamber filling shoes.
  • 2-chamber filling shoes are generally constructed as follows: In a filling shoe lower part are in the top circular recesses for the impeller, which is placed on the left, and a metering impeller, which is placed on the right. The directions are based on the mounted filling shoe, with a directed towards the rotor center direction of view adopted becomes.
  • the Greecherteil In the Greecherteil is at the level of the pitch circle of holes in the die plate continues to break through in the bottom area, which is referred to as a material outlet or filling opening.
  • an intermediate plate covers the top of the Greschuhunterteils. In it are the two breakthroughs for the drive shafts of the two impellers and the breakthrough for the supply of material.
  • This filling is accordingly called net filling.
  • the 4 mm pressing material dispensed through the dosing unit are pushed back by the lower punches over the second half of the filling device into the filling opening and thus into the right chamber of the stirring blade filling shoe.
  • this right chamber is the so-called Dosierhoffrad, which is counterclockwise rotates and thus transported excess material in the direction of the left impeller.
  • the excess press material returns to the left filling chamber and is there used by the Greflugelrad proportionally for a new filling.
  • a 3-chamber filling shoe is located above the filling and Dosierhofflyer in addition a third chamber in which a third impeller is placed.
  • the third impeller is also referred to as Zubayerielrad.
  • the direction of rotation of the Zuriosflugelrades is of no crucial importance and is therefore used in different ways in the prior art.
  • the material inlet to the feed impeller is offset to a different position than the material outlet into the lower chamber of the filling shoe.
  • the material inlet on an inner pitch circle and the outlet opening for the powdery material are located on an outer pitch circle.
  • the invention is therefore based on the object to overcome the disadvantages of the prior art and to provide a filling shoe, which is characterized by a high adaptability to the flow behavior of the powder material and a simple interchangeability.
  • the invention relates to a Rlickeriel spallschuh of the generic type, as described above, and is suitable for filling of die holes in tablet presses with powdered material.
  • the agitator paddle shoe has a modular construction.
  • the modular impeller filling shoe is understood to consist of at least three different components which can be assembled in at least two configurations in order to carry out at least two functions.
  • the Filling opening preferably designates a recess or a breakthrough in the bottom of the filling shoe which allows communication between the first and / or second chamber to the die plate, including the die bores.
  • the filling opening is therefore also referred to as a material outlet.
  • the filling process can preferably be carried out as is well known in the art.
  • the lower punches are preferably withdrawn while the die holes are located below the filling opening.
  • the powdery material contained in the first chamber can fill by gravity the die holes completely.
  • the paddle shoe is in the form of a 3-chamber pad.
  • the impeller filling shoe in addition to the Grewugelrad and Dosierflugelrad also has a third impeller, which is referred to as Zu2010hofflrad.
  • the modular impeller filling shoe comprise a first assembly in which in a first (left) chamber, the Gresierflugelrad and in a second (right) chamber the Dosierflugelrad is installed.
  • a second subassembly can be placed on the first subassembly which comprises a material inlet aligned with the filling impeller.
  • the second assembly could be replaced with a third assembly comprising a supply impeller.
  • the third assembly also includes a material inlet, which, however, is aligned with the Zuliteflugelrad.
  • other variants are included according to the invention, as long as these allow a change in the configuration of the modular paddle shoe from a 2-chamber to a 3-chamber pad.
  • the erfindungsffleße modular design thus puts the user in the comfortable position to adapt the configuration of the filling shoe to the appropriate operating conditions by light and fast handles.
  • the impeller filling shoe is characterized in that the impellers each have an adapter for connecting a drive shaft for connection to an external transmission.
  • the impellers in the case of the 2-chamber filling shoe, the impeller and the metering impeller are meant, while in the 3-chamber filling shoe, the impeller, the metering impeller and the Zu210flugelrad are meant.
  • adapters for connecting the drive shafts By providing adapters for connecting the drive shafts, a particularly fast, yet secure connection between the transmission and the impellers of the filling shoe can be provided.
  • Attachable drive shafts have surprisingly proven to be particularly reliable for this purpose.
  • the rotational movement of the transmission is preferably transmitted to a rotation of the vanes.
  • the Rlickeriel spallschuh is characterized according to claim 1, characterized in that it comprises a base module in which a Brownerielrad in a first chamber and a dosing impeller present in a second chamber wherein the 2-chamber filling shoe has a first modular structure, which is mounted on the base module and a first material inlet, which is in the assembled state above the Guwugelrad and the 3-chamber filling shoe has a second module structure in which a Zutechnologyflugelrad present in a third middle chamber, the second module assembly is mounted on the base module and a second material inlet having.
