EP3830335A1 - Pressmantel, dessen verwendung sowie presswalze und schuhpresse - Google Patents
Pressmantel, dessen verwendung sowie presswalze und schuhpresseInfo
- Publication number
- EP3830335A1 EP3830335A1 EP19730355.5A EP19730355A EP3830335A1 EP 3830335 A1 EP3830335 A1 EP 3830335A1 EP 19730355 A EP19730355 A EP 19730355A EP 3830335 A1 EP3830335 A1 EP 3830335A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- press
- thread
- press jacket
- jacket
- polymer layer
- 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.)
- Granted
Links
Classifications
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21F—PAPER-MAKING MACHINES; METHODS OF PRODUCING PAPER THEREON
- D21F3/00—Press section of machines for making continuous webs of paper
- D21F3/02—Wet presses
- D21F3/0209—Wet presses with extended press nip
- D21F3/0218—Shoe presses
- D21F3/0227—Belts or sleeves therefor
Definitions
- the invention relates to a press jacket, in particular for a press device for treating a fibrous web, e.g. for smoothing or dewatering, in detail according to the independent claims.
- the invention also relates to a press roll, a shoe press and the use of a press jacket in such a one, in detail according to the independent claims.
- Press devices such as shoe presses have long been part of modern paper machines. They essentially comprise a stationary shoe (also called a press shoe), which extends in a cross-machine direction, and a press jacket that runs around the stationary shoe. The latter is deformable and essentially assumes a tubular shape during operation.
- the shoe is shaped so that it forms a press nip with a counter roller.
- the press nip is defined by the contact surface of the counter roller in the shoe.
- the shoe is designed to be movable and can be moved to the counter roller.
- Enormous demands are placed on the press jacket in terms of its stability, namely with regard to surface hardness, resistance to pressure, temperature and flydrolysis.
- the press jacket is also exposed to strong alternating bending loads during operation.
- This deformation of the press jacket when entering and leaving is also referred to as a changing nip. It is easy to see that the tendency of the press casing to break particularly at this point is very high due to the high mechanical stress. Accordingly, many measures are known from the prior art that improve the stability of the
- Press sleeve should increase.
- the press jacket must therefore be sufficiently flexible so that it can be guided around the shoe, it must be sufficiently stiff so that it does not deform or compress too much under the press load in the nip, and it must be sufficiently wear-resistant.
- Press sleeves therefore consist of a single or multi-layer polymer layer, preferably made of polyurethane, in which reinforcing threads in the form of scrims or fabrics can be embedded.
- the present invention relates to such generic items mentioned at the outset.
- Press sleeves known from the prior art tend to premature failure during normal operation as a result of an overload - often only local - in the nip. This occurs when a foreign body passes through the nip during a so-called batz passage. Such an overload often leads to the reinforcement threads or the polymer layer in which they are embedded tearing. A press jacket that is oil-lubricated from the inside can leak, so that the oil comes into contact with the fibrous web to be produced. As a result, the press jacket must be replaced. In practice, this leads to unplanned downtimes of the pressing device and thus to increased, costly downtimes.
- the press jacket should therefore withstand such short-term overloads and thus increase its service life and reduce the downtimes of a press device equipped with such a press jacket.
- reinforcing threads are used as flat threads. This means that reinforcing threads are used which have been produced from a single fiber or from a fiber bundle of several fibers and which have a flat outer contour (viewed in cross section perpendicularly through their longitudinal extension.
- the reinforcing threads according to the invention have a lower tendency to become less detached from the polymer layer embedding them during a passage of the bats, thereby increasing the service life of such a press jacket the frequency of downtime of a press device equipped with the press jacket is reduced.
- the definition that at least the longitudinal threads are produced as reinforcing threads according to the invention means that only the longitudinal threads are designed in this way or in addition the longitudinal threads and at least one further peripheral thread are produced in this way. If preferred e.g. if there is a scrim of circumferential and longitudinal threads, then this means that at least the longitudinal threads are designed according to the invention.
