This application claims priority on Finnish application No. FI 20206159, filed Nov. 16, 2020, the disclosure of which is incorporated by reference herein.
Not applicable.
The invention relates to a ragger for removal of reject from a pulper in a pulping system. The ragger has a drawing roll for drawing the reject from the pulper in the form of a ragger rope. The drawing roll has a drive shaft with a pulley.
The invention further relates to a pulping system having a pulper for the preparation of a fiber pulp suspension and a ragger for removal of reject from the pulper, the ragger having a drawing roll for drawing reject from the pulper in the form of a ragger rope.
The invention further relates to a method for controlling reject handling in a pulping system which has a pulper for a preparation of a fiber pulp suspension and a ragger for a removal of reject from the pulper, the ragger having a drawing roll for drawing reject from the pulper in the form of a ragger rope.
In the initial step of preparing a fiber pulp suspension for use in the manufacture of paper and board, for instance, it is possible to use pulping as part of the process. The purpose of pulping is to defibrate the fiber material being fed into the pulper and to mix it with the water being fed into the pulper to form a fiber pulp suspension. Generally, the fiber material may for instance be cellulose or recycled fiber material or other fiber-content material from a paper or board mill.
When using recycled fiber material, a great deal of impurities, such as plastic and metal pieces, sand and glass typically enter the pulper with the recycled fiber material. In low consistency pulpers, it is possible to use a ragger to remove elongated plastic material and metal wires out of the pulper. A ragger usually has a drawing roll and a press roll pressing toward the drawing roll, by means of which a ragger rope or reject rope, made up of elongated plastic materials, plastic film pieces, metal wires, and other reject material that has been intertwined in the pulper is pulled out of the pulper. The ragger rope is pulled out of the pulper and is cut into suitable pieces for further processing by a tail cutter positioned after the ragger.
Malfunctions, such as breaking of the ragger rope, may occur in raggers. The breaking of the ragger rope may for instance take place when the thickness of the ragger rope and, therefore, also its weight increases too much because the speed of the ragger rope is too low in comparison with the amount of reject being removed. The breaking of the ragger rope may also take place when the ragger rope is thin, in which case the pull directed to the ragger rope may break it. Occasionally, ragger malfunctions are also caused by the thickness of the ragger rope increasing so much that the rope is difficult to remove or too big for the size of the ragger.
Controlling the operation of the reject removal in the form of a ragger rope may include controlling the speed of the ragger rope and instances of an operation of the tail cutter to cut the ragger rope drawn out of the pulper. According to a prior art solution, weight sensors are applied under the frame of the ragger for sensing a weight of the ragger rope. The speed of the ragger rope and the instances of the operation of the tail cutter may be controlled based on the weight of the ragger rope sensed by these weight sensors. This solution functions well, but requires a somewhat complex support of the frame of the ragger because of not allowing a completely immovable support of the frame of the ragger.
An object of the present invention is to provide a ragger as well as a pulping system and method for controlling a reject ragger rope in a pulping system.
The invention is a ragger having at least one measuring instrument arranged to measure at least one quantity relating to bending of a drive shaft by the force applied to a drawing roll by the ragger rope as it is drawn out of a pulper.
The invention is based on the idea of measuring forces applied to the drawing roll by the ragger rope as it is drawn out of the pulper.
An advantage of the invention is that forces applied to the ragger by the ragger rope may be monitored in a simply way, and the results of the monitoring used in controlling of the operation of the reject removal from the pulper. In addition, a completely immovable attachment of the ragger at its placement may be made.
In the following the invention will be described in greater detail by means of preferred embodiments with reference to the accompanying drawings.
For the sake of clarity, the figures show some embodiments of the invention in a simplified manner. Like reference numerals identify like elements in the figures.
In the pulper 2, fiber material fed into the pulper 2 is mixed with water fed into the pulper 2 and is defibrated with a rotor (not shown for the sake of clarity) to form a fiber pulp suspension. Especially when using recycled fiber material, a great deal of impurities, such as pieces of plastic and metal, sand and glass, enter the pulper 2 with the recycled fiber material. As a result of the rotating movement of the pulp in the pulper 2, elongated plastic material, pieces of plastic film, and metal wires tend to intertwine or attach to each other, thus forming a ragger rope 3 or a reject rope 3. Other reject material, such as sand or glass, is also attached or intertwined to the thus formed ragger rope 3. The pulper 2 is typically a low consistency pulper in which the consistency of the fiber pulp suspension being defibrated is typically approximately 5% or less, since in high fiber pulp suspension consistencies the formation of the ragger rope 3 abates or does not take place.
The ragger rope 3 is drawn out of the pulper 2 to the ragger 4 by a drawing roll 5 comprising a drive shaft 6 and a pulley 7. An embodiment of a drawing roll 5 is shown in more detail in
After the ragger 4, there is typically a tail cutter 10 to which the ragger rope 3 is guided and where the ragger rope 3 is cut into pieces of suitable length with a cutting blade 11 or other means applicable for cutting the ragger rope 3 to the suitable sized pieces. These pieces of the ragger rope 3 are, in turn, led away from the tail cutter 10 through a reject port 12 for further processing.
