EP2465813B1 - Répartiteur rotatif de fluide - Google Patents

Répartiteur rotatif de fluide Download PDF

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Publication number
EP2465813B1
EP2465813B1 EP20110190534 EP11190534A EP2465813B1 EP 2465813 B1 EP2465813 B1 EP 2465813B1 EP 20110190534 EP20110190534 EP 20110190534 EP 11190534 A EP11190534 A EP 11190534A EP 2465813 B1 EP2465813 B1 EP 2465813B1
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EP
European Patent Office
Prior art keywords
disc
holes
fluid distributor
rotary fluid
media
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Active
Application number
EP20110190534
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German (de)
English (en)
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EP2465813A1 (fr
Inventor
Franz Braun
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Krones AG
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Krones AG
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Priority to SI201130481T priority Critical patent/SI2465813T1/sl
Publication of EP2465813A1 publication Critical patent/EP2465813A1/fr
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B67OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
    • B67CCLEANING, FILLING WITH LIQUIDS OR SEMILIQUIDS, OR EMPTYING, OF BOTTLES, JARS, CANS, CASKS, BARRELS, OR SIMILAR CONTAINERS, NOT OTHERWISE PROVIDED FOR; FUNNELS
    • B67C3/00Bottling liquids or semiliquids; Filling jars or cans with liquids or semiliquids using bottling or like apparatus; Filling casks or barrels with liquids or semiliquids
    • B67C3/02Bottling liquids or semiliquids; Filling jars or cans with liquids or semiliquids using bottling or like apparatus
    • B67C3/22Details