- the at least one circumferential thread can then be conventionally twisted, that is to say the fiber bundles of a reinforcement thread designed as a circumferential thread are twisted with one another, that is to say they are free of interweaving with one another.
- the peripheral threads such as the longitudinal threads, namely that their fibers or fiber bundles are intertwined with one another.
- a press jacket in the sense of the invention is to be understood as a band, hose or a jacket which, as shown, is guided together with a fibrous web through the press nip of a shoe press.
- the radially outermost one can be used as intended Surface (polymer layer) of the press jacket come into contact with a press felt, from which the fibrous web to be dewatered is carried directly.
- the press jacket can also come into direct contact with the fibrous web in order to smooth it, for example.
- the press jacket is designed as a closed jacket (hose) which is endless in the circumferential direction about its longitudinal axis.
- the press jacket can thus be held at these axial ends by two lateral tensioning disks in order to form the shoe press roll.
- the press jacket can be guided over the press shoe and several guide rollers. Regardless of whether the press jacket is guided by the tensioning disks or the guide rolls, the press shoe (or the guide rolls) comes into contact with part of the radially innermost surface of the press jacket.
- the radially outermost surface of such a press casing for example the radially outermost polymer layer thereof, can be provided with grooves and / or blind bores.
- the longitudinal direction means the direction that runs parallel to the longitudinal axis of the press casing.
- the longitudinal axis also corresponds to the axis of symmetry or rotation of the finished press jacket or the press roll.
- the circumferential direction of the press casing extends around the longitudinal axis as seen around its radial boundary.
- the term parallel also includes those angular deviations of two reinforcement threads lying in different planes of +/- 5 ° to one another.
- the press jacket or the at least one polymer layer can be made partially or completely from a polymer.
- a pourable, curable, preferably elastomeric polymer such as polyurethane can be used as the polymer.
- the polymer can consequently be set as a cast elastomer.
- polymer layer is meant a layer which comprises such a castable, curable, preferably elastomeric polymer or is produced entirely therefrom.
- the polymer layer can preferably be a cured layer which is produced in one piece by primary molding. In other words, it is monolithically shaped, that is, manufactured by casting, for example.
- the term one-part also includes cases in which the one layer was again made from several layers of the same material when the polymer was cast. However, this only insofar as these layers are essentially no longer visible after curing, but rather a single, preferably uniform, layer results. The same applies accordingly to the finished press jacket.
- the press casing can be arranged one above the other as seen in the radial direction - at least in sections over the width of the press jacket. At least in sections over the width of the press casing means that the press casing, for example, has only one layer at its axial ends along the longitudinal axis of the press casing, whereas it is formed in two or more layers between the axial ends.
- the polymer layers can also extend over the entire width of the press jacket.
- the thickness of the press jacket - and thus the thickness of the individual polymer layers - can vary in sections along the longitudinal axis in a section through its longitudinal axis.
- the radially outermost polymer layer in the area of the width edges of the press jacket can be smaller than in the middle of the press jacket.
- the radially outermost polymer layer can be less thick than a radially inner or radially innermost polymer layer.
- a total thickness of the finished press jacket in a section through the longitudinal axis thereof in the radial direction can be 5 to 10 mm, preferably 5 to 7, particularly preferably 5 to 6 mm. According to the invention, if a single layer is provided, the press jacket can be produced from only one casting, ie monolithically, so that the single layer has the thickness just mentioned.
- a finished press jacket in the sense of the invention is one whose at least one polymer layer has hardened and possibly been finally processed, that is to say is ready for use in a shoe press, for example, for the aforementioned purpose.
- a finished polymer layer means a layer that has hardened.
- a reinforcing thread in the sense of the invention is understood to mean a pliable, textile line structure which has a dominant extension and a uniformity in its longitudinal direction.
- the reinforcing thread is made from a plurality, that is to say at least two fibers, or at least two fiber bundles by intertwining them.
