EP2180102B1 - Régulateur de débit - Google Patents

Régulateur de débit Download PDF

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Publication number
EP2180102B1
EP2180102B1 EP09013078.2A EP09013078A EP2180102B1 EP 2180102 B1 EP2180102 B1 EP 2180102B1 EP 09013078 A EP09013078 A EP 09013078A EP 2180102 B1 EP2180102 B1 EP 2180102B1
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EP
European Patent Office
Prior art keywords
flow
pins
housing
flow regulator
jet
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
EP09013078.2A
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German (de)
English (en)
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EP2180102A2 (fr
EP2180102A3 (fr
Inventor
Georg STÄDTLER
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Neoperl GmbH
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Neoperl GmbH
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Publication of EP2180102A2 publication Critical patent/EP2180102A2/fr
Publication of EP2180102A3 publication Critical patent/EP2180102A3/fr
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Publication of EP2180102B1 publication Critical patent/EP2180102B1/fr
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    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03CDOMESTIC PLUMBING INSTALLATIONS FOR FRESH WATER OR WASTE WATER; SINKS
    • E03C1/00Domestic plumbing installations for fresh water or waste water; Sinks
    • E03C1/02Plumbing installations for fresh water
    • E03C1/08Jet regulators or jet guides, e.g. anti-splash devices