  • the 2-chamber or 3-chamber filling shoe designates the configuration of the modular Rowneriel spallschuhs invention as a 2-chamber or 3-chamber filling shoe.
  • the base module refers to an assembly of the stirring paddle shoe which is used in both the 2-chamber and 3-chamber filling shoe configurations. In a functional change between these configurations, therefore, the base module is not replaced, but extended by different assemblies.
  • the base module are in a first chamber before the Golferielrad and in a second chamber before the Dosierhoff.
  • the base module can consist of two or more modules in a preferred variant.
  • the base module may comprise a filling shoe base plate in which the filling opening is located on the underside. This preferably coincides with the left and right chambers of the filling shoe to allow filling and metering of the die bores.
  • the Base module may also preferably comprise a Greschuhdeckel covering the impellers.
  • a first module construction is provided for the configuration as a 2-chamber filling shoe.
  • the first module structure has for this purpose a first material inlet on, wherein the attachment of the module structure takes place such that the material inlet located above the first chamber comprising the Grewugelrad.
  • a defined positioning of the first module structure is determined on the base module, for example in the form of bores.
  • the second module structure is also preferably installed on the base module such that the feed impeller is positioned centrally above the filling impeller and metering impeller.
  • the powder is thus conveyed from the feeding impeller in a first stage to the filling impeller and in a second stage from the impeller to the filling opening.
  • the Z-stages are preferably achieved in the construction of the modular Stbreakhofflhellschuhs by the relative positioning of the chambers. It is preferred that for the 2-chamber filling shoe, the material inlet for the powder is not positioned in a solder above the center of the filling opening, but the material is first led from the material inlet into the first (left) chamber, where the powder flow a first level or level is stopped. By means of the impeller, the powder is transported from the plane to the filling opening, so that a filling of the underlying die hole can be done. This represents a first Z-stage.
  • the stirring blade filling shoe is characterized in that the components of the stirring blade filling shoe comprise materials which are preferably selected from the group comprising stainless steel, aluminum and / or plastic.
  • the materials mentioned are characterized by a particularly low weight in conjunction with a high resistance.
  • VA steel is preferably used for filling shoes. It was therefore surprising that a filling shoe could be made in particular of materials such as plastic and aluminum, which meets the highest standards of precision, with little wear and tear and low susceptibility to errors.
  • the gearbox By attaching the gearbox to the underside of the vibration-decoupled carrier plate on the one hand a particularly compact design of the tablet press is possible.
  • the gear can also be used in an open and therefore inexpensive design, as it is mounted outside the press zone and thus protected from dust and dirt.
  • the rotary press is characterized in that the rotary press has in a head piece above the filling shoe a material supply device comprising an outlet pipe, wherein the outlet pipe is adjustable in at least two positions, so that in the case of a mounted 2-chamber filling shoe, the outlet pipe itself is in a first position above the first material inlet of the 2-chamber filling shoe and in the case of a mounted 3-chamber filling shoe, the outlet pipe is in a second position above the second material inlet of the 3-chamber filling shoe.
  • the rotary press has a head piece, which is arranged above the filling shoe. This header preferably carries a material feed device which supplies the powdery material to the filling shoe.
  • the module assembly 40 in particular includes a first material inlet 11, which is equipped with a clamping ring 10 for the material inlet sleeve. At the material inlet 11, the outlet pipe of the material supply device (not shown) is connected.
  • the material inlet 11 At the material inlet 11, the outlet pipe of the material supply device (not shown) is connected.
  • the material inlet 11 At the material inlet 11, the outlet pipe of the material supply device (not shown) is connected.
  • the material inlet 11 is first in the left chamber comprising the Greutelrad 24 given.
  • the Greügelrad 24 rotates mostly in the plan view in a clockwise direction, the metering impeller 17 counterclockwise.
  • the paddle wheel 24 rotates in the same direction at the point of intersection with the pitch circle of the dies (not shown).
  • the press material is transferred by the Mederielrad 24 from the left side into the filling opening 26 of the base plate 14 and passes from there into the individual die holes.
  • the filling curve which fills the die bore by removing the lower punch under the die surface. Then, with the aid of a dosing unit, the lower punches can be raised after the filling process, so that a defined filling volume remains in the die bores.
  • a discharge of powdered material from the chambers can be made via the material discharge pipes 18 and 19, which Shutter 35 are controlled. Furthermore, viewing windows 16 allow monitoring of the chambers and vanes during operation.