- fiber we mean a single, endless fiber in the manner of a monofilament. If, on the other hand, one speaks of a fiber bundle in the sense of the invention, it is not a question of monofilaments, but in turn a single thread, such as a thread or yarn, that is to say a bundle of continuous fibers or monofilaments.
- the fiber bundles themselves can certainly be made from twisted fibers.
- reinforcing structure in the sense of the invention means reinforcing the at least one layer containing or consisting of the polymer - that is to say the polymer layer.
- the reinforcing structure can be completely embedded in the polymer layer, so that the reinforcing structure does not go beyond the boundary of the polymer layer.
- the polymer layer takes on the role of a matrix, which surrounds the reinforcement structure and binds to the matrix as a result of adhesive or cohesive forces.
- Such a reinforcement structure can textile line structures - z.
- B. woven, knitted, crocheted, braided or laid - include and can be produced from a corresponding starting material, for example by winding.
- a single reinforcing thread according to the invention is considered as a textile line structure.
- Several such reinforcing threads can be designed, for example, as longitudinal and / or circumferential threads, that together they form a textile fabric.
- the at least one reinforcing thread, which is embedded in the at least one polymer layer, then represents the reinforcing structure of the press cover or its polymer layer.
- the starting material is understood to mean that material or semi-finished product by means of which the reinforcing structure of the finished press jacket according to the invention is produced.
- flat thread means a thread whose outer boundary (outer contour), viewed in a cross section perpendicular to its longitudinal extension, represents an approximation to a rectangle, an oval, an ellipse or a flat polygon, such as a square, a parallelogram or trapezoid.
- the outer boundary in the cross section mentioned can also be composed of free-form curves such as splines or follow a function such as a polynomial function.
- round curves such as semicircles, sickles, cycloids, epicycloids, for example nephroids (bone-shaped) or cardioids are also conceivable.
- the outer contour viewed in the cross section mentioned, has a greatest height and a greatest width extent, the width extent always being greater than the height extent.
- the greatest width and height extension of the outer contour can be determined as follows: In the cross section mentioned, an imaginary rectangle is first placed around the outer contour of the flat thread. The imaginary rectangle is dimensioned so that it surrounds the outer contour in the manner of a perimeter: This means that the sides of the rectangle also result in tangents to the outer contour or the outermost corner points of the outer contour lie on the sides of the rectangle.
- the greatest width extent of the outer contour corresponds to the side length a and the greatest height extent to the side length b of the imaginary rectangle.
- the outer contour is at least a symmetrical figure, then the axes of symmetry of the outer contour coincide with those of the imaginary rectangle.
- a flat thread is considered to be flat if the quotient from the greatest width to the greatest height extension (clearly) is greater than 1.
- Significantly greater than 1 means greater than e.g. 1, 1.
- the quotient is preferably 1.5 to 3, very preferably 2.
- the quotient corresponds to the ratio of the side lengths a / b of the imaginary rectangle.
- the flat thread is in the form of a ribbon or strip.
- the outer contour is preferably the same when viewed in the longitudinal direction of the flat thread.
- the flat thread is free of sections - Seen in the longitudinal direction of the same -, in which the cross-sectional shape changes, for example, by leaps or bounds from section to section. If you look at the flat thread from different directions, which are always perpendicular to its longitudinal direction, then it has the same outer contour throughout, so it shows no constrictions over its length.
- a flat thread is still a textile line structure.
- the term flat thread is used synonymously with reinforcing thread.
- the reinforcing thread, the flat thread or the reinforcing structure can be produced from or comprise a polymer. Suitable polymers are polyester, polyethylene naphthalate or polyamides, such as aramids.
- a shoe press e.g. for drainage or treatment, such as smoothing one
- the shoe press comprises a shoe press roll and a counter roll, which together form or limit a press nip.
- the shoe press roll also includes a circumferential press jacket and a standing press element, the so-called press shoe.
