US20020062637A1 - Opening cylinder for an open-end spinning device - Google Patents
Opening cylinder for an open-end spinning device Download PDFInfo
- Publication number
- US20020062637A1 US20020062637A1 US09/992,692 US99269201A US2002062637A1 US 20020062637 A1 US20020062637 A1 US 20020062637A1 US 99269201 A US99269201 A US 99269201A US 2002062637 A1 US2002062637 A1 US 2002062637A1
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- United States
- Prior art keywords
- opening cylinder
- air
- sealing surface
- opening
- air gap
- 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.)
- Abandoned
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- 238000007383 open-end spinning Methods 0.000 title claims abstract description 8
- 238000007789 sealing Methods 0.000 claims abstract description 29
- 239000000835 fiber Substances 0.000 claims abstract description 27
- 230000007423 decrease Effects 0.000 claims description 3
- 239000003344 environmental pollutant Substances 0.000 abstract description 4
- 231100000719 pollutant Toxicity 0.000 abstract description 4
- 230000000694 effects Effects 0.000 description 4
- 238000004519 manufacturing process Methods 0.000 description 4
- 230000010355 oscillation Effects 0.000 description 2
- 230000001133 acceleration Effects 0.000 description 1
- 238000007664 blowing Methods 0.000 description 1
- 238000004140 cleaning Methods 0.000 description 1
- 230000003247 decreasing effect Effects 0.000 description 1
- 238000000151 deposition Methods 0.000 description 1
- 238000005553 drilling Methods 0.000 description 1
- 239000000428 dust Substances 0.000 description 1
- 238000012423 maintenance Methods 0.000 description 1
- 238000009987 spinning Methods 0.000 description 1
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Classifications
-
- D—TEXTILES; PAPER
- D01—NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
- D01H—SPINNING OR TWISTING
- D01H4/00—Open-end spinning machines or arrangements for imparting twist to independently moving fibres separated from slivers; Piecing arrangements therefor; Covering endless core threads with fibres by open-end spinning techniques
- D01H4/30—Arrangements for separating slivers into fibres; Orienting or straightening fibres, e.g. using guide-rolls
- D01H4/32—Arrangements for separating slivers into fibres; Orienting or straightening fibres, e.g. using guide-rolls using opening rollers
Definitions
- the invention relates to an opening cylinder of an open-end spinning device provided in at least one lateral area with a sealing surface for an air gap seal.
- a rotatably supported opening cylinder is located in a housing of the fiber sliver opening apparatus.
- the opening cylinder consists of a basic body with the drive shaft, an exchangeable card clothing and an opening cylinder covering element whose front closes off the housing of the fiber sliver opening apparatus on one side.
- a multi-surface contour is formed on the outside of the opening cylinder cover and is located across from a corresponding, multi-surface contour of the housing, with a small air gap left between the multi-surface contours.
- the placement of the contours in close proximity is designated as a stepped sealing arrangement or labyrinth seal and allows for a rotational movement of the opening cylinder cover relative to the housing while at the same time increasing the air resistance to an air current from the outside of the fiber sliver opening apparatus to the inside, where a negative pressure is applied by the fiber removal suction and must be maintained.
- Limits are set to reduction of the air gap between the housing and the opening cylinder cover by the manufacturing and assembly tolerances as well as by oscillations occurring during the operation of the fiber sliver opening apparatus.
- At least one lateral area of an opening cylinder is provided with a passage and/or channel for air, whereby its input side is closer to the rotation axis of the opening cylinder than the output side.
- the opening cylinder has a rotational speed of approximately 6000 to 9000 RPM. Due to the high rotational speed and the outward orientation of the passage or channel, the air in the passage or channel is conveyed by the centrifugal force in the direction of the output side. This means that because the input side is at a closer radial distance from the rotational axis than the output side, an air flow is therefore induced through the passage or channel when the opening cylinder rotates.
- the air passage is at least partially not enclosed on all sides in flow direction, but allows for a lateral escape or entry of air into the channel.
- the efficiency of air movement in the direction of the air gap is lower than with a passage, but also results in an air flow in the direction of the air gap.
- the effect of the passage mentioned below also applies if an air channel is used, and should include the latter as a replacement.
- the outlet side of the passage is open towards an air gap between the opening cylinder and the housing of the fiber sliver opening apparatus or adjoins the air gap directly.
- the air flowing through the passage can flow either into the air gap or flow past it in immediate proximity.
- the input side of the passage is advantageously open to the outside atmosphere, so that the outside air is guided through the passage.