Definitions

  • the invention relates to a fluid rotary distributor for distributing one or more liquid and / or gaseous media according to the preamble of patent claim 1 and as from EP 1 129 794 known.
  • Rotary distributors for distributing media, in particular machines for treating vessels, in particular bottles, are known in the prior art.
  • the DE 296 20 323 U1 shows a rotary distributor for rotary container filling machines with a stationary and a rotating element. Between the two elements flow a plurality of fluids which are separated from each other by means of sealing gaskets to the outside, each having two adjacent sealing rings, wherein between adjacent sealing rings an annular chamber is formed with an inlet and an outlet for a cleaning liquid, in particular via a line with a Control valve a cleaning process can be controlled.
  • the US 2008/0087222 A1 shows a rotary pressure distributor for carousel-like treatment machines with a plurality of identical treatment stations.
  • the pressure distributor has a stationary and a rotating disk. The tightness between the two superimposed discs is ensured by sealing grease, wherein the sealing grease is fed from an annular channel in the stationary disc.
  • the two superimposed discs are moved relative to each other. In the case of maintenance or conversion, one or both discs must be completely replaced. In addition, the use of sealing grease may not be desirable in the treatment of containers such as beverage containers.
  • the invention provides a fluid rotary distributor for distributing one or more liquid and / or gaseous media having two disks arranged with respect to a common center axis, the first disk having a plurality of bores and a first sealing surface and the second disk having a plurality of holes, such as Long holes and provided with a second sealing surface, wherein the first disc relative to the second disc is rotatable / rotatable formed such that by rotation of the first disc each of the holes can be covered with at least one bore, wherein the sealing surfaces of the first disc and the second Disk are pressed against each other, wherein the second disc comprises at least two separate nested annular discs having a common center, each annular disc having at least one of the holes.
  • the first disk which may be, for example, the upper disk, may thus be rotatable with respect to a common center axis of the two disks.
  • the annular discs of the second disc are annular discs, so flat rings that can lie inside each other.
  • different holes, in particular slots with different diameters, in particular lengths, so arc lengths can be provided.
  • the separate, nested annular discs are typically in a plane. Different pitch areas can be provided with each ring. The angle ranges or pitch circle areas can be predefined.
  • the two disks are typically arranged coaxially with each other.
  • the first disk bores typically include a series of a plurality of bores which may be disposed on concentric circles with respect to the center of the disk.
  • the holes of the second disc are formed, for example, corresponding to the holes of the first disc or vice versa, the holes of the first disc with respect to the holes of the second disc.
  • the surfaces of the discs are used, for example, as contact surfaces or sealing surfaces, wherein in each case mutually arranged surfaces of the first and second discs are pressed against each other.
  • the sealing surfaces have the advantage that a sliding seal is provided which requires no lubricant. That is, there are, for example, no additional seals and no tools for the production of tightness between the first and second disc, especially in the vicinity of the holes and the holes such as slots needed when they come one above the other. Only means for pressing the discs against each other can be provided.
  • each of the annular discs may have a sealing surface.
  • the holes are formed, for example, at least along the surface of the annular discs and do not go through the annular discs, so the disc surface through.
  • the holes, especially elongated holes are typically thinner than the width of the rings. Where no holes are formed, the surfaces of the respective annular disc can form a sealing surface, so that the sealing properties of the sliding seal, as described above, can be preserved.
  • the second disc may be formed such that each of the annular discs is pressed against the first disc with a specific contact pressure, wherein at least one contact force for one annular disc differs from the remaining contact forces for the remaining annular discs. Accordingly, there is the advantage that different contact pressures for different annular discs can be made available, for example, when different media to be passed through different annular discs or provided by these. It is thus possible to select different degrees of contact pressure, in particular depending on the media and their properties.
  • the different annular discs can also be made of different materials, such as coal, carbide, (stainless) steel, plastics. Accordingly, an even better seal in the area of the sealing surfaces can be provided and a type of material can be used according to the different wear phenomena by the contact forces. When using a single second disc wear and thus the maintenance interval for the entire second disc would depend on the highest required contact pressure.
  • annular discs of the fluid rotary distributor described above may be individually interchangeable.
