This application claims priority from German Patent Application No. 10 2005 009 159.8 dated Feb. 25, 2005, the entire disclosure of which is incorporated herein by reference.
The invention relates to an apparatus on a spinning preparation machine, for example, a flat card, draw frame or the like, for monitoring at least one sliver, having two rotating rollers that form a roller nip through which at least one sliver passes.
Feeding of the sliver to the revolving plate of a can coiler is effected at the output of a flat card via take-off rollers. In a known apparatus, (DE 40 28 365 A), an optical sensor, which detects whether a fibre sliver is located in its field of vision or not, is arranged downstream of the take-off rollers. The sensor monitors the presence or absence of the sliver. Absence of the sliver is reported as a malfunction to a machine control. The sensor is arranged away from the roller nip at a distance from the take-off rollers. The optical path of the sensor runs perpendicular to the roller axles. The tension of the sliver changes at a distance from the take-off rollers, that is, the sliver sags to different depths. At relatively high and high sliver speeds, the sliver additionally oscillates parallel to the axles of the take-off rollers, that is, the sliver disappears from the optical path of the sensor, although no sliver funnel is present. Reliable monitoring of sliver breakage is not possible with the known apparatus. In addition, it is inconvenient that the spacing necessitates a separate holding device for the sensor.
It is an aim of the invention to produce an apparatus of the kind described initially that avoids or mitigates the said disadvantages, is in particular of simple construction and permits a reliable and trouble-free monitoring of sliver breakage.
The invention provides an apparatus on a spinning preparation machine, comprising:
Because the light beam of the sensor extends through the narrowing gap between the rollers, preferably close to the fibre material gripping point and parallel to the axles of the rollers, reliable sliver breakage monitoring can be ensured. In the narrowing gap between the rollers, especially at or in the region of the point of grip, there is a defined guidance of the fibre material, so interruption of the light beam of the sensor by the fibre material is at all times substantially certain. It is furthermore an advantage that the sensor can be mounted on holding or bearing elements that are already present, for example, for the take-off rollers.
Advantageously, the monitoring arrangement comprises a non-contact sensor arrangement (sensor) that is capable of detecting unwanted sliver breakage. Advantageously, the rotating roller pair form a nip from which at least one sliver is discharged. In that case, it is preferred that the roller pair transfers the sliver to a downstream rotating roller pair. Preferably, the roller pair is part of a drafting system, for example, of a draw frame, or of a flat card drafting system. The fibre material may be present in, the form of a composite sliver comprising two or more slivers, or may instead be in the form of a single sliver. Advantageously, the optical path of the sensor is aligned in the direction of the working web of moving fibre material. Advantageously, the sensor is a sensor designed for non-contact sensing.
Advantageously, the sensor is a photoelectric sensor, preferably a light sensor. Advantageously, the sensor is in the form of a reflex sensor. Advantageously, there is associated with the sensor a threshold value detector device, which, following a breakage of the sliver, responds to changes in the output signal of the sensor, preferably a photoreceptor of the photoelectric sensor, by emitting a breakage signal. Advantageously, the threshold value detector device signals a breakage in the sliver only when the exceeding or undershooting of its threshold value initiated by such a breakage continues uninterrupted for a predetermined duration. Advantageously, a display and/or switching device is controllable by the sensor. Preferably, recognition of sliver breakages is effected by means of optical sensors. Advantageously, the sensors are one-way photoelectric barriers with a highly focussed light beam.