  • Fig. 4 and 5 show schematic representations of a preferred embodiment of the first module structure 40 for a 2-chamber filling shoe 9 according to the Fig. 1-3 ,
  • the Fig. 4 is three-dimensional view, Fig. 5A a sectional view and Fig. 5B a top view.
  • the module assembly 40 includes an intermediate plate 12, which by means of T-handle screws 13, as in the Fig. 1-3 shown on the base module 39 can be installed.
  • the material inlet 11 with the clamping ring for the material inlet sleeve 10 is installed on the left side of the intermediate plate 12, so that the material inlet 11 in the 2-chamber filling shoe (9, cf. Fig. 1-3 ) is located above the Greugelrades 24.
  • Fig. 6-8 10 show various schematic views of a preferred embodiment of the stirring paddle shoe as a 3-chamber filling shoe 38.
  • Fig. 6 shows a three-dimensional overview of the 3-chamber filling shoe 38, wherein only the outer visible components are shown.
  • Fig. 7 shows a schematic 3D sectional view and Fig. 8 a plan view of the preferred embodiment of the 3-chamber filling shoe.
  • the impeller filling shoe thus has three impellers.
  • the outlet pipe of the material supply device (not shown) is connected.
  • the powdered material is not directed directly to the Greflugelrad 24 as in the case of the 2-chamber filling shoe 9. Instead, the supply of material through the material inlet 23 is initially to the Zustockedflugelrad 25, which is located in the middle, third chamber. In the installed state, the Zutechnologyerielrad 25 is on an outer circle offset from the Grewugelrad 24.
  • the dosage of the filling level of the die bores takes place.
  • the lower punches are raised by means of a metering unit and excess material is returned to the filling impeller 24 by the metering impeller 17.
  • the operation of the 3-chamber filling shoe 38 is equal to the 2-chamber filling shoe 9 with respect to the Grewugelrad 24 and the metering impeller 17.
  • the inclusion of the additional Zu2020flugelrades 25 allows an improved supply of material.
  • excellent tableting results can be achieved largely independently of the flow behavior of the press material.
  • the second module assembly 41 comprises an intermediate plate 22, which by means of T-handle screws 13 as in Fig. 6-8 shown on the base module 39 can be installed.
  • the Zu2020erielrad 25 can be taken by means of a plug-in drive shaft 31 in operation.
  • the fastening element 28 allows the bearing and sealing of the drive shaft 31 of the impeller 25.
  • the material inlet 23 is positioned on the intermediate plate 22 such that the powdery material is first supplied to the Zuzhouflugelrad 25 in the middle chamber. As for the Fig. 6-8 explained, this can be achieved by a double Z-stage for the transport of the powdery material, which ensures a uniform filling.
  • Fig. 13 shows a schematic view of a preferred embodiment of the 2-chamber filling shoe 38 from below. As seen there, are on the base plate 14, an adapter 30a for the drive shaft 30 for driving the right metering impeller 17 and an adapter 29a for the drive shaft 29 for the left Gearwugelrad 24 before. Furthermore, in Fig. 13 the sandwich seal 36 and the resilient thrust piece 37 illustrate which prevent powder material from coming out of the area of the filling shoe from the surface of the die plate.
  • Fig. 14 shows a schematic representation of the connection of the 3-chamber filling shoe 38 to the transmission 32 for driving the impellers.
  • the gear 32 is located below the vibration-decoupled support plate 34 of the tablet press and is driven by a servo motor 33.
  • the connection of the transmission 32 with the three impellers is carried out by means of three plug-in drive shafts 29, 30 and 31.
  • a first drive shaft 29 drives the left impeller 24, while a second drive shaft 30, the right Dosierhofflrad 17 and a third drive axle 31, the middle Zurawhofflrad 31 drives.
  • Fig. 15 shows a schematic view of a preferred embodiment of the 3-chamber filling shoe 38 from below. As seen there, are on the base plate 14, an adapter 30a for the drive shaft 30 for driving the right metering impeller 17, an adapter 29a for the drive shaft 29 for the left Gearwugelrad 24 and a third adapter 31a for the drive shaft 31 for driving the center Zuriosflugelrades 25th in front.
  • the material supply takes place in the material inlet for the 2-chamber or 3-chamber filling shoe.
  • the material inlet 11 is in the case of the configuration of the Rowneriel spallschuhs 2-chamber filling shoe 9 in a different position than the material inlet 23 for the 3-chamber filling shoe 38.
  • the position of the outlet pipe 3 is necessary to the position of the respective Adjust material inlet.
  • the outlet pipe 3 is such asymmetrically positioned in the circular mounting flange 1, that the outlet pipe 3 can be pivoted between two positions 7 and 8. In the preferred embodiment shown, the pivot angle is 35 °.
  • the pivoting angle depends on the positioning of the material inlets 11 and 23 in the various module structures 40 and 41.
  • position 7 corresponds to the position of the outlet pipe 3 for the 2-chamber filling shoe 9
  • position 8 corresponds to the position of the outlet pipe 3 for the 3-chamber filling shoe 38.
  • the illustrated embodiment of the material feeder 43 allows for a particularly simple assembly change between the two configurations of the stirring paddle shoe.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)
  • Medical Preparation Storing Or Oral Administration Devices (AREA)
  • Powder Metallurgy (AREA)
  • Mixers Of The Rotary Stirring Type (AREA)
  • Sealing Devices (AREA)
  • Basic Packing Technique (AREA)