- the air coming from the passage causes a dynamic pressure in the air gap when the output side is in proximity of the air gap, or a suction action relative to the air gap if the output side adjoins the air gap.
- the dynamic air pressure in the air gap prevents air from entering from the outside through the air gap into the interior of the fiber sliver opening apparatus. Thereby the air flow into the interior of the fiber sliver opening apparatus is reduced and energy costs of maintaining the vacuum are lowered. At the same time the air flowing through the passage blows pollutants out of the air gap, so that a deposit of pollutants and finally the friction of the contour surfaces against each other is prevented.
- the sealing surface (at least one being present) is made in form of a contour surface and interacts with a contour surface of the housing across from it when the opening cylinder has been installed in the opening cylinder housing, so that an air gap sealing arrangement or labyrinth seal is produced.
- the surfaces can be e.g. stepped, in form of saw teeth, or in form of meanders.
- passages are provided on the opening cylinder at a first sealing surface as well as at a second sealing surface for an air gap seal, the airflow into the interior of the fiber sliver opening apparatus is reduced on both sides of the opening cylinder and the deposit of dust is avoided.
- the sealing surface and (at least one) air channel are formed in a lateral part that is separated from the opening cylinder, the manufacture of the sealing surface and of the air channels or channel is simplified.
- the lateral part can be detached for maintenance or cleaning of the opening cylinder, or the opening cylinder can be removed from the lateral part.
- a circumferential border or an outer collar is made, the outside circumference of which is part of the sealing surface of the opening cylinder and on the inside circumference and/or lateral surface of which the input sides of the passages are formed. If the input sides are at the inside circumference, making the passages is especially easy by drilling, in that the collar is perforated from the outside at one or several locations.
- the passages in the opening cylinder part are radial, approximately radial or helicoidal relative to the axis of rotation of the opening cylinder, the centrifugal force acting on the air in the passage is utilized especially well, and strong air flow towards the air gap can be achieved.
- the passages emerge at an angle from the axis of rotation of the opening cylinder in direction of its face, the airflow from the passages is aligned in an especially efficient manner, flowing past the air gap, so that the suction action of the passing air stream is especially strong and the Venturi effect thereby especially effective.
- This is further assisted in another embodiment in that the cross-section of the passages decreases towards the outside so that the output speed of the air is increased.
- FIG. 1 Shows a fiber sliver opening apparatus with a first example of an embodiment of air passages in the opening cylinder cover
- FIG. 2 shows a second example of an embodiment for air passages in the opening cylinder cover
- FIG. 3 shows a third example of an embodiment for air passages in the opening cylinder cover
- FIG. 4 shows a fourth example of an embodiment for air passages in the opening cylinder cover
- FIG. 5 shows a schematic top view of a lateral part of the rear of an opening cylinder housing
- FIG. 6 shows a first example of an embodiment of a rear air gap seal
- FIG. 7 shows a second example of an embodiment of a rear air gap seal
- FIG. 8 shows a third example of an embodiment of a rear air gap seal.
- FIG. 1 shows a cross-sectional view of a fiber sliver opening apparatus whereby a rotatably supported opening cylinder 2 is installed in an opening cylinder housing 1 .
- the opening cylinder 2 is composed of a basic body 4 ; an opening card clothing 5 and an opening cylinder cover 6 .
- the drive shaft 3 is mounted supported by two ball bearings 8 in the housing 1 of the fiber sliver opening apparatus.
- a drive wharve 7 over which a drive belt driving the opening cylinder 2 runs is attached at one end of the drive shaft 3 which protrudes from the opening cylinder housing 1 .
- the basic body 4 is fixed at the other end of the drive shaft 3 within the opening cylinder housing 1 by means of a counter-bearing flange for the card clothing 5 .
- the exchangeable card clothing 5 is clamped between the basic body 4 and the opening cylinder cover 6 .
- the opening cylinder cover 6 is attached to the drive shaft 3 by means of a screw (not shown) that is introduced into an opening 9 of the opening cylinder cover 6 and is screwed into inside threads 10 in the drive shaft 3 .
- a fiber sliver is conveyed to the opening cylinder 2 through a feed opening 11 in the opening cylinder housing by a feed apparatus not shown here.
- the fibers of the fiber sliver are detached from the fiber sliver by the opening cylinder 2 , are sucked through an outlet opening (not shown) in the opening cylinder housing 1 from the latter and are conveyed in the direction of the spinning rotor of a rotor spinning device.
- An additional opening towards the interior of the opening cylinder housing 1 is the air gap 12 between the opening cylinder cover 6 and the adjoining surfaces of the opening cylinder housing 1 required for the rotation of the opening cylinder 2 .