Definitions

  • the invention relates to a jet regulator with a jet regulator housing, which has in its housing interior a jet disintegrating device with a plurality of flow holes for breaking the incoming water flow into a corresponding number of individual jets and at least one spaced apart in the flow direction grid and / or network structure, wherein in the between the jet disintegrating device (3) and the adjacent grid and / or network structure arranged housing part region a plurality of oriented in the flow direction and spaced pins are provided, which pins are arranged laterally outside of the flow direction oriented projection of the flow holes.
  • Jet regulators which are to form a homogeneous, non-splashing and optionally also bead-soft water jet from the effluent from a sanitary outlet fitting water, are already known in various designs.
  • Such jet regulators regularly have a designed as Einsetzpatrone and usable in the water outlet of a sanitary outlet fitting jet regulator housing, in its housing interior a has arranged on the inflow side and, for example, designed as a perforated plate jet disintegrator and at least one downstream in the flow direction grid or network structure.
  • This at least one lattice or network structure which may be a metal mesh, or may also be formed as a plastic lattice, can serve as a beam regulating device which mixes air coming from the jet separator with individual air streams.
  • at least one grate or network structure arranged downstream of the jet splitter can also be designed as a flow straightener which has to uniform the water jet emerging from the water outlet.
  • a jet regulator which has a jet decomposing device and a downstream in the flow direction Strahlregulier observed between a water inlet opening and a water outlet opening of its jet regulator housing.
  • the designed as a perforated plate and a number of flow holes having jet decomposing device is arranged downstream of an insert, which has an annular wall which is connected via a plurality of radial webs with a central body.
  • an annular channel is provided in each case.
  • the annular wall carries in a step-shaped portion a plurality of pins, which are arranged there in three concentric circles. Another concentric circle of pins is provided on the central body of the insert.
  • the pins point with their conically tapered pin ends in the direction of the jet disintegrating device and are irradiated by one of each of the jet disintegrating individual jets in such a way that the pin ends each have a Abweisschräge for form the individual flow jets coming from the throughflow holes of the jet disintegrating device.
  • the provided in the prior art jet regulator pins thus have a priority jet-forming effect on the water flowing through and are intended to serve as a flow obstacles to the deflected by them individual beams for deceleration, splitting and air mixing of these water jets.
  • a jet regulator which carries on the downstream side serving as a jet disintegrating perforated plate and in the region of the water outlet opening of the jet regulator housing concentric annular walls, which lead the water flowing through it in ring channels.
  • pyramid-shaped projections are formed on the inflow side of the provided in the region of the water outlet opening ring walls, which also decelerate the coming of the jet disintegrating single rays, split and thereby mix with air.
  • a generic aerator with a round in cross-section aerator housing is already known, in the housing interior a jet decomposing device is provided with a plurality of flow holes for decomposing the inflowing water flow in a corresponding number of individual jets. At least one insert part downstream of the jet decomposition device has a grid or network structure which is formed from radial concentric grid bars and thus intersecting at crossing nodes.
  • This grid or network structure of the insert part has at its, irradiated by the coming of the beam decomposing device individual beams Junction node on an inflow-side depression of the grid on, such that the arranged between adjacent crossing nodes portions of the grid or network structure appear as flow-oriented and spaced-apart pins. Since the individual beams coming from the jet disintegrating device are aligned with the crossing nodes of the grid or network structure provided in the insert part, their partial regions appearing as pins are arranged outside the flow-oriented projection of the throughflow holes.
  • the jet regulator housing has a non-circular housing cross-section with a larger compared to the housing depth housing width, that a plurality of rows of parallel pins are provided, and that the pins are substantially over the distance extend between the jet disintegrating device and the adjacent grid and / or network structure and are each provided as an evaporation surface wettable by the water flowing through the jet regulator housing and being arranged outside the area irradiated directly by the individual jets.