  • the annular discs can therefore be separated individually from the device. This results on the one hand in a great flexibility with regard to the provision of different angular ranges in different applications and furthermore there are great advantages with regard to the maintenance of the discs.
  • individual rings can be replaced and replaced if necessary, which can significantly reduce the maintenance time.
  • Adjacent, nested annular discs may overlap, so for example, with their edges rest on each other. It is also possible that the nested annular discs do not overlap, so there is a gap between two adjacent, nested annular discs.
  • the holes are formed, for example, in the circumferential direction of the annular discs.
  • the holes are, for example, especially as Elongated holes formed.
  • the holes are thus similar to the holes of the first disc on concentric circles with respect to the center of the discs, according to the required geometric requirements of the device.
  • the holes may further include supply holes or supply channels.
  • the feed bores may lead from the underside of the second disc to the holes.
  • the feed bores may be configured to deliver one or more media to the holes.
  • the feed bores are, for example, at least partially parallel to the central axis of the disk, that is to say essentially perpendicular to the diameter thereof.
  • the feed bores supply the holes to the media at at least one location of the hole.
  • a plurality of feed bores for supplying a hole, in particular a long hole may also be possible. Accordingly, the media pass through the feed hole in the holes and can be transferred from there into the rotating disk. Typically, the media are in the holes.
  • the media can pass through the holes from the holes in the holes. This can happen, in particular, if the bores of the first disc are brought into suitable coincidence with the holes of the second disc. By means of a slight overpressure, the media can then get into the holes. It can be dispensed with control of the media supply by means of valves. In addition, however, a further control of the media supply can be provided with valves. Both types of control can be combined appropriately.
  • the fluid rotary distributor as described above may further comprise a channel, such as a drain or leakage channel, between at least one respective pair of immediately adjacent annular disks.
  • the channel can be designed to remove any leaking media. If, for example, during a long period of use or wear such as wear of the sealing surfaces but media leak, so these media can drain through the channel in the intermediate region between the rings of the annular discs. From there they can drain properly and / or be collected by a collecting device. In this case, detection of occurring leakage is advantageously also possible, for example, by observation by the operator personnel or else automatically by suitable sensors.
  • the annular discs of the fluid rotary distributor described above may have a widening in the region of the sealing surfaces, partially perpendicular to the direction of rotation, so that a wider sealing surface is provided.
  • a wider sealing surface is provided.
  • an even larger sealing surface for pressing be provided between the annular discs of the second disc and the first disc. In this case, an even better tightness can be achieved.
  • the annular discs in the region of the holes may have a drip device, which is designed to dissipate any leaking media laterally and thus let the drain or leakage channel dripping or draining into the channel, whereby the dripping can be further facilitated.
  • the second disc of the fluid rotary distributor as described above may further comprise a carrier disc which is adapted to support the annular discs.
  • the carrier disk may in particular comprise receiving devices, such as receiving grooves.
  • the washers can be inserted into the grooves.
  • In the carrier disk in particular in the receiving grooves of the carrier disk pin holes can be provided.
  • On the annular discs may be provided on the underside of pins. The annular discs can be inserted by means of the pins in the receiving grooves of the carrier disc. As a result, the annular discs can be secured against rotation. Furthermore, the annular discs can be fixed by the grooves in their position.
  • the carrier disk may comprise pressing or pressing devices such as spring devices, magnetic mating, hydraulic / pneumatic systems or elastic bearings. By means of these pressing or pressing devices, the annular discs can be pressed against the upper disc.
  • a treatment device such as a filler, rinser or injector for treating containers such as bottles can be provided with an inlet star, an outlet star and a treatment star with a treatment area
  • the treatment star of the treatment device comprises a fluid rotary distributor as described above
  • the treatment area is adapted to supply the media provided by the apparatus, which are distributed via the fluid rotary distributor, to the containers to be treated in accordance with the arc length of the holes.
  • the treatment area may in particular comprise a pitch or circle segment in which the media are provided for treatment in accordance with the lengths of the holes provided by the annular discs on one or more concentric circles.
  • a treatment carousel may also be provided for treating bottles with a treatment device as described above, wherein such a treatment carousel may typically be significantly larger than the inlet and outlet stars. Accordingly, a method for distributing fluids by means of a fluid rotary distributor, in particular with regard to treatment devices as described above.