Claims (9)

  1. Sabot de remplissage de pale d'agitation pour l'alimentation en matière dans des alésages de matrice d'une presse rotative, caractérisé en ce que
    le sabot de remplissage de pale d'agitation est conçu de façon modulaire pour permettre un changement fonctionnel entre un sabot de remplissage à deux chambres (9) comprenant une roue à ailettes de remplissage (24) et une roue à ailettes de dosage (17) et un sabot de remplissage à trois chambres (38) comprenant une roue à ailettes de remplissage (24), une roue à ailettes de dosage (17) et une roue à ailettes d'alimentation (25), et dans lequel le sabot de remplissage de pale d'agitation ne comprend pas de moteur pour l'entraînement des roues à ailettes,
    dans lequel le sabot de remplissage de pale d'agitation comprend un module de base (39) dans lequel la roue à ailettes de remplissage (24) se trouve dans une première chambre et la roue à ailettes de dosage (17) se trouve dans une deuxième chambre, dans lequel le sabot de remplissage à deux chambres (9) présente une première structure modulaire (40) qui peut être montée sur le module de base (39) et présente une première entrée de matière (11) qui se trouve sur la roue à ailettes de remplissage (24) à l'état monté, et le sabot de remplissage à trois chambres (38) présente une seconde structure modulaire (41) dans laquelle la roue à ailettes d'alimentation (25) se trouve introduite dans une troisième chambre intermédiaire, la seconde structure modulaire (41) peut être montée sur le module de base (39) et présente une seconde entrée de matière (23).
  2. Sabot de remplissage de pale d'agitation selon la revendication précédente,
    caractérisé en ce que
    les roues à ailettes présentent chacune un adaptateur pour le branchement d'un arbre d'entraînement pour une liaison à un moteur externe (32).
  3. Sabot de remplissage de pale d'agitation selon l'une des revendications précédentes,
    caractérisé en ce que
    les composants de montage individuels du sabot de remplissage de pale d'agitation modulaire ne pèsent pas plus de 20 kg, de préférence pas plus de 15 kg.
  4. Sabot de remplissage de pale d'agitation selon l'une des revendications précédentes,
    caractérisé en ce que,
    dans le sabot de remplissage à deux chambres (9), une matière de presse est conduite de la première entrée de matière (11) à l'ouverture de remplissage (26) et aux alésages de matrice dans un niveau Z et, dans le sabot de remplissage à trois chambres (38), une matière de presse est conduite de la seconde entrée de matière (23) à l'ouverture de remplissage (26) et aux alésages de matrice dans deux niveaux Z.
  5. Sabot de remplissage de pale d'agitation selon l'une des revendications précédentes,
    caractérisé en ce que
    le module de base (39) présente une ouverture de remplissage (26) au niveau du côté inférieur, laquelle ouverture est dotée de joints d'étanchéité en sandwich (36) élastiquement interchangeables des deux côtés et/ou
    le sabot de remplissage de pale d'agitation présente un élément de pression (37) élastique à l'extrémité de l'ouverture de remplissage (26) le long de la rotation pour réduire une perte de matière.
  6. Sabot de remplissage de pale d'agitation selon l'une des revendications précédentes,
    caractérisé en ce que
    les composants du sabot de remplissage de pale d'agitation comprennent des matières qui sont choisies de préférence dans le groupe comprenant l'acier inoxydable, l'aluminium et/ou le plastique.
  7. Presse rotative comprenant un sabot de remplissage de pale d'agitation selon l'une des revendications précédentes 1 à 6,
    caractérisée en ce que
    la presse rotative présente un moteur (32) pour l'entraînement des roues à ailettes, lequel moteur se trouve à l'extérieur du sabot de remplissage de pale d'agitation et les roues à ailettes peuvent être reliées au moteur (32) à l'aide d'arbres d'entraînement pouvant être branchés.
  8. Presse rotative selon la revendication précédente,
    caractérisée en ce que
    le moteur (32) pour l'entraînement des roues à ailettes se trouve en-dessous du sabot de remplissage de pale d'agitation, de préférence au niveau du côté inférieur d'une plaque de support isolée des vibrations (34) de la presse rotative.
  9. Presse rotative selon la revendication 7 ou 8,
    caractérisée en ce que
    la presse rotative présente, dans un embout au-dessus du sabot de remplissage, un dispositif d'alimentation en matière (43) comprenant un tuyau de sortie (3), le tuyau de sortie (3) étant réglable dans au moins deux positions, de sorte que, dans le cas d'un sabot de remplissage à deux chambres (9), le tuyau de sortie (3) se trouve dans une première position (7) au-dessus de la première entrée de matière (11) du sabot de remplissage à deux chambres (9) et,
    dans le cas d'un sabot de remplissage à trois chambres (28), le tuyau de sortie (3) se trouve dans une seconde position (8) au-dessus de la seconde entrée de matière (23) du sabot de remplissage à trois chambres (38).
EP17172619.3A 2017-05-24 2017-05-24 Sabot de remplissage pour une presse rotative Active EP3406436B1 (fr)

