The invention relates in accordance with the preamble of claim 1 to a method for passing a web tail being threaded from one paper machine section to another by way of guiding the tail with the help of an air jet. Furthermore, the invention relates to an apparatus in accordance with the preamble of claim 9 and the construction thereof in accordance with claim 17.
Tail threading in paper/newsprint or tissue machines is typically implemented with the help of carrier ropes, vacuum-supported belt conveyors or air-assisted transfer surfaces. Of these methods, carrier ropes represent the oldest technology, whereby it also is becoming obsolete due to safety problems. Vacuum-supported belt conveyors are technologically good and safe, but require extremely intensive care and expensive to construct and maintain. Air-assisted transfer plates are gaining ground in the market owing to their generally secure runnability as well as cost-efficient construction and use. However, their most common handicap is a relatively short rope run with respect to machine speed and wide spectrum of web types. If the machine running conditions change in regard to web speed, basis weight or other qualities, generally the system must be readjusted to minimize web broke. Details of prior-art technology are discussed in patent application FI20060757, and in patents FI 123352 and FI 122377.
In the art are known different kinds of arrangements aimed to improve the transfer of web tail from one machine section to the next. Conventional constructions of the prior art have been hampered by a plurality of disadvantages such as, e.g., it has been impossible to achieve a favorable air flow velocity between the transfer plates and the web tail or, alternatively, removal of blown air has disturbed the tail threading process. Resultingly, the performance of state-of-the art apparatus has not seen essential improvements.
It is an object of the present invention to provide a cost-effective and maintenance-free apparatus to perform tail threading in different paper machine sections at various speeds and web types. In practical tests it has been found necessary to create a relatively high vacuum between the web/tail and the web transfer plates by means of an air jet blown in the direction of the web travel, whereby the vacuum is preferably in the range of 5-300 Pa. With the help of induced vacuum, the web/tail is attracted to an immediate vicinity of the transfer plate, that is, at a distance of about 0-5 mm from the plate surface to the tail surface. In this fashion, the tail path can be controlled so that the tail is directed to the desired direction. As to the tail path control, a maximally high vacuum would obviously be advantageous. However, at the same time friction between the threading apparatus and the web should be minimized in order to prevent tail threading speed from falling below the running speed of the process (i.e., machine speed). Inasmuch as the tail/web transfer plate is essentially a fixed accessory while the web travels at machine speed, the mutual speed difference between their surfaces may possibly be very high at this point. Hence, it is necessary to avoid or at least minimize an intimate contact between the tail/web and the transfer plate. Friction is directly related to the attractive force of the induced vacuum and the resultant local contact between the tail/web and the transfer plate. The greater the area of the contact, the higher the generated friction. Resultingly, it is necessary to apply a larger volume and pressure of the air flow to achieve a sufficient attractive force and to compensate for the frictional force.
In regard to the above, the present invention aims to solve three problems:
1. Minimization of possible contact surface area between the tail/web and the transfer plate.
2. Induction of a proper vacuum (5-300 Pa) between the tail/web and the transfer plate.
3. Generation of maximally effective transferring force on the tail/web by means of air jets.
Now the arrangement according to the invention is capable of presenting a comprehensive solution to the above-mentioned prerequisites in a single embodiment that also optimizes the operation of the apparatus. The inventiveness of the present apparatus is based on the unique arrangement of the transfer plate air ducts serving to guide and control the air flow. An essential feature of the air ducts is their entirely novel construction for threading the web tail from one machine section to the next.
More specifically, the invention is characterized by what is stated in the appended claims.
In the following, the invention is described in more detail with the help of appended drawings, wherein
The arrangement illustrated in appended drawings 1-18 now provides a novel approach to a maximally optimal solution capable of overcoming the above-listed problems.
As shown in
In
In the embodiment variants shown in
Obviously, the number of these different variants and combinations can be modified in plural ways. Essential to the invention is that use of different variants or their combinations are selected to suite the point of application. A particular aim of using different variants is to achieve a significant increase in the transfer force moving the tail forward. For instance in accordance with
In accordance with
As shown in
The air exit opening 7 formed into the frog eye 3 is most advantageously located either to above the plate surface 2, parallel to the level of surface 2 or below the level of surface 2 in the fashion shown in
In accordance with the above discussion, the structure of frog eye 3 can be implemented such that it is located entirely flush with the surface 2 of transfer plate 1 or alternatively at the level of surface 2 of transfer plate 1 or just above thereof. An alternative embodiment has a given portion of the frog eye structure 3 situated below the underside 6 of the surface 2 of transfer plate 1.
As shown in
As described above, the number and shape of air exit openings 7 in frog eye 3 can be varied to meet different requirements. As shown in
Analogously, the shape of frog eye 3 proper illustrated in
More particularly, the shape of frog eye 3 and location of air exit opening 7 are dictated by the requirements posed by a specific application. One particularly advantageous embodiment is the frog eye 3 shown in
In the embodiment according to the invention, air flow from frog eye 3 is directed essentially immediately onto the surface of transfer plate 2, parallel to the transfer plate 1 and the travel direction 9 of the web tail as seen from aside the plate. Correspondingly, as seen from above the transfer plate 1, the air flow exits from frog eye 3 essentially directly onto the transfer plate surface 2, either parallel thereto or inclined to transfer plate 1 and the web tail travel direction by −60-+60 deg., most advantageously by −45-+45 deg.
As shown in
According to the invention it is now possible to use a larger air volume and/or speed to create a vacuum. Resultingly, the present arrangement can reduce the effect of friction by way of minimizing the area of contacting surface with the help of higher vacuum. Also the distance of the web tail from the transfer plate surface 2 can be controlled accurately. The web tail makes contact only with the highest point 5 of frog eyes 3 inasmuch as the spaces between the web tail and the transfer plate 1 are filled with the air flow exiting from the frog eyes.
In the manner described above the arrangement according to the invention now is capable of overcoming the three problems listed earlier. Firstly, the area occupied by frog eye 3 seen from above transfer plate 1 is extremely small, whereby the possibly occurring area of contact between the web and the transfer plate remains minimal. Resultingly, as the contact area between the web tail and the transfer plate is minimized, this represents one of the essential features included in the arrangement according to the invention.
A second essential feature of the invention comprises creating an advantageous level of vacuum at 5-300 Pa between the web tail and transfer plate 1. The vacuum between the web tail and transfer plate is dictated by the air flow, i.e., the differential speed of air flow with regard to the web tail speed and amount of injected air. Owing to the structure of frog eye 3, the invention permits the use of a higher air flow rate or speed to establish a greater vacuum. In contrast, arrangements according to prior art inject the air flow from air exit openings at an angle from the transfer table surface. As a consequence, a portion of the air flow induces a lifting effect off the transfer plate on the web tail, while only the remaining portion serves to pull the web tail in the downstream direction of the transfer plate and create a vacuum.
Thirdly, the invention is characterized by providing a maximally great forward-pulling force on the web tail with the help of directed air flow. An essential feature herein is to direct the air flow parallel to surface 2 of transfer plate 1. This can be achieved by locating frog eyes 3 over the entire surface of transfer plate 1 either in an equidistantly spaced, unsymmetrical and/or in a dispersed fashion or only on a selected area of transfer plate 1.
The arrangement according to the invention offers essential improvements in regard with prior-art constructions wherein air is ejected through the transfer plate via holes drilled at an acute angle thereto.
Number | Date | Country | Kind |
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20145349 | Apr 2014 | FI | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FI2015/050247 | 4/10/2015 | WO | 00 |