- the latter is supported on a supporting, also standing yoke - for example via hydraulic ones
- the press jacket rotates relative to the fixed press shoe and yoke and is thereby pressed against the counter roller in the press nip.
- Press shoe and yoke are arranged radially inside the press jacket.
- the term standing means that the press element does not rotate relative to the shoe press roll or the counter roll, but can translate - towards and away from the counter roll, preferably in the radial direction thereof - and thus relative to the counter roll.
- one or more press felts that circulate endlessly in the circumferential direction and / or further press belts that rotate continuously can be guided through the press nip of the shoe press.
- a fibrous web in the sense of the invention is to be understood as a scrim of fibers, such as flolz fibers, plastic fibers, glass fibers, carbon fibers, additives, additives or the like.
- the fibrous web can be designed as a paper, cardboard or tissue web. It can essentially comprise flolz fibers, it being possible for small amounts of other fibers or also additives and additives to be present. Depending on the application, this is left to the specialist.
- the advantages according to the invention are particularly well achieved. Because a clutch is particularly good at absorbing local overloads.
- the press jacket is constructed from preferably a plurality of polymer layers arranged one above the other in the radial direction. If two polymer layers are provided, the radially inner one is the one with the reinforcing structure according to the invention. This means that the reinforcement structure is only arranged in the radially innermost polymer layer. If three or more polymer layers are provided, then the reinforcement structure is preferably arranged in the second lowest polymer layer, that is to say in the one that lies radially above the radially innermost polymer layer.
- the invention also relates to a press roll, such as a shoe press roll, for a shoe press for dewatering a fibrous web, the press roll having at least one press jacket according to the invention.
- the invention also relates to a shoe press for dewatering a fibrous web, preferably a paper, cardboard, tissue or cellulose web, comprising a press roll and a counter roll, which together form or limit a nip, the press roll comprising a rotating press jacket, the press jacket is designed according to the invention.
- the invention relates to the use of a press jacket according to the invention for a press, such as a shoe press for dewatering a fibrous web, preferably a paper, cardboard, tissue or cellulose web.
- Fig. 1 is a partially sectioned, schematic side view of a
- FIG. 3 is a highly schematic representation of a device for
- 4a and 4b show a greatly simplified, non-scaled representation of an outer contour of a reinforcing thread according to the invention, which is designed as a flat thread.
- a shoe press 10 is shown in a partially sectioned, schematic side view in FIG. 1, which in the present case comprises a press roll according to the invention, such as a shoe press roll 12, and a counter roll 14.
- Shoe press roller 12 and counter roller 14 are arranged parallel to one another with respect to their longitudinal axes. Together they form or limit a nip 22.
- the shoe press roller 12 is composed of a shoe 16, a standing yoke 18 carrying it and a press jacket 20.
- Shoe 16 and yoke 18 are arranged fixed with respect to the counter roller 14 and the press jacket 20, respectively. That means they don't rotate.
- the press jacket 20, which surrounds the shoe 16 and the yoke 18 in the circumferential direction, rotates about its longitudinal axis in the opposite direction of rotation to the counter roller 14. Because of the concave configuration of the shoe 16 on its side facing the counter roller 14, a comparatively long nip 22 results.
- the shoe press 10 is particularly suitable for dewatering fibrous webs 24.
- a fibrous web 24 with one or two press felts 26, 26 ' is guided through the press nip 22.
- a pressure is indirectly exerted on the fibrous web 24 in the nip 22 by the press felts 26, 26 '. This takes place in that the radially outermost surface of the counter-roller 14, on the one hand, and the radially outermost surface of the press jacket 20 come into direct contact with the corresponding press felts 26, 26 '.
- the liquid emerging from the fibrous web 24 is temporarily absorbed by the press felt (s) 26, 26 'and any depressions (not shown) provided in the surface of the press jacket. After leaving the nip 22, the liquid absorbed by the depressions of the press jacket 20 is thrown off before the press jacket 20 enters the press nip 22 again. In addition, the water absorbed by the press felt 26, 26 'can be removed with suction elements after leaving the press nip 22.