Advantageously, the photoelectric barriers are arranged parallel to the axles of the rollers. Advantageously, the photoelectric barriers use a laser beam as detection medium. Advantageously, the light is conducted to the monitoring points by means of light guides. Advantageously, pre-determined machine responses are initiated when a sliver breakage is recognised. Preferably, the responses are effected in dependence on plausibility controls. Preferably, a response is only initiated when the light beam is interrupted for a specific time. Advantageously, the intensity of the light beam emitted by the photoelectric barrier (transmitter) is adaptable to different criteria, for example, the production or the material. Advantageously, the sensitivity of the photoelectric barrier receiver can be adapted to different criteria, for example, the production or the material. Preferably, the sensitivity and/or intensity adjustments of the photoelectric barrier for different production conditions are stored and when conditions are the same are automatically recalled and can be used without manual intervention. As well as or instead of photoelectric barriers or other optical sensors, electronic cameras with illumination means may be used for detecting sliver breakage. The optical path of the sensor may advantageously run immediately adjacent to the peripheral surfaces in the wedge-shaped area of the rollers, or may advantageously run immediately adjacent to the grip line between the rollers. Advantageously, the optical path runs downstream of the roller pair in relation to the working direction.
Preferably, the optical sensor arrangement comprises a transmitter and a receiver. The optical sensor arrangement is advantageously mounted in a stationary holding device. Preferably, the holding device is provided in the region laterally of the roller pair. Preferably, the sensor arrangement is mounted on a framework or the like. Advantageously, the framework is of approximately C-shaped construction. Advantageously, the framework is of approximately forked construction. Advantageously, the framework is of approximately rectangular or square construction. In one embodiment, the sensor monitoring arrangement for sliver breakage and a sensor monitoring arrangement for fibre material build-up are present on the holding device. Advantageously, the sensor monitoring arrangement for sliver breakage is arranged on the holding device in the region between the shared tangents to the peripheral surfaces of the rollers. Advantageously, the optical path of the sensor monitoring arrangement runs parallel to the axle or axles of the roller pair. Advantageously, a shared electrical connection is present for the sensor arrangements for monitoring material build-up and for the sensor arrangement for monitoring sliver breakage. Advantageously, a shared electrical connection for the sensor arrangements is connected to an electrical evaluating arrangement. Advantageously, the evaluation of the electrical signals of the sensor arrangement for monitoring material build-up and of the sensor arrangement for monitoring sliver breakage may be carried out separately. The electrical signals may, having regard to hardware and/or software, be processable as an aggregate signal. The electronic signals may, having regard to hardware and/or software be processable in a single evaluation. Advantageously, on sliver breakage the optical path runs from the transmitter to the receiver. Advantageously, the transmitter and the receiver of the optical monitoring are arranged outside the end faces of the rollers. Advantageously, the transmitter and the receiver of the optical monitoring arrangement are arranged between the axles of the rollers.
The invention also provides an apparatus on a spinning preparation machine, for example, a flat card, draw frame or the like, for monitoring at least one sliver, having two rotating rollers that form a roller nip through which at least one sliver passes, in which apparatus an optical monitoring arrangement (sensor) that monitors the presence of the sliver is provided in the vicinity of the rollers, characterised in that the sensor arrangement is arranged in the region between the shared tangents to the peripheral surfaces of the rollers, the tangents being arranged substantially perpendicular to the running direction of the sliver, and the optical path of the sensor runs parallel to the axles of the rollers.
a is a side view of a pair of take-off rollers with a photoelectric barrier for monitoring sliver breakage,
b shows the front view corresponding to
a shows the front view of a holding device having an arrangement for monitoring sliver breakage and an arrangement for monitoring build-up of fibre material at a pair of take-off rollers, and
b shows a perspective view of the holding device shown in
With reference to
In the embodiment of
As shown in
a, 5b, show an arrangement suitable for use in the drafting system in a draw frame (
As shown in
a shows the front view onto the roller nip at the outlet of the take-off rollers. 46, 47 of the card drafting system 39 of
a, 5b, show an arrangement suitable for use in the drafting system in a draw frame (
Although the foregoing invention has been described in detail by way of illustration and example for purposes of understanding, it will be obvious that changes and modifications may be practised within the scope of the appended claims.
Number | Date | Country | Kind |
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10 2005 009 159 | Feb 2005 | DE | national |
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Number | Date | Country | |
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20060191108 A1 | Aug 2006 | US |