  • the FIG. 1 shows two discs of a fluid rotary distributor, in particular a first disc 10 and a second disc 20.
  • the first disc 10 has a plurality of bores 11 and 12.
  • the holes 11 may be arranged in a row approximately circular. The distance of the bore 11 may be uniform. Accordingly, the holes of the row 12 can be arranged in a circle. Both rows of holes 11 and 12 may be arranged concentrically with respect to the center of the disc 10.
  • the disc is circular, for example.
  • the bores 11 and 12 are at least partially bored through the disc 10. Each of the bores may provide for receiving fluids, for example at the bottom of the disc, as well as delivering fluids to, for example, the top of the disc in accordance with the applications.
  • the disk 10 may comprise a suitable center or center hole, not shown here, which may be configured to be driven by a drive shaft, see below.
  • the diameter of the second disc is approximately equal to that of the first disc.
  • the second disc 20 includes a plurality of annular discs, in this example, two annular discs 21 and 22 are shown.
  • the annular discs 21 and 22 are formed separately.
  • the outer diameter of the outer disc or, in the case of more than two discs, the outermost disc approximately corresponds to the diameter of the disc 10.
  • Each of the annular discs 21 and 22 has holes 23 and 24 which are formed as slots. In this case, other hole shapes or hole geometries are possible.
  • two holes 11 and 12 corresponding to the bores 11 and 12 of the disk 10 are also shown, which at least partially cover the elongated holes of the annular disks, that is to say the annular regions 21 and 22.
  • the elongated holes 23 and 24 are at least partially overlapping radially outward, wherein an arrangement is also possible in which the slots do not overlap radially. If the two discs 10 and 20 with respect to a common central axis, so set coaxially to one another, the contact surfaces, ie the underside of the disc 10 shown and the top of the disc 20 shown correspond to the sealing surfaces with which the first disc 10 and the second disc 20th pressed against each other or to each other.
  • FIG. 2 shows in a section of the pressed discs 10 and 20 from FIG. 1 ,
  • sealing surfaces or sealing regions 27 are shown by way of example for the inner annular disk and, for example, for the outer annular disk.
  • the slots 23 and 24 have in this example a cross section so diameter in the radial direction with the disc, which is slightly larger than the corresponding diameter of the bore 11 and 12 of the disc 10 shown by way of example. This allows the transfer of the medium from the slots 23rd and 24 to the holes 11 and 12 are facilitated.
  • FIG. 2 Feed bores, feed holes or feed channels 25 and 26.
  • the feed bores 25 and 26 of the first and second annular disks shown by way of example are drilled vertically from below to the oblong holes in this example.
  • the feed holes or feed holes allow the media to be fed, with each medium being able to be added separately.
  • the region 29 between the two annular disks, ie the disc-shaped rings, is not further occupied in this example. Further, the inner portion 31 of the inner ring 21 is shown. Contact forces for pressing the annular discs 21 and 22, which may be individually different, can be provided from below by a suitable power transmission, not shown here.
  • the upper disc 10 can thus be rotatably mounted relative to the lower disc 20 rotatable. In this case, this disc can rotate about a fixed axis 30 or a suitable shaft 30 or driven by the shaft 30.
  • FIG. 3 shows a plan view of the disc 20 from FIGS. 2 and 1 , A column with the drive shaft 30 will in particular pass from below through the disc 20 to the corresponding To drive from above attached disc 10.
  • two elongated holes are again shown, one per annular disc 21 and 22, respectively.
  • the elongated holes 23 and 24 have long-slot ends 23E and 24E. These ends can be suitably rounded. The rounding of the ends can correspond approximately to the radii of the bores 11 and 12.
  • the holes 11 and 12 are exemplary in FIG. 3 shown.
  • FIG. 3 further shows an inner radius 21 R1 and an outer radius 21 R2 of the annular disc 21. This results in a ring diameter as the difference between the two radii.
  • inner radius 22R1 and outer radius 22R2 are shown for the outer ring 22 shown here.
  • the ring diameter, ie the width of the outer ring 22 need not be equal to the ring diameter, ie the width of the inner ring 21.
  • FIG. 4 shows a further development similar to the FIG. 2 ,
  • annular discs of the second disc 20 are similar to FIG. 1 shown.
  • the second disc is pressed against the first disc 10, the disc 10 from the FIGS. 1 to 3 equivalent.
  • a broadening of the sealing surface ie a larger ring diameter in the region of the sealing contact with the disk 10 is shown for the inner annular disk 21.
  • This widening area is designated by the reference numerals 32 and 33 inside or outside. It can be provided by the areas 32, 33 in the radial direction an additional sealing surface.
  • FIG. 4 shows the widening region perpendicular to the disc thinner than the thickness of the remaining, inner annular disc 21, so there in particular only a small contribution of material needs to be used in addition.
  • a drip area may also be provided.