  • the jet regulator according to the invention has a plurality of pins, which are oriented in the direction of flow and spaced apart from one another, in the housing partial region arranged between the jet decomposing device and the adjacent grid and / or net structure and which extend over the distance between the jet decomposing device and the adjacent grid element. or network structure. It is meant by “pin” each, oriented approximately axially parallel to the flow direction projection, for example, a square or a rectangular or otherwise have elongated cross-section or may be formed as a wall section.
  • the pins do not significantly influence the flow of water through, but only after an interruption of the water flow to form an wettable by the flowing water evaporation surface, the pins are arranged laterally outside of the oriented in the flow direction projection of the flow holes of the jet disintegration device.
  • This arrangement of the pins in the housing interior of the jet regulator housing has the consequence that the pins are not directly illuminated by the individual jets, but serve only as a non-jet-forming acting evaporation surface outside of the irradiated by the individual beams portion.
  • the jet regulator housing of the jet regulator according to the invention has a non-circular housing cross-section with a greater housing width compared to the housing depth, since several rows of parallel pins are provided therein and since the pins extend substantially over the distance between the jet disintegrating device and the adjacent grid and / or network structure , the pins can form a significant and correspondingly effective evaporation surface. These relatively long and flowed around by flowing water pins or webs are occupied even after closing the water valve with an enveloping water film, which leads to increased humidity and thus lower evaporation inside the housing of the jet regulator.
  • Evaporation-related calcification must be prevented especially in the small Zerlegerbohronne the inflow upstream Strahlzerleger adopted because otherwise a poor jet pattern and insufficient ventilation of the water jet flowing through the result.
  • the water pressure acting on such jet regulators is not sufficient to scavenge these small drill holes from such calcifications and to break through such calcifications.
  • the pins provided according to the invention now form an evaporation surface which prevents evaporation-related calcification in the region of the small drill holes of the jet-splitting device arranged upstream of the flow direction.
  • the jet regulator according to the invention is characterized by a high reliability even over a longer period of time.
  • the pins provided in the jet regulator according to the invention do not develop a predominantly beam-forming function, it is expedient if individual beams coming from the jet-splitting device irradiate a respective intersection node of the webs of the grating and / or network structure intersecting at intersection nodes directly and, if this is oriented in the direction of flow Projection of at least more than half of the flow holes is each aligned with a crossing node.
  • the ratio of the height h of the pins to the diagonal d, in particular at the foot of the pins is greater than 1.5, preferably greater than 2.0 and in particular greater than 2.5 is.
  • each pin has a total surface area greater than 5 mm 2 , preferably greater than 7 mm 2 and in particular greater than 9 mm 2 . This area is a measure of the adhesiveness that the pens exert on the water.
  • the inventively provided pins can be held in any suitable form in the housing interior of the jet regulator housing.
  • these pins can be formed, for example, to the bottom or outflow side of the jet disintegrating device.
  • a preferred embodiment according to the invention provides that the pins are additionally or instead formed on the outflow side of the jet disintegrating device and / or on the upstream side of the grating or network structure adjacent thereto.
  • the lattice and / or network structures forming the jet regulating device have a plurality of webs oriented transversely to the flow direction and delimiting passage openings between them.
  • the pins are integrally formed on the upstream side of the adjacent grid or network structure, it may be advantageous if the pins point with their free pin ends in the direction opposite to the direction of flow, there to the closing of the Water valve in this housing part area to keep remaining water longer.