- the width of the air gap 12 is kept so small in this case that a rotation of the opening cylinder cover 6 relative to the opening cylinder housing 1 is possible without contact despite existing manufacturing tolerance and possibly occurring oscillations of the opening cylinder 2 .
- air passages 14 In order to further reduce the air flow through the air gap 12 from the outside of the opening cylinder housing 1 into its interior, four air passages 14 , each at the same angular distance from the other are provided on the circumference of the opening cylinder cover 6 at an outer collar 13 or at a border of the opening cylinder cover 6 . In the first embodiment of the air passages 14 represented in FIG. 1, these are perpendicular to the rotational axis of the opening cylinder 2 , going in radial direction from the opening 9 to the air gap 12 .
- the air passages 14 act as radial air blowers and accelerate the air in the air passages 14 under the effect of centrifugal force in the direction of the air gap 12 . There the air emerging from the air passages 14 create a dynamic pressure which counteracts the entry of air from the outside of the opening cylinder housing 1 .
- FIG. 2 shows part of a cross-section of part of the opening cylinder housing 1 and of the opening cylinder cover 6 in the outer collar 13 of which an air passage 14 a according to a second embodiment is formed.
- the air passage 14 a forms an angle of approximately 60° with the rotational axis of the opening cylinder 2 .
- the air current flows at an angle of 60° from the air passage 14 a into the air gap 12 and causes an air flow to go from the air passage 14 a to the output side of the air gap 12 at the front of the fiber sliver opening apparatus.
- a negative pressure is created at the output side of the air passage 14 a in the area of the air gap 12 that follws the output side of the air passage 14 a in the direction of the interior of the opening cylinder housing 1 .
- This negative pressure prevents on the one hand the entry of outside air into the opening cylinder housing 1 and on the other hand creates additional negative pressure in the air gap 12 which diverts the air from the air gap 12 to the outside.
- FIG. 3 shows a third embodiment of an air passage 14 b the output side of which directly adjoins the outer end of the air gap 12 .
- the air flows from the air passage 14 b at high speed past the air gap 12 and thereby generates a negative pressure that sucks the air from the air gap 12 as mentioned above, and creates a negative pressure in it.
- FIG. 4 shows a section of a cross-section perpendicular to the rotational axis of the opening cylinder cover 6 , trough the outer collar 13 .
- Air passages 14 c are made in the collar 13 in a fourth embodiment.
- the air passages 14 c extend from the inside of the outer collar approximately in helicoidal fashion to the rotational axis of the opening cylinder 2 and the cross-section of the air passages 14 c decreases in size from the inside to the outside of the outer collar 13 .
- the air passage can be helicoidal with respect to the rotational axis, can be provided with a cross-section decreasing in size towards the output side and be at an angle of less than 90° relative to the rotational axis.
- FIG. 5 schematically shows a top view of the rear lateral wall 20 of an opening cylinder housing 1 .
- the lateral wall 20 is perforated by the opening 21 so that the outside atmosphere can go from the outside of the opening cylinder housing 1 to the rear lateral area of an opening cylinder 23 .
- a shaft 24 of the opening cylinder 23 goes through a bore 22 in the lateral wall 20 .
- the openings 21 correspond to the area marked A in FIG. 1 of the rear of the opening cylinder housing 1 of the first embodiment example.
- FIG. 6 shows a section of the 23 and of the opening cylinder housing 25 in a cross-section.
- An inside space 26 between the opening cylinder 23 and the housing 25 is connected via a first embodiment of a rear air gap seal 27 to the outer atmosphere 28 .
- a projecting, circumferential border 29 is formed at the rear lateral surface of the opening cylinder 23 .
- the border is perforated at several locations in radial direction so that air passages 30 are constituted in the border.
- FIG. 7 shows a second embodiment of a rear air gap seal 40 , whereby the opening cylinder and the opening cylinder housing 25 are designed as the elements shown in a partial cross-section in FIG. 6.
- a stepped border 41 is formed circumferentially. Bores 42 extending away from the rotational axis of the opening cylinder 23 and are at an angle to the rotational axis are provided in the border 41 .
- the output sides of the bores 42 are at the lateral surface of the border 41 and blow an air stream pst the air gap 40 in its immediate proximity as the opening cylinder rotates.
- FIG. 8 shows a third embodiment of the rear air gap seal 50 .
- the elements are essentially as the elements shown in FIG. 6 and are designated by the same reference numbers.