The control unit 13 may be configured to control the operation of the ragger 4 for example by controlling a rotational speed of the drawing roll 5 and thereby to control the speed of the progressive movement of the ragger rope 3 out of the pulper 2. The rotational speed of the drawing roll 5 may be controlled by controlling the operation of the drive 8 through a control connection Cob between the control unit 13 and the drive 8.
The control unit 13 may also be configured to control the operation of the tail cutter 10 for example by controlling instants of time at which the cutting blade 11 is operated to cut the ragger rope 3 extending into the tail cutter 10. The operation of the tail cutter 10 may be controlled through a control connection Co10 between the control unit 13 and the tail cutter 10.
The pulping system 1 of
The pulping system 1 of
According to an embodiment the at least one measuring instrument 14 is attached in connection with the ragger 4 such that the ragger 4 is considered to comprise the at least one measuring instrument 14. The measuring instrument 14 provides a measuring signal Me14 that is transferred to the control unit 13. The control unit 13 may, based on the measuring signal Me14, control the operation of the ragger 4 and/or the tail cutter 10.
According to an embodiment, for measuring at least one quantity describing the force subjected to the drawing roll 5 by the ragger rope 3 to be drawn out of the pulper 2, at least one measuring instrument 14 is configured to measure at least one quantity describing a force to which at least one of the drive shaft 6 and the pulley 7 is subjected, i.e. the force to which the drive shaft 6 and/or to the pulley 7 is subjected by the ragger rope 3 as it is drawn out of the pulper 2 by the ragger 4.
According to an embodiment, at least one measuring instrument 14 is configured to measure at least one of the position and the change in the position of at least one of the drive shaft 6 and the pulley 7 relative to the at least one measuring instrument 14. In other words, according to this embodiment at least one measuring instrument 14 is configured to measure the position and/or the change in position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14. The position and/or the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 provides at least one quantity describing the force to which the drawing roll 5 is subjected, or to which the drive shaft 6 and/or to the pulley 7 is subjected, by the ragger rope 3 drawn out of the pulper 2.
According to an embodiment, the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 may take place in response to a support of the drawing roll 5 to a frame 4′ of the ragger 4 such that minor displacements in the position of the drawing roll 5 relative to the frame 4′ of the ragger 4 may take place, without any plastic deformations of the parts, in response to the forces applied to the drawing roll 5 by the ragger rope 3 to be drawn out of the pulper 2. According to an embodiment like this, as shown in
According to an embodiment, the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 may take place in response to a bending of the drive shaft 6 by the force applied by the ragger rope 3 to the drawing roll 5. According to this embodiment the bending of the drive shaft 6 provides the quantity describing the force which the drawing roll 5, and correspondingly the drive shaft 6 and the pulley 7 is subjected to by the ragger rope 3.
According to an embodiment, the drive shaft 6 may be configured to provide a specific bending in response to a specific force applied to the drive shaft 6 substantially perpendicularly to a longitudinal direction of the drive shaft 6 at a certain point of the drive shaft 6 in its longitudinal direction. In other words, the drive shaft may be implemented with predetermined bending versus force characteristics.
According to an embodiment the drive shaft 6 may be equipped with a strain gauge describing a measure of the bending of the drive shaft 6, i.e., a quantity describing a bending of the drive shaft 6. The output signal of the strain gauge thus provides the quantity describing the bending of the drive shaft 6 which, in turn, also indicates the quantity describing the force to which the drawing roll 5, and correspondingly the drive shaft 6 and the pulley 7 is subjected by the ragger rope 3. In this embodiment, due to the rotational motion of the drive shaft 6, the strain gauge should preferably be self-powered and provided with a wireless communication means so as to be able to transmit further to the control unit 13 the quantity describing the bending of the drive shaft 6 as the measuring signal Me14.
According to an embodiment the at least one measuring instrument 14 is configured to measure a distance from the at least one measuring instrument 14 to the at least one of the drive shaft 6 and the pulley 7, i.e. to the drive shaft 6 and/or to the pulley 7. This measurement takes place at some point in the longitudinal direction of the drive shaft 6 or at some point of the pulley 7. By measuring the distance from the at least one measuring instrument 14 to the drive shaft 6 and/or to the pulley 7 the position or the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 may be measured in a simple way, thus allowing a simple measurement of the quantity describing the force applied to the drawing roll 5, or the quantity describing the bending of the drive shaft 6, due to the force applied to the drawing roll 5 by the ragger rope 3.
According to an embodiment the at least one measuring instrument 14 comprises an optical measuring instrument. With the optical measurement instrument it is easy to measure a distance from the at least one measuring instrument 14 to the drive shaft 6 and/or to the pulley 7, allowing a contact-free measurement of the position and/or the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14.