  • At least one pin has a non-round, preferably a polygonal, and in particular a cross-shaped pin cross-section.
  • a cross-shaped pin cross-section has the advantage that it is particularly well adapted in its cross-section to the lattice or network structure supporting it.
  • the pins can be clipped, glued, welded or otherwise attached to the webs of the adjacent grid and / or network structure.
  • a particularly simple and inexpensive to produce embodiment according to the invention provides that the pins are integrally formed on the supporting webs.
  • the webs forming a lattice or network structure and the pins held thereon form a particularly good functional unit when the webs carrying the pins form a throughflow plane oriented transversely and preferably at right angles to the flow direction.
  • a preferred embodiment according to the invention provides that the webs carrying the pins are arranged in a lattice-like or net-like manner, crossing each other at crossing nodes.
  • a particularly advantageous development according to the invention provides that the webs carrying the pins form the inflow-side throughflow plane of the jet regulating device and are preferably connected directly downstream of a jet decomposing device in the flow direction.
  • the Strahlregulier annoying has several inserts, which are formed grid or net-like and have intersecting crossing points webs.
  • a preferred embodiment according to the invention provides that the preferably ventilated jet regulator has an inflow-side jet decomposing device and a downstream downstream Strahlregulier adopted and that the Strahlregulier worn optionally downstream of a flow rectifier downstream.
  • the air flowing into the housing interior can pass well through the pin rows and thus the air sucked in by the aerator can distribute well over the entire cross section of the jet regulator housing, it is useful if multiple rows of parallel pins are provided and if the pins of the outer pin rows in comparison preferably have a smaller longitudinal extent to the pins of the inner pin rows and / or a greater distance from each other to have.
  • a jet regulator 1 is shown, which can be used in the water outlet of a sanitary outlet fitting, not shown here, to a homogeneous, non-spraying and pearly soft ventilated Shape water jet.
  • the jet regulator 1 has a jet regulator housing 2 which has a non-circular housing cross-section with a larger housing width compared to the housing depth. For this rectangular in cross-section aerator housing 2 can also emerge a rectangular water band.
  • a jet decomposing device 3 is provided inside the housing, which is designed here as a perforated plate having throughflow holes 30 and dividing the inflowing water into a multiplicity of individual streams.
  • a negative pressure is generated on the outflow side of the jet decomposing device 3, which causes an intake of the ambient air.
  • This ambient air which is provided by the on the housing circumference and in FIGS. 2 and 3 venting port 4 shown in the housing interior may occur is mixed with the individual jets.
  • a Strahlregulier worn 5 downstream here at least two adjacent grating structures 6, 7 comprises.
  • These grid structures 6, 7 are designed here like a drawer and can be pushed laterally from the housing periphery into a corresponding housing opening.
  • a partial area 8, 9 of the housing peripheral wall is integrally formed on each of the grid structures 6, 7, so that these wall partial areas 8, 9 in the in FIG. 1 and 7 shown use position close the housing opening.
  • these grid structures 6,7 is in the FIGS. 11 to 17 only the upper grid structure 6 in the direction of flow is shown.
  • the grating structures 6, 7 assigned to the jet-regulating device 5 have a plurality of transversely oriented to the flow direction and between them through openings limiting Get on 10. These webs 10 are here like a grid to each other, crossing at junction node 11, arranged.
  • FIGS. 1 and 7 It can be seen that a plurality of pins 13, 14 are provided in the housing free space or housing section arranged between the jet disintegrating device 3 and the adjacent grating structure 6, which are oriented approximately axially parallel to one another in the flow direction and spaced from each other and which extend over the distance between the jet disintegrating device 3 and the adjacent grid structure 6 extend for the most part.
  • the jet regulator 1 shown here has, in the housing section arranged between the jet decomposing device 3 and the adjacent grid structure 6, a plurality of pins 13, 14 which are oriented in the flow direction and spaced from each other and which extend over the distance between the jet splitter 3 and the adjacent grid structure 6 extend.