- the opening cylinder 23 and the opening cylinder housing 25 differ from the elements shown in FIG. 6 by the two-part design of the opening cylinder housing 25 and of the air gap arrangement 50 .
- the housing is composed of a rear bearing element 51 for the support of the shaft 24 and a forward cover 52 .
- a border 53 in which air passages 54 extending in radial direction are provided is formed at the rear lateral area of the opening cylinder 23 . As the opening cylinder 23 rotates, air is blown through the air passages 54 into the air gap 50 .
- a first segment 55 of the air gap 50 extends from the interior space 26 in radial direction to the outside.
- the rotation of the lateral surface of the border 53 which adjoins the first segment 55 accelerates the air in this air gap segment 55 radially to the outside, so that the sealing action, in addition to high air resistance, is further assisted by the centrifugal force because of the narrow gap.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Textile Engineering (AREA)
- Spinning Or Twisting Of Yarns (AREA)
- Yarns And Mechanical Finishing Of Yarns Or Ropes (AREA)
Abstract
The invention relates to an opening cylinder (2) of an open-end spinning device as well as a fiber sliver opening apparatus with such an opening cylinder. In at least one lateral area (6) of the opening cylinder (2) a sealing surface for an air gap seal (12) is formed. According to the invention the opening cylinder (2) has an air passage (14) in at least the one lateral area (6), the output side of the air passage lying within the sealing surface or adjoining the sealing surface directly and the input side of which being at a shorter distance from the rotational axis of the opening cylinder (3) than the output side. During the operation of the fiber sliver opening apparatus, air is conveyed through the passages (14) to the air gap (12) of the air gap seal arrangement or conveyed past it, so that the entry of air and pollutants into the air gap (12) is counteracted.
Description
- The invention relates to an opening cylinder of an open-end spinning device provided in at least one lateral area with a sealing surface for an air gap seal.
- In a known fiber sliver opening apparatus of an open-end spinning device (DE 196 51 417 A1) a rotatably supported opening cylinder is located in a housing of the fiber sliver opening apparatus. The opening cylinder consists of a basic body with the drive shaft, an exchangeable card clothing and an opening cylinder covering element whose front closes off the housing of the fiber sliver opening apparatus on one side. A multi-surface contour is formed on the outside of the opening cylinder cover and is located across from a corresponding, multi-surface contour of the housing, with a small air gap left between the multi-surface contours. The placement of the contours in close proximity is designated as a stepped sealing arrangement or labyrinth seal and allows for a rotational movement of the opening cylinder cover relative to the housing while at the same time increasing the air resistance to an air current from the outside of the fiber sliver opening apparatus to the inside, where a negative pressure is applied by the fiber removal suction and must be maintained. Limits are set to reduction of the air gap between the housing and the opening cylinder cover by the manufacturing and assembly tolerances as well as by oscillations occurring during the operation of the fiber sliver opening apparatus.
- In another known fiber sliver opening apparatus (U.S. Pat. No. 3,800,520) two laterally extending segments, each with a sealing surface for an air gap seal, are formed on the opening cylinder rotatably supported in the opening cylinder housing. Each of the exit sides of the air gap seal is connected to atmospheric pressure, so that the pressure drops between the atmospheric pressure and the slight negative pressure within a cavity between the opening cylinder and the opening cylinder housing and external air penetrates into the cavity. Due to this air flow the costs for the production of the negative pressure required in the cavity to suck the fibers detached by the opening cylinder.
- It is therefore the object of the invention to provide an opening cylinder for an open-end spinning device and a fiber sliver opening apparatus with such an opening cylinder where the air current is reduced by an air gap between the opening cylinder and a housing of the fiber sliver opening apparatus containing the opening cylinder, and where the depositing of dirt in the gap is reduced.
- This object is attained through the charact eristics of
claims - In a fiber sliver opening apparatus according to the characteristics of the introductory clauses of
claim 1, at least one lateral area of an opening cylinder is provided with a passage and/or channel for air, whereby its input side is closer to the rotation axis of the opening cylinder than the output side. During the operation of the fiber sliver opening apparatus the opening cylinder has a rotational speed of approximately 6000 to 9000 RPM. Due to the high rotational speed and the outward orientation of the passage or channel, the air in the passage or channel is conveyed by the centrifugal force in the direction of the output side. This means that because the input side is at a closer radial distance from the rotational axis than the output side, an air flow is therefore induced through the passage or channel when the opening cylinder rotates. - As compared with the air passage, the air passage is at least partially not enclosed on all sides in flow direction, but allows for a lateral escape or entry of air into the channel. Thereby the efficiency of air movement in the direction of the air gap is lower than with a passage, but also results in an air flow in the direction of the air gap. To that extent, the effect of the passage mentioned below, also applies if an air channel is used, and should include the latter as a replacement.