- the press felts 26, 26 ' can be dispensed with.
- the fibrous web 24 is in direct contact on the one hand with the press jacket 20 and on the other hand with the counter roll 14, which together form a press nip.
- the latter can then be designed as a heated drying cylinder.
- the press jacket shown in FIG. 1 can, as shown in the following figures, be designed according to the invention.
- FIG. 2a shows a cross-section through the longitudinal axis 20 'of the finished press jacket 20, which is not to scale and which is partially shown.
- the distance between the longitudinal axis 20 'and the radially innermost surface of the corresponding polymer layer of the press jacket 20 is also not shown to scale.
- the illustration in FIG. 2a shows a press jacket 20 with a single polymer layer 20.1.
- a reinforcement structure 20 ′′ is embedded in this.
- the polymer layer 20.1 is produced from a polyurethane. This can be obtained from a prepolymer and a crosslinker. According to the illustration in FIG.
- the first polymer layer 20.1 is at the same time the radially outermost polymer layer of the press jacket 20.
- the arrangement - as in the illustration in FIG. 2a - is based on the longitudinal axis 20 'of the press jacket 20 in the latter
- the second polymer layer 20.2 is at the same time the radially innermost polymer layer of the press jacket 20.
- Both polymer layers 20.1, 20.2 are immediately adjacent to one another in the radial direction, ie there is no intermediate layer between these two.
- a third polymer layer 20.3 is also indicated in broken lines The latter is r arranged adially within the second polymer layer 20.2.
- first and second polymer layers 20.1, 20.2 are each made of or contain a polyurethane.
- the reinforcement structure 20 is completely embedded in the corresponding polymer layer 20.1 or 20.2. This means that the reinforcement structure 20" does not extend beyond the boundaries of the polymer layer 20.1, 20.2.
- the reinforcement structure 20 ′′ can consist of a plurality of reinforcement threads 21 designed as longitudinal threads 21.1. These run parallel to the longitudinal axis 20 ′ of the press casing 20 and are spaced apart from one another over its circumference. This can best be seen in FIG. 3
- one or more reinforcing threads 21, each running spirally over the circumference of the corresponding polymer layer 20.1, 20.2 and embodied as circumferential threads 21.2 can also be provided, see again FIG. 2.
- the plurality of longitudinal threads 21.1 and the at least one peripheral thread 21.2 form a scrim with one another, whereby the peripheral threads 21.2 are arranged in such a way that they surround the longitudinal threads 21.1, that is to say are arranged further radially outward than the longitudinal threads 21.1.
- Longitudinal threads 21.1 and the at least one circumferential thread aden 21.2 cross each other seen in the radial direction due to the spiral winding of the at least one circumferential thread 21.2. Seen in the radial direction (ie in the sectional view of Fog. 2a and b), however, they do not touch at these intersection points but are arranged at a distance from one another.
- the radially outermost surface of the press casing 20 or the corresponding polymer layer 20.1 can have grooves or blind bores.
- 4a and 4b show a greatly simplified, to scale and greatly enlarged representation of an outer contour in a cross section seen perpendicular to the longitudinal extension of the reinforcing thread 21.
- the reinforcing thread 21 is designed as a flat thread. The longitudinal direction or extension of the reinforcing thread 21 runs perpendicular to the plane of the drawing, into it.
- the surface delimiting the outer contour is hatched, so that it cannot be seen from this whether the individual reinforcing thread 21 is produced from a single fiber or from a plurality of fibers assembled into a fiber bundle. Both are conceivable. 4a shows a selection of different, possible ones
- the reinforcing thread 21 designed as a flat thread can assume in its cross section. From left to right, these are: an oval or an ellipse, a rectangle, a bone shape (nephroid), a semicircle or a flalb oval or a half-ellipse, a cardioid and a paralleogram.
- the outer contours can also be based on the shapes mentioned.