  • This can be outgoing media, which can occur, for example, after a long use of the rotary distributor in a corresponding device, the drain or leakage channel 34 perform. It is also possible to run without the extra trained drip alone by means of the drain or leakage channel exiting, so excess medium. Leaking media, especially liquids can drain down or drip down by gravity and be absorbed by a catcher. In particular, in the case of a rotary distributor with more than two rings, a medium can thus run off in the immediate vicinity of a possible outlet so that no mixing of media can take place in the area of the rotary distributor.
  • FIG. 5 shows an application of the fluid rotary distributor in the context of a treatment device for about fillers, rinsers or injectors as they are used for treating about bottles.
  • An inlet star 40 and an outlet star 60 with corresponding rotation 41 respectively 61 as shown have a treatment star 50 with a sense of rotation 51 between them.
  • the treatment star for example, below the treatment star, not shown here, include a fluid rotary distributor as described in the previous embodiments.
  • one or more media can be supplied to containers to be treated in a treatment area 55, here shown hatched, wherein the angular ranges in which the media are added to the containers correspond to the arc lengths of the elongated holes.
  • Container supply and removal point can be defined as the points at which the containers are transferred from the inlet star 40 to the treatment star 50 or from the treatment star 50 to the outlet star 60.
  • the treatment star 50 can also be replaced by a treatment carousel, not shown here, by running bottles over an inlet star, for example suitably turned over and then treated in a treatment area, then turned back and guided away again from the treatment carousel with the outlet star ,
  • FIG. 6 shows in a further development, a fluid rotary distributor with two discs 90 and 100, wherein different media 70 and 71 are supplied.
  • the media 70 and 71 are supplied by means of media channels 72 and 73, respectively.
  • the feeding of the media by means of media channels 72 and 73 is done in this embodiment in different angular ranges.
  • Corresponding slots in the disc 90 are shown.
  • the holes 91 and 92, which are formed as slots, are shown in different angular ranges of the annular discs. Other hole shapes or hole geometries of the holes 91 and 92 are also possible.
  • the upper rotatable disc 100 is driven by a shaft or fixed axle 110. Suitable holes or holes 102 and 103 receive the supplied media.
  • the holes 102 and 103 correspond to the slots 91 and 92. Above the holes / openings 102 and 103 contact devices 101 are shown.
  • the contact device 101 connect transport hoses 82 and 83 with the holes.
  • the transport hoses 82 and 83 By means of the transport hoses 82 and 83, the media can be transported according to the transport directions 80 and 81 to the outside to different, often identical treatment stations.
  • the transport direction for media is of course not limited to the transport directions 80, 81 shown.
  • the transport direction in the media-carrying paths may also be directed opposite to the transport directions 80, 81.
  • the annular discs may have horizontal spacing between the rings of about 40-50 mm, although other distances are possible.
  • the diameter, so the ring width of the rings may be about 50 mm, here also other ring widths may be possible.
  • the annular discs of the previous embodiments for example, on a further, lower disc, so a carrier disc 150, rest.
  • the carrier disk 150 is therefore a component of the lower disk and serves to receive the annular disks.
  • the annular discs can be inserted or inserted on the carrier disk 150.
  • FIG. 7A shows a circular support plate 150 with example two receiving grooves, in particular an outer receiving groove 152 and an inner receiving groove 154.
  • This lower disc 150 can thus record the two annular discs and introduced into the lower disc 150, for example, milled grooves 152 and 154.
  • the annular discs can be held by means of pins in the carrier disc 150, which may be mounted approximately at the bottom of the annular discs from the previous embodiments.
  • FIG. 7A shows four picking holes 156 per picking groove for picking up pins, for example.
  • the annular discs used in the grooves can also have seals such as elastomer seals. With the aid of these seals, not shown here, the annular discs against the carrier plate, in particular in the region of the grooves 152 and 154 sealed and stored. In the FIGS.
  • FIG. 7A and 7B not shown are the feed holes 25, 26th FIG. 7A shows intermediate areas 151, 153 and 157 of the carrier disk. Further shows FIG. 7A a column 158. The column 158 passes through the carrier disc and the stationary disc, such as in FIG FIG. 6 shown, and may be an upper, rotating disc, not shown here, such as in FIG. 6 and Figures 1 and 2 shown, drive / turn.
  • FIG. 7B shows a section through the support plate 150 of FIG. 7A , The grooves 152 and 154 are shown.
  • the intermediate regions 151, 153 and 157 are in the examples in FIGS. 7A and 7B continuously, so essentially represented in one piece. It is understood, however, that in these areas drip channels or leakage channels as based on FIG. 4 discussed, can be provided.
  • FIGS. 7A and 7B Not shown washers are inserted into the grooves, they can by suitable pressure mechanisms, for example spring assemblies, not shown here, from below against the upper disc, see FIG. 6 , be