- The outlet side of the passage is open towards an air gap between the opening cylinder and the housing of the fiber sliver opening apparatus or adjoins the air gap directly. As a result the air flowing through the passage can flow either into the air gap or flow past it in immediate proximity. In this case the input side of the passage is advantageously open to the outside atmosphere, so that the outside air is guided through the passage.
- The air coming from the passage causes a dynamic pressure in the air gap when the output side is in proximity of the air gap, or a suction action relative to the air gap if the output side adjoins the air gap. By providing several passages on the opening cylinder part, air movement comparable to a radial air blowing system can be achieved.
- The dynamic air pressure in the air gap prevents air from entering from the outside through the air gap into the interior of the fiber sliver opening apparatus. Thereby the air flow into the interior of the fiber sliver opening apparatus is reduced and energy costs of maintaining the vacuum are lowered. At the same time the air flowing through the passage blows pollutants out of the air gap, so that a deposit of pollutants and finally the friction of the contour surfaces against each other is prevented.
- If however the air current flows out of the passages in immediate proximity of the air gap, the strong air flow coming out of the passages produces a negative pressure towards the air gap (Venturi effect) acting against the entry of outside air into the air gap. Pollutants from the outside are here also blown out of the vicinity of the air gap.
- In an advantageous embodiment the sealing surface (at least one being present) is made in form of a contour surface and interacts with a contour surface of the housing across from it when the opening cylinder has been installed in the opening cylinder housing, so that an air gap sealing arrangement or labyrinth seal is produced. The surfaces can be e.g. stepped, in form of saw teeth, or in form of meanders.
- If passages are provided on the opening cylinder at a first sealing surface as well as at a second sealing surface for an air gap seal, the airflow into the interior of the fiber sliver opening apparatus is reduced on both sides of the opening cylinder and the deposit of dust is avoided.
- If the sealing surface and (at least one) air channel are formed in a lateral part that is separated from the opening cylinder, the manufacture of the sealing surface and of the air channels or channel is simplified. In addition, the lateral part can be detached for maintenance or cleaning of the opening cylinder, or the opening cylinder can be removed from the lateral part.
- In an especially advantageous embodiment a circumferential border or an outer collar is made, the outside circumference of which is part of the sealing surface of the opening cylinder and on the inside circumference and/or lateral surface of which the input sides of the passages are formed. If the input sides are at the inside circumference, making the passages is especially easy by drilling, in that the collar is perforated from the outside at one or several locations.
- If the passages in the opening cylinder part are radial, approximately radial or helicoidal relative to the axis of rotation of the opening cylinder, the centrifugal force acting on the air in the passage is utilized especially well, and strong air flow towards the air gap can be achieved.
- If the passages emerge at an angle from the axis of rotation of the opening cylinder in direction of its face, the airflow from the passages is aligned in an especially efficient manner, flowing past the air gap, so that the suction action of the passing air stream is especially strong and the Venturi effect thereby especially effective. This is further assisted in another embodiment in that the cross-section of the passages decreases towards the outside so that the output speed of the air is increased.
- By increasing the number of passages to such an extent that they are adjoining each other with only a ridge separating them from each other, the quantity of airflow in the direction of the air gap is maximized. In this case it is possible to rout the passages from an axial direction into the lateral opening cylinder area and, following routing, to lay an annular disk over the routed passages so as to then constitute a face of the opening cylinder.
- Examples of embodiments of the invention are explained through drawings.
- FIG. 1 Shows a fiber sliver opening apparatus with a first example of an embodiment of air passages in the opening cylinder cover,
- FIG. 2 shows a second example of an embodiment for air passages in the opening cylinder cover,
- FIG. 3 shows a third example of an embodiment for air passages in the opening cylinder cover,
- FIG. 4 shows a fourth example of an embodiment for air passages in the opening cylinder cover,
- FIG. 5 shows a schematic top view of a lateral part of the rear of an opening cylinder housing,
- FIG. 6 shows a first example of an embodiment of a rear air gap seal,
- FIG. 7 shows a second example of an embodiment of a rear air gap seal and
- FIG. 8 shows a third example of an embodiment of a rear air gap seal.