- FIG. 4b shows what is meant by the greatest width extension and the greatest height extension of the outer contour of the flat thread in the course of the present invention. This is exemplified by a bone-shaped
- the outer contour of the reinforcing thread 21 designed as a flat thread is explained.
- An imaginary rectangle is drawn around this contour (drawn with a broken line). This is done in such a way that the sides of the rectangle, that is to say its edges, completely accommodate the outer contour within its boundary.
- the edges of the imaginary rectangle are such that they form tangents to the outer contour, for example, or that the outermost edges of the outer contour come to rest on the edges of the imaginary rectangle. In any case, this corresponds to Side length a of the greatest width extent of and the side length b of the greatest height extent of the outer contour of the reinforcing thread 21.
- the reinforcement thread 21 shown in FIGS. 4a and b can be used as longitudinal or circumferential thread 21.1, 21.2 in the reinforcement structure 20 "of the press jacket 20, as shown in the preceding figures.
- FIG. 3 shows, in a highly schematic side view, a device for producing a press jacket 20 according to the invention.
- the device has exactly one cylindrical winding mandrel 4.
- a plurality of reinforcing threads 21 designed as longitudinal threads 21.1 are spaced apart from one another on the circumference.
- a polymer is applied to the radially outermost lateral surface of the winding mandrel 4 in order to apply a polymer layer 20.1, 20.2, 20.3 — as described in the previous figures.
- a peripheral thread 21.2 is spirally introduced into the polymer of the polymer layer 20.1, 20.2, 20.3.
- the peripheral thread 21.2 forms, together with the longitudinal threads 21.1, the reinforcing structure 20 "of the finished press jacket 20 according to the invention.
- the winding mandrel 4 is rotatably mounted about its longitudinal axis 20 ', which corresponds to the longitudinal axis of the press jacket to be produced.
- the casting material such as pourable, curable elastomeric polymer, for example polyurethane, is fed from above onto the radially outermost surface of the winding mandrel 4 or onto the longitudinal threads 21.1 via a line 5 through a casting nozzle 6
- the winding mandrel 4 is rotated about its longitudinal axis in the direction of the arrow shown leadership parallel to the longitudinal axis 20 'along this relatively along the winding mandrel 4.
- the at least one peripheral thread 21.2 is unrolled and onto the rotating one Winding mandrel 4 spirally wound into coils.
- the casting material can pass through the longitudinal threads 21.1 to the winding mandrel 4.
- the polymer forms a radially innermost and preferably elastomeric polymer layer, which corresponds, for example, to the polymer layer 20.1 of the press jacket from FIG. 2a, of which only a part is shown in FIG. 3.
- the casting material emerging from the casting nozzle 6 is a mixture of a prepolymer and a crosslinking agent.
- the former is provided from a prepolymer container, not shown, in which it is stored or mixed.
- the prepolymer can comprise an isocyanate according to the invention and a polyol. In the prepolymer container, for example, it can be in the form of a prepolymer from the substances just mentioned.
- the crosslinker can be provided in a crosslinker container.
- the prepolymer container and crosslinker container are assigned to the device for producing a press jacket 20. They are connected in a flow-conducting manner via lines, also not shown, to a mixing chamber (not shown) which is arranged upstream of the pouring nozzle 6 in the flow direction.
- the prepolymer-crosslinking agent mixture is thus produced upstream and outside the pouring nozzle 6, that is to say mixed in the mixing chamber. Regardless of the production of the mixture, this is then applied to the surface of the mandrel 4 to form the at least one polymer layer of the press cover 20.
- an endless cylindrical tubular press jacket 20 is produced over the width of the winding mandrel 4, the inner circumference of which is essentially the outer circumference of the
- Winding mandrel 4 corresponds.
- the press jacket 20 is designed according to the invention.
- the reinforcing structure 20 ′′ of the at least one polymer layer 20.1, 20.2 could also be constructed from a plurality of layers of longitudinal and circumferential threads 21.1, 21.2, one on top of the other in the radial direction and each extending in the longitudinal axis direction and in the circumferential direction of the press jacket 20 his.