Priority Applications (8)

Application Number Priority Date Filing Date Title
PL17172619T PL3406436T3 (pl) 2017-05-24 2017-05-24 Modułowy podajnik zasypowy dla prasy rotacyjnej
ES17172619T ES2752198T3 (es) 2017-05-24 2017-05-24 Zapata de llenado modular para una prensa rotativa
EP17172619.3A EP3406436B1 (fr) 2017-05-24 2017-05-24 Sabot de remplissage pour une presse rotative
US16/615,472 US11504934B2 (en) 2017-05-24 2018-05-24 Modular filling shoe for a rotary press
CN201880034618.6A CN110662647B (zh) 2017-05-24 2018-05-24 用于旋转压片机的模块化填料靴
JP2019564139A JP7022444B2 (ja) 2017-05-24 2018-05-24 ロータリプレス用のモジュール式充填シュー
KR1020197037527A KR102420747B1 (ko) 2017-05-24 2018-05-24 회전식 프레스용 모듈식 충전 슈
PCT/EP2018/063653 WO2018215594A1 (fr) 2017-05-24 2018-05-24 Sabot de remplissage modulaire pour une presse rotative et son utilisation

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP17172619.3A EP3406436B1 (fr) 2017-05-24 2017-05-24 Sabot de remplissage pour une presse rotative

Publications (2)

Publication Number Publication Date
EP3406436A1 EP3406436A1 (fr) 2018-11-28
EP3406436B1 true EP3406436B1 (fr) 2019-08-07

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Application Number Title Priority Date Filing Date
EP17172619.3A Active EP3406436B1 (fr) 2017-05-24 2017-05-24 Sabot de remplissage pour une presse rotative

Country Status (8)

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US (1) US11504934B2 (fr)
EP (1) EP3406436B1 (fr)
JP (1) JP7022444B2 (fr)
KR (1) KR102420747B1 (fr)
CN (1) CN110662647B (fr)
ES (1) ES2752198T3 (fr)
PL (1) PL3406436T3 (fr)
WO (1) WO2018215594A1 (fr)

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Publication number Priority date Publication date Assignee Title
KR101490866B1 (ko) * 2012-12-20 2015-02-09 주식회사 온그린텍 농지전용 피복지 포설 및 건수답 씨앗직파 기계장치
KR101442965B1 (ko) 2013-03-15 2014-09-22 권옥 자동화 기능을 갖는 씨앗필름 포설장치 및 그 포설장치를 이용한 씨앗필름 포설방법
CN110920128B (zh) * 2019-12-16 2021-08-24 湖北工业大学 一种粉末高速压片机
US11733178B2 (en) * 2020-02-21 2023-08-22 Applied Materials, Inc. Method and system for inspection of products
DE102020127990A1 (de) 2020-10-23 2022-04-28 Syntegon Technology Gmbh Fülleinheit für eine Rundlaufpresse und ein Verfahren zur Bereitstellung einer optimierten Rundlaufpresse
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EP3406436A1 (fr) 2018-11-28
JP7022444B2 (ja) 2022-02-18
JP2020520809A (ja) 2020-07-16
KR102420747B1 (ko) 2022-07-13
ES2752198T3 (es) 2020-04-03
US20210170710A1 (en) 2021-06-10
US11504934B2 (en) 2022-11-22
CN110662647B (zh) 2021-10-26
CN110662647A (zh) 2020-01-07
WO2018215594A1 (fr) 2018-11-29
PL3406436T3 (pl) 2020-03-31
KR20200012903A (ko) 2020-02-05

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