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  • Multiple-Way Valves (AREA)
  • Mixers Of The Rotary Stirring Type (AREA)

Claims (14)

  1. Distributeur rotatif de fluide pour assurer la distribution d'un ou de plusieurs agents liquides et/ou gazeux, comprenant deux disques (10, 20) agencés par rapport à un axe central commun ; distributeur dans lequel le premier disque (10) est pourvu de plusieurs perçages (11, 12) et d'une première surface d'étanchéité, et
    le deuxième disque (20) est pourvu de plusieurs trous (23, 24), comme par exemple des trous oblongs, et d'une deuxième surface d'étanchéité (27, 28), et
    dans lequel le premier disque (10) est réalisé de manière à pouvoir tourner par rapport au deuxième disque (20) de façon telle, que par rotation chacun des trous (23, 24) puisse être en recouvrement avec au moins un perçage (11, 12) ;
    dans lequel les surfaces d'étanchéité (27, 28) du premier disque et du deuxième disque sont pressées les unes contre les autres ;
    caractérisé en ce que
    le deuxième disque (20) comprend au moins deux disques annulaires séparés (21, 22), agencés l'un dans l'autre et possédant un centre commun, chacun des disques annulaires (21, 22) présentant au moins l'un des trous (23, 24).
  2. Distributeur rotatif de fluide selon la revendication 1, dans lequel chacun des disques annulaires (21, 22) possède une surface d'étanchéité (27, 28) .
  3. Distributeur rotatif de fluide selon la revendication 2, dans lequel le deuxième disque (20) est configuré de manière à ce que chacun des disques annulaires (21, 22) soit pressé avec une force de pression d'application contre le premier disque (10), au moins une force de pression d'application pour un disque annulaire se différenciant des autres forces de pression d'application pour les autres disques annulaires.
  4. Distributeur rotatif de fluide selon les revendications 1 - 3, dans lequel les disques annulaires (10, 20) peuvent être échangés de manière individuelle.
  5. Distributeur rotatif de fluide selon les revendications 1 ou 4, dans lequel les trous (23, 24) sont réalisés dans la direction périphérique des disques annulaires.
  6. Distributeur rotatif de fluide selon les revendications 1 à 5, dans lequel les trous (23, 24) présentent par ailleurs des alésages d'amenée (25, 26), qui mènent du côté inférieur du deuxième disque aux trous (23, 24), et qui sont configurés pour amener ledit un ou lesdits plusieurs agents fluides, aux trous (23, 24).
  7. Distributeur rotatif de fluide selon les revendications 1 - 6, dans lequel lesdits agents fluides sont en attente dans les trous (23, 24).
  8. Distributeur rotatif de fluide selon la revendication 7, dans lequel lesdits agents fluides parviennent des trous (23, 24) dans les perçages (11, 12), par surpression.
  9. Distributeur rotatif de fluide selon les revendications 1 - 8, dans lequel le deuxième disque (20) présente au moins entre à chaque fois une paire de disques annulaires (10, 20), un canal (34), comme par exemple un canal d'écoulement ou canal de fuite, le canal (34) étant conçu pour évacuer des agents fluides qui s'échappent.
  10. Distributeur rotatif de fluide selon la revendication 9, dans lequel les disques annulaires (21, 22) présentent, en partie perpendiculairement à la direction périphérique, un élargissement (32, 33), de manière à former une surface d'étanchéité plus large.
  11. Distributeur rotatif de fluide selon la revendication 9 ou la revendication 10, dans lequel les disques annulaires (21, 22) présentent, dans la zone des trous (23, 24), un dispositif d'égouttage, qui est conçu pour laisser égoutter, dans le canal (34), des agents fluides, qui s'échappent.
  12. Distributeur rotatif de fluide selon les revendications 1 - 11, dans lequel le deuxième disque (20) comprend, par ailleurs, un disque de support (150), qui est conçu pour assurer le maintien des disques annulaires (21, 22).
  13. Dispositif de traitement, comme par exemple un dispositif de remplissage, un dispositif de rinçage ou un injecteur, pour traiter des récipients ou, contenants comme par exemple des bouteilles, comprenant une roue-étoile d'entrée (40 ;
    une roue-étoile de sortie (60) ;
    une roue-étoile de traitement (50) comprenant une zone de traitement (55) ;
    caractérisé en ce que
    la roue-étoile de traitement (50) comprend un distributeur rotatif de fluide selon l'une au moins des revendications 1 - 12,
    la zone de traitement (55) étant conçue pour amener les agents fluides fournis par ledit dispositif, aux récipients ou contenants à traiter, conformément à la longueur d'arc des trous.
  14. Machine rotative ou carrousel de traitement pour traiter des bouteilles à l'aide d'un dispositif de traitement selon la revendication 13.
EP20110190534 2010-12-15 2011-11-24 Répartiteur rotatif de fluide Active EP2465813B1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
SI201130481T SI2465813T1 (sl) 2010-12-15 2011-11-24 Vrtljivi razdelilnik za tekoäśino

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE102010063144A DE102010063144A1 (de) 2010-12-15 2010-12-15 Fluiddrehverteiler

Publications (2)

Publication Number Publication Date
EP2465813A1 EP2465813A1 (fr) 2012-06-20
EP2465813B1 true EP2465813B1 (fr) 2015-03-11

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EP20110190534 Active EP2465813B1 (fr) 2010-12-15 2011-11-24 Répartiteur rotatif de fluide

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EP (1) EP2465813B1 (fr)
CN (1) CN102537417B (fr)
DE (1) DE102010063144A1 (fr)
SI (1) SI2465813T1 (fr)

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CN103357636A (zh) * 2013-07-29 2013-10-23 浙江省机电设计研究院有限公司 配流式多介清洗机的平面配流清洗结构
CN103432926A (zh) * 2013-08-30 2013-12-11 南京威安新材料科技有限公司 方便清洗的乳化机
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EP3140574B1 (fr) * 2014-05-06 2018-02-28 GIMA S.p.A. Distributeur rotatif
ITUB20160335A1 (it) * 2016-02-04 2017-08-04 Gima Spa Apparato di manipolazione e relativa macchina.
CN106763901A (zh) * 2017-01-04 2017-05-31 天津长荣印刷设备股份有限公司 分流器和包括其的胶丸制作系统
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FR3109420B1 (fr) * 2020-04-15 2022-08-26 Serac Group Canalisation et installation de remplissage de récipients comprenant une telle canalisation
CN112973822B (zh) * 2021-03-19 2022-09-16 陇东学院 一种蛋白质分离纯化装置与纯化方法
CN114570729B (zh) * 2022-03-16 2023-03-28 广州达意隆包装机械股份有限公司 洗瓶分配器及洗瓶机

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CN102537417A (zh) 2012-07-04
CN102537417B (zh) 2016-01-20
EP2465813A1 (fr) 2012-06-20
SI2465813T1 (sl) 2015-06-30

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