  • Each of these pins 13, 14 forms an evaporation surface which is arranged outside the area directly illuminated by the individual beams and wettable by the water flowing through the jet regulator housing 2. From a general view, especially the FIGS. 11 to 17 it is clear that the pins 13,14 are arranged laterally outside of the flow-oriented projection of the flow holes.
  • the pins 13,14 are not intended to affect the flow of water substantially, but form only after closing the inflow valve and interruption of the water flow wettable by the flowing water evaporation surface. Since the pins 13, 14 do not develop a predominantly beam-forming function, the individual beams coming from the beam splitting device 3 can instead point to an intersection node 11 at the intersection node 11 be aligned crossing webs 10 of the downstream grid or network structure in order to effectively decelerate these individual beams, split and mix with air can.
  • FIG. 14 shown cross section through section plane BB FIG. 13 recognizable, which shows a cross section at the level of the pins 13,14, but with a view from below of the flow holes 30.
  • FIG. 14 shows a cross section at the level of the pins 13,14, but with a view from below of the flow holes 30.
  • the cut, cross-shaped pins and the adjacent or overflow holes 30 are clearly visible.
  • FIG. 17 is the jet regulator 1 in a perspective shown partially cut representation.
  • This comparatively long and flowed around by the flowing water pins 13,14 are occupied even after closing the water valve with an enveloping water film, which leads to increased humidity and thus to a lower evaporation inside the radiator housing 2. Since thus a complete dehydration is delayed in the interior of the jet regulator housing 2 between the time intervals of water use, and thus undesirable lime deposits inside the housing of the jet regulator housing 2 and in the small jet cutting holes of the jet breaker is counteracted, the jet regulator 1 shown here is characterized by a high level of reliability over a longer period of time.
  • the pins 13, 14 could be formed on the outflow side of the jet disintegrating device 3 and are held here on the upstream side of the adjacent lattice structure 6.
  • the lattice structures 6, 7 and the lattice structure 15, which form the outflow end face of the jet regulator housing and which serve as a flow straightener 5, are each formed by two parallel and mutually crossing webs oriented transversely to the flow direction, which delimit passage openings between them.
  • the pins 13, 14 on the webs 10 of the beam splitter 3 adjacent grating structure 6 are arranged.
  • the pins 13, 14 point with their free pin ends in the direction opposite to the flow direction.
  • the pins 13, 14 have a non-round and in particular polygonal pin cross-section.
  • the pins here have a cross-shaped Pin cross-section, which - like the top view in FIG. 9 clarified - the end face of them carrying crossing node 11 of the webs 10 corresponds.
  • the pins 13, 14 are integrally formed here on the supporting webs 10 of the adjacent grid structure 6.
  • the webs carrying the pins 13, 14 form a throughflow plane oriented transversely and preferably at right angles to the flow direction and are arranged in a grid-like manner with each other, crossing each other at crossing nodes 11.
  • the webs 10 of the adjacent grid structure 6 form an inflow-side throughflow plane of the Strahlregulier immunity 5, which is the jet splitting device 3 downstream in the flow direction. From the FIGS. 1, 4 . 7, 8 and 10 It will be apparent that a plurality of rows of parallel pins 13, 14 are provided and that the pins 13 of the outer rows of pins have a greater longitudinal extent compared to the pins 14 of the inner rows of pins. In the FIGS.
  • FIG. 2 It can be seen that the jet regulator housing 2 of the jet regulator 1 can be inserted from the outlet end face into the water outlet of a sanitary outlet fitting.
  • a resilient latching projection 17 is provided at the housing periphery of the jet regulator housing 2, which cooperates with a counter-locking means on the inner circumference of the water outlet.
  • the jet regulator 1 illustrated here has a modular construction and that the jet regulator 1 can be assigned a plurality of grid structures 6 and / or 7 designed as drawer-type insertion parts. These interchangeable grating structures 6 make it possible to adapt the properties of the jet regulator shown here to the respective intended use.
  • the jet regulator 1 carries on the upstream side of the housing of its jet regulator housing 2 a detachable sieve 18 held detachably there.
  • This attachment screen 18 holds back such dirt particles that may still be carried along in the inflowing water and that could impair the function of the jet regulator 1 shown here.