- FIG. 1 shows a cross-sectional view of a fiber sliver opening apparatus whereby a rotatably supported opening
cylinder 2 is installed in anopening cylinder housing 1. Theopening cylinder 2 is composed of abasic body 4; anopening card clothing 5 and anopening cylinder cover 6. Thedrive shaft 3 is mounted supported by twoball bearings 8 in thehousing 1 of the fiber sliver opening apparatus. A drive wharve 7 over which a drive belt driving the openingcylinder 2 runs is attached at one end of thedrive shaft 3 which protrudes from theopening cylinder housing 1. Thebasic body 4 is fixed at the other end of thedrive shaft 3 within theopening cylinder housing 1 by means of a counter-bearing flange for thecard clothing 5. Theexchangeable card clothing 5 is clamped between thebasic body 4 and theopening cylinder cover 6. Theopening cylinder cover 6 is attached to thedrive shaft 3 by means of a screw (not shown) that is introduced into anopening 9 of theopening cylinder cover 6 and is screwed intoinside threads 10 in thedrive shaft 3. - A fiber sliver is conveyed to the opening
cylinder 2 through a feed opening 11 in the opening cylinder housing by a feed apparatus not shown here. The fibers of the fiber sliver are detached from the fiber sliver by theopening cylinder 2, are sucked through an outlet opening (not shown) in theopening cylinder housing 1 from the latter and are conveyed in the direction of the spinning rotor of a rotor spinning device. - An additional opening towards the interior of the
opening cylinder housing 1 is theair gap 12 between theopening cylinder cover 6 and the adjoining surfaces of theopening cylinder housing 1 required for the rotation of theopening cylinder 2. The width of theair gap 12 is kept so small in this case that a rotation of theopening cylinder cover 6 relative to theopening cylinder housing 1 is possible without contact despite existing manufacturing tolerance and possibly occurring oscillations of theopening cylinder 2. - In order to further reduce the air flow through the
air gap 12 from the outside of theopening cylinder housing 1 into its interior, fourair passages 14, each at the same angular distance from the other are provided on the circumference of theopening cylinder cover 6 at anouter collar 13 or at a border of theopening cylinder cover 6. In the first embodiment of theair passages 14 represented in FIG. 1, these are perpendicular to the rotational axis of theopening cylinder 2, going in radial direction from theopening 9 to theair gap 12. - Due to the high rotational speed of the
opening cylinder 2, in the range of 6000 RPM, theair passages 14 act as radial air blowers and accelerate the air in theair passages 14 under the effect of centrifugal force in the direction of theair gap 12. There the air emerging from theair passages 14 create a dynamic pressure which counteracts the entry of air from the outside of theopening cylinder housing 1. - FIG. 2 shows part of a cross-section of part of the
opening cylinder housing 1 and of theopening cylinder cover 6 in theouter collar 13 of which anair passage 14 a according to a second embodiment is formed. Theair passage 14 a forms an angle of approximately 60° with the rotational axis of theopening cylinder 2. As a result the air current flows at an angle of 60° from theair passage 14 a into theair gap 12 and causes an air flow to go from theair passage 14 a to the output side of theair gap 12 at the front of the fiber sliver opening apparatus. Due to the air flow in theair gap 12, a negative pressure is created at the output side of theair passage 14 a in the area of theair gap 12 that follws the output side of theair passage 14 a in the direction of the interior of theopening cylinder housing 1. This negative pressure prevents on the one hand the entry of outside air into theopening cylinder housing 1 and on the other hand creates additional negative pressure in theair gap 12 which diverts the air from theair gap 12 to the outside. - FIG. 3 shows a third embodiment of an
air passage 14 b the output side of which directly adjoins the outer end of theair gap 12. The air flows from theair passage 14 b at high speed past theair gap 12 and thereby generates a negative pressure that sucks the air from theair gap 12 as mentioned above, and creates a negative pressure in it. - FIG. 4 shows a section of a cross-section perpendicular to the rotational axis of the
opening cylinder cover 6, trough theouter collar 13.Air passages 14 c are made in thecollar 13 in a fourth embodiment. Theair passages 14 c extend from the inside of the outer collar approximately in helicoidal fashion to the rotational axis of theopening cylinder 2 and the cross-section of theair passages 14 c decreases in size from the inside to the outside of theouter collar 13. As a result the acceleration of the air in theair passage 14 c is heightened on the one hand as in a radial air blower, and on the other hand the speed of the air flow through theair passage 14 c to the output side increases due to the tapering cross-section. Thus the conveyed quantity of air and the suction action caused by the air speed are further increased. - The special design of the embodiments described above can be combined in any way desired. Thus for example, the air passage can be helicoidal with respect to the rotational axis, can be provided with a cross-section decreasing in size towards the output side and be at an angle of less than 90° relative to the rotational axis.