Landscapes
- Paper (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102018118604.5A DE102018118604A1 (de) | 2018-08-01 | 2018-08-01 | Pressmantel, dessen Verwendung sowie Presswalze und Schuhpresse |
| PCT/EP2019/065496 WO2020025211A1 (de) | 2018-08-01 | 2019-06-13 | Pressmantel, dessen verwendung sowie presswalze und schuhpresse |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3830335A1 true EP3830335A1 (de) | 2021-06-09 |
| EP3830335B1 EP3830335B1 (de) | 2024-10-23 |
Family
ID=66857916
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP19730355.5A Active EP3830335B1 (de) | 2018-08-01 | 2019-06-13 | Pressmantel, dessen verwendung sowie presswalze und schuhpresse |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP3830335B1 (de) |
| CN (1) | CN112513369A (de) |
| DE (1) | DE102018118604A1 (de) |
| FI (1) | FI3830335T3 (de) |
| WO (1) | WO2020025211A1 (de) |
Family Cites Families (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE29621524U1 (de) * | 1996-03-08 | 1997-02-27 | Voith Sulzer Papiermaschinen GmbH, 89522 Heidenheim | Pressmantel für eine Pressvorrichtung |
| US5753085A (en) * | 1996-06-11 | 1998-05-19 | Albany International Corp. | Textile substrate for a long nip press belt |
| FR2776358B1 (fr) * | 1998-03-23 | 2000-05-05 | Coflexip | Armure composite a base de fibres de carbone, pour conduite flexible |
| US6428874B1 (en) * | 2000-11-03 | 2002-08-06 | Albany International Corp. | Grooved long nip shoe press belt |
| JP4262461B2 (ja) * | 2001-10-03 | 2009-05-13 | 倉敷紡績株式会社 | 補強用不織基布および補強方法 |
| US20050003724A1 (en) * | 2003-07-02 | 2005-01-06 | Fitzpatrick Keith | Substrate for endless belt for use in papermaking applications |
| JP4856475B2 (ja) * | 2006-06-05 | 2012-01-18 | イチカワ株式会社 | シュープレス用ベルト |
| DE102011004568A1 (de) * | 2011-02-23 | 2012-08-23 | Voith Patent Gmbh | Pressenpartie einer Maschine zur Herstellung einer Faserstoffbahn |
| DE102014211790A1 (de) * | 2014-06-19 | 2015-12-24 | Continental Reifen Deutschland Gmbh | Festigkeitsträgerstreifen für eine Festigkeitsträgerlage für elastomere Erzeugnisse, insbesondere für Fahrzeugluftreifen, sowie Festigkeitsträgerlage und Fahrzeugluftreifen |
| DE102014218358A1 (de) * | 2014-09-12 | 2016-03-31 | Continental Reifen Deutschland Gmbh | Gewebe zur Herstellung von Festigkeitsträgerlagen für Reifen, insbesondere Fahrzeugluftreifen, mit diesem Gewebe |
| CN106544919B (zh) * | 2015-09-18 | 2020-09-04 | 福伊特专利有限公司 | 用于舒展辊的套体和舒展辊 |
-
2018
- 2018-08-01 DE DE102018118604.5A patent/DE102018118604A1/de not_active Ceased
-
2019
- 2019-06-13 FI FIEP19730355.5T patent/FI3830335T3/fi active
- 2019-06-13 CN CN201980050716.3A patent/CN112513369A/zh active Pending
- 2019-06-13 EP EP19730355.5A patent/EP3830335B1/de active Active
- 2019-06-13 WO PCT/EP2019/065496 patent/WO2020025211A1/de not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| DE102018118604A1 (de) | 2020-02-06 |
| EP3830335B1 (de) | 2024-10-23 |
| WO2020025211A1 (de) | 2020-02-06 |
| FI3830335T3 (fi) | 2025-01-27 |
| CN112513369A (zh) | 2021-03-16 |
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