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  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Hydrology & Water Resources (AREA)
  • Public Health (AREA)
  • Water Supply & Treatment (AREA)
  • Nozzles (AREA)
  • Domestic Plumbing Installations (AREA)
  • Air-Flow Control Members (AREA)
  • Valve Housings (AREA)

Claims (16)

  1. Régulateur de jet (1) avec un boîtier de régulateur de jet (2) qui présente à l'intérieur un dispositif de division de jet (3) comportant une pluralité de trous de passage (30) pour diviser le courant d'eau affluant en un nombre correspondant de jets individuels ainsi qu'au moins une structure en treillis et/ou en réseau (6, 7, 15) espacée de celui-ci dans la direction d'écoulement, une pluralité de tiges (13, 14) orientées dans la direction d'écoulement et espacées les unes des autres étant prévue dans la zone partielle de boîtier disposée entre le dispositif de division de jet (3) et la structure en treillis et/ou en réseau (6) voisine, lesquelles tiges (13, 14) sont disposées latéralement en dehors de la projection orientée dans la direction d'écoulement des trous de passage (30), caractérisé en ce que le boîtier de régulateur de jet (2) présente une section de boîtier non circulaire avec une largeur de boîtier supérieure à la profondeur de boîtier, que plusieurs rangées de tiges (13, 14) parallèles sont prévues, et que les tiges (13, 14) s'étendent sensiblement sur la distance entre le dispositif de division de jet (3) et la structure en treillis et/ou en réseau (6) voisine et sont prévues chaque fois comme une surface d'évaporation disposée en dehors de la zone directement exposée aux jets individuels, mais pouvant être mouillée par l'eau passant à travers le boîtier de régulateur de jet (2).
  2. Régulateur de jet selon la revendication 1, caractérisé en ce que des jets individuels venant du dispositif de division de jet (3) sont chaque fois directement projetés sur un noeud de croisement (30) des entretoises (10) de la structure en treillis et/ou en réseau (6, 7) se croisant à des noeuds de croisement (30) et qu'à cet effet la projection orientée dans la direction d'écoulement de préférence d'au moins plus de la moitié des trous de passage (30) est chaque fois orientée vers un noeud de croisement (11).
  3. Régulateur de jet selon la revendication 1 ou 2, caractérisé en ce que le rapport entre la hauteur h et la diagonale d des tiges (13, 14) est supérieur à 1,5, de préférence supérieur à 2,0 et en particulier supérieur à 2,5.
  4. Régulateur de jet selon l'une des revendications 1 à 3, caractérisé en ce que chaque tige (13, 14) a une surface totale supérieure à 5 mm2, de préférence supérieure à 7 mm2 et en particulier supérieure à 9 mm2.
  5. Régulateur de jet selon l'une des revendications 1 à 4, caractérisé en ce que les tiges (13, 14) sont formées sur le côté sortie du flux du dispositif de division de jet (3) et/ou sur le côté entrée du flux de la structure en treillis et/ou en réseau (6) voisine de celui-ci.
  6. Régulateur de jet selon l'une des revendications 1 à 5, caractérisé en ce que ladite au moins une structure en treillis et/ou en réseau (6, 7, 15) présente une pluralité d'entretoises (10) orientées transversalement à la direction d'écoulement et délimitant entre elles des ouvertures de passage.
  7. Régulateur de jet selon l'une des revendications 1 à 6, caractérisé en ce que les tiges (13, 14) sont orientées avec leurs extrémités de tige libres dans la direction opposée à la direction d'écoulement.
  8. Régulateur de jet selon l'une des revendications 1 à 7, caractérisé en ce qu'au moins une tige (13, 14) a une section de tige non circulaire, de préférence polygonale et en particulier cruciforme.
  9. Régulateur de jet selon l'une des revendications 1 à 8, caractérisé en ce que les tiges (13, 14) sont formées d'une seule pièce sur les entretoises (10) qui les portent.
  10. Régulateur de jet selon l'une des revendications 1 à 9, caractérisé en ce que les entretoises (10) forment un plan de passage orienté transversalement et de préférence perpendiculairement à la direction d'écoulement.
  11. Régulateur de jet selon l'une des revendications 1 à 10, caractérisé en ce que les entretoises (10) sont disposées les unes par rapport aux autres à la manière d'un treillis ou d'un réseau en se croisant à des noeuds de croisement (11).
  12. Régulateur de jet selon l'une des revendications 1 à 11, caractérisé en ce que les entretoises portant les tiges (13, 14) forment le plan de passage côté entrée du flux du dispositif de régulation de jet (5) et sont de préférence placées directement en aval d'un dispositif de division de jet (3) dans la direction d'écoulement.
  13. Régulateur de jet selon l'une des revendications 1 à 12, caractérisé en ce que le dispositif de régulation de jet (5) présente plusieurs inserts (6, 7) qui sont formés à la manière d'un treillis et/ou d'un réseau et qui ont des entretoises (10) se croisant à des noeuds de croisement (11).
  14. Régulateur de jet selon l'une des revendications 1 à 13, caractérisé en ce que le régulateur de jet (1) de préférence ventilé présente un diviseur de jet (3) du côté entrée du flux et un dispositif de régulation de jet (5) placé en aval, du côté sortie du flux, et qu'un redresseur d'écoulement (15) est éventuellement placé en aval, du côté sortie du flux, du dispositif de régulation de jet (5).
  15. Régulateur de jet selon l'une des revendications 1 à 14, caractérisé en ce que les tiges (13) des rangées de tiges extérieures présentent de préférence une plus grande extension longitudinale que les tiges (14) des rangées de tiges intérieures.
  16. Régulateur de jet selon l'une des revendications 1 à 15, caractérisé en ce que plusieurs rangées de tiges (13, 14) parallèles sont prévues et que les tiges (13) des rangées de tiges extérieures présentent de préférence une plus grande extension longitudinale et/ou ont une plus grande distance entre elles que les tiges (14) des rangées de tiges intérieures.
EP09013078.2A 2008-10-21 2009-10-16 Régulateur de débit Active EP2180102B1 (fr)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE102008052541A DE102008052541A1 (de) 2008-10-21 2008-10-21 Strahlregler

Publications (3)

Publication Number Publication Date
EP2180102A2 EP2180102A2 (fr) 2010-04-28
EP2180102A3 EP2180102A3 (fr) 2011-03-02
EP2180102B1 true EP2180102B1 (fr) 2015-02-25

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Family Applications (1)

Application Number Title Priority Date Filing Date
EP09013078.2A Active EP2180102B1 (fr) 2008-10-21 2009-10-16 Régulateur de débit