- FIG. 5 schematically shows a top view of the rear
lateral wall 20 of anopening cylinder housing 1. Thelateral wall 20 is perforated by theopening 21 so that the outside atmosphere can go from the outside of theopening cylinder housing 1 to the rear lateral area of anopening cylinder 23. Ashaft 24 of theopening cylinder 23 goes through abore 22 in thelateral wall 20. Theopenings 21 correspond to the area marked A in FIG. 1 of the rear of theopening cylinder housing 1 of the first embodiment example. - FIG. 6 shows a section of the23 and of the
opening cylinder housing 25 in a cross-section. Aninside space 26 between the openingcylinder 23 and thehousing 25 is connected via a first embodiment of a rearair gap seal 27 to theouter atmosphere 28. At the rear lateral surface of the opening cylinder 23 a projecting,circumferential border 29 is formed. The border is perforated at several locations in radial direction so thatair passages 30 are constituted in the border. - During the rotation of the
opening cylinder 23 the air is conveyed in the air passages to the outer circumference of theborder 20 so that an air flow represented by arrows in FIG. 6 is guided past the rearair gap seal 27. - FIG. 7 shows a second embodiment of a rear
air gap seal 40, whereby the opening cylinder and theopening cylinder housing 25 are designed as the elements shown in a partial cross-section in FIG. 6. At the rear lateral area of the opening cylinder 23 a steppedborder 41 is formed circumferentially.Bores 42 extending away from the rotational axis of theopening cylinder 23 and are at an angle to the rotational axis are provided in theborder 41. The output sides of thebores 42 are at the lateral surface of theborder 41 and blow an air stream pst theair gap 40 in its immediate proximity as the opening cylinder rotates. - FIG. 8 shows a third embodiment of the rear
air gap seal 50. The elements are essentially as the elements shown in FIG. 6 and are designated by the same reference numbers. Theopening cylinder 23 and theopening cylinder housing 25 differ from the elements shown in FIG. 6 by the two-part design of theopening cylinder housing 25 and of theair gap arrangement 50. The housing is composed of arear bearing element 51 for the support of theshaft 24 and aforward cover 52. Aborder 53 in whichair passages 54 extending in radial direction are provided is formed at the rear lateral area of theopening cylinder 23. As theopening cylinder 23 rotates, air is blown through theair passages 54 into theair gap 50. - A
first segment 55 of theair gap 50 extends from theinterior space 26 in radial direction to the outside. The rotation of the lateral surface of theborder 53 which adjoins thefirst segment 55 accelerates the air in thisair gap segment 55 radially to the outside, so that the sealing action, in addition to high air resistance, is further assisted by the centrifugal force because of the narrow gap.
Claims (14)
1. Opening cylinder of an open-end spinning device with at least one sealing surface in a lateral area (6) for an air gap seal (12, 27, 40, 50), characterized in that at least in the one lateral area (6) of the opening cylinder (2, 23) at least one air passage (14, 14 a, 14 b, 14 c, 30, 42, 54) or air channel is formed, the output side of which is located in the sealing surface or next to the sealing surface and the input side is at a shorter distance from the rotational axis of the opening cylinder (2, 23) than the output side.
2. Opening cylinder as in claim 1 , characterized in that the sealing surface is in form of a contour surface.
3. Opening cylinder as in claim 1 or 2, characterized in that a first lateral area (6) of the opening cylinder (2, 23) is provided with a first sealing surface, and a second lateral area of the opening cylinder (2, 23) is provided with a second sealing surface, whereby at least one air passage or air channel adjoins the first as well as the second sealing surface and/or lets out into it.
4. Opening cylinder as in claim 1 , 2 or 3, characterized in that the lateral area (6) is made in form of a separate lateral opening cylinder element comprising the sealing surface.
5. Opening cylinder as in one of the preceding claims, characterized in that a circumferential collar (13, 29, 41, 53) is formed at the face of the lateral area (6), its outer circumference being at least a part of the sealing surface of the opening cylinder (2, 23) and on whose inner circumference and/or lateral surface the inlet side of the air passage (14, 14 a, 14 b, 14 c, 30, 42, 54) of which at least one is provided is formed.
6. Opening cylinder as in one of the preceding claims, characterized in that the passages (14, 14 a, 14 b, 30, 42, 54) or air channels extend radially or approximately radially.
7. Opening cylinder as in one of the preceding claims, characterized in that the passages (14 c) are designed so as to extend helicoidally relative to the rotational axis of the opening cylinder (2).