According to an embodiment the optical measuring instrument is a laser sensor. By using the laser sensor, the position or the change in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 may be measured very accurately. In addition, very small changes in the position of the drive shaft 6 and/or the pulley 7 relative to the at least one measuring instrument 14 may be detected reliably.
The solution disclosed herein allows a simple way to determine or measure forces affecting the ragger 4 by the ragger rope 3, allowing at the same time also a completely immovable attachment of the ragger 4 at its placement.
The ragger 4 shown in
A course of travel of the ragger rope 3 in the ragger 4 is shown in
In the embodiment of the ragger 4 of
The measuring instruments 14a, 14b may be supported to their placements by supporting structures 16 attached in connection with the ragger 4, for example in connection with the frame 4′ of the ragger 4, whereby the ragger 4 is considered to comprise the measuring instruments 14. The supporting structures 16 are shown very schematically in
As shown in
The second measuring instrument 14b is arranged to provide a second measurement connection 14b′ for measuring a distance from the second measuring instrument 14b to the drive shaft 6, in order to measure a position and/or a change in the position of the drive shaft 6 relative to the second measuring instrument 14b. The position and/or the change in the position of the drive shaft 6 relative to the second measuring instrument 14b describes the bending of the drive shaft 6 relative to the second measuring instrument 14b in response to the force to which the drive shaft 6 is subjected by the ragger rope 3. The second measuring instrument 14b provides a respective second measuring signal Me14b, depicting the position and/or the change in the position of the drive shaft 6 relative to the second measuring instrument 14b, and which second measuring signal Me14b is transferred to the control unit 13 for possible control actions to be initiated by the control unit 13.
The resultant force F0 indicates an operating situation wherein a weight of a portion of the ragger rope 3 on the side of the pulper 2 relative to the drawing roll 5 is substantially equal to a weight of a portion of the ragger rope 3 on the side of the tail cutter 10 relative to the drawing roll 5, thus causing the bending of the drive shaft 6 substantially vertically downwards in
The resultant force F1 indicates an operating situation wherein the weight of the portion of the ragger rope 3 on the side of the pulper 2 relative to the drawing roll 5 is substantially higher than the weight of the portion of the ragger rope 3 on the side of the tail cutter 10 relative to the drawing roll 5, thus causing the bending of the drive shaft 6 to slope downwards and to the left in
The resultant force F2 indicates an operating situation wherein the weight of the portion of the ragger rope 3 on the side of the pulper 2 relative to the drawing roll 5 is substantially smaller than the weight of the portion of the ragger rope 3 on the side of the tail cutter 10 relative to the drawing roll 5, thus causing the bending of the drive shaft 6 sloping downwards and to the right in
Although the ragger rope 3 may be drawn out of the pulper 2 substantially continuously, the drawing roll 5 is typically operated periodically, meaning that there are periods of time when the drawing roll 5 is operated to draw the ragger rope 3 out of the pulper 2 and other periods of time when the drawing roll 5 is idle waiting for the formation or growth of the ragger rope 3 in the pulper 2. By adjusting the lengths of the mentioned time periods, and possibly the rotational speed of the adjusting roll 5 at the time periods during which the drawing roll 5 is operated, it may affect the speed at which the ragger rope 3 is drawn out of the pulper 2.
The measuring of the position of the drive shaft 6 relative to the measuring instrument(s) is very applicable during substantially stable operating situations wherein the changes in the forces affecting the drawing roll 5 do not change very rapidly.
The measuring of the change in the position of the drive shaft 6 relative to the measuring instrument(s) is especially useful to detect rapid changes in the forces affecting the drawing roll 5. These rapid changes in the forces affecting the drawing roll 5 typically originate from impacts between the tail of the ragger rope 3 in the pulper 2 and the rotor of the pulper 2, and thereby typically provide forces resembling the resultant force F1 above. These rapid changes in the forces affecting the ragger rope 3 increase the risk of breaking of the ragger rope 3. This risk of breaking may be reduced by increasing the speed at which the ragger rope 3 is drawn out of the pulper 2, thus reducing the length of the tail of the ragger rope 3 in the pulper 2 for avoiding excessive impacts between the rotor and the tail of the ragger rope 3.
In the embodiment of
As an alternative embodiment to the one shown in
Monitoring of the change of position of the drive shaft 6 relative to the measuring instrument 14 may also be utilized for a condition monitoring of the bearing unit 15 of the drive shaft 6. Possible malfunction in the operation of the bearing unit 15 may, for example, cause repetitive changes in the position of the drive shaft 6 relative to the measuring instrument 14 in the same direction relative to the measuring instrument 14, the amplitude of which may also increase as time passes.
It will be obvious to a person skilled in the art that, as the technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
Number | Date | Country | Kind |
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20206159 | Nov 2020 | FI | national |