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Country Link
US (1) US8561922B2 (fr)
EP (1) EP2180102B1 (fr)
CN (1) CN101725167B (fr)
DE (1) DE102008052541A1 (fr)
ES (1) ES2536519T3 (fr)

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DE202012007719U1 (de) * 2012-08-10 2013-11-12 Neoperl Gmbh Sanitäre Einsetzeinheit
DE202012010420U1 (de) * 2012-11-02 2014-02-03 Neoperl Gmbh Strahlregler
DE202014003567U1 (de) * 2014-04-30 2015-07-31 Neoperl Gmbh Durchflussmengenregler
US9663929B2 (en) * 2014-08-21 2017-05-30 Moen Incorporated Plumbing fixture fitting
DE202016001630U1 (de) * 2016-03-14 2017-06-16 Neoperl Gmbh Strahlregler
US11248368B2 (en) 2016-04-14 2022-02-15 Delta Faucet Company Faucet aerator with center stream
DE202016002719U1 (de) * 2016-04-27 2017-07-28 Neoperl Gmbh Sanitäre Einsetzeinheit
USD805841S1 (en) * 2016-05-03 2017-12-26 Yevgeniy Khayman Wine aerator
JP7107661B2 (ja) * 2017-10-31 2022-07-27 三菱重工業株式会社 積層造形用ノズル、及び積層造形装置
CN111314802B (zh) * 2018-12-12 2023-05-16 中兴通讯股份有限公司 光纤割接方法、装置、sdn控制器、系统及存储介质
USD906478S1 (en) * 2019-03-08 2020-12-29 Neoperl Gmbh Faucet stream straightener
USD921154S1 (en) * 2019-04-10 2021-06-01 Neoperl Gmbh Aerator for taps
DE102019213610B3 (de) * 2019-09-06 2020-12-17 Wilhelm Bruckbauer Einströmdüse
DE102020111470A1 (de) 2020-04-27 2021-10-28 Neoperl Gmbh Strahlregler
USD968566S1 (en) 2021-04-06 2022-11-01 Neoperl Gmbh Faucet stream straightener
DE102022106103A1 (de) 2022-03-16 2023-09-21 Neoperl Gmbh Strahlregler und sanitäre Auslaufanordnung

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DE9314990U1 (de) 1993-10-02 1993-11-25 Wildfang Dieter Gmbh Strahlregler zum Anschluß an Sanitärarmaturen
DE19510734C2 (de) * 1995-03-24 2003-01-23 Wildfang Dieter Gmbh Einbauteile-Garnitur zum Einbau in ein Auslauf-Mundstück
DE29718728U1 (de) * 1996-10-11 1997-12-18 Wildfang Dieter Gmbh Strahlregler
DE10027987B4 (de) * 2000-06-06 2005-12-22 Neoperl Gmbh Strahlregler
US6513731B2 (en) * 2001-01-02 2003-02-04 Moen Incorporated Aerator with variable air input
DE20115636U1 (de) * 2001-09-22 2003-02-13 Wildfang Dieter Gmbh Strahlregler
DE10246334B4 (de) * 2002-10-04 2015-05-07 Neoperl Gmbh Sanitäres Einbauteil
CA2457995C (fr) * 2004-02-18 2007-11-13 Globe Union Industrial Corp. Filtre a eau
US7217362B2 (en) * 2004-03-01 2007-05-15 Globe Union Industrial Corp. Water filter
DE102005001419B3 (de) * 2005-01-12 2006-05-24 Neoperl Gmbh Strahlregler

Also Published As

Publication number Publication date
EP2180102A2 (fr) 2010-04-28
CN101725167B (zh) 2012-07-04
DE102008052541A1 (de) 2010-04-22
US8561922B2 (en) 2013-10-22
US20100102145A1 (en) 2010-04-29
ES2536519T3 (es) 2015-05-26
EP2180102A3 (fr) 2011-03-02
CN101725167A (zh) 2010-06-09

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