8. Opening cylinder as in one of the preceding claims, characterized in that the passages (14 a, 14 b, 42) extend at least near the outlet side at an angle of less than 90° to the rotational axis of the opening cylinder (2, 23).
9. Opening cylinder as in one of the preceding claims, characterized in that the cross-section of the passages (14 c) decrease in size towards their output side.
10. Opening cylinder as in one of the preceding claims, characterized in that the passages adjoining each other are separated from each other by ridges.
11. Opening cylinder as in one of the preceding claims, characterized by a basic body (4) attached on a shaft (3) and an opening cylinder covering element (6) on which a card clothing (5) is provided or with which an exchangeable card clothing (5) can be attached to the basic body (4) in a detachable manner, whereby the opening cylinder covering element (6) is provided with the sealing surface.
12. Opening cylinder covering element for an opening cylinder, on which an exchangeable card clothing can be attached so as to be detachable from the basic body (4) of the opening cylinder (2) and provided with a sealing surface for an air gap seal (12), characterized in that at least one air passage (14, 14 a, 14 b, 14 c,) or air channel is formed in a lateral area of the opening cylinder covering element (6), the output side of which lies in the sealing surface or directly adjoins the sealing surface, and the input side of which is at a shorter radial distance from the rotational axis of the opening cylinder (2, 23) than the output side.
13. Opening cylinder covering element as in claim 12 , characterized in that that the air passage (14, 14 a, 14 b, 14 c) or air channel is designed according to one of the claims 7 to 10 .
14. Fiber sliver opening apparatus of an open-end spinning device with a housing (1, 25) and an opening cylinder (2, 23) rotatably installed in the housing as in one of the claims 1 to 11 , whereby the sealing surface (at least one being provided) of the opening cylinder (2, 23) is across from a corresponding sealing surface of the housing (1, 25) with a small air gap (12, 27, 40, 50) between them.
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DE10058970 | 2000-11-28 | ||
DE10058970.7 | 2000-11-28 | ||
DE10109765A DE10109765A1 (en) | 2000-11-28 | 2001-03-01 | Opening roller for an open-end spinning machine |
DE10109765.4 | 2001-03-01 |
Publications (1)
Publication Number | Publication Date |
---|---|
US20020062637A1 true US20020062637A1 (en) | 2002-05-30 |
Family
ID=26007810
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US09/992,692 Abandoned US20020062637A1 (en) | 2000-11-28 | 2001-11-21 | Opening cylinder for an open-end spinning device |
Country Status (2)
Country | Link |
---|---|
US (1) | US20020062637A1 (en) |
IT (1) | ITMI20012493A1 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2937165A1 (en) * | 2014-04-25 | 2015-10-28 | Applied Materials Switzerland Sàrl | Motor unit for a wire saw device and wire saw device employing the same |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5465567A (en) * | 1991-07-25 | 1995-11-14 | Carclo Engineering Group Plc. | Fiber opening device for separating individual fibers from a fiber sliver |
US5867974A (en) * | 1996-11-11 | 1999-02-09 | Spindelfabrick Suessen, Schurr, Stahlecker & Grill Gmbh | Opening device for an open-end spinning machine |
US5941058A (en) * | 1997-03-27 | 1999-08-24 | W. Schlafhorst Ag & Co. | Sliver opening device |
-
2001
- 2001-11-21 US US09/992,692 patent/US20020062637A1/en not_active Abandoned
- 2001-11-27 IT IT2001MI002493A patent/ITMI20012493A1/en unknown
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5465567A (en) * | 1991-07-25 | 1995-11-14 | Carclo Engineering Group Plc. | Fiber opening device for separating individual fibers from a fiber sliver |
US5867974A (en) * | 1996-11-11 | 1999-02-09 | Spindelfabrick Suessen, Schurr, Stahlecker & Grill Gmbh | Opening device for an open-end spinning machine |
US5941058A (en) * | 1997-03-27 | 1999-08-24 | W. Schlafhorst Ag & Co. | Sliver opening device |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2937165A1 (en) * | 2014-04-25 | 2015-10-28 | Applied Materials Switzerland Sàrl | Motor unit for a wire saw device and wire saw device employing the same |
Also Published As
Publication number | Publication date |
---|---|
ITMI20012493A1 (en) | 2003-05-27 |
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Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: RIETER INGOLSTADT SPINNEREIMASCHINENBAU AG, GERMAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:POHN, ROMEO;SCHERMER, JOSEF;ERL, MICHAEL;AND OTHERS;REEL/FRAME:012885/0113 Effective date: 20020219 |
|
STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |